WO2005032006A1 - 移動体通信システム、移動体通信方法、基地局及び移動機 - Google Patents
移動体通信システム、移動体通信方法、基地局及び移動機 Download PDFInfo
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- WO2005032006A1 WO2005032006A1 PCT/JP2004/014662 JP2004014662W WO2005032006A1 WO 2005032006 A1 WO2005032006 A1 WO 2005032006A1 JP 2004014662 W JP2004014662 W JP 2004014662W WO 2005032006 A1 WO2005032006 A1 WO 2005032006A1
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- transmission
- base station
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- 238000000034 method Methods 0.000 title claims description 40
- 238000010295 mobile communication Methods 0.000 title claims description 27
- 230000005540 biological transmission Effects 0.000 claims abstract description 340
- 238000004891 communication Methods 0.000 claims abstract description 139
- 238000011144 upstream manufacturing Methods 0.000 claims abstract description 39
- 238000012545 processing Methods 0.000 claims description 8
- 238000004590 computer program Methods 0.000 claims description 3
- 230000003111 delayed effect Effects 0.000 claims 1
- 239000003999 initiator Substances 0.000 claims 1
- 230000005764 inhibitory process Effects 0.000 abstract 1
- 238000010586 diagram Methods 0.000 description 5
- 238000004364 calculation method Methods 0.000 description 4
- 238000012790 confirmation Methods 0.000 description 2
- 238000005266 casting Methods 0.000 description 1
- 230000001413 cellular effect Effects 0.000 description 1
- 230000000694 effects Effects 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
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- 239000007858 starting material Substances 0.000 description 1
Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W74/00—Wireless channel access
- H04W74/08—Non-scheduled access, e.g. ALOHA
- H04W74/0833—Random access procedures, e.g. with 4-step access
- H04W74/0841—Random access procedures, e.g. with 4-step access with collision treatment
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W74/00—Wireless channel access
- H04W74/002—Transmission of channel access control information
- H04W74/006—Transmission of channel access control information in the downlink, i.e. towards the terminal
Definitions
- Mobile communication system mobile communication method, base station and mobile device
- the present invention relates to a mobile communication system for performing random access control.
- the present invention relates to a system, a mobile communication method, a base station, and a mobile device.
- Non-Patent Document 1 the radio control system with partial echo (ICMA_PE, Idle-Single Casting Multiple Access with Partial Echo) is used.
- ICMA_PE the radio control system with partial echo
- Idle-Single Casting Multiple Access with Partial Echo the radio control system with partial echo
- TDM II random access control such as PDC (Personal Digital Cellular) in Japan
- transmission and reception are performed alternately at the mobile device due to the characteristics of TDMA. Since there is enough time before the next reception timing after the data transmission of the mobile station, the base station can reflect on the reception of the next mobile station whether the transmission of the mobile station was performed correctly. There is no time slot loss. In addition, since the mobile station can communicate in full duplex, the result of transmission to the base station can be known by the next reception.
- the base station will not be included in the data of the first slot. Judgment of the number of remaining slots from the information that has been made, and by prohibiting the transmission of other mobile stations until the remaining slots become zero, allow the mobile station that transmitted the first slot to transmit preferentially It can also be configured to make a “reservation”.
- Patent Document 1 describes a control method using the concept of reservation. I have.
- This collision control information includes the following contents.
- FIG. 11 shows an example of an operation in the case where a collision has occurred when mobile stations M A and M B transmit four consecutive frames at substantially the same timing.
- the mobile station MA has a better radio wave environment and the transmission information of the mobile station MB has not reached the base station. The operation in FIG. 11 will be described below.
- the mobile station MA When receiving the first downlink frame # 1 from the base station, the mobile station MA determines that I ZB (transmission permission / prohibition information) is I (permission) and starts transmission. The information length of 4 frames is recorded in the transmission data of the mobile station MA. On the other hand, mobile station MB receives second downlink frame # 2, determines that I ZB is I, and starts transmission. Similarly, it is recorded in the transmission data that the information length is four.
- the base station receives the transmission data of the mobile station MA and received continuous data (the information length is greater than 1 and spans multiple frames), so I / B is changed to B in the fourth frame # 4. Switch.
- the mobile station MA Upon receiving the fourth frame # 4, the mobile station MA determines that the R / N is R, and that the CRC transmitted by the own station in the first frame and the received PE match, and that continuous transmission is performed. Judging that it is possible to continue, we also sent the last frame # 4, and after that we sent all the data, so Transmission ends.
