US20170041821A1 - Device - Google Patents
Device Download PDFInfo
- Publication number
- US20170041821A1 US20170041821A1 US15/303,637 US201515303637A US2017041821A1 US 20170041821 A1 US20170041821 A1 US 20170041821A1 US 201515303637 A US201515303637 A US 201515303637A US 2017041821 A1 US2017041821 A1 US 2017041821A1
- Authority
- US
- United States
- Prior art keywords
- cell
- state
- terminal device
- event
- threshold
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
Links
- 238000005259 measurement Methods 0.000 claims abstract description 374
- 230000002776 aggregation Effects 0.000 claims description 19
- 238000004220 aggregation Methods 0.000 claims description 19
- 238000004891 communication Methods 0.000 description 162
- 238000012545 processing Methods 0.000 description 96
- 238000000034 method Methods 0.000 description 71
- 238000010586 diagram Methods 0.000 description 59
- 230000008569 process Effects 0.000 description 52
- 230000006870 function Effects 0.000 description 37
- 230000015654 memory Effects 0.000 description 21
- 238000005516 engineering process Methods 0.000 description 17
- LGZFNUULAZCXCA-HSZRJFAPSA-N (2r)-3-phenyl-2-[4-(2-propan-2-ylphenyl)phenoxy]propanoic acid Chemical compound CC(C)C1=CC=CC=C1C(C=C1)=CC=C1O[C@@H](C(O)=O)CC1=CC=CC=C1 LGZFNUULAZCXCA-HSZRJFAPSA-N 0.000 description 11
- 230000004044 response Effects 0.000 description 8
- 230000011664 signaling Effects 0.000 description 8
- 230000007246 mechanism Effects 0.000 description 7
- 230000005540 biological transmission Effects 0.000 description 6
- 230000010267 cellular communication Effects 0.000 description 6
- 230000000694 effects Effects 0.000 description 6
- 238000004590 computer program Methods 0.000 description 5
- 230000007704 transition Effects 0.000 description 4
- 230000001960 triggered effect Effects 0.000 description 4
- 239000004065 semiconductor Substances 0.000 description 3
- 230000003044 adaptive effect Effects 0.000 description 2
- 239000000969 carrier Substances 0.000 description 2
- 230000008859 change Effects 0.000 description 2
- 230000007423 decrease Effects 0.000 description 2
- 230000002349 favourable effect Effects 0.000 description 2
- 230000007774 longterm Effects 0.000 description 2
- 230000001151 other effect Effects 0.000 description 2
- 230000000737 periodic effect Effects 0.000 description 2
- 230000005236 sound signal Effects 0.000 description 2
- 238000012546 transfer Methods 0.000 description 2
- 230000001133 acceleration Effects 0.000 description 1
- 230000004075 alteration Effects 0.000 description 1
- 230000001413 cellular effect Effects 0.000 description 1
- 230000000295 complement effect Effects 0.000 description 1
- 230000006872 improvement Effects 0.000 description 1
- 239000004973 liquid crystal related substance Substances 0.000 description 1
- 239000011159 matrix material Substances 0.000 description 1
- 229910044991 metal oxide Inorganic materials 0.000 description 1
- 150000004706 metal oxides Chemical class 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 239000013307 optical fiber Substances 0.000 description 1
Images
Classifications
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/10—Scheduling measurement reports ; Arrangements for measurement reports
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J11/00—Orthogonal multiplex systems, e.g. using WALSH codes
- H04J11/0069—Cell search, i.e. determining cell identity [cell-ID]
- H04J11/0093—Neighbour cell search
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L43/00—Arrangements for monitoring or testing data switching networks
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L43/00—Arrangements for monitoring or testing data switching networks
- H04L43/08—Monitoring or testing based on specific metrics, e.g. QoS, energy consumption or environmental parameters
- H04L43/0876—Network utilisation, e.g. volume of load or congestion level
- H04L43/0888—Throughput
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L43/00—Arrangements for monitoring or testing data switching networks
- H04L43/16—Threshold monitoring
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L47/00—Traffic control in data switching networks
- H04L47/10—Flow control; Congestion control
- H04L47/29—Flow control; Congestion control using a combination of thresholds
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
- H04L5/001—Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT the frequencies being arranged in component carriers
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signaling for the administration of the divided path
- H04L5/0096—Indication of changes in allocation
- H04L5/0098—Signalling of the activation or deactivation of component carriers, subcarriers or frequency bands
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W28/00—Network traffic management; Network resource management
- H04W28/02—Traffic management, e.g. flow control or congestion control
- H04W28/0278—Traffic management, e.g. flow control or congestion control using buffer status reports
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/0005—Control or signalling for completing the hand-off
- H04W36/0083—Determination of parameters used for hand-off, e.g. generation or modification of neighbour cell lists
- H04W36/0085—Hand-off measurements
- H04W36/0088—Scheduling hand-off measurements
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W84/00—Network topologies
- H04W84/02—Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
- H04W84/10—Small scale networks; Flat hierarchical networks
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L43/00—Arrangements for monitoring or testing data switching networks
- H04L43/06—Generation of reports
- H04L43/062—Generation of reports related to network traffic
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/02—Arrangements for optimising operational condition
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W36/00—Hand-off or reselection arrangements
- H04W36/16—Performing reselection for specific purposes
- H04W36/165—Performing reselection for specific purposes for reducing network power consumption
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W88/00—Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
- H04W88/02—Terminal devices
Definitions
- the present disclosure relates to a device.
- a device including: an acquiring unit configured to acquire information indicating that a serving cell is scheduled to be in an off state; and a control unit configured to perform measurement reporting before the serving cell is in the off state.
- a device including a control unit configured to perform measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in an on state.
- the control unit performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in an off state.
- the first event and the second event have different offsets or thresholds.
- a device including: an acquiring unit configured to acquire an offset or a threshold for an event regarding a measurement result of a neighbour cell; and a control unit configured to notify a terminal device of the offset or the threshold.
- the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- a device including: an acquiring unit configured to acquire information about traffic of a terminal device; and a control unit configured to perform measurement reporting when predetermined conditions of the information are satisfied.
- a device including an acquiring unit configured to acquire a measurement result of a cell in the off state and information about a buffer status of a terminal device, which are reported by the terminal device, and a control unit configured to decide to switch the cell to the on state based on the measurement result and the information.
- FIG. 1 is an explanatory diagram for describing an example of a small cell.
- FIG. 2 is an explanatory diagram for describing an example of a small cell cluster.
- FIG. 3 is a sequence diagram illustrating an example of a schematic flow of an on/off process of a small cell.
- FIG. 4 is a sequence diagram illustrating an example of a schematic flow of an on/off process of a small cell when a DRS is used.
- FIG. 6 is an explanatory diagram for describing a first scenario of carrier aggregation (CA).
- CA carrier aggregation
- FIG. 7 is an explanatory diagram for describing a second scenario of carrier aggregation (CA).
- CA carrier aggregation
- FIG. 8 is an explanatory diagram for describing a third scenario of carrier aggregation (CA).
- FIG. 9 is an explanatory diagram illustrating an example of a schematic configuration of a communication system according to an embodiment of the present disclosure.
- FIG. 12 is a block diagram illustrating an example of a configuration of a terminal device according to a second embodiment.
- FIG. 13 is a block diagram illustrating an example of a configuration of a base station according to the second embodiment.
- FIG. 14 is a sequence diagram illustrating an example of a schematic flow of a process according to the second embodiment.
- FIG. 15 is a block diagram illustrating an example of a configuration of a terminal device according to a third embodiment.
- FIG. 17 is a block diagram illustrating an example of a configuration of a control entity according to the fourth embodiment.
- FIG. 19 is a block diagram illustrating an example of a configuration of a base station according to the fifth embodiment.
- FIG. 20 is a sequence diagram illustrating an example of a schematic flow of a process according to the fifth embodiment.
- FIG. 21 is a block diagram illustrating an example of a configuration of a terminal device according to the sixth embodiment.
- FIG. 22 is a sequence diagram illustrating an example of a schematic flow of a process according to the sixth embodiment.
- FIG. 23 is a block diagram illustrating an example of a configuration of a terminal device according to the seventh embodiment.
- FIG. 24 is a block diagram illustrating an example of a configuration of a base station according to the seventh embodiment.
- FIG. 25 is a sequence diagram illustrating an example of a schematic flow of a process according to the seventh embodiment.
- FIG. 26 is a block diagram illustrating an example of a schematic configuration of a server.
- FIG. 27 is a block diagram illustrating a first example of a schematic configuration of an eNB.
- FIG. 28 is a block diagram illustrating a second example of the schematic configuration of the eNB.
- FIG. 29 is a block diagram illustrating an example of a schematic configuration of a smartphone.
- FIG. 30 is a block diagram illustrating an example of a schematic configuration of a car navigation apparatus.
- Configuration of terminal device 9.3. Configuration of base station 9.4. Process flow 10. Application examples 10.1. Application examples for control entity 10.2. Application examples for base station 10.3. Application examples for terminal device
- FIG. 1 to FIG. 8 A technology related to an embodiment of the present disclosure will be described with reference to FIG. 1 to FIG. 8 . Specifically, a small cell, a measurement and carrier aggregation will be described.
- a small cell is a cell smaller than a macro cell.
- the small cell partially or entirely overlaps the macro cell.
- an example of the small cell will be described with reference to FIG. 1 .
- FIG. 1 is an explanatory diagram for describing an example of a small cell.
- a macro base station 11 a macro cell 13 , a small base station 15 and a small cell 17 are shown.
- the macro base station 11 is a base station of the macro cell 13 .
- the small base station 15 is a base station of the small cell 17 .
- the macro cell 13 is a coverage area of the macro base station 11 (that is, a communication area)
- the small cell 17 is a coverage area of the small base station 15 (that is, a communication area).
- a base station of LTE is referred to as an evolved node B (eNB).
- eNB evolved node B
- a macro base station of LTE is referred to as a macro eNB
- a small base station of LTE is referred to as a small eNB.
- TIE user equipment
- Small cells arranged at a high density form a small cell cluster.
- an example of the small cell cluster will be described with reference to FIG. 2 .
- FIG. 2 is an explanatory diagram for describing an example of a small cell cluster.
- the macro base station 11 the macro cell 13 and the small cell 17 are shown.
- small cells 17 arranged at a high density form a small cell cluster 19 .
- the small base station transmits a cell-specific reference signal (CRS) regardless of the presence or absence of traffic of the small cell.
- CRS cell-specific reference signal
- a CRS causes large interference in a neighbour cell. Therefore, various technologies for reducing interference are being studied.
- a small cell on/off technology As a technology for reducing such inter-cell interference, a small cell on/off technology has currently been focused on.
- an on/off state of a small cell is adaptively switched, and thus it is possible to suppress interference in a surrounding cell of the small cell.
- a trigger for switching an on/off state of the small cell has not yet been specifically decided, a trigger for switching based on, for example, a traffic amount, association of a terminal device, or arrival of a packet is being studied.
- FIG. 3 an example of a small cell on/off procedure will be described with reference to FIG. 3 .
- FIG. 3 is a sequence diagram illustrating an example of a schematic flow of a small cell on/off process.
- the small cell on/off process is a process that is disclosed in R1-134318 of the Third Generation Partnership Project (3GPP).
- the UE transmits an uplink signal to a macro eNB of a macro cell that is a serving cell (S 1001 ).
- the macro eNB searches for a small eNB in an off state that is positioned around the UE, and instructs the appropriate small eNB to switch to an on state when there is an appropriate small eNB (S 1003 ).
- the small eNB performs switching from the off state to the on state (S 1005 ).
- the small eNB transmits downlink signals such as a primary synchronization signal (PSS), a secondary synchronization signal (SSS), a cell-specific reference signal (CRS) and a physical broadcast channel (PBCH) signal (S 1007 ).
- PSS primary synchronization signal
- SSS secondary synchronization signal
- CRS cell-specific reference signal
- PBCH physical broadcast channel
- the UE performs a cell search and RRM measurement (S 1009 ), and performs measurement reporting to the macro eNB (S 1011 ).
- S 1013 a handover of the UE from the macro cell to the small cell is performed.
- the UE and the small eNB perform an access procedure (S 1015 ) and perform data transmission (S 1017 ).
- a transition time may become relatively longer. That is, according to the procedure, a time from when a terminal device attempts to transmit data until the terminal device actually transmits the data may become relatively longer. Therefore, large improvement of throughput is difficult.
- a measurement process that serves as a main delay factor is preferably performed by the terminal device.
- the DRS enables measurement of a small cell in the off state.
- the DRS is also referred to as a discovery signal (DS).
- a small base station for example, a small eNB
- a terminal device for example, UE
- FIG. 4 an example of a small cell on/off procedure when a DRS is used will be described with reference to FIG. 4 .
- FIG. 4 is a sequence diagram illustrating an example of a schematic flow of a small cell on/off process when a DRS is used.
- the small cell on/off process is a process that is disclosed in R1-134318 of the 3GPP.
- a macro eNB instructs a small eNB to transmit a DS (S 1031 ), and the small eNB transmits the DS in downlink (S 1033 ).
- the UE performs measurement based on the DS (S 1035 ) and reports a result of the measurement to the macro eNB (that is, an eNB of a macro cell that is a serving cell) (S 1037 ).
- the UE and the small eNB perform data transmission through subsequent procedures (S 1041 to S 1049 ) (S 1051 ).
- the terminal device can perform measurement. Therefore, the transition time is removed and throughput may be improved.
- a terminal device performs measurement based on a CRS transmitted by a base station. Specifically, the terminal device receives a CRS transmitted by a base station and thus performs measurement of quality of a propagation path between the base station and the terminal device.
- the measurement is referred to as “radio resource management (RRM) measurement,” or is simply referred to as “measurement.”
- a result of the measurement is used to select a cell for a terminal device.
- the result of the measurement is used for cell selection/cell reselection by a terminal device that is in a radio resource control (RRC) idle (RRC Idle) state.
- RRC radio resource control
- the result of the measurement is reported to a base station by a terminal device that is in an RRC connected state and is used for a handover decision by the base station.
- CRS measurement is measurement of reference signal received power (RSRP) and/or reference signal received quality (RSRQ).
- RSRP reference signal received power
- RSRQ reference signal received quality
- a terminal device acquires RSRP and/or RSRQ as a result of the measurement of the CRS.
- the RSRQ is calculated from the RSRP and a received signal strength indicator (RSSI).
- the RSRP is reception power of a CRS for each single resource element. That is, the RSRP is an average value of reception power of the CRS.
- the reception power of the CRS is obtained by detecting a correlation between a reception signal in a resource element of the CRS and a known signal CRS.
- the RSRP corresponds to a desired signal “Signal (S).”
- the RSSI is total power of signals for each Orthogonal Frequency Division Multiple Access (OFDMA) symbol. Therefore, the RSSI includes a desired signal, an interference signal and noise. That is, the RSSI corresponds to “Signal (S)+Interference (I)+Noise (N).”
- the RSRQ is RSRP/(RSRI/N).
- N denotes the number of resource blocks used for calculating an RSSI.
- the resource blocks are resource blocks that are arranged in a frequency direction. Therefore, the RSRQ is a value that is obtained by dividing the RSRP using the RSRI for each resource block. That is, the RSRQ corresponds to a signal-to-interference-plus-noise ratio (SINR).
- SINR signal-to-interference-plus-noise ratio
- reception power that is, RSRP
- reception quality that is, RSRQ
- Measurement of a frequency band that a terminal device uses is referred to as intra-frequency measurement. Conversely, measurement of a frequency band that a terminal device does not use is referred to as inter-frequency measurement.
- the terminal device can receive a CRS transmitted in a frequency band that is used without switching a frequency of a radio frequency (RF) circuit. That is, it is unnecessary to switch a frequency of the RF circuit for intra-frequency measurement.
- RF radio frequency
- a radio frequency (RF) circuit in order for the terminal device to receive a CRS transmitted in a frequency band that is not used, it is necessary to switch a frequency of a radio frequency (RF) circuit. That is, it is necessary to switch a frequency of the RF circuit for inter-frequency measurement. Therefore, a period called a measurement gap is used for inter-frequency measurement.
- RF radio frequency
- the base station does not transmit a downlink signal addressed to a terminal device.
- the measurement gap is shared between the base station and the terminal device.
- the base station transmits a message (for example, an RRC connection reconfiguration message) including information indicating a measurement gap to the terminal device.
- the measurement gap is indicated by a measurement gap length (MGL), a measurement gap repetition period (MGRP) and a gap offset.
- MGL measurement gap length
- MGRP measurement gap repetition period
- a gap offset a combination of the MGL and the MGRP is determined as, for example, a gap pattern.
- FIG. 5 is an explanatory diagram for describing an example of a measurement gap.
- FIG. 5 shows a matrix including columns of radio frames whose SFNs are 0 to 9 and rows of 10 subframes (subframes whose subframe numbers are 0 to 9) included in radio frames.
- the MGL is 6 milliseconds (ms)
- the MGRP is 40 ms
- the gap offset is 0. Therefore, the measurement gap has a length of 6 ms and appears every 40 ms. More specifically, for example, six subframes whose subframe numbers are 0 to 5 among radio frames whose SFNs are 0, 4 and 8 are the measurement gap. Inter-frequency measurement is performed during the measurement gap.
- the terminal device reports a measurement result to the base station.
- the reporting is referred to as measurement reporting.
- the measurement reporting is periodic reporting or event-triggered reporting.
- the periodic reporting is reporting that is performed at set periods.
- the event-triggered reporting is reporting that is performed when a reporting event is generated.
- Reporting events A1 to A5 are events associated with a handover within a system
- reporting events B1 to B2 are events associated with a handover between systems.
- Carrier aggregation is a technology through which communication is performed using a plurality of component carriers (CCs) at the same time.
- the component carrier is a frequency band having a maximum of a 20 MHz bandwidth.
- the carrier aggregation includes three scenarios. Hereinafter, three scenarios of the carrier aggregation will be described with reference to FIG. 6 to FIG. 8 .
- FIG. 6 to FIG. 8 are explanatory diagrams for describing first to third scenarios of carrier aggregation (CA).
- CA carrier aggregation
- FIG. 9 is an explanatory diagram illustrating an example of a schematic configuration of the communication system 1 according to an embodiment of the present disclosure.
- the communication system 1 includes a terminal device 100 , a base station 200 and a control entity 300 .
- the communication system 1 is a system supporting, for example, LTE, LTE-Advanced or a communication standard equivalent thereto.
- the terminal device 100 wirelessly communicates with the base station 200 .
- the terminal device 100 performs measurement of a cell (for example, a serving cell and a neighbour cell).
- the terminal device 100 performs measurement reporting (that is, reporting of a measurement result) to the base station 200 .
- the base station 200 wirelessly communicates with one or more terminal devices including the terminal device 100 . In addition, the base station 200 decides a handover of a terminal device based on the measurement result reported by the terminal device.
- the base station 200 may be a base station of a macro cell (that is, a macro base station) or a base station of a small cell (that is, a small base station).
- the control entity 300 performs control according to each embodiment of the present disclosure.
- the control entity 300 is, for example, an existing or new core network node.
- the control entity 300 may be a base station.
- the control entity 300 may be a macro base station.
- an “on state” of a cell is a state in which a base station of the cell transmits and receives signals (a data signal and a control signal) in the cell.
- an “off state” of a cell is a state in which a base station of the cell does not transmit and receive signals except some control signals (for example, a DRS) in the cell.
- the “off state” of a cell may be a state in which a base station of the cell does not transmit and receive signals in the cell at all.
- a base station decides a handover of a terminal device based on a measurement result reported by the terminal device.
- the terminal device reports the measurement result to the base station periodically or according to a generation of an event.
- a serving cell of the terminal device may is in the off state from the on state.
- a handover of the terminal device be performed before the cell is in the off state.
- a terminal device 100 - 1 performs measurement reporting before a serving cell is in the off state. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting useful for selecting a new serving cell is performed.
- FIG. 10 is a block diagram illustrating an example of a configuration of the terminal device 100 - 1 according to the first embodiment.
- the terminal device 100 - 1 includes an antenna unit 110 , a wireless communication unit 120 , a storage unit 130 and a processing unit 140 .
- the antenna unit 110 emits a signal output by the wireless communication unit 120 into space as radio waves.
- the antenna unit 110 converts spatial radio waves into a signal and outputs the signal to the wireless communication unit 120 .
- the wireless communication unit 120 transmits and receives signals. For example, the wireless communication unit 120 receives a downlink signal from a base station and transmits an uplink signal to the base station.
- the storage unit 130 temporarily or permanently stores programs and data for operations of the terminal device 100 - 1 .
- the processing unit 140 provides various functions of the terminal device 100 - 1 .
- the processing unit 140 includes an information acquiring unit 141 and a control unit 143 .
- the processing unit 140 may further include a component other than these components. That is, the processing unit 140 may also perform an operation other than operations of these components.
- the information acquiring unit 141 acquires information indicating that a serving cell is scheduled to be in the off state (hereinafter referred to as “off information”).
- the serving cell is a serving cell of the terminal device 100 - 1 .
- the serving cell is a primary cell (a Pcell) of carrier aggregation.
- the primary cell is referred to as a primary component carrier (a PCC).
- the off state of the primary cell means that the PCC is deactivated.
- the serving cell is a small cell.
- a base station 200 - 1 is a small base station.
- the information acquiring unit 141 acquires information indicating that a small cell (a cell of the base station 200 - 1 ) serving as a primary cell is scheduled to be in the off state.
- the base station 200 - 1 transmits off information indicating that a cell of the base station 200 - 1 is scheduled to be in the off state to the terminal device 100 - 1 , and the terminal device 100 - 1 receives the off information. Then, the off information is stored in the storage unit 130 . Then, the information acquiring unit 141 acquires the off information from the storage unit 130 .
- the control unit 143 performs measurement reporting before a serving cell is in the off state. For example, the control unit 143 performs measurement reporting according to the acquisition of the off information.
- the serving cell is a serving cell of the terminal device 100 .
- control unit 143 performs measurement reporting according to a generation of an event indicating that a serving cell is scheduled to be in the off state. That is, the measurement reporting is event-triggered reporting that is triggered by a new event (or a new event equivalent thereto) defined, for example, as follows.
- Event Type Description New Event Serving cell indicate to the UE that serving cell will be in off state
- the measurement reporting is measurement reporting of a cell other than the serving cell. That is, the terminal device 100 - 1 performs measurement reporting of the cell other than the serving cell before the serving cell is in the off state.
- the cell other than the serving cell includes a neighbour cell.
- the serving cell is a primary cell of carrier aggregation
- the cell other than the serving cell may include a secondary cell of carrier aggregation instead of the neighbour cell or may be included with the neighbour cell.
- the base station 200 - 1 can select an appropriate handover destination of the terminal device 100 - 1 .
- the cell other than the serving cell is a cell associated with the most favorable measurement result. Accordingly, for example, it is possible to select an optimal handover while reducing overhead.
- the measurement reporting is reporting of a result of measurement performed by the terminal device 100 - 1 .
- the measurement is RRM measurement, for example, measurement of reception power or reception quality. More specifically, for example, the measurement is measurement of RSRP or RSRQ
- the measurement (for example, measurement of a serving cell and a neighbour cell) may be performed by the control unit 143 or may be performed by another component included in the processing unit 140 .
- FIG. 11 is a sequence diagram illustrating an example of a schematic flow of a process according to the first embodiment.
- the base station 200 - 1 transmits information indicating that a serving cell (for example, a primary cell) is scheduled to be in the off state (that is, off information) to the terminal device 100 - 1 (S 401 ).
- the terminal device 100 - 1 (the information acquiring unit 141 ) acquires the off information.
- the terminal device 100 - 1 (the control unit 143 ) performs measurement of a cell other than the serving cell (for example, the primary cell) (S 403 ).
- the terminal device 100 - 1 (the control unit 143 ) performs measurement reporting of a cell other than the serving cell (S 405 ). That is, the terminal device 100 - 1 reports a measurement result of a cell other than the serving cell to the base station 200 - 1 .
- the terminal device 100 - 1 may use a result of measurement performed before the off information is acquired.
- a base station decides a handover of a terminal device based on a measurement result reported by the terminal device.
- the terminal device reports the measurement result to the base station periodically or according to a generation of an event.
- a handover destination of the terminal device be a cell in the on state rather than a cell in the off state.
- measurement reporting may be performed regardless of the on/off state of a mall cell.
- there is a possibility of a handover to a cell in the off state being frequently performed.
- measurement reporting of a cell in the off state is frequently performed and overhead may increase as a result.
- a terminal device 100 - 2 performs measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in the on state.
- the terminal device 100 - 2 performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in the off state.
- the first event and the second event have different offsets or thresholds. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting of a cell in the off state is suppressed
- FIG. 12 is a block diagram illustrating an example of a configuration of the terminal device 100 - 2 according to the second embodiment.
- the terminal device 100 - 2 includes the antenna unit 110 , the wireless communication unit 120 , the storage unit 130 and a processing unit 150 .
- the processing unit 150 provides various functions of the terminal device 100 - 2 .
- the processing unit 150 includes an information acquiring unit 151 and a control unit 153 .
- the processing unit 150 may further include a component other than these components. That is, the processing unit 150 may also perform an operation other than operations of these components.
- the information acquiring unit 151 acquires an offset or a threshold for an event regarding a measurement result of a neighbour cell.
- the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in the on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in the off state.
