WO2019169634A1 - 信息传输方法、装置、系统及存储介质 - Google Patents

信息传输方法、装置、系统及存储介质 Download PDF

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Publication number
WO2019169634A1
WO2019169634A1 PCT/CN2018/078611 CN2018078611W WO2019169634A1 WO 2019169634 A1 WO2019169634 A1 WO 2019169634A1 CN 2018078611 W CN2018078611 W CN 2018078611W WO 2019169634 A1 WO2019169634 A1 WO 2019169634A1
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target
harq
delay
uplink resource
transmission
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PCT/CN2018/078611
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English (en)
French (fr)
Inventor
赵群
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北京小米移动软件有限公司
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Priority to PCT/CN2018/078611 priority Critical patent/WO2019169634A1/zh
Priority to CN201880000171.0A priority patent/CN109155726B/zh
Publication of WO2019169634A1 publication Critical patent/WO2019169634A1/zh
Priority to US17/014,743 priority patent/US11424869B2/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • H04L1/1829Arrangements specially adapted for the receiver end
    • H04L1/1854Scheduling and prioritising arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • H04L1/1812Hybrid protocols; Hybrid automatic repeat request [HARQ]
    • H04L1/1819Hybrid protocols; Hybrid automatic repeat request [HARQ] with retransmission of additional or different redundancy
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0619Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
    • H04B7/0621Feedback content
    • H04B7/0626Channel coefficients, e.g. channel state information [CSI]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/1607Details of the supervisory signal
    • H04L1/1671Details of the supervisory signal the supervisory signal being transmitted together with control information
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • H04L1/1867Arrangements specially adapted for the transmitter end
    • H04L1/1887Scheduling and prioritising arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • H04L1/1867Arrangements specially adapted for the transmitter end
    • H04L1/1896ARQ related signaling
    • 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
    • H04L5/0055Physical resource allocation for ACK/NACK
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0446Resources in time domain, e.g. slots or frames
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/12Wireless traffic scheduling
    • H04W72/1263Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
    • 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
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/10Connection setup
    • H04W76/11Allocation or use of connection identifiers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/20Manipulation of established connections
    • H04W76/27Transitions between radio resource control [RRC] states

Definitions

  • the present disclosure relates to the field of wireless communications, and in particular, to an information transmission method, apparatus, system, and storage medium.
  • the UE User Equipment
  • UCI Uplink Control Information
  • the UCI may include a HARQ (Hybrid Automatic Repeat Request) and an SR (The Scheduling Request and the Channel State Information (CSI) are used to transmit the UCI to the base station through the PUCCH (Physical Uplink Control Channel).
  • HARQ Hybrid Automatic Repeat Request
  • SR SR
  • the Scheduling Request and the Channel State Information (CSI) are used to transmit the UCI to the base station through the PUCCH (Physical Uplink Control Channel).
  • PUCCH Physical Uplink Control Channel
  • a PUCCH for transmitting UCI and a PUSCH for transmitting uplink data when a plurality of PUCCHs configured by the base station for transmitting different types of UCIs are completely overlapped in the time domain, or when the base station is configured to transmit to the UE, a PUCCH for transmitting UCI and a PUSCH for transmitting uplink data.
  • the physical uplink shared channel Physical Uplink Shared Channel
  • the UE may multiplex multiple UCIs of different types into one PUCCH for transmission, or the UE may multiplex the UCI to the PUSCH for transmission.
  • the information of different frequency domains can be transmitted in the same time domain, so that the PAPR (Peak to Average Power Ratio) transmitted by the UE can be effectively reduced, and the uplink transmission performance of the UE is improved.
  • the present disclosure provides an information transmission method, apparatus, system, and storage medium, which can solve the problem of how a UE transmits HARQ when a PUCCH for transmitting HARQ and other PUCCHs or PUSCHs partially overlap in the time domain.
  • an information transmission method including:
  • the target HARQ is multiplexed onto the second uplink resource for transmission;
  • the first uplink resource is an uplink resource allocated by the base station to the user equipment UE for transmitting the target HARQ
  • the second uplink resource is used by the base station to allocate uplink data or target to the UE.
  • the uplink resource of the uplink control information UCI where the target UCI includes a scheduling request SR or channel state information CSI, and the first uplink resource is located before the second uplink resource in the time domain.
  • the first uplink resource is used to transmit multiple target HARQs, where the first uplink resource and the second uplink resource partially overlap in a time domain, and the target hybrid automatic repeat request HARQ can delay transmission And multiplexing the target HARQ to the second uplink resource, including:
  • each of the target HARQs can delay transmission, multiplexing the multiple target HARQs to the second uplink resource Transfer on.
  • the target HARQ is multiplexed to the second uplink resource. Transfer on, including:
  • the target HARQ When the first uplink resource and the second uplink resource partially overlap in the time domain, and the target HARQ is capable of delaying transmission, acquiring a maximum delay duration that the target HARQ can delay transmission;
  • the target HARQ is multiplexed onto the second uplink resource for transmission.
  • the method further includes:
  • the target UCI is multiplexed onto the first uplink resource for transmission.
  • the method further includes:
  • the determining whether the target HARQ can delay transmission includes:
  • the receiving the delay information sent by the base station includes:
  • the receiving the delay information sent by the base station includes:
  • the delay information is a HARQ process identifier, where the HARQ process identifier is used to indicate a HARQ process to which the target HARQ belongs, and the receiving the delay information sent by the base station includes:
  • first downlink control information DCI where the first DCI is used to schedule target downlink data, and the target HARQ is used to indicate whether the UE correctly receives the target downlink data, where the first The DCI includes the HARQ process identifier;
  • Determining, according to the delay information, whether the target HARQ can delay transmission includes:
  • each of the process identifiers included in the target identifier set is an identifier of a HARQ process that the HARQ can delay transmission;
  • the HARQ process identifier does not belong to the target identity set, it is determined that the target HARQ cannot delay transmission.
  • the determining whether the target HARQ can delay transmission includes:
  • the target HARQ can delay transmission.
  • determining that the target HARQ cannot delay transmission including:
  • the target HARQ cannot delay transmission when receiving the first signaling sent by the base station, where the first signaling is used to indicate that the UE performs data transmission by using a sub-slot;
  • Determining that the target HARQ can delay transmission when the UE performs data transmission by using a time slot including:
  • the second signaling is used to indicate that the UE performs data transmission by using a time slot.
  • determining that the target HARQ cannot delay transmission including:
  • the UE When the UE receives the downlink data transmission scheduling DCI on the target downlink resource, it is determined that the target HARQ cannot delay transmission, and the target downlink resource is not the downlink of the scheduling DCI that the UE receives downlink data transmitted according to the time slot. Resources.
  • the delay information is first time interval indication information, where the first time interval indication information is used to indicate an interval of the second DCI in the time domain from the target downlink data, where the second DCI is used in the scheduling
  • the target downlink data, where the target HARQ is used to indicate whether the UE correctly receives the target downlink data, and the receiving the delay information sent by the base station includes:
  • Determining, according to the delay information, whether the target HARQ can delay transmission includes:
  • the delay information is second time interval indication information, where the second time interval indication information is used to indicate an interval of target downlink data in the time domain from the target HARQ, where the target HARQ is used to indicate Whether the UE receives the target downlink data correctly, and the receiving the delay information sent by the base station includes:
  • Determining, according to the delay information, whether the target HARQ can delay transmission includes:
  • the delay information includes first time interval indication information and second time interval indication information, where the first time interval indication information is used to indicate an interval of the fourth DCI from the target downlink data in the time domain,
  • the second time interval indication information is used to indicate an interval of the target downlink data in the time domain from the target HARQ, where the fourth DCI is used to schedule the target downlink data, and the target HARQ is used to indicate the UE Whether the target downlink data is correctly received
  • the receiving the delay information sent by the base station includes:
  • Determining, according to the delay information, whether the target HARQ can delay transmission includes:
  • the delay information is length indication information, where the length indication information is used to indicate the length of the target downlink data in the time domain, and the target HARQ is used to indicate whether the target downlink data is correctly received by the UE.
  • Receiving the delay information sent by the base station including:
  • Determining, according to the delay information, whether the target HARQ can delay transmission includes:
  • the receiving the delay information sent by the base station includes:
  • the target HARQ is used to indicate whether the target downlink data is correctly received by the UE, and the sixth DCI includes the Delayed information.
  • the delay information is further used to indicate that the target HARQ can delay the maximum delay duration of the transmission.
  • the first uplink resource is a physical uplink control channel (PUCCH)
  • determining whether the target HARQ can delay transmission includes:
  • the first uplink resource is a PUCCH
  • determining whether the target HARQ can delay transmission includes:
  • the target HARQ can delay transmission.
  • the first uplink resource is a PUCCH
  • determining whether the target HARQ can delay transmission includes:
  • the target HARQ can delay transmission when the number of subcarriers occupied by the PUCCH in the frequency domain is less than or equal to a preset number threshold
  • the determining whether the target HARQ can delay transmission includes:
  • the target HARQ is used to indicate whether the target downlink data is correctly received by the UE;
  • the target HARQ is capable of delaying transmission when the second internal high layer signaling is received, where the second internal high layer signaling is that the communication service corresponding to the target downlink data is not low delay service Generated.
  • an information transmission method including:
  • the delay information is used to indicate whether the target hybrid automatic repeat request HARQ can delay transmission, and the UE is used to partially overlap the first uplink resource and the second uplink resource in the time domain, and The delay information indicates that when the target HARQ is capable of delaying transmission, the target HARQ is multiplexed onto the second uplink resource for transmission;
  • the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ
  • the second uplink resource is used by the base station to allocate uplink data or target to the UE.
  • the uplink resource of the uplink control information UCI where the target UCI includes a scheduling request SR or channel state information CSI, and the first uplink resource is located before the second uplink resource in the time domain.
  • the sending the delay information to the user equipment UE includes:
  • a system broadcast message is sent to the UE, the system broadcast message including the delay information.
  • the sending the delay information to the user equipment UE includes:
  • the delay information is a HARQ process identifier, where the HARQ process identifier is used to indicate a HARQ process to which the target HARQ belongs, and the sending the delay information to the user equipment UE includes:
  • the UE Transmitting, by the UE, a first DCI, where the first DCI is used to schedule target downlink data, where the target HARQ is used to indicate whether the target downlink data is correctly received by the UE, and the first DCI includes the HARQ Process identifier
  • the HARQ process identifier When the HARQ process identifier belongs to the target identifier set, the HARQ process identifier indicates that the target HARQ can delay transmission, and each of the process identifiers included in the target identifier set is an identifier of a HARQ process that the HARQ can delay transmission;
  • the HARQ process identifier When the HARQ process identifier does not belong to the target identity set, the HARQ process identifier indicates that the target HARQ cannot delay transmission.
  • the sending the delay information to the user equipment UE includes:
  • the sixth DCI is used to schedule target downlink data
  • the target HARQ is used to indicate whether the target data is correctly received by the UE
  • the sixth DCI includes the delay. information.
  • the delay information is further used to indicate that the target HARQ can delay the maximum delay duration of the transmission.
  • an information transmission apparatus including:
  • a first transmission module configured to: when the first uplink resource and the second uplink resource partially overlap in the time domain, and the target hybrid automatic repeat request HARQ is capable of delaying transmission, multiplexing the target HARQ to the second uplink Transfer on resources;
  • the first uplink resource is an uplink resource allocated by the base station to the user equipment UE for transmitting the target HARQ
  • the second uplink resource is used by the base station to allocate uplink data or target to the UE.
  • the uplink resource of the uplink control information UCI where the target UCI includes a scheduling request SR or channel state information CSI, and the first uplink resource is located before the second uplink resource in the time domain.
  • the first uplink resource is used to transmit multiple target HARQs, and the first transmission module includes a first multiplex submodule;
  • the first multiplexing submodule configured to: when the first uplink resource and the second uplink resource partially overlap in a time domain, and each of the target HARQs can delay transmission, the multiple The target HARQ is multiplexed onto the second uplink resource for transmission.
  • the first transmission module includes an obtaining submodule and a second multiplexing submodule
  • the acquiring submodule configured to: when the first uplink resource and the second uplink resource partially overlap in a time domain, and the target HARQ can delay transmission, obtain a maximum delay that the target HARQ can delay transmission duration;
  • the second multiplex sub-module is configured to multiplex the target HARQ to the location when the interval of the second uplink resource in the time domain from the first uplink resource is less than or equal to the maximum delay duration Transmitting on the second uplink resource.
  • the information transmission device further includes a second transmission module, where the second transmission module is configured to partially overlap the first uplink resource and the second uplink resource in a time domain, and the target When the HARQ cannot delay transmission, the target UCI is multiplexed onto the first uplink resource for transmission.
  • the information transmission device further includes a determining module, where the determining module is configured to: determine whether the target HARQ can delay transmission.
  • the determining module includes a first receiving submodule and a first determining submodule
  • the first receiving submodule is configured to receive delay information sent by the base station, where the delay information is used to indicate whether the target HARQ can delay transmission;
  • the first determining submodule is configured to determine, according to the delay information, whether the target HARQ can delay transmission.
  • the first receiving submodule is configured to receive a system broadcast message sent by the base station, where the system broadcast message includes the delay information.
  • the first receiving submodule is configured to receive radio resource control RRC signaling sent by the base station, where the RRC signaling includes the delay information.
