WO2004028038A1 - 基地局装置及びパケット送信電力制御方法 - Google Patents
基地局装置及びパケット送信電力制御方法 Download PDFInfo
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- WO2004028038A1 WO2004028038A1 PCT/JP2003/010332 JP0310332W WO2004028038A1 WO 2004028038 A1 WO2004028038 A1 WO 2004028038A1 JP 0310332 W JP0310332 W JP 0310332W WO 2004028038 A1 WO2004028038 A1 WO 2004028038A1
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- quality
- base station
- transmission power
- signal
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/04—TPC
- H04W52/38—TPC being performed in particular situations
- H04W52/48—TPC being performed in particular situations during retransmission after error or non-acknowledgment
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/04—TPC
- H04W52/06—TPC algorithms
- H04W52/08—Closed loop power control
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/04—TPC
- H04W52/06—TPC algorithms
- H04W52/14—Separate analysis of uplink or downlink
- H04W52/143—Downlink power control
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/04—TPC
- H04W52/18—TPC being performed according to specific parameters
- H04W52/22—TPC being performed according to specific parameters taking into account previous information or commands
- H04W52/223—TPC being performed according to specific parameters taking into account previous information or commands predicting future states of the transmission
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/04—TPC
- H04W52/18—TPC being performed according to specific parameters
- H04W52/22—TPC being performed according to specific parameters taking into account previous information or commands
- H04W52/228—TPC being performed according to specific parameters taking into account previous information or commands using past power values or information
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/04—TPC
- H04W52/06—TPC algorithms
- H04W52/16—Deriving transmission power values from another channel
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/04—TPC
- H04W52/38—TPC being performed in particular situations
- H04W52/50—TPC being performed in particular situations at the moment of starting communication in a multiple access environment
Definitions
- the present invention relates to a base station apparatus and a bucket transmission power control method used in a wireless communication system performing downlink high-speed bucket transmission.
- a plurality of communication terminal devices share a high-speed, large-capacity downlink channel, and a downstream high-speed packet transmission method for transmitting a bucket from a base station device to the communication terminal device has been developed.
- a scheduling technique and an adaptive modulation technique are used to improve transmission efficiency.
- Scheduling technology is a technology in which a base station device sets a communication terminal device (hereinafter referred to as “destination device”) to which a high-speed downlink packet is transmitted for each time slot and allocates a packet to be transmitted to the destination device. It is.
- the adaptive modulation technique is a technique for adaptively determining a modulation scheme or an error correction coding scheme (MCS: Modulation and Coding Scheme) according to the state of a propagation path of a communication terminal apparatus that performs bucket transmission.
- MCS Modulation and Coding Scheme
- ARQ Automatic Repeat Request
- H—ARQ Hybrid-Automatic Repeat Request
- ARQ is a technology in which the transmitting device automatically retransmits the data unit (frame) for which an error was detected in the receiving device.
- H-ARQ is a technology in which the transmitting device performs a specific process when retransmitting. In this technology, only the bits are selected and transmitted to the receiving device, and the receiving device combines the retransmitted signal and the received signal.
- a base station apparatus and a communication terminal of a wireless communication system performing high-speed packet transmission The operation of the device will be outlined.
- the base station apparatus predicts the line quality based on the report value of the downlink state transmitted from each communication terminal apparatus, and designates the communication terminal apparatus having the best line quality as the destination apparatus, and assigns the transmission destination to each time slot. Assign a packet to the device. Then, the base station apparatus performs error correction coding and modulation on the packet according to the information indicating the scheduling result and the scheme determined by the scheduling, and transmits the packet to the destination apparatus.
- Each communication terminal performs demodulation in a time slot to which a packet addressed to the own station is allocated based on the received information indicating the scheduling result, performs CRC detection, etc., and performs a demodulation when packet data can be demodulated correctly. Transmits an ACK signal indicating this to the base station apparatus if the packet data cannot be demodulated correctly.
- the base station apparatus transmits new data when receiving the ACK signal, and retransmits the same data when receiving the NACK signal.
- ML—ARQ Multi Level-Automatic Repeat Request
- the communication terminal device adds bucket quality information indicating the quality of the received packet to the NACK signal indicating the quality of the received packet (the number of errors is small and the number of Z is large) to the base station device.
- the base station device reports the retransmission with an appropriate transmission power based on the packet quality information. Note that no adaptive modulation is assumed in the above document.
