WO2018174653A1 - 무선 통신 시스템에서 신호를 송신 또는 수신하는 방법 및 이를 위한 장치 - Google Patents
무선 통신 시스템에서 신호를 송신 또는 수신하는 방법 및 이를 위한 장치 Download PDFInfo
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- WO2018174653A1 WO2018174653A1 PCT/KR2018/003465 KR2018003465W WO2018174653A1 WO 2018174653 A1 WO2018174653 A1 WO 2018174653A1 KR 2018003465 W KR2018003465 W KR 2018003465W WO 2018174653 A1 WO2018174653 A1 WO 2018174653A1
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2647—Arrangements specific to the receiver only
- H04L27/2655—Synchronisation arrangements
- H04L27/2666—Acquisition of further OFDM parameters, e.g. bandwidth, subcarrier spacing, or guard interval length
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/0001—Systems modifying transmission characteristics according to link quality, e.g. power backoff
- H04L1/0006—Systems modifying transmission characteristics according to link quality, e.g. power backoff by adapting the transmission format
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- 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
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- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
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- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signaling for the administration of the divided path
- H04L5/0094—Indication of how sub-channels of the path are allocated
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- 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
- H04L5/14—Two-way operation using the same type of signal, i.e. duplex
- H04L5/1469—Two-way operation using the same type of signal, i.e. duplex using time-sharing
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- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0446—Resources in time domain, e.g. slots or frames
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Definitions
- the present invention relates to a wireless communication system, and more particularly, to a method and apparatus therefor for transmitting or receiving downlink control information in a wireless communication system.
- the terminal performs initial cell search (S101).
- the UE receives a Primary Synchronization Channel (P-SCH) and a Secondary Synchronization Channel (S-SCH) from the base station, synchronizes downlink with the base station, and obtains information such as a cell ID.
- the terminal acquires system information (e.g., MIB) through a PBCH (Physical Broadcast Channel).
- the UE may check the downlink channel state by receiving a DL downlink reference signal (RS).
- RS DL downlink reference signal
- the UE may obtain more specific system information (e.g., SIBs) by receiving a physical downlink control channel (PDCCH) and a physical downlink control channel (PDSCH) scheduled by the PDCCH (S102).
- SIBs system information
- PDCCH physical downlink control channel
- PDSCH physical downlink control channel
- the UE may perform a random access procedure for uplink synchronization.
- the UE may transmit a preamble (eg, Msg1) through a PRACH (Physical Random Access Channel) (S103), and may receive a response message (eg, Msg2) for the preamble through a PDSCH corresponding to the PDCCH and the PDCCH (S104).
- a preamble eg, Msg1
- PRACH Physical Random Access Channel
- Msg2 Physical Random Access Channel
- S104 Physical Random Access Channel
- contention resolution procedures such as additional PRACH transmission (S105) and PDCCH / PDSCH reception (S106) may be performed.
- the UE may perform PDCCH / PDSCH reception (S107) and PUSCH (Physical Uplink Shared Channel) / PUCCH (Physical Uplink Control Channel) transmission (S108) as a general uplink / downlink signal transmission procedure.
- the terminal may transmit uplink control information (UCI) to the base station.
- UCI may include Hybrid Automatic Repeat reQuest Acknowledgement / Negative-ACK (HARQ ACK / NACK), Scheduling Request (SR), Channel Quality Indicator (CQI), Precoding Matrix Indicator (PMI), and / or Rank Indication (RI) have.
- HARQ ACK / NACK Hybrid Automatic Repeat reQuest Acknowledgement / Negative-ACK
- SR Scheduling Request
- CQI Channel Quality Indicator
- PMI Precoding Matrix Indicator
- RI Rank Indication
- An object of the present invention is to provide a method and apparatus for more efficiently and accurately indicating a slot format through downlink control information in a wireless communication system supporting multiple subcarrier spacing (SCS).
- SCS subcarrier spacing
- a method for receiving a downlink control information by a terminal information on a reference SCS of a plurality of subcarrier spacing (SCS) numerology (numerology) Receiving; Receiving downlink control information through a terminal group common physical downlink control channel (PDCCH); And obtaining information on a slot format from the downlink control information, wherein the downlink control information indicates the slot format based on the reference SCS, and the SCS of the terminal is different from the reference SCS.
- the terminal may convert the slot format of the reference SCS according to the SCS of the terminal.
- a terminal for receiving downlink control information, the receiver; And receiving information on a reference SCS among a plurality of subcarrier spacing (SCS) numerologies by controlling the receiver, and receiving downlink control information through a common PDCCH (Physical Downlink Control Channel),
- a processor for obtaining information about a slot format from the downlink control information, wherein the downlink control information indicates the slot format based on the reference SCS, and the SCS of the terminal is different from the reference SCS;
- the processor may convert the slot format of the reference SCS according to the SCS of the terminal.
- a method for transmitting downlink control information by a base station in a wireless communication system for achieving the above technical problem is based on a number of subcarrier spacing (SCS) numerology (numerology) to the terminal Transmitting information about the SCS; Generating downlink control information including information about a slot format; And transmitting the downlink control information to a terminal group including the terminal through a terminal group common physical downlink control channel (PDCCH), even if the SCS of the terminal is different from the reference SCS.
- the slot format may be indicated to the terminal based on the SCS.
- a base station apparatus for performing the aforementioned downlink control information transmission method may be provided.
- Information on the reference SCS may be received through higher layer signaling.
- the time length of one slot varies according to the SCS, and the reference SCS is set to be less than or equal to the SCS of the terminal so that the time length of one slot according to the reference SCS is equal to or greater than the time length of one slot according to the SCS of the terminal. Can be.
- the terminal may interpret one slot according to the reference SCS as M consecutive slots according to the SCS of the terminal.
- the terminal determines whether each of the plurality of symbols included in the slot corresponds to D (downlink), U (uplink) or X (flexible) through the information on the slot format, the SCS of the terminal In case of M times the reference SCS, the terminal may interpret one D, U or X symbol according to the reference SCS into M D, U or X symbols according to the SCS of the terminal.
- the information on the slot format may indicate at least one of slot format combinations set in the terminal.
- a plurality of frequency bands may be set in the terminal, and each slot format combination may be a combination of a plurality of slot formats for the plurality of frequency bands.
- Each slot format combination may be a combination of a slot format for a downlink frequency band and a slot format for an uplink frequency band.
- each slot format combination may be a combination of a slot format for a new radio access technology (NR) frequency band and a slot format for a long-term evolution (LTE) frequency band.
- NR new radio access technology
- LTE long-term evolution
- Slot format combinations set in the terminal are received through higher layer signaling and may be a subset of a plurality of slot format combinations that can be supported in the wireless communication system.
- the slot format in a wireless communication system supporting multiple SCS, not only can the slot format be correctly interpreted by setting the reference SCS in the terminal, but also the slot format is signaled in common to the UE group based on the reference SCS.
- the payload size of the PDCCH can be reduced and the overhead of the PDCCH can be reduced as compared with the case of indicating the slot format for each SCS.
- FIG. 1 illustrates physical channels used in a 3GPP LTE / LTE-A system and a general signal transmission method using the same.
- 2 shows one slot based on 15 kHz SCS and one slot based on 60 kHz SCS in an NR system.
- FIG 3 illustrates combinations of slot formats according to an example of the present invention.
- 5 and 6 illustrate combinations of slot formats according to another example of the present invention.
- FIG. 7 illustrates a combination of slot formats according to another embodiment of the present invention.
- FIG 8 illustrates patterns of slot formats according to an embodiment of the present invention.
- FIG 9 illustrates reserved resource allocation for a group common PDCCH according to an embodiment of the present invention.
- FIG. 10 illustrates a GSS placed in CSS in accordance with one embodiment of the present invention.
- FIG. 11 illustrates GSS candidates with a fixed position within CSS in accordance with an embodiment of the present invention.
- FIG. 14 illustrates slot patterns for multiple CCs according to another embodiment of the present invention.
- 15 is a flowchart illustrating a method for transmitting and receiving downlink control information according to an embodiment of the present invention.
- FIG. 16 illustrates a terminal and a base station according to an embodiment of the present invention.
- CDMA code division multiple access
- FDMA frequency division multiple access
- TDMA time division multiple access
- OFDMA orthogonal frequency division multiple access
- SC-FDMA single carrier frequency division multiple access
- CDMA may be implemented with a radio technology such as Universal Terrestrial Radio Access (UTRA) or CDMA2000.
- TDMA may be implemented with wireless technologies such as Global System for Mobile communications (GSM) / General Packet Radio Service (GPRS) / Enhanced Data Rates for GSM Evolution (EDGE).
- GSM Global System for Mobile communications
- GPRS General Packet Radio Service
- EDGE Enhanced Data Rates for GSM Evolution
- OFDMA may be implemented in a wireless technology such as IEEE 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802-20, Evolved UTRA (E-UTRA).
- UTRA is part of the Universal Mobile Telecommunications System (UMTS).
- 3rd Generation Partnership Project (3GPP) long term evolution (LTE) employs OFDMA in downlink and SC-FDMA in uplink as part of Evolved UMTS (E-UMTS) using E-UTRA.
- LTE-A Advanced is an evolution of 3GPP LTE.
- eMBB enhanced mobile broadband
- RATs radio access technologies
- massive MTC massive machine type communications, mMTC
- URLLC Ultra-Reliable and Low Latency Communication
- New RAT new radio access technology
- New RAT may be referred to as 5G mobile communication for convenience.
- downlink (DL) and uplink (UL) transmission is performed through frames having a length of 10 ms, and each frame includes 10 subframes. Thus, one subframe corresponds to 1 ms. Each frame is divided into two half-frames.
- N symb slot denotes the number of symbols per slot
- ⁇ denotes an OFDM neumology
- N slot subframe ⁇ denotes the number of slots per subframe for the corresponding ⁇ .
- multiple OFDM numerologies as shown in Table 1 may be supported.
- ⁇ f means subcarrier spacing (SCS).
- ⁇ and CP cyclic prefix
- CP cyclic prefix
- BWP DL carrier bandwidth part
- BWP UL carrier bandwidth part
- Table 2 shows the number of symbols per slot (N symb slot ), the number of slots per frame (N slot frame, ⁇ ), and the number of slots per subframe (N slot subframe, ⁇ ) for each CP.
