WO2009086726A1 - 宽带无线传输的方法、装置及一种传输系统 - Google Patents
宽带无线传输的方法、装置及一种传输系统 Download PDFInfo
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- WO2009086726A1 WO2009086726A1 PCT/CN2008/001905 CN2008001905W WO2009086726A1 WO 2009086726 A1 WO2009086726 A1 WO 2009086726A1 CN 2008001905 W CN2008001905 W CN 2008001905W WO 2009086726 A1 WO2009086726 A1 WO 2009086726A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2626—Arrangements specific to the transmitter only
- H04L27/2627—Modulators
- H04L27/2628—Inverse Fourier transform modulators, e.g. inverse fast Fourier transform [IFFT] or inverse discrete Fourier transform [IDFT] modulators
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2626—Arrangements specific to the transmitter only
- H04L27/2627—Modulators
- H04L27/2634—Inverse fast Fourier transform [IFFT] or inverse discrete Fourier transform [IDFT] modulators in combination with other circuits for modulation
- H04L27/2636—Inverse fast Fourier transform [IFFT] or inverse discrete Fourier transform [IDFT] modulators in combination with other circuits for modulation with FFT or DFT modulators, e.g. standard single-carrier frequency-division multiple access [SC-FDMA] transmitter or DFT spread orthogonal frequency division multiplexing [DFT-SOFDM]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2647—Arrangements specific to the receiver only
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0014—Three-dimensional division
- H04L5/0016—Time-frequency-code
Definitions
- the present invention relates to the field of communications, and in particular, to a method and apparatus for broadband wireless transmission and a transmission system. Background technique
- Orthogonal Frequency Division Multiplex (OFDM) technology has received great attention because it can effectively resist Inter-Path Interference (ISI) and improve system capacity, and has been in digital audio broadcasting.
- ISI Inter-Path Interference
- DAB Digital Audio Broadcast
- DVD Digital Video Broadcast
- WLAN Wireless Local Area Network
- OFDM is one of the implementations of a multi-carrier transmission scheme.
- a wideband channel is converted into a plurality of parallel flat fading subchannels by serial-to-parallel conversion, that is, a high-speed data stream is allocated to a plurality of sub-carriers, so that The data symbol duration on each subcarrier is relatively increased, so that the system capacity can be effectively improved and the ISI caused by the time dispersion of the wireless channel can be effectively improved; and the data detection on each subcarrier can be simplified, and the frequency selection can be reduced.
- the impact of sexual fading on data transmission Further, by adding a Cyclic Prefix (CP) to each data symbol, Inter-Channel Interference (ICI) due to multipath can be effectively eliminated, thereby maintaining orthogonality between subcarriers.
- CP Cyclic Prefix
- ICI Inter-Channel Interference
- the embodiments of the present invention provide a method, an apparatus, and a transmission system for broadband wireless transmission, which solve the problems of more redundancy, lower transmission efficiency, and complicated modulation process in the orthogonal frequency division multiplexing process existing in the prior art.
- An embodiment of the present invention provides a method for broadband wireless transmission, the method comprising the steps of: performing a serial-to-parallel conversion operation on an input serial data symbol to obtain a parallel data symbol; and separately encoding the acquired parallel data symbols;
- the superimposed data symbols are subjected to fast inverse Fourier transform and transmitted.
- Embodiments of the present invention provide a method for broadband wireless transmission, the method comprising the steps of: receiving a serial data symbol, performing fast Fourier transform on the serial data symbol, and outputting; decoding each output data symbol into a setting Number of parallel data symbols;
- the parallel data symbols are parallel-serial converted to obtain decoded serial data symbols.
- the embodiment of the present invention provides a device for broadband wireless transmission, which is applied to a transmitting end of a transmission system, and the device includes:
- serial-to-parallel conversion module configured to perform a serial-to-parallel conversion operation on the input serial data symbols to obtain parallel data symbols
- superimposing module configured to superimpose the encoded data symbols
- the transmission module is configured to perform fast Fourier transform on the superposed data symbols and send the data symbols.