- An object of the present invention is to apply ML-ARQ to a system using adaptive modulation, whereby a base station apparatus estimates the reception quality of a packet in a communication terminal apparatus without transmitting bucket quality information from the communication terminal apparatus.
- Another object of the present invention is to provide a base station apparatus and a packet transmission power control method capable of controlling bucket transmission power.
- the purpose of this is to estimate the reception quality of the packet in the communication terminal device based on the report value of the downlink state corresponding to the time when the communication terminal device received the packet in the base station device and determine the required transmission power at the time of retransmission. It is achieved by doing.
- FIG. 1 is a block diagram illustrating a configuration of a base station apparatus according to Embodiment 1 of the present invention.
- FIG. 2 is a block diagram illustrating a configuration of a communication terminal apparatus that performs wireless communication with the base station apparatus according to Embodiment 1 of the present invention. Showing block diagram,
- FIG. 3 is a block diagram showing an internal configuration of a scheduler of the base station apparatus according to Embodiment 1 of the present invention
- FIG. 4 is a sequence diagram showing a communication procedure between the base station apparatus and the communication terminal apparatus according to Embodiment 1 of the present invention
- FIG. 5 is a diagram for explaining a specific operation example of the base station apparatus and the communication terminal apparatus according to Embodiment 1,
- FIG. 6 is a block diagram showing the internal configuration of the scheduler of the base station apparatus according to Embodiment 2 of the present invention.
- FIG. 7 is a block diagram showing an internal configuration of the scheduler of the base station apparatus according to Embodiment 3 of the present invention.
- HSDPA High Speed Down Hnk Packet Access
- a plurality of channels such as HS-PDSCH (High Speed-Physical Downlink Shared Channel), HS-SCCH (Shared Control Channel of HS-PDSCH), and A-DPCH (Associated-Dedicated Physical Channel) are used.
- HS—PDSCH is a shared downlink channel used for bucket transmission.
- HS-SCCH is a downlink shared channel, in which information related to resource allocation (TFRI: Transport-format and Resource related Information), information related to H-ARQ control, and the like are transmitted.
- TFRI Transport-format and Resource related Information
- A—DPCH is a dedicated channel associated with uplink and downlink, and its channel configuration and handover control are the same as those of DPCH.
- A—D PCH transmits a pilot signal, a TPC command, and the like, and transmits an ACK / NACK signal and a CQI (Channel Quality Indicator) signal in the upstream direction.
- the CQI signal is a signal indicating the modulation scheme and coding rate of packet data that can be demodulated in the communication terminal apparatus, and serves as a report value for reporting a downlink state.
- FIG. 1 is a block diagram showing a configuration of a base station apparatus according to Embodiment 1 of the present invention.
- Duplexer 102 outputs a signal received by antenna 101 to reception RF section (RE-RF) 103. Further, duplexer 102 wirelessly transmits the signal output from transmission RF section (TR-RF) 166 from antenna 101.
- RE-RF reception RF section
- TR-RF transmission RF section
- the reception RF section 103 converts the radio frequency reception signal output from the duplexer 102 into a baseband digital signal, and outputs the baseband digital signal to a demodulation section (DEM) 104.
- Demodulation sections 104 are prepared by the number of communication terminal apparatuses that perform wireless communication. It performs demodulation processing such as inverse dispersion, RAKE combining, and error correction decoding on the band signal, and outputs the result to a separating unit (DIV) 105.
- Separation section 105 separates the output signal of demodulation section 104 into data and control signals.
- the control signals separated by the separation unit 105 include a DL (Down Link) one TPC command, a CQI signal, an ACKZNACK signal, and the like.
- the CQ I signal and the ACK / NACK signal are output to the scheduler 15 1.
- the command is output to the transmission power control unit (POWER-C ⁇ N) 158.
- SI R-MEA SIR measurement units
- TPC-GEN TPC command generator
- TPC command generation units 107 are prepared for the number of communication terminal devices that perform wireless communication, and instruct UL to increase or decrease uplink transmission power based on the magnitude relationship between uplink reception SIR and target SIR. Generate a TPC command.
- the scheduler 151 which is a characteristic part of the effort of the present application, is a communication terminal device that transmits a bucket based on a packet transmission control signal, a CQQ signal from each communication terminal device, and an ACKZNACK signal (hereinafter referred to as a “destination device”). ) And outputs information indicating the transmission destination device and the packet data to be transmitted to the buffer (Queue) 152. Also, the scheduler 1515 determines a modulation scheme and a coding rate based on the CQI signal of the destination device, and instructs the modulation unit (MOD) 1553.