- the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- a base station 200 - 2 notifies the terminal device 100 - 2 of the offset or the threshold.
- the base station 200 - 2 notifies the terminal device 100 - 2 of the offset or the threshold through system information (for example, a system information block (SIB)) or through individual signaling (for example, RRC signaling).
- SIB system information block
- RRC signaling for example, RRC signaling
- the control unit 153 performs measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in the on state. In addition, the control unit 153 performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in the off state.
- the first event and the second event have different offsets or thresholds.
- the second event has stricter generation conditions than the first event.
- a neighbour cell in the on state becomes better than a serving cell by a first offset in a measurement result in the first event
- a neighbour cell in the off state becomes better than a serving cell by a second offset in a measurement result in the second event.
- the second offset is greater than the first offset
- the first event is an existing event A3
- the second event is a new event (or a new event equivalent thereto) associated with a greater offset than the existing event A3 as follows.
- the serving cell is a primary cell of carrier aggregation.
- the second event is a new event as follows
- the second event may be the existing event A3 rather than the new event.
- an offset according to a state (the on state or the off state) of a neighbour cell may be applied to the existing event A3.
- measurement reporting of a neighbour cell in the off state is suppressed, when compared to a neighbour cell in the on state.
- a neighbour cell in the on state becomes better than a first threshold in a measurement result in the first event
- a neighbour cell in the off state becomes better than a second threshold in a measurement result in the second event.
- the second threshold is greater than the first threshold.
- the first event is an existing event A4
- the second event is a new event (or a new event equivalent thereto) associated with a greater threshold than the existing event A4 as follows.
- the second event may be the existing event A4 rather than the new event.
- a threshold according to a state (the on state or the off state) of a neighbour cell may be applied to the existing event A4.
- measurement reporting of a neighbour cell in the off state is suppressed, when compared to a neighbour cell in the on state.
- a serving cell becomes worse than a first threshold and a neighbour cell in the on state becomes better than a second threshold in a measurement result in the first event
- a serving cell becomes worse than a third threshold and a neighbour cell in the off state becomes better than a fourth threshold in a measurement result in the second event.
- the fourth threshold is greater than the second threshold or the third threshold is smaller than the first threshold.
- the first event is an existing event A5
- the second event is a new event (or a new event equivalent thereto) associated with a threshold different from the existing event A5 as follows.
- a threshold (threshold 2) of a neighbour cell in the off state is greater and/or a threshold (threshold 1) of a serving cell is smaller when compared to the existing event A5.
- the serving cell is a primary cell of carrier aggregation.
- the second event is a new event as follows
- the second event may be the existing event A5 rather than the new event.
- a threshold according to a state (the on state or the off state) of a neighbour cell may be applied to the existing event A5.
- measurement reporting of a neighbour cell in the off state is suppressed, when compared to a neighbour cell in the on state.
- a neighbour cell in the on state becomes better than a secondary cell by a first offset in a measurement result in the first event
- a neighbour cell in the off state becomes better than a secondary cell by a second offset in a measurement result in the second event.
- the second offset is greater than the first offset
- the first event is an existing event A6
- the second event is a new event (or a new event equivalent thereto) associated with a greater offset than the existing event A6 as follows.
- the second event may be the existing event A6 rather than the new event.
- an offset according to a state (the on state or the off state) of a neighbour cell may be applied to the existing event A6.
- measurement reporting of a neighbour cell in the off state is suppressed, when compared to a neighbour cell in the on state.
- the measurement reporting is reporting of a result of measurement performed by the terminal device 100 - 2 .
- the measurement is RRM measurement, for example, measurement of reception power or reception quality. More specifically, for example, the measurement is measurement of RSRP or RSRQ.
- the measurement is performed based on a reference signal.
- the reference signal is, for example, a CRS that is transmitted in a cell in the on state and/or a DRS that is transmitted in a cell in the off state (and a cell in the on state).
- the measurement (for example, measurement of a serving cell and a neighbour cell) may be performed by the control unit 153 or may be performed by another component included in the processing unit 150 .
- FIG. 13 is a block diagram illustrating an example of a configuration of the base station 200 - 2 according to the second embodiment.
- the base station 200 - 2 includes an antenna unit 210 , a wireless communication unit 220 , a network communication unit 230 , a storage unit 240 , and a processing unit 250 .
- the antenna unit 210 radiates a signal output from the wireless communication unit 220 into the air as radio waves.
- the antenna unit 210 converts the radio waves in the air into a signal, and outputs the signal to the wireless communication unit 220 .
- the wireless communication unit 220 transmits or receives a signal.
- the wireless communication unit 220 transmits the downlink signal to the terminal device, and receives the uplink signal from the terminal device.
- the network communication unit 230 transmits and receives information.
- the network communication unit 230 transmits information to another node and receives information from another node.
- the other node includes a core network and another base station.
- the other node includes a control entity 300 - 2 .
- the storage unit 240 temporarily or permanently stores a program and data for an operation of the base station 200 - 2 .
- the processing unit 250 provides various functions of the base station 200 - 2 .
- the processing unit 250 includes an information acquiring unit 251 and a control unit 253 .
- the processing unit 250 may further include any other component in addition to the above-mentioned components. In other words, the processing unit 250 may also perform an operation other than operations of the above-mentioned components.
- the information acquiring unit 251 acquires an offset or a threshold for an event regarding a measurement result of a neighbour cell.
- the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in the on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in the off state.
- the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- the offset or the threshold is stored in the storage unit 240 , and the information acquiring unit 251 acquires the offset or the threshold from the storage unit 240 .
- the control unit 253 notifies the terminal device 100 - 2 of the offset or the threshold for the event.
- control unit 253 notifies the terminal device 100 - 2 of the offset or the threshold through system information (for example, an STB) or through individual signaling (for example, RRC signaling).
- system information for example, an STB
- individual signaling for example, RRC signaling
- FIG. 14 is a sequence diagram illustrating an example of a schematic flow of a process according to the second embodiment.
- the base station 200 - 2 (the control unit 253 ) notifies the terminal device 100 - 2 of an offset and/or a threshold for an event regarding a measurement result of a neighbour cell (S 421 ).
- the terminal device 100 - 2 (the information acquiring unit 151 ) acquires the offset and/or the threshold.
- the terminal device 100 - 2 (the processing unit 250 ) performs measurement of a cell (S 423 ).
- the cell includes a serving cell and an adjacent cell.
- the terminal device 100 - 2 (the control unit 153 ) performs measurement reporting according to a generation of an event (S 425 ). That is, the terminal device 100 - 2 reports a measurement result of a cell to the base station 200 - 2 .
- the terminal device 100 - 2 (the control unit 153 ) performs measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in the on state.
- the terminal device 100 - 2 (the control unit 153 ) performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in the off state.
- the first event and the second event have different offsets or thresholds.
- a base station decides a handover of a terminal device based on a measurement result reported by the terminal device.
- the terminal device reports the measurement result to a base station periodically or according to a generation of an event.
- each component carrier is activated or deactivated.
- a deactivated CC is preferably activated (that is, a cell in the off state preferably is in the on state).
- traffic of the terminal device increases, there is a possibility of a measurement result not being reported to a base station.
- a terminal device 100 - 3 performs measurement reporting when predetermined conditions of traffic of the terminal device 100 - 3 are satisfied. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting useful for selecting a carrier (a cell) to be added according to an increase of traffic is performed.
- FIG. 15 is a block diagram illustrating an example of a configuration of the terminal device 100 - 3 according to the third embodiment.
- the terminal device 100 - 3 includes the antenna unit 110 , the wireless communication unit 120 , the storage unit 130 and a processing unit 160 .
- the processing unit 160 provides various functions of the terminal device 100 - 3 .
- the processing unit 160 includes an information acquiring unit 161 and a control unit 163 .
- the processing unit 160 may further include a component other than these components. That is, the processing unit 160 may also perform an operation other than operations of these components.
- the information acquiring unit 161 acquires information about traffic of the terminal device 100 - 3 (hereinafter referred to as “traffic information”).
- the traffic information is a traffic load of the terminal device 100 - 3 .
- the traffic information may be an amount of traffic of the terminal device 100 - 3 .
- the processing unit 160 calculates the traffic information and the information acquiring unit 161 acquires the traffic information.
- the control unit 163 performs measurement reporting when predetermined conditions of the traffic information are satisfied.
- the traffic information is a traffic load of the terminal device 100 - 3 .
- the predetermined conditions include a condition that the traffic load of the terminal device 100 - 3 be equal to or greater than a threshold. That is, the control unit 163 performs measurement reporting when the traffic load of the terminal device 100 - 3 is equal to or greater than the threshold.
- the traffic information may be an amount of traffic of the terminal device 100 - 3 .
- the predetermined conditions may include a condition that the amount of traffic of the terminal device 100 - 3 be equal to or greater than a threshold. That is, the control unit 163 may perform measurement reporting when the amount of traffic of the terminal device 100 - 3 is equal to or greater than the threshold.
- the threshold may be average throughput of the terminal device 100 - 3 .
- the measurement reporting includes measurement reporting of a cell in the off state. More specifically, for example, the measurement reporting includes measurement reporting of a small cell in the off state. That is, the control unit 163 performs measurement reporting of a small cell in the off state when the predetermined conditions are satisfied.
- a cell in the off state may be switched to the on state according to an increase of traffic.
- the measurement reporting may include measurement reporting of a cell in the on state.
- the measurement is performed based on a reference signal.
- the reference signal is, for example, a CRS that is transmitted in a cell in the on state and/or a DRS that is transmitted in a cell in the off state (and a cell in the on state).
- the measurement (for example, measurement of a serving cell and a neighbour cell) may be performed by the control unit 163 or may be performed by another component included in the processing unit 160 .
- FIG. 16 is a flowchart illustrating an example of a schematic flow of a process according to the third embodiment.
- the information acquiring unit 161 determines whether predetermined conditions of the traffic information are satisfied (S 443 ). When the predetermined conditions are not satisfied (NO in S 443 ), the process ends.
- the on/off state of a cell is switched based on (only) a result of measurement performed by a terminal device
- the terminal device attempts to transmit a very small amount of packets, the terminal device does not immediately perform communication in a cell in the on state having a low signal strength, but a cell in the off state having a high signal strength is switched to the on state, and the terminal device is then likely to perform communication in the cell.
- a control entity 300 - 4 decides to switch a cell to the on state based on a measurement result of the cell in the off state and information about a buffer status of a terminal device 100 - 4 , which are reported by the terminal device 100 - 4 . Accordingly, for example, it is possible to more appropriately switch the on/off state of a cell. More specifically, for example, when a necessity is high, a cell in the off state is switched to the on state.
- the communication unit 310 transmits and receives information.
- the communication unit 310 transmits information to another node and receives information from the other node.
- the other node includes a core network and a base station.
- the other node includes a base station 200 - 4 .
- the storage unit 320 temporarily or permanently stores a program and data for an operation of the control entity 300 - 4 .
- the processing unit 330 provides various functions of the control entity 300 - 4 .
- the processing unit 330 includes an information acquiring unit 331 and a control unit 333 .
- the processing unit 330 may further include any other component in addition to the above-mentioned components. In other words, the processing unit 330 may also perform an operation other than operations of the above-mentioned components.
- the information acquiring unit 331 acquires a measurement result of a cell in the off state and information about a buffer status of the terminal device 100 - 4 , which are reported by the terminal device 100 - 4 .
- the cell is, for example, a small cell in the off state.
- the information is a buffer status report (BSR) from the terminal device 100 - 4 .
- BSR buffer status report
- the terminal device 100 - 4 reports the measurement result of a cell in the off state to the base station 200 together with the BSR of the terminal device 100 - 4 . Then, the base station 200 - 4 provides the measurement result and the BRS to the control entity 300 - 4 . Then, the information acquiring unit 331 acquires the measurement result and the BRS.
- the terminal device 100 - 4 may provide a BSR that is already acquired by the base station 200 to the control entity 300 - 4 with the measurement result without reporting the BSR with the measurement result.
- the information may be another piece of information indicating a buffer status of the terminal device 100 - 4 rather than the BSR.
- the control unit 333 decides to switch a cell to the on state based on the measurement result and the information (for example, the BSR).
- control unit 333 instructs a base station of the cell to perform the switching.
- control unit 333 may decide to switch the cell to the on state based on the measurement result and the information (for example, the BSR) from a plurality of terminal devices 100 - 4 rather than based on only the measurement result and the information (for example, the BSR) from a single terminal device 100 - 4 .
- FIG. 18 is a sequence diagram illustrating an example of a schematic flow of a process according to the fourth embodiment.
- the terminal device 100 - 4 reports a measurement result of a cell in the off state and a BSR to the base station 200 - 4 (S 461 ).
- the base station 200 - 4 provides the measurement result and the BSR to the control entity 300 - 4 (S 463 ).
- the control entity 300 - 4 (the information acquiring unit 331 ) acquires the measurement result and the BSR.
- the control entity 300 - 4 (the control unit 333 ) decides to switch the cell in the off state to the on state based on the measurement result and the BSR (S 465 ).
- a terminal device performs measurement based on a neighbour cell list (NCL) provided from a network (a base station).
- NCL neighbour cell list
- a base station of a cell in the off state transmits a DRS and a terminal device performs measurement of the cell in the off state based on the DRS. Then, measurement reporting is performed according to a measurement result and the cell in the off state may be switched to the on state.
- the terminal device may perform unpreferable measurement and measurement reporting. As an example, the terminal device performs measurement and measurement reporting of a cell, a handover of the terminal device to the cell is performed, and the cell may be then switched from the on state to the off state. As a result, an additional handover is necessary and system performance may decrease.
- a base station 200 - 5 decides a candidate of a cell whose measurement is to be performed by a terminal device 100 - 5 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting of a cell that is unlikely to be in the off state is performed rather than measurement reporting of a cell that is likely to be in the off state. As a result, a handover to the cell that is unlikely to be in the off state may be performed.
- FIG. 19 is a block diagram illustrating an example of a configuration of the base station 200 - 5 according to the fifth embodiment.
- the base station 200 - 5 includes an antenna unit 210 , a wireless communication unit 220 , a network communication unit 230 , a storage unit 240 , and a processing unit 260 .
- the processing unit 260 provides various functions of the base station 200 - 5 .
- the processing unit 260 includes an information acquiring unit 261 and a control unit 263 .
- the processing unit 260 may further include any other component in addition to the above-mentioned components. In other words, the processing unit 260 may also perform an operation other than operations of the above-mentioned components.
- the information acquiring unit 261 acquires information about a schedule of the on/off state of a cell (hereinafter referred to as “on/off schedule-related information”).
- the cell is, for example, a small cell.
- the on/off schedule-related information is information indicating a schedule of switching from the on state to the off state (hereinafter referred to as “off schedule information”).
- the off schedule information indicates a cell having a schedule of switching from the on state to the off state.
- the off schedule information may be information indicating only a cell having a schedule of switching from the on state to the off state or may be information indicating whether each cell has such a schedule.
- the on/off schedule-related information may be information (hereinafter referred to as “on state continuation time information”) indicating a time during which the on state of a cell continues (hereinafter referred to as an “on state continuation time”).
- on state continuation time information indicates a time during which the on state of a cell continues for each cell (that is, the on state continuation time).
- a cell continues in the on state at least until the on state continuation time.
- the cell may further continue in the on state after the on state continuation time arrives or may be switched to the off state when the on state continuation time arrives.
- the on state continuation time may be an absolute time (for example, a system frame number (SFN)) or may be a relative time based on any time.
- SFN system frame number
- the on state continuation time may be calculated based on parameters of a small cell such as a buffer status in the small cell, the number of accommodated users, an amount of traffic and on/off statistical data.
- another node for example, a control entity 300 - 5 ) generates on/off schedule-related information and provides the on/off schedule-related information to the base station 200 - 5 . Then, the on/off schedule-related information is stored in the storage unit 240 .
- the information acquiring unit 261 acquires the on/off schedule-related information from the storage unit 240 at any time thereafter.
- the control unit 263 decides a candidate of a cell whose measurement is to be performed by the terminal device 100 - 5 or a priority of the candidate of the cell based on the on/off schedule-related information.
- the on/off schedule-related information is the off schedule information (that is, information indicating a schedule of switching from the on state to the off state).
- the control unit 263 does not include a cell having a schedule of switching from the on state to the off state in a candidate of the cell. More specifically, for example, the control unit 263 decides an NCL such that a cell having a schedule of switching from the on state to the off state is not included in the NCL. Accordingly, for example, measurement reporting of only a cell that does not have a schedule of the off state is performed.
- control unit 263 may set a priority of a cell having a schedule of switching from the on state to the off state to be lower. More specifically, the control unit 263 may decide an NCL such that a priority of a cell having a schedule of switching from the on state to the off state becomes lower (for example, the lowest priority). Accordingly, for example, measurement reporting of a cell that does not have a schedule of the off state is preferentially performed.
- the on/off schedule-related information may be the on state continuation time information (that is, information indicating a time during which the on state of a cell continues (the on state continuation time)).
- control unit 263 may not include a cell whose on state continuation time arrives within a predetermined period in a candidate of the cell. More specifically, the control unit 263 may decide an NCL such that a cell whose on state continuation time arrives within the predetermined period is not included in the NCL. Accordingly, for example, measurement reporting of only a cell whose on state continues for a sufficient period is performed.
- control unit 263 may set a priority of a cell whose on state continuation time arrives within a predetermined period to be lower. More specifically, the control unit 263 may decide an NCL such that a priority of a cell whose on state continuation time arrives within the predetermined period becomes lower (for example, the lowest priority). Accordingly, for example, measurement reporting of a cell whose on state continues for a sufficient time is preferentially performed.
- the “predetermined period” may be replaced by “a period for the terminal device 100 - 5 to transmit data.” That is, the control unit 263 may not include a cell whose on state continuation time arrives within a period for the terminal device 100 - 5 to transmit data in a candidate of the cell or may set a priority of a cell whose on state continuation time arrives within the period for the terminal device 100 - 5 to transmit data to be lower.
- a candidate of a cell in the NCL and/or a priority in the NCL may be decided based on not only the on/off schedule-related information but also other information such as a buffer status report (BSR), quality of service (QoS) and/or statistical data of communication situations.
- BSR buffer status report
- QoS quality of service
- the measurement is RRM measurement, for example, measurement of reception power or reception quality. More specifically, for example, the measurement is measurement of RSRP or RSRQ
- the measurement is inter-frequency measurement. That is, the measurement is measurement of a frequency band (for example, a component carrier) that is not used by the terminal device 100 - 5 .
- a frequency band for example, a component carrier
- control unit 263 notifies the terminal device 100 - 5 of the decided candidate or priority of the cell.
- the control unit 263 notifies the terminal device 100 - 5 of an NCL indicating the decided candidate or priority of the cell.
- the control unit 263 notifies the terminal device 100 - 5 of the NCL through system information (for example, an SIB).
- the control unit 263 may notify the terminal device 100 - 5 of the NCL through individual signaling (for example, RRC signaling).
- FIG. 20 is a sequence diagram illustrating an example of a schematic flow of a process according to the fifth embodiment.
- the base station 200 - 5 acquires information about a schedule of the on/off state of a cell (that is, on/off schedule-related information) (S 481 ).
- the base station 200 - 5 (the control unit 263 ) decides a candidate of a cell whose measurement is to be performed by the terminal device 100 - 5 or a priority of the candidate of the cell based on the on/off schedule-related information (S 483 ). Specifically, for example, the base station 200 - 5 decides an NCL based on the on/off schedule-related information.
- the base station 200 - 5 (the control unit 263 ) notifies the terminal device 100 - 5 of the NCL (S 485 ).
- the terminal device 100 - 5 performs measurement based on the NCL (S 487 ). Specifically, for example, the terminal device 100 - 5 performs measurement of the candidate of the cell included in the NCL according to the priority of the candidate of the cell included in the NCL.
- the terminal device 100 - 5 performs measurement reporting (S 489 ).
- the base station 200 - 5 acquires on/off schedule-related information and decides a candidate of a cell whose measurement is to be performed by the terminal device 100 - 5 or a priority of the candidate of the cell based on the on/off schedule-related information.
- the fifth embodiment is not limited thereto.
- the control entity 300 - 5 may acquire on/off schedule-related information and decide a candidate of a cell whose measurement is to be performed by the terminal device 100 - 5 or a priority of the candidate of the cell based on the on/off schedule-related information.
- the control entity 300 - 5 may notify the base station 200 - 5 of the decided candidate or priority of the cell.
- the base station 200 - 5 decides a candidate of a cell whose measurement is to be performed by the terminal device 100 - 5 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell.
- a terminal device 100 - 6 decides a candidate of a cell whose measurement is to be performed by the terminal device 100 - 6 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell.
- FIG. 21 is a block diagram illustrating an example of a configuration of the terminal device 100 - 6 according to the sixth embodiment.
- the terminal device 100 - 6 includes the antenna unit 110 , the wireless communication unit 120 , the storage unit 130 and a processing unit 170 .
- the processing unit 170 provides various functions of the terminal device 100 - 6 .
- the processing unit 170 includes an information acquiring unit 171 and a control unit 173 .
- the processing unit 170 may further include a component other than these components. That is, the processing unit 170 may also perform an operation other than operations of these components.
- the information acquiring unit 171 acquires information about a schedule of the on/off state of a cell (hereinafter referred to as “on/off schedule-related information”).
- the cell is, for example, a small cell.
- a base station 200 - 6 notifies the terminal device 100 - 6 of the on/off schedule-related information. Specifically, for example, the base station 200 - 6 notifies the terminal device 100 - 6 of the on/off schedule-related information through system information (for example, an SIB) or through individual signaling (for example, RRC signaling). Then, the on/off schedule-related information is stored in the storage unit 130 .
- the information acquiring unit 171 acquires the on/off schedule-related information from the storage unit 130 at any time thereafter.
- the information acquiring unit 171 acquires the on/off schedule-related information.
- the information acquiring unit 171 acquires an NCL.
- the on/off schedule-related information may be included in the NCL or may be information other than the NCL.
- the terminal device 100 - 6 may be notified of the information together with the NCL, or the terminal device 100 - 6 may be notified of the information separately from the NCL.
- the control unit 173 decides a candidate of a cell whose measurement is to be performed by the terminal device 100 - 6 or a priority of the candidate of the cell based on the on/off schedule-related information.
- the on/off schedule-related information may be the off schedule information (that is, information indicating a schedule of switching from the on state to the off state).
- the control unit 173 does not include a cell having a schedule of switching from the on state to the off state in a candidate of the cell. More specifically, for example, the control unit 173 decides a cell that does not have a schedule of the switching among neighbour cells included in the NCL as a candidate of a cell whose measurement is to be performed by the terminal device 100 - 6 . Accordingly, for example, measurement and measurement reporting of only a cell that does not have a schedule of the off state are performed.
- control unit 173 may set a priority of a cell having a schedule of switching from the on state to the off state to be lower. More specifically, the control unit 173 may change a priority of a cell having a schedule of the switching among priorities of neighbour cells included in the NCL to a lower priority (for example, the lowest priority). Accordingly, for example, measurement and measurement reporting of a cell that does not have a schedule of the off state are preferentially performed.
- the on/off schedule-related information may be the on state continuation time information (that is, information indicating a time during which the on state of a cell continues (an on state continuation time)).
- the control unit 173 may not include a cell whose on state continuation time arrives within a period for the terminal device 100 - 6 to transmit data in a candidate of the cell. More specifically, for example, the control unit 173 may estimate a period for transmitting data (for example, a sufficient period for transmitting data) from a buffer status of the terminal device 100 - 6 . Then, the control unit 173 may decide a cell whose on state continuation time does not arrive within the estimated period among neighbour cells included in the NCL as a candidate of a cell whose measurement is to be performed by the terminal device 100 - 6 . Accordingly, for example, measurement reporting of only a cell whose on state continues for a sufficient period is performed.
- a period for transmitting data for example, a sufficient period for transmitting data
- the control unit 173 may set a priority of a cell whose on state continuation time arrives within a period for the terminal device 100 - 6 to transmit data to be lower. More specifically, more specifically, for example, the control unit 173 may estimate a period for transmitting data (for example, a sufficient period for transmitting data) from a buffer status of the terminal device 100 - 6 . Then, the control unit 173 may change a priority of a cell whose on state continuation time arrives within the estimated period among priorities of neighbour cells included in the NCL to a lower priority (for example, the lowest priority). Accordingly, for example, measurement reporting of a cell whose on state continues for a sufficient time is preferentially performed.
- the term “period for the terminal device 100 - 6 to transmit data” may be replaced by the term “predetermined period.” That is, the control unit 173 may not include a cell whose on state continuation time arrives within a predetermined period in a candidate of the cell or may set a priority of a cell whose on state continuation time arrives within the predetermined period to be lower.
- the measurement is RRM measurement, for example, measurement of reception power or reception quality. More specifically, for example, the measurement is measurement of RSRP or RSRQ.
- the measurement is inter-frequency measurement. That is, the measurement is measurement of a frequency band (for example, a component carrier) that is not used by the terminal device 100 - 5 .
- a frequency band for example, a component carrier
- control unit 173 performs measurement based on the decided candidate of the cell or the priority. Specifically, for example, the control unit 173 performs measurement of the decided candidate of the cell. Alternatively, the control unit 173 performs measurement of the candidate of the cell according to the decided priority.