- the mobile station MB transmitted without confirmation until the third frame # 3, but because of collision with the transmission of the mobile station MA, the transmission data did not reach the base station.
- the mobile station MB receives the lower frame (the fifth frame # 5 in the example), and the PE in the downstream frame transmits the first frame by the own station. Judge that it does not match the CRC.
- the mobile station MB determines that the transmission data of its own station has not reached the base station, determines that the transmission has failed, does not transmit the fourth frame, and tries again after a random delay.
- a random access control method disclosed in Japanese Patent Application Laid-Open No. 2000-285589 will be described with reference to FIG.
- the collision control information includes the following contents.
- the I / B information is provided as three bits, and the following detailed information is provided to the mobile device. I have.
- FIG. 12 is a diagram for describing an example of transmission and reception of uplink and downlink frames when mobile stations M A and M B try to transmit four consecutive frames.
- the mobile station MA When receiving a frame with a downlink frame (first frame # 1) from the base station, the mobile station MA determines that the I / B is "empty” and starts transmission. In addition, it was recorded overnight that the information length was four.
- the base station detects the signal at timing T 1 when the mobile station MA starts transmitting, and does not receive the first frame until the end, but sets the IZB to “transmission prohibited 3 ⁇ .
- the first transmission frame is received until the end, and it is determined whether or not the transmission data of the mobile station MA is continuous data. Since overnight data is continuous, the base station assigns the transmission right to the mobile station MA at timing T2, sets the I / B to "transmission right assignment", and designates the mobile station information as the mobile station information. Shall be.
- the mobile station MA determines that transmission can be continued, and transmits all the remaining transmission frames. Thereafter, the mobile station MA completes transmission of all transmission frames, and ends transmission.
- the mobile station MB had a transmission operation at the timing of the second downlink frame # 2, but performed a standby operation because the IZB in the downlink frame was "transmission prohibited 3".
- T3 After the transmission of the mobile station MA, it is determined that the I / B has become "empty" and transmission is started.
- Patent Document 1 Japanese Patent Application Laid-Open No. 2000-1990
- a mobile station can transmit up to three frames without acknowledgment of the base station, so while a mobile station is transmitting the first three frames, Of mobile stations can start transmission, and many collisions occur in uplink frames. It was.
- the random access transmission of a mobile device is often within three frames.
- I / B in the downstream frame from the base station remains at I, so that airline control was rarely performed in practice.
- the present invention has been made in view of the above-mentioned problems of the related art, and has as its object to enable efficient and high-throughput random access control.
- Another object of the present invention is to enable random access control with a small control load.
- Another object of the present invention is to enable random access control applicable to a mobile station having a half-duplex configuration.
- a predetermined offset time is set between the downlink communication frame from the base station to the mobile station and the uplink communication frame from the mobile station to the base station,
- the base station transmits a transmission permission signal (I) for permitting transmission of one frame of data, and receives the specific frame from the mobile device in the specific frame.
- I transmission permission signal
- the subsequent data exists in the data of one frame, it is determined whether or not to permit continuous transmission of the subsequent data over a plurality of frames, and when the continuous transmission is permitted, continuous transmission is permitted to allow continuous transmission.
- each mobile station transmits one frame of data in response to the transmission permission signal (I) from the base station, and transmits one frame of data.
- a continuous transmission permission signal (P) for data is received, Transmitting the subsequent data in a plurality of consecutive frames of the uplink communication frame;
- an uplink communication frame from the mobile station to the base station is longer than one frame and shorter than two frames by a period shorter than the downlink communication frame from the base station to the mobile station,
- the base station (11) transmits the transmission permission signal (I) to a frame corresponding to the first frame in the downstream communication frame.
- the mobile station (12) has transmission data and receives a transmission permission signal in a frame corresponding to the first frame
- the mobile station (12) receives the transmission permission signal in a frame corresponding to the first frame. Transmitting the data for the one frame, and if there is succeeding data in the data for one frame received from the mobile device in the specific frame, the subsequent data is transmitted over a plurality of frames.
- the mobile station (12) upon receiving the continuous transmission permission signal (P), transmits the subsequent data in a continuous frame without confirming that the base station has successfully received the data.
- the base station transmits information (R / N, CRC) indicating whether one frame of data from the mobile device has been normally received together with the continuous transmission permission signal (P), and The base station determines whether or not the base station has normally received the data of one frame transmitted by itself, and transmits the subsequent data if it determines that the base station has received the data normally.
