WO2020143608A1 - 信息传输方法、终端及网络设备 - Google Patents

信息传输方法、终端及网络设备 Download PDF

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Publication number
WO2020143608A1
WO2020143608A1 PCT/CN2020/070647 CN2020070647W WO2020143608A1 WO 2020143608 A1 WO2020143608 A1 WO 2020143608A1 CN 2020070647 W CN2020070647 W CN 2020070647W WO 2020143608 A1 WO2020143608 A1 WO 2020143608A1
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Prior art keywords
uci
uplink channel
priority
service type
channel
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PCT/CN2020/070647
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English (en)
French (fr)
Inventor
高雪娟
艾托尼
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电信科学技术研究院有限公司
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Priority to EP20739026.1A priority Critical patent/EP3910853A4/en
Priority to KR1020217023459A priority patent/KR20210102444A/ko
Priority to US17/421,884 priority patent/US20220124773A1/en
Publication of WO2020143608A1 publication Critical patent/WO2020143608A1/zh

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    • 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
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • 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
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • H04L5/0057Physical resource allocation for CQI
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/21Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
    • 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
    • H04L5/0058Allocation criteria
    • H04L5/0064Rate requirement of the data, e.g. scalable bandwidth, data priority
    • 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
    • H04L5/0078Timing of allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signaling for the administration of the divided path
    • H04L5/0094Indication of how sub-channels of the path are allocated
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/12Wireless traffic scheduling
    • H04W72/1221Wireless traffic scheduling based on age of data to be sent
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/56Allocation or scheduling criteria for wireless resources based on priority criteria
    • H04W72/566Allocation or scheduling criteria for wireless resources based on priority criteria of the information or information source or recipient
    • H04W72/569Allocation or scheduling criteria for wireless resources based on priority criteria of the information or information source or recipient of the traffic information
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0003Two-dimensional division
    • H04L5/0005Time-frequency
    • H04L5/0007Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
    • 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
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • H04L5/0055Physical resource allocation for ACK/NACK

Definitions

  • the present disclosure relates to the technical field of communication applications, and in particular, to an information transmission method, terminal, and network equipment.
  • ultra-reliable, low-latency communication it can support more than one physical uplink control channel (Physical Uplink Control CHannel, PUCCH) carrying hybrid automatic repeat request confirmation (HARQ-ACK) in a time slot , To support lower feedback latency.
  • PUCCH Physical Uplink Control CHannel
  • HARQ-ACK hybrid automatic repeat request confirmation
  • an uplink channel carrying URLLC determined by the transmission mechanism of URLLC Uplink Control Information (UCI) and a transmission mechanism determined by eMBB UCI may appear There is overlap between the uplink channels carrying eMBB and UCI.
  • the PUCCH resources carrying HARQ-ACK determined according to the multiplexing rules in the related technology lag behind the original PUCCH resources carrying HARQ-ACK, thereby bringing URLLC HARQ-ACK With the increase of feedback delay, there is no clear way to solve this problem.
  • the purpose of the present disclosure is to provide an information transmission method, terminal and network equipment to solve the problem that when two uplink channel resources carrying UCI overlap, according to the multiplexing rules in the related art when multiplexing and transmitting UCI is transmitted, UCI will increase The problem of transmission delay.
  • the present disclosure provides an information transmission method, which is applied to a terminal and includes:
  • the second UCI is discarded, and the first UCI is transmitted on the first uplink channel.
  • determining whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel further includes:
  • the first UCI and the second UCI are transmitted on the third uplink channel, or the first UCI is transmitted on the third uplink channel.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the types of the first UCI and the second UCI are the same or different.
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of;
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the priority of the first service type and the second service type is determined by target information, or the priority of the first UCI and the second UCI is determined by target information;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the third uplink channel is at least one of a physical uplink control channel PUCCH and a physical uplink shared channel PUSCH.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • an embodiment of the present disclosure also provides an information transmission method, which is applied to a network device and includes:
  • the second UCI is not received, and the first UCI is received on the first uplink channel.
  • determining whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel further includes:
  • the first UCI and the second UCI are received on the third uplink channel, or the first UCI is received on the third uplink channel.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the types of the first UCI and the second UCI are the same or different.
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of;
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the priority of the first service type and the second service type is determined by target information, or the priority of the first UCI and the second UCI is determined by target information;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the third uplink channel is at least one of a physical uplink control channel PUCCH and a physical uplink shared channel PUSCH.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • an embodiment of the present disclosure also provides a terminal, including: a transceiver, a memory, a processor, and a program stored on the memory and executable on the processor, which is implemented when the processor executes the program.
  • the second UCI is discarded, and the first UCI is transmitted on the first uplink channel.
  • the processor also implements the following steps when executing the program:
  • the first UCI and the second UCI are transmitted on the third uplink channel, or the first UCI is transmitted on the third uplink channel.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the types of the first UCI and the second UCI are the same or different.
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of;
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the priority of the first service type and the second service type is determined by target information, or the priority of the first UCI and the second UCI is determined by target information;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the third uplink channel is at least one of a physical uplink control channel PUCCH and a physical uplink shared channel PUSCH.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • an embodiment of the present disclosure also provides a computer-readable storage medium on which a computer program is stored, which when executed by a processor implements the steps of the information transmission method applied to the terminal as described above.
  • an embodiment of the present disclosure also provides a network device, including: a transceiver, a memory, a processor, and a program stored on the memory and executable on the processor, when the processor executes the program Implement the following steps:
  • the second UCI is not received, and the first UCI is received on the first uplink channel.
  • the processor also implements the following steps when executing the program:
  • the first UCI and the second UCI are received on the third uplink channel, or the first UCI is received on the third uplink channel.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the types of the first UCI and the second UCI are the same or different.
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of;
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the priority of the first service type and the second service type is determined by target information, or the priority of the first UCI and the second UCI is determined by target information;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the third uplink channel is at least one of a physical uplink control channel PUCCH and a physical uplink shared channel PUSCH.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • an embodiment of the present disclosure also provides a computer-readable storage medium on which a computer program is stored, which when executed by a processor implements the steps of the information transmission method applied to the network device as described above.
  • an embodiment of the present disclosure also provides a terminal, including:
  • a first determining module configured to determine the first UCI and the first UCI and the second uplink channel carrying the second UCI in the time domain when the first uplink channel carrying the first uplink control information UCI overlaps in the time domain
  • the third uplink channel multiplexed and transmitted by the second UCI
  • a first judgment module configured to judge whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel
  • the first transmission module is configured to discard the second UCI and transmit the first UCI on the first uplink channel when the first judgment module judges yes.
  • the above terminal also includes:
  • a second transmission module configured to transmit the first UCI and the second UCI on the third uplink channel when the first judgment module judges NO, or to transmit the channel on the third uplink channel Describe the first UCI.
  • an embodiment of the present disclosure also provides a network device, including:
  • the second determining module is configured to determine the first UCI and the first UCI and the second uplink channel carrying the second UCI in the time domain when the first uplink channel carrying the first uplink control information UCI overlaps in the time domain
  • the third uplink channel multiplexed and transmitted by the second UCI
  • a second judgment module configured to judge whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel
  • the first receiving module is configured to not receive the second UCI and receive the first UCI on the first uplink channel when the second determining module determines yes.
  • the above network equipment also includes:
  • a second receiving module configured to receive the first UCI and the second UCI on the third uplink channel when the second judgment module judges negative, or to receive on the third uplink channel The first UCI.
  • the first UCI and the first 2 uplink channel carrying the second UCI overlap in the time domain, the first UCI and the first 2.
  • the third uplink channel multiplexed and transmitted by UCI; determining whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel; When yes, the second UCI is discarded, and the first UCI is transmitted on the first upstream channel to ensure the delay of UCI transmission of high priority or importance.
  • FIG. 1 is a schematic diagram of multiplexing transmission when PUCCHs carrying different UCIs overlap
  • 2 is a second schematic diagram of multiplexing transmission when PUCCHs carrying different UCIs overlap
  • 3 is a third schematic diagram of multiplexing transmission when PUCCHs carrying different UCIs overlap
  • FIG. 4 is a first schematic flowchart of an information transmission method according to an embodiment of the present disclosure.
  • FIG. 5 is a second schematic flowchart of an information transmission method according to an embodiment of the present disclosure.
  • FIG. 6 is a schematic diagram of a first transmission when PUCCHs carrying different UCIs overlap in an embodiment of the present disclosure
  • FIG. 7 is a second schematic diagram of transmission when PUCCHs carrying different UCIs overlap in an embodiment of the present disclosure
  • FIG. 9 is a fourth transmission schematic diagram when PUCCHs carrying different UCIs overlap in an embodiment of the present disclosure.
  • FIG. 10 is a structural block diagram of a terminal in an embodiment of the present disclosure.
  • FIG. 11 is a schematic diagram of modules of a terminal in an embodiment of the present disclosure.
  • FIG. 12 is a structural block diagram of a network device in an embodiment of the present disclosure.
  • FIG. 13 is a schematic diagram of modules of a network device in an embodiment of the present disclosure.
  • the downlink control information UCI includes at least a hybrid automatic repeat request confirmation HARQ-ACK, channel state information CSI, and a scheduling request SR.
  • the HARQ-ACK may determine the time domain position (including the time slot and the symbol position in the time slot) of the transmission according to the dynamic feedback timing or the fixed feedback timing.
  • the so-called dynamic feedback timing means that there is an indication field in the DCI that schedules the downlink transmission to indicate the interval between the time slot where the downlink transmission is located and the time slot where the HARQ-ACK feedback information is transmitted.
  • the specific symbol position in the time slot is based on the DCI
  • the indication field in determines one from multiple PUCCH resources pre-configured by higher layer signaling.
  • the so-called fixed feedback timing is the value of the interval between the time slot where a downlink transmission is located and the time slot where its HARQ-ACK feedback information is transmitted, which is directly configured by higher layer signaling.
  • the time slot where the HARQ-ACK feedback is located is determined based on the end position of the time slot where the downlink transmission is located.
  • the transmission resources of CSI and SR on PUCCH are pre-configured by high-level signaling and are periodically transmitted according to transmission opportunities determined according to the pre-configured period and offset, so the time domain position of their transmission is relatively fixed.
  • the transmission period of a CSI report is not shorter than one time slot, but there can be multiple different CSI reports in a time slot.
  • the shortest transmission period of an SR configuration can be 2 symbols. Therefore, there can be multiple SR transmission periods corresponding to the same SR configuration in a time slot.
  • multiple SR configurations can be configured.
  • the transmission period of each SR configuration and The offsets are independently configured, so there may be multiple SR-configured transmission opportunities for TDM in a time slot.
  • multiplexing transmission rules between different UCIs are defined, for example: when PUCCH carrying HARQ-ACK overlaps with PUCCH carrying SR, If both the PUCCH carrying HARQ-ACK and the PUCCH carrying SR are format 1 PUCCH, then when SR is negative, HARQ-ACK is transmitted on the PUCCH resource corresponding to HARQ-ACK to implicitly express SR as negative; when SR is When positive, as shown in Figure 1, the HARQ-ACK is transferred to the PUCCH resource corresponding to the SR and transmitted to implicitly express that the positive SR also exists.
  • the SPS HARQ-ACK when the PUCCH carrying the semi-persistent scheduling SPS HARQ-ACK (that is, the HARQ-ACK corresponding to the SPS PDSCH) overlaps with the PUCCH carrying the CSI, as shown in FIG. 2, the SPS HARQ-ACK is transferred to the PUCCH resource corresponding to the CSI Multiplex transmission with CSI.
  • the PUCCH carrying dynamic HARQ-ACK that is, the HARQ-ACK corresponding to the PDSCH with corresponding DCI scheduling
  • an embodiment of the present disclosure provides an information transmission method, which is applied to a terminal and includes:
  • Step 401 In a case where the first uplink channel carrying the first uplink control information UCI and the second uplink channel carrying the second UCI overlap in the time domain, determine to use the first UCI and the second UCI complex Use the transmitted third upstream channel.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the third uplink channel may be an uplink channel determined according to the UCI multiplexing rule in the related art.
  • the determined third uplink channel may be One of the first uplink channel or the second uplink channel may also be a new uplink channel, depending on which UCI and which PUCCH format overlap;
  • the third uplink channel may be the physical uplink control channel PUCCH At least one of the PUSCH and the physical uplink shared channel, that is, if it is overlap between PUCCH, the determined third uplink channel is still PUCCH, if it is overlap between PUCCH and PUSCH, the determined third uplink channel may be PUSCH.
  • Step 402 Determine whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • the unit of the length of time may specifically be milliseconds.
  • the calculation of the length of time may be calculated based on a reference subcarrier interval, or multiple subcarriers selected according to a predetermined rule One of the intervals is calculated, wherein the multiple subcarrier intervals are specifically at least two of the subcarrier intervals corresponding to the PDSCH, the subcarrier intervals corresponding to the PDCCH, the subcarrier intervals corresponding to the PUCCH, and the subcarrier intervals corresponding to the PUSCH.
  • the preset time may be greater than 0, or may be equal to 0.
  • the preset time may be greater than 0, or may be equal to 0.
  • the preset time may be one or more.
  • the preset time for different locations may be the same or different.
  • determining whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel includes:
  • the preset time for determining the start position and the preset time for determining the end position may be the same or different.
  • Step 403 When the judgment is yes, discard the second UCI and transmit the first UCI on the first uplink channel.
  • the preset start time and/or end position of the third uplink channel is later than the start and/or end position of the first uplink channel by a preset time means that the start and/or end position of the third uplink channel is located in the first After the start and/or end position of the uplink channel, and the time interval between the start and/or end position of the third uplink channel and the start and/or end position of the first uplink channel is greater than a preset time.
  • the types of the first UCI and the second UCI are the same or different. For example, they can all be SR, or they can all be CSI, or they can all be HARQ-ACK, one can be HARQ-ACK, the other is SR or CSI, or one is CSI, the other is SR, etc. .
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of.
  • the first UCI is UCI corresponding to URLLC
  • the second UCI is UCI corresponding to eMBB.
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the first UCI is URLLC's HARQ-ACK
  • the second UCI is URLLC's CSI and/or SR.
  • determining whether the start and/or end position of the third uplink channel is later than a preset time of the start and/or end position of the first uplink channel further includes:
  • the first UCI and the second UCI are transmitted on the third uplink channel, or the first UCI is transmitted on the third uplink channel.
  • the second UCI when the first UCI is transmitted on the third uplink channel, the second UCI is implicitly transmitted. For example, by using the third uplink channel to transmit, the second UCI may be implicitly expressed at the same time.
  • the priority of the first service type and the second service type is determined through target information, or the priority of the first UCI and the second UCI is through The target information is determined;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the first service type or the first UCI corresponds to the first DCI format
  • the second service type or the second UCI corresponds to the second DCI format
  • the priority of the service type of, or, the UCI corresponding to the first DCI format is predetermined to be higher than the UCI corresponding to the second DCI format
  • the priority of the first service type can be determined according to the corresponding DCI format It is higher than the priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the first service type or the first UCI corresponds to the first RNTI
  • the second service type or the second UCI corresponds to the second RNTI. It is predetermined that the service type corresponding to the first RNTI has a higher priority than the service type corresponding to the second RNTI Priority, or the UCI corresponding to the first RNTI (that is, its corresponding downlink transmission is scrambled using the first RNTI) is higher than the priority of the UCI corresponding to the second RNTI, then the corresponding RNTI can be determined
  • the priority of the first service type is higher than the priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the DCI corresponding to the first service type or the first UCI is transmitted in the first CORESET or the first search space
  • the DCI corresponding to the second service type or the second UCI is transmitted in the second CORESET or the second search space.
  • the priority of the service type corresponding to the first CORESET or the first search space is higher than the priority of the service type corresponding to the second CORESET or the search space
  • the UCI corresponding to the first CORESET or the first search space that is, its Scheduling information is transmitted in the CORESET or search space
  • the priority is higher than the priority of the UCI corresponding to the second CORESET or search space
  • it can be determined that the priority of the first service type is higher than the The priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the target BLER corresponding to the first service type or the first UCI is 10-5 or 10-6
  • the target BLER corresponding to the second service type or the second UCI is higher than 10-5 or 10-6 (for example, 10-2 Or 10-1)
  • the priority of the service type corresponding to the target BLER of 10-5 or 10-6 is predetermined higher than the priority of the service type corresponding to the target BLER of 10-2 or 10-1, or, the corresponding
  • the priority of UCI with a target BLER of 10-5 or 10-6 is higher than the priority of a UCI with a corresponding target BLER of 10-2 or 10-1
  • the priority of the first service type can be determined according to the corresponding target BLER It is higher than the priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the first service type or the first UCI corresponds to URLLC CQI table (corresponding to the MCS of URLLC)
  • the second service type or the second UCI corresponds to 64QAM or 256QAM CQI table (corresponding to the MCS of 64QAM/256QAM)
  • the corresponding The service type of URLLC CQI table has a higher priority than the service type corresponding to 64QAM/256QAM CQI table, or the priority of UCI corresponding to URLLC CQI table is higher than the priority of UCI corresponding to 64QAM/256QAM CQI table
  • it can be determined that the priority of the first service type is higher than the priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the first UCI and the second uplink channel carrying the second UCI overlap in the time domain, the first UCI and the second 2.
  • the third uplink channel multiplexed and transmitted by UCI; determining whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel; When yes, the second UCI is discarded, and the first UCI is transmitted on the first upstream channel to ensure the delay of UCI transmission of high priority or importance.
  • an embodiment of the present disclosure also provides an information transmission method, which is applied to a network device.
  • the method includes:
  • Step 501 When the first uplink channel carrying the first uplink control information UCI and the second uplink channel carrying the second UCI overlap in the time domain, determine to use the first UCI and the second UCI complex Use the transmitted third upstream channel.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the third uplink channel may be an uplink channel determined according to the UCI multiplexing rule in the related art.
  • the determined third uplink channel may be One of the first uplink channel or the second uplink channel may also be a new uplink channel, depending on which UCI and which PUCCH format overlap;
  • the third uplink channel may be the physical uplink control channel PUCCH At least one of the PUSCH and the physical uplink shared channel, that is, if it is overlap between PUCCH, the determined third uplink channel is still PUCCH, if it is overlap between PUCCH and PUSCH, the determined third uplink channel may be PUSCH.
  • Step 502 Determine whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • the unit of the length of time may specifically be milliseconds.
  • the calculation of the length of time may be calculated based on a reference subcarrier interval, or multiple subcarriers selected according to a predetermined rule One of the intervals is calculated, wherein the multiple subcarrier intervals are specifically at least two of the subcarrier intervals corresponding to the PDSCH, the subcarrier intervals corresponding to the PDCCH, the subcarrier intervals corresponding to the PUCCH, and the subcarrier intervals corresponding to the PUSCH.
  • the preset time may be greater than 0, or may be equal to 0.
  • the preset time may be greater than 0, or may be equal to 0.
  • the preset time may be one or more.
  • the preset time for different locations may be the same or different.
  • determining whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel includes:
  • the preset time for determining the start position and the preset time for determining the end position may be the same or different.
  • Step 503 When the judgment is yes, the second UCI is not received, and the first UCI is received on the first uplink channel.
  • the preset start time and/or end position of the third uplink channel is later than the start and/or end position of the first uplink channel by a preset time means that the start and/or end position of the third uplink channel is located in the first After the start and/or end position of the uplink channel, and the time interval between the start and/or end position of the third uplink channel and the start and/or end position of the first uplink channel is greater than a preset time.
  • the types of the first UCI and the second UCI are the same or different. For example, they can all be SR, or they can all be CSI, or they can all be HARQ-ACK, one can be HARQ-ACK, the other is SR or CSI, or one is CSI, the other is SR, etc. .
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of.
  • the first UCI is UCI corresponding to URLLC
  • the second UCI is UCI corresponding to eMBB.
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the first UCI is URLLC's HARQ-ACK
  • the second UCI is URLLC's CSI and/or SR.
  • determining whether the start and/or end position of the third uplink channel is later than a preset time of the start and/or end position of the first uplink channel further includes:
  • the first UCI and the second UCI are received on the third uplink channel, or the first UCI is received on the third uplink channel.
  • the second UCI is implicitly transmitted. For example, by receiving information on the third uplink channel, it can be implicitly judged that the second UCI also exists.
  • the priority of the first service type and the second service type is determined through target information, or the priority of the first UCI and the second UCI is through The target information is determined;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the first service type or the first UCI corresponds to the first DCI format
  • the second service type or the second UCI corresponds to the second DCI format
  • the priority of the service type of, or, the UCI corresponding to the first DCI format is predetermined to be higher than the UCI corresponding to the second DCI format
  • the priority of the first service type can be determined according to the corresponding DCI format It is higher than the priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the first service type or the first UCI corresponds to the first RNTI
  • the second service type or the second UCI corresponds to the second RNTI. It is predetermined that the service type corresponding to the first RNTI has a higher priority than the service type corresponding to the second RNTI Priority, or the UCI corresponding to the first RNTI (that is, its corresponding downlink transmission is scrambled using the first RNTI) is higher than the priority of the UCI corresponding to the second RNTI, then the corresponding RNTI can be determined
  • the priority of the first service type is higher than the priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the DCI corresponding to the first service type or the first UCI is transmitted in the first CORESET or the first search space
  • the DCI corresponding to the second service type or the second UCI is transmitted in the second CORESET or the second search space.
  • the priority of the service type corresponding to the first CORESET or the first search space is higher than the priority of the service type corresponding to the second CORESET or the search space
  • the UCI corresponding to the first CORESET or the first search space that is, its Scheduling information is transmitted in the CORESET or search space
  • the priority is higher than the priority of the UCI corresponding to the second CORESET or search space
  • it can be determined that the priority of the first service type is higher than the The priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the target BLER corresponding to the first service type or the first UCI is 10-5 or 10-6
  • the target BLER corresponding to the second service type or the second UCI is higher than 10-5 or 10-6 (for example, 10-2 Or 10-1)
  • the priority of the service type corresponding to the target BLER of 10-5 or 10-6 is predetermined higher than the priority of the service type corresponding to the target BLER of 10-2 or 10-1, or, the corresponding
  • the priority of UCI with a target BLER of 10-5 or 10-6 is higher than the priority of a UCI with a corresponding target BLER of 10-2 or 10-1
  • the priority of the first service type can be determined according to the corresponding target BLER It is higher than the priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the first service type or the first UCI corresponds to URLLC CQI table (corresponding to the MCS of URLLC)
  • the second service type or the second UCI corresponds to 64QAM or 256QAM CQI table (corresponding to the MCS of 64QAM/256QAM)
  • the corresponding The service type of URLLC CQI table has a higher priority than the service type corresponding to 64QAM/256QAM CQI table, or the priority of UCI corresponding to URLLC CQI table is higher than the priority of UCI corresponding to 64QAM/256QAM CQI table
  • it can be determined that the priority of the first service type is higher than the priority of the second service type, or the priority of the first UCI is higher than the priority of the second UCI.
  • the first UCI and the second uplink channel carrying the second UCI overlap in the time domain, the first UCI and the second 2.
  • the third uplink channel multiplexed and transmitted by UCI; determining whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel; If so, the second UCI is not received, and the first UCI is received on the first upstream channel to ensure a high priority or high importance UCI transmission delay.
  • Embodiment 1 As shown in FIG. 6 and FIG. 7, suppose that there are two PUCCHs in a time slot, and different PUCCHs carry different types of UCI. It is assumed that according to the DCI format, DCI size, search space where the transmission is scheduled, The information such as the CORESET where the transmission is located, the beam beam used for the transmission, or the RNTI used for the transmission can be determined. If the downlink transmission corresponds to the URLLC service, or if the priority of the downlink transmission is higher, the HARQ-ACK of the downlink transmission can be determined as The first UCI, that is, the UCI with higher priority, is the same.
  • the SR can be determined to be the SR corresponding to the eMBB, or if the priority of the SR is lower, the SR can be determined. It is the second UCI, that is, the UCI with lower priority.
  • the terminal needs to make the following judgment: judge whether the last symbol of the PUCCH resource corresponding to the SR is later than the last symbol of the PUCCH resource corresponding to the original HARQ-ACK by T symbols; suppose T is 2 symbols, and if so, as shown in FIG. 6 , The SR is not transmitted (ie, the SR is discarded), and the HARQ-ACK is transmitted on the PUCCH resource that originally carried the HARQ-ACK to ensure that the transmission delay of the high-priority UCI does not increase. If not, as shown in FIG. 7, The HARQ-ACK is transferred to the PUCCH resource corresponding to the SR for transmission, thereby supporting simultaneous transmission of the SR and HARQ-ACK, where the SR is implicitly expressed by using the PUCCH resource transmission corresponding to the SR.
  • the base station side judges whether the last symbol of the PUCCH resource corresponding to the SR is later than T symbols of the last symbol of the PUCCH resource corresponding to the original HARQ-ACK according to the above judgment method consistent with the terminal, and determines whether the HARQ-ACK will be based on the judgment result Transfer to SR resources for transmission.
  • the base station When it is determined that it is not, it will only receive HARQ-ACK on the PUCCH resources corresponding to HARQ-ACK; when it is determined to transfer, because the base station is not sure whether the terminal has positive SR transmission, the base station needs to The blind detection side of the PUCCH resource corresponding to the SR, when information is detected on the PUCCH resource corresponding to the SR, it is determined that there is a positive SR, so as to further receive the HARQ-ACK on the PUCCH resource corresponding to the SR; when the PUCCH corresponding to the SR If no information is detected on the resource, it is determined that there is no positive SR, thereby further receiving the HARQ-ACK on the PUCCH resource corresponding to the HARQ-ACK.
  • the PUCCH format used by HARQ-ACK may be the same as or different from the above embodiment 1, the CSI uses The PUCCH format can be PUCCH format 2/3/4, etc.
  • Other processing is the same as in Embodiment 1; in the above Embodiment 1, if the priority of SR and HARQ-ACK is exchanged and the PUCCH format is changed, the same applies. The difference is that If the judgment result is yes, HARQ-ACK is not transmitted, and only SR is transmitted.
  • Embodiment 2 As shown in FIG. 8 and FIG. 9, suppose that there are two PUCCHs in a time slot, and different PUCCHs carry different types of UCI. Suppose that according to the DCI format, DCI size, search space in which the downlink transmission is scheduled, The information such as the CORESET of the transmission, the beam beam used for the transmission, or the RNTI used for the transmission can be determined. If the downlink transmission corresponds to the URLLC service, or if the priority of the downlink transmission is higher, the HARQ-ACK of the downlink transmission can be determined as The first UCI, that is, the UCI with higher priority, is the same.
  • the CSI is the CSI corresponding to the eMBB, or if the priority of the CSI is lower, the CSI can be determined. It is the second UCI, that is, the UCI with lower priority.
  • the number of bits according to HARQ-ACK and CSI needs to be The sum selects a PUCCH resource set, and then determines a PUCCH resource in the PUCCH resource set to carry HARQ-ACK and CSI according to the PUCCH resource indicator field in the DCI corresponding to the downlink transmission scheduling HARQ-ACK, that is, the new PUCCH resources are PUCCH resources for HARQ-ACK and CSI multiplex transmission.
  • the terminal needs to make the following judgment: judge whether the last symbol of the new PUCCH resource is later than T symbols of the last symbol of the PUCCH resource corresponding to the original HARQ-ACK; suppose T is 2 symbols, and if so, as shown in FIG. 8, CSI is not transmitted (that is, CSI is discarded), and HARQ-ACK is transmitted on the PUCCH resource that originally carried HARQ-ACK to ensure that the transmission delay of high-priority UCI does not increase; if not, as shown in FIG. 9, the HARQ can be changed -ACK and CSI are transmitted simultaneously on this new PUCCH resource.
  • the base station side judges whether the last symbol of the new PUCCH resource is later than T symbols of the last symbol of the PUCCH resource corresponding to HARQ-ACK according to the above-mentioned judgment method consistent with the terminal, and determines whether the new PUCCH resource will be used for simultaneous transmission according to the judgment result HARQ-ACK and CSI, when it is determined that it will not be transmitted on the new PUCCH resource, only HARQ-ACK is received on the PUCCH resource corresponding to HARQ-ACK, it is determined that the CSI is discarded, and it is not necessary to receive CSI.
  • HARQ-ACK and CSI are simultaneously received on the new PUCCH resources.
  • only the transmission of UCI on PUCCH is taken as an example.
  • UCI is transmitted on PUSCH
  • one of UCI is transmitted on PUCCH and the other UCI is transmitted on PUSCH.
  • only the first UCI and the second UCI are different types of UCI as an example.
  • both the first UCI and the second UCI are HARQ-ACK, or both are CSI, or both are SR, the same applies.
  • an embodiment of the present disclosure also provides a terminal, including: a transceiver, a memory, a processor, and a computer program stored on the memory and executable on the processor, and the processor executes the The computer program implements the following steps:
  • the second UCI is discarded, and the first UCI is transmitted on the first uplink channel.
  • the bus architecture may include any number of interconnected buses and bridges, specifically one or more processors represented by the processor 1000 and various circuits of the memory represented by the memory 1020 are linked together.
  • the bus architecture can also link various other circuits such as peripheral devices, voltage regulators, and power management circuits, etc., which are well known in the art, and therefore, they will not be further described in this article.
  • the bus interface provides an interface.
  • the transceiver 1010 may be a plurality of elements, including a transmitter and a transceiver, and provides a unit for communicating with various other devices on a transmission medium.
  • the user interface 1030 may also be an interface that can be externally connected to a desired device.
  • the connected devices include but are not limited to a keypad, a display, a speaker, a microphone, a joystick, and the like.
  • the processor 1000 is responsible for managing the bus architecture and general processing, and the memory 1020 may store data used by the processor 1000 when performing operations.
  • the processor 1000 is also used to read the program in the memory 1020 and perform the following steps:
  • the first UCI and the second UCI are transmitted on the third uplink channel, or the first UCI is transmitted on the third uplink channel.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the types of the first UCI and the second UCI are the same or different.
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of;
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the priority of the first service type and the second service type is determined by target information, or the priority of the first UCI and the second UCI is determined by target information;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the third uplink channel is at least one of a physical uplink control channel PUCCH and a physical uplink shared channel PUSCH.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • the terminal of the embodiment of the present disclosure when the first uplink channel carrying the first UCI and the second uplink channel carrying the second UCI overlap in the time domain, it is determined to be used for the first UCI and the second UCI Multiplex the transmitted third uplink channel; determine whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel; when it is determined to be yes , The second UCI is discarded, and the first UCI is transmitted on the first uplink channel, so as to ensure the delay of UCI transmission with high priority or high importance.
  • a computer-readable storage medium on which a computer program is stored, and when the program is executed by the processor, the following steps are realized:
  • the second UCI is discarded, and the first UCI is transmitted on the first uplink channel.
  • an embodiment of the present disclosure also provides a terminal, including:
  • the first determining module 1101 is configured to determine the first UCI and the first uplink channel carrying the first uplink control information UCI and the second uplink channel carrying the second UCI when the time domain overlaps in the time domain Describe the third uplink channel of the second UCI multiplex transmission;
  • the first determining module 1102 is configured to determine whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel;
  • the first transmission module 1103 is configured to discard the second UCI and transmit the first UCI on the first uplink channel when the first judgment module judges yes.
  • a second transmission module configured to transmit the first UCI and the second UCI on the third uplink channel when the first judgment module judges NO, or to transmit the channel on the third uplink channel Describe the first UCI.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the types of the first UCI and the second UCI are the same or different.
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of;
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the priority of the first service type and the second service type is determined by target information, or the priority of the first UCI and the second UCI is determined by target information definite;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the third uplink channel is at least one of a physical uplink control channel PUCCH and a physical uplink shared channel PUSCH.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • the terminal of the embodiment of the present disclosure when the first uplink channel carrying the first UCI and the second uplink channel carrying the second UCI overlap in the time domain, it is determined to be used for the first UCI and the second UCI Multiplex the transmitted third uplink channel; determine whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel; when it is determined to be yes , The second UCI is discarded, and the first UCI is transmitted on the first upstream channel, so as to ensure the delay of UCI transmission with high priority or high importance.
  • an embodiment of the present disclosure also provides a network device, which may be specifically a base station, including a memory 1220, a processor 1200, a transceiver 1210, a bus interface, and stored on the memory 1220 and may be A computer program running on the processor 1200.
  • the processor 1200 is used to read the program in the memory 1220 and perform the following processes:
  • the second UCI is not received, and the first UCI is received on the first uplink channel.
  • the bus architecture may include any number of interconnected buses and bridges, specifically one or more processors represented by the processor 1200 and various circuits of the memory represented by the memory 1220 are linked together.
  • the bus architecture can also link various other circuits such as peripheral devices, voltage regulators, and power management circuits, etc., which are well known in the art, and therefore, they will not be further described in this article.
  • the bus interface provides an interface.
  • the transceiver 1210 may be a plurality of elements, including a transmitter and a transceiver, providing a unit for communicating with various other devices on a transmission medium.
  • the processor 1200 is responsible for managing the bus architecture and general processing, and the memory 1220 may store data used by the processor 1200 in performing operations.
  • the first UCI and the second UCI are received on the third uplink channel, or the first UCI is received on the third uplink channel.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the types of the first UCI and the second UCI are the same or different.
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of;
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the priority of the first service type and the second service type is determined by target information, or the priority of the first UCI and the second UCI is determined by target information;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the third uplink channel is at least one of a physical uplink control channel PUCCH and a physical uplink shared channel PUSCH.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • the network device of the embodiment of the present disclosure when the first uplink channel carrying the first UCI and the second uplink channel carrying the second UCI overlap in the time domain, it is determined to be used for the first UCI and the second UCI multiplexed third uplink channel; determine whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel; when the determination is yes At this time, the second UCI is not received, and the first UCI is received on the first uplink channel to ensure the delay of UCI transmission with high priority or high importance.
  • a computer-readable storage medium on which a computer program is stored, and when the program is executed by the processor, the following steps are realized:
  • the second UCI is not received, and the first UCI is received on the first uplink channel.
  • an embodiment of the present disclosure also provides a network device, including:
  • the second determining module 1301 is configured to determine the first UCI and the first uplink channel carrying the first uplink control information UCI and the second uplink channel carrying the second UCI in the time domain overlapping in the time domain Describe the third uplink channel of the second UCI multiplex transmission;
  • the second determination module 1302 is configured to determine whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel;
  • the first receiving module 1303 is configured to not receive the second UCI and receive the first UCI on the first uplink channel when the second determining module determines yes.
  • a second receiving module configured to receive the first UCI and the second UCI on the third uplink channel when the second judgment module judges negative, or to receive on the third uplink channel The first UCI.
  • the third uplink channel is the first uplink channel or the second uplink channel
  • the third uplink channel is an uplink channel other than the first uplink channel and the second uplink channel.
  • the types of the first UCI and the second UCI are the same or different.
  • the priority or importance of the first UCI is higher than that of the second UCI
  • the first UCI is the UCI corresponding to the first service type
  • the second UCI is the UCI corresponding to the second service type
  • the priority or importance of the first service type is higher than that of the second service Types of;
  • the first UCI and the second UCI are UCIs with different priorities or importance in the same service type.
  • the priority of the first service type and the second service type is determined by target information, or the priority of the first UCI and the second UCI is determined by a target Information determined;
  • the target information includes at least one of the following:
  • Downlink control information DCI format, DCI size, search space, control resource set CORESET, beam, wireless network temporary identification RNTI, modulation and coding strategy MCS or channel quality indication CQI table, target block error rate BLER and priority flag.
  • the third uplink channel is at least one of a physical uplink control channel PUCCH and a physical uplink shared channel PUSCH.
  • the preset time is a first preset number of orthogonal frequency division multiplexing OFDM symbols
  • the preset time is a time length corresponding to the first preset number of OFDM symbols
  • the preset time is a duration corresponding to a second preset number of time units.
  • the network device of the embodiment of the present disclosure when the first uplink channel carrying the first UCI and the second uplink channel carrying the second UCI overlap in the time domain, it is determined to be used for the first UCI and the second UCI multiplexed third uplink channel; determine whether the start and/or end position of the third uplink channel is later than the preset time of the start and/or end position of the first uplink channel; when the determination is yes At this time, the second UCI is not received, and the first UCI is received on the first uplink channel to ensure the delay of UCI transmission with high priority or high importance.
  • the embodiments described in the embodiments of the present disclosure may be implemented by hardware, software, firmware, middleware, microcode, or a combination thereof.
  • the processing unit can be implemented in one or more application specific integrated circuits (Application Specific Integrated Circuits, ASIC), digital signal processor (Digital Signal Processing, DSP), digital signal processing device (DSP Device, DSPD), programmable Logic Device (Programmable Logic Device, PLD), Field Programmable Gate Array (Field-Programmable Gate Array, FPGA), general-purpose processor, controller, microcontroller, microprocessor, others for performing the functions described in this disclosure Electronic unit or its combination.
  • ASIC Application Specific Integrated Circuits
  • DSP Digital Signal Processing
  • DSP Device digital signal processing device
  • DPD digital signal processing device
  • PLD programmable Logic Device
  • Field Programmable Gate Array Field-Programmable Gate Array
  • FPGA Field-Programmable Gate Array
  • the technology described in the embodiments of the present disclosure may be implemented through modules (eg, procedures, functions, etc.) that perform the functions described in the embodiments of the present disclosure.
  • the software codes can be stored in the memory and executed by the processor.
  • the memory may be implemented in the processor or external to the processor.

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Abstract

本公开提供了一种信息传输方法、终端及网络设备。本公开的方法包括:在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。

Description

信息传输方法、终端及网络设备
相关申请的交叉引用
本申请主张在2019年1月11日在中国提交的中国专利申请No.201910028264.0的优先权,其全部内容通过引用包含于此。
技术领域
本公开涉及通信应用的技术领域,尤其涉及一种信息传输方法、终端及网络设备。
背景技术
在R16超可靠、低时延通信(URLLC)中,可以支持在一个时隙中传输多于一个承载混合自动重传请求确认(HARQ-ACK)的物理上行控制信道(Physical Uplink Control CHannel,PUCCH),用以支持更低的反馈时延。当终端同时支持增强型移动宽带(eMBB)和URLLC业务时,可能会出现按照URLLC上行控制信息(Uplink Control Information,UCI)的传输机制确定的承载URLLC UCI的上行信道与按照eMBB UCI的传输机制确定的承载eMBB UCI的上行信道之间存在重叠,此时,按照相关技术中的复用规则确定的承载HARQ-ACK的PUCCH资源滞后于原承载HARQ-ACK的PUCCH资源,从而带来URLLC HARQ-ACK反馈的时延的增加,如何解决该问题还没有明确的方法。
发明内容
本公开的目的在于提供一种信息传输方法、终端及网络设备,用以解决在承载UCI的两个上行信道资源重叠时,按照相关技术中的复用规则传输复用传输UCI时,会增加UCI传输时延的问题。
为了实现上述目的,本公开提供了一种信息传输方法,应用于终端,包括:
在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上 行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
其中,判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间之后,还包括:
当判断为否时,在所述第三上行信道上传输所述第一UCI和所述第二UCI,或者,在所述第三上行信道上传输所述第一UCI。
其中,所述第三上行信道为所述第一上行信道或所述第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
其中,所述第一UCI和所述第二UCI的类型相同或者不同。
其中,所述第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
其中,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
其中,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
其中,所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
为了实现上述目的,本公开实施例还提供了一种信息传输方法,应用于网络设备,包括:
在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
其中,判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间之后,还包括:
当判断为否时,在所述第三上行信道上接收所述第一UCI和所述第二UCI,或者,在所述第三上行信道上接收所述第一UCI。
其中,所述第三上行信道为所述第一上行信道或第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
其中,所述第一UCI和所述第二UCI的类型相同或者不同。
其中,所述第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
其中,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
其中,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
其中,所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
为了实现上述目的,本公开实施例还提供了一种终端,包括:收发机、存储器、处理器及存储在存储器上并可在处理器上运行的程序,所述处理器执行所述程序时实现以下步骤:
在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
其中,所述处理器执行所述程序时还实现以下步骤:
当判断为否时,在所述第三上行信道上传输所述第一UCI和所述第二UCI,或者,在所述第三上行信道上传输所述第一UCI。
其中,所述第三上行信道为所述第一上行信道或所述第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
其中,所述第一UCI和所述第二UCI的类型相同或者不同。
其中,所述第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二 业务类型;
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
其中,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
其中,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
其中,所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
为了实现上述目的,本公开实施例还提供了一种计算机可读存储介质,其上存储有计算机程序,该计算机程序被处理器执行时实现如上所述应用于终端的信息传输方法的步骤。
为了实现上述目的,本公开实施例还提供了一种网络设备,包括:收发机、存储器、处理器及存储在存储器上并可在处理器上运行的程序,所述处理器执行所述程序时实现以下步骤:
在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
其中,所述处理器执行所述程序时还实现以下步骤:
当判断为否时,在所述第三上行信道上接收所述第一UCI和所述第二UCI,或者,在所述第三上行信道上接收所述第一UCI。
其中,所述第三上行信道为所述第一上行信道或第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
其中,所述第一UCI和所述第二UCI的类型相同或者不同。
其中,所述第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
其中,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
其中,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
其中,所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
为了实现上述目的,本公开实施例还提供了一种计算机可读存储介质,其上存储有计算机程序,该计算机程序被处理器执行时实现如上所述应用于网络设备的信息传输方法的步骤。
为了实现上述目的,本公开实施例还提供了一种终端,包括:
第一确定模块,用于在承载第一上行控制信息UCI的第一上行信道与承 载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
第一判断模块,用于判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
第一传输模块,用于当第一判断模块判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
其中,上述终端还包括:
第二传输模块,用于当第一判断模块判断为否时,在所述第三上行信道上传输所述第一UCI和所述第二UCI,或者,在所述第三上行信道上传输所述第一UCI。
为了实现上述目的,本公开实施例还提供了一种网络设备,包括:
第二确定模块,用于在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
第二判断模块,用于判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
第一接收模块,用于当第二判断模块判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
其中,上述网络设备,还包括:
第二接收模块,用于当第二判断模块当判断为否时,在所述第三上行信道上接收所述第一UCI和所述第二UCI,或者,在所述第三上行信道上接收所述第一UCI。
本公开实施例具有以下有益效果:
本公开实施例的上述技术方案,在承载第一UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI,以保证高优先级或高重要性的UCI传输的时延。
附图说明
为了更清楚地说明本公开实施例的技术方案,下面将对本公开实施例描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本公开的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1为承载不同UCI的PUCCH重叠时的复用传输示意图之一;
图2为承载不同UCI的PUCCH重叠时的复用传输示意图之二;
图3为承载不同UCI的PUCCH重叠时的复用传输示意图之三;
图4为本公开实施例的信息传输方法的流程示意图之一;
图5为本公开实施例的信息传输方法的流程示意图之二;
图6为本公开实施例中承载不同UCI的PUCCH重叠时的第一传输示意图;
图7为本公开实施例中承载不同UCI的PUCCH重叠时的第二传输示意图;
图8为本公开实施例中承载不同UCI的PUCCH重叠时的第三传输示意图;
图9为本公开实施例中承载不同UCI的PUCCH重叠时的第四传输示意图;
图10为本公开实施例中终端的结构框图;
图11为本公开实施例中终端的模块示意图;
图12为本公开实施例中网络设备的结构框图;
图13为本公开实施例中网络设备的模块示意图。
具体实施方式
为使本公开要解决的技术问题、技术方案和优点更加清楚,下面将结合具体实施例及附图进行详细描述。
为使本领域技术人员能够更好地理解本公开实施例的技术方案,先进行如下说明。
下行控制信息UCI至少包括混合自动重传请求确认HARQ-ACK、信道状态信息CSI以及调度请求SR。其中HARQ-ACK可以是按照动态的反馈时序或固定的反馈时序确定传输的时域位置(包括时隙以及时隙内的符号位置)。所谓动态的反馈时序即调度下行传输的DCI中存在指示域指示下行传输所在的时隙到传输其HARQ-ACK反馈信息的时隙之间的间隔,在该时隙中的具体符号位置则根据DCI中的指示域从高层信令预先配置的多个PUCCH资源中确定一个。所谓固定的反馈时序则是由高层信令直接配置一个下行传输所在的时隙到传输其HARQ-ACK反馈信息的时隙之间的间隔的值。不论动态的反馈时序还是固定的反馈时序,都是基于下行传输所在的时隙的结束位置来确定HARQ-ACK反馈所在的时隙,当下行传输是动态调度的时候,HARQ-ACK反馈所在的时隙也是随之动态改变的。
CSI和SR在PUCCH上的传输资源则是由高层信令预先配置的,并且按照根据预先配置的周期和偏移确定的传输机会进行周期传输,因此其传输的时域位置相对固定。一个CSI report的传输周期不短于1个时隙,但一个时隙中可以存在多个不同的CSI report。一个SR配置的传输周期最短可以为2个符号,因此,一个时隙中可以存在对应同一个SR配置的多个SR传输周期,此外还可以配置多个SR配置,每个SR配置的传输周期和偏移都是独立配置的,因此,可能在一个时隙中时分复用TDM存在多个SR配置的传输机会。
在NR R15系统中,当承载不同UCI的PUCCH之间存在时域资源重叠时,定义了不同UCI之间的复用传输规则,例如:当承载HARQ-ACK的PUCCH与承载SR的PUCCH重叠时,如果承载HARQ-ACK的PUCCH与承载SR的PUCCH都为格式1PUCCH,则当SR为否定negative时,HARQ-ACK在HARQ-ACK对应的PUCCH资源上传输,来隐式表达SR为negative;当SR为肯定positive时,如图1所示,将HARQ-ACK转移到SR对应的PUCCH资源上传输,来隐式表达同时存在positive SR。又例如:当承载半持续调度SPS HARQ-ACK(即对应SPS PDSCH的HARQ-ACK)的PUCCH与承载CSI的PUCCH重叠时,如图2所示,将SPS HARQ-ACK转移到CSI对应的PUCCH资源上与CSI复用传输。又例如:当承载dynamic HARQ-ACK(即对应具有对应的DCI调度的PDSCH的HARQ-ACK)的 PUCCH与承载CSI的PUCCH重叠且PUCCH资源集合配置了超过1个时,如图3所示,根据HARQ-ACK和CSI的比特数,在配置的PUCCH资源集合中选择一个集合,再根据调度PDSCH的DCI中的PUCCH资源指示域从选择的一个集合中确定出一个PUCCH资源,用于同时承载HARQ-ACK和CSI。
然而,在R16URLLC中,当按照URLLC UCI的传输机制确定的承载URLLC UCI的上行信道与按照eMBB UCI的传输机制确定的承载eMBB UCI的上行信道之间存在重叠时,按照相关技术中的复用规则传输复用传输UCI时,会增加UCI传输时延。
基于此,如图4所示,本公开实施例提供了一种信息传输方法,应用于终端,包括:
步骤401:在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道。
其中,所述第三上行信道为所述第一上行信道或所述第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
本公开实施例中,上述第三上行信道可以是根据相关技术中的UCI复用规则确定的上行信道,对于UCI在不同PUCCH上的重叠,根据UCI复用规则,确定的第三上行信道可能是第一上行信道或者第二上行信道中的一个,也可能是一个新的上行信道,具体取决于是何种UCI以及何种PUCCH格式之间的重叠;该第三上行信道可为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种,即如果是PUCCH之间的重叠,确定的第三上行信道还是PUCCH,如果是PUCCH和PUSCH之间的重叠,确定的第三上行信道可以是PUSCH。
步骤402:判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间。
所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
例如,所述预设时间在表现为时间长度时,时间长度的单位可具体为毫秒,此时时间长度的计算可以是依据一个参考的子载波间隔计算的,或者根据预定规则选择的多个子载波间隔中的一个计算的,其中多个子载波间隔具体为PDSCH对应的子载波间隔、PDCCH对应的子载波间隔、PUCCH对应的子载波间隔、PUSCH对应的子载波间隔中的至少两个。
例如,所述预设时间可以是大于0的,也可以是等于0的,当等于0时,意味着起始和/或结束位置对齐(即相同)。
例如,所述预设时间可以是一个,也可以是多个,例如当需要同时判断两处位置是否满足预设时间是,对不同位置进行判断的预设时间可以相同,也可以不同。
在本公开的具体实施例中,判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间,包括:
判断所述第三上行信道的起始位置是否晚于所述第一上行信道的起始位置预设时间;
或者,判断所述第三上行信道的结束位置是否晚于所述第一上行信道的结束位置预设时间;
或者,判断所述第三上行信道的结束位置是否晚于所述第一上行信道的起始位置预设时间;
或者,判断所述第三上行信道的起始位置是否晚于所述第一上行信道的结束位置预设时间;
或者,判断所述第三上行信道的起始位置是否晚于所述第一上行信道的起始位置预设时间,以及判断所述第三上行信道的结束位置是否晚于所述第一上行信道的结束位置预设时间。此处,对起始位置进行判断的预设时间与对结束位置进行判断的预设时间可以相同,或者不同。
步骤403:当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
这里,第三上行信道的起始和/或结束位置晚于第一上行信道的起始和/或结束位置预设时间是指第三上行信道的起始和/或结束位置位于所述第一上行信道的起始和/或结束位置之后,且第三上行信道的起始和/或结束位置与 所述第一上行信道的起始和/或结束位置的时间间隔大于预设时间。
其中,所述第一UCI和所述第二UCI的类型相同或者不同。例如可以都是SR,或者可以都是CSI,或者可以都是HARQ-ACK,也可以是一种为HARQ-ACK,另一种为SR或CSI;或一种为CSI,另一种为SR等。
这里,第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型。例如,第一UCI为URLLC对应的UCI,所述第二UCI为eMBB对应的UCI。
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。例如,第一UCI为URLLC的HARQ-ACK,第二UCI为URLLC的CSI和/或SR。
进一步地,判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间之后,还包括:
当判断为否时,在所述第三上行信道上传输所述第一UCI和所述第二UCI,或者,在所述第三上行信道上传输所述第一UCI。
这里,当在所述第三上行信道上传输所述第一UCI时,第二UCI是隐式传输的,例如通过使用第三上行信道传输,可以隐式表达同时存在第二UCI。
在本公开的具体实施例中,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
例如,第一业务类型或第一UCI对应第一DCI格式,第二业务类型或第二UCI对应第二DCI格式,预先规定对应第一DCI格式的业务类型的优先级高于对应第二DCI格式的业务类型的优先级,或者,预先规定对应第一DCI格式的UCI的优先级高于对应第二DCI格式的UCI的优先级,则根据对应的 DCI格式,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
又例如,第一业务类型或第一UCI对应第一RNTI,第二业务类型或第二UCI对应第二RNTI,预先规定对应第一RNTI的业务类型的优先级高于对应第二RNTI的业务类型的优先级,或者预先约定对应第一RNTI的UCI(即其对应的下行传输使用第一RNTI加扰)的优先级高于对应第二RNTI的UCI的优先级,则根据对应的RNTI,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
又例如,第一业务类型或第一UCI对应的DCI在第一CORESET或第一搜索空间中传输,第二业务类型或第二UCI对应的DCI在第二CORESET或第二搜索空间中传输,预先规定对应第一CORESET或第一搜索空间的业务类型的优先级高于对应第二CORESET或搜索空间的业务类型的优先级,或者,预先规定对应第一CORESET或第一搜索空间的UCI(即其调度信息在该CORESET或搜索空间中传输)的优先级高于对应第二CORESET或搜索空间的UCI的优先级,则根据对应的CORESET或搜索空间,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
又例如,第一业务类型或第一UCI对应的目标BLER为10-5或10-6,第二业务类型或第二UCI对应的目标BLER高于10-5或10-6(例如10-2或10-1),预先规定对应目标BLER为10-5或10-6的业务类型的优先级高于对应目标BLER为10-2或10-1的业务类型的优先级,或者,预先规定对应目标BLER为10-5或10-6的UCI的优先级高于对应目标BLER为10-2或10-1的UCI的优先级,则根据对应的目标BLER,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
又例如,第一业务类型或第一UCI对应URLLC CQI table(对应URLLC的MCS table),第二业务类型或第二UCI对应64QAM或256QAM CQI table(对应64QAM/256QAM的MCS table),预先规定对应URLLC CQI table的业务类型的优先级高于对应64QAM/256QAM CQI table的业务类型的优先级,或者,预先规定对应URLLC CQI table的UCI的优先级高于对应 64QAM/256QAM CQI table的UCI的优先级,则根据对应的CQI table,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
本公开实施例的信息传输方法,在承载第一UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI,以保证高优先级或高重要性的UCI传输的时延。
如图5所示,本公开实施例还提供了一种信息传输方法,应用于网络设备,该方法包括:
步骤501:在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道。
其中,所述第三上行信道为所述第一上行信道或所述第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
本公开实施例中,上述第三上行信道可以是根据相关技术中的UCI复用规则确定的上行信道,对于UCI在不同PUCCH上的重叠,根据UCI复用规则,确定的第三上行信道可能是第一上行信道或者第二上行信道中的一个,也可能是一个新的上行信道,具体取决于是何种UCI以及何种PUCCH格式之间的重叠;该第三上行信道可为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种,即如果是PUCCH之间的重叠,确定的第三上行信道还是PUCCH,如果是PUCCH和PUSCH之间的重叠,确定的第三上行信道可以是PUSCH。
步骤502:判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间。
所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
例如,所述预设时间在表现为时间长度时,时间长度的单位可具体为毫秒,此时时间长度的计算可以是依据一个参考的子载波间隔计算的,或者根据预定规则选择的多个子载波间隔中的一个计算的,其中多个子载波间隔具体为PDSCH对应的子载波间隔、PDCCH对应的子载波间隔、PUCCH对应的子载波间隔、PUSCH对应的子载波间隔中的至少两个。
例如,所述预设时间可以是大于0的,也可以是等于0的,当等于0时,意味着起始和/或结束位置对齐(即相同)。
例如,所述预设时间可以是一个,也可以是多个,例如当需要同时判断两处位置是否满足预设时间是,对不同位置进行判断的预设时间可以相同,也可以不同。
在本公开的具体实施例中,判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间,包括:
判断所述第三上行信道的起始位置是否晚于所述第一上行信道的起始位置预设时间;
或者,判断所述第三上行信道的结束位置是否晚于所述第一上行信道的结束位置预设时间;
或者,判断所述第三上行信道的结束位置是否晚于所述第一上行信道的起始位置预设时间;
或者,判断所述第三上行信道的起始位置是否晚于所述第一上行信道的结束位置预设时间;
或者,判断所述第三上行信道的起始位置是否晚于所述第一上行信道的起始位置预设时间,以及判断所述第三上行信道的结束位置是否晚于所述第一上行信道的结束位置预设时间。此处,对起始位置进行判断的预设时间与对结束位置进行判断的预设时间可以相同,或者不同。
步骤503:当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
这里,第三上行信道的起始和/或结束位置晚于第一上行信道的起始和/或结束位置预设时间是指第三上行信道的起始和/或结束位置位于所述第一 上行信道的起始和/或结束位置之后,且第三上行信道的起始和/或结束位置与所述第一上行信道的起始和/或结束位置的时间间隔大于预设时间。
其中,所述第一UCI和所述第二UCI的类型相同或者不同。例如可以都是SR,或者可以都是CSI,或者可以都是HARQ-ACK,也可以是一种为HARQ-ACK,另一种为SR或CSI;或一种为CSI,另一种为SR等。
这里,第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型。例如,第一UCI为URLLC对应的UCI,所述第二UCI为eMBB对应的UCI。
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。例如,第一UCI为URLLC的HARQ-ACK,第二UCI为URLLC的CSI和/或SR。
进一步地,判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间之后,还包括:
当判断为否时,在所述第三上行信道上接收所述第一UCI和所述第二UCI,或者,在所述第三上行信道上接收所述第一UCI。
这里,当在所述第三上行信道上接收所述第一UCI时,第二UCI是隐式传输的,例如通过在第三上行信道上接收到信息,可以隐式判断同时存在第二UCI。
在本公开的具体实施例中,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
例如,第一业务类型或第一UCI对应第一DCI格式,第二业务类型或第二UCI对应第二DCI格式,预先规定对应第一DCI格式的业务类型的优先级 高于对应第二DCI格式的业务类型的优先级,或者,预先规定对应第一DCI格式的UCI的优先级高于对应第二DCI格式的UCI的优先级,则根据对应的DCI格式,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
又例如,第一业务类型或第一UCI对应第一RNTI,第二业务类型或第二UCI对应第二RNTI,预先规定对应第一RNTI的业务类型的优先级高于对应第二RNTI的业务类型的优先级,或者预先约定对应第一RNTI的UCI(即其对应的下行传输使用第一RNTI加扰)的优先级高于对应第二RNTI的UCI的优先级,则根据对应的RNTI,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
又例如,第一业务类型或第一UCI对应的DCI在第一CORESET或第一搜索空间中传输,第二业务类型或第二UCI对应的DCI在第二CORESET或第二搜索空间中传输,预先规定对应第一CORESET或第一搜索空间的业务类型的优先级高于对应第二CORESET或搜索空间的业务类型的优先级,或者,预先规定对应第一CORESET或第一搜索空间的UCI(即其调度信息在该CORESET或搜索空间中传输)的优先级高于对应第二CORESET或搜索空间的UCI的优先级,则根据对应的CORESET或搜索空间,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
又例如,第一业务类型或第一UCI对应的目标BLER为10-5或10-6,第二业务类型或第二UCI对应的目标BLER高于10-5或10-6(例如10-2或10-1),预先规定对应目标BLER为10-5或10-6的业务类型的优先级高于对应目标BLER为10-2或10-1的业务类型的优先级,或者,预先规定对应目标BLER为10-5或10-6的UCI的优先级高于对应目标BLER为10-2或10-1的UCI的优先级,则根据对应的目标BLER,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
又例如,第一业务类型或第一UCI对应URLLC CQI table(对应URLLC的MCS table),第二业务类型或第二UCI对应64QAM或256QAM CQI table(对应64QAM/256QAM的MCS table),预先规定对应URLLC CQI table的 业务类型的优先级高于对应64QAM/256QAM CQI table的业务类型的优先级,或者,预先规定对应URLLC CQI table的UCI的优先级高于对应64QAM/256QAM CQI table的UCI的优先级,则根据对应的CQI table,可确定第一业务类型的优先级高于第二业务类型的优先级,或者第一UCI的优先级高于第二UCI的优先级。
本公开实施例的信息传输方法,在承载第一UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI,以保证高优先级或高重要性的UCI传输的时延。
下面结合具体实施例来对本公开实施例的信息传输方法进行说明。
实施例1:如图6和图7所示,假设一个时隙中存在两个PUCCH,不同PUCCH承载不同类型的UCI,假设根据调度下行传输的DCI的格式、DCI大小、传输所在的搜索空间、传输所在的CORESET、传输所使用的波束beam或传输使用的RNTI等信息可以确定,该下行传输对应URLLC业务,或者确定该下行传输的优先级较高,则可以确定该下行传输的HARQ-ACK为第一UCI,即优先级较高的UCI,同理,例如根据PUCCH资源的配置或者SR的配置,可以确定该SR为对应eMBB的SR,或者确定该SR的优先级较低,则可以确定SR为第二UCI,即优先级较低的UCI。
假设HARQ-ACK和SR都使用PUCCH格式1传输,则由于两个PUCCH之间在时域上重叠,按照UCI复用传输规则,当SR为positive SR时,需要将HARQ-ACK转移到SR对应的PUCCH资源上传输,即确定SR对应的PUCCH资源为进行HARQ-ACK和SR复用传输的PUCCH资源。
终端需要进行如下判断:判断SR对应的PUCCH资源的最后一个符号是否晚于原HARQ-ACK对应的PUCCH资源的最后一个符号T个符号;假设T为2个符号,如果是,如图6所示,则不传输SR(即丢弃SR),在原承载HARQ-ACK的PUCCH资源上传输HARQ-ACK,以保证高优先级UCI的传输时延不增加,如果否,如图7所示,则可以将HARQ-ACK转移到SR对应 的PUCCH资源上传输,从而支持SR和HARQ-ACK的同时传输,其中SR是通过使用SR对应的PUCCH资源传输来隐式表达的。
当然,其他判断方式,例如判断SR对应的PUCCH资源的第一个符号是否晚于原HARQ-ACK对应的PUCCH资源的第一个符号T个符号,或者判断SR对应的PUCCH资源的第一个符号是否晚于原HARQ-ACK对应的PUCCH资源的最后一个符号T个符号,或者判断SR对应的PUCCH资源的最后一个符号是否晚于原HARQ-ACK对应的PUCCH资源的第一个符号T个符号等方式,以及将上述T个符号替换为对应的时间长度,例如T1毫秒等,均与上述判断方式的实现原理相同,此处不再赘述,预先约定或协议中规定好一种终端和基站之间统一的判断方式即可。
基站侧按照上述同终端一致的判断方法,判断SR对应的PUCCH资源的最后一个符号是否晚于原HARQ-ACK对应的PUCCH资源的最后一个符号T个符号,并根据判断结果确定HARQ-ACK是否会转移到SR资源上传输。当确定不会时,则只在HARQ-ACK对应的PUCCH资源上接收HARQ-ACK;当确定会转移时,因为基站不确定终端是否存在positive SR发送,基站需要在HARQ-ACK对应的PUCCH资源和SR对应的PUCCH资源上进行盲检侧,当在SR对应的PUCCH资源上检测到信息,则确定存在positive SR,从而进一步在SR对应的PUCCH资源上接收得到HARQ-ACK;当在SR对应的PUCCH资源上未检测到信息,则确定不存在positive SR,从而进一步接收在HARQ-ACK对应的PUCCH资源上接收HARQ-ACK。
上述实施例1中,如果将HARQ-ACK替换为SPS HARQ-ACK,将SR替换为CSI,同样适用,其中HARQ-ACK所使用的PUCCH格式与上述实施例1可以相同或者不同,CSI所使用的PUCCH格式可以为PUCCH格式2/3/4等,其他处理同实施例1;上述实施例1中,如果将SR和HARQ-ACK的优先级交换,改变PUCCH格式,同样适用,所不同的是,如果判断结果为是,则不传输HARQ-ACK,只传输SR。
实施例2:如图8和图9所示,假设一个时隙中存在两个PUCCH,不同PUCCH承载不同类型的UCI,假设根据调度下行传输的DCI的格式、DCI大小、传输所在的搜索空间、传输所在的CORESET、传输所使用的波束beam 或传输使用的RNTI等信息可以确定,该下行传输对应URLLC业务,或者确定该下行传输的优先级较高,则可以确定该下行传输的HARQ-ACK为第一UCI,即优先级较高的UCI,同理,例如根据PUCCH资源的配置或者CSI的配置,可以确定该CSI为对应eMBB的CSI,或者确定该CSI的优先级较低,则可以确定CSI为第二UCI,即优先级较低的UCI。
假设配置了多个PUCCH资源集合,即PUCCH资源中存在可以承载较大比特数的资源,由于PUCCH之间在时域上重叠,按照UCI复用传输规则,需要根据HARQ-ACK和CSI的比特数之和选择一个PUCCH资源集合,再根据调度HARQ-ACK所对应的下行传输的DCI中的PUCCH资源指示域确定该PUCCH资源集合中的一个PUCCH资源用于承载HARQ-ACK和CSI,即确定该新PUCCH资源为进行HARQ-ACK和CSI复用传输的PUCCH资源。
终端需要进行如下判断:判断该新PUCCH资源的最后一个符号是否晚于原HARQ-ACK对应的PUCCH资源的最后一个符号T个符号;假设T为2个符号,如果是,如图8所示,则不传输CSI(即丢弃CSI),在原承载HARQ-ACK的PUCCH资源上传输HARQ-ACK,以保证高优先级UCI的传输时延不增加;如果否,如图9所示,则可以将HARQ-ACK和CSI在该新PUCCH资源上同时传输。
当然,其他判断方式,例如判断新PUCCH资源的第一个符号是否晚于原HARQ-ACK对应的PUCCH资源的第一个符号之后T个符号,或者判断新PUCCH资源的第一个符号是否晚于原HARQ-ACK对应的PUCCH资源的最后一个符号之后T个符号,或者判断新PUCCH资源的最后一个符号是否晚于原HARQ-ACK对应的PUCCH资源的第一个符号之后T个符号等方式,以及将上述T个符号替换为对应的时间长度,例如T1毫秒等,均与上述判断方式的实现原理相同,此处不再赘述,预先约定或协议中规定好一种终端和基站之间统一的判断方式即可。
基站侧按照上述同终端一致的判断方法,判断新PUCCH资源的最后一个符号是否晚于HARQ-ACK对应的PUCCH资源的最后一个符号T个符号,并根据判断结果确定是否会使用新PUCCH资源同时传输HARQ-ACK和CSI,当确定不会在新PUCCH资源上传输时,则只在HARQ-ACK对应的PUCCH 资源上接收HARQ-ACK,确定CSI被丢弃了,不需要接收CSI,当确定会在新PUCCH资源上传输时,在新PUCCH资源上同时接收HARQ-ACK和CSI。
上述实施例中仅以UCI在PUCCH上的传输为例,当UCI在PUSCH上传输时,同样适用,当其中一个UCI在PUCCH上传输,另一个UCI在PUSCH上传输时,同样适用。上述实施例中仅以第一UCI和第二UCI为不同类型的UCI为例,当第一UCI和第二UCI都为HARQ-ACK,或者都为CSI,或者都为SR时,同样适用。
本公开实施例的信息传输方法,当第一UCI与第二UCI的传输资源在时域上重叠时,按照复用传输资源与原UCI的传输资源的相对位置确定是否启用复用传输资源传输第一UCI和第二UCI,还是丢弃其中一种UCI,以保证UCI传输的低时延特性。
如图10所示,本公开的实施例还提供了一种终端,包括:收发机、存储器、处理器及存储在存储器上并可在处理器上运行的计算机程序,所述处理器执行所述计算机程序时实现以下步骤:
在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
其中,在图10中,总线架构可以包括任意数量的互联的总线和桥,具体由处理器1000代表的一个或多个处理器和存储器1020代表的存储器的各种电路链接在一起。总线架构还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口提供接口。收发机1010可以是多个元件,即包括发送机和收发机,提供用于在传输介质上与各种其他装置通信的单元。针对不同的用户设备,用户接口1030还可以是能够外接内接需要设备的接口,连接的设备包括但不限于小键盘、显示器、扬声器、麦克风、操纵杆等。
处理器1000负责管理总线架构和通常的处理,存储器1020可以存储处理器1000在执行操作时所使用的数据。
可选地,处理器1000还用于读取存储器1020中的程序,执行如下步骤:
当判断为否时,在所述第三上行信道上传输所述第一UCI和所述第二UCI,或者,在所述第三上行信道上传输所述第一UCI。
可选地,所述第三上行信道为所述第一上行信道或所述第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
可选地,所述第一UCI和所述第二UCI的类型相同或者不同。
可选地,所述第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
可选地,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
可选地,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
可选地,所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
本公开实施例的终端,在承载第一UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二 UCI复用传输的第三上行信道;判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI,以保证高优先级或高重要性的UCI传输的时延。
在本公开的一些实施例中,还提供了一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现以下步骤:
在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
该程序被处理器执行时能实现上述应用于终端侧的信息传输方法实施例中的所有实现方式,且能达到相同的技术效果,为避免重复,此处不再赘述。
如图11所示,本公开实施例还提供了一种终端,包括:
第一确定模块1101,用于在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
第一判断模块1102,用于判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
第一传输模块1103,用于当第一判断模块判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
本公开实施例的终端,还包括:
第二传输模块,用于当第一判断模块判断为否时,在所述第三上行信道上传输所述第一UCI和所述第二UCI,或者,在所述第三上行信道上传输所述第一UCI。
本公开实施例的终端,所述第三上行信道为所述第一上行信道或所述第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
本公开实施例的终端,所述第一UCI和所述第二UCI的类型相同或者不同。
本公开实施例的终端,所述第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
本公开实施例的终端,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
本公开实施例的终端,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
本公开实施例的终端,所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
本公开实施例的终端,在承载第一UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI,以保证高优 先级或高重要性的UCI传输的时延。
如图12所示,本公开的实施例还提供了一种网络设备,该网络设备可具体为基站,包括存储器1220、处理器1200、收发机1210、总线接口及存储在存储器1220上并可在处理器1200上运行的计算机程序,所述处理器1200用于读取存储器1220中的程序,执行下列过程:
在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
其中,在图12中,总线架构可以包括任意数量的互联的总线和桥,具体由处理器1200代表的一个或多个处理器和存储器1220代表的存储器的各种电路链接在一起。总线架构还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口提供接口。收发机1210可以是多个元件,即包括发送机和收发机,提供用于在传输介质上与各种其他装置通信的单元。处理器1200负责管理总线架构和通常的处理,存储器1220可以存储处理器1200在执行操作时所使用的数据。
可选地,所述处理器1200执行所述程序时还实现以下步骤:
当判断为否时,在所述第三上行信道上接收所述第一UCI和所述第二UCI,或者,在所述第三上行信道上接收所述第一UCI。
可选地,所述第三上行信道为所述第一上行信道或第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
可选地,所述第一UCI和所述第二UCI的类型相同或者不同。
可选地,所述第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二 业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
可选地,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
可选地,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
可选地,所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
本公开实施例的网络设备,在承载第一UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI,以保证高优先级或高重要性的UCI传输的时延。
在本公开的一些实施例中,还提供了一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现以下步骤:
在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
该程序被处理器执行时能实现上述应用于网络设备侧的信息传输方法实施例中的所有实现方式,且能达到相同的技术效果,为避免重复,此处不再赘述。
如图13所示,本公开实施例还提供了一种网络设备,包括:
第二确定模块1301,用于在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
第二判断模块1302,用于判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
第一接收模块1303,用于当第二判断模块判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
本公开实施例的网络设备,还包括:
第二接收模块,用于当第二判断模块当判断为否时,在所述第三上行信道上接收所述第一UCI和所述第二UCI,或者,在所述第三上行信道上接收所述第一UCI。
本公开实施例的网络设备,所述第三上行信道为所述第一上行信道或第二上行信道;
或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
本公开实施例的网络设备,所述第一UCI和所述第二UCI的类型相同或者不同。
本公开实施例的网络设备,所述第一UCI的优先级或重要性高于所述第二UCI;
或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先 级或重要性的UCI。
本公开实施例的网络设备,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
所述目标信息包括以下至少一项:
下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
本公开实施例的网络设备,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
本公开实施例的网络设备,所述预设时间为第一预设数量个正交频分复用OFDM符号;
或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
或者,所述预设时间为第二预设数量个时间单位对应的时长。
本公开实施例的网络设备,在承载第一UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI,以保证高优先级或高重要性的UCI传输的时延。
在本公开的各种实施例中,应理解,上述各过程的序号的大小并不意味着执行顺序的先后,各过程的执行顺序应以其功能和内在逻辑确定,而不应对本公开实施例的实施过程构成任何限定。
可以理解的是,本公开实施例描述的这些实施例可以用硬件、软件、固件、中间件、微码或其组合来实现。对于硬件实现,处理单元可以实现在一个或多个专用集成电路(Application Specific Integrated Circuits,ASIC)、数字信号处理器(Digital Signal Processing,DSP)、数字信号处理设备(DSP Device,DSPD)、可编程逻辑设备(Programmable Logic Device,PLD)、现场可编程门阵列(Field-Programmable Gate Array,FPGA)、通用处理器、控 制器、微控制器、微处理器、用于执行本公开所述功能的其它电子单元或其组合中。
对于软件实现,可通过执行本公开实施例所述功能的模块(例如过程、函数等)来实现本公开实施例所述的技术。软件代码可存储在存储器中并通过处理器执行。存储器可以在处理器中或在处理器外部实现。
以上所述是本公开的可选的实施方式,应当指出,对于本技术领域的普通技术人员来说,在不脱离本公开所述原理的前提下,还可以作出若干改进和润饰,这些改进和润饰也应视为本公开的保护范围。

Claims (38)

  1. 一种信息传输方法,应用于终端,包括:
    在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
    判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
    当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
  2. 根据权利要求1所述的信息传输方法,其中,判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间之后,还包括:
    当判断为否时,在所述第三上行信道上传输所述第一UCI和所述第二UCI,或者,在所述第三上行信道上传输所述第一UCI。
  3. 根据权利要求1所述的信息传输方法,其中,所述第三上行信道为所述第一上行信道或所述第二上行信道;
    或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
  4. 根据权利要求1所述的信息传输方法,其中,所述第一UCI和所述第二UCI的类型相同或者不同。
  5. 根据权利要求1所述的信息传输方法,其中,所述第一UCI的优先级或重要性高于所述第二UCI;
    或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
    或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
  6. 根据权利要求5所述的信息传输方法,其中,所述第一业务类型和所 述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
    所述目标信息包括以下至少一项:
    下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
  7. 根据权利要求1所述的信息传输方法,其中,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
  8. 根据权利要求1所述的信息传输方法,其中,所述预设时间为第一预设数量个正交频分复用OFDM符号;
    或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
    或者,所述预设时间为第二预设数量个时间单位对应的时长。
  9. 一种信息传输方法,应用于网络设备,包括:
    在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
    判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
    当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
  10. 根据权利要求9所述的信息传输方法,其中,判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间之后,还包括:
    当判断为否时,在所述第三上行信道上接收所述第一UCI和所述第二UCI,或者,在所述第三上行信道上接收所述第一UCI。
  11. 根据权利要求9所述的信息传输方法,其中,所述第三上行信道为所述第一上行信道或第二上行信道;
    或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
  12. 根据权利要求9所述的信息传输方法,其中,所述第一UCI和所述第二UCI的类型相同或者不同。
  13. 根据权利要求9所述的信息传输方法,其中,所述第一UCI的优先级或重要性高于所述第二UCI;
    或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
    或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
  14. 根据权利要求13所述的信息传输方法,其中,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
    所述目标信息包括以下至少一项:
    下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
  15. 根据权利要求9所述的信息传输方法,其中,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
  16. 根据权利要求9所述的信息传输方法,其中,所述预设时间为第一预设数量个正交频分复用OFDM符号;
    或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
    或者,所述预设时间为第二预设数量个时间单位对应的时长。
  17. 一种终端,包括:收发机、存储器、处理器及存储在存储器上并可在处理器上运行的程序,其中,所述处理器执行所述程序时实现以下步骤:
    在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
    判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
    当判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
  18. 根据权利要求17所述的终端,其中,所述处理器执行所述程序时还实现以下步骤:
    当判断为否时,在所述第三上行信道上传输所述第一UCI和所述第二UCI,或者,在所述第三上行信道上传输所述第一UCI。
  19. 根据权利要求17所述的终端,其中,所述第三上行信道为所述第一上行信道或所述第二上行信道;
    或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
  20. 根据权利要求17所述的终端,其中,所述第一UCI和所述第二UCI的类型相同或者不同。
  21. 根据权利要求17所述的终端,其中,所述第一UCI的优先级或重要性高于所述第二UCI;
    或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
    或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
  22. 根据权利要求21所述的终端,其中,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
    所述目标信息包括以下至少一项:
    下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
  23. 根据权利要求17所述的终端,其中,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
  24. 根据权利要求17所述的终端,其中,所述预设时间为第一预设数量 个正交频分复用OFDM符号;
    或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
    或者,所述预设时间为第二预设数量个时间单位对应的时长。
  25. 一种计算机可读存储介质,其上存储有计算机程序,其中,该计算机程序被处理器执行时实现如权利要求1至8中任一项所述信息传输方法的步骤。
  26. 一种网络设备,包括:收发机、存储器、处理器及存储在存储器上并可在处理器上运行的程序,其中,所述处理器执行所述程序时实现以下步骤:
    在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
    判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
    当判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
  27. 根据权利要求26所述的网络设备,其中,所述处理器执行所述程序时还实现以下步骤:
    当判断为否时,在所述第三上行信道上接收所述第一UCI和所述第二UCI,或者,在所述第三上行信道上接收所述第一UCI。
  28. 根据权利要求26所述的网络设备,其中,所述第三上行信道为所述第一上行信道或第二上行信道;
    或者,所述第三上行信道为除所述第一上行信道和第二上行信道之外的上行信道。
  29. 根据权利要求26所述的网络设备,其中,所述第一UCI和所述第二UCI的类型相同或者不同。
  30. 根据权利要求26所述的网络设备,其中,所述第一UCI的优先级或重要性高于所述第二UCI;
    或者,所述第一UCI为第一业务类型对应的UCI,所述第二UCI为第二 业务类型对应的UCI,且所述第一业务类型的优先级或重要性高于所述第二业务类型;
    或者,所述第一UCI和所述第二UCI为同一种业务类型中具有不同优先级或重要性的UCI。
  31. 根据权利要求30所述的网络设备,其中,所述第一业务类型和所述第二业务类型的优先级是通过目标信息确定的,或者,所述第一UCI和所述第二UCI的优先级是通过目标信息确定的;
    所述目标信息包括以下至少一项:
    下行控制信息DCI格式、DCI大小、搜索空间、控制资源集合CORESET、波束、无线网络临时标识RNTI、调制与编码策略MCS或信道质量指示CQI表格、目标误块率BLER和优先级标志。
  32. 根据权利要求26所述的网络设备,其中,所述第三上行信道为物理上行控制信道PUCCH和物理上行共享信道PUSCH中的至少一种。
  33. 根据权利要求26所述的网络设备,其中,所述预设时间为第一预设数量个正交频分复用OFDM符号;
    或者,所述预设时间为第一预设数量个OFDM符号对应的时间长度;
    或者,所述预设时间为第二预设数量个时间单位对应的时长。
  34. 一种计算机可读存储介质,其上存储有计算机程序,其中,该计算机程序被处理器执行时实现如权利要求9至16中任一项所述信息传输方法的步骤。
  35. 一种终端,包括:
    第一确定模块,用于在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
    第一判断模块,用于判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
    第一传输模块,用于当第一判断模块判断为是时,丢弃所述第二UCI,在所述第一上行信道上传输所述第一UCI。
  36. 根据权利要求35所述的终端,还包括:
    第二传输模块,用于当第一判断模块判断为否时,在所述第三上行信道上传输所述第一UCI和所述第二UCI,或者,在所述第三上行信道上传输所述第一UCI。
  37. 一种网络设备,包括:
    第二确定模块,用于在承载第一上行控制信息UCI的第一上行信道与承载第二UCI的第二上行信道在时域上重叠的情况下,确定用于所述第一UCI和所述第二UCI复用传输的第三上行信道;
    第二判断模块,用于判断所述第三上行信道的起始和/或结束位置是否晚于所述第一上行信道的起始和/或结束位置预设时间;
    第一接收模块,用于当第二判断模块判断为是时,不接收所述第二UCI,在所述第一上行信道上接收所述第一UCI。
  38. 根据权利要求37所述的网络设备,还包括:
    第二接收模块,用于当第二判断模块当判断为否时,在所述第三上行信道上接收所述第一UCI和所述第二UCI,或者,在所述第三上行信道上接收所述第一UCI。
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