- control unit 173 performs measurement reporting to the base station 200 - 6 . That is, the control unit 173 reports a result of the measurement to the base station 200 - 6 .
- At least one of measurement and measurement reporting may be performed by another component included in the processing unit 170 rather than the control unit 173 .
- FIG. 22 is a sequence diagram illustrating an example of a schematic flow of a process according to the sixth embodiment.
- the base station 200 - 6 notifies the terminal device 100 - 6 of an NCL (S 501 ).
- the terminal device 100 - 6 (the information acquiring unit 171 ) acquires the NCL.
- the base station 200 - 6 notifies the terminal device 100 - 6 of information about a schedule of the on/off state of a cell (that is, on/off schedule-related information) (S 503 ).
- the terminal device 100 - 6 (the information acquiring unit 171 ) acquires the information.
- the terminal device 100 - 6 (the control unit 173 ) decides a candidate of a cell whose measurement is to be performed by the terminal device 100 - 6 or a priority of the candidate of the cell based on the on/off schedule-related information (S 505 ).
- the terminal device 100 - 6 performs measurement based on the decided candidate or priority (or the NCL) of the cell (S 507 ).
- the terminal device 100 - 6 performs measurement reporting (S 509 ).
- a cell for example, a small cell
- adaptive switching of the on/off state of a cell is being studied.
- the cell is switched to the off state, and the terminal device is likely to hardly perform communication in the cell.
- a terminal device 100 - 7 requests that a serving cell that is a cell associated with switching the on/off state continue in the on state. Accordingly, for example, the terminal device 100 - 7 can perform communication for a certain amount of time even in a cell associated with switching the on/off state.
- FIG. 23 is a block diagram illustrating an example of a configuration of the terminal device 100 - 7 according to the seventh embodiment.
- the terminal device 100 - 7 includes the antenna unit 110 , the wireless communication unit 120 , the storage unit 130 and a processing unit 180 .
- An information acquiring unit 181 acquires information indicating that a serving cell is a cell associated with switching the on/off state.
- the serving cell is a cell of a base station 200 - 7 .
- the serving cell is a small cell.
- the base station 200 - 7 transmits information indicating that a cell of the base station 200 - 7 is a cell associated with switching the on/off state to the terminal device 100 - 7 , and the terminal device 100 - 7 receives the information. Then, the information is stored in the storage unit 130 .
- the information acquiring unit 181 acquires the information at any time thereafter.
- a control unit 183 requests that a serving cell continue in the on state.
- control unit 183 requests that a serving cell continue in the on state when a serving cell of the terminal device 100 - 7 is a cell associated with switching the on/off state.
- control unit 183 requests the base station 200 - 7 (a base station of a serving cell) to continue in the on state of the serving cell. More specifically, for example, the control unit 183 transmits an on state continuation request message for requesting continuation of the on state to the base station 200 - 7 through the antenna unit 110 and the wireless communication unit 120 .
- FIG. 24 is a block diagram illustrating an example of a configuration of the base station 200 - 7 according to the seventh embodiment.
- the base station 200 - 7 includes an antenna unit 210 , a wireless communication unit 220 , a network communication unit 230 , a storage unit 240 , and a processing unit 270 .
- the processing unit 270 provides various functions of the base station 200 - 7 .
- the processing unit 270 includes an information acquiring unit 271 and a control unit 273 .
- the processing unit 270 may further include any other component in addition to the above-mentioned components. In other words, the processing unit 270 may also perform an operation other than operations of the above-mentioned components.
- the information acquiring unit 271 acquires a request for maintaining the on state of a cell from the terminal device 100 - 7 .
- the cell is a cell of the base station 200 - 7 .
- the request is the on state continuation request message for requesting continuation of the on state.
- the terminal device 100 - 7 transmits the on state continuation request message to the base station 200 - 7 , and the information acquiring unit 271 acquires the on state continuation request message.
- the control unit 273 maintains the on state of the cell (that is, a cell of the base station 200 - 7 ) in response to the request.
- control unit 273 maintains the cell in the on state without switching the cell to the off state for a predetermined period according to the on state continuation request message.
- the control unit 273 may determine whether the on state of the cell continues in response to the request, and may maintain the on state of the cell only when it is determined that the on state of the cell continues. In addition, the control unit 273 may notify the terminal device 100 - 7 of a result of the determination as a response to the request.
- FIG. 25 is a sequence diagram illustrating an example of a schematic flow of a process according to the seventh embodiment.
- the base station 200 - 7 transmits information indicating that a cell of the base station 200 - 7 is a cell associated with switching the on/off state to the terminal device 100 - 7 (S 521 ).
- the terminal device 100 - 7 (the information acquiring unit 181 ) acquires the information.
- the terminal device 100 - 7 (the control unit 183 ) requests that a serving cell continue in the on state (S 523 ). For example, the terminal device 100 - 7 transmits an on state continuation request message for requesting continuation of the on state to the base station 200 - 7 .
- the base station 200 - 7 (the information acquiring unit 271 ) acquires a request (that is, the on state continuation request message) from the terminal device 100 - 7 .
- the base station 200 - 7 (the control unit 273 ) maintains the on state of a cell of the base station 200 - 7 in response to the request (S 525 ).
- the technology according to the present disclosure is applicable to a variety of products.
- the control entity 300 may be implemented as any type of server such as tower servers, rack servers, and blade servers. At least a part of components of the control entity 300 may be implemented in a module (e.g. integrated circuit module that includes a single die, or card or blade that is inserted into a slot of a blade server) mounted on a server. In addition, the control entity 300 may be implemented as any of various base stations which will be described.
- the base station 200 may also be implemented, for example, as any type of evolved Node B (eNB) such as macro eNBs and small eNBs. Small eNBs may cover smaller cells than the macrocells of pico eNBs, micro eNBs, or home (femt) eNBs. Instead, the base station 200 may be implemented as another type of base station such as Nodes B or base transceiver stations (BTSs).
- the base station 200 may include the main apparatus (which is also referred to as base station apparatus) that controls wireless communication and one or more remote radio heads (RRHs) that are disposed at different locations from that of the main apparatus.
- RRHs remote radio heads
- various types of terminals as will be discussed later may temporarily or semi-persistently execute the base station function to operate as the base station 200 .
- at least part of components of the base station 200 may be implemented in a base station device or a module for the base station device.
- the terminal device 100 may be implemented as a mobile terminal such as smartphones, tablet personal computers (PCs), notebook PCs, portable game terminals, portable/dongle mobile routers, and digital cameras, or an in-vehicle terminal such as car navigation apparatuses.
- the terminal device 100 may also be implemented as a terminal (which is also referred to as machine type communication (MTC) terminal) that performs machine to machine (M2M) communication.
- MTC machine type communication
- M2M machine to machine
- at least part of components of the terminal device 100 may be implemented as a module (e.g. integrated circuit module constituted with a single die) that is mounted on these terminals.
- FIG. 26 is a block diagram illustrating an example of a schematic configuration of a server 700 to which the technology according to the present disclosure may be applied.
- the server 700 includes a processor 701 , a memory 702 , a storage 703 , a network interface 704 , and a bus 706 .
- the processor 701 may be, for example, a central processing unit (CPU) or a digital signal processor (DSP), and controls various functions of the server 700 .
- the memory 702 includes a random access memory (RAM) and a read only memory (ROM), and stores a program executed by the processor 701 and data.
- the storage 703 can include a storage medium such as semiconductor memories and hard disks.
- the network interface 704 is a wired communication interface for connecting the server 700 to a wired communication network 705 .
- the wired communication network 705 may be a core network such as evolved packet cores (EPCs), or a packet data network (PDN) such as the Internet.
- EPCs evolved packet cores
- PDN packet data network
- the bus 706 connects the processor 701 , the memory 702 , the storage 703 , and the network interface 704 to each other.
- the bus 706 may include two or more buses each having different speed (e.g. high speed bus and low speed bus).
- one or more components included in the processing unit 330 described above with reference to FIG. 17 may be mounted in the processor 701 .
- a program causing the processor to function as one or more of the components above may be installed in the server 700 , and the processor 701 may execute the program.
- the server 700 may include a module including the processor 701 and the memory 702 , and one or more of the components above may be mounted in the module.
- the module may store the program causing the processor to function as one or more of the components above in the memory 702 , and the program may be executed by the processor 701 .
- the server 700 or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided.
- a readable recording medium in which the program is recorded may be provided.
- FIG. 27 is a block diagram illustrating a first example of a schematic configuration of an eNB to which the technology according to the present disclosure may be applied.
- An eNB 800 includes one or more antennas 810 and a base station apparatus 820 . Each antenna 810 and the base station apparatus 820 may be connected to each other via an RF cable.
- Each of the antennas 810 includes a single or a plurality of antenna elements (e.g. a plurality of antenna elements constituting a MIMO antenna) and is used for the base station apparatus 820 to transmit and receive a wireless signal.
- the eNB 800 may include the plurality of the antennas 810 as illustrated in FIG. 27 , and the plurality of antennas 810 may, for example, correspond to a plurality of frequency bands used by the eNB 800 . It should be noted that while FIG. 27 illustrates an example in which the eNB 800 includes the plurality of antennas 810 , the eNB 800 may include the single antenna 810 .
- the base station apparatus 820 includes a controller 821 , a memory 822 , a network interface 823 , and a wireless communication interface 825 .
- the controller 821 may be, for example, a CPU or a DSP, and operates various functions of an upper layer of the base station apparatus 820 .
- the controller 821 generates a data packet from data in a signal processed by the wireless communication interface 825 , and transfers the generated packet via the network interface 823 .
- the controller 821 may generate a bundled packet by bundling data from a plurality of base band processors to transfer the generated bundled packet.
- the controller 821 may al so have a logical function of performing control such as radio resource control, radio bearer control, mobility management, admission control, and scheduling. The control may be performed in cooperation with a surrounding eNB or a core network.
- the memory 822 includes a RAM and a ROM, and stores a program executed by the controller 821 and a variety of control data (such as, for example, terminal list, transmission power data, and scheduling data).
- the network interface 823 is a communication interface for connecting the base station apparatus 820 to the core network 824 .
- the controller 821 may communicate with a core network node or another eNB via the network interface 823 .
- the controller 821 may be mutually connected to the eNB 800 and a core network node or another eNB through a logical interface (e.g. S1 interface or X2 interface).
- the network interface 823 may be a wired communication interface or a wireless communication interface for wireless backhaul.
- the network interface 823 may use a higher frequency band for wireless communication than a frequency band used by the wireless communication interface 825 .
- the wireless communication interface 825 supports a cellular communication system such as long term evolution (LTE) or LTE-Advanced, and provides wireless connection to a terminal located within the cell of the eNB 800 via the antenna 810 .
- the wireless communication interface 825 may typically include a base band (BB) processor 826 and an RF circuit 827 .
- the BB processor 826 may, for example, perform encoding/decoding, modulation/demodulation, multiplexing/demultiplexing, and the like, and performs a variety of signal processing on each layer (e.g. L1, medium access control (MAC), radio link control (RLC), and packet data convergence protocol (PDCP)).
- the BB processor 826 may have part or all of the logical functions as discussed above instead of the controller 821 .
- the BB processor 826 may be a module including a memory having a communication control program stored therein, a processor to execute the program, and a related circuit, and the function of the BB processor 826 may be changeable by updating the program.
- the module may be a card or blade to be inserted into a slot of the base station apparatus 820 , or a chip mounted on the card or the blade.
- the RF circuit 827 may include a mixer, a filter, an amplifier, and the like, and transmits and receives a wireless signal via the antenna 810 .
- the wireless communication interface 825 may include a plurality of the BB processors 826 as illustrated in FIG. 27 , and the plurality of BB processors 826 may, for example, correspond to a plurality of frequency bands used by the eNB 800 .
- the wireless communication interface 825 may also include a plurality of the RF circuits 827 , as illustrated in FIG. 27 , and the plurality of RF circuits 827 may, for example, correspond to a plurality of antenna elements.
- FIG. 27 illustrates an example in which the wireless communication interface 825 includes the plurality of BB processors 826 and the plurality of RF circuits 827 , but the wireless communication interface 825 may include the single BB processor 826 or the single RF circuit 827 .
- one or more components included in the processing unit 250 described above with reference to FIG. 13 may be mounted in the wireless communication interface 825 .
- the eNB 800 may be equipped with a module including some or all components of the wireless communication interface 825 (for example, the BB processor 826 ) and/or the controller 821 , and one or more of the components above may be mounted in the module.
- the module may store a program causing the processor to function as one or more of the components above (that is, a program causing the processor to perform the operation of one or more of the components above) and execute the program.
- the program causing the processor to function as one or more of the components above may be installed in the eNB 800 , and the wireless communication interface 825 (for example, the BB processor 826 ) and/or the controller 821 may execute the program.
- the eNB 800 , the base station apparatus 820 , or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided.
- a readable recording medium in which the program is recorded may be provided.
- one or more components included in the processing unit 260 described above with reference to FIG. 19 (the information acquiring unit 261 and/or the control unit 263 ), and one or more components included in the processing unit 270 described above with reference to FIG. 24 (the information acquiring unit 271 and/or the control unit 273 ) are the same as one or more of the components above included in the processing unit 250 .
- the wireless communication unit 220 described above with reference to FIG. 13 may be mounted in the wireless communication interface 825 (for example, the RF circuit 827 ).
- the antenna unit 210 may be mounted in the antenna 810 .
- the network communication unit 230 may be mounted in the controller 821 and/or the network interface 823 .
- FIG. 28 is a block diagram illustrating a second example of a schematic configuration of an eNB to which the technology according to the present disclosure may be applied.
- An eNB 830 includes one or more antennas 840 , a base station apparatus 850 , and an RRH 860 .
- Each of the antennas 840 and the RRH 860 may be connected to each other via an RF cable.
- the base station apparatus 850 and the RRH 860 may be connected to each other by a high speed line such as optical fiber cables.
- Each of the antennas 840 includes a single or a plurality of antenna elements (e.g. antenna elements constituting a MIMO antenna), and is used for the RRH 860 to transmit and receive a wireless signal.
- the eNB 830 may include a plurality of the antennas 840 as illustrated in FIG. 28 , and the plurality of antennas 840 may, for example, correspond to a plurality of frequency bands used by the eNB 830 .
- FIG. 28 illustrates an example in which the eNB 830 includes the plurality of antennas 840 , but the eNB 830 may include the single antenna 840 .
- the base station apparatus 850 includes a controller 851 , a memory 852 , a network interface 853 , a wireless communication interface 855 , and a connection interface 857 .
- the controller 851 , the memory 852 , and the network interface 853 are the same as the controller 821 , the memory 822 , and the network interface 823 described with reference to FIG. 27 .
- the wireless communication interface 855 supports a cellular communication system such as LTE and LTE-Advanced, and provides wireless connection to a terminal located in a sector corresponding to the RRH 860 via the RRH 860 and the antenna 840 .
- the wireless communication interface 855 may typically include a BB processor 856 .
- the BB processor 856 is the same as the BB processor 826 described with reference to FIG. 27 except that the BB processor 856 is connected to an RF circuit 864 of the RRH 860 via the connection interface 857 .
- the wireless communication interface 855 may include a plurality of the BB processors 856 , as illustrated in FIG.
- FIG. 28 illustrates an example in which the wireless communication interface 855 includes the plurality of BB processors 856 , but the wireless communication interface 855 may include the single BB processor 856 .
- the connection interface 857 is an interface for connecting the base station apparatus 850 (wireless communication interface 855 ) to the RRH 860 .
- the connection interface 857 may be a communication module for communication on the high speed line which connects the base station apparatus 850 (wireless communication interface 855 ) to the RRH 860 .
- the RRH 860 includes a connection interface 861 and a wireless communication interface 863 .
- connection interface 861 is an interface for connecting the RRH 860 (wireless communication interface 863 ) to the base station apparatus 850 .
- the connection interface 861 may be a communication module for communication on the high speed line.
- the wireless communication interface 863 transmits and receives a wireless signal via the antenna 840 .
- the wireless communication interface 863 may typically include the RF circuit 864 .
- the RF circuit 864 may include a mixer, a filter, an amplifier and the like, and transmits and receives a wireless signal via the antenna 840 .
- the wireless communication interface 863 may include a plurality of the RF circuits 864 as illustrated in FIG. 28 , and the plurality of RF circuits 864 may, for example, correspond to a plurality of antenna elements.
- FIG. 28 illustrates an example in which the wireless communication interface 863 includes the plurality of RF circuits 864 , but the wireless communication interface 863 may include the single RF circuit 864 .
- one or more components included in the processing unit 250 described above with reference to FIG. 13 may be mounted in the wireless communication interface 855 and/or the wireless communication interface 863 .
- the eNB 830 may be equipped with a module including some or all components of the wireless communication interface 855 (for example, the BB processor 856 ) and/or the controller 851 , and one or more of the components above may be mounted in the module.
- the module may store a program causing the processor to function as one or more of the components above (that is, a program causing the processor to perform the operation of one or more of the components above) and execute the program.
- the program causing the processor to function as one or more of the components above may be installed in the eNB 830 , and the wireless communication interface 855 (for example, the BB processor 856 ) and/or the controller 851 may execute the program.
- the eNB 830 , the base station apparatus 850 , or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided.
- a readable recording medium in which the program is recorded may be provided.
- one or more components included in the processing unit 260 described above with reference to FIG. 19 (the information acquiring unit 261 and/or the control unit 263 ), and one or more components included in the processing unit 270 described above with reference to FIG. 24 (the information acquiring unit 271 and/or the control unit 273 ) are the same as one or more of the components above included in the processing unit 250 .
- the wireless communication unit 220 described above with reference to FIG. 13 may be mounted in the wireless communication interface 863 (for example, the RF circuit 864 ).
- the antenna unit 210 may be mounted in the antenna 840 .
- the network communication unit 230 may be mounted in the controller 851 and/or the network interface 853 .
- FIG. 29 is a block diagram illustrating an example of a schematic configuration of a smartphone 900 to which the technology according to the present disclosure may be applied.
- the smartphone 900 includes a processor 901 , a memory 902 , a storage 903 , an external connection interface 904 , a camera 906 , a sensor 907 , a microphone 908 , an input device 909 , a display device 910 , a speaker 911 , a wireless communication interface 912 , one or more antenna switches 915 , one or more antennas 916 , a bus 917 , a battery 918 , and a secondary controller 919 .
- the processor 901 may be, for example, a CPU or a system on chip (SoC), and controls the functions of an application layer and other layers of the smartphone 900 .
- the memory 902 includes a RAM and a ROM, and stores a program executed by the processor 901 and data.
- the storage 903 may include a storage medium such as semiconductor memories and hard disks.
- the external connection interface 904 is an interface for connecting the smartphone 900 to an externally attached device such as memory cards and universal serial bus (USB) devices.
- the camera 906 includes an image sensor such as charge coupled devices (CCDs) and complementary metal oxide semiconductor (CMOS), and generates a captured image.
- the sensor 907 may include a sensor group including, for example, a positioning sensor, a gyro sensor, a geomagnetic sensor, and an acceleration sensor.
- the microphone 908 converts a sound that is input into the smartphone 900 to an audio signal.
- the input device 909 includes, for example, a touch sensor which detects that a screen of the display device 910 is touched, a key pad, a keyboard, a button, or a switch, and accepts an operation or an information input from a user.
- the display device 910 includes a screen such as liquid crystal displays (LCDs) and organic light emitting diode (OLED) displays, and displays an output image of the smartphone 900 .
- the speaker 911 converts the audio signal that is output from the smartphone 900 to a sound.
- the wireless communication interface 912 supports a cellular communication system such as LTE or LTE-Advanced, and performs wireless communication.
- the wireless communication interface 912 may typically include the BB processor 913 , the RF circuit 914 , and the like.
- the BB processor 913 may, for example, perform encoding/decoding, modulation/demodulation, multiplexing/demultiplexing, and the like, and performs a variety of types of signal processing for wireless communication.
- the RF circuit 914 may include a mixer, a filter, an amplifier, and the like, and transmits and receives a wireless signal via the antenna 916 .
- the wireless communication interface 912 may be a one-chip module in which the BB processor 913 and the RF circuit 914 are integrated.
- the wireless communication interface 912 may include a plurality of BB processors 913 and a plurality of RF circuits 914 as illustrated in FIG. 29 .
- FIG. 29 illustrates an example in which the wireless communication interface 912 includes a plurality of BB processors 913 and a plurality of RF circuits 914 , but the wireless communication interface 912 may include a single BB processor 913 or a single RF circuit 914 .
- the wireless communication interface 912 may support other types of wireless communication system such as a short range wireless communication system, a near field communication system, and a wireless local area network (LAN) system in addition to the cellular communication system, and in this case, the wireless communication interface 912 may include the BB processor 913 and the RF circuit 914 for each wireless communication system.
- Each antenna switch 915 switches a connection destination of the antenna 916 among a plurality of circuits (for example, circuits for different wireless communication systems) included in the wireless communication interface 912 .
- Each of the antennas 916 includes one or more antenna elements (for example, a plurality of antenna elements constituting a MIMO antenna) and is used for transmission and reception of the wireless signal by the wireless communication interface 912 .
- the smartphone 900 may include a plurality of antennas 916 as illustrated in FIG. 29 .
- FIG. 29 illustrates an example in which the smartphone 900 includes a plurality of antennas 916 , but the smartphone 900 may include a single antenna 916 .
- the smartphone 900 may include the antenna 916 for each wireless communication system.
- the antenna switch 915 may be omitted from a configuration of the smartphone 900 .
- the bus 917 connects the processor 901 , the memory 902 , the storage 903 , the external connection interface 904 , the camera 906 , the sensor 907 , the microphone 908 , the input device 909 , the display device 910 , the speaker 911 , the wireless communication interface 912 , and the secondary controller 919 to each other.
- the battery 918 supplies electric power to each block of the smartphone 900 illustrated in FIG. 29 via a feeder line that is partially illustrated in the figure as a dashed line.
- the secondary controller 919 for example, operates a minimally necessary function of the smartphone 900 in a sleep mode.
- one or more components included in the processing unit 140 described above with reference to FIG. 10 may be mounted in the wireless communication interface 912 .
- the smartphone 900 may be equipped with a module including some or all components of the wireless communication interface 912 (for example, the BB processor 913 ), the processor 901 , and/or the secondary controller 919 , and one or more of the components above may be mounted in the module.
- the module may store a program causing the processor to function as one or more of the components above (that is, a program causing the processor to perform the operation of one or more of the components above) and execute the program.
- the program causing the processor to function as one or more of the components above may be installed in the smartphone 900 , and the wireless communication interface 912 (for example, the BB processor 913 ), the processor 901 , and/or the secondary controller 919 may execute the program.
- the smartphone 900 or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided.
- a readable recording medium in which the program is recorded may be provided.
- one or more components included in the processing unit 150 described above with reference to FIG. 12 are the same as one or more of the components above included in the processing unit 140 .
- the wireless communication unit 120 described above with reference to FIG. 10 may be mounted in the wireless communication interface 912 (for example, the RF circuit 914 ).
- the antenna unit 110 may be mounted in the antenna 916 .
- FIG. 30 is a block diagram illustrating an example of a schematic configuration of a car navigation apparatus 920 to which the technology according to the present disclosure may be applied.
- the car navigation apparatus 920 includes a processor 921 , a memory 922 , a global positioning system (GPS) module 924 , a sensor 925 , a data interface 926 , a content player 927 , a storage medium interface 928 , an input device 929 , a display device 930 , a speaker 931 , a wireless communication interface 933 , one or more antenna switches 936 , one or more antennas 937 , and a battery 938 .
- GPS global positioning system
- the processor 921 may be, for example, a CPU or an SoC, and controls the navigation function and the other functions of the car navigation apparatus 920 .
- the memory 922 includes a RAM and a ROM, and stores a program executed by the processor 921 and data.
- the GPS module 924 uses a GPS signal received from a GPS satellite to measure the position (e.g. latitude, longitude, and altitude) of the car navigation apparatus 920 .
- the sensor 925 may include a sensor group including, for example, a gyro sensor, a geomagnetic sensor, and an air pressure sensor.
- the data interface 926 is, for example, connected to an in-vehicle network 941 via a terminal that is not illustrated, and acquires data such as vehicle speed data generated on the vehicle side.
- the content player 927 reproduces content stored in a storage medium (e.g. CD or DVD) inserted into the storage medium interface 928 .
- the input device 929 includes, for example, a touch sensor which detects that a screen of the display device 930 is touched, a button, or a switch, and accepts operation or information input from a user.
- the display device 930 includes a screen such as LCDs and OLED displays, and displays an image of the navigation function or the reproduced content.
- the speaker 931 outputs a sound of the navigation function or the reproduced content.
- the wireless communication interface 933 supports a cellular communication system such as LTE or LTE-Advanced, and performs wireless communication.
- the wireless communication interface 933 may typically include the BB processor 934 , the RF circuit 935 , and the like.
- the BB processor 934 may, for example, perform encoding/decoding, modulation/demodulation, multiplexing/demultiplexing, and the like, and performs a variety of types of signal processing for wireless communication.
- the RF circuit 935 may include a mixer, a filter, an amplifier, and the like, and transmits and receives a wireless signal via the antenna 937 .
- the wireless communication interface 933 may be a one-chip module in which the BB processor 934 and the RF circuit 935 are integrated.
- the wireless communication interface 933 may include a plurality of BB processors 934 and a plurality of RF circuits 935 as illustrated in FIG. 30 .