- An apparatus for broadband wireless transmission is applied to a receiving end of a transmission system, and the apparatus includes:
- a transmission module configured to perform fast Fourier transform on the received data symbols, and a decoding module, configured to decode each output data symbol into a set number of parallel data symbols; and a parallel conversion module, configured to decode The subsequent parallel data symbols are subjected to parallel-to-serial conversion to obtain decoded serial data symbols.
- the embodiment of the invention provides a transmission system, and the system includes:
- a transmitting end configured to perform a serial-to-parallel conversion operation on the data symbols in the serial data, obtain parallel data symbols, respectively encode and superimpose the parallel data symbols, and perform inverse fast Fourier transform on the superposed data symbols Send
- the receiving end is configured to perform fast Fourier transform on the received data symbols, decode the transformed data symbols into a set number of parallel data symbols, and perform parallel-to-serial conversion on the parallel data symbols to obtain the decoded string. Line data symbol.
- the reliability and efficiency of transmission can be improved without reducing redundancy, and the occupied system resources can be reduced.
- 1 is a schematic diagram of an encoding process of an overlapping coding multiplexing technique
- FIG. 2 is a schematic diagram of a coding process of a multi-stage overlapping coding multiplexing technology
- FIG. 3(a) and 3(b) are schematic diagrams of a broadband wireless transmission process according to Embodiment 1 of the present invention
- FIG. 4 is a schematic diagram of a broadband wireless transmission process according to Embodiment 2 of the present invention.
- FIG. 5 is a schematic diagram of an iterative decoding process according to Embodiment 2 of the present invention.
- FIG. 6( a ) is a schematic diagram of a workflow of a transmitting end according to Embodiment 3 of the present invention.
- FIG. 6(b) is a schematic diagram showing the working flow of the receiving end in the fourth embodiment of the present invention.
- FIG. 7 is a schematic structural diagram of a broadband wireless transmission device according to Embodiment 7 of the present invention.
- Embodiment 8 is a schematic structural diagram of a broadband wireless transmission device according to Embodiment 8 of the present invention.
- FIG. 9 is a schematic structural diagram of a transmission system according to Embodiment 9 of the present invention. detailed description
- OVCDM Overlapped Code Division Multiplexing
- the 0 VCDM involved in various embodiments of the present invention is a high spectral efficiency coding multiplexing technology, which utilizes parallel convolutional coding with a code rate higher than 1 to greatly improve the communication system capacity and spectrum efficiency, and is compiled by OVCDM technology.
- the decoding scheme will be referred to as OVCDM encoding and decoding of data symbols.
- the process of OVCDM encoding the data symbols is to perform a serial-to-parallel conversion operation on the input serial data symbols, and encode the converted parallel data symbols, and then superimpose and output the encoded data symbols. If the serial-to-parallel conversion converts K serial data symbols into K-way parallel data symbols, the length of the last output serial data is 1/K of the input serial data.
- the main method of OVCDM encoding includes: sequentially selecting data symbols from the input serial data symbols according to a set number, performing serial-to-parallel conversion on the selected data symbols; and superimposing the encoded data symbols into one data to be outputted. symbol.
- the serial-parallel converted parallel data symbols are also buffered in the registers of the branch.
- Encoding the parallel data symbols separately includes: in the currently selected parallel data symbols, the data symbols of each branch and the data symbols buffered in the branch are weighted and superimposed into one data symbol to be executed. .
- the superposition of the encoded data symbols into a data symbol to be output can be achieved by: superimposing the data symbols to be executed obtained by the respective branches into one data symbol to be output.
- the weighting coefficient used when each data symbol is weighted may be a parameter related to a register in other branches.
- the data symbols to be executed of each branch may be processed, for example, weighting processing. Finally, a function transformation is performed on a data symbol to be output obtained by superimposing each branch.
- the following is a specific example to illustrate the process of implementing broadband wireless transmission by using OVCDM encoding of data symbols.
- Step 1 Select the three data symbols in the serial data for serial-to-parallel conversion to become three-way parallel data.