  • the delay information is a HARQ process identifier, where the HARQ process identifier is used to indicate a HARQ process to which the target HARQ belongs;
  • the first receiving submodule is configured to receive the first downlink control information DCI sent by the base station, where the first DCI is used to schedule target downlink data, and the target HARQ is used to indicate whether the UE is correctly received.
  • the target downlink data where the first DCI includes the HARQ process identifier;
  • the first determining sub-module configured to determine, when the HARQ process identifier belongs to the target identifier set, that the target HARQ can delay transmission, where each of the process identifiers included in the target identifier set is HARQ capable of delaying transmission An identifier of the HARQ process; when the HARQ process identifier does not belong to the target identity set, determining that the target HARQ cannot delay transmission.
  • the determining module includes a second determining submodule
  • the second determining sub-module is configured to: when the UE performs data transmission through a sub-slot, determine that the target HARQ cannot delay transmission; when the UE performs data transmission by using a time slot, determine that the target HARQ can Delayed transmission.
  • the second determining submodule is configured to: when receiving the first signaling sent by the base station, determine that the target HARQ cannot delay transmission, where the first signaling is used to indicate that the UE passes The sub-slot performs data transmission; when receiving the second signaling sent by the base station, determining that the target HARQ can delay transmission, and the second signaling is used to indicate that the UE performs data transmission by using a time slot.
  • the second determining submodule is configured to: when the UE receives the downlink data transmission scheduling DCI on the target downlink resource, determine that the target HARQ cannot delay transmission, where the target downlink resource is not the The UE receives the downlink resource of the scheduling DCI of the downlink data transmitted according to the time slot.
  • the delay information is first time interval indication information, where the first time interval indication information is used to indicate an interval of the second DCI in the time domain from the target downlink data, where the second DCI is used in the scheduling Target downlink data, where the target HARQ is used to indicate whether the target downlink data is correctly received by the UE;
  • the first receiving submodule is configured to receive the second DCI sent by the base station, where the second DCI includes the first time interval indication information;
  • the first determining module is configured to: when the interval indicated by the first time interval indication information is less than or equal to a first preset interval threshold, determine that the target HARQ cannot delay transmission; when the first time interval indication When the interval indicated by the information is greater than the first preset interval threshold, it is determined that the target HARQ can delay transmission.
  • the delay information is second time interval indication information, where the second time interval indication information is used to indicate an interval of target downlink data in the time domain from the target HARQ, where the target HARQ is used to indicate Whether the UE correctly receives the target downlink data;
  • the first receiving submodule is configured to receive a third DCI sent by the base station, where the third DCI is used to schedule the target downlink data, and the third DCI includes the second time interval indication information;
  • the first determining submodule is configured to determine that the target HARQ cannot delay transmission when the interval indicated by the second time interval indication information is less than or equal to a second preset interval threshold; when the second time interval When the interval indicated by the indication information is greater than the second preset interval threshold, it is determined that the target HARQ can delay transmission.
  • the delay information includes first time interval indication information and second time interval indication information, where the first time interval indication information is used to indicate an interval of the fourth DCI from the target downlink data in the time domain,
  • the second time interval indication information is used to indicate an interval of the target downlink data in the time domain from the target HARQ, where the fourth DCI is used to schedule the target downlink data, and the target HARQ is used to indicate the UE Whether the target downlink data is correctly received;
  • the first receiving submodule is configured to receive the fourth DCI sent by the base station, where the fourth DCI includes the first time interval indication information and the second time interval indication information;
  • the first determining submodule is configured to determine, when the sum of the interval indicated by the first time interval indication information and the interval indicated by the second time interval indication information is less than or equal to a third preset interval threshold The target HARQ cannot delay transmission; when the sum of the interval indicated by the first time interval indication information and the interval indicated by the second time interval indication information is greater than the third preset interval threshold, determining the The target HARQ can delay transmission.
  • the delay information is length indication information, where the length indication information is used to indicate the length of the target downlink data in the time domain, and the target HARQ is used to indicate whether the target downlink data is correctly received by the UE. ;
  • the first receiving submodule is configured to receive a fifth DCI sent by the base station, where the fifth DCI is used to schedule the target downlink data, and the fifth DCI includes the length indication information;
  • the first determining sub-module is configured to: when the length indicated by the length indication information is less than or equal to a first preset length threshold, determine that the target HARQ cannot delay transmission; when the length indication information indicates a length When the first preset length threshold is greater, it is determined that the target HARQ can delay transmission.
  • the first receiving submodule is configured to receive a sixth DCI sent by the base station, where the sixth DCI is used to schedule target downlink data, where the target HARQ is used to indicate whether the UE is correctly received.
  • the target downlink data, the sixth DCI includes the delay information.
  • the delay information is further used to indicate that the target HARQ can delay the maximum delay duration of the transmission.
  • the first uplink resource is a physical uplink control channel PUCCH
  • the determining module includes a first determining submodule and a third determining submodule
  • the first determining submodule is configured to determine a mode of the PUCCH
  • the third determining submodule is configured to determine, according to the mode of the PUCCH, whether the target HARQ can delay transmission.
  • the first uplink resource is a PUCCH
  • the determining module includes a second determining submodule and a fourth determining submodule
  • the second determining submodule is configured to determine a length of the PUCCH in a time domain
  • the fourth determining submodule configured to determine, when the length of the PUCCH in the time domain is less than or equal to a second preset length threshold, that the target HARQ cannot delay transmission; when the length of the PUCCH in the time domain is When the second preset length threshold is greater, it is determined that the target HARQ can delay transmission.
  • the first uplink resource is a PUCCH
  • the determining module includes a third determining submodule and a fifth determining submodule
  • the third determining submodule is configured to determine a number of subcarriers occupied by the PUCCH in a frequency domain
  • the fifth determining submodule configured to determine that the target HARQ can delay transmission when the number of subcarriers occupied by the PUCCH in the frequency domain is less than or equal to a preset threshold; when the PUCCH is in frequency When the number of subcarriers occupied on the domain is greater than the preset number threshold, it is determined that the target HARQ cannot delay transmission.
  • the determining module includes a sixth determining submodule
  • the sixth determining sub-module is configured to: when the first internal high-layer signaling is received, determine that the target HARQ cannot delay transmission, where the first internal high-layer signaling is that the upper layer of the UE corresponds to the target downlink data.
  • the target HARQ is used to indicate whether the target downlink data is correctly received by the UE, and when the second internal high-layer signaling is received, it is determined that the target HARQ can delay transmission.
  • the second internal high layer signaling is generated by the upper layer of the UE when the communication service corresponding to the target downlink data is not a low delay service.
  • an information transmission apparatus including:
  • a sending module configured to send delay information to the user equipment UE, where the delay information is used to indicate whether the target hybrid automatic repeat request HARQ can delay transmission, where the UE is used in the time domain of the first uplink resource and the second uplink resource The upper part is overlapped, and the delay information indicates that the target HARQ can delay transmission, and the target HARQ is multiplexed onto the second uplink resource for transmission;
  • the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ
  • the second uplink resource is used by the base station to allocate uplink data or target to the UE.
  • the uplink resource of the uplink control information UCI where the target UCI includes a scheduling request SR or channel state information CSI, and the first uplink resource is located before the second uplink resource in the time domain.
  • the sending module includes a first sending submodule
  • the first sending submodule is configured to send a system broadcast message to the UE, where the system broadcast message includes the delay information.
  • the sending module includes a second sending submodule
  • the second sending submodule is configured to send RRC signaling to the UE, where the RRC signaling includes the delay information.
  • the delay information is a HARQ process identifier
  • the HARQ process identifier is used to indicate a HARQ process to which the target HARQ belongs
  • the sending module includes a third sending submodule
  • the third sending submodule is configured to send a first DCI to the UE, where the first DCI is used to schedule target downlink data, and the target HARQ is used to indicate whether the UE correctly receives the target downlink data.
  • the first DCI includes the HARQ process identifier;
  • the HARQ process identifier indicates that the target HARQ can delay transmission when the HARQ process identifier belongs to the target identifier set, and each of the process identifiers included in the target identifier set is a HARQ process that the HARQ can delay transmission.
  • the HARQ process identifier When the HARQ process identifier does not belong to the target identity set, the HARQ process identifier indicates that the target HARQ cannot delay transmission.
  • the sending module includes a fourth sending submodule
  • the fourth sending submodule is configured to send a sixth DCI to the UE, where the sixth DCI is used to schedule target downlink data, and the target HARQ is used to indicate whether the UE correctly receives the target downlink data.
  • the sixth DCI includes the delay information.
  • the delay information is further used to indicate that the target HARQ can delay the maximum delay duration of the transmission.
  • an information transmission apparatus including:
  • a memory for storing instructions executable by the processor
  • processor is configured to:
  • the target HARQ is multiplexed onto the second uplink resource for transmission;
  • the first uplink resource is an uplink resource allocated by the base station to the user equipment UE for transmitting the target HARQ
  • the second uplink resource is used by the base station to allocate uplink data or target to the UE.
  • the uplink resource of the uplink control information UCI where the target UCI includes a scheduling request SR or channel state information CSI, and the first uplink resource is located before the second uplink resource in the time domain.
  • an information transmission apparatus including:
  • a memory for storing instructions executable by the processor
  • processor is configured to:
  • the delay information is used to indicate whether the target hybrid automatic repeat request HARQ can delay transmission, and the UE is used to partially overlap the first uplink resource and the second uplink resource in the time domain, and The delay information indicates that when the target HARQ is capable of delaying transmission, the target HARQ is multiplexed onto the second uplink resource for transmission;
  • the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ
  • the second uplink resource is used by the base station to allocate uplink data or target to the UE.
  • the uplink resource of the uplink control information UCI where the target UCI includes a scheduling request SR or channel state information CSI, and the first uplink resource is located before the second uplink resource in the time domain.
  • an information transmission system comprising the information transmission device according to any of the above third aspects, and the information transmission device according to any of the above fourth aspects.
  • a computer readable storage medium having stored therein a computer program, the stored computer program being executable by a processing component capable of implementing the first aspect as described above Any of the described information transmission methods; or,
  • the stored computer program can be implemented by the processing component to implement the information transmission method according to any of the above second aspects.
  • the target HARQ is multiplexed onto the second uplink resource for transmission, so that the PUCCH for transmitting the HARQ can be resolved. How the UE transmits the HARQ problem when the other PUCCH or PUSCH partially overlaps in the time domain.
  • FIG. 1 is a schematic diagram of an implementation environment, according to an exemplary embodiment.
  • FIG. 2 is a flowchart of an information transmission method according to an exemplary embodiment.
  • FIG. 3 is a flowchart of an information transmission method according to an exemplary embodiment.
  • FIG. 4 is a flowchart of an information transmission method according to an exemplary embodiment.
  • FIG. 5 is a block diagram of an information transmission apparatus according to an exemplary embodiment.
  • FIG. 6 is a block diagram of an information transmission apparatus according to an exemplary embodiment.
  • FIG. 7 is a block diagram of an information transmission apparatus according to an exemplary embodiment.
  • FIG. 8 is a block diagram of an information transmission apparatus according to an exemplary embodiment.
  • FIG. 9 is a block diagram of an information transmission apparatus according to an exemplary embodiment.
  • FIG. 10 is a block diagram of an information transmission system, according to an exemplary embodiment.
  • a UE User Equipment
  • UCI Uplink Control Information
  • the UCI may include a HARQ (Hybrid Automatic Repeat Request) and an SR ( Scheduling Request, scheduling state, and CSI (Channel State Information).
  • HARQ Hybrid Automatic Repeat Request
  • SR Scheduling Request, scheduling state, and CSI
  • the UE may send the UCI to the base station through a PUCCH (Physical Uplink Control Channel), where the base station may perform RRC (Radio Resource Control) signaling for the SR and the CSI.
  • the PUCCH used by the UE to transmit the SR and the CSI is configured.
  • the base station may configure one or more groups of PUCCH resources, and the UE may dynamically select one of the PUCCH resources to transmit the HARQ according to the indication of the base station. .
  • the UE may multiplex multiple UCIs of different types to transmit on one PUCCH, that is, the UE. Multiple UCIs of different types may be encoded and transmitted through one PUCCH. For example, when the first PUCCH for transmitting HARQ allocated by the base station and the second PUCCH for transmitting CSI are completely overlapped in the time domain, that is, when the first PUCCH and the second PUCCH occupy the time domain When the resources are identical, the UE may encode the CSI and the HARQ that should be transmitted through the first PUCCH and then transmit through the second PUCCH.
  • the UE may multiplex the UCI to the PUSCH for transmission. That is, the UE may encode the UCI and the uplink data and transmit it through the PUSCH.
  • the UE may encode the uplink data and the HARQ that should be transmitted through the first PUCCH and then transmit through the PUSCH.
  • the UE can avoid transmitting different frequency domain information in the same time domain, thereby effectively reducing the PAPR (Peak to Average Power Ratio) of the uplink transmission of the UE, and improving the uplink transmission performance of the UE.
  • PAPR Peak to Average Power Ratio
  • An embodiment of the present disclosure provides an information transmission method capable of solving a problem of how a UE transmits HARQ when a PUCCH for transmitting HARQ and other PUCCHs or PUSCHs partially overlap in a time domain.
  • the following describes an implementation environment involved in the information transmission method.
  • the implementation environment may include a base station 10 and a UE 20.
  • the base station 10 and the UE 20 may be connected through a communication network.
  • the UE 20 is any one of the cells served by the base station 10.
  • the communication network may be an LTE (Long Term Evolution) communication network and a 5G (The Fifth Generation Mobile Communication Technology) communication network. Or, other communication networks similar to LTE communication networks or 5G communication networks.
