WO2012093686A1 - 通信制御方法、移動通信システム及び移動端末装置 - Google Patents
通信制御方法、移動通信システム及び移動端末装置 Download PDFInfo
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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
- H04L1/0002—Systems modifying transmission characteristics according to link quality, e.g. power backoff by adapting the transmission rate
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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
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
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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
- H04L1/004—Arrangements for detecting or preventing errors in the information received by using forward error control
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- H04—ELECTRIC COMMUNICATION TECHNIQUE
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- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1812—Hybrid protocols; Hybrid automatic repeat request [HARQ]
- H04L1/1819—Hybrid protocols; Hybrid automatic repeat request [HARQ] with retransmission of additional or different redundancy
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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
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
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- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1822—Automatic repetition systems, e.g. Van Duuren systems involving configuration of automatic repeat request [ARQ] with parallel processes
Definitions
- the present invention relates to a communication control method, a mobile communication system, and a mobile terminal device, and more particularly, to a communication control method, a mobile communication system, and a mobile terminal device that suppress deterioration of transmission characteristics during data transmission.
- UMTS Universal Mobile Telecommunications System
- WSDPA High Speed Downlink Packet Access
- HSUPA High Speed Uplink Packet Access
- CDMA Wideband Code Division Multiple Access
- the third generation system can achieve a maximum transmission rate of about 2 Mbps on the downlink using generally a fixed bandwidth of 5 MHz.
- a maximum transmission rate of about 300 Mbps on the downlink and about 75 Mbps on the uplink can be realized using a variable band of 1.4 MHz to 20 MHz.
- LTE-A LTE Advanced
- LTE-A LTE Advanced
- LTE system In an LTE system (LTE system), it is proposed to apply hybrid ARQ (HARQ) that uses a combination of error correction (FEC: Forward Error Correction) and retransmission control (ARQ: Automatic Repeat reQuest) (
- FEC Forward Error Correction
- ARQ Automatic Repeat reQuest
- FEC Forward Error Correction
- ARQ Automatic Repeat reQuest
- HARQ with soft combining accumulates received data with errors in a buffer memory for retransmission control (more specifically, LLR (Log Likelihood Ratio) storage buffer memory), and later retransmits data ( This is a technique for obtaining highly reliable received data by combining with (retransmitted data).
- LLR Log Likelihood Ratio
- the present invention has been made in view of the above points, and a communication control method capable of suppressing deterioration of transmission characteristics at the time of data transmission even when a mobile terminal device does not sufficiently secure a soft buffer memory for retransmission control.
- An object is to provide a communication system and a mobile terminal device.
- the communication control method of the present invention includes a step of channel-coding information bits in a base station apparatus, a step of performing rate matching processing on encoded bits after channel encoding, and an encoded bit length after rate matching. Transmitting corresponding transmission data to the mobile terminal device, receiving the transmission data in the mobile terminal device, channel decoding received data, and part of the received data to the mobile terminal device And discarding it according to the size of the soft buffer memory and storing it in the soft buffer memory.
- the communication control method of the present invention it is possible to prevent a part of the encoded bits constituting the transmission data from being discarded by the base station apparatus. For this reason, in the mobile terminal apparatus, the transmission characteristics can be improved based on the received data (encoded bits) including these parity bits. As a result, even when the soft buffer memory is not sufficiently secured in the mobile terminal device, it is possible to suppress the deterioration of transmission characteristics during data transmission.
- the present invention it is possible to suppress deterioration of transmission characteristics during data transmission even when a soft buffer memory is not sufficiently secured in the mobile terminal device.
- the present invention will be described by being embodied in a communication control method and a mobile terminal apparatus UE and a base station apparatus eNB to which the communication control method is applied, but the present invention is not limited to this.
- the communication control method of the present invention is applied, or the mobile communication system including the mobile terminal device UE and the base station device eNB to which the communication control method is applied is established.
- FIG. 1 is an explanatory diagram of processing during data transmission of the base station apparatus eNB of the LTE system.
- 2 to 4 are explanatory diagrams of processing of the base station apparatus eNB and the mobile terminal apparatus UE at the time of data retransmission in the LTE system.
- FIG. 2 a case where a buffer memory for retransmission control (LLR storage buffer memory, hereinafter referred to as “soft buffer”) in which received data with errors is stored is sufficiently secured in the mobile terminal apparatus UE.
- FIG. 3 and FIG. 4 show processing when the soft buffer is not sufficiently secured in the mobile terminal apparatus UE.
- the base station apparatus eNB When performing data transmission, the base station apparatus eNB first adds a 24-bit cyclic redundancy check (CRC) bit to information bits according to the size (TBS) of the transport block, as shown in FIG. To do.
- CRC cyclic redundancy check
- TSS size of the transport block
- the detection result of the decoding error is used as, for example, a data retransmission trigger in the downlink HARQ protocol.
- the base station apparatus eNB performs code block division on the information bits to which the CRC bits are added (Codeblock segmentation).
- code block division the transport block is divided into a plurality of code blocks within the block length defined by the turbo encoder.
- the base station apparatus eNB further adds a 24-bit CRC bit for each code block.
- the base station apparatus eNB performs channel coding for each code block to which a CRC is added.
- turbo coding with a coding rate of 1/3 is performed, coded bits of the bit length K W is obtained.
- the coded bits subjected to channel coding include information bits (systematic bits) for each code block and parity bits (first parity bit p1 and second parity bit p2).