- MOD modulation unit
- the scheduler 15 1 determines the transmission power of the bucket data based on the ACK / NACK signal and the CQI signal from the destination device, and transmits a signal indicating the transmission power to the transmission power control unit (POWER-CON). 1 Output to 54.
- the scheduler 15 1 outputs a signal to be transmitted to the destination apparatus by the HS-SCCH (hereinafter, referred to as “HS-SCCH signal”) to the amplification unit 16 1.
- the HS-S CCH signal includes information (TFRI) indicating the timing of transmitting packet data, packet data, the coding rate of the bucket data, the modulation scheme, and the like.
- TFRI information
- Buffer 152 outputs packet data for the destination device specified by scheduler 151 to modulation section 153.
- Modulation section 153 performs error correction coding, modulation, and spreading on the bucket data according to the instruction of scheduler 151, and outputs the result to amplification section 155.
- the transmission power control section 154 controls the transmission power of the output signal of the modulation section 153 to be a value determined by the scheduler 151 by controlling the amplification amount of the amplification section 155.
- the output signal of the width section 155 is a signal transmitted on the HS-PDSCH, and is output to the multiplexing section (MUX) 165.
- Multiplexing units (MUX) 156 are prepared for the number of communication terminal devices that perform wireless communication, and multiplex and modulate pilot signals and UL-TPC commands with individual data (including control signals) transmitted to each communication terminal device. Output to the unit (MOD) 1 57.
- Modulation sections 157 are prepared by the number of communication terminal apparatuses that perform wireless communication, and perform error correction coding, modulation and spreading on the output signal of multiplexing section 156, and output the result to amplification section 159.
- the transmission power control section 158 is prepared by the number of communication terminal apparatuses for performing wireless communication, and controls the transmission power of the output signal of the modulation section 157 by controlling the amplification amount of the amplification section 159 according to the DL-TPC command. . Further, transmission power control section 158 outputs a signal indicating the transmission power value to transmission power control section (POWER-CON) 160.
- the signal amplified by amplifying section 159 is a signal transmitted on DPCH (including A-DPCH), and is output to multiplexing section 165.
- the transmission power control section 160 controls the amplification amount of the amplification section 161 with a value obtained by adding an offset to the transmission power value of the transmission power control section 158, thereby controlling the transmission power of the HS-SCCH signal output from the scheduler 151. Control.
- the signal amplified by the amplification section 161 is a signal transmitted on the HS-SCCH, and is output to the multiplexing section 165.
- transmission power control section 160 may correct the offset value according to the retransmission state or the like.
- Modulation section (MOD) 162 performs error correction coding, modulation, and spreading on the common control data, and outputs the result to amplification section 164.
- the transmission power control section (POWER-CON) 163 controls the transmission power of the output signal of the modulation section 162 by controlling the amount of amplification of the amplification section 164.
- the output signal of the amplification section 164 is a signal transmitted on the CP ICH or the like, and is output to the multiplexing section 165.
- the multiplexing unit 165 multiplexes the output signals of the amplifying unit 155, the amplifying unit 159, the amplifying unit 161 and the amplifying unit 164, and outputs the multiplexed signal to the transmission RF unit 166.
- Transmission RF section 166 converts the baseband digital signal output from modulation section 159 to a radio frequency signal and outputs the signal to duplexer 102.
- FIG. 2 is a block diagram showing a configuration of a communication terminal device that performs wireless communication with the base station device shown in FIG.
- Communication terminal apparatus 200 in FIG. 2 receives individual data, common control data, packet data, and HS-SCCH signals from base station apparatus 100.
- Duplexer 202 outputs a signal received by antenna 201 to reception RF section (RE-RF) 203. Further, duplexer 202 wirelessly transmits the signal output from transmission RF section (TR-RF) 258 from antenna 2′01.
- RE-RF reception RF section
- TR-RF transmission RF section
- the reception RF unit 203 converts the radio frequency reception signal output from the duplexer 202 into a baseband digital signal, outputs the HS-PDSCH signal to the buffer 204, and demodulates the HS-SCCH signal.
- DEM demodulates the HS-SCCH signal.
- DEM demodulation unit
- DEM demodulation unit
- CIR-MEA Carrier to Interference Ratio
- the buffer 204 temporarily stores the HS-PD SCH signal and outputs the signal to the demodulation unit (DEM) 206.