- FIG. 30 illustrates an example in which the wireless communication interface 933 includes a plurality of BB processors 934 and a plurality of RF circuits 935 , but the wireless communication interface 933 may be a single BB processor 934 or a single RF circuit 935 .
- the wireless communication interface 933 may support other types of wireless communication system such as a short range wireless communication system, a near field communication system, and a wireless LAN system in addition to the cellular communication system, and in this case, the wireless communication interface 933 may include the BB processor 934 and the RF circuit 935 for each wireless communication system.
- Each antenna switch 936 switches a connection destination of the antenna 937 among a plurality of circuits (for example, circuits for different wireless communication systems) included in the wireless communication interface 933 .
- Each of the antennas 937 includes one or more antenna elements (for example, a plurality of antenna elements constituting a MIMO antenna) and is used for transmission and reception of the wireless signal by the wireless communication interface 933 .
- the car navigation apparatus 920 includes a plurality of antennas 937 as illustrated in FIG. 30 .
- FIG. 30 illustrates an example in which the car navigation apparatus 920 includes a plurality of antennas 937 , but the car navigation apparatus 920 may include a single antenna 937 .
- the smartphone 920 may include the antenna 937 for each wireless communication system.
- the antenna switch 936 may be omitted from a configuration of the car navigation apparatus 920 .
- the battery 950 supplies electric power to each block of the car navigation apparatus 930 illustrated in FIG. 30 via a feeder line that is partially illustrated in the figure as a dashed line.
- the battery 950 accumulates the electric power supplied from the vehicle.
- one or more components included in the processing unit 140 described above with reference to FIG. 10 may be mounted in the wireless communication interface 933 .
- the processor 921 may be mounted in the car navigation apparatus 920 .
- the car navigation apparatus 920 may be equipped with a module including some or all components of the wireless communication interface 933 (for example, the BB processor 934 ), and/or the processor 921 , and one or more of the components above may be mounted in the module.
- the module may store a program causing the processor to function as one or more of the components above (that is, a program causing the processor to perform the operation of one or more of the components above) and execute the program.
- the program causing the processor to function as one or more of the components above may be installed in the car navigation apparatus 920 , and the wireless communication interface 933 (for example, the BB processor 934 ), and/or the processor 921 may execute the program.
- the car navigation apparatus 920 or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided.
- a readable recording medium in which the program is recorded may be provided.
- one or more components included in the processing unit 150 described above with reference to FIG. 12 are the same as one or more of the components above included in the processing unit 140 .
- the wireless communication unit 120 described above with reference to FIG. 12 may be mounted in the wireless communication interface 933 (for example, the RF circuit 935 ).
- the antenna unit 110 may be mounted in the antenna 937 .
- the technique according to the present disclosure may be implemented as an in-vehicle system (or a vehicle) 940 including one or more blocks of the above-described car navigation apparatus 920 , an in-vehicle network 941 and a vehicle side module 942 .
- the in-vehicle system (or the vehicle) 940 may be provided as an apparatus including one more of the components above included in the processing unit 140 (or the processing unit 150 , the processing unit 160 , the processing unit 170 , or the processing unit 180 ).
- the vehicle side module 942 generates vehicle side data such as vehicle speed, engine speed and failure information and outputs the generated data to the in-vehicle network 961 .
- the terminal device 100 - 1 performs measurement reporting before a serving cell is in the off state. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting useful for selecting a new serving cell is performed.
- the terminal device 100 - 2 performs measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in the on state.
- the terminal device 100 - 2 performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in the off state.
- the first event and the second event have different offsets or thresholds. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting of a cell in the off state is suppressed.
- the terminal device 100 - 3 performs measurement reporting when predetermined conditions of traffic of the terminal device 100 - 3 are satisfied. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting useful for selecting a carrier (a cell) to be added according to an increase of traffic is performed.
- the control entity 300 - 4 decides to switch the cell to the on state based on a measurement result of a cell in the off state and information about a buffer status of the terminal device 100 - 4 , which are reported by the terminal device 100 - 4 . Accordingly, for example, it is possible to more appropriately switch the on/off state of a cell. More specifically, for example, when a necessity is high, the cell in the off state is switched to the on state.
- the base station 200 - 5 decides a candidate of a cell whose measurement is to be performed by the terminal device 100 - 5 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell.
- the base station 200 - 6 decides a candidate of a cell whose measurement is to be performed by the terminal device 100 - 6 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched.
- measurement reporting of a cell that is unlikely to be in the off state is performed rather than measurement reporting of a cell that is likely to be in the off state.
- a handover to the cell that is unlikely to be in the off state may be performed.
- the terminal device 100 - 7 requests that a serving cell that is a cell associated with switching the on/off state continue in the on state. Accordingly, for example, the terminal device 100 - 7 can perform communication for a certain amount of time even in a cell associated with switching the on/off state.
- control entity may be mounted in the base station.
- the communication system may be a system that supports another communication standard.
- a computer program for making a processor such as, for example, a CPU and a DSP
- apparatuses such as, for example, the terminal device, the base station or the control entity, or the modules thereof
- a computer program for making the processor execute operation of the components of the above-described apparatuses.
- a recording medium having the above-described computer program recorded therein.
- an apparatus such as, for example, a finished product and a module (such as parts, processing circuits and chips) for the finished product) including a memory having the above-described computer program stored therein and one or more processors which can execute the above-described computer program.
- a method including the operation of one or more of the components (for example, an information acquiring unit and/or the control unit) of the above-described apparatuses is included in the technique according to the present disclosure.
- present technology may also be configured as below.
- a device including:
- an acquiring unit configured to acquire information indicating that a serving cell is scheduled to be in an off state
- a control unit configured to perform measurement reporting before the serving cell is in the off state.
- the serving cell is a primary cell of carrier aggregation.
- control unit performs measurement reporting according to a generation of an event indicating that a serving cell is scheduled to be in the off state.
- the measurement reporting is measurement reporting of a cell other than the serving cell.
- a device including:
- control unit configured to perform measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in an on state
- control unit performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in an off state
- the first event and the second event have different offsets or thresholds.
- the neighbour cell in the on state becomes better than a serving cell by a first offset in the measurement result in the first event
- the neighbour cell in the off state becomes better than the serving cell by a second offset in the measurement result in the second event
- the second offset is greater than the first offset.
- the second threshold is greater than the first threshold.
- a serving cell becomes worse than a first threshold and the neighbour cell in the on state becomes better than a second threshold in the measurement result in the first event
- the serving cell becomes worse than a third threshold and the neighbour cell in the off state becomes better than a fourth threshold in the measurement result in the second event
- the fourth threshold is greater than the second threshold or the third threshold is smaller than the first threshold.
- the neighbour cell in the on state becomes better than a secondary cell by a first offset in the measurement result in the first event
- the neighbour cell in the off state becomes better than the secondary cell by a second offset in the measurement result in the second event
- a device including:
- an acquiring unit configured to acquire an offset or a threshold for an event regarding a measurement result of a neighbour cell
- control unit configured to notify a terminal device of the offset or the threshold
- the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and
- the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- a device including:
- an acquiring unit configured to acquire information about traffic of a terminal device
- control unit configured to perform measurement reporting when predetermined conditions of the information are satisfied.
- the information about the traffic is a traffic load of the terminal device
- the predetermined conditions include a condition that the traffic load of the terminal device be equal to or greater than a threshold.
- the information about the traffic is an amount of traffic of the terminal device
- the predetermined conditions include a condition that the amount of traffic of the terminal device be equal to or greater than a threshold.
- the threshold is average throughput of the terminal device.
- the measurement reporting includes measurement reporting of a cell in an off state.
- a device including:
- an acquiring unit configured to acquire a measurement result of a cell in an off state and information about a buffer status of a terminal device, which are reported by the terminal device, and
- control unit configured to decide to switch the cell to an on state based on the measurement result and the information.
- the information is a buffer status report.
- a device including:
- an acquiring unit configured to acquire information about a schedule of an on/off state of a cell
- control unit configured to decide a candidate of a cell whose measurement is to be performed by a terminal device or a priority of a candidate of the cell based on the information.
- the information is information indicating a schedule of switching from an on state to an off state.
- control unit does not include a cell having a schedule of switching from the on state to the off state in the candidate of the cell or sets a priority of a cell having a schedule of switching from the on state to the off state to be lower.
- the information is information indicating a time during which the on state of a cell continues.
- control unit does not include a cell whose on state continuation time arrives within a predetermined period in a candidate of the cell or sets a priority of the cell whose on state continuation time arrives within the predetermined period to be lower.
- control unit does not include a cell whose on state continuation time arrives within a period for the terminal device to transmit data in the candidate of the cell or sets a priority of the cell whose on state continuation time arrives within the period for the terminal device to transmit the data to be lower.
- a device including:
- an acquiring unit configured to acquire information indicating that a serving cell is a cell associated with switching of an on/off state
- control unit configured to request that a serving cell continue in an on state.
- a device including:
- an acquiring unit configured to acquire a request for maintaining an on state of a cell from a terminal device
- control unit configured to maintain the on state of the cell in response to the request.
- the device according to any one of (1) to (5), wherein the device is a terminal device or a module for a terminal device.
- a method including:
- a readable recording medium recording a program causing a processor to execute:
- the device according to any one of (6) to (12), wherein the device is a terminal device or a module for a terminal device.
- a method including:
- first event and the second event have different offsets or thresholds.
- first event and the second event have different offsets or thresholds.
- a readable recording medium recording a program causing a processor to execute:
- first event and the second event have different offsets or thresholds.
- the device is a base station, a base station device for a base station or a module for the base station device.
- a method including:
- the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and
- the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- a readable recording medium recording a program causing a processor to execute:
- the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and
- the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- the device is the terminal device or a module for the terminal device.
- a method including:
- a readable recording medium recording a program causing a processor to execute:
- a method including:
- a readable recording medium recording a program causing a processor to execute:
- the device is a base station, a base station device for a base station or a module for the base station device.
- the device is the terminal device or a module for the terminal device.
- a method including:
- a readable recording medium recording a program causing a processor to execute:
- a method including:
- a readable recording medium recording a program causing a processor to execute:
- the device is a base station, a base station device for the base station or a module for the base station device.
- a method including:
- a readable recording medium recording a program causing a processor to execute:
Landscapes
- Engineering & Computer Science (AREA)
- Signal Processing (AREA)
- Computer Networks & Wireless Communication (AREA)
- Databases & Information Systems (AREA)
- Environmental & Geological Engineering (AREA)
- Mobile Radio Communication Systems (AREA)
Abstract
[Object] To make it possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched.
[Solution] There is provided a device including: an acquiring unit configured to acquire information indicating that a serving cell is scheduled to be in an off state; and a control unit configured to perform measurement reporting before the serving cell is in the off state.
Description
- The present disclosure relates to a device.
- In cellular systems according to communication standards such as Long Term Evolution (LTE), a terminal device performs measurement based on a reference signal for cell selection/cell reselection and a handover.
- Various technologies for measurement performed by a terminal device are proposed. For example,
Patent Literature 1 discloses a technology in which a measurement gap is assigned to more component carriers as channel quality decreases. -
Patent Literature 1 JP 2014-53971A - However, in an environment in which an on/off state of a cell (for example, a small cell) is switched, there is a possibility of measurement reporting suitable for the environment not being performed.
- Thus, it is preferable to provide a mechanism through which it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched.
- According to the present disclosure, there is provided a device including: an acquiring unit configured to acquire information indicating that a serving cell is scheduled to be in an off state; and a control unit configured to perform measurement reporting before the serving cell is in the off state.
- In addition, according to the present disclosure, there is provided a device including a control unit configured to perform measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in an on state. The control unit performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in an off state. The first event and the second event have different offsets or thresholds.
- In addition, according to the present disclosure, there is provided a device including: an acquiring unit configured to acquire an offset or a threshold for an event regarding a measurement result of a neighbour cell; and a control unit configured to notify a terminal device of the offset or the threshold. The offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- In addition, according to the present disclosure, there is provided a device including: an acquiring unit configured to acquire information about traffic of a terminal device; and a control unit configured to perform measurement reporting when predetermined conditions of the information are satisfied.
- In addition, according to the present disclosure, there is provided a device including an acquiring unit configured to acquire a measurement result of a cell in the off state and information about a buffer status of a terminal device, which are reported by the terminal device, and a control unit configured to decide to switch the cell to the on state based on the measurement result and the information.
- As described above, according to the present disclosure, it is possible to perform measurement reporting suitable for an environment in which an on/off state of a small cell is switched. Note that the effects described above are not necessarily limitative. With or in the place of the above effects, there may be achieved any one of the effects described in this specification or other effects that may be grasped from this specification.
-
FIG. 1 is an explanatory diagram for describing an example of a small cell. -
FIG. 2 is an explanatory diagram for describing an example of a small cell cluster. -
FIG. 3 is a sequence diagram illustrating an example of a schematic flow of an on/off process of a small cell. -
FIG. 4 is a sequence diagram illustrating an example of a schematic flow of an on/off process of a small cell when a DRS is used. -
FIG. 5 is an explanatory diagram for describing an example of a measurement gap. -
FIG. 6 is an explanatory diagram for describing a first scenario of carrier aggregation (CA). -
FIG. 7 is an explanatory diagram for describing a second scenario of carrier aggregation (CA). -
FIG. 8 is an explanatory diagram for describing a third scenario of carrier aggregation (CA). -
FIG. 9 is an explanatory diagram illustrating an example of a schematic configuration of a communication system according to an embodiment of the present disclosure. -
FIG. 10 is a block diagram illustrating an example of a configuration of a terminal device according to a first embodiment. -
FIG. 11 is a sequence diagram illustrating an example of a schematic flow of a process according to the first embodiment. -
FIG. 12 is a block diagram illustrating an example of a configuration of a terminal device according to a second embodiment. -
FIG. 13 is a block diagram illustrating an example of a configuration of a base station according to the second embodiment. -
FIG. 14 is a sequence diagram illustrating an example of a schematic flow of a process according to the second embodiment. -
FIG. 15 is a block diagram illustrating an example of a configuration of a terminal device according to a third embodiment. -
FIG. 16 is a sequence diagram illustrating an example of a schematic flow of a process according to the third embodiment. -
FIG. 17 is a block diagram illustrating an example of a configuration of a control entity according to the fourth embodiment. -
FIG. 18 is a sequence diagram illustrating an example of a schematic flow of a process according to the fourth embodiment. -
FIG. 19 is a block diagram illustrating an example of a configuration of a base station according to the fifth embodiment. -
FIG. 20 is a sequence diagram illustrating an example of a schematic flow of a process according to the fifth embodiment. -
FIG. 21 is a block diagram illustrating an example of a configuration of a terminal device according to the sixth embodiment. -
FIG. 22 is a sequence diagram illustrating an example of a schematic flow of a process according to the sixth embodiment. -
FIG. 23 is a block diagram illustrating an example of a configuration of a terminal device according to the seventh embodiment. -
FIG. 24 is a block diagram illustrating an example of a configuration of a base station according to the seventh embodiment. -
FIG. 25 is a sequence diagram illustrating an example of a schematic flow of a process according to the seventh embodiment. -
FIG. 26 is a block diagram illustrating an example of a schematic configuration of a server. -
FIG. 27 is a block diagram illustrating a first example of a schematic configuration of an eNB. -
FIG. 28 is a block diagram illustrating a second example of the schematic configuration of the eNB. -
FIG. 29 is a block diagram illustrating an example of a schematic configuration of a smartphone. -
FIG. 30 is a block diagram illustrating an example of a schematic configuration of a car navigation apparatus. - Hereinafter, (a) preferred embodiment(s) of the present disclosure will be described in detail with reference to the appended drawings. In this specification and the drawings, elements that have substantially the same function and structure are denoted with the same reference signs, and repeated explanation is omitted.
- The description will proceed in the following order.
- 2. Schematic configuration of communication system
- 3.2. Configuration of terminal device
3.3. Process flow - 4.2. Configuration of terminal device
4.3. Configuration of base station
4.4. Process flow - 5.2. Configuration of terminal device
5.3. Process flow - 6.2. Configuration of control entity
6.3. Process flow - 7.2. Configuration of base station
7.3. Process flow - 8.2. Configuration of terminal device
8.3. Process flow - 9.2. Configuration of terminal device
9.3. Configuration of base station
9.4. Process flow
10. Application examples
10.1. Application examples for control entity
10.2. Application examples for base station
10.3. Application examples for terminal device - A technology related to an embodiment of the present disclosure will be described with reference to
FIG. 1 toFIG. 8 . Specifically, a small cell, a measurement and carrier aggregation will be described. - A small cell is a cell smaller than a macro cell. For example, the small cell partially or entirely overlaps the macro cell. Hereinafter, an example of the small cell will be described with reference to
FIG. 1 . -
FIG. 1 is an explanatory diagram for describing an example of a small cell. Referring toFIG. 1 , amacro base station 11, amacro cell 13, asmall base station 15 and asmall cell 17 are shown. Themacro base station 11 is a base station of themacro cell 13. Thesmall base station 15 is a base station of thesmall cell 17. In other words, themacro cell 13 is a coverage area of the macro base station 11 (that is, a communication area), and thesmall cell 17 is a coverage area of the small base station 15 (that is, a communication area). - A base station of LTE is referred to as an evolved node B (eNB). Here, a macro base station of LTE is referred to as a macro eNB, and a small base station of LTE is referred to as a small eNB. In addition, a terminal device of LTE is referred to as user equipment (TIE).
- Small cells arranged at a high density form a small cell cluster. Hereinafter, an example of the small cell cluster will be described with reference to
FIG. 2 . -
FIG. 2 is an explanatory diagram for describing an example of a small cell cluster. Referring toFIG. 2 , themacro base station 11, themacro cell 13 and thesmall cell 17 are shown. For example,small cells 17 arranged at a high density form asmall cell cluster 19. - In a case in which small cells are arranged at a high density, inter-cell interference causes a serious problem. In general, the small base station transmits a cell-specific reference signal (CRS) regardless of the presence or absence of traffic of the small cell. In the case in which small cells are arranged at a high density, it is known that a CRS causes large interference in a neighbour cell. Therefore, various technologies for reducing interference are being studied.
- As a technology for reducing such inter-cell interference, a small cell on/off technology has currently been focused on. In the small cell on/off technology, an on/off state of a small cell is adaptively switched, and thus it is possible to suppress interference in a surrounding cell of the small cell. While a trigger for switching an on/off state of the small cell has not yet been specifically decided, a trigger for switching based on, for example, a traffic amount, association of a terminal device, or arrival of a packet is being studied. Hereinafter, an example of a small cell on/off procedure will be described with reference to
FIG. 3 . -
FIG. 3 is a sequence diagram illustrating an example of a schematic flow of a small cell on/off process. The small cell on/off process is a process that is disclosed in R1-134318 of the Third Generation Partnership Project (3GPP). When data to be transmitted is generated, the UE transmits an uplink signal to a macro eNB of a macro cell that is a serving cell (S1001). Then, the macro eNB searches for a small eNB in an off state that is positioned around the UE, and instructs the appropriate small eNB to switch to an on state when there is an appropriate small eNB (S1003). Then, the small eNB performs switching from the off state to the on state (S1005). Then, the small eNB transmits downlink signals such as a primary synchronization signal (PSS), a secondary synchronization signal (SSS), a cell-specific reference signal (CRS) and a physical broadcast channel (PBCH) signal (S1007). In addition, the UE performs a cell search and RRM measurement (S1009), and performs measurement reporting to the macro eNB (S1011). Then, a handover of the UE from the macro cell to the small cell is performed (S1013). Then, the UE and the small eNB perform an access procedure (S1015) and perform data transmission (S1017). - According to the procedure shown in
FIG. 3 , it is possible to switch an on/off state of a small cell. However, according to the procedure, a transition time may become relatively longer. That is, according to the procedure, a time from when a terminal device attempts to transmit data until the terminal device actually transmits the data may become relatively longer. Therefore, large improvement of throughput is difficult. In order to improve the transition time, while the small cell is in the off state, a measurement process that serves as a main delay factor is preferably performed by the terminal device. - Introduction of a discovery reference signal (DRS) is being studied in order to reduce the transition time. The DRS enables measurement of a small cell in the off state. The DRS is also referred to as a discovery signal (DS). A small base station (for example, a small eNB) transmits a DRS while a small cell (or a small base station) is in the off state, and a terminal device (for example, UE) performs measurement based on a DRS. Hereinafter, an example of a small cell on/off procedure when a DRS is used will be described with reference to
FIG. 4 . -
FIG. 4 is a sequence diagram illustrating an example of a schematic flow of a small cell on/off process when a DRS is used. The small cell on/off process is a process that is disclosed in R1-134318 of the 3GPP. A macro eNB instructs a small eNB to transmit a DS (S1031), and the small eNB transmits the DS in downlink (S1033). The UE performs measurement based on the DS (S1035) and reports a result of the measurement to the macro eNB (that is, an eNB of a macro cell that is a serving cell) (S1037). The UE and the small eNB perform data transmission through subsequent procedures (S1041 to S1049) (S1051). - According to the procedure shown in
FIG. 4 , while the small cell is in the off state, the terminal device can perform measurement. Therefore, the transition time is removed and throughput may be improved. - As various technologies for reducing interference, enhancement on a transmission side and a reception side such as muting, multiple instance and interference cancellation is also being studied.
- In LTE, a terminal device performs measurement based on a CRS transmitted by a base station. Specifically, the terminal device receives a CRS transmitted by a base station and thus performs measurement of quality of a propagation path between the base station and the terminal device. The measurement is referred to as “radio resource management (RRM) measurement,” or is simply referred to as “measurement.”
- A result of the measurement is used to select a cell for a terminal device. As a specific example, the result of the measurement is used for cell selection/cell reselection by a terminal device that is in a radio resource control (RRC) idle (RRC Idle) state. In addition, for example, the result of the measurement is reported to a base station by a terminal device that is in an RRC connected state and is used for a handover decision by the base station.
- In LTE, CRS measurement is measurement of reference signal received power (RSRP) and/or reference signal received quality (RSRQ). In other words, a terminal device acquires RSRP and/or RSRQ as a result of the measurement of the CRS. The RSRQ is calculated from the RSRP and a received signal strength indicator (RSSI).
- The RSRP is reception power of a CRS for each single resource element. That is, the RSRP is an average value of reception power of the CRS. The reception power of the CRS is obtained by detecting a correlation between a reception signal in a resource element of the CRS and a known signal CRS. The RSRP corresponds to a desired signal “Signal (S).”
- The RSSI is total power of signals for each Orthogonal Frequency Division Multiple Access (OFDMA) symbol. Therefore, the RSSI includes a desired signal, an interference signal and noise. That is, the RSSI corresponds to “Signal (S)+Interference (I)+Noise (N).”
- The RSRQ is RSRP/(RSRI/N). N denotes the number of resource blocks used for calculating an RSSI. The resource blocks are resource blocks that are arranged in a frequency direction. Therefore, the RSRQ is a value that is obtained by dividing the RSRP using the RSRI for each resource block. That is, the RSRQ corresponds to a signal-to-interference-plus-noise ratio (SINR).
- As described above, according to the measurement of the CRS, reception power (that is, RSRP) and reception quality (that is, RSRQ) such as an SINR are obtained.
- Measurement of a frequency band that a terminal device uses is referred to as intra-frequency measurement. Conversely, measurement of a frequency band that a terminal device does not use is referred to as inter-frequency measurement.
- The terminal device can receive a CRS transmitted in a frequency band that is used without switching a frequency of a radio frequency (RF) circuit. That is, it is unnecessary to switch a frequency of the RF circuit for intra-frequency measurement.
- Conversely, in order for the terminal device to receive a CRS transmitted in a frequency band that is not used, it is necessary to switch a frequency of a radio frequency (RF) circuit. That is, it is necessary to switch a frequency of the RF circuit for inter-frequency measurement. Therefore, a period called a measurement gap is used for inter-frequency measurement.
- During the measurement gap, the base station does not transmit a downlink signal addressed to a terminal device. In addition, the measurement gap is shared between the base station and the terminal device. For example, the base station transmits a message (for example, an RRC connection reconfiguration message) including information indicating a measurement gap to the terminal device. For example, the measurement gap is indicated by a measurement gap length (MGL), a measurement gap repetition period (MGRP) and a gap offset. In addition, a combination of the MGL and the MGRP is determined as, for example, a gap pattern. Hereinafter, an example of the measurement gap will be described with reference to
FIG. 5 . -
FIG. 5 is an explanatory diagram for describing an example of a measurement gap.FIG. 5 shows a matrix including columns of radio frames whose SFNs are 0 to 9 and rows of 10 subframes (subframes whose subframe numbers are 0 to 9) included in radio frames. In this example, the MGL is 6 milliseconds (ms), the MGRP is 40 ms, and the gap offset is 0. Therefore, the measurement gap has a length of 6 ms and appears every 40 ms. More specifically, for example, six subframes whose subframe numbers are 0 to 5 among radio frames whose SFNs are 0, 4 and 8 are the measurement gap. Inter-frequency measurement is performed during the measurement gap. - (d) Measurement reporting
- The terminal device reports a measurement result to the base station. The reporting is referred to as measurement reporting.