- the base station apparatus eNB performs rate matching processing on the coded bits that have been channel coded.
- rate matching by puncturing or repetition is applied to the parity bits for fine adjustment of the rate.
- rate matching processing at a rate of 1/2 is performed, and an encoded bit having a bit length E is obtained.
- the rate-matched encoded bits are modulated by a predetermined modulation method and then transmitted to the mobile terminal apparatus UE on the downlink.
- the mobile terminal apparatus UE stores received data with errors in a soft buffer (received data transmitted for the first time) as shown in FIG. Then, the mobile terminal apparatus UE requests retransmission of the received data having an error.
- the base station apparatus eNB When receiving a retransmission request from the mobile terminal apparatus UE, the base station apparatus eNB transmits the parity bit included in the coded bits after channel coding. A part is transmitted as retransmission data. In this case, retransmission data is stored in a soft buffer in the mobile terminal apparatus UE (received data after retransmission). In the mobile terminal apparatus UE, it is possible to obtain highly reliable received data by combining this retransmission data and the received data stored in the soft buffer (received data transmitted for the first time).
- HARQ with soft combining is classified into CC (Chase Combining) and IR (Incremental Redundancy).
- CC is a method of transmitting the same parity bit as that used at the time of initial transmission when retransmitting data.
- IR is a method of transmitting a parity bit different from the parity bit used at the time of initial transmission when data is retransmitted.
- the parity bit retransmitted from the base station apparatus eNB in response to the retransmission request changes according to the type of HARQ accompanied by soft combining.
- the soft buffer size N cb is smaller than the channel coding bit length K W .
- a parity bit discarding process (Discarding process) is performed prior to the rate matching process.
- the parity bits included in the coded bits after channel coding are discarded according to the soft buffer size N cb secured by the mobile terminal apparatus UE. More specifically, the parity bits that exceed the soft buffer size N cb are discarded.
- the soft buffer size N cb is notified from the mobile terminal apparatus UE to the base station apparatus eNB as part of the Capability information at the start of communication.
- the soft buffer size N cb in the mobile terminal apparatus UE is finite.
- the soft buffer size N cb changes depending on the communication environment with the base station apparatus eNB. For example, the number of HARQ processes (up to 8 processes) performed with the base station apparatus eNB and the number of code words (maximum 2 codewords) during MIMO (Multi Input Multi Output) transmission performed with the base station apparatus eNB ).
- the soft buffer size N cb is reduced according to the number of divisions.
- the soft buffer size N cb is the basic frequency block (hereinafter referred to as “component carrier”) used for communication. It can be considered that the number is divided according to the number and further reduced.
- FIG. 3 shows a case where the soft buffer size N cb in the mobile terminal apparatus UE is equal to or larger than the bit length E of the encoded bits after rate matching (hereinafter referred to as “encoded bit length E after rate matching”). ing. Even if the soft buffer size N cb channel coding bit length K W smaller, is larger than the coded bit length E after rate matching, transmission characteristics in the transmission data of the first time, the soft buffer size N cb is It is maintained equivalent to the case where the channel coding bit length is K W or more (in the case shown in FIG. 2).
- FIG. 4 shows a case where the soft buffer size N cb in the mobile terminal apparatus UE is smaller than the encoded bit length E after rate matching.
- the soft buffer size N cb is smaller than the encoded bit length E after rate matching, part of the information bits is duplicated by iterative processing in rate matching. In this case, some of the information bits are included in the encoded bits after rate matching.
- the transmission data according to the coding bit which a part of information bit overlaps in this way is transmitted to the mobile terminal apparatus UE.
- the transmission characteristic in the first transmission data is compared with the case where the soft buffer size N cb is equal to or larger than the channel coding bit length K W (in the case shown in FIG. 2) according to the decrease in discarded parity bits. to degrade.
- the soft buffer when the soft buffer is not sufficiently secured in the mobile terminal apparatus UE, a part of the parity bits is discarded in the base station apparatus eNB according to the soft buffer size N cb .
- the soft buffer size is further reduced, information bits are also discarded.
- the parity bits discarded in the base station apparatus eNB contribute to the improvement of transmission characteristics during data transmission by being used in the mobile terminal apparatus UE.
- the present inventors pay attention to the fact that the transmission characteristics at the time of data transmission are deteriorated due to these parity bits being discarded by the base station apparatus eNB without being used by the mobile terminal apparatus UE, It came to make this invention.
- the essence of the present invention is that the base station apparatus eNB transmits transmission data corresponding to the encoded bit length E after rate matching without discarding the encoded bits after channel encoding according to the soft buffer size N cb. Then, when the mobile terminal apparatus UE receives and decodes the transmission data and an error occurs in the reception data, a part of the reception data is discarded according to the soft buffer size N cb and stored in the soft buffer. That is. Thereby, it is possible to prevent part of the parity bits from being discarded in the base station apparatus eNB according to the soft buffer size cb, and to improve the transmission characteristics in the mobile terminal apparatus UE based on these parity bits. Even when the soft buffer is not sufficiently secured, it is possible to suppress deterioration in transmission characteristics during data transmission.
- FIG. 5 is an explanatory diagram of processing during data transmission in the communication control method according to the present embodiment.
- FIG. 5 shows processing when the soft buffer is not sufficiently secured in the mobile terminal apparatus UE.
- FIG. 5 shows a case where the soft buffer size N cb in the mobile terminal apparatus UE is smaller than the encoded bit length E after rate matching.