  • FIG. 2 is a flowchart of an information transmission method according to an exemplary embodiment.
  • the information transmission method is used in the UE 20 shown in FIG. 1. As shown in FIG. 2, the information transmission method may include the following steps.
  • Step 201 When the first uplink resource and the second uplink resource partially overlap in the time domain, and the target HARQ can delay transmission, the UE multiplexes the target HARQ to the second uplink resource for transmission.
  • the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ
  • the second uplink resource is an uplink resource allocated by the base station to the UE for transmitting the uplink data or the target UCI, where the target UCI includes the SR or the CSI.
  • the first uplink resource is located before the second uplink resource in the time domain.
  • the information transmission method provided by the embodiment of the present disclosure multiplexes the target HARQ to the second when the first uplink resource and the second uplink resource partially overlap in the time domain and the target HARQ can delay transmission.
  • the uplink resource is transmitted, and thus, the problem of how the UE transmits HARQ when the PUCCH for transmitting the HARQ and the other PUCCH or the PUSCH partially overlap in the time domain can be solved.
  • FIG. 3 is a flowchart of an information transmission method according to an exemplary embodiment.
  • the information transmission method is used in the base station 10 shown in FIG. 1. As shown in FIG. 3, the information transmission method may include the following steps.
  • Step 301 The base station sends delay information to the UE, where the delay information is used to indicate whether the target HARQ can delay transmission.
  • the UE is configured to partially overlap the first uplink resource and the second uplink resource in the time domain, and the delay information indicates that the target HARQ can delay transmission, and the target HARQ is multiplexed to the second uplink resource for transmission.
  • the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ
  • the second uplink resource is an uplink resource allocated by the base station to the UE for transmitting the uplink data or the target UCI, where the target UCI includes the SR or the CSI.
  • the first uplink resource is located before the second uplink resource in the time domain.
  • the base station sends, to the UE, delay information indicating whether the target HARQ can delay transmission, so that the UE is in the time domain of the first uplink resource and the second uplink resource.
  • the target HARQ is multiplexed onto the second uplink resource for transmission, so that when the PUCCH for transmitting the HARQ and the other PUCCH or PUSCH are partially overlapped in the time domain, How the UE transmits the HARQ problem.
  • FIG. 4 is a flowchart of an information transmission method according to an exemplary embodiment.
  • the information transmission method is used in the implementation environment shown in FIG. 1. As shown in FIG. 4, the information transmission method may include the following steps.
  • Step 401 The UE determines whether the first uplink resource and the second uplink resource partially overlap in the time domain.
  • the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ, where the target HARQ is used to indicate whether the UE correctly receives the target downlink data sent by the base station.
  • the first uplink resource may be a PUCCH.
  • the base station may configure one or more groups of PUCCH resources for transmitting the HARQ, and the base station may dynamically indicate the UE, so that the UE determines according to the indication of the base station. Which PUCCH of a group of PUCCH resources is the first uplink resource allocated by the base station to the UE.
  • the second uplink resource is an uplink resource allocated by the base station to the UE for transmitting uplink data or a target UCI, where the target UCI includes an SR or a CSI.
  • the second uplink resource when the second uplink resource is a resource for transmitting the uplink data, the second uplink resource may be a PUSCH, and when the second uplink resource is a resource used for transmitting the target UCI, the second uplink resource may be PUCCH.
  • the base station may allocate the second uplink resource to the UE by using the RRC signaling.
  • the base station may allocate the second uplink resource to the UE according to the request of the UE.
  • the first uplink resource is located before the second uplink resource in the time domain, that is, the first symbol (English: symbol) occupied by the first uplink resource is located in the time domain.
  • the second symbol is occupied by the first symbol before the first symbol.
  • the partial overlap of the first uplink resource and the second uplink resource in the time domain means that the time domain resource occupied by the first uplink resource and the time domain resource part occupied by the second uplink resource are the same.
  • the time domain resource occupied by the first uplink resource may be the time slot a, the time slot b, and the time slot c
  • the time domain resource occupied by the second uplink resource may be the time slot c and the time slot d
  • the first uplink resource is occupied.
  • a part of the time domain resource is the same as a part of the time domain resource occupied by the second uplink resource, and the same part is the time slot c, and then the first uplink resource and the second uplink resource partially overlap in the time domain.
  • the UE may determine, by the base station, the configuration of the first uplink resource and the second uplink resource, whether the first uplink resource and the second uplink resource partially overlap in the time domain.
  • Step 402 When the first uplink resource and the second uplink resource partially overlap in the time domain, the UE determines whether the target HARQ can delay transmission.
  • the UE may multiplex the target HARQ and the uplink data, or the target HARQ and the target UCI to one of the first uplink resource and the second uplink resource.
  • the transmission is performed on the resource, so that the UE can further prevent the UE from transmitting different frequency domain information in the same time domain, thereby further reducing the PAPR transmitted by the UE and improving the uplink transmission performance of the UE.
  • the UE In the process of multiplexing the target HARQ and the uplink data, or the target HARQ and the target UCI to one uplink resource, the UE needs to determine whether the target HARQ can delay the transmission, so as to determine that the target needs to be determined according to the determination result in the subsequent step.
  • the HARQ and the uplink data, or the target HARQ and the target UCI are multiplexed to which of the first uplink resource and the second uplink resource for transmission. This is because, in a certain communication service, the base station needs to receive the HARQ for the certain downlink data sent by the UE, and determines that the UE correctly receives the downlink data according to the HARQ, and then continues to the UE.
  • the other downlink data of the communication service is sent.
  • the UE needs to determine whether the target HARQ can delay transmission, so as to determine, according to the determination result, that the target HARQ and the uplink data, or the target HARQ and the target UCI need to be multiplexed to the first uplink resource and Which uplink resource in the second uplink resource is transmitted.
  • the first uplink resource may be used to transmit multiple target HARQs, and each target HARQ may correspond to one target downlink data, and each target HARQ is used to indicate whether the corresponding target downlink data is correctly received by the UE.
  • the UE needs to determine whether each target HARQ can delay transmission.
  • the embodiments of the present disclosure provide four optional ways for the UE to determine whether the target HARQ can delay transmission.
  • the four embodiments of the present disclosure will be described one by one:
  • the UE receives the delay information sent by the base station, and determines whether the target HARQ can delay the transmission according to the indication of the delay information.
  • the base station may send the delay information in different manners.
  • the embodiment of the disclosure provides an optional manner for the three base stations to send the delay information:
  • the base station sends delay information through the system broadcast message.
  • the base station may broadcast a system broadcast message, which may include delay information, wherein the delay information may explicitly indicate whether the target HARQ can delay transmission, or implicitly indicate whether the target HARQ can delay transmission.
  • the UE may receive the system broadcast message and may determine whether the target HARQ can delay transmission according to the indication of the delay information in the current system broadcast message.
  • the base station sends delay information through RRC signaling.
  • the base station may send RRC signaling to the UE, where the RRC signaling may include delay information.
  • the delay information may explicitly indicate whether the target HARQ can delay transmission, or implicitly indicate whether the target HARQ can delay transmission.
  • the base station can semi-statically indicate through the RRC signaling whether the target HARQ can delay transmission.
  • the UE may receive the RRC signaling sent by the base station, and may determine, according to the indication of the delay information in the RRC signaling, whether the target HARQ can delay transmission.
  • the base station sends delay information through the DCI.
  • the delay information may be a HARQ process identifier.
  • the base station may send the HARQ process identifier to the UE by using the first DCI, where the first DCI is used to schedule the target downlink data, where the first DCI includes the HARQ process identifier, and the HARQ process identifier included in the first DCI is used to indicate The HARQ process to which the target HARQ belongs.
  • the UE may be configured with multiple HARQ processes (up to 16 HARQ processes may be configured), and the UE may perform multiple HARQ transmissions in parallel through the configured multiple HARQ processes.
  • Each of the HARQ processes may be indicated by a unique one of the HARQ process identifiers, and the base station may send the target identifier set to the UE by using RRC signaling, where the target identifier set may be an empty set or may not be an empty set.
  • the target identifier set may include at least one process identifier, where each process identifier may be an identifier of a HARQ process that the HARQ can delay transmission.
  • the UE may determine whether the target HARQ can delay transmission by determining whether the HARQ process identifier included in the first DCI belongs to the target identifier set, wherein when the HARQ process identifier included in the first DCI belongs to the target identifier set, the UE determines that the target HARQ can Delayed transmission, when the HARQ process identifier included in the first DCI does not belong to the target identity set, the UE determines that the target HARQ cannot delay transmission.
  • the delay information may be first time interval indication information.
  • the base station may send the first time interval indication information to the UE by using the second DCI, where the second DCI is used to schedule the target downlink data, and the second DCI includes the first time interval indication information, where the first time interval indication information is used. And indicating an interval of the second DCI from the target downlink data in the time domain.
  • the interval between the DCI for scheduling downlink data and the scheduled downlink data is often small in the time domain.
  • the target downlink data of the second DCI scheduling is likely to be data of a communication service with a relatively high delay requirement.
  • the target HARQ delay transmission is generally not allowed, and therefore, the UE can determine that the target HARQ cannot delay the transmission.
  • the target downlink data of the second DCI scheduling is likely not the data of the communication service with higher delay requirement, in which case, The target HARQ can generally be allowed to delay transmission, so at this point the UE can determine that the target HARQ can delay transmission.
  • the UE may obtain the first time interval indication information corresponding to each target HARQ, and then the UE may obtain the multiple first time interval indication information from the acquired.
  • the first maximum time interval indication information and the first minimum time interval indication information are determined, wherein the interval indicated by the first maximum time interval indication information is the largest, and the interval indicated by the first minimum time interval indication information is the smallest.
  • the UE may determine whether the interval indicated by the first maximum time interval indication information is less than or equal to the first preset interval threshold, and when the interval indicated by the first maximum time interval indication information is less than or equal to the first preset interval threshold, The UE may determine that each of the plurality of target HARQs cannot delay transmission, and the UE may determine whether the interval indicated by the first minimum time interval indication information is greater than a first preset interval threshold, when the first minimum interval is When the interval indicated by the indication information is greater than the first preset interval threshold, the UE may determine that each of the plurality of target HARQs can delay transmission.
  • the foregoing first preset interval threshold may be configured by the base station, or may be specified by a communication protocol, and may also be configured by a high layer of the UE, where the upper layer of the UE may be the RRC layer or the MAC of the UE (The media access control, the media intervention control layer, and the like are not specifically limited in the embodiment of the present disclosure.
  • the foregoing first time interval indication information may be located in a time domain resource allocation domain of the second DCI, where the first time interval indication information may occupy three bits, and the first time interval indication information may indicate 8 different types.
  • the time domain interval may be a number of time slots.
  • the time interval indicated by the first time interval indication information may be 1 time slot, 2 time slots, or 5 time slots.
  • the delay information may be second time interval indication information.
  • the base station may send the second time interval indication information to the UE by using the third DCI, where the third DCI is used to schedule the target downlink data, and the third DCI includes the second time interval indication information, where the second time interval indication information is used.
  • the downlink data and the HARQ for indicating whether the downlink data is correctly received by the UE are often spaced in the time domain.
  • the target downlink data of the third DCI scheduling is likely to be data of a communication service with a relatively high delay requirement.
  • the target HARQ delay transmission is generally not allowed, and therefore, the UE can determine that the target HARQ cannot delay the transmission.
  • the target downlink data of the third DCI scheduling is likely not the data of the communication service with higher delay requirement, in which case, The target HARQ can generally be allowed to delay transmission, so at this point the UE can determine that the target HARQ can delay transmission.
  • the UE may obtain the second time interval indication information corresponding to each target HARQ, and then the UE may obtain the multiple second time interval indication information.
  • the second maximum time interval indication information and the second minimum time interval indication information are determined, wherein the interval indicated by the second maximum time interval indication information is the largest, and the interval indicated by the second minimum time interval indication information is the smallest.
  • the UE may determine whether the interval indicated by the second maximum time interval indication information is less than or equal to the second preset interval threshold, and when the interval indicated by the second maximum time interval indication information is less than or equal to the second preset interval threshold, The UE may determine that each of the plurality of target HARQs cannot delay transmission, and the UE may determine whether the interval indicated by the second minimum time interval indication information is greater than a second preset interval threshold, when the second minimum time interval When the interval indicated by the indication information is greater than the second preset interval threshold, the UE may determine that each of the plurality of target HARQs can delay transmission.
  • the foregoing second preset interval threshold may be configured by the base station, or may be specified by a communication protocol, and may also be configured by a high layer of the UE, where the upper layer of the UE may be the RRC layer or the MAC layer of the UE.
  • the embodiment of the present disclosure does not specifically limit this.
  • the second time interval indication information may occupy two bits, and the second time interval indication information may indicate four different time domain intervals, where the time domain interval may be the number of time slots, that is, The second time interval indication information is used to indicate the number of time slots in which the time slot in which the last symbol occupied by the target downlink data is located is separated from the time slot in which the first symbol occupied by the target HARQ is located.
  • the delay information may include the first time interval indication information and the second time interval indication information.
  • the base station may send the first time interval indication information and the second time interval indication information to the UE by using the fourth DCI, where the fourth DCI is used to schedule the target downlink data, and the fourth DCI includes the first time interval indication information and
  • the second time interval indication information is used to indicate an interval of the fourth DCI from the target downlink data in the time domain, and the second time interval indication information is used to indicate that the target downlink data is in the time domain from the target HARQ. Interval.