- the second step convolutional coding of the three parallel data separately.
- convolutional coding is performed by using ⁇ b , b ... ! ⁇ - 1 ⁇ as a weighting coefficient to weight-emphasize the first input data currently input and the data stored in each of the first registers, ⁇ b ⁇ ,
- Step 3 Save the three parallel input data symbols in register 1 of each channel.
- the data in the original register 1 is saved in register 2
- the data in register 2 is saved in register 3, and so on.
- the data is stored in a register, and the number of data stored in one way must not exceed the total number of registers.
- One data is stored in each register. If data is already stored in each register in the first way at time t, the data in the L-1th register will be discarded at time t+1. At the initial moment, the data stored in the register is zero.
- the fourth step superimposes the three-channel convolutionally encoded data symbols into one data symbol, and outputs it after F function transformation.
- Step 5 The output data symbol is IFFT transformed and sent.
- the IFFT transform performed is the main step in OFDM, and the OFDM operation can also be directly explained here.
- the OVCDM process with high overlap times K can be implemented in a cascade manner.
- the principle of cascaded OVCDM is shown in FIG. 2, wherein the first level OVCDM1 code can use nonlinear OVCDM coding.
- the second level 0 VCDM2 encoding can use linear OVCDM encoding; the output of the first level OVCDM1 is used as the input of the second level OVCDM2.
- the link performance is related to the number of overlaps K and the constraint length L of the overlap coding.
- the same number of overlaps the longer the constraint length, the better the link performance.
- the same constraint length the greater the number of overlaps, the higher the transmission efficiency, but under the same signal noise ratio (SNR), the bit error ratio (BER) Or the worse the Block Error Ratio (BLER) performance.
- SNR signal noise ratio
- BER bit error ratio
- BLER Block Error Ratio
- the OVCDM coded detection can use the maximum likelihood sequence detection (MLSD) based on the Viterbi algorithm, and the Euclidean distance is used as the path metric.
- MLSD maximum likelihood sequence detection
- the decoding process of OVCDM is to decode each data symbol in the serial data into K parallel data symbols, and perform parallel-to-serial conversion on the parallel data symbols.
- the number of data symbols obtained after the decoding process is K of the previous number of decoding. Times.
- the decoding method may use a maximum likelihood sequence detection method or a tree-based sub-optimal sequence detection method; specifically, a semi-positive sequence prediction algorithm in a tree-based sub-optimal sequence detection method may be used for decoding.
- the broadband wireless transmission described in the first embodiment of the present invention is shown.
- the working process of the transmitting end if the application is in the downlink transmission process, may be the workflow of the base station side. If the application is in the uplink transmission process, the working process may be the terminal side. It can be seen from Figure 3 (a) that the program includes the following steps:
- Step 301 Determine a data symbol to be sent.
- Step 302 Perform OVCDM encoding on the data symbol.
- the number of data symbols outputted is the number of data symbols determined in step 301.
- Step 303 Perform serial-to-parallel conversion of the encoded data symbols.
- the serial data encoded by OVCDM is converted into parallel data.
- Step 304 Perform subcarrier mapping on the converted parallel data symbols.
- data symbols can be mapped to consecutive subcarriers or to discrete subcarriers.
- Step 305 Perform IFFT transformation on the mapped data symbols.
- Step 306 Perform a CP operation on the data symbols after the IFFT transformation.
- Step 307 Perform windowing on the data symbols and send them through the antenna.
- the data symbols are OVCM-encoded once.
- the data symbols can also be OVCDM-encoded multiple times, and FIG. 3(b) describes the data symbols. 2 times OVCDM encoding process, its workflow is basically the same as step 301 to step
- the first embodiment describes the sending end in the broadband wireless transmission process as an example, and the second embodiment describes the working process of the receiving end.
- the scheme includes a cascaded OVCDM decoding process. The specific operations are as follows:
- Step 401 Receive data symbols through an antenna.
- Step 402 Perform a CP-removal operation on the received data symbols.