- the base station apparatus eNB performs a process of discarding coded bits after channel coding prior to the rate matching process regardless of the soft buffer size N cb in the mobile terminal apparatus UE.
- the base station apparatus eNB has a sufficient soft buffer (more specifically, when the soft buffer size N cb is equal to or larger than the channel coding bit length K W ).
- rate matching processing is performed on channel-coded bits.
- the base station apparatus eNB transmits the transmission data according to the encoding bit length E after this rate matching to the mobile terminal apparatus UE.
- the mobile terminal apparatus UE receives and decodes this transmission data. In this case, discard processing is not performed in the base station apparatus eNB. For this reason, the encoded bits constituting the received data do not include a copy of a part of the information bits, and include parity bits equivalent to the case where a sufficient soft buffer is secured.
- the mobile terminal apparatus UE By decoding such received data by the mobile terminal apparatus UE, it is possible to obtain the same transmission characteristics as the case where the soft buffer is sufficiently secured in the initial transmission data. For this reason, even when the soft buffer is not sufficiently secured in the mobile terminal apparatus UE, it is possible to suppress the deterioration of the transmission characteristics during data transmission.
- the mobile terminal apparatus UE calculates and stores the LLR of the transmitted code bits using an instantaneous buffer.
- the mobile terminal apparatus UE When an error occurs in the received data, the mobile terminal apparatus UE discards a part of the received data according to the soft buffer size N cb and stores it in the soft buffer (Discarding process). Thereby, even when the soft buffer is not sufficiently secured, a part of the reception data can be appropriately stored in the soft buffer as in the case where the discard process is performed in the base station apparatus eNB.
- the mobile terminal apparatus UE When retransmission data is transmitted from the base station apparatus eNB in response to a retransmission request from the mobile terminal apparatus UE, the mobile terminal apparatus UE combines the retransmission data and the reception data stored in the soft buffer.
- FIG. 6 is a block diagram showing a configuration of base station apparatus eNB to which the communication control method according to the present embodiment is applied. Note that the base station apparatus eNB shown in FIG. 6 is simplified for explaining the communication control method according to the present invention, but the base station apparatus eNB used in the LTE system or the LTE-A system normally includes It shall be provided for the configuration.
- the base station apparatus eNB includes a CRC adding unit 101, a channel encoding unit 102, an interleaver 103, a discard processing unit 104, a rate matching unit 105, a buffer memory 106, and a modulation unit. 107 and the control part 108 are comprised.
- the base station apparatus eNB illustrated in FIG. 6 performs processing necessary for data transmission or data retransmission illustrated in FIGS. 1 to 4 under the control of the control unit.
- the base station apparatus eNB illustrated in FIG. 6 switches the presence / absence of the discard processing of the coded bits after channel coding according to the capability of the mobile terminal apparatus UE that communicates under the control of the control unit 108.
- the CRC adding unit 101 adds a CRC bit for error checking in units of packet data to the input information bits.
- a CRC bit having a length of 24 bits is added to the information bits.
- the CRC adding unit 101 adds a CRC bit for each code block after the code block division.
- the channel encoding unit 102 encodes packet data including CRC bits at a predetermined code rate using a predetermined encoding method. Specifically, channel coding section 102 performs turbo coding with a coding rate of 1/3 to obtain coded bits. The packet data is encoded into systematic bits and parity bits that are error control bits of the systematic bits. Note that the coding rate used by the channel coding unit 102 is given from the control unit 108. Here, a case where turbo coding at a coding rate of 1/3 is used will be described, but other coding rates and other coding methods can also be used.
- Interleaver 103 rearranges the order of the coded bits after channel coding at random (interleave processing). Interleaving is performed to minimize data transmission loss due to burst errors.
- the interleaved coded bits are stored in the buffer memory 106 for retransmission.
- a retransmission request is received from the mobile terminal apparatus UE, a part or all of the transmission packet stored in the buffer memory 106 is output to the modulation unit 107 under the control of the control unit 108.
- the discard processing unit 104 discards a part of the encoded bits (parity bits). For example, if the mobile terminal device UE is Rel. 8 When only the LTE system is supported, if the soft buffer of the mobile terminal apparatus UE is not sufficiently secured, a part of the coded bits after channel coding is discarded (see FIGS. 3 and 4). On the other hand, when the mobile terminal apparatus UE corresponds to the communication control method according to the present invention, the discard processing unit 104 does not perform the discard process on the coded bits after channel coding. In this case, the presence / absence of discard processing by the discard processing unit 104 is performed according to an instruction from the control unit 108. That is, the presence / absence of the discard process is switched according to the capability information (including the soft buffer size) of the mobile terminal apparatus UE given from the control unit 108.
- the rate matching unit 105 performs rate matching of the coded bits by performing repetition and puncturing on the coded bits. For example, the rate matching unit 105 performs puncturing when the coded bit length K W after channel coding is larger than the coded bit length E after rate matching (see FIGS. 3 and 5). On the other hand, the rate matching unit 105 performs repetition when the coded bit length K W after channel coding is smaller than the coded bit length E after rate matching (see FIG. 4).
- the modulation unit 107 modulates the encoded bits input from the rate matching unit 105 (or the buffer memory 106) by a predetermined modulation method.
- the modulation scheme used in the modulation unit 107 is given from the control unit 108. Examples of the modulation scheme include QPSK (Quadrature Phase Shift Keying), 8PSK, 16QAM (Quadrature Amplitude Modulation), 64QAM, and the like.