  • the UE may determine, according to the size of the sum of the interval indicated by the first time interval indication information and the interval indicated by the second time interval indication information, whether the target HARQ can delay transmission, optionally, when the first time interval indication information indicates When the interval and the interval indicated by the second time interval indication information are less than or equal to the third preset interval threshold, the UE determines that the target HARQ cannot delay transmission, when the interval indicated by the first time interval indication information and the second time interval indication When the sum of the intervals indicated by the information is greater than the third preset interval threshold, the UE determines that the target HARQ can delay the transmission.
  • the UE may acquire the interval indicated by the first time interval indication information corresponding to each target HARQ and the interval indicated by the second time interval indication information. And then, the UE can determine the maximum sum value and the minimum sum value from the obtained plurality of sum values. The UE may determine whether the maximum sum value is less than or equal to a third preset interval threshold. When the maximum sum value is less than or equal to the third preset interval threshold, the UE may determine that each target HARQ in the multiple target HARQs cannot be determined. The UE may determine whether the minimum sum value is greater than a third preset interval threshold, and when the minimum sum value is greater than a third preset interval threshold, the UE may determine that each target HARQ of the multiple target HARQs can be delayed. transmission.
  • the delay information may be length indication information.
  • the base station may send the length indication information to the UE by using the fifth DCI, where the fifth DCI is used to schedule the target downlink data, and the fifth DCI includes the length indication information, where the length indication information is used to indicate that the target downlink data is in the time domain. length.
  • the length of the downlink data in the time domain tends to be small.
  • the target downlink data of the fifth DCI scheduling is likely to be data of a communication service with a relatively high delay requirement, in which case In order to meet the low delay requirement of the communication service, the target HARQ delay transmission is generally not allowed, and therefore, the UE can determine that the target HARQ cannot delay the transmission.
  • the target downlink data of the fifth DCI scheduling is likely not the data of the communication service with higher delay requirement, in which case usually allowed
  • the target HARQ delays transmission, so at this time the UE can determine that the target HARQ can delay transmission.
  • the foregoing first preset length threshold may be configured by a base station, may be specified by a communication protocol, or may be configured by a high layer of the UE, where the upper layer of the UE may be an RRC layer or a MAC layer of the UE.
  • the embodiment of the present disclosure does not specifically limit this.
  • the base station may send the delay information to the UE by using the sixth DCI, where the sixth DCI is used to schedule the target downlink data, and the sixth DCI includes the delay information, where the delay information may be explicitly Indicates whether the target HARQ can delay transmission. For example, the delay information may occupy one bit. When the delay information is "1", it may indicate that the target HARQ can delay transmission. When the delay information is "0", it may indicate that the target HARQ cannot delay transmission.
  • the delay information may further indicate that the target HARQ can delay the maximum delay duration of the transmission.
  • the delay information may occupy two bits. When the delay information is “00”, the target HARQ may not be delayed. When the delay information is “01”, the target HARQ may be delayed, and the delay may be delayed.
  • the maximum delay duration of transmission is A1. When the delay information is "10”, it can indicate that the target HARQ can delay transmission, and the maximum delay duration that can delay transmission is A2.
  • the correspondence between different delay information and the maximum delay duration may be configured by the base station or may be specified by a communication protocol.
  • the other delay information provided by the embodiment of the present disclosure may also indicate that the target HARQ can delay the maximum delay duration of the transmission.
  • the delay information included in the system broadcast message and the delay information included in the RRC signaling can indicate that the target HARQ can be The maximum delay duration for delayed transmission.
  • the base station may additionally send the duration indication information to the UE to indicate the maximum delay duration that the target HARQ can delay transmission.
  • the UE may determine, according to the size of the maximum delay duration, which of the first uplink resource and the second uplink resource to be multiplexed with the target HARQ and the uplink data, or the target HARQ and the target UCI. transmission.
  • the UE may select the second uplink resource to perform multiplexing transmission, where the first uplink resource and the second uplink resource are used.
  • the UE may select the first uplink resource for multiplexing transmission.
  • the interval between the first uplink resource and the second uplink resource in the time domain refers to: the interval between the first symbol of the first uplink resource and the first symbol of the second uplink resource in the time domain, or The interval between the last symbol of an uplink resource and the last symbol of the second uplink resource in the time domain.
  • the UE determines whether the target HARQ can delay transmission by using the time domain resource unit on which the data transmission is based.
  • communication data of a communication service having a relatively high delay requirement usually needs to be transmitted based on a sub-slot (English: mini-slot), wherein the sub-slot can include 2, 4 or 7 symbols.
  • the data transmitted by the UE is likely to be data of a communication service requiring relatively high delay, in which case the target HARQ cannot delay transmission.
  • the data transmitted by the UE is likely not the data of the communication service with higher delay requirement, in which case the target HARQ can delay the transmission.
  • the UE may determine whether it performs data transmission based on the sub-timeslot by:
  • the UE can determine whether it performs data transmission based on the sub-timeslot based on the configuration of the base station.
  • the UE may determine that the data transmission is performed based on the sub-slot. In this case, the UE may determine that the target HARQ cannot delay the transmission, where the first signaling is used to indicate that the UE passes the sub-time.
  • the signaling for data transmission is performed, and the first signaling may be RRC signaling.
  • the UE may determine that the data transmission is based on the time slot. In this case, the UE may determine that the target HARQ can delay the transmission, where the second signaling is used to indicate that the UE performs the time slot. Signaling of data transmission, the second signaling may also be RRC signaling.
  • the UE can determine whether it is based on the sub-timeslot for data transmission based on the time-frequency location of the received DCI.
  • the UE When the UE receives the downlink data transmission scheduling DCI on the target downlink resource, it is determined that the target HARQ cannot delay transmission, and the target downlink resource is not the downlink resource of the scheduling DCI that the UE receives the downlink data transmitted according to the time slot.
  • the UE when the UE performs data transmission based on the time slot, the UE can only receive the DCI in the control domain of the time slot (the UE receives the time-frequency position of the scheduled DCI of the downlink data transmitted according to the time slot), where the time slot
  • the control field typically includes the first few symbols of the time slot (eg, the first 3 symbols). Therefore, when the UE receives the DCI on a downlink resource (for example, a middle symbol of a time slot) other than the control field of the time slot, the UE performs data transmission based on the sub time slot, in which case the UE may Determining the target HARQ cannot delay the transmission.
  • the UE determines whether the target HARQ can delay transmission by using the characteristics of the first uplink resource.
  • the first uplink resource may be a PUCCH.
  • the UE may determine, according to a mode of the first uplink resource (PUCCH), whether the target HARQ can delay transmission.
  • PUCCH first uplink resource
  • the UCI of different modes of PUCCH transmission is different in type, and the number of occupied bits is also different.
  • the PUCCH can be divided into several modes: 1, 1a, 1b, 2, 2a, and 2b, wherein the PUCCH of the mode 1a is used to transmit HARQ, the number of occupied bits is 1, and the PUCCH of the mode 1b is also Used to transmit HARQ, but the number of occupied bits is 2.
  • the protocol of the 5G communication system specifies the mode of the PUCCH in the new generation mobile communication system (refer to the communication standard 3GPP TS 38.211-38.215), wherein some modes of PUCCH are suitable for transmitting communication with relatively high delay requirements.
  • the data of the service for example, mode 0 or mode 2
  • the PUCCH of some modes is suitable for transmitting data of a communication service that is less sensitive to delay, for example, mode 1, mode 3 or mode 4. Therefore, the UE may determine whether the target HARQ can delay transmission according to the mode of the first uplink resource.
  • the mode of the first uplink resource is suitable for transmitting a PUCCH mode of data of a communication service requiring a relatively high delay.
  • the UE determines that the target HARQ cannot delay transmission.
  • the mode of the first uplink resource is a PUCCH mode suitable for transmitting data of a communication service that is not sensitive to delay
  • the UE determines that the target HARQ can delay transmission.
  • the UE may determine, according to the length of the first uplink resource (PUCCH) in the time domain, whether the target HARQ can delay transmission.
  • PUCCH first uplink resource
  • the PUCCH When the length of the PUCCH in the time domain is small, the PUCCH is generally applicable to transmitting data of a communication service requiring relatively high latency, for example, when the PUCCH occupies a length of 2 symbols in the time domain, the PUCCH is suitable for transmission. Data for communication services that require a relatively high latency.
  • the PUCCH in the time domain When the length of the PUCCH in the time domain is large, the PUCCH is generally applicable to transmitting data of a communication service that is less sensitive to delay. For example, when the PUCCH occupies a length of 4 symbols in the time domain, the PUCCH is applicable to Transmit data of communication services that are less sensitive to delay.
  • the UE can determine whether the target HARQ can delay transmission according to the length of the first uplink resource in the time domain.
  • the UE may determine that the target HARQ cannot delay transmission, when the length of the first uplink resource in the time domain is greater than the second pre-
  • the UE can determine that the target HARQ can delay transmission.
  • the foregoing second preset length threshold may be configured by the base station, may be specified by a communication protocol, or may be configured by a high layer of the UE, where the upper layer of the UE may be the RRC layer or the MAC layer of the UE.
  • the embodiment of the present disclosure does not specifically limit this.
  • the UE may determine, according to the number of subcarriers occupied by the first uplink resource (PUCCH) in the frequency domain, whether the target HARQ can delay transmission.
  • PUCCH first uplink resource
  • the number of subcarriers occupied by the different PUCCHs in the frequency domain is usually different.
  • the number of subcarriers occupied by the PUCCH in the frequency domain may be equal to one PRB (Physical Resource Block).
  • the number of subcarriers, the number of subcarriers occupied by some PUCCHs in the frequency domain may be equal to the number of subcarriers occupied by 16 PRBs.
  • the capacity of the first uplink resource is small.
  • the first uplink resource is generally difficult to fully accommodate the target UCI
  • the capacity of the second uplink resource, especially the second uplink resource used for transmitting CSI or uplink data is generally smaller.
  • the second uplink resource can usually accommodate the target HARQ. Therefore, in this case, the target HARQ may be selected to be delayed to transmit the target HARQ and the uplink data, or the target HARQ and the target UCI to the second. Transmission on the uplink resource.
  • the first uplink is used.
  • the capacity of the resource is large. In this case, it is generally possible to choose not to delay the transmission of the target HARQ to multiplex the target HARQ and the target UCI to the first uplink resource for transmission.
  • the foregoing preset number threshold may be configured by the base station, may be specified by a communication protocol, or may be configured by a high layer of the UE, where the upper layer of the UE may be an RRC layer or a MAC layer of the UE, The embodiment of the present disclosure does not specifically limit this.
  • the UE determines whether the target HARQ can delay transmission by using internal high layer signaling.
  • the upper layer of the UE can identify the logical channel identifier of the different communication data, and can determine the communication service corresponding to the different communication data according to the identifier of the logical channel.
  • the upper layer of the UE may determine, according to the identifier of the logical channel, the type of the communication service corresponding to the communication data, to generate the internal high layer signaling accordingly, and indicate whether the target HARQ can be delayed by the internal high layer signaling.
  • the upper layer of the UE may generate the first internal high-layer signaling.
  • the physical layer of the UE receives the first internal high layer signaling, it may be determined that the target HARQ cannot delay the transmission.
  • the upper layer of the UE may generate the second internal high layer signaling, when the physical layer of the UE receives the second internal high layer signaling. It can be determined that the target HARQ can delay transmission.
  • Step 403 When the target HARQ can delay transmission, the UE multiplexes the target HARQ to the second uplink resource for transmission.
  • the UE may transmit the target HARQ and uplink data through the second uplink resource, or the UE may transmit the target HARQ and the target UCI through the second uplink resource.
  • the UE needs to multiplex the multiple target HARQs onto the second uplink resource for transmission when it is determined that each target HARQ can delay transmission.
  • the UE may multiplex the target UCI to transmit on the first uplink resource, that is, the UE may transmit the target UCI and the target HARQ through the first uplink resource.
  • the uplink data cannot be transmitted through the PUCCH, that is, the uplink data cannot be transmitted through the first uplink resource. Therefore, when the target HARQ cannot delay the transmission, the UE needs to discard the uplink data and transmit the target HARQ through the first uplink resource.
  • the UE since the capacity of the uplink resource for transmitting the HARQ is usually small, when the target HARQ cannot delay the transmission, if the capacity of the first uplink resource is insufficient to accommodate the target UCI and the target HARQ, the UE needs to discard the target UCI. And transmitting the target HARQ through the first uplink resource.
  • the UE may directly discard the uplink data and the target UCI, and transmit the target HARQ through the first uplink resource.
  • the information transmission method provided by the embodiment of the present disclosure multiplexes the target HARQ to the second when the first uplink resource and the second uplink resource partially overlap in the time domain and the target HARQ can delay transmission.
  • the uplink resource is transmitted, and thus, the problem of how the UE transmits HARQ when the PUCCH for transmitting the HARQ and the other PUCCH or the PUSCH partially overlap in the time domain can be solved.
  • FIG. 5 is a block diagram of an information transmission apparatus 500, which may be the UE 20 shown in FIG. 1, according to an exemplary embodiment.
  • the information transmission device 500 includes a first transmission module 501.
  • the first transmission module 501 is configured to partially overlap the first uplink resource and the second uplink resource in the time domain, and when the target HARQ can delay transmission, multiplex the target HARQ to the second uplink resource for transmission. .
  • the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ
  • the second uplink resource is an uplink resource allocated by the base station to the UE for transmitting uplink data or target UCI
  • the target The UCI includes an SR or a CSI
  • the first uplink resource is located before the second uplink resource in the time domain.