- Step 403 Perform Fast Fourier Transform (FFT) on the data symbols. Convert one serial data into parallel data.
- Step 404 Perform subcarrier mapping on the transformed parallel data symbols.
- FFT Fast Fourier Transform
- Step 405 The data symbols are combined into one serial data after being serial-to-serial converted.
- Step 406 Perform OVCDM2 decoding on the data.
- Step 407 Decode the decoded data symbols.
- Step 408 The data symbol performs OVCDM1 decoding to obtain a transmitted data stream.
- step 406-step 408 may be iteratively decoded by the cascaded OVCDM to obtain a transmitted data stream.
- Iterative decoding is to decode the soft-in and soft-out of each level of OVCDM, and improve the decoding performance through the external information exchange between the two-level OVCDM decoders.
- the specific process is as follows: First, the input The data symbols are OVCDM2 decoded, the decoded data symbols are deinterleaved, and the deinterleaved data symbols are OVCDM1 decoded. After decoding, the OVCDM1 determines the output data symbol to determine whether the performance of the output data symbol accuracy meets the requirements. If it is satisfied, it completes an iteration; otherwise, it needs to perform the next iteration.
- OVCDM1 feeds back the external information to OVCDM2, and the external information output by OVCDM1 is symbol interleaved as an input of OVCDM2.
- OVCDM2 decodes the input data symbols again according to the feedback external information, and then the data symbols output by OVCDM2 are deinterleaved as the input of OVCDM1 for decoding, and OVCDM1 decodes and outputs the data symbols for decision, completing the second iteration. In order to improve the decoding performance, multiple iterations can be performed.
- single carrier transmission can be used, especially in the uplink process, and a large number of single carrier transmissions are used, but OFDM itself is a multi-carrier modulation, which causes multi-carrier transmission data relative to single carrier.
- PAPR peak-to-average power ratio
- PAPR peak-to-average power ratio
- a higher peak-to-average ratio reduces the effective coverage radius of the signal, which affects system performance and coverage.
- 3G Long Term Evolution introduces improved OFDM transmission technology (DFT S-OFDM) in the uplink, and performs frequency domain discrete Fourier transform on the signal before IFFT modulation (Discrete Fourier) Transform, DFT) precoding can reduce the PAPR of the transmitted signal and improve the power utilization efficiency.
- DFT S-OFDM OFDM transmission technology
- IFFT modulation Discrete Fourier Transform, DFT
- the third embodiment differs from the solution in the first embodiment in that: after the encoded data symbols are serial-to-parallel converted, and the converted multi-path data symbols are mapped to the sub-carriers, the method further includes: Step 303 A: The multiplexed data symbols are DFT precoded in size M.
- an IFFT transform of size N may also be performed, where: N > M.
- the fourth embodiment differs from the solution in the second embodiment in that: after the data symbols are mapped by the subcarriers, and the data symbols are converted into one channel by parallel conversion, the method further includes:
- Step 404A The data symbol is subjected to an Inverse Discrete Fourier Transform (IDFT) of size M.
- IDFT Inverse Discrete Fourier Transform
- the fifth embodiment of the present invention corresponds to the case where the OVCDM operation is performed twice in the first embodiment, and the parameters used in the encoding of the OVCDM1 and the OVCDM2 are as shown in Table 1, wherein the number of times of overlap K is 2, and L represents the convolutional code of each channel.
- the constraint length is different in different OVCDM encoding processes.
- the data in the coding matrix represents the weighting coefficient, ie b.
- the middle Si indicates the state of the first register 1
- S 4 indicates the state of the second register 2.
- the first step randomly generate 32 data symbols, the order of which is shown in Table 2.
- the second step divide the randomly generated 32 data symbols into 16 groups of 2 data symbols each, and perform OVCDM1 encoding on each group of data symbols.
- the 16 data symbols obtained after encoding are shown in Table 3.
- the third step is to perform data symbol interleaving operation on the data symbols, and the generated data symbols are as shown in Table 4.