- information R / N, CRC
- P continuous transmission permission signal
- the base station transmits mobile station identification information for identifying a mobile station together with the continuous transmission permission signal (P), and when the mobile station identification information specifies itself, Then, the subsequent data is transmitted.
- P continuous transmission permission signal
- the mobile station (12) when the mobile station (12) has transmission data and cannot receive the transmission permission signal (I) for a predetermined period of time, the mobile station (12) determines a transmission time as a transmission failure and determines a delay time. Thereafter, the process of waiting for reception of the transmission permission signal is executed again.
- the base station includes a unit that determines whether or not to permit the continuous transmission based on a traffic situation.
- a base station for a communication system that performs communication using the slot Aloha method.
- a transmission permission signal transmitting means for transmitting, in a predetermined frame in the downlink communication frame, a transmission permission signal (I) for permitting transmission of one frame of data when the upstream communication frame is empty;
- Receiving means for receiving the data of one frame transmitted from the mobile device in a frame in an uplink communication frame corresponding to the predetermined frame;
- a continuous transmission permission signal transmitting means for transmitting continuous transmission permission information (P) for permitting transmission in a downlink communication frame
- a mobile device includes:
- a predetermined offset time is set between the downlink communication frame from the base station to the mobile station and the uplink communication frame from the mobile station to the base station,
- the mobile device The mobile device,
- a head data transmitting means for transmitting one frame of head data in an uplink communication frame
- Continuous transmission permission signal receiving means for receiving a downstream communication frame and receiving a continuous transmission permission signal following transmission of the first data
- a mobile communication method includes:
- a predetermined offset time is set between a first communication frame from the first communication device to the second communication device and a second communication frame from the second communication device to the first communication device.
- a transmission permission signal (I) for permitting transmission of one frame of data is transmitted from the first communication device to the second communication device.
- one frame of data of three or more frames of transmission data is transmitted from the second communication device to the first communication device,
- the subsequent data is transmitted in a plurality of continuous frames of the second communication frame.
- a computer having a communication function
- An offset time is set between a downlink communication frame from the base station to the mobile station and an uplink communication frame from the mobile station to the base station.
- a transmission permission signal transmitting means for transmitting, in a predetermined frame in the downlink communication frame, a transmission permission signal (I) for permitting transmission of one frame of data when the upstream communication frame is an empty line;
- a continuous transmission permission signal transmitting means for transmitting continuous transmission permission information (P) in a downlink communication frame for permitting
- a computer program includes:
- a computer having a communication function
- An offset time is set between a downlink communication frame from the base station to the mobile station and an uplink communication frame from the mobile station to the base station, and the mobile station is for a communication system that performs communication in a slot-arrow system.
- a transmission permission signal receiving means for receiving a transmission permission signal (I) from the base station; In response to the transmission permission signal, if there is data to be transmitted, a head data transmitting means for transmitting one frame of head data in an uplink communication frame;
- Continuous transmission permission signal receiving means for receiving a downstream communication frame and receiving a continuous transmission permission signal following transmission of the first data
- random access control with a small control load can be performed.
- FIG. 1 is a configuration diagram of a mobile communication system according to the present embodiment.
- FIG. 2 is a block diagram showing a configuration example of the base station shown in FIG.
- FIG. 3 is a block diagram showing a configuration example of the mobile device (mobile station) shown in FIG.
- FIG. 7 is a timing chart for explaining an operation example of the mobile communication system.
- FIG. 9 is a timing chart for explaining an operation example of the mobile communication system.
- FIG. 10 is a flowchart for explaining an application example of the operation of the base station.
- FIG. 11 is a timing chart for explaining an operation example of a conventional mobile communication system.
- FIG. 12 is a timing chart for explaining an operation example of a conventional mobile communication system.
- a mobile communication system to which the random access control according to this embodiment is applied includes a base station 11 and a plurality of mobile stations (mobile stations) existing in a communication area of the base station 11. It consists of 1 and 2.
- the base station 11 is connected to another base station 11 via a network.
- the base station 11 and each mobile device 12 perform various control operations related to general mobile phone communication. A description will be given mainly of a part related to control.
- the base station 11 is a device that supports a full-duplex communication system of the FDM (Frequency Divison Multiplexing) system. As shown in FIG. 2, the control unit 101, the storage unit 102, and the reception unit And a transmitting unit 104 and an antenna 105.