- the encoded bits modulated by the modulation unit 107 are transmitted to the mobile terminal apparatus UE as transmission data on the downlink.
- the control unit 108 controls the overall operation of the base station apparatus eNB. For example, the coding rate of the channel coding unit 102 and the modulation scheme of the modulation unit 107 are determined according to the current radio channel state. Further, the control unit 108 determines whether or not the discard processing unit 103 performs the discarding process according to the capability information (including the soft buffer size) notified from the mobile terminal apparatus UE at the start of communication. Furthermore, the control unit 108 performs retransmission control according to a response signal (ACK / NACK) transmitted from the mobile terminal apparatus UE. When a response signal ACK (Acknowledge) is received, the corresponding transmission packet in the buffer memory 106 is deleted. On the other hand, when a response signal NACK (Non-Acknowledge) is received, a part or all of the corresponding transmission packet in the buffer memory 106 is extracted and retransmitted to the mobile terminal apparatus UE via the modulation unit 107.
- ACK acknowledge/ NACK
- FIG. 7 is a block diagram showing a configuration of mobile terminal apparatus UE to which the communication control method according to the present embodiment is applied. Note that, in the mobile terminal apparatus UE shown in FIG. 7, the communication control method according to the present invention is simplified, but the mobile terminal apparatus UE used in the LTE system or the LTE-A system is usually used. It is assumed that the configuration provided is provided.
- the mobile terminal apparatus UE includes a demodulation unit 201, a deinterleaver 202, a combining unit 203, a discard processing unit 204, a buffer memory 205, a channel decoding unit 206, and a CRC check unit. 207 and the control part 208 are comprised.
- the mobile terminal apparatus UE shown in FIG. 7 discards a part of the received data and stores it in the soft buffer as shown in FIG. 5 under the control of the control unit 208.
- the demodulation unit 201 demodulates data (received data) received from the base station apparatus eNB.
- the demodulator 201 demodulates using a demodulation scheme corresponding to the modulation scheme used in the modulator 107 of the base station apparatus eNB.
- encoded bits included in the received data are obtained.
- the deinterleaver 202 performs a deinterleaving process on the encoded bits input from the demodulation unit 201. In this case, the deinterleaver 202 performs a deinterleaving process by a deinterleaving method corresponding to the interleaving method of the interleaver 104 of the base station apparatus eNB.
- the synthesizing unit 203 synthesizes the coded bits of the same packet stored in the buffer memory 205 with the currently received coded bits.
- the combining unit 203 converts the currently received encoded bit into a discard processing unit 204 and a channel decoding unit 206. Output to.
- the discard processing unit 204 discards a part of the encoded bits from the synthesis unit 203.
- the discard processing unit 204 discards a part of the encoded bits from the synthesis unit 203 according to the soft buffer size set in part or all of the buffer memory 205. More specifically, the discard processing unit 204 discards a part of the encoded bits (parity bits) that exceeds the soft buffer size. If the soft buffer size is equal to or larger than the encoded bit length from the synthesis unit 203, a part of the encoded bit is not discarded.
- the soft buffer buffer memory 205
- encoded bits partially discarded by the discard processing unit 204 are stored.
- encoded bits that have not been subjected to the discard processing by the discard processing unit 204 are stored.
- the stored encoded bits are used by the combining unit 203 for combining with the re-received encoded bits.
- a part of the encoded bit is discarded by the discard processing unit 204 and stored in the soft buffer. For this reason, even when the soft buffer is not sufficiently secured in the mobile terminal apparatus UE, a part of the received data (encoded bits) is appropriately stored in the soft buffer as in the case of performing the discarding process in the base station apparatus eNB. Can be stored.
- the channel decoding unit 206 restores the encoded bits from the synthesizing unit 203 by decoding them using a predetermined decoding method.
- the channel decoding unit 206 uses a turbo decoding scheme corresponding to the encoding scheme of the channel encoding unit 102 of the base station apparatus eNB.
- the turbo decoding method By decoding the encoded bits from the synthesizing unit 203 by the turbo decoding method, the information bits are restored based on the systematic bits and the parity bits.
- the CRC checking unit 207 extracts CRC bits in units of packets from the restored information bits. Then, it is determined whether or not the packet has an error using the extracted CRC bits. The determination result by the CRC inspection unit 207 is output to the control unit 208. The information bits in the packet that are judged to have no error by the CRC checking unit 207 are output to the upper layer.
- the control unit 208 controls the overall operation of the mobile terminal apparatus UE. For example, in the determination result by the CRC checking unit 207, when the packet has no error, the control unit 208 transmits a response signal ACK for confirming reception of the packet to the base station apparatus eNB. On the other hand, when the packet has an error, the control unit 208 transmits a response signal NACK requesting retransmission of the packet to the base station apparatus eNB. When transmitting the response signal ACK, the control unit 208 initializes the soft buffer. In this case, the coded bits for the packet in the soft buffer are removed. On the other hand, when the response signal NACK is transmitted, the soft buffer is not initialized. In this case, the encoded bits for the packet in the soft buffer remain.
- FIG. 8 is a sequence diagram at the time of data transmission of the communication control method according to the present embodiment.
- the mobile terminal apparatus UE shall correspond to this communication control method.
- the mobile terminal apparatus UE is assumed to have a soft buffer size smaller than the encoded bit length E after rate matching.
- FIG. 8 shows about the process in the case of transmitting transmission data from the base station apparatus eNB to the mobile terminal apparatus UE for the first time.