- The measurement reporting is periodic reporting or event-triggered reporting. The periodic reporting is reporting that is performed at set periods. Conversely, the event-triggered reporting is reporting that is performed when a reporting event is generated. Reporting events A1 to A5 are events associated with a handover within a system, and reporting events B1 to B2 are events associated with a handover between systems.
-
TABLE 1 Event Type Description Event A1 Serving becomes better than threshold Event A2 Serving becomes worse than threshold Event A3 Neighbour becomes offset better than serving Event A4 Neighbour becomes better than threshold Event A5 Serving becomes worse than threshold1 and neighbour becomes better than threshold2 Event B1 Inter RAT neighbour becomes better than threshold Event B2 Serving becomes worse than threshold1 and inter RAT neighbour becomes better than threshold2 - Carrier aggregation (CA) is a technology through which communication is performed using a plurality of component carriers (CCs) at the same time. The component carrier is a frequency band having a maximum of a 20 MHz bandwidth. The carrier aggregation includes three scenarios. Hereinafter, three scenarios of the carrier aggregation will be described with reference to
FIG. 6 toFIG. 8 . -
FIG. 6 toFIG. 8 are explanatory diagrams for describing first to third scenarios of carrier aggregation (CA). As illustrated inFIG. 6 , in the first scenario (intra-band contiguous) of CA, the terminal device uses CCs adjacent in the same operating. As illustrated inFIG. 7 , in the second scenario (intra-band non-contiguous) of CA, the terminal device uses CCs that are not adjacent in the same operating. As illustrated inFIG. 8 , in the third scenario (inter-band non-contiguous) of CA, the terminal device uses CCs that are not adjacent in different operating. - Next, a schematic configuration of a
communication system 1 according to an embodiment of the present disclosure will be described with reference toFIG. 9 .FIG. 9 is an explanatory diagram illustrating an example of a schematic configuration of thecommunication system 1 according to an embodiment of the present disclosure. As illustrated inFIG. 9 , thecommunication system 1 includes aterminal device 100, abase station 200 and acontrol entity 300. Thecommunication system 1 is a system supporting, for example, LTE, LTE-Advanced or a communication standard equivalent thereto. - The
terminal device 100 wirelessly communicates with thebase station 200. In addition, theterminal device 100 performs measurement of a cell (for example, a serving cell and a neighbour cell). In addition, theterminal device 100 performs measurement reporting (that is, reporting of a measurement result) to thebase station 200. - The
base station 200 wirelessly communicates with one or more terminal devices including theterminal device 100. In addition, thebase station 200 decides a handover of a terminal device based on the measurement result reported by the terminal device. Thebase station 200 may be a base station of a macro cell (that is, a macro base station) or a base station of a small cell (that is, a small base station). - The
control entity 300 performs control according to each embodiment of the present disclosure. Thecontrol entity 300 is, for example, an existing or new core network node. Alternatively, thecontrol entity 300 may be a base station. As an example, when thebase station 200 is a small base station, thecontrol entity 300 may be a macro base station. - In embodiments of the present disclosure, for example, an “on state” of a cell (for example, a small cell) is a state in which a base station of the cell transmits and receives signals (a data signal and a control signal) in the cell. Conversely, for example, an “off state” of a cell (for example, a small cell) is a state in which a base station of the cell does not transmit and receive signals except some control signals (for example, a DRS) in the cell. Alternatively, the “off state” of a cell may be a state in which a base station of the cell does not transmit and receive signals in the cell at all.
- Next, a first embodiment of the present disclosure will be described with reference to
FIG. 10 andFIG. 11 . - Generally, a base station decides a handover of a terminal device based on a measurement result reported by the terminal device. In addition, the terminal device reports the measurement result to the base station periodically or according to a generation of an event.
- In an environment in which an on/off state of a cell (for example, a small cell) is switched, a serving cell of the terminal device may is in the off state from the on state. In this case, it is preferable that a handover of the terminal device be performed before the cell is in the off state. However, for example, there is a possibility of a measurement result not being reported to a base station before a cell is in the off state according only to an existing event. As a result, a better cell as a handover destination of the terminal device is considered not to be selected.
- Thus, it is preferable to provide a mechanism through which it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched.
- In the first embodiment, a terminal device 100-1 performs measurement reporting before a serving cell is in the off state. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting useful for selecting a new serving cell is performed.
- Next, an example of a configuration of the terminal device 100-1 according to the first embodiment will be described with reference to
FIG. 10 .FIG. 10 is a block diagram illustrating an example of a configuration of the terminal device 100-1 according to the first embodiment. As illustrated inFIG. 10 , the terminal device 100-1 includes anantenna unit 110, awireless communication unit 120, astorage unit 130 and aprocessing unit 140. - The
antenna unit 110 emits a signal output by thewireless communication unit 120 into space as radio waves. In addition, theantenna unit 110 converts spatial radio waves into a signal and outputs the signal to thewireless communication unit 120. - The
wireless communication unit 120 transmits and receives signals. For example, thewireless communication unit 120 receives a downlink signal from a base station and transmits an uplink signal to the base station. - The
storage unit 130 temporarily or permanently stores programs and data for operations of the terminal device 100-1. - The
processing unit 140 provides various functions of the terminal device 100-1. Theprocessing unit 140 includes aninformation acquiring unit 141 and acontrol unit 143. Alternatively, theprocessing unit 140 may further include a component other than these components. That is, theprocessing unit 140 may also perform an operation other than operations of these components. - The
information acquiring unit 141 acquires information indicating that a serving cell is scheduled to be in the off state (hereinafter referred to as “off information”). The serving cell is a serving cell of the terminal device 100-1. - For example, the serving cell is a primary cell (a Pcell) of carrier aggregation. The primary cell is referred to as a primary component carrier (a PCC). The off state of the primary cell means that the PCC is deactivated.
- For example, the serving cell is a small cell. In this case, a base station 200-1 is a small base station.
- In view of the above point, for example, the
information acquiring unit 141 acquires information indicating that a small cell (a cell of the base station 200-1) serving as a primary cell is scheduled to be in the off state. - For example, the base station 200-1 transmits off information indicating that a cell of the base station 200-1 is scheduled to be in the off state to the terminal device 100-1, and the terminal device 100-1 receives the off information. Then, the off information is stored in the
storage unit 130. Then, theinformation acquiring unit 141 acquires the off information from thestorage unit 130. - The
control unit 143 performs measurement reporting before a serving cell is in the off state. For example, thecontrol unit 143 performs measurement reporting according to the acquisition of the off information. The serving cell is a serving cell of theterminal device 100. - For example, the
control unit 143 performs measurement reporting according to a generation of an event indicating that a serving cell is scheduled to be in the off state. That is, the measurement reporting is event-triggered reporting that is triggered by a new event (or a new event equivalent thereto) defined, for example, as follows. -
TABLE 2 Event Type Description New Event Serving cell indicate to the UE that serving cell will be in off state - For example, the measurement reporting is measurement reporting of a cell other than the serving cell. That is, the terminal device 100-1 performs measurement reporting of the cell other than the serving cell before the serving cell is in the off state.
- For example, the cell other than the serving cell includes a neighbour cell. Further, as described above, when the serving cell is a primary cell of carrier aggregation, the cell other than the serving cell may include a secondary cell of carrier aggregation instead of the neighbour cell or may be included with the neighbour cell.
- Accordingly, for example, the base station 200-1 can select an appropriate handover destination of the terminal device 100-1.
- As an example, the cell other than the serving cell is a cell associated with the most favorable measurement result. Accordingly, for example, it is possible to select an optimal handover while reducing overhead.
- The measurement reporting is reporting of a result of measurement performed by the terminal device 100-1. The measurement is RRM measurement, for example, measurement of reception power or reception quality. More specifically, for example, the measurement is measurement of RSRP or RSRQ
- Alternatively, the measurement (for example, measurement of a serving cell and a neighbour cell) may be performed by the
control unit 143 or may be performed by another component included in theprocessing unit 140. - Next, an example of a process according to the first embodiment will be described with reference to
FIG. 11 .FIG. 11 is a sequence diagram illustrating an example of a schematic flow of a process according to the first embodiment. - The base station 200-1 transmits information indicating that a serving cell (for example, a primary cell) is scheduled to be in the off state (that is, off information) to the terminal device 100-1 (S401). The terminal device 100-1 (the information acquiring unit 141) acquires the off information.
- The terminal device 100-1 (the control unit 143) performs measurement of a cell other than the serving cell (for example, the primary cell) (S403).
- The terminal device 100-1 (the control unit 143) performs measurement reporting of a cell other than the serving cell (S405). That is, the terminal device 100-1 reports a measurement result of a cell other than the serving cell to the base station 200-1.
- Instead of performing measurement (S403) after the off information is acquired (S401), the terminal device 100-1 may use a result of measurement performed before the off information is acquired.
- Next, a second embodiment of the present disclosure will be described with reference to
FIG. 12 toFIG. 14 . - Generally, a base station decides a handover of a terminal device based on a measurement result reported by the terminal device. In addition, the terminal device reports the measurement result to the base station periodically or according to a generation of an event.
- In an environment in which the on/off state of a cell (for example, a small cell) is switched, in order to continue the off state of a cell as long as possible, it is more preferable that a handover destination of the terminal device be a cell in the on state rather than a cell in the off state. However, in an existing event, measurement reporting may be performed regardless of the on/off state of a mall cell. As a result, for example, there is a possibility of a handover to a cell in the off state being frequently performed. Alternatively, even when strict conditions of a handover to a cell in the off state are set and the handover is suppressed, measurement reporting of a cell in the off state is frequently performed and overhead may increase as a result.
- Thus, it is preferable to provide a mechanism through which it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched.
- In the second embodiment, a terminal device 100-2 performs measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in the on state. In addition, the terminal device 100-2 performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in the off state. The first event and the second event have different offsets or thresholds. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting of a cell in the off state is suppressed
- Next, an example of a configuration of the terminal device 100-2 according to the second embodiment will be described with reference to
FIG. 12 .FIG. 12 is a block diagram illustrating an example of a configuration of the terminal device 100-2 according to the second embodiment. As illustrated inFIG. 12 , the terminal device 100-2 includes theantenna unit 110, thewireless communication unit 120, thestorage unit 130 and aprocessing unit 150. - There is no difference in descriptions of the
antenna unit 110, thewireless communication unit 120 and thestorage unit 130 between the first embodiment and the second embodiment except for different reference numerals. Therefore, redundant descriptions will be omitted here, and only theprocessing unit 150 will be described. - The
processing unit 150 provides various functions of the terminal device 100-2. Theprocessing unit 150 includes aninformation acquiring unit 151 and acontrol unit 153. Theprocessing unit 150 may further include a component other than these components. That is, theprocessing unit 150 may also perform an operation other than operations of these components. - The
information acquiring unit 151 acquires an offset or a threshold for an event regarding a measurement result of a neighbour cell. - The offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in the on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in the off state. The offset or the threshold for the second event is different from the offset or the threshold for the first event.
- For example, a base station 200-2 notifies the terminal device 100-2 of the offset or the threshold. For example, the base station 200-2 notifies the terminal device 100-2 of the offset or the threshold through system information (for example, a system information block (SIB)) or through individual signaling (for example, RRC signaling). Then, the offset or the threshold is stored in the
storage unit 130. Theinformation acquiring unit 151 acquires the offset or the threshold at any time thereafter. - The
control unit 153 performs measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in the on state. In addition, thecontrol unit 153 performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in the off state. The first event and the second event have different offsets or thresholds. - For example, the second event has stricter generation conditions than the first event.
- As a first example, a neighbour cell in the on state becomes better than a serving cell by a first offset in a measurement result in the first event, and a neighbour cell in the off state becomes better than a serving cell by a second offset in a measurement result in the second event. The second offset is greater than the first offset.
- For example, the first event is an existing event A3, and the second event is a new event (or a new event equivalent thereto) associated with a greater offset than the existing event A3 as follows.
-
TABLE 3 Event Type Description New Event Neighbour off cell becomes better than the serving cell by an offset - In addition, for example, the serving cell is a primary cell of carrier aggregation. In this case, the second event is a new event as follows
-
TABLE 4 Event Type Description New Event Neighbour off cell becomes better than the primary cell by an offset - Alternatively, the second event may be the existing event A3 rather than the new event. In this case, an offset according to a state (the on state or the off state) of a neighbour cell may be applied to the existing event A3.
- According to such a first example, for example, measurement reporting of a neighbour cell in the off state is suppressed, when compared to a neighbour cell in the on state.
- As a second example, a neighbour cell in the on state becomes better than a first threshold in a measurement result in the first event, and a neighbour cell in the off state becomes better than a second threshold in a measurement result in the second event. The second threshold is greater than the first threshold.
- For example, the first event is an existing event A4, and the second event is a new event (or a new event equivalent thereto) associated with a greater threshold than the existing event A4 as follows.
-
TABLE 5 Event Type Description New Event Neighbour off cell becomes better than a threshold - Alternatively, the second event may be the existing event A4 rather than the new event. In this case, a threshold according to a state (the on state or the off state) of a neighbour cell may be applied to the existing event A4.
- According to such a second example, for example, measurement reporting of a neighbour cell in the off state is suppressed, when compared to a neighbour cell in the on state.
- As a third example, a serving cell becomes worse than a first threshold and a neighbour cell in the on state becomes better than a second threshold in a measurement result in the first event, and a serving cell becomes worse than a third threshold and a neighbour cell in the off state becomes better than a fourth threshold in a measurement result in the second event. The fourth threshold is greater than the second threshold or the third threshold is smaller than the first threshold.
- For example, the first event is an existing event A5, and the second event is a new event (or a new event equivalent thereto) associated with a threshold different from the existing event A5 as follows.
-
TABLE 6 Event Type Description New Event Serving cell becomes worse than threshold 1 while neighbour offcell becomes better than threshold 2 - In the new event, a threshold (threshold 2) of a neighbour cell in the off state is greater and/or a threshold (threshold 1) of a serving cell is smaller when compared to the existing event A5.
- In addition, for example, the serving cell is a primary cell of carrier aggregation. In this case, the second event is a new event as follows
-
TABLE 7 Event Type Description New Event Primary Cell becomes worse than threshold 1 while neighbour offcell becomes better than threshold 2 - Alternatively, the second event may be the existing event A5 rather than the new event. In this case, a threshold according to a state (the on state or the off state) of a neighbour cell may be applied to the existing event A5.
- According to such a third example, for example, measurement reporting of a neighbour cell in the off state is suppressed, when compared to a neighbour cell in the on state.
- As a fourth example, a neighbour cell in the on state becomes better than a secondary cell by a first offset in a measurement result in the first event, and a neighbour cell in the off state becomes better than a secondary cell by a second offset in a measurement result in the second event. The second offset is greater than the first offset.
- For example, the first event is an existing event A6, and the second event is a new event (or a new event equivalent thereto) associated with a greater offset than the existing event A6 as follows.
-
TABLE 8 Event Type Description New Event Neighbour off cell becomes better than secondary cell by an offset - Alternatively, the second event may be the existing event A6 rather than the new event. In this case, an offset according to a state (the on state or the off state) of a neighbour cell may be applied to the existing event A6.
- According to such a first example, for example, measurement reporting of a neighbour cell in the off state is suppressed, when compared to a neighbour cell in the on state.
- The measurement reporting is reporting of a result of measurement performed by the terminal device 100-2. The measurement is RRM measurement, for example, measurement of reception power or reception quality. More specifically, for example, the measurement is measurement of RSRP or RSRQ.
- The measurement is performed based on a reference signal. The reference signal is, for example, a CRS that is transmitted in a cell in the on state and/or a DRS that is transmitted in a cell in the off state (and a cell in the on state).
- Alternatively, the measurement (for example, measurement of a serving cell and a neighbour cell) may be performed by the
control unit 153 or may be performed by another component included in theprocessing unit 150. - Next, an example of a configuration of the base station 200-2 according to the second embodiment will be described with reference to
FIG. 13 .FIG. 13 is a block diagram illustrating an example of a configuration of the base station 200-2 according to the second embodiment. Referring toFIG. 13 , the base station 200-2 includes anantenna unit 210, awireless communication unit 220, anetwork communication unit 230, astorage unit 240, and aprocessing unit 250. - The
antenna unit 210 radiates a signal output from thewireless communication unit 220 into the air as radio waves. Theantenna unit 210 converts the radio waves in the air into a signal, and outputs the signal to thewireless communication unit 220. - The
wireless communication unit 220 transmits or receives a signal. For example, thewireless communication unit 220 transmits the downlink signal to the terminal device, and receives the uplink signal from the terminal device. - The
network communication unit 230 transmits and receives information. For example, thenetwork communication unit 230 transmits information to another node and receives information from another node. For example, the other node includes a core network and another base station. As an example, the other node includes a control entity 300-2. - The
storage unit 240 temporarily or permanently stores a program and data for an operation of the base station 200-2. - The
processing unit 250 provides various functions of the base station 200-2. Theprocessing unit 250 includes aninformation acquiring unit 251 and acontrol unit 253. Theprocessing unit 250 may further include any other component in addition to the above-mentioned components. In other words, theprocessing unit 250 may also perform an operation other than operations of the above-mentioned components. - The
information acquiring unit 251 acquires an offset or a threshold for an event regarding a measurement result of a neighbour cell. - The offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in the on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in the off state. The offset or the threshold for the second event is different from the offset or the threshold for the first event.
- For example, the offset or the threshold is stored in the
storage unit 240, and theinformation acquiring unit 251 acquires the offset or the threshold from thestorage unit 240. - The
control unit 253 notifies the terminal device 100-2 of the offset or the threshold for the event. - For example, the
control unit 253 notifies the terminal device 100-2 of the offset or the threshold through system information (for example, an STB) or through individual signaling (for example, RRC signaling). - Next, an example of a process according to the second embodiment will be described with reference to
FIG. 14 .FIG. 14 is a sequence diagram illustrating an example of a schematic flow of a process according to the second embodiment. - The base station 200-2 (the control unit 253) notifies the terminal device 100-2 of an offset and/or a threshold for an event regarding a measurement result of a neighbour cell (S421). The terminal device 100-2 (the information acquiring unit 151) acquires the offset and/or the threshold.
- The terminal device 100-2 (the processing unit 250) performs measurement of a cell (S423). The cell includes a serving cell and an adjacent cell.
- The terminal device 100-2 (the control unit 153) performs measurement reporting according to a generation of an event (S425). That is, the terminal device 100-2 reports a measurement result of a cell to the base station 200-2. For example, the terminal device 100-2 (the control unit 153) performs measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in the on state. In addition, the terminal device 100-2 (the control unit 153) performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in the off state. The first event and the second event have different offsets or thresholds.
- Next, a third embodiment of the present disclosure will be described with reference to
FIG. 15 andFIG. 16 . - Generally, a base station decides a handover of a terminal device based on a measurement result reported by the terminal device. In addition, the terminal device reports the measurement result to a base station periodically or according to a generation of an event.
- In an environment in which the on/off state of a cell (for example, a small cell) is switched, when carrier aggregation is performed, each component carrier (CC) is activated or deactivated. For example, when traffic of the terminal device increases, a deactivated CC is preferably activated (that is, a cell in the off state preferably is in the on state). However, in an existing event, when traffic of the terminal device increases, there is a possibility of a measurement result not being reported to a base station.
- Thus, it is preferable to provide a mechanism through which it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched.
- In the third embodiment, a terminal device 100-3 performs measurement reporting when predetermined conditions of traffic of the terminal device 100-3 are satisfied. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting useful for selecting a carrier (a cell) to be added according to an increase of traffic is performed.
- Next, examples of configurations of the terminal device 100-3 according to the third embodiment will be described with reference to
FIG. 15 .FIG. 15 is a block diagram illustrating an example of a configuration of the terminal device 100-3 according to the third embodiment. As illustrated inFIG. 15 , the terminal device 100-3 includes theantenna unit 110, thewireless communication unit 120, thestorage unit 130 and aprocessing unit 160. - There is no difference in descriptions of the
antenna unit 110, thewireless communication unit 120 and thestorage unit 130 between the first embodiment and the third embodiment except for different reference numerals. Therefore, redundant descriptions will be omitted here, and only theprocessing unit 160 will be described. - The
processing unit 160 provides various functions of the terminal device 100-3. Theprocessing unit 160 includes aninformation acquiring unit 161 and acontrol unit 163. Theprocessing unit 160 may further include a component other than these components. That is, theprocessing unit 160 may also perform an operation other than operations of these components. - The
information acquiring unit 161 acquires information about traffic of the terminal device 100-3 (hereinafter referred to as “traffic information”). - As a first example, the traffic information is a traffic load of the terminal device 100-3. As a second example, the traffic information may be an amount of traffic of the terminal device 100-3.
- For example, the
processing unit 160 calculates the traffic information and theinformation acquiring unit 161 acquires the traffic information. - The
control unit 163 performs measurement reporting when predetermined conditions of the traffic information are satisfied. - As described above, as a first example, the traffic information is a traffic load of the terminal device 100-3. In this case, the predetermined conditions include a condition that the traffic load of the terminal device 100-3 be equal to or greater than a threshold. That is, the
control unit 163 performs measurement reporting when the traffic load of the terminal device 100-3 is equal to or greater than the threshold. - As described above, as a second example, the traffic information may be an amount of traffic of the terminal device 100-3. In this case, the predetermined conditions may include a condition that the amount of traffic of the terminal device 100-3 be equal to or greater than a threshold. That is, the
control unit 163 may perform measurement reporting when the amount of traffic of the terminal device 100-3 is equal to or greater than the threshold. The threshold may be average throughput of the terminal device 100-3. - For example, the measurement reporting includes measurement reporting of a cell in the off state. More specifically, for example, the measurement reporting includes measurement reporting of a small cell in the off state. That is, the
control unit 163 performs measurement reporting of a small cell in the off state when the predetermined conditions are satisfied. - Accordingly, for example, a cell in the off state may be switched to the on state according to an increase of traffic.
- The measurement reporting may include measurement reporting of a cell in the on state.
- The measurement reporting is reporting of a result of measurement performed by the terminal device 100-3. The measurement is RRM measurement, for example, measurement of reception power or reception quality. More specifically, for example, the measurement is measurement of RSRP or RSRQ.
- The measurement is performed based on a reference signal. The reference signal is, for example, a CRS that is transmitted in a cell in the on state and/or a DRS that is transmitted in a cell in the off state (and a cell in the on state).
- Alternatively, the measurement (for example, measurement of a serving cell and a neighbour cell) may be performed by the
control unit 163 or may be performed by another component included in theprocessing unit 160. - Next, an example of a process according to the third embodiment will be described with reference to
FIG. 16 .FIG. 16 is a flowchart illustrating an example of a schematic flow of a process according to the third embodiment. - The
information acquiring unit 161 acquires information about traffic of the terminal device 100-3 (that is, traffic information) (S441). - Then, the
information acquiring unit 161 determines whether predetermined conditions of the traffic information are satisfied (S443). When the predetermined conditions are not satisfied (NO in S443), the process ends. - When the predetermined conditions are satisfied (YES in S443), the
control unit 163 performs measurement reporting (S445). The measurement reporting includes, for example, measurement reporting of a cell in the off state. Then, the process ends. - Next, a fourth embodiment of the present disclosure will be described with reference to
FIG. 17 andFIG. 18 . - In order to suppress interference with a neighbour cell, adaptive switching of the on/off state of a cell (for example, a small cell) is being studied.
- However, for example, when the on/off state of a cell is switched based on (only) a result of measurement performed by a terminal device, there is a possibility of the cell being switched from the on state to the off state regardless of a low necessity for the terminal device. As an example, when the terminal device attempts to transmit a very small amount of packets, the terminal device does not immediately perform communication in a cell in the on state having a low signal strength, but a cell in the off state having a high signal strength is switched to the on state, and the terminal device is then likely to perform communication in the cell.
- Thus, it is preferable to provide a mechanism through which it is possible to more appropriately switch the on/off state of a cell.
- In the fourth embodiment, a control entity 300-4 decides to switch a cell to the on state based on a measurement result of the cell in the off state and information about a buffer status of a terminal device 100-4, which are reported by the terminal device 100-4. Accordingly, for example, it is possible to more appropriately switch the on/off state of a cell. More specifically, for example, when a necessity is high, a cell in the off state is switched to the on state.
- Next, an example of a configuration of the control entity 300-4 according to the fourth embodiment will be described with reference to
FIG. 17 .FIG. 17 is a block diagram illustrating an example of a configuration of the control entity 300-4 according to the fourth embodiment. Referring toFIG. 17 , the control entity 300-4 includes acommunication unit 310, astorage unit 320, and aprocessing unit 330. - The
communication unit 310 transmits and receives information. For example, thecommunication unit 310 transmits information to another node and receives information from the other node. For example, the other node includes a core network and a base station. As an example, the other node includes a base station 200-4. - The
storage unit 320 temporarily or permanently stores a program and data for an operation of the control entity 300-4. - The
processing unit 330 provides various functions of the control entity 300-4. Theprocessing unit 330 includes aninformation acquiring unit 331 and acontrol unit 333. Theprocessing unit 330 may further include any other component in addition to the above-mentioned components. In other words, theprocessing unit 330 may also perform an operation other than operations of the above-mentioned components. - The
information acquiring unit 331 acquires a measurement result of a cell in the off state and information about a buffer status of the terminal device 100-4, which are reported by the terminal device 100-4. The cell is, for example, a small cell in the off state. - For example, the information is a buffer status report (BSR) from the terminal device 100-4.