- the fourth step OVCDM2 encoding the interleaved data symbols, and outputting 8 data symbols as serial data of the output, as shown in Table 5.
- Step 5 Serialize and convert the encoded 8 data symbols into 8 data symbols.
- the sixth step IFFT transforms 8 data symbols, the required IFFT order is 8, and the output after IFFT transformation is shown in Table 6.
- Step 7 Assuming that the cyclic prefix is 4, add a cyclic prefix to the data symbol output by the IFFT transform, and input the data symbols as shown in Table 7.
- Step 8 The data symbol is windowed and sent out through the antenna.
- the simulation process of the transmitting end is completed. It is assumed that the OVCDM parameters used in the simulation process of the receiving end are the same as those in the fifth embodiment, and the received data is the data in Table 7. After executing according to the scheme of the second embodiment, the data symbols in Table 2 will be obtained. Further, the third embodiment and the fourth embodiment can be simulated by using the parameters in the fifth embodiment.
- the steps of the sixth embodiment of the present invention correspond to the third embodiment, and the simulation process of the transmitting end implemented by using the parameters in the fifth embodiment, wherein the first step to the fifth step are the same as those in the fifth embodiment, and the data symbols obtained in each step are also the same.
- Step 6 Perform 8th-order DFT transformation on 8 data symbols, and the transformed output is shown in Table 8.
- Step 7 This step is different from the sixth step of the fifth embodiment. Although 8 data symbols are obtained before the IFFT, the 16-order IFFT can also be used in this step, and the subcarriers are mapped to odd subcarriers. . Compared with the 32-bit data symbols randomly obtained in the first step, the OVCDM encoding and the IFFT are also reduced by half.
- Step 8 Assuming that the cyclic prefix is 4, add a cyclic prefix to the data symbol output by the IFFT transform, and input the data symbols as shown in Table 10.
- Step 9 The data symbol is windowed and sent out through the antenna.
- the receiving end emulation process may be the inverse process of Embodiment 6. If the received data is the data in Table 10, the data symbols in Table 2 will be obtained after performing the inverse process scheme of Embodiment 6.
- the seventh embodiment of the present invention further provides a device for broadband wireless transmission, which is applied to a transmitting end of a transmission system.
- the device includes a string. And a conversion module 11, an encoding module 12, a superimposing module 13 and a transmission module 14, wherein the serial to parallel conversion module 11 is configured to perform a serial-to-parallel conversion operation on the input serial data symbols to obtain parallel data symbols; the encoding module 12 is configured to The acquired parallel data symbols are respectively encoded; the superimposing module 13 is configured to superimpose and output the encoded data symbols; and the transmission module 14 is configured to perform inverse fast Fourier transform on the output data symbols and then transmit the data symbols.
- the serial to parallel conversion module 11 includes a selection unit 21 and an operation unit 22, wherein the selection unit 21 is configured to sequentially select data symbols from the input serial data symbols according to a set number; and the operation unit 22 is configured to select The data symbols are subjected to a serial-to-parallel conversion operation.
- the superposition module 13 is configured to superimpose the encoded data symbols into a data symbol to be output.
- the apparatus also includes a register 15 for buffering the serial-parallel converted parallel data symbols separately.
- a plurality of registers 15 may be included in the apparatus of the embodiment.
- the encoding module 12 includes a weighting unit 31 and an operating unit 32, wherein the weighting unit 31 is configured to cache the data symbols of each branch and the branches in the parallel data symbols that are currently selected for serial-to-parallel conversion. The data symbols are weighted; the operating unit 32 is configured to superimpose the weighted data symbols in each branch into a data symbol to be executed.
- the superposition module 13 is configured to superimpose the data symbols to be executed obtained by the respective branches into one data symbol to be output.
- the transmission module 14 is configured to perform subcarrier mapping on the output data symbols, and add the cyclic prefix and windowing to the transformed data symbols.
- the device further includes a transformation module 16 configured to serially convert the data symbols output by the superposition module 13 to obtain parallel data symbols, and after performing discrete Fourier transform on the parallel data symbols, triggering the transmission module 14.