- the CRC adding unit 101 adds a CRC bit for an error check in packet data units (step ST801).
- channel coding section 102 performs channel coding by a turbo coding scheme with a coding rate of 1/3 to obtain coded bits (step ST802).
- Interleaver 103 randomly rearranges (interleaves) the order of the encoded bits after rate matching (step ST803).
- the interleaved encoded bits are stored in the buffer memory 106 for retransmission, but are omitted in FIG.
- Rate matching section 105 performs rate matching on the interleaved encoded bits (step ST804).
- the discard processing unit 104 since the mobile terminal apparatus UE corresponds to this communication control method, the discard processing unit 104 does not perform the discard processing of the encoded bits. For this reason, as shown in FIG. 4, the encoded bits after rate matching do not include redundant information bits.
- the encoded bits after rate matching include parity bits equivalent to those obtained when a sufficient soft buffer is secured.
- Modulation section 107 modulates the coded bits input from interleaver 103 (or buffer memory 106) by a predetermined modulation method (step ST805).
- the coded bits modulated by modulation section 107 are transmitted as transmission data to mobile terminal apparatus UE on the downlink (step ST806).
- Transmission data from the base station apparatus eNB is received by the mobile terminal apparatus UE (step ST807).
- Demodulation section 201 demodulates this received data (step ST808).
- the received data is demodulated by a demodulation method corresponding to the modulation method used in the modulation unit 107 of the base station apparatus eNB.
- the deinterleaver 202 performs a deinterleaving process on the demodulated encoded bits (step ST809).
- the deinterleaved encoded bits are output to the synthesis unit 203.
- the encoded bits for the same packet are not stored in the buffer memory (soft buffer) 205.
- Channel decoding section 206 restores the encoded bits from combining section 203 by decoding them using a predetermined decoding method (step ST810).
- the coded bits are channel-decoded by a turbo decoding method corresponding to the coding method of the channel coding unit 102 of the base station apparatus eNB. Thereby, the information bits included in the transmission data are restored.
- CRC checking unit 207 CRC bits are extracted in units of packets from the restored information bits. Then, using the extracted CRC bits, it is determined whether or not the packet has an error (CRC check: step ST811). The information bits in the packet that are judged to have no error by the CRC checking unit 207 are output to the upper layer.
- the encoded bits are output from the synthesis unit 203 to the discard processing unit 204.
- the discard processing unit 204 discards a part of the encoded bits (step ST812). In this case, since the soft buffer size is smaller than the encoded bit length E after the rate matching, a part of the encoded bits (parity bits) exceeding the soft buffer size are discarded. Then, the encoded bits partially discarded are stored in the buffer memory (soft buffer) 205 (step ST813).
- the communication control method it is possible to prevent part of the encoded bits constituting the transmission data from being discarded by the base station apparatus eNB. For this reason, in the mobile terminal apparatus UE, transmission characteristics can be improved based on the received data (encoded bits) including these parity bits. As a result, in the mobile terminal apparatus UE, it is possible to suppress deterioration in transmission characteristics during data transmission even when a sufficient soft buffer is not secured.
- the mobile terminal apparatus UE transmits a NACK response signal to the base station apparatus eNB to retransmit the transmission data. Required.
- the encoded bits stored in the buffer memory 205 are maintained.
- the base station apparatus eNB When receiving the retransmission request, the base station apparatus eNB retransmits the corresponding transmission data from the buffer memory 106. Similar to the initially transmitted transmission data, the retransmission data is output to the combining unit 203 through demodulation processing and deinterleaving processing. The synthesizer 203 synthesizes the encoded bits for the retransmission data and the encoded bits for the received data stored in the buffer memory (soft buffer) 205. Then, the combined encoded bits are output as information bits after channel decoding and CRC check. If an error occurs in retransmission data, similar retransmission control is repeated.
- the base station apparatus eNB when performing retransmission control, retransmits the same bit string as the previous transmission (for example, CC (Chase Combining) or IR (Incremental Redundancy)) that retransmits a bit string different from the previous transmission. There is. Usually, a single transmission scheme is used at each retransmission opportunity. When a common transmission method is repeatedly used, improvement of data transmission characteristics may not be expected.
- CC Chose Combining
- IR Incmental Redundancy
- the communication control method switches the parity bit transmission method a predetermined number of times when performing retransmission control. That is, when retransmission control is performed a predetermined number of times in CC, retransmission control is performed by switching the parity bit transmission method to IR. Conversely, when retransmission control is performed a predetermined number of times in IR, retransmission control is performed by switching the parity bit transmission method to CC.
- the mobile terminal apparatus UE can synthesize coded bits for received data using a plurality of parity bits.
- the transmission characteristics at the time of data retransmission can be improved as compared with the case of repeatedly using the same parity bit transmission method.
- Switching of the parity bit transmission method is performed by the control unit 108. That is, in this case, the control unit 108 functions as a switching unit. In this case, the control unit 108 switches the parity bit transmission method based on the encoded bits after channel encoding stored in the buffer memory 106. Specifically, the parity bit transmission method is switched by switching the parity bit selected as retransmission data among the parity bits included in the coded bits after channel coding.
- FIG. 9 is an explanatory diagram of processing during data transmission of the communication control method according to the first modification of the present embodiment.
- FIG. 9 similarly to FIG. 5, a process when the soft buffer is not sufficiently secured in the mobile terminal apparatus UE is illustrated.