- Table 3 shows the number of symbols per slot (N symb slot ), the number of slots per frame (N slot frame, ⁇ ), and the number of slots per subframe (N slot subframe, ⁇ ) for each extended CS .
- the number of slots configuring one subframe may be changed according to subcarrier spacing (SCS).
- SCS subcarrier spacing
- the OFDM symbols included in each slot may correspond to any one of D (DL), U (UL), and X (flexible).
- DL transmission may be performed in D or X symbols
- UL transmission may be performed in U or X symbols.
- the flexible resource e.g., X symbol
- the flexible resource may be referred to as a reserved resource, other resource, or unknown resource.
- One resource block (RB) in NR corresponds to 12 subcarriers in the frequency domain.
- the RB may include a plurality of OFDM symbols.
- RE resource element
- RE resource element
- the carrier BWP may be defined as a set of contiguous physical resource blocks (PRBs).
- the carrier BWP may be referred to simply as BWP.
- Up to four BWPs may be configured for each uplink / downlink in one UE. Even if multiple BWPs are set, one BWP is activated for a given time. However, when a supplementary uplink (SUL) is configured in the terminal, four additional BWPs may be configured for the SUL, and one BWP may be activated for a given time.
- the UE is not expected to receive a PDSCH, a PDCCH, a channel state information-reference signal (CSI-RS) or a tracking reference signal (TRS) outside the activated DL BWP. In addition, the UE is not expected to receive the PUSCH or the PUCCH beyond the activated UL BWP.
- CSI-RS channel state information-reference signal
- TRS tracking reference signal
- a transmission unit of a control channel may be defined as a resource element group (REG) and / or a control channel element (CCE).
- REG resource element group
- CCE control channel element
- the REG may correspond to 1 OFDM symbol in the time domain and 1 PRB in the frequency domain.
- 1 CCE may correspond to 6 REGs.
- CORESET is a set of resources for the transmission of the control signal
- the search space of the control channel candidates that the terminal performs blind detection Can be as an assembly.
- the search space can be set on CORESET.
- CORESET for a common search space (CSS) and CORESET for a UE-specific search space (USS) may be set.
- multiple search spaces may be defined in one CORESET.
- CSS and USS may be set to the same CORESET.
- CSS may mean CORESET in which CSS is set
- USS may mean CORESET in which USS is set.
- the base station may signal information on the CORESET to the terminal. For example, a CORESET Configuration and a time duration (e.g., 1/2/3 symbol, etc.) of the corresponding CORESET may be signaled for each CORESET.
- a CORESET Configuration and a time duration (e.g., 1/2/3 symbol, etc.) of the corresponding CORESET may be signaled for each CORESET.
- bundling of 2 or 6 REGs may be performed.
- Bundling of 2 or 6 REGs to 2 symbol-CORESET is performed and time priority mapping may be applied.
- Bundling of 3 or 6 REGs to 3 symbol-CORESET is performed and time priority mapping can be applied.
- REG bundling the UE may assume the same precoding for the corresponding bundling unit.
- the operation of the UE when the slot type and the GP of the UE are the same or different will be described. Also, the method of processing a slot type indication when the numerology of the indicated slot type is changed, and methods of indicating reserved resources are described.
- the slot type may be referred to as a slot format.
- the UE may receive information about the slot type.
- the information on the slot type may indicate the slot type. For example, information on a downlink pilot time slot (DwPTS), an uplink pilot time slot (UpPTS), a guard period (GP), and a reserved resource may be provided. It may include.
- DwPTS downlink pilot time slot
- UpPTS uplink pilot time slot
- GP guard period
- a reserved resource may be provided. It may include.
- Information about the slot type may be transmitted periodically or aperiodically. Whether or not the received slot type indication information is applied may be determined or forcedly applied by the UE.
- information about the slot type may be received through the PDCCH.
- the information on the slot type may be received through a common PDCCH or may be received through UE-specific control information (e.g., DCI, etc.).
- the information on the slot type received through the common PDCCH may be control information for collectively indicating the slot type to all the UEs in a specific UE group or cell.
- the information on the slot type received through the UE-specific PDCCH may be control information indicating the slot type for each UE.
- the GP may be defined according to the end position of the DwPTS and the start position of the UpPTS.
- the GP can follow DwPTS.
- An end point of the DwPTS may be delivered to the UE by the common PDCCH.
- the UE may calculate a GP based on an end point of the delivered DwPTS and an UpPTS and UL slot to perform transmission.
- an indication for the GP may be signaled to the UE.
- the GP may precede the UpPTS.
- the UE may receive information on the starting point of the UpPTS through the Common PDCCH.
- the UE may use the start point of the UpPTS as the end point of the GP or the UE may determine the GP end point based on the start point of the UpPTS.
- the GP may exist only within a slot or may exist between slots.
- the position and length of the GP may be unlimited.
- the case where the GP exists between slots may be possible when the DL slot and the UL slot are present in succession.
- a GP may exist between the DL slot and the UL slot.
- Configuration may be performed for a method of forming a GP for each terminal or a terminal group.
- the configuration for the GP may be a cell-common configuration or predefined.
- Each terminal or terminal group may be configured with a GP, and cell-specific GP may be configured with less or more than the signaled GP for each terminal or terminal group.
- cell-specific GP may be configured with less or more than the signaled GP for each terminal or terminal group.
- an additional resource may be used as a GP by dynamic indication.
- an additional GP is formed according to a predetermined rule. Can be.
- the GP of the UE may be kept constant and may not be affected by the Common PDCCH after the GP is configured once. For example, the cell common or group common GP transmitted in a system information block (SIB) may not be changed by the common PDCCH. In addition, the indication of the GP in the common PDCCH may be omitted.
- SIB system information block
- GP when GP is 5-symbol and one slot is 14-symbol, D, U or reserved for 9 symbols may be indicated.
- the GP may be configured for each subframe or for each slot set. This GP configuration can be given as a fallback configuration.
- the GP set in the fallback may always be assumed for the Common PDCCH. Since fixed DL, UL, GP, or reserved set in fallback is assumed, a corresponding indication may be omitted in Common PDCCH.
- the GP of the UE may be changed by the Common PDCCH. There is no problem when the UE normally receives the Common PDCCH, but when the UE does not receive the Common PDCCH, a problem may occur in GP configuration.
- the network may need to indicate to the terminal the minimum GP and the maximum GP supported by the cell.
- the minimum GP may be defined so as not to be changed by the Common PDCCH.
- the minimum GP may be zero.
- the UE may maintain the most recently indicated slot type.
- the slot type configured through the semi-static signaling may be used.
- Best / Worst case GP used for fallback can be defined.
- the common PDCCH is defined to indicate the best GP
- the GP signaled for the fallback may also be configured as the best GP.
- the common PDCCH is defined to indicate the Worst GP
- the GP signaled for the fallback may also be configured as the Worst GP.
- the size of the DwPTS that the UE receives the signal and the size of the UpPTS that transmits the signal may be the same for all UEs, or may vary from UE to UE.
- the PTS of each UE may be set to sufficiently fit within the indicated slot type.
- the sizes of the DwPTS / UpPTS of all UEs may be the size of a PTS capable of UL / DL transmission / reception without changing the slot type indicated in common to the UE group.
- the sizes of DwPTS / UpPTS of all UEs may be the same.
- the size of the DwPTS that the UE receives the signal and the size of the UpPTS that transmits the signal may be the same for all UEs, or may vary from UE to UE.
- the DwPTS end points of all UEs may be set to be the same.
- the end point of the DwPTS may be the latest point, the fastest point, or the middle point among the DwPTS end points that UEs in a cell may have.
- the end point of the DwPTS pointed to by the network may be the latest of the DwPTS end points that UEs in a cell may have. Therefore, the DwPTS end point of a specific UE may be faster than the DwPTS end point indicated through the Common PDCCH. In this case, the UE may further transmit UL data by the time secured by terminating the DL reception first or UL data only in the UpPTS.
- the end point of the DwPTS indicated by the network may be the fastest point among the DwPTS end points that UEs in a cell may have. Therefore, the DwPTS end point of a specific UE may be later than the DwPTS end point indicated through the Common PDCCH.
- the UE transmits UL according to the UpPTS if the start point of its UpPTS enters the GP. If the UpPTS start point does not enter the GP, the UE may shorten the UpPTS to transmit the UL or skip the UL transmission on the UpPTS. have.
- the end point of the DwPTS pointed to by the network may be an average point of DwPTS end points that UEs in a cell may have. Therefore, the DwPTS end point of a specific UE may be slower or faster than the DwPTS end point indicated through the Common PDCCH.
- two UpPTS types may be defined as a short UpPTS and a long UpPTS, and the UE may prepare to transmit two UpPTS types.
- the slot size is also changed.
- the operation of the UE and the slot used may vary.
- Reference Numerology as a reference for indicating the slot type may be defined / configured.
- the UE may change the interpreted slot type according to the numerology used by the UE.
- the UE may apply by converting the size of the slot indicated by the Common PDCCH based on the reference numerology into a slot size suitable for the numerology used.
- the network when the network indicates the slot type, the network may indicate the slot type according to the numerology used by the UE. In this case, the UE may apply the slot type indicated by the network as it is without calculating the slot size separately.
- the network signals the configuration of the corresponding resources using the common PDCCH, or basically a fixed configuration for the use of the corresponding resources may be defined.
- the following methods may be considered for the UE to receive the CSI-RS.
- the UE may be defined to always receive the periodic CSI-RS. Even if there is no separate indication for CSI-RS reception, the UE may operate by assuming that the periodic CSI-RS is always transmitted by the network.
- the UE may already know candidate resources to which Periodic CSI-RS can be transmitted, and the network may inform the UE whether the actual CSI-RS is transmitted to the corresponding resource through the Common PDCCH.
- the load may be reduced than when the UE always receives the CSI-RS, but the UE may receive the CSI-RS only when the UE correctly receives the Common PDCCH.
- the network may set the methods (i) and (ii) according to the channel situation.
- CSI-RS may be divided into two types.
- the network may transmit a CSI-RS configuration by distinguishing a guaranteed CSI-RS that is guaranteed to be transmitted from a Potential CSI-RS that may be transmitted. Guaranteed CSI-RS is always transmitted without an indication through the Common PDCCH, Potential CSI-RS can be activated through the common PDCCH or other control signals.
- Guaranteed CSI-RS may be used for periodic CSI reporting
- Potential CSI-RS may be used for aperiodic CSI reporting triggered as needed.