- FDM Frequency Divison Multiplexing
- the data transmission / reception unit 111 controls data transmission / reception with the mobile device 12.
- the header information analysis unit 112 analyzes header information attached to the received frame (data completely transmitted from the mobile unit 122 in frame units), and determines whether the frame is the first frame. , The total number of transmitted frames (de-night).
- the collision control information generation section 113 generates collision control information to be transmitted to all mobile stations 12 in the communication area in order to control the plurality of mobile stations 12 not to transmit data continuously at the same time.
- the CRC operation unit 114 performs processing such as checking the CRC code of the received data.
- the reservation counter 1 15 stores multiple data from a specific mobile unit 12 This is a count to control the number of received frames of remaining data when continuous reception is performed in the same frame.
- the storage unit 102 stores an operation program of the control unit 101, fixed data, and the like.
- the receiving unit 103 receives the data from the mobile device 12 via the antenna 105, demodulates the received data, converts it to, for example, a baseband signal, and provides it to the control unit 101. .
- the transmitting section 104 receives data (baseband signal) to be transmitted to the mobile station 12 from the control section 101, modulates and amplifies the data, and transmits it via the antenna 105.
- Each mobile device 12 is a device that supports a half-duplex communication system of the FDMA (Frequency Divison Multiple Access) system. As shown in FIG. 3, a control unit 201 and a storage unit 202 are provided. , A receiving unit 203, a transmitting unit 204, and an antenna 205.
- FDMA Frequency Divison Multiple Access
- the control unit 201 includes a CPU (Central Processing Unit), a DSP (Digital Signal Processor), and the like, and executes an operation program stored in the storage unit 202 to perform communication control.
- CPU Central Processing Unit
- DSP Digital Signal Processor
- the control unit 201 relates to the random access control, and includes a data transmission / reception unit 211, a header information analysis unit 212, a transmission start wait time unit 212, and a random delay unit 214. , A reservation waiting counter 215, and a recycle counter 216.
- the data transmission / reception unit 211 controls data transmission / reception with the base station 11.
- the transmission start waiting timer 2 13 counts the elapsed time since the control section 201 tried to transmit data overnight.
- the random delay section 214 has a random number generation function for specifying a random delay time and a timer for counting a time (delay time) corresponding to the generated random number. If a situation occurs in which the base station 11 cannot properly receive the signal despite the transmission, the timing of retransmission of the first frame is determined.
- the reservation waiting counter 215 sets the “reservation” of transmitting the first frame and transmitting the remaining data continuously after the first frame is properly received by the base station 11 when the transmission data spans multiple frames. Count the number of frames until you can.
- the recycle counter 2 16 counts the number of consecutive times that the base station 11 cannot properly receive the first frame even though the mobile station 12 has transmitted the first frame. .
- the storage unit 202 stores the operation program of the control unit 201, fixed data, and the like.
- Transmitting section 204 receives data (baseband signal) to be transmitted to base station 11 from control section 201, modulates and amplifies the data, and transmits it via antenna 205.
- the random access method executed between the base station 11 and the mobile device 12 having such a configuration is a slotted Aloha method, and ICMA-P
- the FDM / FDMA system is based on the E method and has a frame configuration as shown in Fig. 4.
- a transmission / reception offset time corresponding to approximately 1.5 frame periods is provided between a downstream signal (downstream frame) and an upstream signal (upstream frame), and a frame number is assigned.
- the mobile device 12 is in half-duplex communication, and cannot receive while transmitting, and cannot transmit while receiving. Therefore, the reception operation (reception mode) and the transmission operation (transmission mode) are performed (set) at different timings with the switching time interposed. The switching operation is controlled so that the period of the receiving operation includes any frame period of the downstream frame, and the period of the transmission mode includes any frame period of the upstream frame.
- the transmission signal (downlink frame) from the base station 11 to the mobile station 12 includes information for collision control together with other data.
- the collision control information includes the following information.
- R / N information indicating whether or not the upstream signal with the frame number three before was successfully received.
- the base station 11 repeatedly executes the processing shown in FIG.
- the base station 11 receives and demodulates transmission data from the mobile device 12 via the antenna 105 at the receiving unit 102, and supplies the demodulated data to the control unit 101.
- the control unit 101 performs a CRC check in the CRC calculation unit 114 to determine whether or not the received data is correctly received (step S11).