- a transformation module 16 configured to serially convert the data symbols output by the superposition module 13 to obtain parallel data symbols, and after performing discrete Fourier transform on the parallel data symbols, triggering the transmission module 14.
- the transmission module 43 is configured to perform a de-cyclic prefix operation on the received data symbols, and perform sub-carrier demapping on the transformed parallel data symbols.
- the apparatus further includes a transform module 44, configured to perform inverse discrete Fourier transform on the data symbols output by the transmission module 41, and perform parallel-to-serial conversion on the transformed data symbols to trigger the decoding module 42.
- a transform module 44 configured to perform inverse discrete Fourier transform on the data symbols output by the transmission module 41, and perform parallel-to-serial conversion on the transformed data symbols to trigger the decoding module 42.
- the ninth embodiment of the present invention further provides a transmission system.
- the system includes a transmitting end 51 and a receiving end 52.
- the transmitting end 51 is configured to serialize serial data symbols. Converting operation, acquiring parallel data symbols, respectively encoding and superimposing the parallel data symbols, and performing the inverse fast Fourier transform on the superposed data symbols; and receiving end 52 for performing fast Fourier on the received data symbols Transforming, transforming the transformed data symbols into a set number of parallel data symbols, and performing parallel-to-serial conversion on the parallel data symbols to obtain decoded serial data symbols.
- the transmitting end 51 includes a serial to parallel conversion module 61, an encoding module 62, a superimposing module 63, a first transforming module 64, and a first transmitting module 65, wherein the serial to parallel conversion module 61 is configured to input serial data.
- the symbol performs a serial-to-parallel conversion operation to obtain parallel data symbols;
- the encoding module 62 is configured to separately encode the acquired parallel data symbols;
- the superimposing module 63 is configured to superimpose and output the encoded data symbols; 64 is used for serial-to-parallel conversion of the output data symbols to obtain parallel data symbols, and performing discrete Fourier transform on the parallel data symbols;
- the first transmission module 65 is configured to perform inverse fast Fourier transform on the output data symbols and send .
- the receiving end 52 includes a second transmission module 66, a second transform module 67, a decoding module 68, and And a parallel conversion module 69, wherein the second transmission module 66 is configured to perform fast Fourier transform on the received data symbols, and the second transform module 67 is configured to perform discrete Fourier on the data symbols output by the second transmission module 66. Inverse transform, the transformed data symbols are parallel-to-serial converted; the decoding module 68 is configured to decode each data symbol output by the second transform module into a set number of parallel data symbols; and the parallel string conversion module 69 is configured to The decoded parallel data symbols are parallel-serial converted to obtain decoded serial data symbols.
- the method, the device and the transmission system provided by the embodiments of the invention greatly improve the transmission efficiency of the OFDM system, and reduce the number of data symbols by using OVCDM coding; in addition, DFT conversion or IDFT transformation can be added between OVCDM and OFDM. It can reduce the PAPR of the OFDM system, reduce the cost and complexity of the transmitter, and improve the power efficiency, which is suitable for the uplink.
- the spirit and scope of the Ming Thus, it is intended that the present invention cover the modifications and variations of the inventions
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US12/811,157 US8514695B2 (en) | 2007-12-29 | 2008-11-21 | Method and apparatus for wideband wireless transmission and transmission system |
KR1020107016891A KR101160000B1 (ko) | 2007-12-29 | 2008-11-21 | 광대역 무선 전송 방법, 장치 및 전송 시스템 |
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CN107645360B (zh) * | 2016-07-22 | 2022-02-18 | 深圳汇思诺科技有限公司 | 一种适用于OvXDM系统译码方法、装置及OvXDM系统 |
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CN101471746B (zh) | 2012-06-27 |
KR20100099328A (ko) | 2010-09-10 |
US20100296386A1 (en) | 2010-11-25 |
KR101160000B1 (ko) | 2012-07-13 |
CN101471746A (zh) | 2009-07-01 |
US8514695B2 (en) | 2013-08-20 |
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