- Specifically, for example, the terminal device 100-4 reports the measurement result of a cell in the off state to the
base station 200 together with the BSR of the terminal device 100-4. Then, the base station 200-4 provides the measurement result and the BRS to the control entity 300-4. Then, theinformation acquiring unit 331 acquires the measurement result and the BRS. - Alternatively, the terminal device 100-4 may provide a BSR that is already acquired by the
base station 200 to the control entity 300-4 with the measurement result without reporting the BSR with the measurement result. In addition, the information may be another piece of information indicating a buffer status of the terminal device 100-4 rather than the BSR. - The
control unit 333 decides to switch a cell to the on state based on the measurement result and the information (for example, the BSR). - For example, when the measurement result is favorable and a great amount of data is accumulated in a buffer of the terminal device 100-4, the
control unit 333 decides to switch the cell to the on state. More specifically, for example, when the measurement result is equal to or greater than a first threshold and a data amount accumulated in the buffer of the terminal device 100-4 is equal to or greater than a second threshold, thecontrol unit 333 decides to switch the cell to the on state. - In addition, for example, when the switching is decided, the
control unit 333 instructs a base station of the cell to perform the switching. - It should be understood that the
control unit 333 may decide to switch the cell to the on state based on the measurement result and the information (for example, the BSR) from a plurality of terminal devices 100-4 rather than based on only the measurement result and the information (for example, the BSR) from a single terminal device 100-4. - Next, an example of a process according to the fourth embodiment will be described with reference to
FIG. 18 .FIG. 18 is a sequence diagram illustrating an example of a schematic flow of a process according to the fourth embodiment. - The terminal device 100-4 reports a measurement result of a cell in the off state and a BSR to the base station 200-4 (S461).
- The base station 200-4 provides the measurement result and the BSR to the control entity 300-4 (S463). The control entity 300-4 (the information acquiring unit 331) acquires the measurement result and the BSR.
- The control entity 300-4 (the control unit 333) decides to switch the cell in the off state to the on state based on the measurement result and the BSR (S465).
- Then, the control entity 300-4 (the control unit 333) instructs a base station of the cell to perform the switching (S467).
- Next, a fifth embodiment of the present disclosure will be described with reference to
FIG. 19 andFIG. 20 . - Generally, a terminal device performs measurement based on a neighbour cell list (NCL) provided from a network (a base station).
- In an environment in which the on/off state of a cell (for example, a small cell) is switched, a base station of a cell in the off state transmits a DRS and a terminal device performs measurement of the cell in the off state based on the DRS. Then, measurement reporting is performed according to a measurement result and the cell in the off state may be switched to the on state. However, for example, in an existing NCL, since the on/off state of a cell is not considered, the terminal device may perform unpreferable measurement and measurement reporting. As an example, the terminal device performs measurement and measurement reporting of a cell, a handover of the terminal device to the cell is performed, and the cell may be then switched from the on state to the off state. As a result, an additional handover is necessary and system performance may decrease.
- Thus, it is preferable to provide a mechanism through which it is possible to perform measurement reporting suitable for the environment in which the on/off state of a cell is switched.
- In the fifth embodiment, a base station 200-5 decides a candidate of a cell whose measurement is to be performed by a terminal device 100-5 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting of a cell that is unlikely to be in the off state is performed rather than measurement reporting of a cell that is likely to be in the off state. As a result, a handover to the cell that is unlikely to be in the off state may be performed.
- Next, an example of a configuration of the base station 200-5 according to the fifth embodiment will be described with reference to
FIG. 19 .FIG. 19 is a block diagram illustrating an example of a configuration of the base station 200-5 according to the fifth embodiment. Referring toFIG. 19 , the base station 200-5 includes anantenna unit 210, awireless communication unit 220, anetwork communication unit 230, astorage unit 240, and aprocessing unit 260. - There is no difference in descriptions of the
antenna unit 210, thewireless communication unit 220, thenetwork communication unit 230 and thestorage unit 240 between the second embodiment and the fifth embodiment except for different reference numerals. Therefore, redundant descriptions will be omitted here, and only theprocessing unit 260 will be described. - The
processing unit 260 provides various functions of the base station 200-5. Theprocessing unit 260 includes aninformation acquiring unit 261 and acontrol unit 263. Theprocessing unit 260 may further include any other component in addition to the above-mentioned components. In other words, theprocessing unit 260 may also perform an operation other than operations of the above-mentioned components. - The
information acquiring unit 261 acquires information about a schedule of the on/off state of a cell (hereinafter referred to as “on/off schedule-related information”). The cell is, for example, a small cell. - As a first example, the on/off schedule-related information is information indicating a schedule of switching from the on state to the off state (hereinafter referred to as “off schedule information”). For example, the off schedule information indicates a cell having a schedule of switching from the on state to the off state. Specifically, the off schedule information may be information indicating only a cell having a schedule of switching from the on state to the off state or may be information indicating whether each cell has such a schedule.
- As a second example, the on/off schedule-related information may be information (hereinafter referred to as “on state continuation time information”) indicating a time during which the on state of a cell continues (hereinafter referred to as an “on state continuation time”). For example, the on state continuation time information indicates a time during which the on state of a cell continues for each cell (that is, the on state continuation time).
- For example, a cell continues in the on state at least until the on state continuation time. The cell may further continue in the on state after the on state continuation time arrives or may be switched to the off state when the on state continuation time arrives.
- Alternatively, the on state continuation time may be an absolute time (for example, a system frame number (SFN)) or may be a relative time based on any time.
- The on state continuation time may be calculated based on parameters of a small cell such as a buffer status in the small cell, the number of accommodated users, an amount of traffic and on/off statistical data.
- For example, another node (for example, a control entity 300-5) generates on/off schedule-related information and provides the on/off schedule-related information to the base station 200-5. Then, the on/off schedule-related information is stored in the
storage unit 240. Theinformation acquiring unit 261 acquires the on/off schedule-related information from thestorage unit 240 at any time thereafter. - The
control unit 263 decides a candidate of a cell whose measurement is to be performed by the terminal device 100-5 or a priority of the candidate of the cell based on the on/off schedule-related information. - As described above, as a first example, the on/off schedule-related information is the off schedule information (that is, information indicating a schedule of switching from the on state to the off state).
- In this case, for example, the
control unit 263 does not include a cell having a schedule of switching from the on state to the off state in a candidate of the cell. More specifically, for example, thecontrol unit 263 decides an NCL such that a cell having a schedule of switching from the on state to the off state is not included in the NCL. Accordingly, for example, measurement reporting of only a cell that does not have a schedule of the off state is performed. - Alternatively, the
control unit 263 may set a priority of a cell having a schedule of switching from the on state to the off state to be lower. More specifically, thecontrol unit 263 may decide an NCL such that a priority of a cell having a schedule of switching from the on state to the off state becomes lower (for example, the lowest priority). Accordingly, for example, measurement reporting of a cell that does not have a schedule of the off state is preferentially performed. - As described above, as a second example, the on/off schedule-related information may be the on state continuation time information (that is, information indicating a time during which the on state of a cell continues (the on state continuation time)).
- In this case, the
control unit 263 may not include a cell whose on state continuation time arrives within a predetermined period in a candidate of the cell. More specifically, thecontrol unit 263 may decide an NCL such that a cell whose on state continuation time arrives within the predetermined period is not included in the NCL. Accordingly, for example, measurement reporting of only a cell whose on state continues for a sufficient period is performed. - Alternatively, the
control unit 263 may set a priority of a cell whose on state continuation time arrives within a predetermined period to be lower. More specifically, thecontrol unit 263 may decide an NCL such that a priority of a cell whose on state continuation time arrives within the predetermined period becomes lower (for example, the lowest priority). Accordingly, for example, measurement reporting of a cell whose on state continues for a sufficient time is preferentially performed. - When the on state continuation time information is generated for each terminal device 100-5, the “predetermined period” may be replaced by “a period for the terminal device 100-5 to transmit data.” That is, the
control unit 263 may not include a cell whose on state continuation time arrives within a period for the terminal device 100-5 to transmit data in a candidate of the cell or may set a priority of a cell whose on state continuation time arrives within the period for the terminal device 100-5 to transmit data to be lower. - In addition, a candidate of a cell in the NCL and/or a priority in the NCL may be decided based on not only the on/off schedule-related information but also other information such as a buffer status report (BSR), quality of service (QoS) and/or statistical data of communication situations.
- The measurement is RRM measurement, for example, measurement of reception power or reception quality. More specifically, for example, the measurement is measurement of RSRP or RSRQ
- As an example, the measurement is inter-frequency measurement. That is, the measurement is measurement of a frequency band (for example, a component carrier) that is not used by the terminal device 100-5.
- For example, the
control unit 263 notifies the terminal device 100-5 of the decided candidate or priority of the cell. - More specifically, for example, the
control unit 263 notifies the terminal device 100-5 of an NCL indicating the decided candidate or priority of the cell. For example, thecontrol unit 263 notifies the terminal device 100-5 of the NCL through system information (for example, an SIB). Alternatively, thecontrol unit 263 may notify the terminal device 100-5 of the NCL through individual signaling (for example, RRC signaling). - Next, an example of a process according to the fifth embodiment will be described with reference to
FIG. 20 .FIG. 20 is a sequence diagram illustrating an example of a schematic flow of a process according to the fifth embodiment. - The base station 200-5 (the information acquiring unit 261) acquires information about a schedule of the on/off state of a cell (that is, on/off schedule-related information) (S481).
- Then, the base station 200-5 (the control unit 263) decides a candidate of a cell whose measurement is to be performed by the terminal device 100-5 or a priority of the candidate of the cell based on the on/off schedule-related information (S483). Specifically, for example, the base station 200-5 decides an NCL based on the on/off schedule-related information.
- Then, the base station 200-5 (the control unit 263) notifies the terminal device 100-5 of the NCL (S485).
- The terminal device 100-5 performs measurement based on the NCL (S487). Specifically, for example, the terminal device 100-5 performs measurement of the candidate of the cell included in the NCL according to the priority of the candidate of the cell included in the NCL.
- Then, the terminal device 100-5 performs measurement reporting (S489).
- The fifth embodiment has been described above. In the fifth embodiment, the base station 200-5 acquires on/off schedule-related information and decides a candidate of a cell whose measurement is to be performed by the terminal device 100-5 or a priority of the candidate of the cell based on the on/off schedule-related information. However, the fifth embodiment is not limited thereto. For example, instead of the base station 200-5, the control entity 300-5 may acquire on/off schedule-related information and decide a candidate of a cell whose measurement is to be performed by the terminal device 100-5 or a priority of the candidate of the cell based on the on/off schedule-related information. Thus, the control entity 300-5 may notify the base station 200-5 of the decided candidate or priority of the cell.
- Next, a sixth embodiment of the present disclosure will be described with reference to
FIG. 21 andFIG. 22 . - In the fifth embodiment, the base station 200-5 decides a candidate of a cell whose measurement is to be performed by the terminal device 100-5 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell.
- Conversely, in the sixth embodiment, a terminal device 100-6 decides a candidate of a cell whose measurement is to be performed by the terminal device 100-6 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell.
- First, an example of a configuration of the terminal device 100-6 according to the sixth embodiment will be described with reference to
FIG. 21 .FIG. 21 is a block diagram illustrating an example of a configuration of the terminal device 100-6 according to the sixth embodiment. As illustrated inFIG. 21 , the terminal device 100-6 includes theantenna unit 110, thewireless communication unit 120, thestorage unit 130 and aprocessing unit 170. - There is no difference in descriptions of the
antenna unit 110, thewireless communication unit 120 and thestorage unit 130 between the first embodiment and the sixth embodiment except for different reference numerals. Therefore, redundant descriptions will be omitted here, and only theprocessing unit 170 will be described. - The
processing unit 170 provides various functions of the terminal device 100-6. Theprocessing unit 170 includes aninformation acquiring unit 171 and acontrol unit 173. Theprocessing unit 170 may further include a component other than these components. That is, theprocessing unit 170 may also perform an operation other than operations of these components. - (Information acquiring unit 171)
- The
information acquiring unit 171 acquires information about a schedule of the on/off state of a cell (hereinafter referred to as “on/off schedule-related information”). The cell is, for example, a small cell. - There is no difference in descriptions of the on/off schedule-related information between the fifth embodiment and the sixth embodiment. Therefore, redundant descriptions will be omitted here.
- For example, a base station 200-6 notifies the terminal device 100-6 of the on/off schedule-related information. Specifically, for example, the base station 200-6 notifies the terminal device 100-6 of the on/off schedule-related information through system information (for example, an SIB) or through individual signaling (for example, RRC signaling). Then, the on/off schedule-related information is stored in the
storage unit 130. Theinformation acquiring unit 171 acquires the on/off schedule-related information from thestorage unit 130 at any time thereafter. - As described above, the
information acquiring unit 171 acquires the on/off schedule-related information. In addition, for example, theinformation acquiring unit 171 acquires an NCL. The on/off schedule-related information may be included in the NCL or may be information other than the NCL. When the on/off schedule-related information is information other than the NCL, the terminal device 100-6 may be notified of the information together with the NCL, or the terminal device 100-6 may be notified of the information separately from the NCL. - The
control unit 173 decides a candidate of a cell whose measurement is to be performed by the terminal device 100-6 or a priority of the candidate of the cell based on the on/off schedule-related information. - As a first example, the on/off schedule-related information may be the off schedule information (that is, information indicating a schedule of switching from the on state to the off state).
- In this case, for example, the
control unit 173 does not include a cell having a schedule of switching from the on state to the off state in a candidate of the cell. More specifically, for example, thecontrol unit 173 decides a cell that does not have a schedule of the switching among neighbour cells included in the NCL as a candidate of a cell whose measurement is to be performed by the terminal device 100-6. Accordingly, for example, measurement and measurement reporting of only a cell that does not have a schedule of the off state are performed. - Alternatively, the
control unit 173 may set a priority of a cell having a schedule of switching from the on state to the off state to be lower. More specifically, thecontrol unit 173 may change a priority of a cell having a schedule of the switching among priorities of neighbour cells included in the NCL to a lower priority (for example, the lowest priority). Accordingly, for example, measurement and measurement reporting of a cell that does not have a schedule of the off state are preferentially performed. - As a second example, the on/off schedule-related information may be the on state continuation time information (that is, information indicating a time during which the on state of a cell continues (an on state continuation time)).
- In this case, the
control unit 173 may not include a cell whose on state continuation time arrives within a period for the terminal device 100-6 to transmit data in a candidate of the cell. More specifically, for example, thecontrol unit 173 may estimate a period for transmitting data (for example, a sufficient period for transmitting data) from a buffer status of the terminal device 100-6. Then, thecontrol unit 173 may decide a cell whose on state continuation time does not arrive within the estimated period among neighbour cells included in the NCL as a candidate of a cell whose measurement is to be performed by the terminal device 100-6. Accordingly, for example, measurement reporting of only a cell whose on state continues for a sufficient period is performed. - Alternatively, the
control unit 173 may set a priority of a cell whose on state continuation time arrives within a period for the terminal device 100-6 to transmit data to be lower. More specifically, more specifically, for example, thecontrol unit 173 may estimate a period for transmitting data (for example, a sufficient period for transmitting data) from a buffer status of the terminal device 100-6. Then, thecontrol unit 173 may change a priority of a cell whose on state continuation time arrives within the estimated period among priorities of neighbour cells included in the NCL to a lower priority (for example, the lowest priority). Accordingly, for example, measurement reporting of a cell whose on state continues for a sufficient time is preferentially performed. - The term “period for the terminal device 100-6 to transmit data” may be replaced by the term “predetermined period.” That is, the
control unit 173 may not include a cell whose on state continuation time arrives within a predetermined period in a candidate of the cell or may set a priority of a cell whose on state continuation time arrives within the predetermined period to be lower. - The measurement is RRM measurement, for example, measurement of reception power or reception quality. More specifically, for example, the measurement is measurement of RSRP or RSRQ.
- As an example, the measurement is inter-frequency measurement. That is, the measurement is measurement of a frequency band (for example, a component carrier) that is not used by the terminal device 100-5.
- For example, the
control unit 173 performs measurement based on the decided candidate of the cell or the priority. Specifically, for example, thecontrol unit 173 performs measurement of the decided candidate of the cell. Alternatively, thecontrol unit 173 performs measurement of the candidate of the cell according to the decided priority. - In addition, for example, the
control unit 173 performs measurement reporting to the base station 200-6. That is, thecontrol unit 173 reports a result of the measurement to the base station 200-6. - Alternatively, at least one of measurement and measurement reporting may be performed by another component included in the
processing unit 170 rather than thecontrol unit 173. - Next, an example of a process according to the sixth embodiment will be described with reference to
FIG. 22 .FIG. 22 is a sequence diagram illustrating an example of a schematic flow of a process according to the sixth embodiment. - The base station 200-6 notifies the terminal device 100-6 of an NCL (S501). The terminal device 100-6 (the information acquiring unit 171) acquires the NCL.
- In addition, the base station 200-6 notifies the terminal device 100-6 of information about a schedule of the on/off state of a cell (that is, on/off schedule-related information) (S503). The terminal device 100-6 (the information acquiring unit 171) acquires the information.
- Then, the terminal device 100-6 (the control unit 173) decides a candidate of a cell whose measurement is to be performed by the terminal device 100-6 or a priority of the candidate of the cell based on the on/off schedule-related information (S505).
- Then, the terminal device 100-6 performs measurement based on the decided candidate or priority (or the NCL) of the cell (S507).
- Then, the terminal device 100-6 performs measurement reporting (S509).
- Next, a seventh embodiment of the present disclosure will be described with reference to
FIG. 22 toFIG. 25 . - In order to suppress interference with a neighbour cell, adaptive switching of the on/off state of a cell (for example, a small cell) is being studied. However, after a handover of a terminal device to a cell, the cell is switched to the off state, and the terminal device is likely to hardly perform communication in the cell.
- Thus, it is preferable to provide a mechanism through which a terminal device can perform communication for a certain amount of time even in a cell associated with switching the on/off state.
- In the seventh embodiment, a terminal device 100-7 requests that a serving cell that is a cell associated with switching the on/off state continue in the on state. Accordingly, for example, the terminal device 100-7 can perform communication for a certain amount of time even in a cell associated with switching the on/off state.
- Next, an example of a configuration of the terminal device 100-7 according to the seventh embodiment will be described with reference to
FIG. 23 .FIG. 23 is a block diagram illustrating an example of a configuration of the terminal device 100-7 according to the seventh embodiment. As illustrated inFIG. 23 , the terminal device 100-7 includes theantenna unit 110, thewireless communication unit 120, thestorage unit 130 and aprocessing unit 180. - There is no difference in descriptions of the
antenna unit 110, thewireless communication unit 120 and thestorage unit 130 between the first embodiment and the seventh embodiment except for different reference numerals. Therefore, redundant descriptions will be omitted here, and only theprocessing unit 180 will be described. - An
information acquiring unit 181 acquires information indicating that a serving cell is a cell associated with switching the on/off state. The serving cell is a cell of a base station 200-7. In addition, for example, the serving cell is a small cell. - For example, the base station 200-7 transmits information indicating that a cell of the base station 200-7 is a cell associated with switching the on/off state to the terminal device 100-7, and the terminal device 100-7 receives the information. Then, the information is stored in the
storage unit 130. Theinformation acquiring unit 181 acquires the information at any time thereafter. - A
control unit 183 requests that a serving cell continue in the on state. - For example, the
control unit 183 requests that a serving cell continue in the on state when a serving cell of the terminal device 100-7 is a cell associated with switching the on/off state. - For example, the
control unit 183 requests the base station 200-7 (a base station of a serving cell) to continue in the on state of the serving cell. More specifically, for example, thecontrol unit 183 transmits an on state continuation request message for requesting continuation of the on state to the base station 200-7 through theantenna unit 110 and thewireless communication unit 120. - Next, an example of a configuration of the base station 200-7 according to the seventh embodiment will be described with reference to
FIG. 24 .FIG. 24 is a block diagram illustrating an example of a configuration of the base station 200-7 according to the seventh embodiment. Referring toFIG. 24 , the base station 200-7 includes anantenna unit 210, awireless communication unit 220, anetwork communication unit 230, astorage unit 240, and aprocessing unit 270. - There is no difference in descriptions of the
antenna unit 210, thewireless communication unit 220, thenetwork communication unit 230 and thestorage unit 240 between the second embodiment and the seventh embodiment except for different reference numerals. Therefore, redundant descriptions will be omitted here, and only theprocessing unit 270 will be described. - The
processing unit 270 provides various functions of the base station 200-7. Theprocessing unit 270 includes aninformation acquiring unit 271 and acontrol unit 273. Theprocessing unit 270 may further include any other component in addition to the above-mentioned components. In other words, theprocessing unit 270 may also perform an operation other than operations of the above-mentioned components. - The
information acquiring unit 271 acquires a request for maintaining the on state of a cell from the terminal device 100-7. The cell is a cell of the base station 200-7. - For example, the request is the on state continuation request message for requesting continuation of the on state. Specifically, for example, the terminal device 100-7 transmits the on state continuation request message to the base station 200-7, and the
information acquiring unit 271 acquires the on state continuation request message. - The
control unit 273 maintains the on state of the cell (that is, a cell of the base station 200-7) in response to the request. - For example, the
control unit 273 maintains the cell in the on state without switching the cell to the off state for a predetermined period according to the on state continuation request message. - The
control unit 273 may determine whether the on state of the cell continues in response to the request, and may maintain the on state of the cell only when it is determined that the on state of the cell continues. In addition, thecontrol unit 273 may notify the terminal device 100-7 of a result of the determination as a response to the request. - Next, an example of a process according to the seventh embodiment will be described with reference to
FIG. 25 .FIG. 25 is a sequence diagram illustrating an example of a schematic flow of a process according to the seventh embodiment. - The base station 200-7 transmits information indicating that a cell of the base station 200-7 is a cell associated with switching the on/off state to the terminal device 100-7 (S521). The terminal device 100-7 (the information acquiring unit 181) acquires the information.
- Then, the terminal device 100-7 (the control unit 183) requests that a serving cell continue in the on state (S523). For example, the terminal device 100-7 transmits an on state continuation request message for requesting continuation of the on state to the base station 200-7. The base station 200-7 (the information acquiring unit 271) acquires a request (that is, the on state continuation request message) from the terminal device 100-7.
- The base station 200-7 (the control unit 273) maintains the on state of a cell of the base station 200-7 in response to the request (S525).