- Guaranteed CSI-RS and Potential CSI-RS may be used for periodic / aperiodic CSI measurement.
- the UE may selectively use two types of CSI-RS according to the situation.
- a grant-free resource may be configured in which the UE may perform UL transmission without receiving a DCI corresponding to the UL Grant.
- an Always Grant-Free resource that is always used as a Grant-free resource and a Flexible Grant-Free resource that is set as a Grant-free resource according to a dynamic indication by the Common PDCCH.
- the UE may use the Always Grant-Free resource even if the UE does not receive the indication of the flexible resource.
- Always Grant-Free resources can be used as a role to support Flexible Grant-Free resources.
- the network may inform the Grant-Free resource that the UE can use through the Common PDCCH.
- the Grant-Free resource there is a restriction that the UE can use Grant-Free resources when the Common PDCCH is correctly received, but it is possible to minimize the resources used as Grant-Free in the system.
- the network may designate a UE group capable of attempting access for each grant-free resource, and may inform the grant-free resource only to the corresponding group through the Common PDCCH.
- the common PDCCH may include identification information on the UE (s) that can access the grant-free resource.
- Determining the UE accessible to the grant-free resource may be performed according to the priority.
- the priority may be determined based on a failure rate versus the number of access attempts, or may be determined according to the size / urgency of UL data to be transmitted.
- Such Always (or Fixed) / Flexible resource setting method is a semi-static resource such as radio resource management-reference signal (RMM-RS) resource, random access channel (RACH) resource, synchronization signal (SS) block resource, etc. It may also apply to.
- RMM-RS radio resource management-reference signal
- RACH random access channel
- SS synchronization signal
- TRPs Transmission / reception points
- the fixed resource may be set to a longer period than the flexible resource, and the fixed resource period may affect the delay / accuracy of neighbor cell measurement.
- the UE may be configured to perform measurement on a flexible resource of the neighbor cell.
- the UE may read the Common PDCCH of the neighbor cell in order to perform measurement in the flexible resource of the neighbor cell.
- the serving cell may signal information about a transmission scheme such as information on the configuration and common period of the Common PDCCH of the neighbor cell to the UE, or the neighbor cell may broadcast the corresponding information through the SIB.
- the neighbor cell measurement report of the UE using the flexible resource may be triggered by the network.
- flexible resources may additionally be used only for aperiodic RRM reporting triggered by the network.
- LTE Enhancements to LTE TDD for DL-UL Interference Management and Traffic Adaptation (eIMTA) and other NR need to be considered.
- eIMTA Interference Management and Traffic Adaptation
- the indication of the slot structure needs to be considered in an NR network provided with multiple numerologies.
- the relationship between the quasi-static configuration and the dynamic slot type indication also needs to be considered.
- the dynamic indication may take precedence over the quasi-static setting for measurement.
- cell specific GP length is set for all UEs.
- setting the same GP length for all terminals in a cell may be inefficient. For example, if the GP length is set to 2 symbols based on the neuralology corresponding to the 15 kHz SCS, the corresponding GP length corresponds to 8 symbols in Numerology corresponding to the 60 kHz SCS. As such, the corresponding GP length for the eight symbols may be a longer time than the GP length actually required for the UE operating on the 60 kHz SCS, and may result in waste of radio resources.
- UE-specific GP settings may be more appropriate in NR than cell-specific / UE-common GP settings.
- the maximum GP supported by the network may be signaled to the UE.
- UE specific GP may also be determined and signaled.
- the NR may support UE-specific GP setup.
- the UE may determine the DL symbol, the UL symbol and / or other symbol (e.g., Flexible symbol) from the slot type indication.
- the specific content of the slot type indication may, for example, indicate one of patterns of a predefined slot, indicate a bitmap of a DL / UL, and / or indicate a length of DwPTS and UpPTS.
- parts for different GP length processing need to be defined for the indication of the appropriate slot type.
- the first solution is for the network to indicate the best case for the DL / UL part.
- the DL / UL portion may be indicated according to the minimum GP supported by the network.
- a UE with a GP length greater than the minimum GP may determine based on the indicated slot structure where to place the additional GP required.
- the second solution is for the network to indicate the Worst Case for the DL / UL part.
- the DL / UL portion may be indicated according to the maximum GP supported by the network.
- a separate mechanism for using Other resources (e.g., Flexible) indicated by the slot indication may be used for the DL or UL for the UE having a GP smaller than the maximum GP.
- the UE may assume that the GP always terminates after the DL portion. If slot 1 is DL only and slot 2 located after slot 1 is UL dedicated, the GP may be placed at the beginning of slot 2 dedicated to UL. When the minimum GP is indicated by the slot type indication, the UE having a GP larger than the minimum GP may secure additional GP by reducing the UL portion.
- the UE may assume that the GP is always placed before the start of the UL portion. If slot 1 is DL only and slot 2 is UL only, the GP may be placed in a DL slot. When the minimum GP is indicated by the slot type indication, the UE having a GP larger than the minimum GP may secure additional GP by reducing the DL portion.
- the GP may be generated only by dynamic scheduling.
- the UE may form a GP between the end of the DL reception (e.g., the end of the control channel, the end of the DL data or the end of the measurement) and the start of the UL transmission.
- this approach can increase the UE complexity.
- it may be more desirable to determine that the GP is inserted at the end of the DL or at the beginning of the UL.
- the GP may be located after the DL portion or before the UL portion.
- the common PDCCH may indicate a slot type. It is important to the UE which Numerology is a reference for the slot type indication.
- a slot type indication may be transmitted based on reference numerology.
- the UE can interpret the indicated slot type as the numerology of the UE and can also estimate the correct size of the slot regardless of which numerology is used for the UE.
- the common PDCCH may indicate the slot type using the numerology of the UE.
- the UE does not need to reestimate the slot type and the slot size.
- the common PDCCH may need to be transmitted to the UE individually according to numerology.
- the network can operate in one direction (e.g., DL / UL) at a time. Therefore, it is more advantageous to transmit the slot type indication based on the reference numerology. For example, if the network operates with numerology of 15 kHz and 60 kHz SCS and transmits a slot type indication based on the 15 kHz SCS, the UE using the 60 kHz SCS indicates the indication based on symbol level alignment or slot level alignment.
- the DL part (eg, DL symbol) and the UL part (eg, UL symbol) can be interpreted in different numbers.
- FIG. 2 shows one slot based on 15 kHz SCS and one slot based on 60 kHz SCS. That is, one symbol length (i.e., time duration) based on 15 kHz SCS is equal to 4 symbols based on 60 kHz SCS.
- the slot having the indicated format may be interpreted as being repeated four times.
- Such 15 kHz, 60 kHz SCS is an example, the same method can be applied to the various SCS described in Table 1 above.
- SCS 1 is A kHz
- SCS 2 is B kHz
- B A * M (where A, B, and M are natural numbers)
- the length of 1 OFDM symbol based on SCS 1 is based on SCS 2 Equal to the length of the M OFDM symbols.
- the group common PDCCH may indicate the slot format based on the reference numerology regardless of the actual numerology used for the UE.
- the reference numerology may be indicated by the network (e.g., RRC signaling, etc.) or may be preset.
- a minimum SCS among various SCSs configured by the network in UEs may be used as reference numerology.
- the general goal is to avoid Always On signal or periodic transmission.
- periodic operation may be inevitable for some operations.
- the synchronization signal (SS) block, PRACH Configuration, CSI-RS Configuration, RRM-RS Configuration and / or Grant-Free resources may be periodically configured.
- the UE may assume that resources are used according to the configuration.
- the group common PDCCH may be defined as being unable to change the type of a resource set by the semi-static configuration. This approach is advantageous for improving UE performance and simplifying fallback operations.
- a resource indicated in a quasi-static configuration may be considered a potential candidate for quasi-static resources. If the group common PDCCH is not activated, it is assumed that a potential candidate is guaranteed. When the group common PDCCH is activated, the quasi-static resource can be used only when identified by the group common PDCCH. This approach is advantageous for improving network flexibility. However, even if the slot type is not changed in the fallback configuration that is semi-statically configured, signaling overhead may increase because group common PDCCH transmission is required.
- the quasi-static resources are divided into a first group and a second group, where the first group follows (i) the operation and the second group follows (ii) the operation.
- the first group can ensure minimum UE performance for measurement and minimum opportunity for PRACH, and the second group can be used in an on-demand manner.
- the common PDCCH may override at least some of the semi-statically configured resources.
- Other quasi-static configurations with different priorities than the common PDCCH may be considered, for example Guaranteed resource and Flexible resource.
- the slot format indicated through the group common PDCCH may include a downlink (D), an unknown (X) and / or an uplink (U) symbol.
- Multiple slot formats may achieve various combinations, and a combination s of slot formats may be set in the UE via higher layer signaling or the like.
- the SFI of the group common PDCCH may indicate the index of the slot format table (or slot format combinations / sets) set in the UE. If a plurality of BWPs and a plurality of numerologies are configured in one UE, a method for indicating a slot format for each numerology is needed. For example, numerology may be individually set for each BWP, and in this case, a slot format may be indicated for each BWP.
- the slot format table set for the UE may be a set of slot formats for multiple numerologies.
- entries 1 to 8 correspond to slot formats for the SCS 15 kHz.
- entries 9 to 16 may correspond to slot formats for 30 kHz.
- SFI of the group common PDCCH may indicate a slot format index suitable for the numerology used by the UE.
- slot formats for multiple BWPs may be indicated through one SFI.
- slot formats for multiple multiple BWPs may be indicated over 1 SFI by using an index offset between slot formats to be applied to numerologies.
- entries 1 to 8 are slot formats for the SCS 15 kHz.
- entries 9-16 correspond to slot formats for 30 kHz.
- the UE acquires the slot format using the SFI index in the 15 kHz SCS BWP, but interprets it as an SFI + 8 index in the 30 kHz SCS BWP. (Ie, apply index offset 8) to obtain a slot format for a 30 kHz SCS BWP.
- the slot format table set in the UE or the mother table which is the base of the slot format table set in the UE may correspond to a set of slot formats for a plurality of numerology.
- the UE can grasp the slot format for each numerology in a row corresponding to the SFI.
- a UE slot format table for one numerology may be defined, and a rule may be defined in which the corresponding table is extended or reduced according to numerology.