  • the first uplink resource is used to transmit a plurality of the target HARQ
  • the first transmission module 501 includes a first multiplex submodule.
  • the first multiplex sub-module is configured to: when the first uplink resource and the second uplink resource partially overlap in the time domain, and each of the target HARQs can delay transmission, recover the multiple target HARQs Used for transmission on the second uplink resource.
  • the first transmission module 501 includes an acquisition submodule and a second multiplexing submodule.
  • the obtaining submodule is configured to: when the first uplink resource and the second uplink resource partially overlap in the time domain, and the target HARQ can delay transmission, obtain a maximum delay duration that the target HARQ can delay transmission;
  • the second multiplex sub-module is configured to multiplex the target HARQ to the second uplink resource when the interval of the second uplink resource in the time domain from the first uplink resource is less than or equal to the maximum delay duration transmission.
  • an embodiment of the present disclosure further provides another information transmission device 600.
  • the information transmission device 600 includes a determination module 502 and a second transmission module 503 in addition to the modules included in the information transmission device 500.
  • the determining module 502 is configured to determine whether the target HARQ can delay transmission.
  • the second transmission module 503 is configured to: when the first uplink resource and the second uplink resource partially overlap in the time domain, and the target HARQ cannot delay transmission, the target UCI is reused. Transfer to the first uplink resource.
  • the determining module 502 includes a first receiving submodule and a first determining submodule.
  • the first receiving submodule is configured to receive delay information sent by the base station, where the delay information is used to indicate whether the target HARQ can delay transmission;
  • the first determining submodule is configured to determine, according to the delay information, whether the target HARQ can delay transmission.
  • the first receiving submodule is configured to receive a system broadcast message sent by the base station, where the system broadcast message includes the delay information.
  • the first receiving submodule is configured to receive RRC signaling sent by the base station, where the RRC signaling includes the delay information.
  • the delay information is a HARQ process identifier
  • the HARQ process identifier is used to indicate a HARQ process to which the target HARQ belongs.
  • the first receiving submodule is configured to receive a first DCI sent by the base station, where the first DCI is used to schedule target downlink data, where the target HARQ is used to indicate whether the target downlink data is correctly received by the UE, the first DCI Including the HARQ process identifier;
  • the first determining sub-module is configured to: when the HARQ process identifier belongs to the target identifier set, determine that the target HARQ can delay transmission, and each of the process identifiers included in the target identifier set is an identifier of a HARQ process that the HARQ can delay transmission; When the HARQ process identifier does not belong to the target identity set, it is determined that the target HARQ cannot delay transmission.
  • the delay information is first time interval indication information, where the first time interval indication information is used to indicate an interval of the second DCI from the target downlink data in the time domain, and the second DCI is used for The target downlink data is scheduled, and the target HARQ is used to indicate whether the target downlink data is correctly received by the UE.
  • the first receiving submodule is configured to receive the second DCI sent by the base station, where the second DCI includes the first time interval indication information;
  • the first determining sub-module is configured to: when the interval indicated by the first time interval indication information is less than or equal to the first preset interval threshold, determine that the target HARQ cannot delay transmission; when the first time interval indication information indicates When the interval is greater than the first preset interval threshold, it is determined that the target HARQ can delay transmission.
  • the delay information is second time interval indication information, where the second time interval indication information is used to indicate an interval of target downlink data in the time domain from the target HARQ, where the target HARQ is used to indicate Whether the UE correctly receives the target downlink data.
  • the first receiving submodule is configured to receive a third DCI sent by the base station, where the third DCI is used to schedule the target downlink data, where the third DCI includes the second time interval indication information;
  • the first determining sub-module is configured to determine that the target HARQ cannot delay transmission when the interval indicated by the second time interval indication information is less than or equal to a second preset interval threshold; when the second time interval indication information indicates When the interval is greater than the second preset interval threshold, it is determined that the target HARQ can delay transmission.
  • the delay information includes first time interval indication information and second time interval indication information, where the first time interval indication information is used to indicate an interval of the fourth DCI from the target downlink data in the time domain.
  • the second time interval indication information is used to indicate that the target downlink data is in the time domain from the target HARQ
  • the fourth DCI is used to schedule the target downlink data, where the target HARQ is used to indicate whether the UE correctly receives the The target downlink data.
  • the first receiving submodule is configured to receive the fourth DCI sent by the base station, where the fourth DCI includes the first time interval indication information and the second time interval indication information;
  • the first determining sub-module is configured to determine the target HARQ when a sum of an interval indicated by the first time interval indication information and an interval indicated by the second time interval indication information is less than or equal to a third preset interval threshold The transmission cannot be delayed; when the sum of the interval indicated by the first time interval indication information and the interval indicated by the second time interval indication information is greater than the third preset interval threshold, it is determined that the target HARQ can delay transmission.
  • the delay information is length indication information, where the length indication information is used to indicate the length of the target downlink data in the time domain, and the target HARQ is used to indicate whether the target downlink data is correctly received by the UE. .
  • the first receiving submodule is configured to receive a fifth DCI sent by the base station, where the fifth DCI is used to schedule the target downlink data, where the fifth DCI includes the length indication information;
  • the first determining sub-module is configured to: when the length indicated by the length indication information is less than or equal to the first preset length threshold, determine that the target HARQ cannot delay transmission; when the length indicated by the length indication information is greater than the first When the length threshold is preset, it is determined that the target HARQ can delay transmission.
  • the first receiving submodule is configured to receive a sixth DCI sent by the base station, where the sixth DCI is used to schedule target downlink data, where the target HARQ is used to indicate whether the UE is correctly received.
  • the target downlink data, the sixth DCI includes the delay information.
  • the delay information is further used to indicate that the target HARQ can delay the maximum delay duration of the transmission.
  • the determining module 502 includes a second determining sub-module.
  • the second determining sub-module is configured to determine that the target HARQ cannot delay transmission when the UE performs data transmission through the sub-slot; and determine that the target HARQ can delay transmission when the UE performs data transmission through the time slot.
  • the second determining submodule is configured to: when receiving the first signaling sent by the base station, determine that the target HARQ cannot delay transmission, where the first signaling is used to indicate the UE Data transmission is performed by using a sub-slot; when receiving the second signaling sent by the base station, determining that the target HARQ can delay transmission, the second signaling is used to indicate that the UE performs data transmission by using a time slot.
  • the second determining submodule is configured to: when the UE receives the downlink data transmission scheduling DCI on the target downlink resource, determine that the target HARQ cannot delay transmission, and the target downlink resource is not received by the UE according to the UE.
  • the first uplink resource is a PUCCH
  • the determining module 502 includes a first determining submodule and a third determining submodule.
  • a first determining submodule configured to determine a mode of the PUCCH
  • the third determining submodule is configured to determine, according to the mode of the PUCCH, whether the target HARQ can delay transmission.
  • the first uplink resource is a PUCCH
  • the determining module 502 includes a second determining submodule and a fourth determining submodule.
  • the second determining submodule is configured to determine a length of the PUCCH in a time domain
  • the fourth determining submodule is configured to determine that the target HARQ cannot delay transmission when the length of the PUCCH in the time domain is less than or equal to a second preset length threshold; when the length of the PUCCH in the time domain is greater than the second When the length threshold is preset, it is determined that the target HARQ can delay transmission.
  • the first uplink resource is a PUCCH
  • the determining module 502 includes a third determining submodule and a fifth determining submodule.
  • the third determining submodule is configured to determine the number of subcarriers occupied by the PUCCH in the frequency domain;
  • the fifth determining sub-module is configured to determine that the target HARQ can delay transmission when the number of subcarriers occupied by the PUCCH in the frequency domain is less than or equal to a preset threshold; when the PUCCH is occupied in the frequency domain, When the number of subcarriers is greater than the preset number threshold, it is determined that the target HARQ cannot delay transmission.
  • the determining module 502 includes a sixth determining sub-module.
  • the sixth judging submodule is configured to: when the first internal high layer signaling is received, determine that the target HARQ cannot delay transmission, where the first internal high layer signaling is that the communication service corresponding to the target downlink data of the UE is low. When the service is delayed, the target HARQ is used to indicate whether the UE correctly receives the target downlink data; when the second internal high layer signaling is received, it is determined that the target HARQ can delay transmission, and the second internal high layer signaling is The upper layer of the UE is generated when the communication service corresponding to the target downlink data is not a low delay service.
  • the information transmission apparatus multiplexes the target HARQ to the second when the first uplink resource and the second uplink resource partially overlap in the time domain, and the target HARQ can delay transmission.
  • the uplink resource is transmitted, and thus, the problem of how the UE transmits HARQ when the PUCCH for transmitting the HARQ and the other PUCCH or the PUSCH partially overlap in the time domain can be solved.
  • FIG. 7 is a block diagram of an information transmission apparatus 700, which may be the base station 10 shown in FIG. 1, according to an exemplary embodiment.
  • the information transmission device 700 includes a transmission module 701.
  • the sending module 701 is configured to send delay information to the UE, where the delay information is used to indicate whether the target HARQ can delay transmission, and the UE is configured to partially overlap the first uplink resource and the second uplink resource in the time domain, and the delay The information indicates that the target HARQ can delay transmission, and the target HARQ is multiplexed onto the second uplink resource for transmission.
  • the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ
  • the second uplink resource is an uplink resource allocated by the base station to the UE for transmitting uplink data or target UCI
  • the target UCI includes an SR or a CSI
  • the first uplink resource is located before the second uplink resource in the time domain.
  • the transmitting module 701 includes a first transmitting submodule.
  • the first sending submodule is configured to send a system broadcast message to the UE, where the system broadcast message includes the delay information.
  • the sending module 701 includes a second sending submodule.
  • the second sending submodule is configured to send RRC signaling to the UE, where the RRC signaling includes the delay information.
  • the delay information is a HARQ process identifier
  • the HARQ process identifier is used to indicate a HARQ process to which the target HARQ belongs
  • the sending module 701 includes a third sending submodule.
  • the third sending submodule is configured to send a first DCI to the UE, where the first DCI is used to schedule target downlink data, where the target HARQ is used to indicate whether the target downlink data is correctly received by the UE, where the first DCI includes The HARQ process identifier; wherein, when the HARQ process identifier belongs to the target identifier set, the HARQ process identifier indicates that the target HARQ can delay transmission, and each of the process identifiers included in the target identifier set is a HARQ process that the HARQ can delay transmission And when the HARQ process identifier does not belong to the target identity set, the HARQ process identifier indicates that the target HARQ cannot delay transmission.
  • the transmitting module 701 includes a fourth transmitting submodule.
  • the fourth sending submodule is configured to send a sixth DCI to the UE, where the sixth DCI is used to schedule target downlink data, where the target HARQ is used to indicate whether the target downlink data is correctly received by the UE, where the sixth DCI includes The delay information.
  • the delay information is further used to indicate that the target HARQ can delay the maximum delay duration of the transmission.
  • the information transmission apparatus partially delays the first uplink resource and the second uplink resource in the time domain by transmitting delay information indicating whether the target HARQ can delay transmission to the UE. And the delay information indicates that the target HARQ can delay transmission, and the target HARQ is multiplexed to the second uplink resource for transmission, so that the UE can be resolved when the PUCCH for transmitting the HARQ and the other PUCCH or the PUSCH partially overlap in the time domain. How to transfer HARQ issues.
  • FIG. 8 is a block diagram of an information transmission device 800, according to an exemplary embodiment.
  • device 800 can be a mobile phone, a computer, a digital broadcast terminal, a messaging device, a gaming console, a tablet device, a medical device, a fitness device, a personal digital assistant, and the like.
  • device 800 can include one or more of the following components: processing component 802, memory 804, power component 806, multimedia component 808, audio component 810, input/output (I/O) interface 812, sensor component 814, And a communication component 816.
  • Processing component 802 typically controls the overall operation of device 800, such as operations associated with display, telephone calls, data communications, camera operations, and recording operations.
  • Processing component 802 can include one or more processors 820 to execute instructions to perform all or part of the steps performed by UE 20 in the method embodiments described above.
  • processing component 802 can include one or more modules to facilitate interaction between component 802 and other components.
  • processing component 802 can include a multimedia module to facilitate interaction between multimedia component 808 and processing component 802.
  • Memory 804 is configured to store various types of data to support operation at device 800. Examples of such data include instructions for any application or method operating on device 800, contact data, phone book data, messages, pictures, videos, and the like.
  • the memory 804 can be implemented by any type of volatile or non-volatile storage device, or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read only memory (EEPROM), erasable.
  • SRAM static random access memory
  • EEPROM electrically erasable programmable read only memory
  • EPROM Electrically erasable programmable read only memory
  • PROM Programmable Read Only Memory
  • ROM Read Only Memory
  • Magnetic Memory Flash Memory
  • Disk Disk or Optical Disk.
  • Power component 806 provides power to various components of device 800.
  • Power component 806 can include a power management system, one or more power sources, and other components associated with generating, managing, and distributing power for device 800.
  • the multimedia component 808 includes a screen between the device 800 and the user that provides an output interface.
  • the screen can include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen can be implemented as a touch screen to receive input signals from the user.
  • the touch panel includes one or more touch sensors to sense touches, slides, and gestures on the touch panel. The touch sensor may sense not only the boundary of the touch or sliding action, but also the duration and pressure associated with the touch or slide operation.
  • the multimedia component 808 includes a front camera and/or a rear camera. When the device 800 is in an operation mode, such as a shooting mode or a video mode, the front camera and/or the rear camera can receive external multimedia data. Each front and rear camera can be a fixed optical lens system or have focal length and optical zoom capabilities.
  • the audio component 810 is configured to output and/or input an audio signal.
  • the audio component 810 includes a microphone (MIC) that is configured to receive an external audio signal when the device 800 is in an operational mode, such as a call mode, a recording mode, and a voice recognition mode.
  • the received audio signal may be further stored in memory 804 or transmitted via communication component 816.
  • the audio component 810 also includes a speaker for outputting an audio signal.
  • the I/O interface 812 provides an interface between the processing component 802 and the peripheral interface module, which may be a keyboard, a click wheel, a button, or the like. These buttons may include, but are not limited to, a home button, a volume button, a start button, and a lock button.
  • Sensor assembly 814 includes one or more sensors for providing device 800 with a status assessment of various aspects.
  • sensor assembly 814 can detect an open/closed state of device 800, relative positioning of components, such as the display and keypad of device 800, and sensor component 814 can also detect a change in position of one component of device 800 or device 800. The presence or absence of user contact with device 800, device 800 orientation or acceleration/deceleration, and temperature variation of device 800.
  • Sensor assembly 814 can include a proximity sensor configured to detect the presence of nearby objects without any physical contact.
  • Sensor assembly 814 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications.
  • the sensor assembly 814 can also include an acceleration sensor, a gyro sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
  • Communication component 816 is configured to facilitate wired or wireless communication between device 800 and other devices.
  • Device 800 can access a wireless network based on a communication standard, such as WiFi, 2G or 3G, or a combination thereof.
  • the communication component 816 receives broadcast signals or broadcast associated information from an external broadcast management system via a broadcast channel.
  • the communication component 816 also includes a near field communication (NFC) module to facilitate short range communication.
  • NFC near field communication
  • the NFC module can be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology, and other technologies.
  • RFID radio frequency identification
  • IrDA infrared data association
  • UWB ultra-wideband
  • Bluetooth Bluetooth
  • device 800 may be implemented by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable A gate array (FPGA), controller, microcontroller, microprocessor or other electronic component implementation is used to perform the technical processes performed by the UE 20 in the above method embodiments.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGA field programmable A gate array
  • controller microcontroller, microprocessor or other electronic component implementation is used to perform the technical processes performed by the UE 20 in the above method embodiments.
  • non-transitory computer readable storage medium comprising instructions, such as a memory 804 comprising instructions executable by processor 820 of apparatus 800 to perform UE 20 in the above method embodiments The technical process of execution.
  • the non-transitory computer readable storage medium may be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, and an optical data storage device.
  • FIG. 9 is a block diagram of an information transmission device 900, according to an exemplary embodiment.
  • the information transmission device 900 may be a base station.
  • the information transmission device 900 may include a processor 901, a receiver 902, a transmitter 903, and a memory 904.
  • Receiver 902, transmitter 903, and memory 904 are coupled to processor 901 via a bus, respectively.
  • the processor 901 includes one or more processing cores, and the processor 901 executes the method executed by the base station in the information transmission method provided by the embodiment of the present disclosure by running a software program and a module.
  • Memory 904 can be used to store software programs as well as modules. Specifically, the memory 904 can store an application module 9042 required by the operating system 9041 and at least one function.
  • the receiver 902 is configured to receive communication data transmitted by other devices, and the transmitter 903 is configured to transmit communication data to other devices.
  • FIG. 10 is a block diagram of an information transmission system 1000 according to an exemplary embodiment. As shown in FIG. 10, the information transmission system 1000 includes a base station 1001 and a UE 1002.
  • the base station 1001 is configured to perform the information transmission method performed by the base station in the embodiment shown in FIG.
  • the UE 1002 is configured to perform an information transmission method performed by the UE in the embodiment shown in FIG.
  • a computer readable storage medium which is a non-transitory computer readable storage medium having stored therein a computer program, stored
  • the information transmission method may be: when the first uplink resource and the second uplink resource partially overlap in the time domain, and the target HARQ can delay transmission,
  • the target uplink HARQ is multiplexed to the second uplink resource, where the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ, and the second uplink resource is allocated to the UE by the base station.
  • the information transmission method may be: sending delay information to the UE, where the delay information is used to indicate whether the target HARQ can delay transmission, and the UE is configured to partially overlap the first uplink resource and the second uplink resource in the time domain, and The delay information indicates that the target HARQ is capable of delaying transmission, and multiplexing the target HARQ to the second uplink resource, where the first uplink resource is an uplink resource allocated by the base station to the UE for transmitting the target HARQ.
  • the second uplink resource is an uplink resource allocated by the base station to the UE for transmitting uplink data or a target UCI, where the target UCI includes an SR or a CSI, where the first uplink resource is located in the time domain before the second uplink resource. .

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Abstract

本公开提供了一种信息传输方法、装置、系统及存储介质,属于无线通信领域。方法包括:当第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将目标HARQ复用至第二上行资源上传输;其中,第一上行资源为基站分配给用户设备UE的用于传输目标HARQ的上行资源,第二上行资源为基站分配给UE的用于传输上行数据或目标上行控制信息UCI的上行资源,目标UCI包括调度请求SR或信道状态信息CSI,第一上行资源在时域上位于第二上行资源之前。本公开能够解决用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ的问题。

Description

信息传输方法、装置、系统及存储介质 技术领域
本公开涉及无线通信领域,尤其涉及一种信息传输方法、装置、系统及存储介质。
背景技术
在无线通信系统中,UE(User Equipment,用户设备)需要向基站上报UCI(Uplink Control Information,上行控制信息),其中,UCI可以包括HARQ(Hybrid Automatic Repeat Request,混合自动重传请求)、SR(Scheduling Request,调度请求)和CSI(Channel State Information,信道状态信息),通常情况下,UE可以通过PUCCH(Physical Uplink Control Channel,物理上行链路控制信道)向基站发送UCI。
相关技术中,当基站配置给UE的用于传输不同类型UCI的多个PUCCH在时域上完全重叠时,或者,当基站配置给UE的用于传输UCI的PUCCH和用于传输上行数据的PUSCH(Physical Uplink Shared Channel,物理上行共享信道)在时域上完全重叠时,UE可以将不同类型的多个UCI复用至一个PUCCH上传输,或者,UE可以将UCI复用至PUSCH上传输,这样,可以避免在同一时域上传输不同频域的信息,从而能够有效地降低UE上行发送的PAPR(Peak to Average Power Ratio,峰值平均功率比),提高UE上行传输的性能。
然而,对于多个PUCCH在时域上部分重叠,或者,PUCCH和PUSCH在时域上部分重叠时,UE如何传输UCI目前还没有相关规定,特别是对于用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE 如何传输HARQ是目前亟待解决的问题。
发明内容
本公开提供了一种信息传输方法、装置、系统及存储介质,能够解决用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ的问题。
根据本公开实施例的第一方面,提供一种信息传输方法,包括:
当第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
其中,所述第一上行资源为基站分配给用户设备UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
可选的,所述第一上行资源用于传输多个所述目标HARQ,所述当第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输,包括:
当所述第一上行资源和所述第二上行资源在时域上部分重叠,且每个所述目标HARQ均能够延迟传输时,将所述多个目标HARQ复用至所述第二上行资源上传输。
可选的,所述当第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输,包括:
当所述第一上行资源和所述第二上行资源在时域上部分重叠,且所述目标HARQ能够延迟传输时,获取所述目标HARQ能够延迟传输的最大延迟时长;
当所述第二上行资源在时域上距离所述第一上行资源的间隔小于或等于所述最大延迟时长时,将所述目标HARQ复用至所述第二上行资源上传输。
可选的,所述方法还包括:
当所述第一上行资源和所述第二上行资源在时域上部分重叠,且所述目标HARQ不能延迟传输时,将所述目标UCI复用至所述第一上行资源上传输。
可选的,所述方法还包括:
判断所述目标HARQ是否能够延迟传输。
可选的,所述判断所述目标HARQ是否能够延迟传输,包括:
接收所述基站发送的延迟信息,所述延迟信息用于指示所述目标HARQ是否能够延迟传输;
根据所述延迟信息判断所述目标HARQ是否能够延迟传输。
可选的,所述接收所述基站发送的延迟信息,包括:
接收所述基站发送的系统广播消息,所述系统广播消息包括所述延迟信息。
可选的,所述接收所述基站发送的延迟信息,包括:
接收所述基站发送的无线资源控制RRC信令,所述RRC信令包括所述延迟信息。
可选的,所述延迟信息为HARQ进程标识,所述HARQ进程标识用于指示所述目标HARQ所属的HARQ进程,所述接收所述基站发送的延迟信息,包括:
接收所述基站发送的第一下行控制信息DCI,所述第一DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第一DCI包括所述HARQ进程标识;
所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
当所述HARQ进程标识属于目标标识集合时,确定所述目标HARQ能够延迟传输,所述目标标识集合包括的每个所述进程标识为HARQ能够延迟传 输的HARQ进程的标识;
当所述HARQ进程标识不属于所述目标标识集合时,确定所述目标HARQ不能延迟传输。
可选的,所述判断所述目标HARQ是否能够延迟传输,包括:
当所述UE通过子时隙进行数据传输时,确定所述目标HARQ不能延迟传输;
当所述UE通过时隙进行数据传输时,确定所述目标HARQ能够延迟传输。
可选的,所述当所述UE通过子时隙进行数据传输时,确定所述目标HARQ不能延迟传输,包括:
当接收到所述基站发送的第一信令时,确定所述目标HARQ不能延迟传输,所述第一信令用于指示所述UE通过子时隙进行数据传输;
所述当所述UE通过时隙进行数据传输时,确定所述目标HARQ能够延迟传输,包括:
当接收到所述基站发送的第二信令时,确定所述目标HARQ能够延迟传输,所述第二信令用于指示所述UE通过时隙进行数据传输。
可选的,所述当所述UE通过子时隙进行数据传输时,确定所述目标HARQ不能延迟传输,包括:
当所述UE在目标下行资源上接收到下行数据传输调度DCI时,确定所述目标HARQ不能延迟传输,所述目标下行资源不为所述UE接收按照时隙传输的下行数据的调度DCI的下行资源。
可选的,所述延迟信息为第一时间间隔指示信息,所述第一时间间隔指示信息用于指示第二DCI在时域上距离目标下行数据的间隔,所述第二DCI用于调度所述目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述接收所述基站发送的延迟信息,包括:
接收所述基站发送的所述第二DCI,所述第二DCI包括所述第一时间间隔指示信息;
所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
当所述第一时间间隔指示信息所指示的间隔小于或等于第一预设间隔阈值时,确定所述目标HARQ不能延迟传输;
当所述第一时间间隔指示信息所指示的间隔大于所述第一预设间隔阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述延迟信息为第二时间间隔指示信息,所述第二时间间隔指示信息用于指示目标下行数据在时域上距离所述目标HARQ的间隔,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述接收所述基站发送的延迟信息,包括:
接收所述基站发送的第三DCI,所述第三DCI用于调度所述目标下行数据,所述第三DCI包括所述第二时间间隔指示信息;
所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
当所述第二时间间隔指示信息所指示的间隔小于或等于第二预设间隔阈值时,确定所述目标HARQ不能延迟传输;
当所述第二时间间隔指示信息所指示的间隔大于所述第二预设间隔阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述延迟信息包括第一时间间隔指示信息和第二时间间隔指示信息,所述第一时间间隔指示信息用于指示第四DCI在时域上距离目标下行数据的间隔,所述第二时间间隔指示信息用于指示所述目标下行数据在时域上距离所述目标HARQ的间隔,所述第四DCI用于调度所述目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述接收所述基站发送的延迟信息,包括:
接收所述基站发送的所述第四DCI,所述第四DCI包括所述第一时间间隔指示信息和所述第二时间间隔指示信息;
所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
当所述第一时间间隔指示信息所指示的间隔和所述第二时间间隔指示信 息所指示的间隔之和小于或等于第三预设间隔阈值时,确定所述目标HARQ不能延迟传输;
当所述第一时间间隔指示信息所指示的间隔和所述第二时间间隔指示信息所指示的间隔之和大于所述第三预设间隔阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述延迟信息为长度指示信息,所述长度指示信息用于指示目标下行数据在时域上的长度,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述接收所述基站发送的延迟信息,包括:
接收所述基站发送的第五DCI,所述第五DCI用于调度所述目标下行数据,所述第五DCI包括所述长度指示信息;
所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
当所述长度指示信息所指示的长度小于或等于第一预设长度阈值时,确定所述目标HARQ不能延迟传输;
当所述长度指示信息所指示的长度大于所述第一预设长度阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述接收所述基站发送的延迟信息,包括:
接收所述基站发送的第六DCI,所述第六DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第六DCI包括所述延迟信息。
可选的,所述延迟信息还用于指示所述目标HARQ能够延迟传输的最大延迟时长。
可选的,所述第一上行资源为物理上行链路控制信道PUCCH,所述判断所述目标HARQ是否能够延迟传输,包括:
确定所述PUCCH的模式;
根据所述PUCCH的模式判断所述目标HARQ是否能够延迟传输。
可选的,所述第一上行资源为PUCCH,所述判断所述目标HARQ是否能 够延迟传输,包括:
确定所述PUCCH在时域上的长度;
当所述PUCCH在时域上的长度小于或等于第二预设长度阈值时,确定所述目标HARQ不能延迟传输;
当所述PUCCH在时域上的长度大于所述第二预设长度阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述第一上行资源为PUCCH,所述判断所述目标HARQ是否能够延迟传输,包括:
确定所述PUCCH在频域上占用的子载波的个数;
当所述PUCCH在频域上占用的子载波的个数小于或等于预设个数阈值时,确定所述目标HARQ能够延迟传输;
当所述PUCCH在频域上占用的子载波的个数大于所述预设个数阈值时,确定所述目标HARQ不能延迟传输。
可选的,所述判断所述目标HARQ是否能够延迟传输,包括:
当接收到第一内部高层信令时,确定所述目标HARQ不能延迟传输,所述第一内部高层信令是所述UE的高层在目标下行数据对应的通信业务为低延迟业务时生成的,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据;
当接收到第二内部高层信令时,确定所述目标HARQ能够延迟传输,所述第二内部高层信令是所述UE的高层在所述目标下行数据对应的通信业务不为低延迟业务时生成的。
根据本公开实施例的第二方面,提供一种信息传输方法,包括:
向用户设备UE发送延迟信息,所述延迟信息用于指示目标混合自动重传请求HARQ是否能够延迟传输,所述UE用于在第一上行资源和第二上行资源在时域上部分重叠,且所述延迟信息指示所述目标HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
其中,所述第一上行资源为基站分配给所述UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
可选的,所述向用户设备UE发送延迟信息,包括:
向所述UE发送系统广播消息,所述系统广播消息包括所述延迟信息。
可选的,所述向用户设备UE发送延迟信息,包括:
向所述UE发送RRC信令,所述RRC信令包括所述延迟信息。
可选的,所述延迟信息为HARQ进程标识,所述HARQ进程标识用于指示所述目标HARQ所属的HARQ进程,所述向用户设备UE发送延迟信息,包括:
向所述UE发送第一DCI,所述第一DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第一DCI包括所述HARQ进程标识;
当所述HARQ进程标识属于目标标识集合时,所述HARQ进程标识指示所述目标HARQ能够延迟传输,所述目标标识集合包括的每个所述进程标识为HARQ能够延迟传输的HARQ进程的标识;
当所述HARQ进程标识不属于所述目标标识集合时,所述HARQ进程标识指示所述目标HARQ不能延迟传输。
可选的,所述向用户设备UE发送延迟信息,包括:
向所述UE发送第六DCI,所述第六DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第六DCI包括所述延迟信息。
可选的,所述延迟信息还用于指示所述目标HARQ能够延迟传输的最大延迟时长。
根据本公开实施例的第三方面,提供一种信息传输装置,包括:
第一传输模块,用于在第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
其中,所述第一上行资源为基站分配给用户设备UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
可选的,所述第一上行资源用于传输多个所述目标HARQ,所述第一传输模块包括第一复用子模块;
所述第一复用子模块,用于当所述第一上行资源和所述第二上行资源在时域上部分重叠,且每个所述目标HARQ均能够延迟传输时,将所述多个目标HARQ复用至所述第二上行资源上传输。
可选的,所述第一传输模块包括获取子模块和第二复用子模块;
所述获取子模块,用于当所述第一上行资源和所述第二上行资源在时域上部分重叠,且所述目标HARQ能够延迟传输时,获取所述目标HARQ能够延迟传输的最大延迟时长;
所述第二复用子模块,用于当所述第二上行资源在时域上距离所述第一上行资源的间隔小于或等于所述最大延迟时长时,将所述目标HARQ复用至所述第二上行资源上传输。
可选的,所述信息传输装置还包括第二传输模块;所述第二传输模块,用于当所述第一上行资源和所述第二上行资源在时域上部分重叠,且所述目标HARQ不能延迟传输时,将所述目标UCI复用至所述第一上行资源上传输。
可选的,所述信息传输装置还包括判断模块,所述判断模块,用于:判断所述目标HARQ是否能够延迟传输。
可选的,所述判断模块包括第一接收子模块和第一判断子模块;
所述第一接收子模块,用于接收所述基站发送的延迟信息,所述延迟信息用于指示所述目标HARQ是否能够延迟传输;
所述第一判断子模块,用于根据所述延迟信息判断所述目标HARQ是否能够延迟传输。
可选的,所述第一接收子模块,用于接收所述基站发送的系统广播消息,所述系统广播消息包括所述延迟信息。
可选的,所述第一接收子模块,用于接收所述基站发送的无线资源控制RRC信令,所述RRC信令包括所述延迟信息。
可选的,所述延迟信息为HARQ进程标识,所述HARQ进程标识用于指示所述目标HARQ所属的HARQ进程;
所述第一接收子模块,用于接收所述基站发送的第一下行控制信息DCI,所述第一DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第一DCI包括所述HARQ进程标识;
所述第一判断子模块,用于当所述HARQ进程标识属于目标标识集合时,确定所述目标HARQ能够延迟传输,所述目标标识集合包括的每个所述进程标识为HARQ能够延迟传输的HARQ进程的标识;当所述HARQ进程标识不属于所述目标标识集合时,确定所述目标HARQ不能延迟传输。
可选的,所述判断模块包括第二判断子模块;
所述第二判断子模块,用于当所述UE通过子时隙进行数据传输时,确定所述目标HARQ不能延迟传输;当所述UE通过时隙进行数据传输时,确定所述目标HARQ能够延迟传输。
可选的,所述第二判断子模块,用于当接收到所述基站发送的第一信令时,确定所述目标HARQ不能延迟传输,所述第一信令用于指示所述UE通过子时隙进行数据传输;当接收到所述基站发送的第二信令时,确定所述目标HARQ能够延迟传输,所述第二信令用于指示所述UE通过时隙进行数据传输。
可选的,所述第二判断子模块,用于当所述UE在目标下行资源上接收到下行数据传输调度DCI时,确定所述目标HARQ不能延迟传输,所述目标下行资源不为所述UE接收按照时隙传输的下行数据的调度DCI的下行资源。
可选的,所述延迟信息为第一时间间隔指示信息,所述第一时间间隔指示信息用于指示第二DCI在时域上距离目标下行数据的间隔,所述第二DCI用于调度所述目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据;
所述第一接收子模块,用于接收所述基站发送的所述第二DCI,所述第二DCI包括所述第一时间间隔指示信息;
所述第一判断模块,用于当所述第一时间间隔指示信息所指示的间隔小于或等于第一预设间隔阈值时,确定所述目标HARQ不能延迟传输;当所述第一时间间隔指示信息所指示的间隔大于所述第一预设间隔阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述延迟信息为第二时间间隔指示信息,所述第二时间间隔指示信息用于指示目标下行数据在时域上距离所述目标HARQ的间隔,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据;
所述第一接收子模块,用于接收所述基站发送的第三DCI,所述第三DCI用于调度所述目标下行数据,所述第三DCI包括所述第二时间间隔指示信息;
所述第一判断子模块,用于当所述第二时间间隔指示信息所指示的间隔小于或等于第二预设间隔阈值时,确定所述目标HARQ不能延迟传输;当所述第二时间间隔指示信息所指示的间隔大于所述第二预设间隔阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述延迟信息包括第一时间间隔指示信息和第二时间间隔指示信息,所述第一时间间隔指示信息用于指示第四DCI在时域上距离目标下行数据的间隔,所述第二时间间隔指示信息用于指示所述目标下行数据在时域上距离所述目标HARQ的间隔,所述第四DCI用于调度所述目标下行数据,所述目 标HARQ用于指示所述UE是否正确接收到所述目标下行数据;
所述第一接收子模块,用于接收所述基站发送的所述第四DCI,所述第四DCI包括所述第一时间间隔指示信息和所述第二时间间隔指示信息;
所述第一判断子模块,用于当所述第一时间间隔指示信息所指示的间隔和所述第二时间间隔指示信息所指示的间隔之和小于或等于第三预设间隔阈值时,确定所述目标HARQ不能延迟传输;当所述第一时间间隔指示信息所指示的间隔和所述第二时间间隔指示信息所指示的间隔之和大于所述第三预设间隔阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述延迟信息为长度指示信息,所述长度指示信息用于指示目标下行数据在时域上的长度,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据;
所述第一接收子模块,用于接收所述基站发送的第五DCI,所述第五DCI用于调度所述目标下行数据,所述第五DCI包括所述长度指示信息;
所述第一判断子模块,用于当所述长度指示信息所指示的长度小于或等于第一预设长度阈值时,确定所述目标HARQ不能延迟传输;当所述长度指示信息所指示的长度大于所述第一预设长度阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述第一接收子模块,用于接收所述基站发送的第六DCI,所述第六DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第六DCI包括所述延迟信息。
可选的,所述延迟信息还用于指示所述目标HARQ能够延迟传输的最大延迟时长。
可选的,所述第一上行资源为物理上行链路控制信道PUCCH,所述判断模块包括第一确定子模块和第三判断子模块;
所述第一确定子模块,用于确定所述PUCCH的模式;
所述第三判断子模块,用于根据所述PUCCH的模式判断所述目标HARQ 是否能够延迟传输。
可选的,所述第一上行资源为PUCCH,所述判断模块包括第二确定子模块和第四判断子模块;
所述第二确定子模块,用于确定所述PUCCH在时域上的长度;