- the control unit 101 sets the next downlink frame (if the received data is the n-th frame) when the reception is performed and the reception is performed correctly (step S11; Yes).
- PE is set to the CRC value of the received data (step S12).
- step S11 determines whether there is no reception or data is not correctly received (step S11; No). If it is determined in step S11 that there is no reception or data is not correctly received (step S11; No), the R / R in the data transmitted in the next downstream frame is determined. N is set to “N” indicating no reception, and “0” is set to PE (step S 13).
- control unit 101 determines whether the received frame is the first frame and there is a remaining frame by using the header information analysis unit 112 to header the received data. It is determined from the information (step S14).
- step S15 If it is determined that the received data is not the first frame or that there is no remaining frame (step S14; N0), continuous reception of PZD in the data to be transmitted in the next downlink frame is not permitted. (Continuous transmission disable signal) (step S15). On the other hand, if it is determined in step S14 that the received frame is the first frame and there is a remaining frame (step S14; Yes), one of the mobile units has already used the next upstream frame to transmit data. It is determined whether or not a reservation for transmission is set based on the value of the reservation power indicator 115 indicating the number of remaining frames (step S16). If there is a reservation (step S16; Yes), the process proceeds to step S15 to receive the reserved transmission.
- step S16 if there is no reservation (step S16; No), PZD in the data to be transmitted in the next downstream frame is set to P (continuous transmission permission signal) for permitting continuous transmission (step S17). ), The number of remaining frames (the total number of transmission frames obtained by the header information analysis unit 112 minus 1) is set in the reservation counter 115 (step S18).
- step S19 it is determined again whether there is a reservation for continuous transmission (step S19). If it is determined that there is no reservation (step S19; No), I ZB to be transmitted in the next downstream frame is set to I (the next frame is an empty line) (step S20). Next, if it is determined that there is a reservation (step S 19; Yes), the value of the reservation counter 115 is checked (step S 21). Since the transmission of the reserved data in the upstream transmission is completed, the reservation is released (the count value of the reservation counter 1 15 is set to 0) (step S22). The count value of the counter 1 15 is reduced by 1 (step S23).
- IZB to be transmitted in the next downstream frame is set to B (transmission prohibited) (step S24).
- step S 12 or 13 The collision control information including the R / N and PE set in step S1 and the IZB set in step SI5 or S24 is transmitted via the transmitter 104 (step S25), and the data of the next frame is further transmitted. The part is transmitted (step S26).
- the control unit 101 repeatedly executes the above operation.
- control unit 201 of the mobile device 12 starts the random access control process shown in FIG. 6, for example, in response to a timer interrupt or the like while the operation mode is in the reception mode.
- the control unit 201 determines whether there is data to be transmitted (step S31).
- the transmission data is divided into buckets, which are units transmitted in one frame, and stored in the storage unit 202 in advance.
- Each packet includes header information and a payload, and the payload includes actual data to be transmitted and CRC information.
- step S31 If it is determined that there is transmission data (step S31; Yes), 0 is set to the recycle counter 216, and a predetermined initial value is set to the reservation waiting counter 215 (step S32). ). Subsequently, the transmission start wait timer 2 13 is started to start measuring the elapsed time (step S33).
- the data transmission / reception unit 211 transmits the untransmitted data among the data to be transmitted.
- the packet data for the first frame is transmitted via the transmission section 204 (step S35).
- Cycle counter 2 16 is incremented by 1 (step S35).
- the transmission / reception mode is switched to the reception mode, and the reception of the next downstream frame is waited for and received (step S36).
- step S34 it is determined whether or not the count value of the transmission start waiting timer 213 started in step S33 has reached the set value. That is, it is determined whether or not a predetermined time has elapsed (step S37), and if not (step S37; No), the transmission / reception mode is switched to the reception mode, and the next downstream frame is transmitted. Waiting for reception, reception (step S38), and returning to step S34.
- step S37 If it is determined in step S37 that the predetermined time has elapsed (step S37; Yes), it is determined that transmission has failed, and an appropriate process is executed (step S39).
- the control unit 201 sends the RZN in the received collision control information to the header It is determined whether it is (the base station 11 receives the data overnight) or N (the base station does not receive the data) (step S40).
- control unit 201 determines whether or not transmission data remains (step S42). If no transmission data remains (step S42; No), the transmission is completed.
- step S42 determines whether transmission data remains (step S42; Yes)
- whether the PZD included in the received frame is P (continuous transmission permitted) or D (continuous transmission not permitted) Is determined (step S43)
- step S43 determines whether the PZD included in the received frame is P (continuous transmission permitted) or D (continuous transmission not permitted)
- step S44 the operation mode is switched to the transmission mode, and the next frame data is transmitted (step S44). Subsequently, it is determined whether or not transmission data remains (step S45).
- step S44 the flow returns to step S44 to sequentially transmit data in the next upper frame.
- the transmission mode of the mobile device 12 is continuous.
- the number of times data transmission cannot be performed is set in advance, that is, the number set in the reservation waiting counter 215.
- step S4 8 the value of the reservation waiting count 215 is set to _1 (step S49), and the process returns to step S46.
- step S48 it is determined in step S48 that the number of times that data cannot be transmitted has reached the preset number, that is, the number initially set in the reservation waiting counter 215, (step S4) 8; Yes)
- the transmission is determined to have failed, and a predetermined process is executed (step S50).
- step S39 If the number of transmissions of the first frame has reached the preset number (step S51; Yes), it is determined that transmission has failed, and a predetermined process is performed (step S39).
- the mobile station 12 checks whether or not the base station 11 has received the transmission of the transmitted first frame (or a single frame before the continuous permission is issued). Sends subsequent data. Therefore, useless collision does not occur between the plurality of mobile devices 12.
- the conditions for executing the above random access control are mainly as follows.
- Base station 11 is FDM and mobile station is FDMA.
- the frame structure composed of the base station 11 and the mobile station 12 has a transmission / reception offset time from transmission to reception.
- Collision control information is placed in the frame of downlink control data transmitted by the base station. 1-5) The base station reports collision control information to all mobile stations. 116) Collision control information includes “vacant line / prohibited” information (I ZB) indicating whether the upstream frame is empty or transmission prohibited.
- Collision control information includes "received data” information (PE) indicating to which mobile device the information is.
- PE received data information
- the mobile station analyzes the “reception / non-reception” and “reception data” information of the collision control information to determine whether the data transmitted by the own station has been normally received by the base station. It can be determined.
- the data transmitted by the mobile device 12 includes data indicating the number of frames (the total number of frames, the number of remaining frames, etc.) until all information is transmitted.
- Collision control information includes "continuous permission / non-permission” information indicating whether transmission of uplink frames may be performed continuously.
- "Receive / Non-receive" information of the collision control information is information on the upstream signal of the frame three frames before the frame number reporting the information.
- "Received data information" of the collision control information is information on the uplink signal of the frame three frames before the frame number that broadcasts the collision control information.
- the mobile station 12 can transmit a single frame (packet) if the "empty / prohibited" information indicates an empty line.
- the I / B included in the collision control information received in the downstream frame # 0 is I, that is, the upstream frame # 0 is an empty line.
- the control unit 201 sends the information to be transmitted together with the result of the CRC (A) to the transmission unit 2.
- the header information includes information such as the total number of data (the number of slots; 1 in this case).
- the base station 11 transmits the data transmitted from the mobile station 12 to the antenna 10
- the mobile station 12 receives the downlink frame # 3, demodulates it, analyzes this, and determines from the R / N whether the base station 11 has been able to receive.
- the control unit 201 determines that the base station 11 has received data, and further, the base station 11 has received accurate data. This is determined from the fact that the PE is A and the CRC of the transmitted data is also A, and that the transmission was successful.
- the base station 11 reports (transmits) RZN as R and PE as “B”, which is the same as the CRC calculated value transmitted by the mobile station B, at the timing of T2 three frames later.
- the base station 11 transmits data to a specific mobile device 12, information indicating the destination is included in the transmission data.
- the mobile station MA owns the transmission data (FIG. 6, step S31; Yes), and since the received I / B of the 0th frame # 0 is I (step S34; I), Untransmitted
- the packet of the first frame of the data packets of four frames is transmitted (step S35). This packet contains information that the source is MA, the first frame, the total information length is 4 and the rest is 3 frames in the header information, and 1 is added as CRC information. Have been.
- the base station 11 receives the transmission data of the mobile station MA and analyzes it.
- the mobile station MB also has transmission data (step S31; Yes in FIG. 6), and since I ZB of the received second frame # 2 is I (step S34; I), the packet of the first frame is transmitted (step S35).
- This packet includes the information that the header is the first frame, the total information length is 4 and the rest is 3 frames, and 2 i is added as CRC information.
- the base station 11 receives the transmission data of the mobile station MB and analyzes it.
- step S 11 Since the base station 11 received the data and the CRC check was correct, the base station 11 determined Y es in step S 11 of FIG. 5, and set the R / N of the fifth frame # 5 to R and the PE to the CRC. Set 2 i to the value of S 1 2). Since the received data is the first frame and the remaining frames are present, it is determined as Yes in step S14, and it is determined in step S16 whether or not there is a reservation. In this example, since there is a reservation (step S16; Yes), the PZD of the fifth frame is set to D (step S15). Subsequently, it is determined whether or not the reservation counter 1 15 is set to “with reservation” (step S 19).
- step S35 the process returns to step S35 to transmit the data of the first frame of the remaining data and increment the value of the recycle counter by one.
- the data of the second frame which is the first frame of the remaining three frames of data, is transmitted.
- the present invention is not limited to the above embodiment, and various modifications and applications are possible.
- the case where the mobile device is 12 and a half duplex is shown. Access control can be applied as it is.
- the transmission of the mobile device may be divided into "state 1", the continuous transmission permission to a specific mobile device may be classified into “state 2”, and the continuous transmission of a specific mobile device may be classified into "state 3".
- the base station 11 specifies PZD as D, for example, when communication traffic is large and continuous transmission of the mobile station 12 is to be dispersed over time.
- PZD PZD
- the base station 11 specifies PZD as D, for example, when communication traffic is large and continuous transmission of the mobile station 12 is to be dispersed over time.
- step S61 traffic is measured (step S61), and if the measured traffic amount is larger than the second reference amount (step S61; Yes), The ratio of D to P / D is K 1%, and the initial value of the reservation waiting count is K 2, (Step S 6 3).
- the ratio of D to PZD is calculated. Ml%, the initial value of the reservation waiting counter is M2 (K1> M1, K2> M2; step S65). If the traffic amount is less than the first reference amount, In steps S62 and S64; No), the traffic control may not be performed.
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US10/572,739 US7545779B2 (en) | 2003-09-25 | 2004-09-24 | Mobile communication system, mobile communication method, base station, and mobile station |
EP04788442A EP1667343A4 (en) | 2003-09-25 | 2004-09-24 | MOBILE COMMUNICATION SYSTEM AND METHOD, BASE STATION AND MOBILE STATION |
DE04788442T DE04788442T1 (de) | 2003-09-25 | 2004-09-24 | Mobilkommunikationssystem, mobilkommunikationsverfahren, basisstation und mobilstation |
US12/419,317 US7738430B2 (en) | 2003-09-25 | 2009-04-07 | Mobile communication system, mobile communication method, base station, and mobile station |
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JP2003-334341 | 2003-09-25 | ||
JP2003334341A JP4021396B2 (ja) | 2003-09-25 | 2003-09-25 | 移動体通信システム、移動体通信方法、基地局及び移動機 |
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US11/572,739 A-371-Of-International US20080000682A1 (en) | 2004-07-27 | 2004-07-27 | Shielded Enclosure for Electromagnetic Fields |
US12/419,317 Division US7738430B2 (en) | 2003-09-25 | 2009-04-07 | Mobile communication system, mobile communication method, base station, and mobile station |
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EP (2) | EP2106188B1 (ja) |
JP (1) | JP4021396B2 (ja) |
CN (2) | CN1856948A (ja) |
DE (2) | DE04788442T1 (ja) |
RU (2) | RU2371855C2 (ja) |
WO (1) | WO2005032006A1 (ja) |
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US7742444B2 (en) | 2005-03-15 | 2010-06-22 | Qualcomm Incorporated | Multiple other sector information combining for power control in a wireless communication system |
US9055552B2 (en) | 2005-06-16 | 2015-06-09 | Qualcomm Incorporated | Quick paging channel with reduced probability of missed page |
US8750908B2 (en) | 2005-06-16 | 2014-06-10 | Qualcomm Incorporated | Quick paging channel with reduced probability of missed page |
EP1746743B1 (en) * | 2005-07-21 | 2010-01-06 | Mitsubishi Electric R&D Centre Europe B.V. | Method for transmission in a TDD system with variable length guard period |
US20090207790A1 (en) | 2005-10-27 | 2009-08-20 | Qualcomm Incorporated | Method and apparatus for settingtuneawaystatus in an open state in wireless communication system |
US8520628B2 (en) | 2005-10-27 | 2013-08-27 | Qualcomm Incorporated | Method and apparatus for monitoring other channel interference in wireless communication system |
JP4326557B2 (ja) * | 2006-11-08 | 2009-09-09 | フェリカネットワークス株式会社 | 無線通信システム、情報通信端末、携帯電話、リーダライタ、通信方法およびコンピュータプログラム |
JP2008124800A (ja) | 2006-11-13 | 2008-05-29 | Nec Corp | 移動通信システムにおけるランダムアクセス通信方法、移動通信システム |
JP2008187520A (ja) * | 2007-01-30 | 2008-08-14 | Kenwood Corp | 移動体通信システム、基地局、移動体および移動体通信方法 |
WO2008105044A1 (ja) * | 2007-02-23 | 2008-09-04 | Fujitsu Limited | アップリンク帯域割当方法及び装置 |
CN101809928A (zh) * | 2007-09-27 | 2010-08-18 | 朗讯科技公司 | 用于频分双工系统中半双工和全双工用户站操作的方法 |
US8942166B2 (en) * | 2010-02-12 | 2015-01-27 | Google Technology Holdings LLC | Method for providing a contention based uplink channel |
US8953631B2 (en) | 2010-06-30 | 2015-02-10 | Intel Corporation | Interruption, at least in part, of frame transmission |
US8914017B2 (en) * | 2011-12-01 | 2014-12-16 | Acer Incorporated | Mobile communication devices, cellular stations, multi-carrier systems, and methods for handling random access failures |
TWI457031B (zh) * | 2011-12-01 | 2014-10-11 | Acer Inc | 處理隨機存取失敗之裝置、系統、及方法 |
CN103856284B (zh) * | 2012-11-28 | 2017-05-24 | 电信科学技术研究院 | 一种业务处理方法及装置 |
CN103888984A (zh) * | 2012-12-19 | 2014-06-25 | 中兴通讯股份有限公司 | 一种基站射频单元冗余热备份的方法及系统 |
CN107786993B (zh) * | 2016-08-26 | 2021-10-01 | 深圳市中兴微电子技术有限公司 | 一种信号测试方法和装置 |
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- 2003-09-25 JP JP2003334341A patent/JP4021396B2/ja not_active Expired - Lifetime
-
2004
- 2004-09-24 DE DE04788442T patent/DE04788442T1/de active Pending
- 2004-09-24 CN CN200480027502.8A patent/CN1856948A/zh active Pending
- 2004-09-24 DE DE09005330T patent/DE09005330T1/de active Pending
- 2004-09-24 WO PCT/JP2004/014662 patent/WO2005032006A1/ja active Application Filing
- 2004-09-24 EP EP09005330.7A patent/EP2106188B1/en not_active Expired - Lifetime
- 2004-09-24 EP EP04788442A patent/EP1667343A4/en not_active Withdrawn
- 2004-09-24 US US10/572,739 patent/US7545779B2/en active Active
- 2004-09-24 CN CN200910136898.4A patent/CN101697638A/zh active Pending
- 2004-09-24 RU RU2006113938/09A patent/RU2371855C2/ru active
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2009
- 2009-04-07 US US12/419,317 patent/US7738430B2/en not_active Expired - Lifetime
- 2009-05-29 RU RU2009120630/09A patent/RU2009120630A/ru not_active Application Discontinuation
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Also Published As
Publication number | Publication date |
---|---|
JP4021396B2 (ja) | 2007-12-12 |
CN1856948A (zh) | 2006-11-01 |
US20070030831A1 (en) | 2007-02-08 |
DE09005330T1 (de) | 2010-04-15 |
EP2106188B1 (en) | 2013-12-04 |
RU2006113938A (ru) | 2007-11-20 |
JP2005101990A (ja) | 2005-04-14 |
DE04788442T1 (de) | 2007-01-04 |
US7738430B2 (en) | 2010-06-15 |
US7545779B2 (en) | 2009-06-09 |
RU2009120630A (ru) | 2010-12-10 |
EP1667343A4 (en) | 2011-06-15 |
CN101697638A (zh) | 2010-04-21 |
US20090201893A1 (en) | 2009-08-13 |
EP2106188A1 (en) | 2009-09-30 |
RU2371855C2 (ru) | 2009-10-27 |
EP1667343A1 (en) | 2006-06-07 |
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