- The technology according to the present disclosure is applicable to a variety of products. The
control entity 300 may be implemented as any type of server such as tower servers, rack servers, and blade servers. At least a part of components of thecontrol entity 300 may be implemented in a module (e.g. integrated circuit module that includes a single die, or card or blade that is inserted into a slot of a blade server) mounted on a server. In addition, thecontrol entity 300 may be implemented as any of various base stations which will be described. - The
base station 200 may also be implemented, for example, as any type of evolved Node B (eNB) such as macro eNBs and small eNBs. Small eNBs may cover smaller cells than the macrocells of pico eNBs, micro eNBs, or home (femt) eNBs. Instead, thebase station 200 may be implemented as another type of base station such as Nodes B or base transceiver stations (BTSs). Thebase station 200 may include the main apparatus (which is also referred to as base station apparatus) that controls wireless communication and one or more remote radio heads (RRHs) that are disposed at different locations from that of the main apparatus. Further, various types of terminals as will be discussed later may temporarily or semi-persistently execute the base station function to operate as thebase station 200. Further, at least part of components of thebase station 200 may be implemented in a base station device or a module for the base station device. - The
terminal device 100 may be implemented as a mobile terminal such as smartphones, tablet personal computers (PCs), notebook PCs, portable game terminals, portable/dongle mobile routers, and digital cameras, or an in-vehicle terminal such as car navigation apparatuses. Theterminal device 100 may also be implemented as a terminal (which is also referred to as machine type communication (MTC) terminal) that performs machine to machine (M2M) communication. Furthermore, at least part of components of theterminal device 100 may be implemented as a module (e.g. integrated circuit module constituted with a single die) that is mounted on these terminals. -
FIG. 26 is a block diagram illustrating an example of a schematic configuration of aserver 700 to which the technology according to the present disclosure may be applied. Theserver 700 includes aprocessor 701, amemory 702, astorage 703, anetwork interface 704, and abus 706. - The
processor 701 may be, for example, a central processing unit (CPU) or a digital signal processor (DSP), and controls various functions of theserver 700. Thememory 702 includes a random access memory (RAM) and a read only memory (ROM), and stores a program executed by theprocessor 701 and data. Thestorage 703 can include a storage medium such as semiconductor memories and hard disks. - The
network interface 704 is a wired communication interface for connecting theserver 700 to awired communication network 705. Thewired communication network 705 may be a core network such as evolved packet cores (EPCs), or a packet data network (PDN) such as the Internet. - The
bus 706 connects theprocessor 701, thememory 702, thestorage 703, and thenetwork interface 704 to each other. Thebus 706 may include two or more buses each having different speed (e.g. high speed bus and low speed bus). - In the
server 700 illustrated inFIG. 26 , one or more components (theinformation acquiring unit 331 and/or the control unit 333) included in theprocessing unit 330 described above with reference toFIG. 17 may be mounted in theprocessor 701. As an example, a program causing the processor to function as one or more of the components above (that is, a program causing the processor to perform the operation of one or more of the components above) may be installed in theserver 700, and theprocessor 701 may execute the program. As another example, theserver 700 may include a module including theprocessor 701 and thememory 702, and one or more of the components above may be mounted in the module. In this case, the module may store the program causing the processor to function as one or more of the components above in thememory 702, and the program may be executed by theprocessor 701. As described above, theserver 700 or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided. A readable recording medium in which the program is recorded may be provided. -
FIG. 27 is a block diagram illustrating a first example of a schematic configuration of an eNB to which the technology according to the present disclosure may be applied. AneNB 800 includes one ormore antennas 810 and abase station apparatus 820. Eachantenna 810 and thebase station apparatus 820 may be connected to each other via an RF cable. - Each of the
antennas 810 includes a single or a plurality of antenna elements (e.g. a plurality of antenna elements constituting a MIMO antenna) and is used for thebase station apparatus 820 to transmit and receive a wireless signal. TheeNB 800 may include the plurality of theantennas 810 as illustrated inFIG. 27 , and the plurality ofantennas 810 may, for example, correspond to a plurality of frequency bands used by theeNB 800. It should be noted that whileFIG. 27 illustrates an example in which theeNB 800 includes the plurality ofantennas 810, theeNB 800 may include thesingle antenna 810. - The
base station apparatus 820 includes acontroller 821, amemory 822, anetwork interface 823, and awireless communication interface 825. - The
controller 821 may be, for example, a CPU or a DSP, and operates various functions of an upper layer of thebase station apparatus 820. For example, thecontroller 821 generates a data packet from data in a signal processed by thewireless communication interface 825, and transfers the generated packet via thenetwork interface 823. Thecontroller 821 may generate a bundled packet by bundling data from a plurality of base band processors to transfer the generated bundled packet. Thecontroller 821 may al so have a logical function of performing control such as radio resource control, radio bearer control, mobility management, admission control, and scheduling. The control may be performed in cooperation with a surrounding eNB or a core network. Thememory 822 includes a RAM and a ROM, and stores a program executed by thecontroller 821 and a variety of control data (such as, for example, terminal list, transmission power data, and scheduling data). - The
network interface 823 is a communication interface for connecting thebase station apparatus 820 to thecore network 824. Thecontroller 821 may communicate with a core network node or another eNB via thenetwork interface 823. In this case, thecontroller 821 may be mutually connected to theeNB 800 and a core network node or another eNB through a logical interface (e.g. S1 interface or X2 interface). Thenetwork interface 823 may be a wired communication interface or a wireless communication interface for wireless backhaul. When thenetwork interface 823 is a wireless communication interface, thenetwork interface 823 may use a higher frequency band for wireless communication than a frequency band used by thewireless communication interface 825. - The
wireless communication interface 825 supports a cellular communication system such as long term evolution (LTE) or LTE-Advanced, and provides wireless connection to a terminal located within the cell of theeNB 800 via theantenna 810. Thewireless communication interface 825 may typically include a base band (BB)processor 826 and anRF circuit 827. TheBB processor 826 may, for example, perform encoding/decoding, modulation/demodulation, multiplexing/demultiplexing, and the like, and performs a variety of signal processing on each layer (e.g. L1, medium access control (MAC), radio link control (RLC), and packet data convergence protocol (PDCP)). TheBB processor 826 may have part or all of the logical functions as discussed above instead of thecontroller 821. TheBB processor 826 may be a module including a memory having a communication control program stored therein, a processor to execute the program, and a related circuit, and the function of theBB processor 826 may be changeable by updating the program. The module may be a card or blade to be inserted into a slot of thebase station apparatus 820, or a chip mounted on the card or the blade. Meanwhile, theRF circuit 827 may include a mixer, a filter, an amplifier, and the like, and transmits and receives a wireless signal via theantenna 810. - The
wireless communication interface 825 may include a plurality of theBB processors 826 as illustrated inFIG. 27 , and the plurality ofBB processors 826 may, for example, correspond to a plurality of frequency bands used by theeNB 800. Thewireless communication interface 825 may also include a plurality of theRF circuits 827, as illustrated inFIG. 27 , and the plurality ofRF circuits 827 may, for example, correspond to a plurality of antenna elements.FIG. 27 illustrates an example in which thewireless communication interface 825 includes the plurality ofBB processors 826 and the plurality ofRF circuits 827, but thewireless communication interface 825 may include thesingle BB processor 826 or thesingle RF circuit 827. - In the
eNB 800 illustrated inFIG. 27 , one or more components included in theprocessing unit 250 described above with reference toFIG. 13 (theinformation acquiring unit 251 and/or the control unit 253) may be mounted in thewireless communication interface 825. Alternatively, at least some of the components may be mounted in thecontroller 821. As an example, theeNB 800 may be equipped with a module including some or all components of the wireless communication interface 825 (for example, the BB processor 826) and/or thecontroller 821, and one or more of the components above may be mounted in the module. In this case, the module may store a program causing the processor to function as one or more of the components above (that is, a program causing the processor to perform the operation of one or more of the components above) and execute the program. As another example, the program causing the processor to function as one or more of the components above may be installed in theeNB 800, and the wireless communication interface 825 (for example, the BB processor 826) and/or thecontroller 821 may execute the program. As described above, theeNB 800, thebase station apparatus 820, or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided. A readable recording medium in which the program is recorded may be provided. For these points, one or more components included in theprocessing unit 260 described above with reference toFIG. 19 (theinformation acquiring unit 261 and/or the control unit 263), and one or more components included in theprocessing unit 270 described above with reference toFIG. 24 (theinformation acquiring unit 271 and/or the control unit 273) are the same as one or more of the components above included in theprocessing unit 250. - In the
eNB 800 illustrated inFIG. 27 , thewireless communication unit 220 described above with reference toFIG. 13 may be mounted in the wireless communication interface 825 (for example, the RF circuit 827). Theantenna unit 210 may be mounted in theantenna 810. Thenetwork communication unit 230 may be mounted in thecontroller 821 and/or thenetwork interface 823. -
FIG. 28 is a block diagram illustrating a second example of a schematic configuration of an eNB to which the technology according to the present disclosure may be applied. AneNB 830 includes one ormore antennas 840, abase station apparatus 850, and anRRH 860. Each of theantennas 840 and theRRH 860 may be connected to each other via an RF cable. Thebase station apparatus 850 and theRRH 860 may be connected to each other by a high speed line such as optical fiber cables. - Each of the
antennas 840 includes a single or a plurality of antenna elements (e.g. antenna elements constituting a MIMO antenna), and is used for theRRH 860 to transmit and receive a wireless signal. TheeNB 830 may include a plurality of theantennas 840 as illustrated inFIG. 28 , and the plurality ofantennas 840 may, for example, correspond to a plurality of frequency bands used by theeNB 830.FIG. 28 illustrates an example in which theeNB 830 includes the plurality ofantennas 840, but theeNB 830 may include thesingle antenna 840. - The
base station apparatus 850 includes acontroller 851, amemory 852, anetwork interface 853, awireless communication interface 855, and aconnection interface 857. Thecontroller 851, thememory 852, and thenetwork interface 853 are the same as thecontroller 821, thememory 822, and thenetwork interface 823 described with reference toFIG. 27 . - The
wireless communication interface 855 supports a cellular communication system such as LTE and LTE-Advanced, and provides wireless connection to a terminal located in a sector corresponding to theRRH 860 via theRRH 860 and theantenna 840. Thewireless communication interface 855 may typically include aBB processor 856. TheBB processor 856 is the same as theBB processor 826 described with reference toFIG. 27 except that theBB processor 856 is connected to anRF circuit 864 of theRRH 860 via theconnection interface 857. Thewireless communication interface 855 may include a plurality of theBB processors 856, as illustrated inFIG. 28 , and the plurality ofBB processors 856 may, for example, correspond to a plurality of frequency bands used by theeNB 830 respectively.FIG. 28 illustrates an example in which thewireless communication interface 855 includes the plurality ofBB processors 856, but thewireless communication interface 855 may include thesingle BB processor 856. - The
connection interface 857 is an interface for connecting the base station apparatus 850 (wireless communication interface 855) to theRRH 860. Theconnection interface 857 may be a communication module for communication on the high speed line which connects the base station apparatus 850 (wireless communication interface 855) to theRRH 860. - The
RRH 860 includes aconnection interface 861 and awireless communication interface 863. - The
connection interface 861 is an interface for connecting the RRH 860 (wireless communication interface 863) to thebase station apparatus 850. Theconnection interface 861 may be a communication module for communication on the high speed line. - The
wireless communication interface 863 transmits and receives a wireless signal via theantenna 840. Thewireless communication interface 863 may typically include theRF circuit 864. TheRF circuit 864 may include a mixer, a filter, an amplifier and the like, and transmits and receives a wireless signal via theantenna 840. Thewireless communication interface 863 may include a plurality of theRF circuits 864 as illustrated inFIG. 28 , and the plurality ofRF circuits 864 may, for example, correspond to a plurality of antenna elements.FIG. 28 illustrates an example in which thewireless communication interface 863 includes the plurality ofRF circuits 864, but thewireless communication interface 863 may include thesingle RF circuit 864. - In the
eNB 830 illustrated inFIG. 28 , one or more components included in theprocessing unit 250 described above with reference toFIG. 13 (theinformation acquiring unit 251 and/or the control unit 253) may be mounted in thewireless communication interface 855 and/or thewireless communication interface 863. Alternatively, at least some of the components may be mounted in thecontroller 851. As an example, theeNB 830 may be equipped with a module including some or all components of the wireless communication interface 855 (for example, the BB processor 856) and/or thecontroller 851, and one or more of the components above may be mounted in the module. In this case, the module may store a program causing the processor to function as one or more of the components above (that is, a program causing the processor to perform the operation of one or more of the components above) and execute the program. As another example, the program causing the processor to function as one or more of the components above may be installed in theeNB 830, and the wireless communication interface 855 (for example, the BB processor 856) and/or thecontroller 851 may execute the program. As described above, theeNB 830, thebase station apparatus 850, or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided. A readable recording medium in which the program is recorded may be provided. In these points, one or more components included in theprocessing unit 260 described above with reference toFIG. 19 (theinformation acquiring unit 261 and/or the control unit 263), and one or more components included in theprocessing unit 270 described above with reference toFIG. 24 (theinformation acquiring unit 271 and/or the control unit 273) are the same as one or more of the components above included in theprocessing unit 250. - In the
eNB 830 illustrated inFIG. 28 , thewireless communication unit 220 described above with reference toFIG. 13 may be mounted in the wireless communication interface 863 (for example, the RF circuit 864). Theantenna unit 210 may be mounted in theantenna 840. Thenetwork communication unit 230 may be mounted in thecontroller 851 and/or thenetwork interface 853. -
FIG. 29 is a block diagram illustrating an example of a schematic configuration of asmartphone 900 to which the technology according to the present disclosure may be applied. Thesmartphone 900 includes aprocessor 901, amemory 902, astorage 903, anexternal connection interface 904, acamera 906, asensor 907, amicrophone 908, aninput device 909, adisplay device 910, aspeaker 911, awireless communication interface 912, one ormore antenna switches 915, one ormore antennas 916, abus 917, abattery 918, and asecondary controller 919. - The
processor 901 may be, for example, a CPU or a system on chip (SoC), and controls the functions of an application layer and other layers of thesmartphone 900. Thememory 902 includes a RAM and a ROM, and stores a program executed by theprocessor 901 and data. Thestorage 903 may include a storage medium such as semiconductor memories and hard disks. Theexternal connection interface 904 is an interface for connecting thesmartphone 900 to an externally attached device such as memory cards and universal serial bus (USB) devices. - The
camera 906 includes an image sensor such as charge coupled devices (CCDs) and complementary metal oxide semiconductor (CMOS), and generates a captured image. Thesensor 907 may include a sensor group including, for example, a positioning sensor, a gyro sensor, a geomagnetic sensor, and an acceleration sensor. Themicrophone 908 converts a sound that is input into thesmartphone 900 to an audio signal. Theinput device 909 includes, for example, a touch sensor which detects that a screen of thedisplay device 910 is touched, a key pad, a keyboard, a button, or a switch, and accepts an operation or an information input from a user. Thedisplay device 910 includes a screen such as liquid crystal displays (LCDs) and organic light emitting diode (OLED) displays, and displays an output image of thesmartphone 900. Thespeaker 911 converts the audio signal that is output from thesmartphone 900 to a sound. - The
wireless communication interface 912 supports a cellular communication system such as LTE or LTE-Advanced, and performs wireless communication. Thewireless communication interface 912 may typically include theBB processor 913, theRF circuit 914, and the like. TheBB processor 913 may, for example, perform encoding/decoding, modulation/demodulation, multiplexing/demultiplexing, and the like, and performs a variety of types of signal processing for wireless communication. On the other hand, theRF circuit 914 may include a mixer, a filter, an amplifier, and the like, and transmits and receives a wireless signal via theantenna 916. Thewireless communication interface 912 may be a one-chip module in which theBB processor 913 and theRF circuit 914 are integrated. Thewireless communication interface 912 may include a plurality ofBB processors 913 and a plurality ofRF circuits 914 as illustrated inFIG. 29 .FIG. 29 illustrates an example in which thewireless communication interface 912 includes a plurality ofBB processors 913 and a plurality ofRF circuits 914, but thewireless communication interface 912 may include asingle BB processor 913 or asingle RF circuit 914. - Further, the
wireless communication interface 912 may support other types of wireless communication system such as a short range wireless communication system, a near field communication system, and a wireless local area network (LAN) system in addition to the cellular communication system, and in this case, thewireless communication interface 912 may include theBB processor 913 and theRF circuit 914 for each wireless communication system. - Each
antenna switch 915 switches a connection destination of theantenna 916 among a plurality of circuits (for example, circuits for different wireless communication systems) included in thewireless communication interface 912. - Each of the
antennas 916 includes one or more antenna elements (for example, a plurality of antenna elements constituting a MIMO antenna) and is used for transmission and reception of the wireless signal by thewireless communication interface 912. Thesmartphone 900 may include a plurality ofantennas 916 as illustrated inFIG. 29 .FIG. 29 illustrates an example in which thesmartphone 900 includes a plurality ofantennas 916, but thesmartphone 900 may include asingle antenna 916. - Further, the
smartphone 900 may include theantenna 916 for each wireless communication system. In this case, theantenna switch 915 may be omitted from a configuration of thesmartphone 900. - The
bus 917 connects theprocessor 901, thememory 902, thestorage 903, theexternal connection interface 904, thecamera 906, thesensor 907, themicrophone 908, theinput device 909, thedisplay device 910, thespeaker 911, thewireless communication interface 912, and thesecondary controller 919 to each other. Thebattery 918 supplies electric power to each block of thesmartphone 900 illustrated inFIG. 29 via a feeder line that is partially illustrated in the figure as a dashed line. Thesecondary controller 919, for example, operates a minimally necessary function of thesmartphone 900 in a sleep mode. - In the
smartphone 900 illustrated inFIG. 29 , one or more components included in theprocessing unit 140 described above with reference toFIG. 10 (theinformation acquiring unit 141 and/or the control unit 143) may be mounted in thewireless communication interface 912. Alternatively, at least some of the components may be mounted in theprocessor 901 or thesecondary controller 919. As an example, thesmartphone 900 may be equipped with a module including some or all components of the wireless communication interface 912 (for example, the BB processor 913), theprocessor 901, and/or thesecondary controller 919, and one or more of the components above may be mounted in the module. In this case, the module may store a program causing the processor to function as one or more of the components above (that is, a program causing the processor to perform the operation of one or more of the components above) and execute the program. As another example, the program causing the processor to function as one or more of the components above may be installed in thesmartphone 900, and the wireless communication interface 912 (for example, the BB processor 913), theprocessor 901, and/or thesecondary controller 919 may execute the program. As described above, thesmartphone 900 or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided. A readable recording medium in which the program is recorded may be provided. For these points, one or more components included in theprocessing unit 150 described above with reference toFIG. 12 (theinformation acquiring unit 151 and/or the control unit 153), one or more components included in theprocessing unit 160 described above with reference toFIG. 15 (theinformation acquiring unit 161 and/or the control unit 163), one or more components included in theprocessing unit 170 described above with reference toFIG. 21 (theinformation acquiring unit 171 and/or the control unit 173), and one or more components included in theprocessing unit 180 described above with reference toFIG. 23 (theinformation acquiring unit 181 and/or the control unit 183) are the same as one or more of the components above included in theprocessing unit 140. - In the
smartphone 900 illustrated inFIG. 29 , for example, thewireless communication unit 120 described above with reference toFIG. 10 may be mounted in the wireless communication interface 912 (for example, the RF circuit 914). Theantenna unit 110 may be mounted in theantenna 916. -
FIG. 30 is a block diagram illustrating an example of a schematic configuration of acar navigation apparatus 920 to which the technology according to the present disclosure may be applied. Thecar navigation apparatus 920 includes aprocessor 921, amemory 922, a global positioning system (GPS)module 924, asensor 925, adata interface 926, acontent player 927, astorage medium interface 928, aninput device 929, adisplay device 930, aspeaker 931, awireless communication interface 933, one ormore antenna switches 936, one ormore antennas 937, and abattery 938. - The
processor 921 may be, for example, a CPU or an SoC, and controls the navigation function and the other functions of thecar navigation apparatus 920. Thememory 922 includes a RAM and a ROM, and stores a program executed by theprocessor 921 and data. - The
GPS module 924 uses a GPS signal received from a GPS satellite to measure the position (e.g. latitude, longitude, and altitude) of thecar navigation apparatus 920. Thesensor 925 may include a sensor group including, for example, a gyro sensor, a geomagnetic sensor, and an air pressure sensor. The data interface 926 is, for example, connected to an in-vehicle network 941 via a terminal that is not illustrated, and acquires data such as vehicle speed data generated on the vehicle side. - The
content player 927 reproduces content stored in a storage medium (e.g. CD or DVD) inserted into thestorage medium interface 928. Theinput device 929 includes, for example, a touch sensor which detects that a screen of thedisplay device 930 is touched, a button, or a switch, and accepts operation or information input from a user. Thedisplay device 930 includes a screen such as LCDs and OLED displays, and displays an image of the navigation function or the reproduced content. Thespeaker 931 outputs a sound of the navigation function or the reproduced content. - The
wireless communication interface 933 supports a cellular communication system such as LTE or LTE-Advanced, and performs wireless communication. Thewireless communication interface 933 may typically include theBB processor 934, theRF circuit 935, and the like. TheBB processor 934 may, for example, perform encoding/decoding, modulation/demodulation, multiplexing/demultiplexing, and the like, and performs a variety of types of signal processing for wireless communication. On the other hand, theRF circuit 935 may include a mixer, a filter, an amplifier, and the like, and transmits and receives a wireless signal via theantenna 937. Thewireless communication interface 933 may be a one-chip module in which theBB processor 934 and theRF circuit 935 are integrated. Thewireless communication interface 933 may include a plurality ofBB processors 934 and a plurality ofRF circuits 935 as illustrated inFIG. 30 .FIG. 30 illustrates an example in which thewireless communication interface 933 includes a plurality ofBB processors 934 and a plurality ofRF circuits 935, but thewireless communication interface 933 may be asingle BB processor 934 or asingle RF circuit 935. - Further, the
wireless communication interface 933 may support other types of wireless communication system such as a short range wireless communication system, a near field communication system, and a wireless LAN system in addition to the cellular communication system, and in this case, thewireless communication interface 933 may include theBB processor 934 and theRF circuit 935 for each wireless communication system. - Each
antenna switch 936 switches a connection destination of theantenna 937 among a plurality of circuits (for example, circuits for different wireless communication systems) included in thewireless communication interface 933. - Each of the
antennas 937 includes one or more antenna elements (for example, a plurality of antenna elements constituting a MIMO antenna) and is used for transmission and reception of the wireless signal by thewireless communication interface 933. Thecar navigation apparatus 920 includes a plurality ofantennas 937 as illustrated inFIG. 30 .FIG. 30 illustrates an example in which thecar navigation apparatus 920 includes a plurality ofantennas 937, but thecar navigation apparatus 920 may include asingle antenna 937. - Further, the
smartphone 920 may include theantenna 937 for each wireless communication system. In this case, theantenna switch 936 may be omitted from a configuration of thecar navigation apparatus 920. - The battery 950 supplies electric power to each block of the
car navigation apparatus 930 illustrated inFIG. 30 via a feeder line that is partially illustrated in the figure as a dashed line. The battery 950 accumulates the electric power supplied from the vehicle. - In the
car navigation apparatus 920 illustrated inFIG. 30 , one or more components included in theprocessing unit 140 described above with reference toFIG. 10 (theinformation acquiring unit 141 and/or the control unit 143) may be mounted in thewireless communication interface 933. Alternatively, at least some of the components may be mounted in theprocessor 921. As an example, thecar navigation apparatus 920 may be equipped with a module including some or all components of the wireless communication interface 933 (for example, the BB processor 934), and/or theprocessor 921, and one or more of the components above may be mounted in the module. In this case, the module may store a program causing the processor to function as one or more of the components above (that is, a program causing the processor to perform the operation of one or more of the components above) and execute the program. As another example, the program causing the processor to function as one or more of the components above may be installed in thecar navigation apparatus 920, and the wireless communication interface 933 (for example, the BB processor 934), and/or theprocessor 921 may execute the program. As described above, thecar navigation apparatus 920 or the module may be provided as an apparatus including one or more of the components above, and the program causing the processor to function as one or more of the components above may be provided. A readable recording medium in which the program is recorded may be provided. For these points, one or more components included in theprocessing unit 150 described above with reference toFIG. 12 (theinformation acquiring unit 151 and/or the control unit 153), one or more components included in theprocessing unit 160 described above with reference toFIG. 15 (theinformation acquiring unit 161 and/or the control unit 163), one or more components included in theprocessing unit 170 described above with reference toFIG. 21 (theinformation acquiring unit 171 and/or the control unit 173), and one or more components included in theprocessing unit 180 described above with reference toFIG. 23 (theinformation acquiring unit 181 and/or the control unit 183) are the same as one or more of the components above included in theprocessing unit 140. - In the
car navigation apparatus 920 illustrated inFIG. 30 , for example, thewireless communication unit 120 described above with reference toFIG. 12 may be mounted in the wireless communication interface 933 (for example, the RF circuit 935). Theantenna unit 110 may be mounted in theantenna 937. - Further, the technique according to the present disclosure may be implemented as an in-vehicle system (or a vehicle) 940 including one or more blocks of the above-described
car navigation apparatus 920, an in-vehicle network 941 and avehicle side module 942. That is, the in-vehicle system (or the vehicle) 940 may be provided as an apparatus including one more of the components above included in the processing unit 140 (or theprocessing unit 150, theprocessing unit 160, theprocessing unit 170, or the processing unit 180). Thevehicle side module 942 generates vehicle side data such as vehicle speed, engine speed and failure information and outputs the generated data to the in-vehicle network 961. - Each apparatus and each process according to the embodiments of the present disclosure have been described above with reference to
FIGS. 9 to 30 . - In the first embodiment, the terminal device 100-1 performs measurement reporting before a serving cell is in the off state. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting useful for selecting a new serving cell is performed.
- In the second embodiment, the terminal device 100-2 performs measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in the on state. In addition, the terminal device 100-2 performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in the off state. The first event and the second event have different offsets or thresholds. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting of a cell in the off state is suppressed.
- In the third embodiment, the terminal device 100-3 performs measurement reporting when predetermined conditions of traffic of the terminal device 100-3 are satisfied. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting useful for selecting a carrier (a cell) to be added according to an increase of traffic is performed.
- In the fourth embodiment, the control entity 300-4 decides to switch the cell to the on state based on a measurement result of a cell in the off state and information about a buffer status of the terminal device 100-4, which are reported by the terminal device 100-4. Accordingly, for example, it is possible to more appropriately switch the on/off state of a cell. More specifically, for example, when a necessity is high, the cell in the off state is switched to the on state.
- In the fifth embodiment, the base station 200-5 decides a candidate of a cell whose measurement is to be performed by the terminal device 100-5 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell. In the sixth embodiment, the base station 200-6 decides a candidate of a cell whose measurement is to be performed by the terminal device 100-6 or a priority of the candidate of the cell based on information about a schedule of the on/off state of the cell. Accordingly, for example, it is possible to perform measurement reporting suitable for an environment in which the on/off state of a cell is switched. More specifically, for example, measurement reporting of a cell that is unlikely to be in the off state is performed rather than measurement reporting of a cell that is likely to be in the off state. As a result, a handover to the cell that is unlikely to be in the off state may be performed.
- In the seventh embodiment, the terminal device 100-7 requests that a serving cell that is a cell associated with switching the on/off state continue in the on state. Accordingly, for example, the terminal device 100-7 can perform communication for a certain amount of time even in a cell associated with switching the on/off state.
- The preferred embodiment of the present disclosure has been described above with reference to the accompanying drawings, whilst the present disclosure is not limited to the above examples. A person skilled in the art may find various alterations and modifications within the scope of the appended claims, and it should be understood that they will naturally come under the technical scope of the present disclosure.
- For example, while an example in which a control entity and a base station are separate devices has been described, the present disclosure is not limited thereto. For example, the control entity may be mounted in the base station.
- For example, while an example in which a communication system supports LTE or LTE-A has been described in embodiments of the present disclosure, the present disclosure is not limited thereto. For example, the communication system may be a system that supports another communication standard.