- the network has a merit that signaling overhead is reduced because Numerology does not need to indicate slot formats individually.
- the number of slots based on the UE SCS is larger than the number of slots based on the Reference SCS included in the same time duration. For example, four slots based on Reference SCS 15kHz have the same length of time as eight slots based on 30kHz SCS. Therefore, the UE needs to extend the slot format indicated based on the Reference SCS to match the SCS in use.
- the expansion of the slot format means extending the number of symbols included in the slot, but not extending the absolute time length. For example, if the network indicates a 0.5 ms time length containing 14 symbols, the UE may be interpreted to be extended to include 28/56 / ... symbols at the same 0.5 ms time length.
- Option 1 The D, X (Unknown), and U directions of each symbol of each slot format indicated based on the Reference SCS may be kept the same for the length of time occupied by the corresponding slot format.
- the Reference SCS is 15 kHz
- the slot format indicated based on the Reference SCS includes 4 D symbols, 6 X symbols, and 4 U symbols
- the SCS used by the UE is 30 kHz.
- four D symbols, six X symbols, and four U symbols included in the indicated slot format respectively, eight D symbols, twelve X symbols, for a UE operating based on a 30 kHz SCS, It is expanded to eight U symbols.
- the UE determines four D symbols indicated based on 15 kHz SCS based on eight 30 kHz SCS. Can be interpreted as D symbols. In this case, the number of D symbols is extended, but the sum of the time lengths of the D symbols in the slot remains the same. The UE can interpret the X symbols and the U symbols in the same way.
- Option 2-1 When the UE expands each D symbol and the U symbol, the UE may apply different rules depending on whether there is an X symbol before or after the corresponding symbol.
- the SCS used by the UE is more than twice as large as the Reference SCS, and when the D symbol with X is extended, the UE may set the rear half of the extended D symbol to X.
- the U symbol with an X in front when the U symbol with an X in front is extended, the UE may set the front half of the extended U symbol to X.
- the Reference SCS is 15 kHz and the number of D, X, and U symbols is 4, 6, and 4, respectively, four D symbols may be extended to four D symbols + 4 X symbols based on a 30 kHz SCS. .
- the indicated six X symbols are extended to twelve X symbols.
- the indicated 4 U symbols can be extended to 4 X symbols + 4 U symbols based on 30 kHz SCS.
- the slot format is interpreted as 4 D symbols + 20 X symbols + 4 U symbols. Accordingly, the length of time corresponding to the X symbol may be further increased compared to the indicated slot format.
- Option 2-2 If the SCS used by the UE is four times larger than the Reference SCS, and the D symbol with an X symbol is extended later, the UE may set 1/4 behind the extended D symbol as an X symbol. In addition, when the U symbol with the X symbol in front is extended, the first quarter of the extended U symbol may be set as the X symbol.
- Option 2-3 If the SCS used by the UE is more than 8 times larger than the Reference SCS, and the D symbol with the X symbol is extended later, the UE may set 1/8 of the extended D symbol to the X symbol. In addition, when the U symbol with the preceding X is extended, the front 1/8 of the extended U symbol may be set as the X symbol.
- Option 2-4 If the SCS used by the UE is 16 times larger than the Reference SCS, and the D symbol with the X symbol is extended later, the UE may set 1/16 behind the extended D symbol to X. In addition, when the U symbol with the front X symbol is extended, the front 1/16 of the extended U symbol may be set to X.
- Option 3-1 When the SCS used by the UE is twice as large as the Reference SCS, and the X symbol is extended, the format of the extended X symbol may be determined differently depending on whether there is a D / U symbol before and after the X symbol. Can be. As an example, when the X symbol with the front D is extended, the UE may set the front half of the extended X symbol as the D symbol. In addition, when the X symbol with U behind is extended, the UE may set the rear half of the extended X symbol as a U symbol.
- Option 3-2 When the SCS used by the UE is four times larger than the Reference SCS, and the X symbol is extended, the format of the extended X symbol may be determined differently depending on whether there is a D / U symbol before and after the X symbol. Can be. As an example, when the X symbol with the front D is extended, the UE may set the front 1/4 of the extended X symbol as the D symbol. Also, when the X symbol with the U behind is extended, the UE may set the rear quarter of the extended X symbol as the U symbol.
- Option 3-3 When the SCS used by the UE is more than 8 times larger than the Reference SCS, and the X symbol is extended, the format of the extended X symbol may be determined differently depending on whether there is a D / U symbol before and after the X symbol. Can be. As an example, when the X symbol with the front D is extended, the UE may set the front 1/8 of the extended X symbol as the D symbol. In addition, when the X symbol with U behind is extended, the UE may set 1/8 of the rear of the extended X symbol as a U symbol.
- Option 3-4 When the SCS used by the UE is 16 times larger than the Reference SCS, and the X symbol is extended, the format of the extended X symbol may be determined differently depending on whether there is a D / U symbol before and after the X symbol. Can be. As an example, when the X symbol with the front D is extended, the UE may set the front 1/16 of the extended X symbol as the D symbol. In addition, when the X symbol with the U behind is extended, the UE may set the 1/16 of the rear of the extended X symbol as the U symbol.
- the UE uses an SCS smaller than the Reference SCS, fewer slots / symbols exist than the number indicated based on the Reference SCS during the same length of time. For example, it has the same length of time as the Reference SCS 30kHz 8 slots and the 15kHz SCS 4 slots. Therefore, the UE needs to reduce the slot format indicated based on the Reference SCS to match the SCS used by the UE.
- Option 1-1 If the SCS used by the UE (hereinafter referred to as UE SCS) is smaller than the Reference SCS and there is at least one D or U in the symbol set of the Reference SCS to be reduced to one symbol of the UE SCS, the corresponding symbol set is the UE SCS. It can be interpreted as one D symbol or U symbol based.
- UE SCS SCS used by the UE
- Option 1-2 If the UE SCS is less than 1/2 times smaller than the Reference SCS, and the Portion of D or U is 1/2 or more in the symbol set of the Reference SCS reduced to 1 UE SCS symbol, the corresponding symbol set is UE. It may be set to the D or U symbol of the SCS. If the Portion of D or U is less than 1/2, the corresponding symbol set may be set to an X symbol of the UE SCS. For example, when the slot format DDDXXXXXXXXXUUU based on the Reference SCS 30kHz is indicated,
- one symbol of UE SCS 15 kHz may be defined by grouping two symbols.
- DX is converted to D
- SCS 30kHz based slot format DDDXXXXXXXUUU is converted to UE SCS 15kHz based slot format DDXXXUU.
- Option 1-3 If the UE SCS is less than 1/4 times smaller than the Reference SCS and the ratio of D or U is 3/4 or more in the symbol set of the Reference SCS to be reduced to one UE SCS symbol
- the symbol set may be set to the D or U symbol of the UE SCS. If the ratio of D or U is less than 3/4, the corresponding symbol set may be set to an X symbol of the UE SCS.
- Option 1-4 If the UE SCS is 1/8 times smaller than the Reference SCS and the ratio of D or U is 7/8 or more in the symbol set of the Reference SCS to be reduced to one UE SCS symbol.
- the symbol set may be set to the D or U symbol of the UE SCS. If the ratio of D or U is less than 7/8, the corresponding symbol set may be set to an X symbol of the UE SCS.
- Option 1-5 If the UE SCS is 1/16 times smaller than the Reference SCS and the ratio of D or U is 15/16 or more in the symbol set of the Reference SCS to be reduced to one UE SCS symbol.
- the symbol set may be set to the D or U symbol of the UE SCS. If the ratio of D or U is less than 15/16, the corresponding symbol set may be set to an X symbol of the UE SCS.
- Option 2-1 If the UE SCS is smaller than the Reference SCS and there is at least one X in the symbol set of the Reference SCS to be reduced to one UE SCS symbol, the corresponding symbol set may be converted to the X symbol of the UE SCS.
- Option 2-2 The symbol set of the Reference SCS whose UE SCS is less than 1/2 times smaller than the Reference SCS, and reduced to one UE SCS symbol is composed of D and X, or X and U, and is a symbol set If the ratio of X in the 1/2 or more, the corresponding symbol set may be set to the X symbol of the UE SCS. If the ratio of X in the symbol set is less than 1/2, it may be set to the D or U symbol of the UE SCS.
- Option 2-3 The symbol set of the Reference SCS, whose UE SCS is 1/4 times smaller than the Reference SCS, and reduced to one UE SCS symbol, consists of D and X, or X and U, and the symbol set If the ratio of X within 3/4 or more, the corresponding symbol set may be set to an X symbol of the UE SCS. If the ratio of X in the symbol set is less than 3/4, the symbol set may be set to the D or U symbol of the UE SCS.
- Option 2-4 The symbol set of the Reference SCS whose UE SCS is 1/8 times smaller than the Reference SCS and is reduced to one UE SCS symbol is composed of D and X or X and U, and is a symbol set. If the ratio of X within 7/8 or more, the corresponding symbol set may be set to an X symbol of the UE SCS. If the ratio of X in the symbol set is less than 7/8, the symbol set may be set to the D or U symbol of the UE SCS.
- Option 2-5 The symbol set of the Reference SCS whose UE SCS is 1/16 times smaller than the Reference SCS and is reduced to one UE SCS symbol is composed of D and X or X and U, and is a symbol set. If the ratio of X within 15/16 or more, the corresponding symbol set may be set to an X symbol of the UE SCS. If the ratio of X in the symbol set is less than 15/16, the symbol set may be set to the D or U symbol of the UE SCS.
- Option 3 When the UE SCS is smaller than the Reference SCS and the symbol set of the Reference SCS reduced to one SCS symbol includes all of D, X, and U, the corresponding symbol set may be set to an X symbol of the UE SCS. .
- Option 4-1 If the UE SCS is smaller than the Reference SCS and the symbol set of the Reference SCS reduced to one SCS symbol is mixed with D and U, the corresponding symbol set may be set to an X symbol of the UE SCS.
- Option 4-2 If the UE SCS is smaller than the Reference SCS and D and U are mixed in the symbol set of the Reference SCS reduced to one SCS symbol, the UE recognizes the symbol set as an error, and The slot format of the slot including the symbol set may be ignored.
- the network configures reference numerology
- Option 1 when the network informs the UE of a slot format table (e.g., combinations of slot formats), the network may inform the reference numerology referenced by the slot format table.
- a slot format table e.g., combinations of slot formats
- the network may not separately inform the reference numerology to the UE.
- the Default Reference Numerology may be defined, for example, as follows, but is not limited thereto.
- the smallest numerology among the numerologies configurable to the UE may be selected as the default reference numerology. For example, assuming that the SCS of Numerology that can be set in the UE is 15, 30, 60, 120 kHz, the network may define 15 kHz as the Default Reference Numerology.
- the largest numerology among the numerologies configurable to the UE may be selected as the default reference numerology. For example, assuming that the SCS of Numerology that can be set in the UE is 15, 30, 60, and 120 kHz, the network may define 120 kHz as the Default Reference Numerology.
- 15 kHz may be fixed to the Default Reference Numerology.
- the network may define a reference numerology of a control channel used to indicate an index in a slot format table configured in the UE.
- the numerology of the band in which the corresponding slot format is actually used may be defined as the reference numerology.
- the UE will reapply the specific SFI according to the slot format conversion rule described above. Whether or not it matters.
- the UE can perform the fallback operation by ignoring the slot format indicated above until the next SFI comes from the change of the BWP / carrier. have.
- Option 2 If the Numerology of the changed BWP / Carrier is different from the previous BWP / Carrier as another example, the UE will modify the slot format modified for the changed Numerology from the time of the change of the BWP / Carrier until the next SFI. Apply. However, if the modified slot format is not supported, the UE may ignore the slot format and perform the fallback operation.
- a plurality of beams are set in the UE, and beam switching may occur as necessary. If the beam is changed in this way, the UE may need to select whether to apply the existing SFI to the new beam as it is.
- the UE may perform the fallback operation by ignoring the existing slot format from the time of beam switching to the next SFI.
- Option 2 From the time point of beam switching to the next SFI, the UE may follow the existing slot format. If the Numerology of the changed Beam is different from the previous Beam, the UE applies the slot format modified for the changed Numerology. However, if the modified slot format is not supported, the UE may ignore the slot format and perform the fallback operation.
- the numerology of the schedule / scheduled carriers is the same in cross-carrier scheduling, there is no problem in applying the slot format change rule.
- a plurality of BWPs may be set for each carrier, and numerology may be different for each BWP.
- a reference numerology for the SFI needs to be defined for each cell.
- the numerology through which the group common PDCCH is transmitted may correspond to the reference numerology.
- SCell For SCell, the following options can be considered.
- Option 1 In the case of SCell, the slot format can be indicated based on the numerology of the currently activated BWP.
- Option 2 Numerology of BWP activated first in SCell can be defined as SCell's Reference Numerology.
- SCell Default BWP Numerology can be defined as SCell's Reference Numerology.
- the slot format indication is mainly used in the TDD environment, but may be used to inform the slot format of the FDD band.
- Each band of the FDD is generally fixed to D or U, but the network can be used for other purposes through 'Unknown'. In this case, since the network must inform the slot formats of the D band and the U band in the FDD, a solution for this is necessary.
- the network may allocate a supplementary uplink (SUL) temporarily using the LTE UL band to the NR user for an additional UL band of the NR user.
- SUL supplementary uplink
- the network needs to inform the slot format for the NR TDD band and the slot format for the SUL at the same time.
- a table in which slot formats for two or more bands (e.g., BWPs) are arranged in a row may be defined / set.
- FIG 3 illustrates combinations of slot formats according to an example of the present invention.
- the slot format group transmitted by the network to the UE is SF1 + SF2 +.
- ... Can be in the form of.
- This slot format group may be one entry in the slot format table, and these entries may form a slot format table.
- the network may set the combination (s) of slot formats corresponding to the slot format table to the UE through higher layer signaling, and then indicate the slot format combination of a specific entry to the UE through the group common PDCCH.
- the SCS of each band may be different. Therefore, the number of slots may be different for each SF.
- the slot format table may have a structure in which slots corresponding to the same specific time length among slot formats of each band are continuously arranged, and then slots corresponding to the same next time length are continuously arranged.
- Band 1's numerology is 60kHz SCS and Band 2's numerology is 15kHz SCS.
- Band 1 has 4 slots and Band 2 has 1 slot.
- the network wants to inform the UE of a slot format having a length of 2ms, the number of slots in Band1 is 8 and the number of slots in 2ms Band2 is 2 for 2ms.
- the network may arrange slot formats for two bands in the form of four slots of Band1 + one slot of Band2 + four slots of Band1 + one slot of Band2.
- the network may arrange four slots of Band1 + one slot of Band2 corresponding to the same 1 ms and then four slots of Band1 + one slot of Band2 corresponding to the next 1 ms.
- Such slot format placement may be performed regardless of the number of bands.
- FIG. 4 illustrates combinations of slot formats according to another example of the present invention.
- the SCS of band 1, band 2 and band 3 is the same.
- the SCS of band 2 is twice the SCS of band 1 and the SCS of band 1 is twice the SCS of band 3.
- 3 or 4 may be used when the network notifies a plurality of bands of slots corresponding to the same length of time at a time.
- 5 and 6 illustrate combinations of slot formats according to another example of the present invention.
- slot formats for a plurality of bands may be continuously arranged in one column, but according to another embodiment of the present invention, a slot format may be displayed by defining a column for each band.
- 3 to 6 illustrate a method of indicating a slot format for a plurality of bands by using a single slot format table.
- a column is defined for each band and a sub-column is defined for each numerology that each band can have, so that the network can indicate a slot format for each numerology of a plurality of bands in one row at a time.
- FIG. 7 illustrates a combination of slot formats according to an embodiment of the present invention.
- the number of bands and the number of numerology of each band may be changed. As the number of bands and / or the number of numerology of each band increases, the size of the slot format table shown may also increase.
- each band should be considered. This is because the method of representing the slot format of each band may vary depending on which reference numerology is determined.
- Each band may be, for example, any one of a DL band, an UL band, a SUL band, and a TDD band, but is not limited thereto.
- the slot format indicated by the slot format table may be a slot format suitable for the numerology of each band. For example, if Band1 is a 30kHz SCS and Band2 is a 15kHz SCS, a slot format for each band is defined as a slot format for a 30kHz SCS and a slot format for a 15kHz SCS, respectively.
- a slot format column may be arranged for each band or a combination of slot formats for 30 kHz SCS / 15 kHz SCS.
- the slot format can be indicated based on the smallest numerology among the numerologies set in multiple bands.
- the UE may modify and apply the indicated slot format according to the numerology of each band according to the slot format extension scheme described above.
- the slot format may be indicated based on the maximum numerology among the numerologies set in the plurality of bands.
- Option 4-1 Reference Numerology may be separately defined, and the slot format of each band may be indicated based on Reference Numerology.
- Option 4-2 Reference Numerology is separately defined, and a slot format may be indicated based on Reference Numerology only in some bands. For the remaining band (s), a slot format suitable for the numerology of the corresponding band may be indicated. For example, some bands to which Reference Numerology is applied may be at least one of DL band, UL band, SUL band, and TDD band.
- Reference numerology in options 4-1 and 4-2 may be determined through the reference numerology determination method described above.
- the proposed schemes described above may be implemented independently, but may be implemented in combination (or merge) of some proposed schemes.
- Information on whether the proposed methods are applied (or information on the rules of the proposed methods) may be defined so that the base station notifies the terminal through a predefined signal (e.g., a physical layer signal or a higher layer signal).
- a signaling method may include a method of allocating and transmitting a reserved resource and a method of configuring and transmitting a search space.
- the group common PDCCH may be used to inform the UE of the slot format.
- Slot format may be indicated in various types.
- the payload size of the group common PDCCH may vary depending on the type of slot format indicated.
- the size of one slot (e.g., length in time domain) can be changed according to numerology. Also, the number of symbols constituting one slot may be changed according to numerology.
- the group common PDCCH may indicate a type for at least one slot.
- slots may be classified as shown in Table 5, but are not limited thereto.
- D-centric and U-centric slot types only the slot is indicated as being D-centric or U-centric, so the configuration of the actual symbols (e.g., downlink, uplink, etc.) included in the slot must be defined in advance.
- the DL / UL portion within the D / U-centric slot can be predefined or set by the network. There may be one or more D / U-centric patterns according to the DL / UL resource configuration.
- Reserved / DR slots may or may not be predefined.
- the purpose of the reserved / DR slot may be predefined by system information or higher layer indication. If the purpose of the reserved / DR slot is not defined in advance, the network will inform the purpose of the slot type through the group common PDCCH, or if the UE does not know the purpose of the reserved / DR slot, it will not. It may be. Reserved resources may be set separately from the slot type. For example, the network may configure reserved resources through dynamic / semi-static signaling.
- the group common PDCCH may indicate the type for multiple slots.
- the group common PDCCH may indicate a combination of at least one of the combination of multiple slots.
- the payload size of the group common PDCCH is increased and the signaling overhead is increased, which is inefficient. Accordingly, the number of slots to be indicated and each slot type are defined as one pattern, and the network may indicate the index of the pattern to the UE through the group common PDCCH.
- the slot type pattern may be defined as [periodicity / slot types or patterns or a set of slot types], but is not limited thereto.
- DU means a slot in which half of the slots are D symbols and the other half is U symbols.
- a slot corresponding to D in FIG. 8 corresponds to a slot format for a DL band (eg, DL BWP), and a slot corresponding to U corresponds to a slot format for a UL band (eg, UL BWP). It may be interpreted.
- the base station sets a pattern that combines the D slot format and the U slot format in the terminal, the base station determines the slot format for the DL band (eg, DL BWP) and the slot format for the UL band (eg, UL BWP). It may be interpreted as setting the combined pattern in the terminal.
- Multiple slot type patterns that can be used in that cell or group can be defined / configured, and the network can instruct the UE which of the multiple slot type patterns to use.
- a subset of the defined patterns may be signaled to the UE.
- FIG. 8 a total of 12 patterns are shown, and the 5th to 8th patterns, which are defined using 2 slot intervals of 12 patterns, may be signaled to the UE as available.
- the four patterns # 5 to 8 may be indexed again to be regarded as # 1 to 4 patterns.
- the network may transmit only the indexes of the sequentially re-indexed patterns to the group common PDCCH.
- the group common PDCCH may be configured to cover four patterns without having to cover all 12 patterns, in which case the payload size of the group common PDCCH may be reduced.
- Information about the subset of the slot type patterns may be delivered to the UE via a MAC control element (CE) or transmitted on a group common PDCCH.
- the network may first define a period in which a pattern will be indicated through system information.
- the information about the subset of the slot type patterns may be transmitted through UE-specific higher layer signaling.
- the pattern for the long section may also be defined in the form of repeating the pattern for the short section.
- the pattern information for the long interval can replace the pattern information for the short interval.
- the group common PDCCH may indicate a slot type in symbol units constituting the slot.
- resource types such as Table D / U / Reserved may be applied in symbol units.
- Table 6 shows an exemplary slot format on the assumption that one slot consists of seven symbols.
- the group common PDCCH may indicate the index of the symbol pattern.
- Table 7 shows an exemplary symbol pattern (or slot format) on the assumption that one slot consists of seven symbols.
- the group common PDCCH may further include other information in addition to the slot format information.
- the group common PDCCH may include puncturing information for URLLC.
- the section to be used as the URLLC may be indicated in units of slots or in units of symbols.
- the group common PDCCH may include information on semi-static resources such as CSI-RS.
- the group common PDCCH may indicate information about a corresponding quasi-static resource, and if the quasi-static resource has a period, the period and a time range transmitted therein.
- a network may consider a method of configuring and transmitting a search space for a group common PDCCH and a method of securing and transmitting a reserved resource for a group common PDCCH.
- the network may reserve resources (e.g., RE, REG, RB, CCE, etc.) in which the group common PDCCH can be transmitted in advance.
- resources e.g., RE, REG, RB, CCE, etc.
- group common PDCCH Since the group common PDCCH is also a control channel, it may be disposed on CORESET. In addition, the location of the reserved resource for the group common PDCCH is preferably arranged to minimize blocking with other control channels. In particular, group common PDCCHs should avoid blocking with CSS as much as possible.
- the logical location of the reserved resource for the group common PDCCH may be immediately before or after CSS.
- the reserved resource for the group common PDCCH may be located at the end of the CORESET or at a position spaced apart by a predetermined offset from the start index or the end index of the CSS.
- the offset may be different for each cell / group.
- the offset may be known to the UE by system information or higher layer signaling.
- a resource for group common PDCCH may be disposed in CSS.
- the size of the group common PDCCH may be equal to or smaller than the size of the smallest candidate among control channel candidates in the CSS.
- the reserved resource for the group common PDCCH may be included in the candidate of CSS, regardless of whether the group common PDCCH is detected in the reserved resource in the CSS, the UE basically performs blind detection (BD) for the CSS. can do.
- BD blind detection
- the location of the reserved resource for the group common PDCCH may be known to the UE by system information or higher layer signaling.
- the candidates available for transmitting the PDCCH eg, common control information other than the group common PDCCH
- the UE may assume that the candidate to which the group common PDCCH is mapped is not used as a CSS candidate of another channel, and may assume this as an invalid candidate.
- the UE can skip blind detection for Invalid Candidate and move on to the next candidate.
- the group common PDCCH may be defined to be transmitted using CSS as in the general PDCCH. In this case, the general blind detection process for the CSS may be performed in the same way for the group common PDCCH.
- FIG. 9 illustrates reserved resource allocation for a group common PDCCH according to an embodiment of the present invention.
- a group common PDCCH is mapped to a block indicated by a dotted line in FIG. 9.
- FIG. 9A illustrates a case in which reserved resources for a group common PDCCH are allocated to a first candidate. Accordingly, the UE may omit blind detection of the general PDCCH for the block.
- FIG. 9B illustrates a case in which reserved resources for group common PDCCHs are allocated after the last candidate.
- FIG. 9C illustrates a case in which reserved resources for group common PDCCHs are allocated at positions having a predetermined offset from the last candidate.
- the network may configure a search space in which the group common PDCCH may be transmitted, and the UE may detect the group common PDCCH by performing blind detection in the corresponding search space.
- the search space in which the group common PDCCH can be transmitted is called GSS.
- GSS The search space in which the group common PDCCH can be transmitted
- RNTI radio network temporary identifier
- G-RNTI a radio network temporary identifier necessary for detecting a group common PDCCH in the GSS.
- the CRC of the group common PDCCH may be scrambled or masked through the G-RNTI.
- One UE may have one or multiple G-RNTIs.
- one UE may be configured with one or multiple GSSs.
- GSS can be defined as follows regardless of the number.
- the network may randomly place the GSS inside the CSS.
- the size and / or number of candidates of the GSS may be less than or equal to the size and / or number of candidates of the CSS.
- Candidates of the GSS may be arranged in succession with each other, or may be arranged separately in a distributed manner.
- the UE performs blind detection of the CSS and additionally performs only the CRC checking of the GSS (eg, CRC checking through the R-RNTI). This solves the overhead problem of additional blind detection.
- FIG. 10 illustrates a GSS placed in CSS in accordance with one embodiment of the present invention.
- the size of the largest candidate among the GSS candidates may be smaller than or equal to the size of the smallest candidate of CSS, and the number of GSS candidates may be considered to be less than half the number of CSS candidates.
- the network may randomly place the GSS throughout the CORESET by a hashing function using the G-RNTI.
- Candidates of the GSS may be arranged in succession with each other, or may be arranged separately in a distributed manner.
- the network can place GSS inside CSS.
- the method is similar to the method of arranging the GSS in the above-described CSS, according to the present embodiment, the network may form the GSS and arrange the GSS in the CSS in order to reduce the blocking probability with the control channel that can be transmitted in the CSS.
- the size / number of GSSs may be less than or equal to the size / number of CSS candidates.
- the candidate position of the GSS should be determined.
- the UE needs to perform the CRC check for the GSS additionally while performing the blind detection for the CSS, thereby reducing additional blind detection caused by the additional arrangement of the GSS.
- the location of the GSS candidate that may be placed in each CSS candidate may be defined by system information or higher layer signaling.
- Candidates of the GSS may be arranged in succession with each other, or may be arranged separately in a distributed manner.
- FIG. 11 illustrates GSS candidates with a fixed position within CSS in accordance with an embodiment of the present invention.
- the CCE start index corresponding to the even or odd candidate of CSS may be used as the CCE start index of the GSS candidate.
- the index of the even or odd CCE in the even or odd candidate of CSS may be used as the CCE start index of the GSS candidate.
- the start index of the GSS may be given by applying an offset to the start index or the end index of the CSS.
- the offset may be different for each cell / group.
- the offset may be known to the UE by system information or higher layer signaling.
- the UE may assume that the group common PDCCH is transmitted only in the slot or mini-slot in which the CSS is transmitted.
- the interval and the resource of the slot or mini-slot in which the group common PDCCH can be transmitted may be set separately from the CSS.
- the set of slots that the UE should monitor for the group common PDCCH may be different from the CSS monitoring set. More generally, a slot or mini-slot set monitored by the UE for each RNTI may be different, or a slot or mini-slot set monitored by the UE may be configured for each DCI size.
- the network may inform the UE of the format of the slot to be used for each carrier.
- the network may transmit a slot format indication for each CC by transmitting a group common PDCCH for each CC.
- the network may inform slot formats for all CCs through one PCC (Primary CC).
- the network may group the CCs into a plurality of groups and define a PCC for each group.
- the network may inform the slot format for CCs in the group through the PCC of each group.
- the method of grouping CCs may be as follows.
- the network may group CCs with the same slot format into the same group.
- the network may indicate only the slot format for one CC without having to indicate the slot format for each CC. Therefore, the amount of information and signaling overhead required for the slot format indication can be reduced.
- the network can group CCs with the same numerology into the same group. In this case, the slot lengths of all CCs in the group are the same. Therefore, the network may not consider the difference in slot index caused by numerology difference when indicating the slot format for the same length of time.
- the payload size of the group common PDCCH may be very large. Since the maximum size of the payload of the group common PDCCH becomes [slot format information * number of CCs for 1 CC], it is difficult to increase the size of slot format information for 1 CC. Since the slot format indication in symbol units requires a large amount of information, the slot format indication that can be used when a plurality of CCs are configured in the UE may be a slot type indication or a slot type pattern indication.
- the payload size of the group common PDCCH for multiple CCs may be determined according to whether CC grouping is performed. When the number of CCs to be grouped is the same, there is no problem when the indicated slot types are the same. However, when each CC needs to be indicated by a different slot type, it is difficult to support multiple CCs with one slot format indication.
- the slot format when the slot format is indicated through the slot type pattern, there may be a problem when the interval of the slot format to be received by the CCs in the group is different.
- the length of the slot format to be indicated when the UE receives the slot format for the long interval, it may be converted to the slot format for the short interval.
- the network may perform instructions for several slot format intervals through one slot format indication.
- the pattern for the long slot section may be defined through a pattern in which the short slot section is repeated.
- the pattern for the short slot period associated with the pattern for the long slot period may be predefined. Even if the UE receives the pattern for the long slot period, the UE may use the pattern of the short slot period that matches the pattern.
- FIGS. 12 and 13 illustrate slot patterns for multiple CCs according to an embodiment of the present invention.
- FIGS. 12 and 13 it is assumed that there are CCs in which four slots among CCs in a group are indicated by slot pattern intervals and CCs in which two slots are indicated by slot pattern intervals.
- the pattern for the 4 slot section may be defined in a form of repeating the pattern for the 2 slot section twice.
- a 2-slot interval pattern associated with a pattern for a 4-slot interval may be defined.
- the interval of the slot pattern may be determined by the difference in numerology. For example, a pattern for a short slot period may be used for a CC having a small SCS, and a pattern for a long slot period defined through a pattern for a short slot interval may be used for a CC having a large SCS. This is because when the time length is the same, the number of slots of a CC having a large SCS is larger than the number of slots of a CC having a small SCS.
- the pattern for 4 slots is a pattern for CC using SCS 30kHz, and the pattern for 2 slots is assumed to be for CC using SCS 15kHz.
- the pattern for the 4 slot section is defined as the pattern for the 2 slot section is repeated twice.
- the pattern for the 4 slot section and the pattern for the 2 slot section are patterns associated with each other.
- slot patterns for a plurality of CCs using different numerology may be indicated through one slot format indication.
- the interval for the slot format of each carrier may be tailored based on the carrier transmitting the group common PDCCH. If the section of the slot format of a specific carrier is shorter than the reference section, a new configuration set according to the repeating pattern / section may be given. Similarly, a case in which a slot format of a specific carrier is longer than a reference interval may be similarly processed.
- the CC index at the network reference and the CC index at the UE reference may be different. Therefore, the network may consider the CC index difference when reporting the slot format for the CC.
- NCC 1 may be divided into a plurality of UCCs (e.g., UCC 1 to UCC n).
- the network must inform the slot format based on the UCC, which is the standard of the UE, so that the UE can properly recognize the indicated information.
- the relationship between NCC and UCC may be delivered UE-specifically. For example, when there are m CCs set to NCC and n CCs set to UCC, the relationship between the NCC and the UCC may be defined by a network. The relationship between NCC and UCC may be signaled by MAC CE, system information or group common PDCCH.
- Table 8 illustrates the relationship between NCC and UCC for one UE.
- the network may indicate the slot format based on the index of the NCC.
- the UE may find the index of its own UCC corresponding to the NCC and use the indicated slot format as the slot format of the corresponding UCC.
- the network may indicate the slot format based on the index of the UCC.
- the network may define and indicate a slot format by the number of UCCs (UCC_max) of UEs having the most UCC among UEs belonging to the same group.
- UCC_max the number of UCCs
- a UE having a number of UCCs smaller than UCC_max may selectively acquire only as much indication information as the number of UCCs it has and determine a slot format for each UCC.
- mapping of NCC and UCC is made similarly for a plurality of UEs, it may be easy to indicate a slot format based on the UCC index.
- FIG. 15 is a flowchart illustrating a method of transmitting and receiving downlink control information including a slot format indication according to an embodiment of the present invention.
- FIG. 15 is an exemplary form of the above-described embodiments, and a description overlapping with the above description may be omitted.
- a base station transmits information about a reference SCS among a plurality of subcarrier spacing (SCS) numerologies (1505).
- Information about the reference SCS may be transmitted through higher layer signaling.
- the base station generates downlink control information including information on the slot format (1510).
- the base station transmits downlink control information to a terminal group including the terminal through a terminal group common physical downlink control channel (PDCCH) (1515).
- PDCH terminal group common physical downlink control channel
- the UE obtains information on the slot format from the downlink control information (1520).
- the downlink control information may indicate the slot format based on the reference SCS. If the SCS of the terminal is different from the reference SCS, the terminal may convert the slot format of the reference SCS according to the SCS of the terminal.
- the time length of one slot may vary depending on the SCS.
- the reference SCS may be set to be less than or equal to the SCS of the terminal so that the time length of one slot according to the reference SCS is equal to or greater than the time length of one slot according to the SCS of the terminal.
- the terminal may interpret one slot according to the reference SCS as M consecutive slots according to the SCS of the terminal.
- the terminal may determine whether each of the plurality of symbols included in the slot corresponds to one of D (downlink), U (uplink), or X (flexible) through the information on the slot format.
- the terminal may interpret one D, U or X symbol according to the reference SCS into M D, U or X symbols according to the SCS of the terminal.
- the information on the slot format may indicate at least one of slot format combinations set in the terminal.
- each slot format combination may be a combination of a plurality of slot formats for a plurality of frequency bands.
- Each slot format combination may be a combination of a slot format for a downlink frequency band and a slot format for an uplink frequency band.
- each slot format combination may be a combination of a slot format for a new radio access technology (NR) frequency band and a slot format for a long-term evolution (LTE) frequency band.
- NR new radio access technology
- LTE long-term evolution
- Slot format combinations configured in the terminal are received through higher layer signaling and may be a subset of a plurality of slot format combinations that can be supported in a wireless communication system.
- the slot format for the UL band e.g., UL BWP
- the slot format for the DL band e.g., DL BWP
- the slot format for the BWP on the NR band and the slot format for the BWP (e.g., SUL) on the LTE band may correspond to one slot format combination.
- the base station may set at least one slot format combination (s) of the plurality of slot format combinations to the terminal through RRC signaling. Thereafter, the base station may indicate at least one of the slot format combination s set in the RRC to the terminal through the DCI transmitted through the group common PDCCH.
- Base station 105 may be referred to as an eNB or a gNB.
- the terminal 110 may be referred to as a UE.
- the wireless communication system 100 may include one or more base stations and / or one or more terminals. .
- Base station 105 is a transmit (Tx) data processor 115, symbol modulator 120, transmitter 125, transmit and receive antenna 130, processor 180, memory 185, receiver 190, symbol demodulator ( 195, receive data processor 197.
- the terminal 110 transmits (Tx) the data processor 165, the symbol modulator 170, the transmitter 175, the transmit / receive antenna 135, the processor 155, the memory 160, the receiver 140, and the symbol. It may include a demodulator 155 and a receive data processor 150.
- the transmit and receive antennas 130 and 135 are shown as one in the base station 105 and the terminal 110, respectively, the base station 105 and the terminal 110 are provided with a plurality of transmit and receive antennas.
- the base station 105 and the terminal 110 according to the present invention support a multiple input multiple output (MIMO) system.
- MIMO multiple input multiple output
- the base station 105 according to the present invention may support both a single user-MIMO (SU-MIMO) and a multi-user-MIMO (MU-MIMO) scheme.
- SU-MIMO single user-MIMO
- MU-MIMO multi-user-MIMO
- the transmit data processor 115 receives the traffic data, formats the received traffic data, codes it, interleaves and modulates (or symbol maps) the coded traffic data, and modulates the symbols ("data"). Symbols ").
- the symbol modulator 120 receives and processes these data symbols and pilot symbols to provide a stream of symbols.
- the symbol modulator 120 multiplexes the data and pilot symbols and sends it to the transmitter 125.
- each transmission symbol may be a data symbol, a pilot symbol, or a signal value of zero.
- pilot symbols may be sent continuously.
- the pilot symbols may be frequency division multiplexed (FDM), orthogonal frequency division multiplexed (OFDM), time division multiplexed (TDM), or code division multiplexed (CDM) symbols.
- Transmitter 125 receives the stream of symbols and converts it into one or more analog signals, and further adjusts (eg, amplifies, filters, and frequency upconverts) the analog signals to provide a wireless channel. Generates a downlink signal suitable for transmission via the transmission antenna 130, the transmission antenna 130 transmits the generated downlink signal to the terminal.
- the receiving antenna 135 receives the downlink signal from the base station and provides the received signal to the receiver 140.
- Receiver 140 adjusts the received signal (eg, filtering, amplifying, and frequency downconverting), and digitizes the adjusted signal to obtain samples.
- the symbol demodulator 145 demodulates the received pilot symbols and provides them to the processor 155 for channel estimation.
- the symbol demodulator 145 also receives a frequency response estimate for the downlink from the processor 155 and performs data demodulation on the received data symbols to obtain a data symbol estimate (which is an estimate of the transmitted data symbols). Obtain and provide data symbol estimates to a receive (Rx) data processor 150. Receive data processor 150 demodulates (ie, symbol de-maps), deinterleaves, and decodes the data symbol estimates to recover the transmitted traffic data.
- the processing by symbol demodulator 145 and receiving data processor 150 is complementary to the processing by symbol modulator 120 and transmitting data processor 115 at base station 105, respectively.
- the terminal 110 is on the uplink, and the transmit data processor 165 processes the traffic data to provide data symbols.
- the symbol modulator 170 may receive and multiplex data symbols, perform modulation, and provide a stream of symbols to the transmitter 175.
- the transmitter 175 receives and processes a stream of symbols to generate an uplink signal.
- the transmit antenna 135 transmits the generated uplink signal to the base station 105.
- the transmitter and the receiver in the terminal and the base station may be configured as one radio frequency (RF) unit.
- RF radio frequency
- an uplink signal is received from the terminal 110 through the reception antenna 130, and the receiver 190 processes the received uplink signal to obtain samples.
- the symbol demodulator 195 then processes these samples to provide received pilot symbols and data symbol estimates for the uplink.
- the received data processor 197 processes the data symbol estimates to recover the traffic data transmitted from the terminal 110.
- Processors 155 and 180 of the terminal 110 and the base station 105 respectively instruct (eg, control, coordinate, manage, etc.) operations at the terminal 110 and the base station 105, respectively.
- Respective processors 155 and 180 may be connected to memory units 160 and 185 that store program codes and data.
- the memory 160, 185 is coupled to the processor 180 to store the operating system, applications, and general files.
- the processors 155 and 180 may also be referred to as controllers, microcontrollers, microprocessors, microcomputers, or the like.
- the processors 155 and 180 may be implemented by hardware or firmware, software, or a combination thereof.
- ASICs application specific integrated circuits
- DSPs digital signal processors
- DSPDs digital signal processing devices
- PLDs programmable logic devices
- FPGAs Field programmable gate arrays
- the firmware or software may be configured to include a module, a procedure, or a function for performing the functions or operations of the present invention, and to perform the present invention.
- the firmware or software configured to be may be provided in the processors 155 and 180 or stored in the memory 160 and 185 to be driven by the processors 155 and 180.
- the layers of the air interface protocol between the terminal and the base station between the wireless communication system (network) are based on the lower three layers of the open system interconnection (OSI) model, which is well known in the communication system. ), And the third layer L3.
- the physical layer belongs to the first layer and provides an information transmission service through a physical channel.
- a Radio Resource Control (RRC) layer belongs to the third layer and provides control radio resources between the UE and the network.
- the terminal and the base station may exchange RRC messages through the wireless communication network and the RRC layer.
- each component or feature is to be considered optional unless stated otherwise.
- Each component or feature may be embodied in a form that is not combined with other components or features. It is also possible to combine some of the components and / or features to form an embodiment of the invention.
- the order of the operations described in the embodiments of the present invention may be changed. Some components or features of one embodiment may be included in another embodiment or may be replaced with corresponding components or features of another embodiment. It is obvious that the claims may be combined to form an embodiment by combining claims that do not have an explicit citation relationship in the claims or as new claims by post-application correction.
- the present invention can be applied to various wireless communication systems.
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Abstract
Description
Claims (15)
- 무선 통신 시스템에서 단말이 하향링크 제어 정보를 수신하는 방법에 있어서,다수의 SCS(subcarrier spacing) 뉴머롤로지(numerology)들 중 기준 SCS에 대한 정보를 수신하는 단계;단말 그룹 공통 PDCCH(physical downlink control channel)를 통해 하향링크 제어 정보를 수신하는 단계; 및상기 하향링크 제어 정보로부터 슬롯 포맷에 대한 정보를 획득하는 단계를 포함하고,상기 하향링크 제어 정보는 상기 기준 SCS에 기초하여 상기 슬롯 포맷을 지시하고,상기 단말의 SCS가 상기 기준 SCS와 상이한 경우, 상기 단말은 상기 기준 SCS의 슬롯 포맷을 상기 단말의 SCS에 따라서 변환하는, 하향링크 제어 정보 수신 방법.
- 제 1 항에 있어서,상기 기준 SCS에 대한 정보는 상위 계층 시그널링을 통해 수신되는, 하향링크 제어 정보 수신 방법.
- 제 1 항에 있어서,1 슬롯의 시간 길이는 SCS에 따라서 가변하며,상기 기준 SCS에 따른 1 슬롯의 시간 길이가 상기 단말의 SCS에 따른 1 슬롯의 시간 길이 이상이 되도록, 상기 기준 SCS는 상기 단말의 SCS 이하로 설정되는, 하향링크 제어 정보 수신 방법.
- 제 3 항에 있어서,상기 단말의 SCS가 상기 기준 SCS의 M배인 경우, 상기 단말은 상기 기준 SCS에 따른 1 슬롯을 상기 단말의 SCS에 따른 M개의 연속된 슬롯들로 해석하는, 하향링크 제어 정보 수신 방법.
- 제 3 항에 있어서,상기 단말은 해당 슬롯에 포함된 다수의 심볼들 각각이 D(downlink), U(uplink) 또는 X(flexible) 중 어느 것에 해당하는지를 상기 슬롯 포맷에 대한 정보를 통해 결정하되,상기 단말의 SCS가 상기 기준 SCS의 M배인 경우, 상기 단말은 기준 SCS에 따른 하나의 D, U 또는 X 심볼을 상기 단말의 SCS에 따른 M개의 D, U 또는 X 심볼들로 해석하는, 하향링크 제어 정보 수신 방법.
- 제 1 항에 있어서,상기 슬롯 포맷에 대한 정보는, 상기 단말에 설정된 슬롯 포맷 조합들 중에서 적어도 하나를 지시하는, 하향링크 제어 정보 수신 방법.
- 제 6 항에 있어서,상기 단말에는 다수의 주파수 대역들이 설정되고,각 슬롯 포맷 조합은 상기 다수의 주파수 대역들에 대한 다수의 슬롯 포맷들을 조합한 것인, 하향링크 제어 정보 수신 방법.
- 제 7 항에 있어서,상기 각 슬롯 포맷 조합은 하향링크 주파수 대역에 대한 슬롯 포맷과 상향링크 주파수 대역에 대한 슬롯 포맷을 조합한 것이거나, 또는상기 각 슬롯 포맷 조합은 NR(new radio access technology) 주파수 대역에 대한 슬롯 포맷과 LTE(long-term evolution) 주파수 대역에 대한 슬롯 포맷을 조합한 것인, 하향링크 제어 정보 수신 방법.
- 제 6 항에 있어서,상기 단말에 설정된 슬롯 포맷 조합들은 상위 계층 시그널링을 통해 수신된 것으로써, 상기 무선 통신 시스템에서 지원 가능한 다수의 슬롯 포맷 조합들의 서브 세트인, 하향링크 제어 정보 수신 방법.
- 무선 통신 시스템에서 기지국이 하향링크 제어 정보를 송신하는 방법에 있어서,단말에 다수의 SCS(subcarrier spacing) 뉴머롤로지(numerology)들 중 기준 SCS에 대한 정보를 송신하는 단계;슬롯 포맷에 대한 정보를 포함하는 하향링크 제어 정보를 생성하는 단계; 및단말 그룹 공통 PDCCH(physical downlink control channel)를 통해 상기 단말을 포함하는 단말 그룹에 상기 하향링크 제어 정보를 송신하는 단계를 포함하고,상기 단말의 SCS가 상기 기준 SCS와 상이하더라도 상기 기지국은 상기 기준 SCS에 기초하여 상기 단말에 상기 슬롯 포맷을 지시하는, 하향링크 제어 정보 송신 방법.
- 제 10 항에 있어서,1 슬롯의 시간 길이는 SCS에 따라서 가변하며,상기 기준 SCS에 따른 1 슬롯의 시간 길이가 상기 단말의 SCS에 따른 1 슬롯의 시간 길이 이상이 되도록, 상기 기준 SCS는 상기 단말의 SCS 이하로 설정되는, 하향링크 제어 정보 송신 방법.
- 제 10 항에 있어서,상기 슬롯 포맷은 해당 슬롯에 포함된 다수의 심볼들 각각이 D(downlink), U(uplink) 또는 X(flexible) 중 어느 것에 해당하는지를 지시하고,상기 슬롯 포맷에 대한 정보는, 상기 단말에 설정된 슬롯 포맷 조합들 중에서 적어도 하나를 지시하는, 하향링크 제어 정보 송신 방법.
- 제 12 항에 있어서,상기 단말에는 다수의 주파수 대역들이 설정되고,각 슬롯 포맷 조합은 상기 다수의 주파수 대역들에 대한 다수의 슬롯 포맷들을 조합한 것인, 하향링크 제어 정보 송신 방법.
- 제 13 항에 있어서,상기 각 슬롯 포맷 조합은 하향링크 주파수 대역에 대한 슬롯 포맷과 상향링크 주파수 대역에 대한 슬롯 포맷을 조합한 것이거나, 또는상기 각 슬롯 포맷 조합은 NR(new radio access technology) 주파수 대역에 대한 슬롯 포맷과 LTE(long-term evolution) 주파수 대역에 대한 슬롯 포맷을 조합한 것인, 하향링크 제어 정보 송신 방법.
- 하향링크 제어 정보를 수신하는 단말에 있어서,수신기; 및상기 수신기를 제어함으로써 다수의 SCS(subcarrier spacing) 뉴머롤로지(numerology)들 중 기준 SCS에 대한 정보를 수신하고, 단말 그룹 공통 PDCCH(physical downlink control channel)를 통해 하향링크 제어 정보를 수신하고, 상기 하향링크 제어 정보로부터 슬롯 포맷에 대한 정보를 획득하는 프로세서를 포함하고,상기 하향링크 제어 정보는 상기 기준 SCS에 기초하여 상기 슬롯 포맷을 지시하고,상기 단말의 SCS가 상기 기준 SCS와 상이한 경우, 상기 프로세서는 상기 기준 SCS의 슬롯 포맷을 상기 단말의 SCS에 따라서 변환하는, 단말.
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- 2018-03-23 KR KR1020187015863A patent/KR102004273B1/ko active IP Right Grant
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- 2018-03-23 CN CN201880017509.3A patent/CN110431900B/zh active Active
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US11089591B2 (en) | 2018-03-28 | 2021-08-10 | Asustek Computer Inc. | Method and apparatus for slot format determination in a wireless communication system |
US11711790B2 (en) | 2018-03-28 | 2023-07-25 | Asustek Computer Inc. | Method and apparatus for slot format determination in a wireless communication system |
US11805516B2 (en) | 2018-08-10 | 2023-10-31 | Qualcomm Incorporated | Rate-matching around CRS for NR-TDD |
TWI809168B (zh) * | 2018-08-10 | 2023-07-21 | 美商高通公司 | 用於nr-tdd 的在crs 周圍的速率匹配 |
EP3874866A4 (en) * | 2018-11-01 | 2022-07-06 | Sharp Kabushiki Kaisha | USER DEVICES, BASE STATIONS AND PROCEDURES |
WO2020091080A1 (en) | 2018-11-01 | 2020-05-07 | Sharp Kabushiki Kaisha | User equipments, base stations, and methods |
CN112997558A (zh) * | 2018-11-01 | 2021-06-18 | 夏普株式会社 | 用户设备、基站和方法 |
US11937229B2 (en) | 2018-11-01 | 2024-03-19 | Sharp Kabushiki Kaisha | User equipments, base stations, and methods |
CN112997558B (zh) * | 2018-11-01 | 2024-07-30 | 夏普株式会社 | 用户设备、基站和方法 |
RU2801313C2 (ru) * | 2019-01-10 | 2023-08-07 | Панасоник Интеллекчуал Проперти Корпорейшн Оф Америка | Устройство приемопередатчика и устройство планирования |
US11985682B2 (en) | 2019-01-10 | 2024-05-14 | Panasonic Intellectual Property Corporation Of America | Transceiver device and scheduling device |
WO2020233420A1 (zh) * | 2019-05-22 | 2020-11-26 | 华为技术有限公司 | 时隙格式指示的方法和通信装置 |
US12082168B2 (en) | 2019-05-22 | 2024-09-03 | Huawei Technologies Co., Ltd. | Slot format indication method and communication apparatus |
WO2021056383A1 (zh) * | 2019-09-27 | 2021-04-01 | Oppo广东移动通信有限公司 | 无线通信的方法、终端设备和网络设备 |
CN114586446A (zh) * | 2019-11-01 | 2022-06-03 | 高通股份有限公司 | 动态时隙格式指示符配置 |
Also Published As
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CN110431900A (zh) | 2019-11-08 |
SG11201810581SA (en) | 2018-12-28 |
KR20180135862A (ko) | 2018-12-21 |
JP2020078085A (ja) | 2020-05-21 |
EP3606225A1 (en) | 2020-02-05 |
US20200137737A1 (en) | 2020-04-30 |
AU2018239031A1 (en) | 2018-12-20 |
CN110431900B (zh) | 2023-01-03 |
US20200404628A1 (en) | 2020-12-24 |
US20200213068A1 (en) | 2020-07-02 |
US11140015B2 (en) | 2021-10-05 |
MX2018014592A (es) | 2019-03-14 |
EP3606225A4 (en) | 2020-12-30 |
JP6812581B2 (ja) | 2021-01-13 |
AU2018239031B2 (en) | 2020-01-02 |
RU2699407C1 (ru) | 2019-09-05 |
US11296918B2 (en) | 2022-04-05 |
JP2019521602A (ja) | 2019-07-25 |
BR112019003170A2 (pt) | 2019-10-01 |
US11032120B2 (en) | 2021-06-08 |
JP6655738B2 (ja) | 2020-02-26 |
KR102004273B1 (ko) | 2019-07-26 |
US20200136882A1 (en) | 2020-04-30 |
US11102045B2 (en) | 2021-08-24 |
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