- DEM demodulation unit
- the demodulation section 205 performs demodulation processing such as despreading, RAKE combining, and error correction decoding on the HS-SCCH signal, and the arrival timing of packet data addressed to the own station, the coding rate of the bucket data, and the modulation. Method required for demodulating bucket data. Information is obtained and output to demodulation section 206.
- the demodulation unit 206 performs demodulation processing such as despreading, RAKE combining, and error correction decoding on the HS-PDSCH signal stored in the buffer based on the information obtained by the demodulation unit 205, and demodulates.
- the packet data obtained by the processing is output to error detection section 207.
- Error detection section 207 performs error detection on the packet data output from demodulation section 206, and multiplexes an ACK signal if no error is detected and a NACK signal if no error is detected. (MUX) Output to 251.
- Demodulation section 208 performs demodulation processing such as despreading, RAKE combining, and error correction decoding on the DPCH signal, and outputs the result to demultiplexing section (DIV) 209.
- Separation section 209 separates the output signal of demodulation section 208 into data and control signals.
- the control signal separated by the separation unit 209 includes a UL-TPC command and the like.
- the UL-TPC command is output to the transmission power control unit (POWER-CON) 257.
- the SIR measurement unit (SIR-MEA) 210 measures the downlink reception SIR based on the desired signal level and the interference signal level measured in the demodulation process, and outputs all measured reception SIRs to the TPC command generation unit ( TPC—GEN) 21 Output to 1
- TPC command generating section 211 generates a DL-TPC command based on the magnitude relationship between the received SIR output from SIR measuring section 210 and the target SIR, and outputs the command to multiplexing section (MUX) 254.
- MUX multiplexing section
- CIR measurement section 212 measures CIR using a signal of the common control channel from the base station apparatus, and outputs the measurement result to CQI generation section (CQI-GEN) 213.
- CQI generating section 213 generates a CQI signal based on the CIR of the signal transmitted from the base station apparatus, and outputs the generated CQI signal to multiplexing section 251.
- Multiplexing section 251 multiplexes the CQI signal and the AC KZN AC K signal and outputs the result to modulating section (MOD) 252.
- Modulating section 252 performs error correction coding, modulation, and spreading on the output signal of multiplexing section 251 and outputs the result to multiplexing section (MUX) 256.
- Modulating section (MOD) 253 performs error correction coding, modulation, and spreading on data to be transmitted to base station apparatus 100, and outputs the result to multiplexing section 256.
- the multiplexing unit 254 multiplexes the DL-TPC command and the pilot signal and outputs the multiplexed signal to the modulation unit (MOD) 255.
- Modulation section 255 performs error correction coding, modulation and spreading on the output signal of multiplexing section 254 and outputs the result to multiplexing section 256.
- Multiplexing section 256 multiplexes each output signal of modulating section 252, modulating section 253 and modulating section 255 and outputs the multiplexed signal to transmitting RF section 258.
- Transmission power control section 257 controls the transmission power of the output signal of multiplexing section 256 by controlling the amount of amplification of transmission RF section 258 according to the UL-TPC command. When connected to a plurality of base station apparatuses, transmission power control section 257 performs control to increase the transmission power only when all UL-TPC commands instruct the transmission power to increase.
- Transmission RF section 258 amplifies the baseband digital signal output from multiplexing section 256, converts the signal into a radio frequency signal, and outputs the signal to duplexer 102.
- the internal configuration of the scheduler 151 of the base station apparatus 100 will be described with reference to FIG. ''
- the scheduler 151 mainly includes a destination determining unit 301, an MCS determining unit 302, a packet quality estimating unit 303, a transmission power determining unit 304, and an HS-SCCH signal generating unit 305.
- the transmission destination determining unit 301 selects each communication terminal device that is a candidate for transmitting a packet from the packet transmission control signal, and determines the transmission destination device based on the CQI signal from each of the selected communication terminal devices. For example, a communication terminal device having the best reception quality is determined as a destination device based on the CQI signal. Then, destination determining section 301 outputs information indicating the destination apparatus to buffer 152, MCS determining section 302, packet quality estimating section 303, and HS-SCCH signal generating section 305. In addition, the transmission destination determining unit 301 retransmits previously transmitted data when an NACK signal is input so that new data is transmitted when an ACK signal is input. To the buffer 152.
- MCS3 ⁇ 43 ⁇ 43 ⁇ 4302tt performs MCS selection (determination of modulation scheme and coding rate) based on the CQI signal of the destination apparatus, and instructs modulation section 153.
- Packet quality estimation section 303 estimates the quality of the received packet at the destination apparatus based on the CQI signal, calculates the required packet quality for achieving the target bucket quality at the time of retransmission based on the estimation result, and transmits the Output to the decision unit 304.
- Transmission power determination section 304 sets transmission power to a predetermined value when an ACK signal is received from a destination apparatus, and determines transmission power so as to satisfy required packet quality when a NACK signal is received. Then, transmission power determining section 304 outputs a signal indicating the determined transmission power to transmission power control section 154.
- the HS-SCCH signal generator 305 generates an HS-SCCH signal for the destination device and outputs the signal to the amplifier 161.
- the base station apparatus receives a downlink state report value (CQI signal) periodically transmitted from the communication terminal apparatus (F401), and performs MCS selection (selection of a modulation scheme and an encoding scheme) ( F402).
- the base station apparatus transmits the packet #i (i is a natural number) by applying the selected MCS (F403).
- the communication terminal device decodes the received packet #i (F404), and transmits an ACK signal if no error is detected, and transmits a NACK signal if an error is detected (F405). Further, the communication terminal apparatus transmits a CQI signal to the base station apparatus (F406).
- the base station apparatus determines the reception quality of packet #i based on the CQI signal corresponding to the time when the communication terminal apparatus received bucket #i. Then, the required packet quality is further estimated (F407). Then, the base station apparatus determines transmission power for retransmission based on the required packet quality (F408), and retransmits packet #i (F409).
- the communication terminal device transmits a CQI signal for each frame.
- the base station device transmits a packet every two frames
- the communication terminal device transmits an ACK / N ACK signal every two frames
- the transmission of the NACK signal is performed alternately in different frames.
- CIR is used as an index indicating the downlink state.
- the base station shall transmit the packet using the same MCS regardless of the initial transmission and retransmission, and the combining method in the communication terminal shall use the sum of the true values of the CIRs as the reception quality. Chase Combining method is used.
- CIR_cqi (k) indicates the true CIR of the CQI signal transmitted in frame #k
- Pj) acket (k) indicates the transmission power of the packet transmitted in frame #k.
- the communication terminal device transmits Cm-cqi (0) using a CQI signal.
- the base station apparatus performs MCS selection (MCS-SEL) from the received CIR_cqi (0), and transmits bucket #i with power of P_packet (0).
- MCS-SEL MCS selection
- the communication terminal performs line state measurement (MEA) for the CQI signal to be transmitted in frame # 1 upon receiving bucket # i5.
- the communication terminal device decodes (DEM) the received packet #i. As a result, if there is an error in the decoding result, a NACK signal is transmitted. In addition, the communication terminal apparatus transmits Gil-cqi (l) measured in the previous frame # 0 as a CQI signal.
- the base station device estimates the packet quality from CIR-cqi (l) indicating the line state when the bucket #i is received at the communication terminal device (EST).
- the packet The cut quality Cll) acket (O) is obtained by the following equation (1).
- CIR—target (O) is calculated by the following equation (2).
- CIR_target (0) CIR_cqi (0) (2)
- the required bucket quality at the time of retransmission can be considered as the shortage of the packet received by the communication terminal device in frame # 0, and the required packet quality is insufficient. Minutes
- CIR_shortage (0) CIR— target (O)-CIRjacket (O)
- the base station apparatus recognizes the necessity of retransmission of packet #i based on the NACK signal.
- the base station apparatus receives the CQI signal and knows that the line state is CIR_cqi (2). Then, the difference CIR-loss (2) between the line state at the frame # 0 and the line state at the frame # 2 is calculated by the following equation (4).
- CIR_loss (2) CIR_cqi (0) / CIR_cqi (2) (4)
- P_j retransmission transmission power
- P_CON retransmission transmission power
- P_packet (2) ⁇ P_packet (0) * CIR_shortage (0) I CIR one target (O) ⁇ * CIR_loss (2)
- the base station device can estimate the reception quality of the packet in the communication terminal device without transmitting the bucket quality information from the communication terminal device. Furthermore, since the required transmission power at the time of retransmission can be determined based on the reception quality of the packet, no error occurs in the transmission power of the bucket at the time of retransmission! /, Can be kept to the minimum required.
- the noise component can be suppressed and the reliability of the CQI signal can be improved.
- the packet quality can be estimated even when the communication terminal apparatus receives a packet and there is no CQI signal to be measured.
- the transmission power of the packet transmission channel (such as HS-PDSCH) is different from the common control channel, it is effective to add an offset to the target bucket quality.
- Embodiment 2 describes a case where an offset is added to the target bucket quality.
- FIG. 6 is a block diagram showing the internal configuration of the scheduler of the base station apparatus according to the present embodiment, and adopts a configuration in which an offset calculation section 600 is added as compared with FIG. .
- the offset calculation unit 6001 receives the transmission power of the common control channel from the transmission power control unit 163, calculates an offset from the transmission power difference between the bucket transmission channel and the common control channel, and calculates the offset as a bucket quality estimation unit. Output to 03.
- the packet quality estimator 303 estimates the quality of the received packet based on the CQI signal when receiving the NACK signal from the destination device, and calculates the required packet quality with an offset.
- Packet transmission in frame # 0 Assuming that the transmission power is Pj) acket (O) and the transmission power of the common control channel is Pj) ilot, the offset and Offset (O) of the packet and common control channel in frame # 0 are given by the following equation (6).
- the packet quality Cn mcket (O) is calculated by the following equation (7).
- Offset (O) Pj) acket (O) / P jilot
- CIRjacket (O) CIR_cqi (l) * Offset (O) ⁇ (7) Therefore, the target packet quality CIR_target (0) is calculated by the following equation (8), and the required packet quality CIR_shortage (0) Is calculated by the following equation (9). .
- CIR_shortage (0) CIR_target (0)-CIRjacket (O)
- the transmission power required for retransmission is determined based on the reception quality of the packet, by providing an offset. Since the decision can be made, the transmission power of the packet at the time of retransmission can be suppressed to the minimum necessary for no error.
- FIG. 5 is a block diagram showing the internal configuration of the scheduler of the base station apparatus according to the present embodiment. Compared to FIG. 3, a configuration in which coding priority determining section 701 is added is adopted.
- the encoding priority determination unit 7001 performs systematic bits in the one-button code
- the MCS determining unit 302 is instructed which of the parity and the parity bit should be transmitted with priority. The following two methods can be considered for determining the encoding priority.
- the parity bit is preferentially retransmitted.
- the coding rate is reduced, and the coding gain can be improved.
- the base station device can estimate the reception quality of the packet in the communication terminal device without transmitting the packet quality information from the communication terminal device. Further, since the required transmission power at the time of retransmission can be determined based on the reception quality of the packet, the transmission power of the packet at the time of retransmission can be suppressed to the minimum required without error.
- the present specification is based on Japanese Patent Application No. 2002-2747476 filed on Sep. 20, 2002. This content is included here. Industrial applicability
- This invention is suitable for using for the base station apparatus used for the radio
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Abstract
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Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
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EP03797520A EP1511192A1 (en) | 2002-09-20 | 2003-08-14 | Base station device and packet transmission power control method |
US10/516,738 US20060068825A1 (en) | 2002-09-20 | 2003-08-14 | Base station device and packet transmission power control method |
AU2003257844A AU2003257844A1 (en) | 2002-09-20 | 2003-08-14 | Base station device and packet transmission power control method |
Applications Claiming Priority (2)
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JP2002274746A JP2004112597A (ja) | 2002-09-20 | 2002-09-20 | 基地局装置及びパケット品質推定方法 |
JP2002-274746 | 2002-09-20 |
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US (1) | US20060068825A1 (ja) |
EP (1) | EP1511192A1 (ja) |
JP (1) | JP2004112597A (ja) |
CN (1) | CN1669248A (ja) |
AU (1) | AU2003257844A1 (ja) |
WO (1) | WO2004028038A1 (ja) |
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EP1641170A3 (en) * | 2004-09-27 | 2006-05-17 | NEC Corporation | Radio apparatus with hybrid automatic retransmission protocol |
CN100395965C (zh) * | 2005-02-24 | 2008-06-18 | 华为技术有限公司 | 下行高速共享控制信道的功率控制方法 |
Families Citing this family (29)
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Also Published As
Publication number | Publication date |
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CN1669248A (zh) | 2005-09-14 |
JP2004112597A (ja) | 2004-04-08 |
AU2003257844A1 (en) | 2004-04-08 |
US20060068825A1 (en) | 2006-03-30 |
EP1511192A1 (en) | 2005-03-02 |
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