- Further, it is not always necessary to execute the processing steps in the processing in the present specification in chronological order in order described in the flowcharts or the sequence diagrams. For example, the processing steps in the above-described processing may be executed in order different from the order described in the flowcharts or the sequence diagrams or may be executed in parallel.
- Further, it is also possible to create a computer program for making a processor (such as, for example, a CPU and a DSP) provided at apparatuses (such as, for example, the terminal device, the base station or the control entity, or the modules thereof) in the present specification function as the above-described apparatuses (in other words, a computer program for making the processor execute operation of the components of the above-described apparatuses). Further, it is also possible to provide a recording medium having the above-described computer program recorded therein. Further, it is also possible to provide an apparatus (such as, for example, a finished product and a module (such as parts, processing circuits and chips) for the finished product) including a memory having the above-described computer program stored therein and one or more processors which can execute the above-described computer program. Further, a method including the operation of one or more of the components (for example, an information acquiring unit and/or the control unit) of the above-described apparatuses is included in the technique according to the present disclosure.
- In addition, the effects described in the present specification are merely illustrative and demonstrative, and not limitative. In other words, the technology according to the present disclosure can exhibit other effects that are evident to those skilled in the art along with or instead of the effects based on the present specification.
- Additionally, the present technology may also be configured as below.
- (1)
- A device including:
- an acquiring unit configured to acquire information indicating that a serving cell is scheduled to be in an off state; and a control unit configured to perform measurement reporting before the serving cell is in the off state.
- (2)
- The device according to (1),
- wherein the serving cell is a primary cell of carrier aggregation.
- (3)
- The device according to (1) or (2), wherein the serving cell is a small cell.
- (4)
- The device according to any one of (1) to (3), wherein the control unit performs measurement reporting according to a generation of an event indicating that a serving cell is scheduled to be in the off state.
- (5)
- The device according to any one of (1) to (4),
- wherein the measurement reporting is measurement reporting of a cell other than the serving cell.
- (6)
- A device including:
- a control unit configured to perform measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in an on state,
- wherein the control unit performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in an off state, and
- the first event and the second event have different offsets or thresholds.
- (7)
- The device according to (6),
- wherein the second event has stricter generation conditions than the first event.
- (8)
- The device according to (6) or (7),
- wherein the neighbour cell in the on state becomes better than a serving cell by a first offset in the measurement result in the first event,
- the neighbour cell in the off state becomes better than the serving cell by a second offset in the measurement result in the second event, and
- the second offset is greater than the first offset.
- (9)
- The device according to (6) or (7),
- wherein the neighbour cell in the on state becomes better than a first threshold in the measurement result in the first event,
- the neighbour cell in the off state becomes better than a second threshold in the measurement result in the second event, and
- the second threshold is greater than the first threshold.
- (10)
- The device according to (6) or (7),
- wherein a serving cell becomes worse than a first threshold and the neighbour cell in the on state becomes better than a second threshold in the measurement result in the first event,
- the serving cell becomes worse than a third threshold and the neighbour cell in the off state becomes better than a fourth threshold in the measurement result in the second event, and
- the fourth threshold is greater than the second threshold or the third threshold is smaller than the first threshold.
- (11)
- The device according to (8) or (10), wherein the serving cell is a primary cell of carrier aggregation.
- (12)
- The device according to (6) or (7),
- wherein the neighbour cell in the on state becomes better than a secondary cell by a first offset in the measurement result in the first event,
- the neighbour cell in the off state becomes better than the secondary cell by a second offset in the measurement result in the second event, and
- the second offset is greater than the first offset.
- (13)
- A device including:
- an acquiring unit configured to acquire an offset or a threshold for an event regarding a measurement result of a neighbour cell; and
- a control unit configured to notify a terminal device of the offset or the threshold,
- wherein the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and
- the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- (14)
- A device including:
- an acquiring unit configured to acquire information about traffic of a terminal device; and
- a control unit configured to perform measurement reporting when predetermined conditions of the information are satisfied.
- (15)
- The device according to (14),
- wherein the information about the traffic is a traffic load of the terminal device, and
- the predetermined conditions include a condition that the traffic load of the terminal device be equal to or greater than a threshold.
- (16)
- The device according to (14),
- wherein the information about the traffic is an amount of traffic of the terminal device, and
- the predetermined conditions include a condition that the amount of traffic of the terminal device be equal to or greater than a threshold.
- (17)
- The device according to (16),
- wherein the threshold is average throughput of the terminal device.
- (18)
- The device according to any one of (14) to (17),
- wherein the measurement reporting includes measurement reporting of a cell in an off state.
- (19)
- A device including:
- an acquiring unit configured to acquire a measurement result of a cell in an off state and information about a buffer status of a terminal device, which are reported by the terminal device, and
- a control unit configured to decide to switch the cell to an on state based on the measurement result and the information.
- (20)
- The device according to (19),
- wherein the information is a buffer status report.
- (21)
- A device including:
- an acquiring unit configured to acquire information about a schedule of an on/off state of a cell; and
- a control unit configured to decide a candidate of a cell whose measurement is to be performed by a terminal device or a priority of a candidate of the cell based on the information.
- (22)
- The device according to (21),
- wherein the information is information indicating a schedule of switching from an on state to an off state.
- (23)
- The device according to (22),
- wherein the control unit does not include a cell having a schedule of switching from the on state to the off state in the candidate of the cell or sets a priority of a cell having a schedule of switching from the on state to the off state to be lower.
- (24)
- The device according to (21),
- wherein the information is information indicating a time during which the on state of a cell continues.
- (25)
- The device according to (24),
- wherein the control unit does not include a cell whose on state continuation time arrives within a predetermined period in a candidate of the cell or sets a priority of the cell whose on state continuation time arrives within the predetermined period to be lower.
- (26)
- The device according to (24),
- wherein the control unit does not include a cell whose on state continuation time arrives within a period for the terminal device to transmit data in the candidate of the cell or sets a priority of the cell whose on state continuation time arrives within the period for the terminal device to transmit the data to be lower.
- (27)
- A device including:
- an acquiring unit configured to acquire information indicating that a serving cell is a cell associated with switching of an on/off state; and
- a control unit configured to request that a serving cell continue in an on state.
- (28)
- A device including:
- an acquiring unit configured to acquire a request for maintaining an on state of a cell from a terminal device; and
- a control unit configured to maintain the on state of the cell in response to the request.
- (29)
- The device according to any one of (1) to (5), wherein the device is a terminal device or a module for a terminal device.
- (30)
- A method including:
- acquiring information indicating that a serving cell is scheduled to be in an off state; and
- performing, by a processor, measurement reporting before the serving cell is in the off state.
- (31)
- A program causing a processor to execute:
- acquiring information indicating that a serving cell is scheduled to be in an off state; and
- performing measurement reporting before the serving cell is in the off state.
- (32)
- A readable recording medium recording a program causing a processor to execute:
- acquiring information indicating that a serving cell is scheduled to be in an off state; and
- performing measurement reporting before the serving cell is in the off state.
- (33)
- The device according to any one of (6) to (12), wherein the device is a terminal device or a module for a terminal device.
- (34)
- A method including:
- performing, by a processor, measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in an on state; and
- performing, by a processor, measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in an off state,
- wherein the first event and the second event have different offsets or thresholds.
- (35)
- A program causing a processor to execute:
- performing measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in an on state; and
- performing measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in an off state,
- wherein the first event and the second event have different offsets or thresholds.
- (36)
- A readable recording medium recording a program causing a processor to execute:
- performing measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in an on state; and
- performing measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in an off state,
- wherein the first event and the second event have different offsets or thresholds.
- (37)
- The device according to (13),
- wherein the device is a base station, a base station device for a base station or a module for the base station device.
- (38)
- A method including:
- acquiring an offset or a threshold for an event regarding a measurement result of a neighbour cell; and
- notifying, by a processor, a terminal device of the offset or the threshold,
- wherein the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- (39)
- A program causing a processor to execute:
- acquiring an offset or a threshold for an event regarding a measurement result of a neighbour cell; and
- notifying a terminal device of the offset or the threshold,
- wherein the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and
- the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- (40)
- A readable recording medium recording a program causing a processor to execute:
- acquiring an offset or a threshold for an event regarding a measurement result of a neighbour cell; and
- notifying a terminal device of the offset or the threshold,
- wherein the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and
- the offset or the threshold for the second event is different from the offset or the threshold for the first event.
- (41)
- The device according to any one of (14) to (18),
- wherein the device is the terminal device or a module for the terminal device.
- (42)
- A method including:
- acquiring information about traffic of a terminal device; and
- performing, by a processor, measurement reporting when predetermined conditions of the information are satisfied.
- (43)
- A program causing a processor to execute:
- acquiring information about traffic of a terminal device; and
- performing measurement reporting when predetermined conditions of the information are satisfied.
- (44)
- A readable recording medium recording a program causing a processor to execute:
- acquiring information about traffic of a terminal device, and
- performing measurement reporting when predetermined conditions of the information are satisfied.
- (45)
- A method including:
- acquiring a measurement result of a cell in an off state and information about a buffer status of a terminal device, which are reported by the terminal device; and
- deciding, by a processor, to switch the cell to an on state based on the measurement result and the information.
- (46)
- A program causing a processor to execute:
- acquiring a measurement result of a cell in an off state and information about a buffer status of a terminal device, which are reported by the terminal device; and
- deciding to switch the cell to an on state based on the measurement result and the information.
- (47)
- A readable recording medium recording a program causing a processor to execute:
- acquiring a measurement result of a cell in an off state and information about a buffer status of a terminal device, which are reported by the terminal device; and
- deciding to switch the cell to an on state based on the measurement result and the information.
- (48)
- The device according to any one of (21) to (26),
- wherein the device is a base station, a base station device for a base station or a module for the base station device.
- (49)
- The device according to any one of (21) to (26),
- wherein the device is the terminal device or a module for the terminal device.
- (50)
- A method including:
- acquiring information about a schedule of an on/off state of a cell, and
- deciding, by a processor, a candidate of a cell whose measurement is to be performed by a terminal device or a priority of the candidate of the cell based on the information.
- (51)
- A program causing a processor to execute:
- acquiring information about a schedule of an on/off state of a cell; and
- deciding a candidate of a cell whose measurement is to be performed by a terminal device or a priority of the candidate of the cell based on the information.
- (52)
- A readable recording medium recording a program causing a processor to execute:
- acquiring information about a schedule of an on/off state of a cell; and
- deciding a candidate of a cell whose measurement is to be performed by a terminal device or a priority of the candidate of the cell based on the information.
- (53)
- The device according to (27), wherein the device is a terminal device or a module for a terminal device.
- (54)
- A method including:
- acquiring information indicating that a serving cell is a cell associated with switching of an on/off state; and
- requesting, by a processor, that a serving cell continue in an on state.
- (55)
- A program causing a processor to execute:
- acquiring information indicating that a serving cell is a cell associated with switching of an on/off state; and
- requesting that a serving cell continue in an on state.
- (56)
- A readable recording medium recording a program causing a processor to execute:
- acquiring information indicating that a serving cell is a cell associated with switching of an on/off state; and
- requesting that a serving cell continue in an on state.
- (57)
- The device according to (28),
- wherein the device is a base station, a base station device for the base station or a module for the base station device.
- (58)
- A method including:
- acquiring a request for maintaining an on state of a cell from a terminal device; and
- maintaining, by a processor, the on state of the cell in response to the request.
- (59)
- A program causing a processor to execute:
- acquiring a request for maintaining an on state of a cell from a terminal device; and
- maintaining the on state of the cell in response to the request.
- (60)
- A readable recording medium recording a program causing a processor to execute:
- acquiring a request for maintaining an on state of a cell from a terminal device; and
- maintaining the on state of the cell in response to the request.
-
- 1 communication system
- 100 terminal device
- 141, 151, 161, 171, 181 information acquiring unit
- 143, 153, 163, 173, 183 control unit
- 200 base station
- 251, 261, 271 information acquiring unit
- 253, 263, 273 control unit
- 300 control entity
- 331 information acquiring unit
- 333 control unit
Claims (20)
1. A device comprising:
an acquiring unit configured to acquire information indicating that a serving cell is scheduled to be in an off state; and
a control unit configured to perform measurement reporting before the serving cell is in the off state.
2. The device according to claim 1 ,
wherein the serving cell is a primary cell of carrier aggregation.
3. The device according to claim 1 ,
wherein the serving cell is a small cell.
4. The device according to claim 1 ,
wherein the control unit performs measurement reporting according to a generation of an event indicating that a serving cell is scheduled to be in the off state.
5. The device according to claim 1 ,
wherein the measurement reporting is measurement reporting of a cell other than the serving cell.
6. A device comprising:
a control unit configured to perform measurement reporting according to a generation of a first event regarding a measurement result of a neighbour cell in an on state,
wherein the control unit performs measurement reporting according to a generation of a second event regarding a measurement result of a neighbour cell in an off state, and
the first event and the second event have different offsets or thresholds.
7. The device according to claim 6 ,
wherein the second event has stricter generation conditions than the first event.
8. The device according to claim 6 ,
wherein the neighbour cell in the on state becomes better than a serving cell by a first offset in the measurement result in the first event,
the neighbour cell in the off state becomes better than the serving cell by a second offset in the measurement result in the second event, and
the second offset is greater than the first offset.
9. The device according to claim 6 ,
wherein the neighbour cell in the on state becomes better than a first threshold in the measurement result in the first event,
the neighbour cell in the off state becomes better than a second threshold in the measurement result in the second event, and
the second threshold is greater than the first threshold.
10. The device according to claim 6 ,
wherein a serving cell becomes worse than a first threshold and the neighbour cell in the on state becomes better than a second threshold in the measurement result in the first event,
the serving cell becomes worse than a third threshold and the neighbour cell in the off state becomes better than a fourth threshold in the measurement result in the second event, and
the fourth threshold is greater than the second threshold or the third threshold is smaller than the first threshold.
11. The device according to claim 8 ,
wherein the serving cell is a primary cell of carrier aggregation.
12. The device according to claim 6 ,
wherein the neighbour cell in the on state becomes better than a secondary cell by a first offset in the measurement result in the first event,
the neighbour cell in the off state becomes better than the secondary cell by a second offset in the measurement result in the second event, and
the second offset is greater than the first offset.
13. A device comprising:
an acquiring unit configured to acquire an offset or a threshold for an event regarding a measurement result of a neighbour cell; and
a control unit configured to notify a terminal device of the offset or the threshold,
wherein the offset or the threshold includes an offset or a threshold for a first event regarding a measurement result of a neighbour cell in an on state and an offset or a threshold for a second event regarding a measurement result of a neighbour cell in an off state, and
the offset or the threshold for the second event is different from the offset or the threshold for the first event.
14. A device comprising:
an acquiring unit configured to acquire information about traffic of a terminal device; and
a control unit configured to perform measurement reporting when predetermined conditions of the information are satisfied.
15. The device according to claim 14 ,
wherein the information about the traffic is a traffic load of the terminal device, and
the predetermined conditions include a condition that the traffic load of the terminal device be equal to or greater than a threshold.
16. The device according to claim 14 ,
wherein the information about the traffic is an amount of traffic of the terminal device, and
the predetermined conditions include a condition that the amount of traffic of the terminal device be equal to or greater than a threshold.
17. The device according to claim 16 ,
wherein the threshold is average throughput of the terminal device.
18. The device according to claim 14 ,
wherein the measurement reporting includes measurement reporting of a cell in an off state.
19. A device comprising:
an acquiring unit configured to acquire a measurement result of a cell in an off state and information about a buffer status of a terminal device, which are reported by the terminal device; and
a control unit configured to decide to switch the cell to an on state based on the measurement result and the information.
20. The device according to claim 19 ,
wherein the information is a buffer status report.
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2014104239A JP2015220658A (en) | 2014-05-20 | 2014-05-20 | apparatus |
JP2014-104239 | 2014-05-20 | ||
PCT/JP2015/056428 WO2015178067A1 (en) | 2014-05-20 | 2015-03-04 | Device |
Related Parent Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/JP2015/056428 A-371-Of-International WO2015178067A1 (en) | 2014-05-20 | 2015-03-04 | Device |
Related Child Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US16/401,117 Continuation US10531327B2 (en) | 2014-05-20 | 2019-05-02 | Device and a method for measuring a channel quality of a secondary cell in an on/off state |
Publications (1)
Publication Number | Publication Date |
---|---|
US20170041821A1 true US20170041821A1 (en) | 2017-02-09 |
Family
ID=54553744
Family Applications (4)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US15/303,637 Abandoned US20170041821A1 (en) | 2014-05-20 | 2015-03-04 | Device |
US16/401,117 Active US10531327B2 (en) | 2014-05-20 | 2019-05-02 | Device and a method for measuring a channel quality of a secondary cell in an on/off state |
US16/544,938 Active US10880772B2 (en) | 2014-05-20 | 2019-08-20 | Devices and methods for measuring and reporting channel quality in a radio network |
US17/100,969 Active 2035-05-24 US11528632B2 (en) | 2014-05-20 | 2020-11-23 | Device for measuring channel quality on primary cell and secondary cell |
Family Applications After (3)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US16/401,117 Active US10531327B2 (en) | 2014-05-20 | 2019-05-02 | Device and a method for measuring a channel quality of a secondary cell in an on/off state |
US16/544,938 Active US10880772B2 (en) | 2014-05-20 | 2019-08-20 | Devices and methods for measuring and reporting channel quality in a radio network |
US17/100,969 Active 2035-05-24 US11528632B2 (en) | 2014-05-20 | 2020-11-23 | Device for measuring channel quality on primary cell and secondary cell |
Country Status (4)
Country | Link |
---|---|
US (4) | US20170041821A1 (en) |
EP (1) | EP3148247A4 (en) |
JP (1) | JP2015220658A (en) |
WO (1) | WO2015178067A1 (en) |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20160050663A1 (en) * | 2014-08-15 | 2016-02-18 | Aviacomm Inc. | System and method for increasing data rate of commercial cellular communication systems with scattered spectrum |
US20210360468A1 (en) * | 2020-05-15 | 2021-11-18 | EXFO Solutions SAS | Event-based load balancing in 4g-5g multi-radio dual connectivity |
Families Citing this family (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2015220658A (en) | 2014-05-20 | 2015-12-07 | ソニー株式会社 | apparatus |
US11510215B2 (en) * | 2019-03-28 | 2022-11-22 | Mediatek Inc. | Electronic device and method for radio resource management (RRM) measurement relaxation |
Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20140302865A1 (en) * | 2011-10-26 | 2014-10-09 | Broadcom Corporation | Flexible Measurements in Unlicensed Band |
US20150327233A1 (en) * | 2014-05-09 | 2015-11-12 | Futurewei Technologies, Inc. | Device, Network, and Method for Communications with Dynamic Adaptation |
Family Cites Families (20)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US8902867B2 (en) * | 2007-11-16 | 2014-12-02 | Qualcomm Incorporated | Favoring access points in wireless communications |
JP5696775B2 (en) | 2009-10-30 | 2015-04-08 | ソニー株式会社 | COMMUNICATION CONTROL DEVICE, TERMINAL DEVICE, AND COMMUNICATION CONTROL METHOD |
EP2355579B1 (en) * | 2010-02-09 | 2012-08-22 | Telefonaktiebolaget LM Ericsson (publ) | Optimized handover configuration |
US9002393B2 (en) * | 2011-03-09 | 2015-04-07 | Interdigital Patent Holdings, Inc. | Desynchronized network access in M2M networks |
CN103188724B (en) * | 2011-12-31 | 2016-07-06 | 华为技术有限公司 | A kind of method that the measurement report of measurement event is reported |
JP5758352B2 (en) * | 2012-06-22 | 2015-08-05 | 株式会社Nttドコモ | Wireless communication system and base station |
JP2014027469A (en) * | 2012-07-26 | 2014-02-06 | Nec Commun Syst Ltd | Mobile communication system, base station, mobile station, and communication method |
US9113450B2 (en) * | 2012-08-23 | 2015-08-18 | Interdigital Patent Holdings, Inc. | Operating with multiple schedulers in a wireless system |
WO2014101043A1 (en) * | 2012-12-27 | 2014-07-03 | 华为技术有限公司 | Transmission control method, and transmission method and device |
EP2944036B1 (en) * | 2013-01-09 | 2021-05-12 | LG Electronics Inc. | Method and apparatus for performing measurement in wireless communication system |
US9253699B2 (en) * | 2013-01-29 | 2016-02-02 | Lg Electronics Inc. | Method and apparatus for controlling and supporting a dynamic cell on/off in wireless access system |
US9414384B2 (en) * | 2013-09-17 | 2016-08-09 | Telefonaktiebolaget Lm Ericsson (Publ) | State-driven secondary cell activation and deactivation |
US9674727B2 (en) * | 2014-01-17 | 2017-06-06 | Qualcomm Incorporated | Indication of cell mode and CSI feedback rules for cell on-off procedure |
CN104811962B (en) * | 2014-01-24 | 2021-03-09 | 中兴通讯股份有限公司 | Small cell base station state switching method and device |
US9537642B2 (en) * | 2014-02-03 | 2017-01-03 | Apple Inc. | Method and apparatus for frequency hopping coexistence in unlicensed radio frequency bands for mobile devices |
US9756679B2 (en) * | 2014-04-11 | 2017-09-05 | Qualcomm Incorporated | Discontinuous reception (DRX)-aware carrier sense adaptive transmission (CSAT) in shared spectrum |
US20150327106A1 (en) * | 2014-05-06 | 2015-11-12 | Acer Incorporated | Method of Handling Channel Status Information and Related Communication Device |
US9503209B2 (en) * | 2014-05-07 | 2016-11-22 | Qualcomm Incorporated | Cell ID management for discovery reference signals for small cells in LTE |
JP2015220658A (en) | 2014-05-20 | 2015-12-07 | ソニー株式会社 | apparatus |
US9929839B2 (en) * | 2014-08-08 | 2018-03-27 | Futurewei Technologies, Inc. | Device, network, and method for communications with fast adaptive transmission and reception |
-
2014
- 2014-05-20 JP JP2014104239A patent/JP2015220658A/en active Pending
-
2015
- 2015-03-04 EP EP15795788.7A patent/EP3148247A4/en active Pending
- 2015-03-04 WO PCT/JP2015/056428 patent/WO2015178067A1/en active Application Filing
- 2015-03-04 US US15/303,637 patent/US20170041821A1/en not_active Abandoned
-
2019
- 2019-05-02 US US16/401,117 patent/US10531327B2/en active Active
- 2019-08-20 US US16/544,938 patent/US10880772B2/en active Active
-
2020
- 2020-11-23 US US17/100,969 patent/US11528632B2/en active Active
Patent Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20140302865A1 (en) * | 2011-10-26 | 2014-10-09 | Broadcom Corporation | Flexible Measurements in Unlicensed Band |
US20150327233A1 (en) * | 2014-05-09 | 2015-11-12 | Futurewei Technologies, Inc. | Device, Network, and Method for Communications with Dynamic Adaptation |
Cited By (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20160050663A1 (en) * | 2014-08-15 | 2016-02-18 | Aviacomm Inc. | System and method for increasing data rate of commercial cellular communication systems with scattered spectrum |
US20210360468A1 (en) * | 2020-05-15 | 2021-11-18 | EXFO Solutions SAS | Event-based load balancing in 4g-5g multi-radio dual connectivity |
US11889345B2 (en) * | 2020-05-15 | 2024-01-30 | EXFO Solutions SAS | Event-based load balancing in 4G-5G multi-radio dual connectivity |
Also Published As
Publication number | Publication date |
---|---|
EP3148247A1 (en) | 2017-03-29 |
US11528632B2 (en) | 2022-12-13 |
WO2015178067A1 (en) | 2015-11-26 |
EP3148247A4 (en) | 2018-05-02 |
US10531327B2 (en) | 2020-01-07 |
US20190380057A1 (en) | 2019-12-12 |
US10880772B2 (en) | 2020-12-29 |
US20210105650A1 (en) | 2021-04-08 |
US20190261207A1 (en) | 2019-08-22 |
JP2015220658A (en) | 2015-12-07 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
US11388658B2 (en) | Information processing device, information processing method, and a program for information processing for performing measurement of first and second frequency bands based on first and second discovery reference signals within first and second periods respectively | |
US11528632B2 (en) | Device for measuring channel quality on primary cell and secondary cell | |
US10979945B2 (en) | Device to reduce consumption of radio resources of a macrocell | |
US10660099B2 (en) | Communication control device, communication control method, and terminal device | |
US11736958B2 (en) | Communication control device, and communication control method for determining a frequency range to be used by a base station | |
US20160249268A1 (en) | Radio communication apparatus, radio communication method, communication control apparatus, and communication control method | |
US10820337B2 (en) | Device in wireless communication system, and wireless communication method | |
JP2019071694A (en) | Device | |
US20200059789A1 (en) | Device and method for assigning subframes as blank subframes | |
US10028256B2 (en) | Apparatus | |
WO2015170494A1 (en) | Device and method |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
AS | Assignment |
Owner name: SONY CORPORATION, JAPAN Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:UCHIYAMA, HIROMASA;TAKANO, HIROAKI;YOSHIZAWA, ATSUSHI;AND OTHERS;REEL/FRAME:040332/0813 Effective date: 20160926 |
|
STPP | Information on status: patent application and granting procedure in general |
Free format text: FINAL REJECTION MAILED |
|
STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION |