WO2018202223A1 - 信息传输方法及装置、电子设备 - Google Patents

信息传输方法及装置、电子设备 Download PDF

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Publication number
WO2018202223A1
WO2018202223A1 PCT/CN2018/094670 CN2018094670W WO2018202223A1 WO 2018202223 A1 WO2018202223 A1 WO 2018202223A1 CN 2018094670 W CN2018094670 W CN 2018094670W WO 2018202223 A1 WO2018202223 A1 WO 2018202223A1
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WIPO (PCT)
Prior art keywords
code block
information
configuration
transmission
block group
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PCT/CN2018/094670
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English (en)
French (fr)
Inventor
陈艺戬
鲁照华
张楠
李儒岳
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中兴通讯股份有限公司
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Publication of WO2018202223A1 publication Critical patent/WO2018202223A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements 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
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • H04L1/1829Arrangements specially adapted for the receiver end
    • H04L1/1861Physical mapping arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2626Arrangements specific to the transmitter only
    • H04L27/2627Modulators
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path

Definitions

  • This document relates to the field of communications, for example, to an information transmission method and apparatus, and an electronic device.
  • FIG. 1 is a schematic diagram of mapping in the related art.
  • a signal to be transmitted preferentially maps a layer on a first subcarrier of a first OFDM symbol, and jumps to a next subcarrier until mapping.
  • the available layers and subcarriers allocated on the first OFDM symbol are completed and then jumped to the next symbol.
  • one code block can be mapped to the same OFDM symbol as much as possible, and the receiving end can receive demodulation and decoding processing after receiving an OFDM symbol, which is faster.
  • New Radio Compared to Long Term Evolution (LTE), New Radio (NR) has greater bandwidth and higher transmission efficiency.
  • This mapping method may cause a CB to be mapped only to A continuous frequency domain resource of an OFDM symbol.
  • LDPC Low Density Parity Check Code
  • MCS Modulation and Coding Scheme
  • the NR needs to support the ultra-reliable low-latency channel (URLLC) service, which may punct the resource elements (RE) used for the enhanced mobile broadband (eMBB) transmission already in progress, and the terminal that performs eMBB data reception. If you do not know which parts of it are destroyed by URLLC data, you can directly decode all received data, and the performance will be significantly reduced. Therefore, the impact should be minimized when mapping.
  • URLLC ultra-reliable low-latency channel
  • eMBB enhanced mobile broadband
  • the URLLC service may occupy some frequency domain resources within several consecutive time domain symbols. If a CB corresponding modulation symbol is mapped to only one symbol, this means that if there is a burst of URLLC service transmission, it is possible. The impact is concentrated in a few CBs. Therefore, if the code block group (CBG) (corresponding to a response or retransmission indication message) contains a lot of CBs, this mapping method will cause all CBs in the CBG to be retransmitted, resulting in very obvious waste. This situation also occurs when the frequency selection characteristics are large or the interference is relatively large. A symbol may have significant channel gain on some consecutive resource blocks (RBs) due to channel frequency domain selective fading, or significant interference due to neighboring cells scheduling users on these RBs.
  • RBs resource blocks
  • the embodiments of the present invention provide an information transmission method and apparatus, and an electronic device, which can avoid the phenomenon that the signal modulation symbol to resource mapping manner in the related art leads to poor transmission performance.
  • an information transmission method including: acquiring information for determining a configuration of at least one of a code block group and a code block; determining at least one of a code block group and a code block according to the information. a configuration of determining at least one of a code block group and a code block based on information of at least one of a code block group and a code block.
  • an information transmission method including: determining an allocated transmission resource; dividing the allocated transmission resource into N transmission resource regions; wherein N is a natural number greater than or equal to 1; determining the N a configuration of at least one of a code block group and a code block to be transmitted in a transmission resource region; transmitting according to a configuration of at least one of the code block group and the code block.
  • an information transmission method including: determining mapping configuration information between at least one of a code block group and a code block and a transmission resource; and transmitting the code block group and the code block according to the mapping configuration information. At least one of the information contained.
  • an information transmission apparatus comprising: an acquisition module configured to acquire information for determining a configuration of at least one of a code block group and a block; and a determination module configured to determine a code block according to the information a configuration of at least one of a group and a code block; a transmission module configured to perform information transmission according to a configuration of at least one of a code block group and a code block.
  • an information transmission apparatus including: a first determining module, configured to determine an allocated transmission resource; and a dividing module, configured to divide the allocated transmission resource into N transmission resource areas; wherein, N a natural number greater than or equal to 1; a second determining module configured to determine a configuration of at least one of a code block group and a code block to be transmitted in the N transmission resource regions; and a transmission module configured to follow the code The configuration of at least one of the block group and the code block is transmitted.
  • an information transmission apparatus including: a determining module, configured to determine mapping configuration information between at least one of a code block group and a code block and a transmission resource; and a transmission module configured to be mapped according to the mapping The information contained in at least one of the information transmission code block group and the code block is configured.
  • an electronic device comprising: a processor configured to acquire information for determining a configuration of at least one of a code block group and a code block; determining a code block group and a code block according to the information And configuring at least one of; and transmitting information according to a configuration of at least one of a code block group and a code block; and a memory coupled to the processor.
  • an electronic device including: a processor, configured to determine an allocated transmission resource; divide the allocated transmission resource into N transmission resource regions; and determine to be transmitted in the N transmission resource regions. a configuration of at least one of a code block group and a code block; and configured to transmit according to a configuration of at least one of the code block group and the code block; wherein N is a natural number greater than or equal to 1; a memory, Coupled with the processor.
  • an electronic device comprising: a processor configured to determine mapping configuration information between at least one of a code block group and a code block and a transmission resource; and transmit the code block according to the mapping configuration information Information contained in at least one of the group and the code block; a memory coupled to the processor.
  • a storage medium comprising a stored program, wherein the program is executed to perform the method of any of the above.
  • a processor is further provided, the processor being configured to run a program, wherein the program is executed to perform the method of any of the above.
  • the configuration of at least one of the code block group and the code block can be determined according to the configured information of the at least one of the obtained code block group and the code block, information transmission is performed according to the determined configuration, that is, The information transmission is performed based on the determined configuration, and thus the transmission performance can be improved. Therefore, the manner in which the signal modulation symbol is mapped to the resource can be avoided, resulting in poor transmission performance.
  • Embodiment 3 is a flowchart of an information transmission method according to Embodiment 2 of the present invention.
  • FIG. 5 is a block diagram showing the structure of an information transmission apparatus according to Embodiment 4 of the present invention.
  • FIG. 6 is a block diagram showing the structure of an information transmission apparatus according to Embodiment 5 of the present invention.
  • FIG. 7 is a block diagram showing the structure of an information transmission apparatus according to Embodiment 6 of the present invention.
  • FIG. 8 is a structural block diagram of an electronic device according to Embodiment 7 of the present invention.
  • Embodiment 8 of the present disclosure is a structural block diagram of an electronic device according to Embodiment 8 of the present disclosure.
  • FIG. 10 is a structural block diagram of an electronic device according to Embodiment 9 of the present invention.
  • FIG. 11 is a schematic diagram of several consecutive mapping relationships between CBG and CB according to Embodiment 1 of the present disclosure
  • FIG. 12 is a schematic diagram of a non-contiguous CBG to CB mapping manner provided in accordance with Embodiment 1 herein.
  • FIG. 2 is a flowchart of an information transmission method according to Embodiment 1 of the present invention. As shown in FIG. 2, the flow includes step S202, step S204, and step S206.
  • step S202 information for determining a configuration of at least one of a code block group and a code block is acquired.
  • step S204 a configuration of at least one of a code block group and a code block is determined based on the information.
  • step S206 information transmission is performed according to the configuration of at least one of the code block group and the code block.
  • the configuration of at least one of the code block group and the code block can be determined according to the configured information of at least one of the obtained code block group and the code block, information transmission, that is, information is performed according to the determined configuration.
  • the transmission is performed based on the determined configuration, thereby improving the transmission performance. Therefore, the manner in which the signal modulation symbol is mapped to the resource can be avoided, resulting in poor transmission performance.
  • the foregoing step S202 may be performed as at least one of: receiving configuration indication signaling of at least one of a code block group and a code block, where the configuration indication signaling carries information of the configuration; A division rule of at least one of a pre-agreed code block group and a code block.
  • the configuration of the code block group includes at least one of: a number of the code block groups, a number of code blocks included in each of the code block groups; and a configuration of the code blocks includes at least the following One of: the number of the code blocks, the number of information bits included in each of the code blocks, and the division of the code blocks; the configuration of the code block group and the code block includes at least one of the following: The number of block groups, the number of code blocks included in each of the code block groups, the number of code blocks, the number of information bits included in each of the code blocks, the division of the code blocks, and the code blocks and The mapping relationship between the code block groups.
  • the size of the code block group of the node (the number of code blocks included in the code block group) or the size of the code block (the number of information bits included in the code block) may be different, for example,
  • the CBG mapped on the resource with better transmission condition is larger, and the CBG mapped on the resource with poor transmission condition is smaller, which can improve the retransmission efficiency and reduce the impact on the URLLC service.
  • the candidate configuration set to which the configuration of the at least one of the code block group and the code block belongs includes a first specified configuration, where the first specified configuration includes: the number of the code block groups is M1, And the number of code blocks included in different code block groups in the M1 code block groups is not completely the same, where M1 is greater than or equal to 2.
  • the number of code blocks included in the code block group is configured by the base station, that is, the difference between the number of code blocks included in different code block groups is determined by the configuration information after being configured by the base station, and is related to The difference between the number of code blocks in the technology is that the flexibility of the code block group setting is provided by the base station and the terminal.
  • the number of code blocks included in the different code block groups may be all different or partially the same, but is not limited thereto.
  • the base station can configure the number of code blocks included in the 4 code block groups, for example, 4 codes configured.
  • the number of code blocks included in the block group may be 1, 2, 3, 4, or 3, 3, 2, 2, etc., and the scheme adopted in the related art is that the total number of code blocks is equally distributed among a plurality of code block groups. For example, in the case where the number of code blocks included in each code block group is three and the number of code blocks is 10, the result obtained by the scheme adopted in the related art is unique and the only result is 3, 3, 3, 1.
  • the number of code blocks included in different code block groups is an integer multiple relationship.
  • the candidate configuration set to which the configuration of the at least one of the code block group and the code block belongs includes a second specified configuration, where the second specified configuration includes: the number of the code blocks is M2, and The number of information bits included in different code blocks of the M2 code blocks is not completely the same, where M2 is greater than or equal to 2.
  • the number of information bits included in the code block is configured by the base station, that is, the difference in the number of information bits included in different code blocks is indicated by the configuration information after being configured by the base station, and the information bits in the related art.
  • the difference in the number is the flexibility of the code block setting compared to the agreement between the base station and the terminal.
  • the number of information bits included in the different code blocks may be all different or partially the same, but is not limited thereto.
  • the number of code blocks included in the M2 code blocks except for the first code block is not completely the same, or M2 of the code blocks are Different code blocks other than the last code block contain different numbers of code blocks.
  • the number of information bits may be 1, 2, 3, 4 or 3, 3, 2, 2, etc.
  • the scheme adopted in the related art is that the total number of information bits is evenly distributed among a plurality of code blocks, for example, in each When the number of information bits included in the code block is three, and the total number of information bits is 10, the result obtained by the scheme used in the related art is unique and the only result is 3, 3, 3, 1.
  • the number of information bits included in different code blocks is in an integer multiple relationship.
  • At least one of the mapping relationship between the code block and the code block group and the number of code block groups is related to at least one of the following: configuration information of the ultra-high reliability low-latency channel service, and modulation mode Configuration information, transmission layer number configuration information, transmission technology configuration information, demodulation reference signal configuration information, number of uplink scheduling request indication information, first transmission/retransmission status, downlink control information format, subframe structure configuration information, physical resources Block binding parameters, channel state information feedback information or channel state information feedback configuration information, and transmission waveforms.
  • mapping relationship or the number of code blocks or the division of code blocks is configured by the base station.
  • the division rule of the agreed retransmitted code block group is different from the division rule of the agreed first code block group.
  • the retransmitted code block group contains bits that are less than or equal to the bits included in the first transmitted code block group.
  • the mapping relationship may include: a discrete mapping relationship and a continuous mapping relationship.
  • the execution body of the foregoing steps may be a base station or a terminal, but is not limited thereto.
  • FIG. 3 is a flowchart of an information transmission method according to Embodiment 2 of the present invention. As shown in FIG. 3, the flow includes steps S302, S304, S306, and S308.
  • step S302 the allocated transmission resource is determined.
  • step S304 the allocated transmission resource is divided into N transmission resource regions; wherein N is a natural number greater than or equal to 1.
  • step S306 a configuration of at least one of a code block group and a code block to be transmitted in the N transmission resource regions is determined.
  • step S308 transmission is performed according to a configuration of at least one of the code block group and the code block.
  • the allocated transmission resources can be divided into N transmission resource regions, a configuration of at least one of a code block group and a code block to be transmitted in the N transmission resource regions is determined; The configuration of at least one of the group and the code block is transmitted, thereby improving transmission performance. Therefore, the phenomenon that the signal modulation symbol to the resource mapping manner is caused to cause poor transmission performance can be avoided.
  • transmitting according to the configuration of at least one of the code block group and the code block comprises: determining a location included in a configuration of at least one of the code block group and the code block Transmitting, by the code block group and the at least one of the code blocks, a mapping rule for transmitting resources in a corresponding transmission resource region; transmitting the code block group and the at least one of the code blocks according to the mapping rule The information bits contained.
  • the transmission resource corresponding to the foregoing transmission resource region may include one or more of a spatial domain resource (such as a layer, a port, an antenna, a beam, and the like), a time domain resource, a frequency domain resource, and a code domain resource.
  • a spatial domain resource such as a layer, a port, an antenna, a beam, and the like
  • the foregoing division of the transmission resource region may be determined by at least one of: transmission quality, available transmission resource configuration of the ultra-high reliability low-latency channel service, first transmission or retransmission status, configuration of the demodulation reference signal Information, downlink control information format, data of uplink scheduling request indication information, subframe structure configuration information, channel state information feedback information, channel state information process, quasi-common positional relationship, modulation mode, and transmission beam.
  • the foregoing step S306 may be performed to determine, respectively, a configuration of at least one of a code block group and a code block to be transmitted in the N pieces of the transmission resource region.
  • the configuration of determining at least one of the code block group and the code block to be transmitted in the N pieces of the transmission resource region respectively includes at least one of the following: at least two transmission resources in the N transmission resource regions
  • the number of code blocks included in the code block group in the area is determined separately; the number of bits included in the code block group in at least two transmission resource areas in the N transmission resource areas is determined separately; at least 2 in the N transmission resource areas
  • the number of bits included in the code block in the transmission resource region is determined separately; the number of code block groups in at least two transmission resource regions in the N transmission resource regions is determined separately; at least two of the N transmission resource regions exist
  • the number of source bits corresponding to the correct/error status response in the transmission resource area is determined separately.
  • At least one of the value of N and the division of N transmission resource regions may be determined by at least one of: channel state information feedback information, configuration of ultra-high reliability low-latency channel service, and modulation mode
  • channel state information feedback information configuration of ultra-high reliability low-latency channel service
  • modulation mode The number of transmission layers, the transmission technique, the positional relationship of the demodulation reference signals, the number of code block groups, the number of uplink scheduling request indication information, the first transmission or retransmission status, the downlink control information format, and the subframe configuration information.
  • the method may further include: setting N transmission resource regions in the downlink control information.
  • mapping rule of the transmission resource may be expressed as: a mapping rule group of at least two transmission resource regions in the N transmission resource regions and a mapping rule of at least one of the code blocks to the transmission resources are separately determined.
  • the transmission resources contained within the transmission resource region are continuous or discrete.
  • the execution body of the foregoing steps may be a base station or a terminal, but is not limited thereto.
  • FIG. 4 is a flowchart of an information transmission method according to Embodiment 3 of the present invention. As shown in FIG. 4, the flow includes steps S402 and S404.
  • mapping configuration information between at least one of the code block group and the code block and the transmission resource is determined.
  • step S404 information included in at least one of the code block group and the code block is transmitted according to the mapping configuration information.
  • the transmission performance can be improved. Therefore, it is possible to avoid the phenomenon that the signal modulation symbol is mapped to the resource, resulting in poor transmission performance.
  • the mapping configuration information may include at least one of: interleaving parameter indication information, mapping mode indication parameter, and mapping pattern.
  • the mapping configuration information is determined by at least one of: physical resource block binding configuration information, waveform configuration information during transmission, first transmission or retransmission status, demodulation reference signal configuration information, channel status information feedback information , transmission technology, number of transmission layers, channel state information processes, quasi-common positional relationships, modulation schemes, and transmission beams.
  • the method further includes: Send mapping configuration information to the receiving end.
  • determining mapping configuration information between at least one of the code block group and the code block and the transmission resource comprises: receiving a configuration indication sent by the base station Signaling; determining mapping configuration information according to the configuration indication information and a mapping rule pre-agreed with the base station.
  • module may implement software, hardware, and a combination of software and hardware for a predetermined function.
  • the apparatus described in the following embodiments can be implemented by software, but hardware, or a combination of software and hardware, is also possible and conceived.
  • the apparatus includes an acquisition module 52, a determination module 54, and a transmission module 56.
  • the obtaining module 52 is configured to acquire information for determining a configuration of at least one of the code block group and the code block.
  • the determining module 54 is coupled to the obtaining module 52, and is configured to determine a configuration of at least one of the code block group and the code block according to the information.
  • the transmission module 56 is coupled to the determining module 54 and configured to perform information transmission according to a configuration of at least one of a code block group and a code block.
  • the configuration of at least one of the code block group and the code block can be determined according to the configured information of at least one of the acquired code block group and the code block, information transmission, that is, information is performed according to the determined configuration.
  • the transmission is performed based on the determined configuration, thereby improving the transmission performance. Therefore, the manner in which the signal modulation symbol is mapped to the resource can be avoided, resulting in poor transmission performance.
  • the obtaining module 52 may be further configured to perform an operation of at least one of: receiving configuration indication signaling of at least one of a code block group and a code block, where the configuration indication signaling is carried in The configured information; the partitioning rule for obtaining at least one of the pre-agreed code block group and the code block locally.
  • the configuration of the code block group includes at least one of: a number of the code block groups, a number of code blocks included in each of the code block groups; and a configuration of the code blocks includes at least the following One of: the number of code blocks, the number of information bits included in each of the code blocks, the division of the code blocks; the configuration of the code block group and the code block includes at least one of the following: The number of block groups, the number of code blocks included in each of the code block groups, the number of code blocks, the number of information bits included in each of the code blocks, the division of the code blocks, the code blocks and The mapping relationship between the code block groups.
  • the candidate configuration set to which the configuration of the at least one of the code block group and the code block belongs includes a first specified configuration, where the first specified configuration includes: the number of the code block groups is M1, And the number of code blocks included in different code block groups in the M1 code block groups is not completely the same, where M1 is greater than or equal to 2.
  • the number of code blocks included in the different code block groups is configured by the base station, that is, the difference in the number of code blocks included in each code block group is indicated by the configuration information after being configured by the base station,
  • the difference from the number of code blocks in the related art is that the flexibility of the code block group setting is provided by the base station and the terminal.
  • the number of code blocks included in each of the code block groups may be all different or partially the same, but is not limited thereto.
  • the base station can configure the number of code blocks included in the 4 code block groups, for example, 4 codes configured.
  • the number of code blocks included in the block group may be 1, 2, 3, 4 or 3, 3, 2, 2, etc., and the solution adopted in the related art is that the total number of code blocks is equally distributed among a plurality of code block groups. For example, in the case where the number of code blocks included in each code block group is three and the number of code blocks is 10, the result obtained by the scheme adopted in the related art is unique and the only result is 3, 3, 3, 1.
  • the number of code blocks included between code block groups is an integer multiple relationship.
  • the candidate configuration set to which the configuration of the at least one of the code block group and the code block belongs includes a second specified configuration, where the second specified configuration includes: the number of the code blocks is M2, and The number of information bits included in different code blocks of the M2 code blocks is not completely the same, where M2 is greater than or equal to 2.
  • the number of information bits contained between code blocks is in an integer multiple relationship.
  • the number of information bits included in the foregoing code block is configured by the base station, that is, the difference in the number of information bits included between each code block is indicated by the configuration information after being configured by the base station, and related technologies
  • the difference in the number of information bits is the flexibility of the code block setting compared to the agreement between the base station and the terminal.
  • the number of information bits included between each of the code blocks may be all different or partially the same, but is not limited thereto.
  • the number of code blocks included in the M2 code blocks except for the first code block is not completely the same, or M2 of the code blocks are Different code blocks other than the last code block contain different numbers of code blocks.
  • the total number of information bits is 10 as an example. If the number of code blocks is 4, the base station in this embodiment can configure the number of information bits included in the 4 code blocks, for example, 4 code blocks configured.
  • the number of information bits included may be 1, 2, 3, 4 or 3, 3, 2, 2, etc., and the scheme adopted in the related art is that the total number of information bits is evenly distributed into a plurality of code blocks, for example, In the case where the number of information bits included in each code block is three, and the total number of information bits is 10, the result obtained by the scheme adopted in the related art is unique and the only result is 3, 3, 3, 1.
  • At least one of the mapping relationship between the code block and the code block group and the number of code block groups is related to at least one of the following: configuration information of the ultra-high reliability low-latency channel service, and modulation mode Configuration information, transmission layer number configuration information, transmission technology configuration information, demodulation reference signal configuration information, number of uplink scheduling request indication information, first transmission/retransmission status, downlink control information format, subframe structure configuration information, physical resources
  • configuration information of the ultra-high reliability low-latency channel service and modulation mode Configuration information
  • transmission layer number configuration information transmission technology configuration information
  • demodulation reference signal configuration information number of uplink scheduling request indication information, first transmission/retransmission status, downlink control information format, subframe structure configuration information, physical resources
  • the block binding parameter, the channel state information feedback information or the channel state information feedback configuration information, and the transmission waveform is related to at least one of the following: configuration information of the ultra-high reliability low-latency channel service, and modulation mode Configuration information, transmission layer number configuration information, transmission technology configuration information, demodulation
  • mapping relationship or partitioning of the code blocks is configured by the base station.
  • the division rule of the agreed retransmitted code block group is different from the division rule of the agreed first code block group.
  • the retransmitted code block group contains bits that are less than or equal to the bits included in the first transmitted code block group.
  • the mapping relationship may include: a discrete mapping relationship and a continuous mapping relationship.
  • the foregoing apparatus may be located in the base station, or may be located in the terminal, but is not limited thereto.
  • each of the foregoing modules may be implemented by software or hardware.
  • the foregoing may be implemented by, but not limited to, the foregoing modules are all located in the same processor; or each of the above modules They are located in different processors in any combination.
  • module can implement software, hardware, and a combination of software and hardware for a predetermined function.
  • the apparatus described in the following embodiments can be implemented by software, but hardware, or a combination of software and hardware, is also possible and conceived.
  • the apparatus includes a first determination module 62, a division module 64, a second determination module 66, and a transmission module 68.
  • the first determining module 62 is configured to determine the allocated transmission resource.
  • the dividing module 64 is connected to the first determining module 62, and is configured to divide the allocated transmission resource into N transmission resource regions; wherein N is a natural number greater than or equal to 1.
  • the second determining module 66 is connected to the dividing module 64, and is configured to determine a configuration of at least one of a code block group and a code block to be transmitted in the N transmission resource regions.
  • the transmission module 68 is connected to the second determining module 66, and is configured to transmit according to a configuration of at least one of the code block group and the code block.
  • the allocated transmission resources can be divided into N transmission resource regions, a configuration of at least one of a code block group and a code block to be transmitted in the N transmission resource regions is determined; The configuration of at least one of the group and the code block is transmitted, thereby improving transmission performance. Therefore, the phenomenon that the signal modulation symbol to the resource mapping manner is caused to cause poor transmission performance can be avoided.
  • the foregoing transmission module 68 may be further configured to determine the code block group included in the configuration of at least one of the code block group and the code block and the at least the code block. a mapping rule to transmit resources in a corresponding transmission resource region; and transmitting information bits included in at least one of the code block group and the code block according to the mapping rule.
  • the division of the transmission resource region is determined by at least one of: transmission quality, available transmission resource configuration of the ultra-high reliability low-latency channel service, first transmission or retransmission status, demodulation reference signal configuration information, Downlink control information format, data of uplink scheduling request indication information, subframe structure configuration information, channel state information feedback information, channel state information process, quasi-co-location relationship, modulation mode, and transmission beam.
  • the second determining module 66 may be further configured to determine, respectively, a configuration of at least one of a code block group and a code block to be transmitted in the N transmission resource regions.
  • the number of code blocks included in the code block group in the N transmission resource regions where there are few transmission resource regions is determined separately.
  • the number of bits included in the code block group in at least two transmission resource regions in the N transmission resource regions is determined separately.
  • the number of bits included in the code block in at least two transmission resource regions in the N transmission resource regions is determined separately.
  • the number of code block groups in at least two transmission resource regions in the N transmission resource regions is determined separately.
  • the number of source bits corresponding to the correct/error status response in at least two transmission resource regions in the N transmission resource regions is determined separately.
  • the apparatus may further include: the third determining module is configured to determine at least one of a value of N and a division of N transmission resource regions by at least one of: channel state information feedback information, High-reliability low-latency channel service configuration, modulation mode, number of transmission layers, transmission technology, positional relationship of demodulation reference signals, number of code block groups, number of uplink scheduling request indication information, first transmission or retransmission status, downlink Control information format, as well as subframe configuration information.
  • the third determining module is configured to determine at least one of a value of N and a division of N transmission resource regions by at least one of: channel state information feedback information, High-reliability low-latency channel service configuration, modulation mode, number of transmission layers, transmission technology, positional relationship of demodulation reference signals, number of code block groups, number of uplink scheduling request indication information, first transmission or retransmission status, downlink Control information format, as well as subframe configuration information.
  • N transmission resource regions are set in the downlink control information.
  • mapping rules for at least one of the code block groups and the code blocks of at least two transmission resource regions in the N transmission resource regions to the transmission resources are separately determined.
  • the transmission resources contained within the transmission resource region are continuous or discrete.
  • the foregoing apparatus may be located in the base station, or may be located in the terminal, but is not limited thereto.
  • each of the foregoing modules may be implemented by software or hardware.
  • the foregoing may be implemented by, but not limited to, the foregoing modules are all located in the same processor; or each of the above modules They are located in different processors in any combination.
  • module may implement software, hardware, and a combination of software and hardware for a predetermined function.
  • the apparatus described in the following embodiments can be implemented by software, but hardware, or a combination of software and hardware, is also possible and conceived.
  • the apparatus includes a determination module 72 and a transmission module 74.
  • the determining module 72 is configured to determine mapping configuration information between the at least one of the code block group and the code block and the transmission resource.
  • the transmission module 74 is connected to the determining module 72, and is configured to transmit information included in at least one of the code block group and the code block according to the mapping configuration information.
  • the transmission performance can be improved. Therefore, it is possible to avoid the phenomenon that the signal modulation symbol is mapped to the resource, resulting in poor transmission performance.
  • the mapping configuration information may include at least one of: interleaving parameter indication information, mapping mode indication parameter, and mapping pattern.
  • the mapping configuration information is determined by at least one of: physical resource block binding configuration information, waveform configuration information during transmission, first transmission or retransmission status, demodulation reference signal configuration information, channel status information feedback information , transmission technology, number of transmission layers, channel state information processes, quasi-common positional relationships, modulation schemes, and transmission beams.
  • the device when the device is located in the base station, the device further includes: a sending module, connected to the determining module 72, configured to send the mapping configuration information to the receiving end.
  • the determining module 72 is further configured to receive the configuration indication signaling sent by the base station, and determine the mapping configuration information according to the configuration indication information and a mapping rule pre-agreed with the base station.
  • FIG. 8 is a structural block diagram of an electronic device according to Embodiment 7 of the present invention. As shown in FIG. 8, the processor 82 and the memory 84 are included.
  • the processor 82 is configured to acquire information for determining a configuration of at least one of the code block group and the code block; determine a configuration of at least one of the code block group and the code block according to the information; and according to the code block group and the code The configuration of at least one of the blocks performs information transmission.
  • the memory 84 is coupled to the processor 82 described above.
  • the configuration of at least one of the code block group and the code block can be determined according to the configured information of at least one of the acquired code block group and the code block, information transmission, that is, information is performed according to the determined configuration.
  • the transmission is performed based on the determined configuration, thereby improving the transmission performance. Therefore, the manner in which the signal modulation symbol is mapped to the resource can be avoided, resulting in poor transmission performance.
  • the processor 82 may be configured to perform at least one of: receiving configuration indication signaling of at least one of a code block group and a code block, where the configuration indication signaling carries information of the configuration; A partitioning rule of at least one of a pre-agreed code block group and a code block is obtained locally.
  • the configuration of the code block group includes at least one of: a number of the code block groups, a number of code blocks included in each of the code block groups; and a configuration of the code blocks includes at least the following One of: the number of code blocks, the number of information bits included in each of the code blocks, the division of the code blocks; the configuration of the code block group and the code block includes at least one of the following: The number of block groups, the number of code blocks included in each of the code block groups, the number of code blocks, the number of information bits included in each of the code blocks, the division of the code blocks, the code blocks and The mapping relationship between the code block groups.
  • the candidate configuration set to which the configuration of the at least one of the code block group and the code block belongs includes a first specified configuration, where the first specified configuration includes: the number of the code block groups is M1, And the number of code blocks included in different code block groups in the M1 code block groups is not completely the same, where M1 is greater than or equal to 2.
  • the number of code blocks included in the different code block groups is configured by the base station, that is, the difference in the number of code blocks included in different code block groups is configured by the base station, and is indicated by configuration information, and
  • the difference in the number of code blocks in the related art is that the flexibility of the code block group setting is provided by the base station and the terminal.
  • the number of code blocks included in the different code block groups may be all different or partially the same, but is not limited thereto.
  • the base station can configure the number of code blocks included in the 4 code block groups, for example, 4 codes configured.
  • the number of code blocks included in the block group may be 1, 2, 3, 4 or 3, 3, 2, 2, etc., and the solution adopted in the related art is that the total number of code blocks is equally distributed among a plurality of code block groups. For example, in the case where the number of code blocks included in each code block group is three and the number of code blocks is 10, the result obtained by the scheme adopted in the related art is unique and the only result is 3, 3, 3, 1.
  • the number of code blocks included between code block groups is an integer multiple relationship.
  • the candidate configuration set to which the configuration of the at least one of the code block group and the code block belongs includes a second specified configuration, where the second specified configuration includes: the number of the code blocks is M2, and The number of information bits included in different code blocks of the M2 code blocks is not completely the same, where M2 is greater than or equal to 2.
  • the number of information bits included in the different code blocks is configured by the base station, that is, the difference in the number of information bits included in different code blocks is indicated by the configuration information after being configured by the base station, and related information in the related art.
  • the difference in the number of bits provides flexibility in code block setup compared to the agreement between the base station and the terminal.
  • the number of information bits included in the different code blocks may be all different or partially the same, but is not limited thereto.
  • the number of information bits included in the M2 code blocks except for the first code block is not completely the same, or M2 of the code blocks are The number of information bits contained in different code blocks other than the last code block is not completely the same.
  • the total number of information bits is 10 as an example. If the number of code blocks is 4, the base station in this embodiment can configure the number of information bits included in the 4 code blocks, for example, 4 code blocks configured.
  • the number of information bits included may be 1, 2, 3, 4 or 3, 3, 2, 2, etc., and the scheme adopted in the related art allocates the total number of information bits evenly into a plurality of code blocks, for example, in each When the number of information bits included in each code block is three, and the total number of information bits is 10, the result obtained by the scheme adopted in the related art is unique and the only result is 3, 3, 3, 1.
  • At least one of the mapping relationship between the code block and the code block group and the number of code block groups is related to at least one of the following: configuration information of the ultra-high reliability low-latency channel service, and modulation mode Configuration information, transmission layer number configuration information, transmission technology configuration information, demodulation reference signal configuration information, number of uplink scheduling request indication information, first transmission/retransmission status, downlink control information format, subframe structure configuration information, physical resources Block binding parameters, channel state information feedback information or channel state information feedback configuration information, and transmission waveforms.
  • the number of information bits included in different code blocks is in an integer multiple relationship.
  • At least one of the number of code block groups and the mapping relationship between the code block and the code block group is related to at least one of the following: configuration information of the ultra-high reliability low-latency channel service, and modulation mode Configuration information, transmission layer number configuration information, transmission technology configuration information, demodulation reference signal configuration information, number of uplink scheduling request indication information, first transmission/retransmission status, downlink control information format, subframe structure configuration information, physical resources Block binding parameters, channel state information feedback information or channel state information feedback configuration information, and transmission waveforms.
  • mapping relationship or partitioning of the code blocks is configured by the base station.
  • the division rule of the agreed retransmitted code block group is different from the division rule of the agreed first code block group.
  • the retransmitted code block group contains bits that are less than or equal to the bits included in the first transmitted code block group.
  • the mapping relationship may include: a discrete mapping relationship and a continuous mapping relationship.
  • the foregoing device may be a base station or a terminal, but is not limited thereto.
  • FIG. 9 is a structural block diagram of an electronic device according to Embodiment 8 of the present invention. As shown in FIG. 9, the processor 92 and the memory 94 are included.
  • the processor 92 is configured to determine an allocated transmission resource, divide the allocated transmission resource into N transmission resource regions, and determine a configuration of at least one of a code block group and a code block to be transmitted in the N transmission resource regions. And being configured to transmit according to a configuration of at least one of the code block group and the code block; wherein N is a natural number greater than or equal to 1.
  • the memory 94 is coupled to the processor 92 described above.
  • the bit information included in at least one of the code block group and the code block can be transmitted according to the mapping rule of at least one of the determined transmission resource region code block group and the code block to the transmission resource, the information can be improved. Transmission performance, therefore, can avoid the phenomenon that the signal modulation symbol is mapped to the resource, resulting in poor transmission performance.
  • the processor 92 may be further configured to determine the code block group included in the configuration of at least one of the code block group and the code block and the at least the code block. a mapping rule to a transmission resource in a corresponding transmission resource region; and transmitting information bits included in at least one of the code block group and the code block according to the mapping rule.
  • the division of the transmission resource region is determined by at least one of: transmission quality, available transmission resource configuration of the ultra-high reliability low-latency channel service, first transmission or retransmission status, demodulation reference signal configuration information, Downlink control information format, data of uplink scheduling request indication information, subframe structure configuration information, channel state information feedback information, channel state information process, quasi-co-location relationship, modulation mode, and transmission beam.
  • the processor 92 may be further configured to determine, respectively, a configuration of at least one of a code block group and a code block to be transmitted in the N pieces of the transmission resource region.
  • the number of code blocks included in the code block group in at least two transmission resource regions in the N transmission resource regions is separately determined.
  • the number of bits included in the code block group in at least two of the N transmission resource regions is determined separately.
  • the number of bits included in the code block in at least two transmission resource regions in the N transmission resource regions is determined separately.
  • the number of code block groups in at least two transmission resource regions in the N transmission resource regions is determined separately.
  • the number of source bits corresponding to the correct/error status response in at least two transmission resource regions in the N transmission resource regions is determined separately.
  • the processor 92 is configured to determine at least one of a value of N and a division of N transmission resource regions by at least one of: channel state information feedback information, and ultra-high reliability low latency channel service. Configuration, modulation mode, number of transmission layers, transmission technology, positional relationship of demodulation reference signals, number of code block groups, number of uplink scheduling request indication information, first transmission or retransmission status, downlink control information format, and subframe Configuration information.
  • N transmission resource regions are set in the downlink control information.
  • mapping rules of at least one of the code block groups and the code blocks of at least two transmission resource regions of the N transmission resource regions to the transmission resources are separately determined.
  • the transmission resources contained within the transmission resource region are continuous or discrete.
  • the foregoing device may be a base station or a terminal, but is not limited thereto.
  • FIG. 10 is a structural block diagram of an electronic device according to Embodiment 9 of the present invention. As shown in FIG. 10, the processor 1002 and the memory 1004 are included.
  • the processor 1002 is configured to determine mapping configuration information between at least one of a code block group and a code block and a transmission resource; and transmit information included in at least one of the code block group and the code block according to the mapping configuration information.
  • the memory 1004 is coupled to the processor 1002 described above.
  • the transmission performance can be improved. Therefore, it is possible to avoid the phenomenon that the signal modulation symbol is mapped to the resource, resulting in poor transmission performance.
  • the mapping configuration information may include at least one of the following: an interleaving parameter indication information, a mapping mode indication parameter, and a mapping pattern.
  • the mapping configuration information is determined by at least one of: physical resource block binding configuration information, waveform configuration information during transmission, first transmission or retransmission status, demodulation reference signal configuration information, channel status information feedback information , transmission technology, number of transmission layers, channel state information processes, quasi-common positional relationships, modulation schemes, and transmission beams.
  • the processor 1002 may be further configured to send mapping configuration information to the receiving end.
  • the processor 1002 when the device is located in the terminal, the processor 1002 is further configured to receive configuration indication signaling sent by the base station, and determine mapping configuration information according to the configuration indication information and a mapping rule pre-agreed with the base station.
  • Embodiments herein also provide a storage medium comprising a stored program, wherein the program described above executes the method of any of the above.
  • the above storage medium may be arranged to store program code set to perform the method described in any of Embodiments 1 to 3.
  • the foregoing storage medium may include, but is not limited to, a USB flash drive, a read-only memory (ROM), a random access memory (RAM), a mobile hard disk, a magnetic disk, or an optical disk.
  • ROM read-only memory
  • RAM random access memory
  • mobile hard disk a magnetic disk
  • optical disk a variety of media that can store program code.
  • Embodiments herein also provide a processor configured to execute a program, wherein the program, when executed, performs the steps of any of the above methods.
  • the above program is set to perform the method described in any of Embodiments 1 to 3.
  • This embodiment provides a method for flexibly setting a CBG size or a CB size.
  • the method includes:
  • Step 1 The first node determines a configuration of at least one of a CBG and a CB; the configuration is used for information transmission (including transmission and reception) of the second node;
  • Step 2 The first node sends configuration indication signaling of at least one of the CBG and the CB to the second node; or pre-arranges a division (or description as mapping) rule of at least one of the CBG and the CB;
  • Step 3 The second node determines, according to the configuration indication signaling or the pre-agreed partitioning rule, the configuration of at least one of the CBG and the CB.
  • Step 4 Perform information transmission according to a configuration of at least one of the CBG and the CB.
  • the configuration includes a number of CBGs, a number of CBs, a CB size, a number of CBs included in the CBG, and the like.
  • At least one configuration including the following features exists in the configured candidate configuration set of the at least one of the CBG and the CB:
  • different numbers of CBs may be configured for different CBGs respectively;
  • different sizes can be configured for different CBs respectively.
  • the number of information bits included in the CB of different sizes has a multiple relationship.
  • CBs contain different information bit numbers, which means that there is a significant difference in CB size. It is necessary to clearly specify the number of information bits included in the CB, and does not mean a small difference caused by factors such as rate matching or due to a certain symbol or The number of information bits contained in the last CB remaining in a time slot mapping is different due to the fact that it cannot be divisible.
  • the CBGs mapped on the resources with better transmission conditions can be composed of relatively large CBGs, and the CBGs mapped on the resources with poor transmission conditions are composed of relatively small CBGs.
  • the CB to CBG mapping relationship may be configured by the base station.
  • FIG. 11 is a schematic diagram of several consecutive mapping relationships between CBG and CB according to Embodiment 1 of the present disclosure.
  • the number of CBs may be configured by the base station.
  • the division of the CB may be configured by a base station.
  • the number of CBGs may be determined based on the first determination information.
  • the mapping relationship between the CB and the CBG may be determined according to the first determination information.
  • the foregoing first determining information may include one or more of the following: a configuration of a URLLC, a modulation mode configuration, a transmission layer number configuration, a transmission technology configuration, and a Demodulation Reference Signal (DMRS). Configuration; number of uplink scheduling request indications (SRI); first transmission/retransmission status; downlink control information format (DCI format); subframe structure configuration information; physical resource block (Physical) Resource Block, PRB) Binding parameters; Channel State Information (CSI) feedback information or CSI feedback configuration information; Transmission waveform.
  • SRI uplink scheduling request indications
  • DCI format downlink control information format
  • subframe structure configuration information Physical resource block (Physical) Resource Block, PRB) Binding parameters
  • CSI Channel State Information
  • the agreed retransmission information CBG division rule is different from the agreed first transmission information CBG division rule.
  • the bit information contained in the first transmitted CBG > the bit information contained in the retransmission information CBG.
  • mapping of CBG to CB may include discrete mapping and continuous mapping.
  • FIG. 12 is a schematic diagram of a non-contiguous CBG to CB mapping manner provided in accordance with Embodiment 1 herein.
  • the configuration (number, mapping) of CBG/CB is affected by the following factors: configuration of URLLC; modulation mode; number of transmission layers; transmission technology; location of DMRS; number of SRIs; first transmission/retransmission status; DCI format. Subframe structure configuration information, PRB binding configuration information, slot aggregation configuration information, and waveform during transmission.
  • Step 1 Determine N>1 transmission resource areas.
  • the resources may include one or more of spatial domain resources (layers, ports, antennas, beams), time domain resources, frequency domain resources, and code domain resources.
  • the resources contained in the region may be continuous or discrete.
  • the division of the transmission resource region is determined according to the transmission quality; wherein the channel quality (including interference) corresponding to the resources in the same region may be relatively close.
  • the division of the transmission resource region is determined according to the available transmission resource configuration of the URLLC; for example, the probability of the presence of the burst URLLC service is relatively close on the resources in the same region.
  • the division of the transmission resource region is determined according to the first transmission/retransmission state; wherein the first transmission data and the retransmission data may respectively correspond to different transmission regions.
  • the division of the transmission resource region is determined according to the DMRS configuration; the transmission region is divided according to the distance from the DMRS RE; the channel estimation of the RE closer to the DMRS is relatively accurate, the transmission performance is good, and the time domain selective fading is received or The effect of frequency domain selective fading is small.
  • the division of the transmission resource region is determined according to the DCI format; the DCI format may respectively correspond to a division rule or a division result of different transmission resource regions.
  • the division of the transmission resource region is determined according to the number of SRIs; each SRI may correspond to one transmission resource region, and the number of transmission resource regions is determined according to the number of SRIs.
  • the division of the transmission resource region is determined according to the subframe structure configuration information; the subframe structure of the UE/cell and the subframe structure of other UEs/cells are included, and the subframe structure includes an uplink and downlink transmission configuration.
  • Configuring information that can reflect uplink and downlink interference. For example, a time domain OFDM symbol used in a part of uplink transmission may be interfered by other UEs or cells, and these time domain symbols may be divided into one area without being subjected to other UEs or The time domain symbol of the downlink interference of the cell can be divided into another area.
  • the division of the transmission resource region is determined according to the CSI feedback; at least one of the carried information and the best precoding information in the CSI may further carry the transmission quality information, the interference indication information, and the like, according to the feedback of the CSI.
  • the division of the transmission resource area can be determined.
  • the division of the transmission resource region is determined according to the CSI process; for example, different CSI processes may be configured corresponding to different transmission resource regions.
  • the division of the transmission resource region is determined according to the quasi-co-location relationship; for example, the content transmitted by the same transmission region has a quasi-co-location relationship.
  • the division of the transmission resource region is determined according to a modulation scheme; for example, the same transmission region transmits information having the same modulation scheme.
  • the division of the transmission resource region is determined according to the transmission beam; for example, the same transmission region transmission information has the same transmission beam; where the transmission may refer to transmission, reception, and transmission and reception.
  • Step 2 Determine the CBG/CB configurations corresponding to the N resource regions.
  • the number of CBs included in the CBG in at least two resource regions is determined separately.
  • the number of bits included in the CBG in at least two resource regions is determined separately.
  • the number of included bits of the CB in at least two resource regions is determined separately.
  • the number of CBGs in which at least two resource regions are present may be configured to be separately determined.
  • the number of source bits corresponding to the A/N of at least two resource regions is determined separately.
  • the domain corresponding to the N resource allocation indication information is set in the DCI.
  • At least one of the value of N and the division of N domains is determined according to feedback information of the CSI.
  • At least one of the value of N and the division of N domains is determined according to the configuration of the URLLC.
  • At least one of the value of N and the division of N domains is determined according to a modulation scheme.
  • At least one of the value of N and the division of N domains is determined according to the number of transmission layers.
  • At least one of the value of N and the division of N domains is determined according to a transmission technique.
  • At least one of the value of N and the division of N domains is determined according to a positional relationship with the DMRS.
  • At least one of the value of N and the division of N domains is determined according to the number of CBGs (A/N).
  • At least one of the value of N and the division of N domains is determined according to the number of SRIs.
  • At least one of the value of N and the division of N domains is determined according to a first transmission/retransmission state.
  • At least one of the value of N and the division of N fields is determined according to the DCI format.
  • At least one of the value of N and the division of N domains is determined according to the subframe configuration information.
  • Step 3 Determine mapping rules of CBG/CB to resources corresponding to N regions.
  • mapping rules are determined separately.
  • one resource area is a continuous map and one resource area is a non-continuous map.
  • the CBG/CB of one area needs to be interleaved, and the CBG/CB of one area does not need to be interleaved.
  • Step 4 Send the bit information contained in the CB/CBG.
  • Step 1 Determine mapping configuration information between the CB/CBG and the transmission resource
  • Step 2 Send information in the CB or the CBG according to the mapping configuration.
  • the mapping configuration information includes at least one of the following: an interleaving parameter indication information (interleaving state; interleaving mode; interleaving granularity) mapping manner indication Parameters; (mapping order, mapping formula) mapping pattern.
  • mapping configuration information between the CB/CBG and the transmission resource is determined according to the PRB binding configuration information.
  • the mapping configuration information is determined based on the waveform configuration information at the time of transmission.
  • mapping configuration information is determined according to the first transmission/retransmission status
  • the mapping configuration information is determined according to the DMRS configuration.
  • the mapping configuration information is determined based on the feedback information of the CSI.
  • the mapping configuration information is determined according to a transmission technique.
  • the mapping configuration information is determined according to the number of transmission layers.
  • the mapping configuration information is determined based on the CSI feedback.
  • the CSI carries at least one of the beam information and the best precoding information, and may also carry the transmission quality information, the interference indication information, and the like, and the mapping configuration information may be determined according to the feedback of the CSI.
  • the mapping configuration information is determined according to a CSI process.
  • different CSI processes may correspond to different mapping configuration information.
  • the mapping configuration information is determined based on the quasi-co-location relationship.
  • the mapping configuration information is determined according to a modulation scheme.
  • the mapping configuration information is determined based on the transmission beam.
  • the same transmission area transmits information having the same transmission beam; where transmission can refer to transmission, reception, and transmission and reception.
  • the execution subject can be a base station or a terminal.
  • the base station may further notify the receiving end of the mapping configuration information.
  • the terminal may further determine the mapping configuration information by using signaling sent by the base station.
  • the various modules or steps herein may be implemented by a general-purpose computing device, which may be centralized on a single computing device, or distributed over a network of multiple computing devices, which may be executed by a computing device.
  • the code is implemented such that they can be stored in a storage device by a computing device, and in some cases, the steps shown or described can be performed in an order different than that herein, or separately
  • Each integrated circuit module, or a plurality of modules or steps thereof, is fabricated as a single integrated circuit module. As such, this article is not limited to any specific combination of hardware and software.

Abstract

本文提供了一种信息传输方法及装置、电子设备;其中,该信息传输方法包括:获取用于确定码块组和码块中的至少一种的配置的信息;根据信息确定码块组和码块中的至少一种的配置;根据码块组和码块中的至少一种的配置进行信息传输。

Description

信息传输方法及装置、电子设备
本申请要求在2017年05月05日提交中国专利局、申请号为201710314012.5的中国专利申请的优先权,该申请的全部内容通过引用结合在本申请中。
技术领域
本文涉及通信领域,例如涉及一种信息传输方法及装置、电子设备。
背景技术
为了更快速的进行码块(CB)的处理,信息调制符号到资源的映射被建议采用先跨层再跨子载波,再跨正交频分复用(OFDM)符号(across layer first,then across subcarriers and then across OFDM symbols)的方式。图1是相关技术中的映射示意图,如图1所示,待传输的信号优先将第一个OFDM符号第一个子载波上的层(layer)映射完成,跳到下一个子载波,直到映射完成第一个OFDM符号上分配的可用的layer和子载波,再跳到下一个符号。这种方式可以使得一个码块尽量映射到相同的OFDM符号上,接收端收到一个OFDM符号就可以开始进行解调解码处理,更加快速。
一方面,相比于长期演进(Long Term Evolution,LTE),新空口(New Radio,NR)有着更大的带宽,更高的传输效率,这种映射方式应用后可能会造成一个CB只映射到一个OFDM symbol的一段连续的频域资源上。虽然低密度奇偶校验码(Low Density Parity Check Code,LDPC)编码的每个CB可以支持最大8192bit,但在多层传输及高阶调制与编码策略(Modulation and Coding Scheme,MCS)的情况,一个OFDM符号上可能有5个以上的CB。这样会影响CB能够获得的分集增益,引起性能损失。
NR需要支持的超高可靠低时延通道(URLLC)业务,这可能会对已经在进行的增强型移动宽带(eMBB)传输使用的资源单元(RE)进行打孔,在进行eMBB数据接收的终端不知道其哪些部分被URLLC数据打掉的情况下,直接对所有接收的数据进行译码,性能会明显下降。因此应该在映射时尽可能减小受到的影响。
另一方面,URLLC业务可能会占用几个连续的时域符号内的一些频域资源,如果一个CB对应的调制符号只映射到一个symbol,这意味着如果有突发的URLLC业务传输,有可能造成的影响集中在少数的几个CB。因此如果码块组(CBG)(对应一个应答或重传指示消息)包含很多的CB的话,这种映射方式应用后会导致CBG中的所有CB都需要重传,造成非常明显的浪费。这种情况同样出现在频选特性较大或干扰比较大的情况。一个符号在某些连续的资源块(RB)上可能由于信道频域选择性衰落造成信道增益很小,或者由于邻区在这些RB上调度了用户,产生了明显的干扰。
发明内容
以下是对本文详细描述的主题的概述。本概述并非是为了限制权利要求的保护范围。
本文实施例提供了一种信息传输方法及装置、电子设备,可以避免相关技术中信号调制符号到资源的映射方式导致传输性能差的现象。
在一实施例中,提供了一种信息传输方法,包括:获取用于确定码块组和码块中的至少一种的配置的信息;根据信息确定码块组和码块中的至少一种的配置;根据码块组和码块中的至少一种的信息确定码块组和码块中的至少一种的配置。
在一实施例中,提供了一种信息传输方法,包括:确定分配的传输资源;将分配的传输资源划分为N个传输资源区域;其中,N为大于或者等于1的自然数;确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置;按照所述码块组和所述码块中的至少一种的配置进行传输。
在一实施例中,提供了一种信息传输方法,包括:确定码块组和码块中的至少一种与传输资源之间的映射配置信息;根据映射配置信息传输码块组和码块中的至少一种所包含的信息。
在一实施例中,提供了一种信息传输装置,包括:获取模块,设置为获取用于确定码块组和块中的至少一种的配置的信息;确定模块,设置为根据信息确定码块组和码块中的至少一种的配置;传输模块,设置为根据码块组和码块中的至少一种的配置进行信息传输。
在一实施例中,提供了一种信息传输装置,包括:第一确定模块,设置为确定分配的传输资源;划分模块,设置为将分配的传输资源划分为N个传输资源区域;其中,N为大于或者等于1的自然数;第二确定模块,设置为确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置;传输模块,设置为按照所述码块组和所述码块中的至少一种的配置进行传输。
在一实施例中,提供了一种信息传输装置,包括:确定模块,设置为确定码块组和码块中的至少一种与传输资源之间的映射配置信息;传输模块,设置为根据映射配置信息传输码块组和码块中的至少一种所包含的信息。
在一实施例中,提供了一种电子设备,包括:处理器,设置为获取用于确定码块组和码块中的至少一种的配置的信息;根据信息确定码块组和码块中的至少一种的配置;以及根据码块组和码块中的至少一种的配置进行信息传输;存储器,与处理器耦接。
在一实施例中,提供了一种电子设备,包括:处理器,设置为确定分配的传输资源;将分配的传输资源划分为N个传输资源区域;确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置;以及设置为按照所述码块组和码块中的至少一种的配置进行传输;其中,N为大于或者等于1的自然数;存储器,与处理器耦接。
在一实施例中,提供了一种电子设备,包括:处理器,设置为确定码块组和码块中的至少一种与传输资源之间的映射配置信息;以及根据映射配置信息传输码块组和码块中的至少一种所包含的信息;存储器,与处理器耦接。
在一实施例中,还提供了一种存储介质,所述存储介质包括存储的程序,其中,所述程序运行时执行上述任一项所述的方法。
在一实施例中,还提供了一种处理器,所述处理器设置为运行程序,其中,所述程序运行时执行上述任一项所述的方法。
通过本文实施例,由于可以根据获取的码块组和码块中的至少一种的配置的信息确定出码块组和码块中的至少一种的配置,根据确定的配置进行信息传输,即信息传输基于确定的配置进行,因而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在阅读并理解了附图和详细描述后,可以明白其他方面。
附图说明
此处所说明的附图用来提供对本文的进一步理解,构成本申请的一部分,本文的示意性实施例及其说明用于解释本文,并不构成对本文的不当限定。在附图中:
图1是相关技术中的映射示意图;
图2是根据本文实施例1的信息传输方法的流程图;
图3是根据本文实施例2的信息传输方法的流程图;
图4是根据本文实施例3提供的信息传输方法的流程图;
图5是根据本文实施例4的信息传输装置的结构框图;
图6是根据本文实施例5的信息传输装置的结构框图;
图7是根据本文实施例6的信息传输装置的结构框图;
图8是根据本文实施例7提供的电子设备的结构框图;
图9是根据本文实施例8提供的电子设备的结构框图;
图10是根据本文实施例9提供的电子设备的结构框图;
图11是根据本文实施例1提供的CBG与CB的几种连续映射关系示意图;
图12是根据本文实施例1提供的非连续的CBG到CB的映射方式的示意图。
具体实施方式
下文中将参考附图并结合实施例来详细说明本文。
需要说明的是,本文的说明书和权利要求书及上述附图中的术语“第一”、“第二”等是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。
实施例1
本实施例提供了一种信息传输方法,图2是根据本文实施例1的信息传输方法的流程图,如图2所示,该流程包括步骤S202,步骤S204和步骤S206。
在步骤S202中,获取用于确定码块组和码块中的至少一种的配置的信息。
在步骤S204中,根据信息确定码块组和码块中的至少一种的配置。
在步骤S206中,根据码块组和码块中的至少一种的配置进行信息传输。
通过上述步骤,由于可以根据获取的码块组和码块中的至少一种的配置的信息确定出码块组和码块中的至少一种的配置,根据确定的配置进行信息传输,即信息传输基于确定的配置进行,进而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在一实施例中,上述步骤S202可以表现为以下至少之一:接收码块组和码块中的至少一种的配置指示信令,其中,配置指示信令中携带配置的信息;从本地获取预先约定的码块组和码块中的至少一种的划分规则。
在一实施例中,所述码块组的配置包括以下至少之一:所述码块组的数目,每个所述码块组包含的码块的数目;所述码块的配置包括以下至少之一:所述码块的数目,每个所述码块包含的信息比特数目以及所述码块的划分;所述码块组和所述码块的配置包括以下至少之一:所述码块组的数目,每个所述码块组包含的码块的数目,所述码块的数目,每个所述码块包含的信息比特数目,所述码块的划分以及所述码块与所述码块组之间的映射关系。
通过上述方法,使得针对同一节点而言,该节点的码块组的大小(码块组包含的码块的数目)或者码块的大小(码块包含的信息比特数目)可以不同,比如可以在传输条件比较好的资源上映射的CBG比较大,而在传输条件比较差的资源上映射的CBG比较小,进而可以提高重传效率,同时能够减少对URLLC业务的影响。
在一实施例中,码块组和码块中的至少一种的配置所属的候选配置集合中包括一个第一指定配置,其中,第一指定配置包括:所述码块组的数目为M1,且M1个所述码块组中的不同码块组包含的码块数目不完全相同,其中,M1大于或者等于2。
在一实施例中,上述码块组包含的码块数目是由基站进行配置,即不同码块组包含的码块数目之间的差异是由基站配置后,通过配置信息进行指示的,与相关技术中码块数目之间的差异是由基站和终端进行约定的相比,提供了码 块组设置的灵活性。
在一实施例中,在码块组的数目大于或者等于2的情况下,上述不同码块组包含的码块数目可以全部不同,也可以部分相同,但并不限于此。
在一实施例中,在M1大于或者等于3的情况下,M1个所述码块组中除了第一个码块组之外的不同码块组包含的码块数目不完全相同,或M1个所述码块组中除了最后一个码块组之外的不同码块组包含的码块数目不完全相同。
以下总的码块数量为10为例进行说明,假设码块组的数目为4,则本实施例中基站可以为这4个码块组包含的码块数目进行配置,比如配置的4个码块组包含的码块数目可以为1,2,3,4,或者为3,3,2,2等,而相关技术中采用的方案为总的码块数量平均分配到多个码块组中,比如在每个码块组包含的码块数目为3个,且码块数量为10的情况下,相关技术中所采用的方案得到的结果唯一且唯一结果为3,3,3,1。
在一实施例中,不同的码块组包含的码块数目成整数倍关系。
在一实施例中,码块组和码块中的至少一种的配置所属的候选配置集合中包括一个第二指定配置,其中,第二指定配置包括:所述码块的数目为M2,且M2个所述码块中的不同码块包含的信息比特数目不完全相同,其中,M2大于或者等于2。
在一实施例中,上述码块包含的信息比特数目是由基站进行配置,即不同码块包含的信息比特数目的差异是由基站配置后,通过配置信息进行指示的,与相关技术中信息比特数目的差异则是由基站和终端进行约定相比,提供了码块设置的灵活性。
在一实施例中,在码块的数目大于或者等于2的情况下,上述不同码块包含的信息比特数目可以全部不同,也可以部分相同,但并不限于此。
在一实施例中,在M2大于或者等于3的情况下,M2个所述码块中除了第一个码块的不同码块包含的码块数目不完全相同,或M2个所述码块中除了最后一个码块之外的不同码块包含的码块数目不完全相同。
以下总的信息比特数目为10为例进行说明,假设码块的数目为4,则本实施例中基站可以为这4个码块包含的信息比特数目进行配置,比如配置的4个 码块包含的信息比特数目可以为1,2,3,4或者为3,3,2,2等,而相关技术中采用的方案为总的信息比特数目平均分配到多个码块中,比如在每个码块包含的信息比特数目为3个,且总的信息比特数目为10的情况下,相关技术中所采用的方案得到的结果唯一且唯一结果为3,3,3,1。
在一实施例中,不同码块包含的信息比特数目成整数倍数关系。
在一实施例中,码块与码块组之间的映射关系和码块组的数目中的至少一种,与以下至少之一相关:超高可靠低时延通道业务的配置信息,调制方式配置信息,传输层数配置信息,传输技术配置信息,解调参考信号的配置信息,上行调度请求指示信息的数目,首传/重传状态,下行控制信息格式,子帧结构配置信息,物理资源块绑定参数,信道状态信息反馈信息或信道状态信息反馈配置信息,以及传输波形。
在一实施例中,映射关系或码块的数目或码块的划分由基站配置。
在一实施例中,约定的重传的码块组的划分规则与约定的首传的码块组的划分规则不同。
在一实施例中,重传的码块组包含的比特小于或者等于首传的码块组包含的比特。
在一实施例中,上述映射关系可以包括:离散映射关系和连续映射关系。
在一实施例中,上述步骤的执行主体可以是基站,也可以是终端,但并不限于此。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到根据上述实施例的方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件实现。基于这样的理解,本文的技术方案本质上或者说对相关技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是手机,计算机,服务器,或者网络设备等)执行本文每个实施例所述的方法。
实施例2
本实施例提供了一种信息传输方法,图3是根据本文实施例2的信息传输 方法的流程图,如图3所示,该流程包括步骤S302,步骤S304,步骤S306和步骤S308。
在步骤S302中,确定分配的传输资源。
在步骤S304中,将分配的传输资源划分为N个传输资源区域;其中,N为大于或者等于1的自然数。
在步骤S306中,确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置。
在步骤S308中,按照所述码块组和所述码块中的至少一种的配置进行传输。
通过上述步骤,由于可以将分配的传输资源划分为N个传输资源区域,定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置;按照所述码块组和所述码块中的至少一种的配置进行传输,进而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在一实施例中,按照所述码块组和所述码块中的至少一种的配置进行传输包括:确定所述码块组和所述码块中的至少一种的配置中包含的所述码块组和所述码块中的所述至少一种到对应传输资源区域内传输资源的映射规则;根据所述映射规则传输所述码块组和所述码块中的所述至少一种所包含的信息比特。
在一实施例中,上述传输资源区域对应的传输资源可以包括空域资源(比如层、端口、天线、波束等),时域资源,频域资源,码域资源中的一种或者多种。
在一实施例中,上述传输资源区域的划分可以通过以下至少之一确定:传输质量,超高可靠低时延通道业务的可用传输资源配置,首传或重传状态,解调参考信号的配置信息,下行控制信息格式,上行调度请求指示信息的数据,子帧结构配置信息,信道状态信息反馈信息,信道状态信息进程,准共位置关系,调制方式,以及传输波束。
在本文的一个实施例中,上述步骤S306可以表现为:分别确定N个所述传输资源区域内待传输的码块组和码块中的至少一种的配置。
在一实施例中,分别确定N个所述传输资源区域内待传输的码块组和码块中的至少一种的配置包括以下至少之一:N个传输资源区域中至少存在2个传 输资源区域内码块组包含的码块数目是分别确定的;N个传输资源区域中至少存在2个传输资源区域内码块组包含的比特数目是分别确定的;N个传输资源区域中至少存在2个传输资源区域内码块包含的比特数目是分别确定的;N个传输资源区域中至少存在2个传输资源区域内的码块组数目是分别确定的;N个传输资源区域中至少存在2个传输资源区域内的正确/错误状态应答对应的信源比特数目是分别确定的。
在一实施例中,可以通过以下至少之一确定N的取值和N个传输资源区域的划分中的至少一种:信道状态信息反馈信息,超高可靠低时延通道业务的配置,调制方式,传输层数,传输技术,解调参考信号的位置关系,码块组的数目,上行调度请求指示信息的数目,首传或重传状态,下行控制信息格式,以及子帧配置信息。
在本文的一个实施例中,上述方法还可以包括:在下行控制信息中设置N个传输资源区域。
在一实施例中,确定所述码块组和所述码块中的至少一种的配置中包含的所述码块组和所述码块中的所述至少一种到对应传输资源区域内传输资源的映射规则可以表现为:N个传输资源区域中至少存在2个传输资源区域的码块组和所述码块中的至少一种到传输资源的映射规则是分别确定的。
在一实施例中,传输资源区域内包含的传输资源为连续的或离散的。
在一实施例中,上述步骤的执行主体可以是基站,也可以是终端,但并不限于此。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到根据上述实施例的方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件实现。基于这样的理解,本文的技术方案本质上或者说对相关技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是手机,计算机,服务器,或者网络设备等)执行本文每个实施例所述的方法。
实施例3
本文实施例,还提供了一种信息传输方法,图4是根据本文实施例3提供的信息传输方法的流程图,如图4所示,该流程包括步骤S402和步骤S404。
在步骤S402中,确定码块组和码块中的至少一种与传输资源之间的映射配置信息。
在步骤S404中,根据映射配置信息传输码块组和码块中的至少一种所包含的信息。
通过上述步骤,由于可以根据码块组和码块中的至少一种与传输资源之间的映射配置信息来传输码块组和码块中的至少一种所包含的信息,进而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在一实施例中,上述映射配置信息可以包括以下至少之一:交织参数指示信息,映射方式指示参数,以及映射图样。
在一实施例中,映射配置信息通过以下至少之一确定:物理资源块绑定配置信息,传输时波形配置信息,首传或重传状态,解调参考信号的配置信息,信道状态信息反馈信息,传输技术,传输层数,信道状态信息进程,准共位置关系,调制方式,以及传输波束。
在一实施例中,在本实施例中的方法的执行主体为基站的情况下,在确定码块组和码块中的至少一种与传输资源之间的映射配置信息之后,方法还包括:将映射配置信息发送给接收端。
在一实施例中,在本实施例的方法的执行主体为终端的情况下,确定码块组和码块中的至少一种与传输资源之间的映射配置信息包括:接收基站发送的配置指示信令;根据配置指示信息和与基站预先约定的映射规则确定映射配置信息。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到根据上述实施例的方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件实现。基于这样的理解,本文的技术方案本质上或者说对相关技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备 (可以是手机,计算机,服务器,或者网络设备等)执行本文每个实施例所述的方法。
实施例4
在本实施例中还提供了一种信息传输装置,该装置用于实现本文实施例,已经进行过说明的不再赘述。如以下所使用的,术语“模块”可以实现预定功能的软件、硬件以及软件和硬件的组合。以下实施例所描述的装置可以通过软件来实现,但是硬件,或者软件和硬件的组合的实现也是可能并被构想的。
图5是根据本文实施例4的信息传输装置的结构框图,如图5所示,该装置包括获取模块52,确定模块54和传输模块56。
获取模块52,设置为获取用于确定码块组和码块中的至少一种的配置的信息。
确定模块54,与上述获取模块52连接,设置为根据信息确定码块组和码块中的至少一种的配置。
传输模块56,与上述确定模块54连接,设置为根据码块组和码块中的至少一种的配置进行信息传输。
通过上述装置,由于可以根据获取的码块组和码块中的至少一种的配置的信息确定出码块组和码块中的至少一种的配置,根据确定的配置进行信息传输,即信息传输基于确定的配置进行,进而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在本文的一个实施例中,上述获取模块52还可以设置为执行以下至少之一的操作:接收码块组和码块中的至少一种的配置指示信令,其中,配置指示信令中携带配置的信息;从本地获取预先约定的码块组和码块中的至少一种的划分规则。
在一实施例中,所述码块组的配置包括以下至少之一:所述码块组的数目,每个所述码块组包含的码块的数目;所述码块的配置包括以下至少之一:所述码块的数目,每个所述码块包含的信息比特数目,所述码块的划分;所述码块组和所述码块的配置包括以下至少之一:所述码块组的数目,每个所述码块组包含的码块的数目,所述码块的数目,每个所述码块包含的信息比特数目,所 述码块的划分,所述码块与所述码块组之间的映射关系。
在一实施例中,码块组和码块中的至少一种的配置所属的候选配置集合中包括一个第一指定配置,其中,第一指定配置包括:所述码块组的数目为M1,且M1个所述码块组中不同码块组包含的码块数目不完全相同,其中,M1大于或者等于2。
在一实施例中,上述不同的码块组包含的码块数目是由基站进行配置,即每个码块组之间包含的码块数目的差异是由基站配置后通过配置信息进行指示的,与相关技术中码块数目的差异则是由基站和终端进行约定相比,提供了码块组设置的灵活性。
在一实施例中,在码块组的数目大于或者等于2的情况下,上述每个码块组之间包含的码块数目可以全部不同,也可以部分相同,但并不限于此。
在一实施例中,在M1大于或者等于3的情况下,M1个所述码块组中除了第一个码块组之外的不同码块组包含的码块数目不完全相同,或M1个所述码块组中除了最后一个码块组之外的不同码块组包含的码块数目不完全相同。
以下总的码块数量为10为例进行说明,假设码块组的数目为4,则本实施例中基站可以为这4个码块组包含的码块数目进行配置,比如配置的4个码块组包含的码块数目可以为1,2,3,4或者为3,3,2,2等,而相关技术中采用的方案为总的码块数量平均分配到多个码块组中,比如在每个码块组包含的码块数目为3个,且码块数量为10的情况下,相关技术中所采用的方案得到的结果唯一且唯一结果为3,3,3,1。
在一实施例中,码块组之间包含的码块数目成整数倍数关系。
在一实施例中,码块组和码块中的至少一种的配置所属的候选配置集合中包括一个第二指定配置,其中,第二指定配置包括:所述码块的数目为M2,且M2个所述码块中的不同码块包含的信息比特数目不完全相同,其中,M2大于或者等于2。
在一实施例中,码块之间包含的信息比特数目成整数倍关系。
在一实施例中,上述码块包含的信息比特数目是由基站进行配置,即每个码块之间包含的信息比特数目的差异是由基站配置后通过配置信息进行指示 的,与相关技术中信息比特数目的差异则是由基站和终端进行约定相比,提供了码块设置的灵活性。
在一实施例中,在码块的数目大于或者等于2的情况下,上述每个码块之间包含的信息比特数目可以全部不同,也可以部分相同,但并不限于此。
在一实施例中,在M2大于或者等于3的情况下,M2个所述码块中除了第一个码块的不同码块包含的码块数目不完全相同,或M2个所述码块中除了最后一个码块之外的不同码块包含的码块数目不完全相同。
以下以总的信息比特数目为10为例进行说明,假设码块的数目为4,则本实施例中基站可以为这4个码块包含的信息比特数目进行配置,比如配置的4个码块包含的信息比特数目可以为1,2,3,4或者为3,3,,2,2等,而相关技术中采用的方案为总的信息比特数目平均分配到多个码块中,比如在每个码块包含的信息比特数目为3个,且总的信息比特数目为10的情况下,相关技术中所采用的方案得到的结果唯一且唯一结果为3,3,3,1。
在一实施例中,码块与码块组之间的映射关系和码块组的数目中的至少一种,与以下至少之一相关:超高可靠低时延通道业务的配置信息,调制方式配置信息,传输层数配置信息,传输技术配置信息,解调参考信号的配置信息,上行调度请求指示信息的数目,首传/重传状态,下行控制信息格式,子帧结构配置信息,物理资源块绑定参数,信道状态信息反馈信息或信道状态信息反馈配置信息,传输波形。
在一实施例中,映射关系或码块的划分由基站配置。
在一实施例中,约定的重传的码块组的划分规则与约定的首传的码块组的划分规则不同。
在一实施例中,重传的码块组包含的比特小于或者等于首传的码块组包含的比特。
在一实施例中,上述映射关系可以包括:离散映射关系和连续映射关系。
在一实施例中,上述装置可以位于基站中,也可以位于终端中,但并不限于此。
在一实施例中,上述每个模块是可以通过软件或硬件来实现的,对于后者, 可以通过以下方式实现,但不限于此:上述模块均位于同一处理器中;或者,上述每个模块以任意组合的形式分别位于不同的处理器中。
实施例5
在本实施例中还提供了一种信息传输装置,该装置用于实现本文实施例,已经进行过说明的不再赘述。如以下所使用的,术语“模块”可以实现预定功能的软件,硬件以及软件和硬件的组合。以下实施例所描述的装置可以通过软件来实现,但是硬件,或者软件和硬件的组合的实现也是可能并被构想的。
图6是根据本文实施例5的信息传输装置的结构框图,如图6所示,该装置包括第一确定模块62,划分模块64,第二确定模块66和传输模块68。
第一确定模块62,设置为确定分配的传输资源。
划分模块64,与上述第一确定模块62连接,设置为将分配的传输资源划分为N个传输资源区域;其中,N为大于或者等于1的自然数。
第二确定模块66,与上述划分模块64连接,设置为确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置。
传输模块68,与上述第二确定模块66连接,设置为按照所述码块组和所述码块中的至少一种的配置进行传输。
通过上述装置,由于可以将分配的传输资源划分为N个传输资源区域,定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置;按照所述码块组和所述码块中的至少一种的配置进行传输,进而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在一实施例中,上述传输模块68还可以设置为确定所述码块组和所述码块中的至少一种的配置中包含的所述码块组和所述码块中的所述至少一种到对应传输资源区域内传输资源的映射规则;以及根据所述映射规则传输所述码块组和所述码块中的至少一种所包含的信息比特。
在一实施例中,传输资源区域的划分通过以下至少之一确定:传输质量,超高可靠低时延通道业务的可用传输资源配置,首传或重传状态,解调参考信号的配置信息,下行控制信息格式,上行调度请求指示信息的数据,子帧结构配置信息,信道状态信息反馈信息,信道状态信息进程,准共位置关系,调制 方式,以及传输波束。
在一实施例中,上述第二确定模块66,还可以设置为分别确定N个所述传输资源区域内待传输的码块组和码块中的至少一种的配置。
在一实施例中,N个传输资源区域少存在2个传输资源区域内码块组包含的码块数目是分别确定的。
在一实施例中,N个传输资源区域中至少存在2个传输资源区域内码块组包含的比特数目是分别确定的。
在一实施例中,N个传输资源区域中至少存在2个传输资源区域内码块包含的比特数目是分别确定的。
在一实施例中,N个传输资源区域中至少存在2个传输资源区域内的码块组数目是分别确定的。
在一实施例中,N个传输资源区域中至少存在2个传输资源区域内的正确/错误状态应答对应的信源比特数目是分别确定的。
在一实施例中,上述装置还可以包括:第三确定模块设置为通过以下至少之一确定N的取值和、N个传输资源区域的划分中的至少一种:信道状态信息反馈信息,超高可靠低时延通道业务的配置,调制方式,传输层数,传输技术,解调参考信号的位置关系,码块组的数目,上行调度请求指示信息的数目,首传或重传状态,下行控制信息格式,以及子帧配置信息。
在本文的一个实施例中,在下行控制信息中设置N个传输资源区域。
在一实施例中,N个传输资源区域中至少存在2个传输资源区域的码块组和码块中的至少一种到传输资源的映射规则是分别确定的。
在一实施例中,传输资源区域内包含的传输资源为连续的或离散的。
在一实施例中,上述装置可以位于基站中,也可以位于终端中,但并不限于此。
在一实施例中,上述每个模块是可以通过软件或硬件来实现的,对于后者,可以通过以下方式实现,但不限于此:上述模块均位于同一处理器中;或者,上述每个模块以任意组合的形式分别位于不同的处理器中。
实施例6
在本实施例中还提供了一种信息传输装置,该装置用于实现本文实施例,已经进行过说明的不再赘述。如以下所使用的,术语“模块”可以实现预定功能的软件、硬件以及软件和硬件的组合。以下实施例所描述的装置可以通过软件来实现,但是硬件,或者软件和硬件的组合的实现也是可能并被构想的。
图7是根据本文实施例6的信息传输装置的结构框图,如图7所示,该装置包括确定模块72和传输模块74。
确定模块72,设置为确定码块组和码块中的至少一种与传输资源之间的映射配置信息。
传输模块74,与上述确定模块72连接,设置为根据映射配置信息传输码块组和码块中的至少一种中包含的信息。
通过上述装置,由于可以根据码块组和码块中的至少一种与传输资源之间的映射配置信息来传输码块组和码块中的至少一种中包含的信息,进而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在一实施例中,上述映射配置信息可以包括以下至少之一:交织参数指示信息,映射方式指示参数,以及映射图样。
在一实施例中,映射配置信息通过以下至少之一确定:物理资源块绑定配置信息,传输时波形配置信息,首传或重传状态,解调参考信号的配置信息,信道状态信息反馈信息,传输技术,传输层数,信道状态信息进程,准共位置关系,调制方式,以及传输波束。
在一实施例中,在上述装置位于基站的情况下,上述装置还包括:发送模块,与上述确定模块72连接,设置为将映射配置信息发送给接收端。
在一实施例中,在上述装置位于终端的情况下,上述确定模块72还设置为接收基站发送的配置指示信令以及根据配置指示信息和与基站预先约定的映射规则确定映射配置信息。
实施例7
本文实施例提供了一种电子设备,图8是根据本文实施例7提供的电子设 备的结构框图,如图8所示,包括处理器82和存储器84。
处理器82,设置为获取用于确定码块组和码块中的至少一种的配置的信息;根据信息确定码块组和码块中的至少一种的配置;以及根据码块组和码块中的至少一种的配置进行信息传输。
存储器84,与上述处理器82耦接。
通过上述设备,由于可以根据获取的码块组和码块中的至少一种的配置的信息确定出码块组和码块中的至少一种的配置,根据确定的配置进行信息传输,即信息传输基于确定的配置进行,进而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在一实施例中,上述处理器82还可以设置为执行以下至少之一:接收码块组和码块中的至少一种的配置指示信令,其中,配置指示信令中携带配置的信息;从本地获取预先约定的码块组和码块中的至少一种的划分规则。
在一实施例中,所述码块组的配置包括以下至少之一:所述码块组的数目,每个所述码块组包含的码块的数目;所述码块的配置包括以下至少之一:所述码块的数目,每个所述码块包含的信息比特数目,所述码块的划分;所述码块组和所述码块的配置包括以下至少之一:所述码块组的数目,每个所述码块组包含的码块的数目,所述码块的数目,每个所述码块包含的信息比特数目,所述码块的划分,所述码块与所述码块组之间的映射关系。
在一实施例中,码块组和码块中的至少一种的配置所属的候选配置集合中包括一个第一指定配置,其中,第一指定配置包括:所述码块组的数目为M1,且M1个所述码块组中的不同码块组包含的码块数目不完全相同,其中,M1大于或者等于2。
在一实施例中,上述不同的码块组包含的码块数目是由基站进行配置,即不同的码块组包含的码块数目的差异是由基站配置后,通过配置信息进行指示的,与相关技术中码块数目的差异则是由基站和终端进行约定相比,提供了码块组设置的灵活性。
在一实施例中,在码块组的数目大于或者等于2的情况下,上述不同的码块组包含的码块数目可以全部不同,也可以部分相同,但并不限于此。
在一实施例中,在M1大于或者等于3的情况下,M1个所述码块组中除了第一个码块组之外的不同码块组包含的码块数目不完全相同,或M1个所述码块组中除了最后一个码块组之外的不同码块组包含的码块数目不完全相同。
以下总的码块数量为10为例进行说明,假设码块组的数目为4,则本实施例中基站可以为这4个码块组包含的码块数目进行配置,比如配置的4个码块组包含的码块数目可以为1,2,3,4或者为3,3,2,2等,而相关技术中采用的方案为总的码块数量平均分配到多个码块组中,比如在每个码块组包含的码块数目为3个,且码块数量为10的情况下,相关技术中所采用的方案得到的结果唯一且唯一结果为3,3,3,1。
在一实施例中,码块组之间包含的码块数目成整数倍数关系。
在一实施例中,码块组和码块中的至少一种的配置所属的候选配置集合中包括一个第二指定配置,其中,第二指定配置包括:所述码块的数目为M2,且M2个所述码块中的不同码块包含的信息比特数目不完全相同,其中,M2大于或者等于2。
在一实施例中,上述不同码块包含的信息比特数目是由基站进行配置,即不同码块包含的信息比特数目的差异是由基站配置后,通过配置信息进行指示的,与相关技术中信息比特数目的差异则是由基站和终端进行约定相比,提供了码块设置的灵活性。
在一实施例中,在码块的数目大于或者等于2的情况下,上述不同码块包含的信息比特数目可以全部不同,也可以部分相同,但并不限于此。
在一实施例中,在M2大于或者等于3的情况下,M2个所述码块中除了第一个码块的不同码块包含的信息比特数目不完全相同,或M2个所述码块中除了最后一个码块之外的不同码块包含的信息比特数目不完全相同。
以下以总的信息比特数目为10为例进行说明,假设码块的数目为4,则本实施例中基站可以为这4个码块包含的信息比特数目进行配置,比如配置的4个码块包含的信息比特数目可以为1,2,3,4或者为3,3,2,2等,而相关技术中采用的方案为总的信息比特数目平均分配到多个码块中,比如在每个码块包含的信息比特数目为3个,且总的信息比特数目为10的情况下,相关技术中所采用的方案得到的结果唯一且唯一结果为3,3,3,1。
在一实施例中,码块与码块组之间的映射关系和码块组的数目中的至少一种,与以下至少之一相关:超高可靠低时延通道业务的配置信息,调制方式配置信息,传输层数配置信息,传输技术配置信息,解调参考信号的配置信息,上行调度请求指示信息的数目,首传/重传状态,下行控制信息格式,子帧结构配置信息,物理资源块绑定参数,信道状态信息反馈信息或信道状态信息反馈配置信息,以及传输波形。
在一实施例中,不同码块包含的信息比特数目成整数倍数关系。
在一实施例中,码块组的数目和码块与码块组之间的映射关系中的至少一种,与以下至少之一相关:超高可靠低时延通道业务的配置信息,调制方式配置信息,传输层数配置信息,传输技术配置信息,解调参考信号的配置信息,上行调度请求指示信息的数目,首传/重传状态,下行控制信息格式,子帧结构配置信息,物理资源块绑定参数,信道状态信息反馈信息或信道状态信息反馈配置信息,以及传输波形。
在一实施例中,映射关系或码块的划分由基站配置。
在一实施例中,约定的重传的码块组的划分规则与约定的首传的码块组的划分规则不同。
在一实施例中,重传的码块组包含的比特小于或者等于首传的码块组包含的比特。
在一实施例中,上述映射关系可以包括:离散映射关系和连续映射关系。
在一实施例中,上述设备可以是基站,也可以是终端,但并不限于此。
实施例8
本文实施例提供了一种电子设备,图9是根据本文实施例8提供的电子设备的结构框图,如图9所示,包括处理器92和存储器94。
处理器92,设置为确定分配的传输资源;将分配的传输资源划分为N个传输资源区域;确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置;以及设置为按照所述码块组和所述码块中的至少一种的配置进行传输;其中,N为大于或者等于1的自然数。
存储器94,与上述处理器92耦接。
通过上述设备,由于可以根据确定的传输资源区域码块组和码块中的至少一种到传输资源的映射规则来传输码块组和码块中的至少一种包含的比特信息,进而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在一实施例中,上述处理器92还可以设置为确定所述码块组和所述码块中的至少一种的配置中包含的所述码块组和所述码块中的所述至少一种到对应传输资源区域内传输资源的映射规则;以及根据所述映射规则传输所述码块组和所述码块中的至少一种包含的信息比特。
在一实施例中,传输资源区域的划分通过以下至少之一确定:传输质量,超高可靠低时延通道业务的可用传输资源配置,首传或重传状态,解调参考信号的配置信息,下行控制信息格式,上行调度请求指示信息的数据,子帧结构配置信息,信道状态信息反馈信息,信道状态信息进程,准共位置关系,调制方式,以及传输波束。
在一实施例中,上述处理器92,还可以设置为分别确定N个所述传输资源区域内待传输的码块组和码块中的至少一种的配置。
在一实施例中,N个传输资源区域中至少存在2个传输资源区域内码块组包含的码块数目是分别确定的。
在一实施例中,N个传输资源区域中的至少存在2个传输资源区域内码块组包含的比特数目是分别确定的。
在一实施例中,N个传输资源区域中至少存在2个传输资源区域内码块包含的比特数目是分别确定的。
在一实施例中,N个传输资源区域中至少存在2个传输资源区域内的码块组数目是分别确定的。
在一实施例中,N个传输资源区域中至少存在2个传输资源区域内的正确/错误状态应答对应的信源比特数目是分别确定的。
在一实施例中,上述处理器92设置为通过以下至少之一确定N的取值和N个传输资源区域的划分中的至少一种:信道状态信息反馈信息,超高可靠低时延通道业务的配置,调制方式,传输层数,传输技术,解调参考信号的位置关 系,码块组的数目,上行调度请求指示信息的数目,首传或重传状态,下行控制信息格式,以及子帧配置信息。
在本文的一个实施例中,在下行控制信息中设置N个传输资源区域。
在一实施例中,N个传输资源区域中的至少存在2个传输资源区域的码块组和码块中的至少一种到传输资源的映射规则是分别确定的。
在一实施例中,传输资源区域内包含的传输资源为连续的或离散的。
在一实施例中,上述设备可以是基站,也可以是终端,但并不限于此。
实施例9
本文实施例提供了一种电子设备,图10是根据本文实施例9提供的电子设备的结构框图,如图10所示,包括处理器1002和存储器1004。
处理器1002,设置为确定码块组和码块中的至少一种与传输资源之间的映射配置信息;以及根据映射配置信息传输码块组和码块中的至少一种中包含的信息。
存储器1004,与上述处理器1002耦接。
通过上述设备,由于可以根据码块组和码块中的至少一种与传输资源之间的映射配置信息来传输码块组和码块中的至少一种中包含的信息,进而可以提高传输性能,因此,可以避免信号调制符号到资源的映射方式导致传输性能差的现象。
在一实施例中,上述映射配置信息可以包括以下至少之一:交织参数指示信息,映射方式指示参数,映射图样。
在一实施例中,映射配置信息通过以下至少之一确定:物理资源块绑定配置信息,传输时波形配置信息,首传或重传状态,解调参考信号的配置信息,信道状态信息反馈信息,传输技术,传输层数,信道状态信息进程,准共位置关系,调制方式,以及传输波束。
在一实施例中,在上述设备为基站的情况下,上述处理器1002还可以设置为将映射配置信息发送给接收端。
在一实施例中,在上述装置位于终端的情况下,上述处理器1002还设置为 接收基站发送的配置指示信令以及根据配置指示信息和与基站预先约定的映射规则确定映射配置信息。
实施例10
本文的实施例还提供了一种存储介质,该存储介质包括存储的程序,其中,上述程序运行时执行上述任一项所述的方法。
在本实施例中,上述存储介质可以被设置为存储设置为执行实施例1至3中任一实施例所述的方法的程序代码。
在本实施例中,上述存储介质可以包括但不限于:U盘、只读存储器(Read-Only Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、移动硬盘、磁碟或者光盘等各种可以存储程序代码的介质。
本文的实施例还提供了一种处理器,该处理器设置为运行程序,其中,该程序运行时执行上述任一项方法中的步骤。
在本实施例中,上述程序设置为执行实施例1至3中任一实施例所述的方法。
本实施例中的具体示例可以参考上述实施例中所描述的示例,本实施例在此不再赘述。
为了更好的理解本发明实施例,以下结合应用实施例对本发明做进一步解释。
应用实施例1
本实施例提供了一种灵活设置码块组大小(CBG size)或码块大小(CB size)的方法,该方法包括:
步骤1:第一节点确定CBG和CB中的至少一种的配置;所述配置用于第二节点的信息传输(包括发送和接收);
步骤2:第一节点发送所述CBG和CB中的至少一种的配置指示信令给第二节点;或者预先约定CBG和CB中的至少一种的划分(或者描述为映射)规则;
步骤3:第二节点根据配置指示信令或者预先约定的划分规则确定CBG和CB中的至少一种的配置;
步骤4:根据所述CBG和CB中的至少一种的配置进行信息传输。
在一实施例中,所述配置包括CBG数目,CB数目,CB size,CBG包含的CB数目等。
在一实施例中,所述CBG和CB中的至少一种的配置的候选配置集合中至少存在一种包含以下特征的配置:
存在>=2个CBG,其中CBG包含的CB数目不完全相同;
在一实施例中,可以是CB数目存在倍数关系;
在一实施例中,可以分别为不同的CBG配置不同数目的CB数目;
存在>=2个CB,其中CB包含的信息比特数目不完全相同;
在一实施例中,可以分别为不同的CB配置不同的size
在一实施例中,不同size的CB包含的信息比特数目存在倍数关系。
需要特别说明的是,这里不同大小的CBG是包含的CB数目有明显差异的情况,需要明确规定CBG包含的CB数目,不是速率匹配等因素造成的小的差异或者是由于某个符号或某个时隙映射时剩余的最后一个CB造成的差异。
这里不同的CB包含的信息比特数不同是指CB size的上有明显差异,需要明确规定CB包含的信息比特数目,并不是指速率匹配等因素造成的较小的差异或者是由于某个符号或某个时隙映射时剩余的最后一个CB包含的信息比特数目由于不能整除的原因造成的差异)。
通过上面的方式可以将传输条件比较好的资源上映射的CBG组成一些比较大的CBG,而将传输条件比较差的资源上映射的CBG组成一些比较小的CBG。
在一实施例中,CB到CBG的映射关系可以由基站配置。图11是根据本文实施例1提供的CBG与CB的几种连续映射关系示意图。
在一实施例中,CB的数目可以由基站配置。
在一实施例中,CB的划分可以由基站配置。
在一实施例中,CBG的数目可以根据第一判断信息确定。
在一实施例中,CB和CBG之间的映射关系可以根据第一判断信息确定。
在一实施例中,上述第一判断信息可以包括以下中的一种或多种:URLLC的配置;调制方式配置;传输层数配置;传输技术配置;解调参考信号(Demodulation Reference Signal,DMRS)的配置;上行调度请求指示信息(Schduling Request Indication,SRI)的数目;首传/重传状态;下行控制信息格式(Downlink Control Information format,DCI format);子帧结构配置信息;物理资源块(Physical Resource Block,PRB)绑定参数;信道状态信息(Channel State Information,CSI)反馈信息或CSI反馈配置信息;传输波形。
在一实施例中,约定的重传信息CBG划分规则与约定的首传信息CBG划分规则不同。
在一实施例中,首传的CBG中包含的比特信息>=重传信息CBG中包含的比特信息。
在一实施例中,CBG到CB的映射可以包括离散映射和连续映射方式。
除了支持连续的CBG到CB的映射方式,还可以支持非连续的CBG到CB的映射方式。图12是根据本文实施例1提供的非连续的CBG到CB的映射方式的示意图。
CBG/CB的配置(数目,映射)受到以下一些因素影响:URLLC的配置;调制方式;传输层数;传输技术;DMRS的位置;SRI的数目;首传/重传状态;DCI format。子帧结构配置信息,PRB绑定配置信息,时隙聚合配置信息,传输时波形(waveform)。
应用实施例2:基于多个区域的CBG配置和映射
本应用实施例包括以下几个步骤:
步骤1:确定N>1个传输资源区域。
资源可以包括空域资源(层、端口、天线、波束)、时域资源、频域资源、码域资源中的一种或多种。
在一实施例中,区域中包含的资源可以是连续的也可以是离散的。
在一实施例中,根据传输质量确定传输资源区域的划分;其中同一区域内的资源对应的信道质量(包括干扰)可以比较接近。
在一实施例中,根据URLLC的可用传输资源配置确定传输资源区域的划分;例如,同一区域内的资源上,存在突发URLLC业务的概率比较接近。
在一实施例中,根据首传/重传状态确定传输资源区域的划分;其中首传数据和重传数据可以分别对应不同的传输区域。
在一实施例中,根据DMRS配置确定传输资源区域的划分;按照与DMRS RE的距离划分传输区域;离DMRS较近的RE的信道估计比较准确,传输性能好,收到时域选择性衰落或频域选择性衰落的影响小。
在一实施例中,根据DCI format确定传输资源区域的划分;DCI format可以分别对应不同的传输资源区域的划分规则或划分结果。
在一实施例中,根据SRI的数目确定传输资源区域的划分;每个SRI可以对应一个传输资源区域,根据SRI数目确定传输资源区域的数目。
在一实施例中,根据子帧结构配置信息确定传输资源区域的划分;包括本UE/小区的子帧结构和其他UE/小区的子帧结构,子帧结构中包含上行下行传输的配置,这些配置可以体现上下行链路干扰的信息,比如有一部分上行传输时使用的时域OFDM符号会受到其他UE或小区的下行干扰,可以将这些时域符号划分为一个区域,而没有受到其他UE或小区的下行干扰的时域符号可以划分为另外一个区域。
在一实施例中,根据CSI反馈确定传输资源区域的划分;CSI中携带波束信息和最佳预编码信息中的至少一种、还可以携带传输质量信息、干扰指示信息等等,根据CSI的反馈可以确定传输资源区域的划分。
在一实施例中,根据CSI进程确定传输资源区域的划分;例如,不同的CSI进程可以对应不同的传输资源区域配置。
在一实施例中,根据准共位置关系确定传输资源区域的划分;例如,同一传输区域发送的内容具有准共位置关系。
在一实施例中,根据调制方式确定传输资源区域的划分;例如,同一传输区域发送信息具有相同的调制方式。
在一实施例中,根据传输波束确定传输资源区域的划分;例如,同一传输区域发送信息具有同一传输波束;这里传输可以指发送,接收以及发送和接收。
步骤2:确定N个资源区域分别对应的CBG/CB配置。
在一实施例中,至少存在2个资源区域内CBG的包含的CB数目是分别确定的。
在一实施例中,至少存在2个资源区域内CBG的包含的bit数目是分别确定的。
在一实施例中,至少存在2个资源区域内CB的包含的bit数目是分别确定的。
在一实施例中,至少存在2个资源区域的CBG数目可以配置是分别确定的。
在一实施例中,至少存在2个资源区域的A/N对应的信源bit数目是分别确定的。
在一实施例中,通过DCI中设置N个资源分配指示信息对应的域。
在一实施例中,根据CSI的反馈信息确定N的取值和N个域的划分中的至少一种。
根据URLLC的配置确定N的取值和N个域的划分中的至少一种。
在一实施例中,根据调制方式确定N的取值和N个域的划分中的至少一种。
在一实施例中,根据传输层数确定N的取值和N个域的划分中的至少一种。
在一实施例中,根据传输技术确定N的取值和N个域的划分中的至少一种。
在一实施例中,根据与DMRS的位置关系确定N的取值和N个域的划分中的至少一种。
在一实施例中,根据CBG(A/N)的数目确定N的取值和N个域的划分中的至少一种。
在一实施例中,根据SRI的数目确定N的取值和N个域的划分中的至少一种。
在一实施例中,根据首传/重传状态确定N的取值和N个域的划分中的至少一种。
在一实施例中,根据DCI format确定N的取值和N个域的划分中的至少一 种。
在一实施例中,根据子帧配置信息确定N的取值和N个域的划分中的至少一种。
步骤3:确定N个区域对应的CBG/CB到资源(resource)的映射规则。
至少存在2个资源区域,映射规则是分别确定的。
例如,一个资源区域是连续映射,一个资源区域是非连续映射。
例如,一个区域的CBG/CB需要交织,一个区域的CBG/CB不需要交织。
步骤4:发送所述CB/CBG中包含的比特信息。
应用实施例3:
步骤1:确定CB/CBG和传输资源之间映射配置信息;
步骤2:根据所述映射配置发送CB或CBG中包含信息;在一实施例中:所述映射配置信息包括以下至少之一:交织参数指示信息(交织状态;交织方式;交织粒度)映射方式指示参数;(映射顺序,映射公式)映射图样。
在一实施例中,根据PRB绑定配置信息确定CB/CBG和传输资源之间映射配置信息。
在一实施例中,根据传输时波形(waveform)配置信息确定映射配置信息。
在一实施例中,根据首传/重传状态确定映射配置信息;
在一实施例中,根据DMRS配置确定映射配置信息。
在一实施例中,根据CSI的反馈信息确定映射配置信息。
在一实施例中,根据传输技术确定映射配置信息。
在一实施例中,根据传输层数确定映射配置信息。
在一实施例中,根据CSI反馈确定映射配置信息。
CSI中携带波束信息和最佳预编码信息中的至少一种、还可以携带传输质量信息、干扰指示信息等等,根据CSI的反馈可以确定映射配置信息。
在一实施例中,根据CSI进程确定映射配置信息。
例如,不同的CSI进程可以对应不同的映射配置信息。
在一实施例中,根据准共位置关系确定映射配置信息。
在一实施例中,根据调制方式确定映射配置信息。
在一实施例中,根据传输波束确定映射配置信息。
例如,同一传输区域发送信息具有同一传输波束;这里传输可以指发送,接收以及发送和接收。
执行主体可以基站或者终端。
当执行主体为基站时,基站还可以通知接收端所述映射配置信息。
当执行主体为终端时,终端还可以结合基站发送的信令来确定所述映射配置信息。
上述的本文的各模块或各步骤可以用通用的计算装置来实现,它们可以集中在单个的计算装置上,或者分布在多个计算装置所组成的网络上,它们可以用计算装置可执行的程序代码来实现,从而,可以将它们存储在存储装置中由计算装置来执行,并且在某些情况下,可以以不同于此处的顺序执行所示出或描述的步骤,或者将它们分别制作成每个集成电路模块,或者将它们中的多个模块或步骤制作成单个集成电路模块来实现。这样,本文不限制于任何特定的硬件和软件结合。

Claims (42)

  1. 一种信息传输方法,包括:
    获取用于确定码块组和码块中的至少一种的配置的信息;
    根据所述信息确定所述码块组和所述码块中的至少一种的配置;
    根据所述码块组和所述码块中的至少一种的配置进行信息传输。
  2. 根据权利要求1所述的方法,其中,所述获取用于确定码块组和码块中的至少一种的配置的信息包括以下至少之一:
    接收所述码块组和所述码块中的至少一种的配置指示信令,其中,所述配置指示信令中携带所述配置的信息;
    从本地获取预先约定的所述码块组和所述码块中的至少一种的划分规则。
  3. 根据权利要求1所述的方法,其中,
    所述码块组的配置包括以下至少之一:所述码块组的数目以及所述码块组包含的码块的数目;
    所述码块的配置包括以下至少之一:所述码块的数目,所述码块包含的信息比特数目以及所述码块的划分;
    所述码块组和所述码块的配置包括以下至少之一:所述码块组的数目,每个所述码块组包含的码块的数目,所述码块的数目,每个所述码块包含的信息比特数目,所述码块的划分以及所述码块与所述码块组之间的映射关系。
  4. 根据权利要求3所述的方法,其中,所述码块组和所述码块中的至少一种的配置所属的候选配置集合中包括一个第一指定配置,其中,所述第一指定配置包括:所述码块组的数目为M1,且M1个所述码块组中的不同码块组包含的码块数目不完全相同,其中,M1大于或者等于2。
  5. 根据权利要求4所述的方法,其中,在M1大于或者等于3的情况下,M1个所述码块组中除了第一个码块组之外的不同码块组包含的码块数目不完全相同,或M1个所述码块组中除了最后一个码块组之外的不同码块组包含的码块数目不完全相同。
  6. 根据权利要求4所述的方法,其中,所述不同的码块组包含的码块数目由基站进行配置。
  7. 根据权利要求4所述的方法,其中,所述不同的码块组包含的码块数目成整数倍关系。
  8. 根据权利要求3所述的方法,其中,所述码块组和所述码块中的至少一种的配置所属的候选配置集合中包括一个第二指定配置,其中,所述第二指定配置包括:所述码块的数目为M2,且M2个所述码块中的不同码块包含的信息比特数目不完全相同,其中,M2大于或者等于2。
  9. 根据权利要求8所述的方法,其中,在M2大于或者等于3的情况下,M2个所述码块中除了第一个码块的不同码块包含的码块数目不完全相同,或M2个所述码块中除了最后一个码块之外的不同码块包含的码块数目不完全相同。
  10. 根据权利要求8所述的方法,其中,所述不同的码块包含的信息比特数目由基站进行配置。
  11. 根据权利要求8所述的方法,其中,所述不同的码块包含的信息比特数目成整数倍关系。
  12. 根据权利要求3所述的方法,其中,所述码块与所述码块组之间的映射关系和所述码块组的数目中的至少一种,与以下至少之一相关:
    超高可靠低时延通道业务的配置信息,调制方式配置信息,传输层数配置信息,传输技术配置信息,解调参考信号的配置信息,上行调度请求指示信息的数目,首传/重传状态,下行控制信息格式,子帧结构配置信息,物理资源块绑定参数,信道状态信息反馈信息或信道状态信息反馈配置信息,以及传输波形。
  13. 根据权利要求3所述的方法,其中,所述映射关系由基站配置。
  14. 根据权利要求2所述的方法,其中,约定的重传的码块组的划分规则与约定的首传的码块组的划分规则不同。
  15. 根据权利要求2所述的方法,其中,重传的码块组包含的比特小于或者等于首传的码块组包含的比特。
  16. 一种信息传输方法,包括:
    确定分配的传输资源;
    将分配的传输资源划分为N个传输资源区域;其中,N为大于或者等于1的自然数;
    确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配 置;
    按照所述码块组和所述码块中的至少一种的配置进行传输。
  17. 根据权利要求16所述的方法,其中,所述按照所述码块组和所述码块中的至少一种的配置进行传输包括:
    确定所述码块组和所述码块中的至少一种的配置中包含的所述码块组和所述码块中的所述至少一种到对应传输资源区域内传输资源的映射规则;
    根据所述映射规则传输所述码块组和所述码块中的至少一种所包含的信息比特。
  18. 根据权利要求17所述的方法,其中,所述传输资源区域的划分通过以下至少之一确定:
    传输质量,超高可靠低时延通道业务的可用传输资源配置,首传或重传状态,解调参考信号的配置信息,下行控制信息格式,上行调度请求指示信息的数据,子帧结构配置信息,信道状态信息反馈信息,信道状态信息进程,准共位置关系,调制方式,以及传输波束。
  19. 根据权利要求16所述的方法,其中,确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置包括:分别确定N个所述传输资源区域内待传输的码块组和码块中的至少一种的配置。
  20. 根据权利要求19所述的方法,其中,分别确定N个所述传输资源区域内待传输的码块组和码块中的至少一种的配置包括以下至少之一:
    所述N个传输资源区域中至少存在2个传输资源区域内码块组包含的码块数目是分别确定的;
    所述N个传输资源区域中至少存在2个传输资源区域内码块组包含的比特数目是分别确定的;
    所述N个传输资源区域中至少存在2个传输资源区域内码块包含的比特数目是分别确定的;
    所述N个传输资源区域中至少存在2个传输资源区域内的码块组数目是分别确定的;
    所述N个传输资源区域中至少存在2个传输资源区域内的正确/错误状态应答对应的信源比特数目是分别确定的。
  21. 根据权利要求19所述的方法,其中,通过以下至少之一确定N的取值和N个所述传输资源区域的划分中的至少一种:
    信道状态信息反馈信息,超高可靠低时延通道业务的配置,调制方式,传输层数,传输技术,解调参考信号的位置关系,码块组的数目,上行调度请求指示信息的数目,首传或重传状态,下行控制信息格式,以及子帧配置信息。
  22. 根据权利要求19所述的方法,所述方法还包括:在下行控制信息中设置N个传输资源区域。
  23. 根据权利要求17所述的方法,其中,确定所述码块组和所述码块中的至少一种的配置中包含的所述码块组和所述码块中的所述至少一种到对应传输资源区域内传输资源的映射规则包括:
    所述N个传输资源区域中至少存在2个传输资源区域的码块组和所述码块中的至少一种到传输资源的映射规则是分别确定的。
  24. 一种信息传输方法,包括:
    确定码块组和码块中的至少一种与传输资源之间的映射配置信息;
    根据所述映射配置信息传输所述码块组和所述码块中的至少一种所包含的信息。
  25. 根据权利要求24所述的方法,其中,所述映射配置信息通过以下至少之一确定:
    物理资源块绑定配置信息,传输时波形配置信息,首传或重传状态,解调参考信号的配置信息,信道状态信息反馈信息,传输技术,传输层数,信道状态信息进程,准共位置关系,调制方式,以及传输波束。
  26. 根据权利要求24或25所述的方法,在所述方法的执行主体为基站的情况下,在确定所述码块组和所述码块中的至少一种与传输资源之间的映射配置信息之后,所述方法还包括:将所述映射配置信息发送给接收端。
  27. 根据权利要求24或25所述的方法,其中,在所述方法的执行主体为终端的情况下,确定所述码块组和所述码块中的至少一种与传输资源之间的映射配置信息包括:
    接收基站发送的配置指示信令;
    根据所述配置指示信息和与所述基站预先约定的映射规则确定所述映射配 置信息。
  28. 一种信息传输装置,包括:
    获取模块,设置为获取用于确定码块组和码块中的至少一种的配置的信息;
    确定模块,设置为根据所述信息确定所述码块组和所述码块中的至少一种的配置;
    传输模块,设置为根据所述码块组和所述码块中的至少一种的配置进行信息传输。
  29. 根据权利要求28所述的装置,其中,所述获取模块还设置为执行以下至少之一的操作:
    接收所述码块组和所述码块中的至少一种的配置指示信令,其中,所述配置指示信令中携带所述配置的信息;
    从本地获取预先约定的所述码块组和所述码块中的至少一种的划分规则。
  30. 一种信息传输装置,包括:
    第一确定模块,设置为确定分配的传输资源;
    划分模块,设置为将分配的传输资源划分为N个传输资源区域;其中,N为大于或者等于1的自然数;
    第二确定模块,设置为确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置;
    传输模块,设置为按照所述码块组和所述码块中的至少一种的配置进行传输。
  31. 根据权利要求30所述的装置,其中,所述传输模块还设置为确定所述码块组和所述码块中的至少一种的配置中包含的所述码块组和所述码块中的所述至少一种中到对应传输资源区域内传输资源的映射规则;以及根据所述映射规则传输所述码块组和所述码块中的至少一种所包含的信息比特。
  32. 根据权利要求30所述的装置,其中,所述传输资源区域的划分通过以下至少之一确定:
    传输质量,超高可靠低时延通道业务的可用传输资源配置,首传或重传状态,解调参考信号的配置信息,下行控制信息格式,上行调度请求指示信息的数据,子帧结构配置信息,信道状态信息反馈信息,信道状态信息进程,准共 位置关系,调制方式,以及传输波束。
  33. 根据权利要求31所述的装置,其中,所述第二确定模块,还设置为在所述传输资源区域的数目为N的情况下,确定N个所述传输资源区域分别对应的码块组和所述码块中的至少一种的配置;其中,N为大于1的整数。
  34. 一种信息传输装置,包括:
    确定模块,设置为确定码块组和码块中的至少一种与传输资源之间的映射配置信息;
    传输模块,设置为根据所述映射配置信息传输所述码块组和所述码块中的至少一种所包含的信息。
  35. 根据权利要求34所述的装置,其中,所述映射配置信息包括以下至少之一:交织参数指示信息,映射方式指示参数以及映射图样。
  36. 一种电子设备,包括:
    处理器,设置为获取用于确定码块组和码块中的至少一种的配置的信息;根据所述信息确定所述码块组和所述码块中的至少一种的配置;以及根据所述码块组和所述码块中的至少一种的配置进行信息传输;
    存储器,与所述处理器耦接。
  37. 根据权利要求36所述的电子设备,其中,所述处理器还设置为以下至少之一:接收所述码块组和所述码块中的至少一种的配置指示信令,其中,所述配置指示信令中携带所述配置的信息;从本地获取预先约定的所述码块组和所述码块中的至少一种的划分规则。
  38. 一种电子设备,包括:
    处理器,设置为确定分配的传输资源;将分配的传输资源划分为N个传输资源区域;确定所述N个传输资源区域内待传输的码块组和码块中的至少一种的配置;以及设置为按照所述码块组和所述码块中的至少一种的配置进行传输;其中,N为大于或者等于1的自然数;
    存储器,与所述处理器耦接。
  39. 根据权利要求38所述的电子设备,其中,所述处理器还设置为确定所述码块组和所述码块中的至少一种的配置中包含的所述码块组和所述码块中的所述至少一种到对应传输资源区域内传输资源的映射规则;以及根据所述映射 规则传输所述码块组和所述码块中的至少一种所包含的信息比特。
  40. 一种电子设备,包括:
    处理器,设置为确定码块组和码块中的至少一种与传输资源之间的映射配置信息;以及根据所述映射配置信息传输所述码块组和所述码块中的至少一种所包含的信息;
    存储器,与所述处理器耦接。
  41. 一种存储介质,所述存储介质包括存储的程序,其中,所述程序运行时执行权利要求1至27中任一项所述的方法。
  42. 一种处理器,所述处理器设置为运行程序,其中,所述程序运行时执行权利要求1至27中任一项所述的方法。
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