- FIG. 9 shows a case where the soft buffer size N cb in the mobile terminal apparatus UE is smaller than the encoded bit length E after rate matching.
- the base station apparatus eNB determines whether the encoded bits after channel encoding precede the rate matching process regardless of the soft buffer size N cb in the mobile terminal apparatus UE. A certain amount of disposal is performed. That is, in a mobile communication system used for a mobile terminal device that can transmit and receive with a plurality of component carriers, a certain amount of the coded bits can be transmitted and received with only a single component carrier regardless of the number of component carriers. It is determined by the size of the soft buffer memory of the mobile terminal device. However, the base station apparatus eNB performs the discard process within a range in which the encoded bit length after the discard process exceeds the encoded bit length E after the rate matching.
- the base station apparatus eNB performs the discarding process according to the specification of LTE (hereinafter referred to as “Rel.8 LTE”) defined in Release 8.
- Rel.8 LTE LTE
- discard processing is performed on the coded bits after channel coding according to the soft buffer size N cb corresponding to a single component carrier, regardless of the number of component carriers actually used for the corresponding mobile terminal apparatus UE. Applied. In this way, Rel. 8 There is an advantage that LTE base station processing can be used.
- the base station apparatus eNB performs rate matching processing on the encoded bits after channel encoding, in which a part is discarded. And the base station apparatus eNB transmits the transmission data according to the encoding bit length E after this rate matching to the mobile terminal apparatus UE.
- the mobile terminal apparatus UE receives and decodes this transmission data E.
- discard processing is performed regardless of the size N cb of the soft buffer, and the encoded bit length after the discard processing is within a range exceeding the encoded bit length E after rate matching. Is being disposed of.
- the encoded bits constituting the received data do not include a copy of a part of the information bits, and include parity bits equivalent to those obtained when a soft buffer is sufficiently secured.
- decoding such received data by the mobile terminal apparatus UE it is possible to obtain the same transmission characteristics as the case where the soft buffer is sufficiently secured in the initial transmission data. For this reason, even when the soft buffer is not sufficiently secured in the mobile terminal apparatus UE, it is possible to suppress the deterioration of the transmission characteristics during data transmission.
- the mobile terminal apparatus UE When an error occurs in the received data, the mobile terminal apparatus UE discards a part of the received data according to the soft buffer size N cb and stores it in the soft buffer (Discarding process). Thereby, even when the soft buffer is not sufficiently secured, a part of the reception data can be appropriately stored in the soft buffer as in the case where the discard process is performed in the base station apparatus eNB.
- the mobile terminal apparatus UE When retransmission data is transmitted from the base station apparatus eNB in response to a retransmission request from the mobile terminal apparatus UE, the mobile terminal apparatus UE combines the retransmission data and the reception data stored in the soft buffer.
- FIG. 10 is a block diagram showing a configuration of the base station apparatus eNB to which the communication control method according to the first modification is applied.
- the base station apparatus eNB shown in FIG. 10 has a configuration normally provided in the base station apparatus eNB used in the LTE system or LTE-A system, similarly to the base station apparatus eNB according to the embodiment shown in FIG. Shall be provided.
- the mobile terminal apparatus UE applied to the communication control method according to the first modification is common to the mobile terminal apparatus UE (FIG. 7) according to the above embodiment, and thus the description thereof is omitted.
- the base station apparatus eNB shown in FIG. 10 is different from the base station apparatus eNB according to the above embodiment in that the discard processing unit 104A is provided.
- symbol is attached
- the discard processing unit 104A when the soft buffer of the mobile terminal apparatus UE is not sufficiently secured, It differs from the discard processing unit 104 according to the above embodiment in that only a certain amount is discarded.
- the discard processing unit 104A performs the discard processing within a range where the encoded bit length after the discard processing exceeds the encoded bit length E after the rate matching.
- the discard processing unit 104A performs the discard processing in accordance with the LTE specification defined in Release 8 (hereinafter referred to as “Rel.8 LTE”). In this case, the discard processing unit 104A performs discard processing on the encoded bits after channel encoding according to the soft buffer size corresponding to a single component carrier. When discard processing is performed according to the soft buffer size corresponding to a single component carrier, the encoded bit length after the discard processing does not become smaller than the encoded bit length E after rate matching.
- the soft buffer size of the mobile terminal apparatus UE is reduced according to the number of component carriers. Along with this, it is assumed that the soft buffer size becomes smaller than the encoded bit length E after rate matching. Even when a plurality of component carriers are used for communication, the discard processing unit 104A performs the discard processing according to the soft buffer size corresponding to a single component carrier. This can reliably prevent the encoded bit length after discard processing from becoming smaller than the encoded bit length E after rate matching. In this case, the encoded bits constituting the data (received data) received by the mobile terminal apparatus UE do not include a part of the information bits, and parity bits equivalent to the case where a sufficient soft buffer is secured. Is included.
- the discard processing unit 104A for example, the mobile terminal apparatus UE is Rel. 8
- the mobile terminal apparatus UE has a function of discarding part of the coded bits after channel coding when the soft buffer of the mobile terminal apparatus UE is not sufficiently secured (see FIGS. 3 and 4).
- switching of discard processing by the discard processing unit 104A is performed according to an instruction from the control unit 108. That is, the discard process is switched according to the capability information (including the soft buffer size) of the mobile terminal apparatus UE given from the control unit 108.
- the soft buffer size in the mobile terminal apparatus UE is divided according to the number of HARQ processes (up to 8 processes) performed with the base station apparatus eNB.
- FIG. 11 is an explanatory diagram of a soft buffer set in the buffer memory 205 when the number of HARQ processes is eight.
- the buffer memory 205 is divided into eight soft buffers SB1 to SB8 according to each HARQ process (HARQ process 1 to HARQ process 8), as shown in FIG.
- the soft buffer size corresponding to the number of HARQ processes is signaled through the call setup process to the mobile terminal apparatus UE to which persistent resources are allocated.
- the buffer memory 205 is divided in this way, not all the soft buffers SB1 to SB8 are used in actual retransmission control. This is because the retransmission control largely depends on the state of the radio channel, and the required number of soft buffers can vary. For this reason, even when the buffer memory 205 is divided as shown in FIG. 11, in some cases, only a part of the soft buffer is used in actual retransmission control (see FIG. 12A). For example, since the soft buffer is necessary for packet synthesis at the time of retransmission, it is possible to reduce the amount of buffer to be used by storing only the HARQ process in which an error has occurred in the soft buffer.
- the use status of a plurality of soft buffers set in the buffer memory 205 is monitored in the mobile terminal apparatus UE, and received data is received according to the use status.
- a memory area (specifically, a soft buffer) for storing a part of is changed.
- a part of received data is stored in a plurality of soft buffers including a soft buffer that is not used for retransmission control among a plurality of soft buffers set in the buffer memory 205. Is stored.
- segmented single soft buffer Since a some soft buffer can be used effectively, the transmission characteristic of data transmission can be improved.
- FIG. 12 is an explanatory diagram of an example of processing received data by the communication control method according to the second modification.
- FIG. 12A shows a case where some (four) soft buffers SB1 to SB4 out of the eight soft buffers SB1 to SB8 set in the buffer memory 205 are used in actual retransmission control. That is, the remaining soft buffers SB5 to SB8 are not used and are waiting to be used for retransmission control.
- received data is processed using soft buffers SB5 to SB8 that are not used for actual retransmission control.
- the soft buffer SB8 for the HARQ process 8 is temporarily used as the soft buffer for the HARQ process 1.
- a part of the received data can be stored in the HARQ process 8 soft buffer SB8.
- FIG. 13 is an explanatory diagram of another example when reception data is processed by the communication control method according to the second modification.
- the communication control method according to the second modified example as shown in FIG. 13, eight soft buffers SB1 to SB8 set in the buffer memory 205 are divided into a plurality of component carriers (in FIG. Shared and managed among (career). Further, only the HARQ process in which an error has occurred in each component carrier is assigned to each of the soft buffers SB1 to SB8.
- the HARQ process in which an error has occurred is assigned to the soft buffers SB1 to SB8.
- the buffer of the process that has been ACKed by retransmission is emptied so that it can be allocated to a process in which another error has occurred.
- the HARQ process 1 has an error in the first component carrier (CC1) and the HARQ processes 1 to 7 have an error in the second component carrier (CC2)
- the HARQ process in which an error has occurred is assigned to the soft buffers SB1 to SB8.
- the packet is discarded without being stored in the buffer memory 205.
- the buffer memory 205 By sharing and managing a soft buffer among a plurality of component carriers, it is possible to efficiently use a finite soft memory and improve transmission characteristics of data transmission.
- FIG. 14 is a block diagram showing a configuration of a mobile terminal apparatus UE to which the communication control method according to the second modification is applied.
- the mobile terminal apparatus UE shown in FIG. 14 is normally configured in the mobile terminal apparatus UE used in the LTE system or LTE-A system, like the mobile terminal apparatus UE according to the above-described embodiment shown in FIG. Shall be provided.
- the base station apparatus eNB applied to the communication control method according to the second modification is common to the base station apparatus eNB (FIGS. 6 and 10) according to the above-described embodiment or the first modification. The description is omitted.
- the mobile terminal apparatus UE shown in FIG. 14 is different from the mobile terminal apparatus UE according to the above embodiment in that it includes a control unit 208A.
- symbol is attached
- the control unit 208A has a management function (hereinafter referred to as “memory management”) of the buffer memory 205 necessary for the communication control method according to the second modification. Function)).
- the memory management function includes a first function for managing a soft buffer used for retransmission control and a soft buffer not used for retransmission control among a plurality of soft buffers set in the buffer memory 205. It is.
- the memory management function includes a second function that allocates a HARQ process soft buffer that is not used for retransmission control to another HARQ process soft buffer.
- the memory management function includes a third function for returning the HARQ process soft buffer assigned to the other HARQ process soft buffer to the original HARQ process soft buffer. . Furthermore, the memory management function includes an operation (discard) of the discard processing unit 204 when a soft buffer for a HARQ process that is not used for retransmission control by the second function is assigned to a soft buffer for another HARQ process. A fourth function for controlling (processing) is included.
- a plurality of soft buffers including a soft buffer not used for retransmission control are included.
- the received data since it is not limited to the divided
- the soft buffers when a plurality of soft buffers set in the buffer memory 205 are shared by a plurality of component carriers, the soft buffers can be used efficiently, and the transmission characteristics of data transmission can be further improved.
- the communication control method according to the second modification can be combined with the communication control method according to the embodiment or the first modification as follows. For example, when there is a soft buffer that is not actually used for retransmission control, received data is processed using a plurality of soft buffers by the communication control method according to the second modified example, while actually used for retransmission control. When there is no soft buffer that is not used, the mobile terminal apparatus UE performs discard processing using a single soft buffer by the communication control method according to the above embodiment or the first modification. By combining in this way, data transmission characteristics can be improved while effectively using the buffer memory 205.
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Abstract
Description
Claims (14)
- 基地局装置において情報ビットをチャネル符号化するステップと、チャネル符号化後の符号化ビットに対してレートマッチング処理を行うステップと、レートマッチング後の符号化ビット長に応じた送信データを移動端末装置に送信するステップと、前記移動端末装置において前記送信データを受信するステップと、受信データをチャネル復号化するステップと、前記受信データの一部を前記移動端末装置のソフトバッファメモリのサイズに応じて廃棄して当該ソフトバッファメモリに格納するステップと、を具備することを特徴とする通信制御方法。
- 前記基地局装置において、前記チャネル符号化後の符号化ビットを前記ソフトバッファメモリのサイズに応じて廃棄することなくレートマッチング処理を行うことを特徴とする請求項1記載の通信制御方法。
- 前記基地局装置において、前記チャネル符号化後の符号化ビットの一定量を廃棄した後に前記レートマッチング処理を行うことを特徴とする請求項1記載の通信制御方法。
- 複数のコンポーネントキャリアで送受信が可能な移動端末装置に用いる移動通信システムにおいて、前記符号化ビットの一定量は、コンポーネントキャリアの数に関わらず、単一のコンポーネントキャリアのみで送受信が可能な移動端末装置のソフトバッファメモリのサイズで決定されることを特徴とする請求項3記載の通信制御方法。
- 前記基地局装置が前記移動端末装置から前記受信データの再送要求を受けたときに、前記送信データを再送するステップを具備し、前記送信データの再送回数に応じて、パリティビットの送信方式であるChase Combiningと、Incremental Redundancyとを切り替えることを特徴とする請求項1から請求項4のいずれかに記載の通信制御方法。
- 情報ビットをチャネル符号化するチャネル符号化部、チャネル符号化後の符号化ビットに対してレートマッチング処理を行うレートマッチング部、及びレートマッチング後の符号化ビット長に応じた送信データを移動端末装置に送信する送信部を有する基地局装置と、
前記送信データを受信する受信部、受信データをチャネル復号化するチャネル復号化部、及び前記受信データの一部を前記移動端末装置のソフトバッファメモリサイズに応じて廃棄する廃棄処理部を有する移動端末装置と、を具備することを特徴とする移動通信システム。 - 前記基地局装置は、前記レートマッチング処理に先行して、前記チャネル符号化後の符号化ビットの一定量を廃棄する廃棄処理部を具備することを特徴とする請求項6記載の移動通信システム。
- 複数のコンポーネントキャリアで送受信が可能な移動端末装置に用いる移動通信システムにおいて、前記符号化ビットの一定量は、コンポーネントキャリアの数に関わらず、単一のコンポーネントキャリアのみで送受信が可能な移動端末装置のソフトバッファメモリのサイズで決定されることを特徴とする請求項7記載の移動通信システム。
- 前記基地局装置が前記移動端末装置から前記受信データの再送要求を受けたときに、前記送信データの再送回数に応じて、パリティビットの送信方式であるChase Combiningと、Incremental Redundancyとを切り替える切り替え部を具備することを特徴とする請求項7又は請求項8記載の移動通信システム。
- 基地局装置からの送信データを受信する受信部と、受信データをチャネル復号化するチャネル復号化部と、前記受信データの一部又は全部を移動端末装置の使用可能なソフトバッファメモリサイズに応じて廃棄する廃棄処理部と、を具備することを特徴とする移動端末装置。
- 前記ソフトバッファメモリの使用状況を監視し、前記使用状況に応じて前記受信データの一部又は全部を格納する領域を変える制御部をさらに具備することを特徴とする請求項10記載の移動端末装置。
- 前記制御部は、複数のコンポーネントキャリアで前記基地局装置からの送信データを受信する場合に前記複数のコンポーネントキャリア間で前記ソフトバッファメモリを共有することを特徴とする請求項11記載の移動端末装置。
- 前記制御部は、第1のコンポーネントキャリアにて誤りが発生したHARQプロセスに対応する受信データと、第2のコンポーネントキャリアにて誤りが発生したHARQプロセスに対応する受信データとを前記ソフトバッファメモリに割り当てることを特徴とする請求項12記載の移動端末装置。
- 前記制御部は、前記受信データの一部を格納する領域に応じて前記廃棄処理部の動作を制御することを特徴とする請求項11記載の移動端末装置。
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CA2823681C (en) | 2015-04-21 |
EP2663011B1 (en) | 2017-04-05 |
EP2663011A1 (en) | 2013-11-13 |
JP5250061B2 (ja) | 2013-07-31 |
RU2013135679A (ru) | 2015-02-20 |
US8995349B2 (en) | 2015-03-31 |
CA2823681A1 (en) | 2012-07-12 |
JP2012156972A (ja) | 2012-08-16 |
TWI469597B (zh) | 2015-01-11 |
CN103299573B (zh) | 2016-07-06 |
KR20130133811A (ko) | 2013-12-09 |
TW201242311A (en) | 2012-10-16 |
EP2663011A4 (en) | 2015-04-01 |
US20130308540A1 (en) | 2013-11-21 |
RU2547696C2 (ru) | 2015-04-10 |
KR101490228B1 (ko) | 2015-02-06 |
CN103299573A (zh) | 2013-09-11 |
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