所述第四判断子模块,用于当所述PUCCH在时域上的长度小于或等于第二预设长度阈值时,确定所述目标HARQ不能延迟传输;当所述PUCCH在时域上的长度大于所述第二预设长度阈值时,确定所述目标HARQ能够延迟传输。
可选的,所述第一上行资源为PUCCH,所述判断模块包括第三确定子模块和第五判断子模块;
所述第三确定子模块,用于确定所述PUCCH在频域上占用的子载波的个数;
所述第五判断子模块,用于当所述PUCCH在频域上占用的子载波的个数小于或等于预设个数阈值时,确定所述目标HARQ能够延迟传输;当所述PUCCH在频域上占用的子载波的个数大于所述预设个数阈值时,确定所述目标HARQ不能延迟传输。
可选的,所述判断模块包括第六判断子模块;
所述第六判断子模块,用于当接收到第一内部高层信令时,确定所述目标HARQ不能延迟传输,所述第一内部高层信令是所述UE的高层在目标下行数据对应的通信业务为低延迟业务时生成的,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据;当接收到第二内部高层信令时,确定所述目标HARQ能够延迟传输,所述第二内部高层信令是所述UE的高层在所述目标下行数据对应的通信业务不为低延迟业务时生成的。
根据本公开实施例的第四方面,提供一种信息传输装置,包括:
发送模块,用于向用户设备UE发送延迟信息,所述延迟信息用于指示目标混合自动重传请求HARQ是否能够延迟传输,所述UE用于在第一上行资源 和第二上行资源在时域上部分重叠,且所述延迟信息指示所述目标HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
其中,所述第一上行资源为基站分配给所述UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
可选的,所述发送模块包括第一发送子模块;
所述第一发送子模块,用于向所述UE发送系统广播消息,所述系统广播消息包括所述延迟信息。
可选的,所述发送模块包括第二发送子模块;
所述第二发送子模块,用于向所述UE发送RRC信令,所述RRC信令包括所述延迟信息。
可选的,所述延迟信息为HARQ进程标识,所述HARQ进程标识用于指示所述目标HARQ所属的HARQ进程,所述发送模块包括第三发送子模块;
所述第三发送子模块,用于向所述UE发送第一DCI,所述第一DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第一DCI包括所述HARQ进程标识;
其中,当所述HARQ进程标识属于目标标识集合时,所述HARQ进程标识指示所述目标HARQ能够延迟传输,所述目标标识集合包括的每个所述进程标识为HARQ能够延迟传输的HARQ进程的标识;
当所述HARQ进程标识不属于所述目标标识集合时,所述HARQ进程标识指示所述目标HARQ不能延迟传输。
可选的,所述发送模块包括第四发送子模块;
所述第四发送子模块,用于向所述UE发送第六DCI,所述第六DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目 标下行数据,所述第六DCI包括所述延迟信息。
可选的,所述延迟信息还用于指示所述目标HARQ能够延迟传输的最大延迟时长。
根据本公开实施例的第五方面,提供一种信息传输装置,包括:
处理器;
用于存储处理器可执行的指令的存储器;
其中,所述处理器被配置为:
当第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
其中,所述第一上行资源为基站分配给用户设备UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
根据本公开实施例的第六方面,提供一种信息传输装置,包括:
处理器;
用于存储处理器可执行的指令的存储器;
其中,所述处理器被配置为:
向用户设备UE发送延迟信息,所述延迟信息用于指示目标混合自动重传请求HARQ是否能够延迟传输,所述UE用于在第一上行资源和第二上行资源在时域上部分重叠,且所述延迟信息指示所述目标HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
其中,所述第一上行资源为基站分配给所述UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求 SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
根据本公开实施例的第七方面,提供一种信息传输系统,包括如上述第三方面任一所述的信息传输装置和如上述第四方面任一所述的信息传输装置。
根据本公开实施例的第八方面,提供一种计算机可读存储介质,所述计算机可读存储介质中存储有计算机程序,存储的所述计算机程序被处理组件执行时能够实现如上述第一方面任一所述的信息传输方法;或者,
存储的所述计算机程序被处理组件执行时能够实现如上述第二方面任一所述的信息传输方法。
本公开的实施例提供的技术方案可以包括以下有益效果:
通过当第一上行资源和第二上行资源在时域上部分重叠,且目标HARQ能够延迟传输时,将该目标HARQ复用至第二上行资源上传输,这样,能够解决用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ的问题。
应当理解的是,以上的一般描述和后文的细节描述仅是示例性和解释性的,并不能限制本公开。
附图说明
此处的附图被并入说明书中并构成本说明书的一部分,示出了符合本公开的实施例,并与说明书一起用于解释本公开的原理。
图1是根据一示例性实施例示出的一种实施环境的示意图。
图2是根据一示例性实施例示出的一种信息传输方法的流程图。
图3是根据一示例性实施例示出的一种信息传输方法的流程图。
图4是根据一示例性实施例示出的一种信息传输方法的流程图。
图5是根据一示例性实施例示出的一种信息传输装置的框图。
图6是根据一示例性实施例示出的一种信息传输装置的框图。
图7是根据一示例性实施例示出的一种信息传输装置的框图。
图8是根据一示例性实施例示出的一种信息传输装置的框图。
图9是根据一示例性实施例示出的一种信息传输装置的框图。
图10是根据一示例性实施例示出的一种信息传输系统的框图。
具体实施方式
为使本公开的目的、技术方案和优点更加清楚,下面将结合附图对本公开实施方式作进一步地详细描述。
这里将详细地对示例性实施例进行说明,其示例表示在附图中。下面的描述涉及附图时,除非另有表示,不同附图中的相同数字表示相同或相似的要素。以下示例性实施例中所描述的实施方式并不代表与本公开相一致的所有实施方式。相反,它们仅是与如所附权利要求书中所详述的、本公开的一些方面相一致的装置和方法的例子。
在无线通信系统中,UE(User Equipment,用户设备)需要向基站发送UCI(Uplink Control Information,上行控制信息),其中,UCI可以包括HARQ(Hybrid Automatic Repeat Request,混合自动重传请求)、SR(Scheduling Request,调度请求)和CSI(Channel State Information,信道状态信息)。
通常情况下,UE可以通过PUCCH(Physical Uplink Control Channel,物理上行链路控制信道)向基站发送UCI,其中,对于SR和CSI而言,基站可以通过RRC(Radio Resource Control,无线资源控制)信令对UE传输SR和CSI所使用的PUCCH进行配置,对于HARQ而言,基站可以配置一组或多组PUCCH资源,UE可以根据基站的指示动态地选择某一组PUCCH资源中的某一个PUCCH传输HARQ。
相关技术中,当基站为UE分配的用于传输不同类型UCI的多个PUCCH在时域上完全重叠时,UE可以将不同类型的多个UCI复用至一个PUCCH上传输,也即是,UE可以将不同类型的多个UCI经过编码后通过一个PUCCH 传输。例如,当基站分配给UE的用于传输HARQ的第一PUCCH和用于传输CSI的第二PUCCH在时域上完全重叠时,也即是,当第一PUCCH和第二PUCCH所占用的时域资源完全相同时,UE可以将CSI和本应通过第一PUCCH传输的HARQ经过编码后通过第二PUCCH进行传输。
当基站为UE分配的用于传输UCI的PUCCH和用于传输上行数据的PUSCH(Physical Uplink Shared Channel,物理上行共享信道)在时域上完全重叠时,UE可以将UCI复用至PUSCH上传输,也即是,UE可以将UCI和上行数据经过编码后通过PUSCH传输。例如,当基站分配给UE的用于传输HARQ的第一PUCCH和用于传输上行数据的PUSCH在时域上完全重叠时,也即是,当第一PUCCH和PUSCH所占用的时域资源完全相同时,UE可以将上行数据和本应通过第一PUCCH传输的HARQ经过编码后通过PUSCH进行传输。
这样,UE就可以避免在同一时域上传输不同频域的信息,从而能够有效地降低UE上行发送的PAPR(Peak to Average Power Ratio,峰值平均功率比),提高UE上行传输的性能。
然而,对于多个PUCCH在时域上部分重叠,或者,PUCCH和PUSCH在时域上部分重叠时,UE如何传输UCI目前还没有相关规定。特别是对于用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ是目前亟待解决的问题。
本公开实施例提供了一种信息传输方法,该信息传输方法能够解决用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ的问题。下面,本公开实施例将对该信息传输方法所涉及到的实施环境进行说明:如图1所示,该实施环境可以包括基站10和UE 20,基站10和UE 20可以通过通信网络进行连接,UE 20为基站10所服务的小区中的任一个UE,上述通信网络可以为LTE(Long Term Evolution,长期演进)通信 网络,5G(The Fifth Generation Mobile Communication Technology,第五代移动通信技术)通信网络,或者,其他的与LTE通信网络或5G通信网络类似的通信网络。
图2是根据一示例性实施例示出的一种信息传输方法的流程图,该信息传输方法用于图1所示的UE 20中,如图2所示,该信息传输方法可以包括以下步骤。
步骤201、当第一上行资源和第二上行资源在时域上部分重叠,且目标HARQ能够延迟传输时,UE将该目标HARQ复用至第二上行资源上传输。
其中,第一上行资源为基站分配给UE的用于传输目标HARQ的上行资源,第二上行资源为基站分配给UE的用于传输上行数据或目标UCI的上行资源,该目标UCI包括SR或CSI,该第一上行资源在时域上位于该第二上行资源之前。
综上所述,本公开实施例提供的信息传输方法,通过当第一上行资源和第二上行资源在时域上部分重叠,且目标HARQ能够延迟传输时,将该目标HARQ复用至第二上行资源上传输,这样,能够解决用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ的问题。
图3是根据一示例性实施例示出的一种信息传输方法的流程图,该信息传输方法用于图1所示的基站10中,如图3所示,该信息传输方法可以包括以下步骤。
步骤301、基站向UE发送延迟信息,该延迟信息用于指示目标HARQ是否能够延迟传输。该UE用于在第一上行资源和第二上行资源在时域上部分重叠,且该延迟信息指示目标HARQ能够延迟传输时,将该目标HARQ复用至第二上行资源上传输。
其中,第一上行资源为基站分配给UE的用于传输目标HARQ的上行资源, 第二上行资源为基站分配给UE的用于传输上行数据或目标UCI的上行资源,该目标UCI包括SR或CSI,该第一上行资源在时域上位于该第二上行资源之前。
综上所述,本公开实施例提供的信息传输方法,通过基站向UE发送用于指示目标HARQ是否能够延迟传输的延迟信息,使得UE在第一上行资源和第二上行资源在时域上部分重叠,且延迟信息指示目标HARQ能够延迟传输时,将该目标HARQ复用至第二上行资源上传输,这样,能够解决用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ的问题。
图4是根据一示例性实施例示出的一种信息传输方法的流程图,该信息传输方法用于图1所示的实施环境中,如图4所示,该信息传输方法可以包括以下步骤。
步骤401、UE判断第一上行资源和第二上行资源在时域上是否部分重叠。
第一上行资源为基站分配给UE的用于传输目标HARQ的上行资源,其中,该目标HARQ用于指示UE是否正确接收到了基站发送的目标下行数据。可选的,该第一上行资源可以为PUCCH,如上所述,基站可以配置一组或多组PUCCH资源用于传输HARQ,基站可以动态地对UE进行指示,以使UE根据基站的指示确定哪一组PUCCH资源中的哪一个PUCCH为基站分配给UE的第一上行资源。
第二上行资源为基站分配给UE的用于传输上行数据或目标UCI的上行资源,其中,目标UCI包括SR或CSI。可选的,当第二上行资源为用于传输上行数据的资源时,该第二上行资源可以为PUSCH,当第二上行资源为用于传输目标UCI的资源时,该第二上行资源可以为PUCCH。当该第二上行资源为PUCCH时,基站可以通过RRC信令为UE分配该第二上行资源,当该第二上行资源为PUSCH时,基站可以基于UE的请求为UE分配该第二上行资源。
在本公开的实施例中,该第一上行资源在时域上位于该第二上行资源之前,也即是,该第一上行资源占用的第一个符号(英文:symbol)在时域上位于第二上行资源占用的第一个符号之前。
需要指出的是,第一上行资源和第二上行资源在时域上部分重叠指的是:第一上行资源占用的时域资源和第二上行资源占用的时域资源部分相同。例如,第一上行资源占用的时域资源可以为时隙a、时隙b和时隙c,第二上行资源占用的时域资源可以为时隙c和时隙d,则第一上行资源占用的时域资源的一部分与第二上行资源占用的时域资源的一部分相同,该相同的部分为时隙c,那么第一上行资源和第二上行资源在时域上部分重叠。
可选的,UE可以通过基站对第一上行资源和第二上行资源的配置判断第一上行资源和第二上行资源在时域上是否部分重叠。
步骤402、当第一上行资源和第二上行资源在时域上部分重叠时,UE判断目标HARQ是否能够延迟传输。
当第一上行资源和第二上行资源在时域上部分重叠时,UE可以将目标HARQ以及上行数据,或者,目标HARQ以及目标UCI复用至第一上行资源和第二上行资源中的一个上行资源上进行传输,这样,就可以进一步避免UE在同一时域上传输不同频域的信息,从而能够进一步降低UE上行发送的PAPR,提高UE上行传输的性能。
在将目标HARQ以及上行数据,或者,目标HARQ以及目标UCI复用至一个上行资源上进行传输的过程中,UE需要判断目标HARQ是否能够延迟传输,以在后续步骤中根据判断结果确定需要将目标HARQ以及上行数据,或者,目标HARQ以及目标UCI复用至第一上行资源和第二上行资源中的哪个上行资源上进行传输。这是因为,通常情况下,在某一通信业务中,基站需要在接收到UE发送的针对某一下行数据的HARQ,并根据该HARQ确定UE正确接收到该下行数据后,才会继续向UE发送该通信业务的其他下行数据,因此,若UE向基站反馈HARQ的时延较大,就会导致基站向UE发送下行数据 的时延较大,而这对于某些对时延要求比较高的通信业务而言是无法接受的。因此,在复用传输之前,UE需要判断目标HARQ是否能够延迟传输,以在后续步骤中根据判断结果确定需要将目标HARQ以及上行数据,或者,目标HARQ以及目标UCI复用至第一上行资源和第二上行资源中的哪个上行资源上进行传输。
需要指出的是,第一上行资源可以用于传输多个目标HARQ,每个目标HARQ可以与一个目标下行数据相对应,每个目标HARQ用于指示对应的目标下行数据是否被UE正确接收。这种情况下,在进行复用传输之前,UE需要判断每一个目标HARQ是否能够延迟传输。
本公开实施例提供了四种UE判断目标HARQ是否能够延迟传输的可选方式,下面,本公开实施例将对这四种方式一一进行说明:
第一种方式、UE接收基站发送的延迟信息,并根据该延迟信息的指示判断目标HARQ是否能够延迟传输。
实际实现时,基站可以通过不同的方式发送该延迟信息,其中,本公开实施例提供了3种基站发送延迟信息的可选方式:
1、基站通过系统广播消息发送延迟信息。
基站可以广播系统广播消息,该系统广播消息中可以包括延迟信息,其中,该延迟信息可以显式地指示目标HARQ是否能够延迟传输,也可以隐式地指示目标HARQ是否能够延迟传输。UE可以接收该系统广播消息,并可以根据当前的系统广播消息中延迟信息的指示判断目标HARQ是否能够延迟传输。
2、基站通过RRC信令发送延迟信息。
基站可以向UE发送RRC信令,该RRC信令中可以包括延迟信息,同样地,该延迟信息可以显式地指示目标HARQ是否能够延迟传输,也可以隐式地指示目标HARQ是否能够延迟传输。基站可以通过该RRC信令半静态地指示目标HARQ是否能够延迟传输。UE可以接收基站发送的RRC信令,并可以根据该RRC信令中延迟信息的指示判断目标HARQ是否能够延迟传输。
3、基站通过DCI发送延迟信息。
在一种可能的实现方式中,该延迟信息可以为HARQ进程标识。基站可以通过第一DCI向UE发送该HARQ进程标识,其中,第一DCI用于调度上述目标下行数据,第一DCI中包括该HARQ进程标识,第一DCI中包括的该HARQ进程标识用于指示目标HARQ所属的HARQ进程。
UE可以被配置多个HARQ进程(最多可被配置16个HARQ进程),UE可以通过被配置的多个HARQ进程并行地进行多个HARQ的传输。其中,每个HARQ进程都可以用唯一的一个HARQ进程标识进行指示,基站可以通过RRC信令向UE发送目标标识集合,该目标标识集合可以为空集,也可以不为空集,当该目标标识集合不为空集时,该目标标识集合可以包括至少一个进程标识,其中,每个进程标识均可以为HARQ能够延迟传输的HARQ进程的标识。UE可以通过判断第一DCI中包括的HARQ进程标识是否属于目标标识集合来判断目标HARQ是否能够延迟传输,其中,当第一DCI中包括的HARQ进程标识属于目标标识集合时,UE确定目标HARQ能够延迟传输,当第一DCI中包括的HARQ进程标识不属于目标标识集合时,UE确定目标HARQ不能延迟传输。
在另一种可能的实现方式中,该延迟信息可以为第一时间间隔指示信息。基站可以通过第二DCI向UE发送该第一时间间隔指示信息,其中,第二DCI用于调度上述目标下行数据,第二DCI包括该第一时间间隔指示信息,该第一时间间隔指示信息用于指示第二DCI在时域上距离目标下行数据的间隔。
在对延迟要求比较高的通信业务(例如高可靠低延迟业务)中,用于调度下行数据的DCI与被调度的下行数据在时域上的间隔往往较小。
因此,当第一时间间隔指示信息所指示的间隔小于或等于第一预设间隔阈值时,该第二DCI调度的目标下行数据很可能是对延迟要求比较高的通信业务的数据,在这种情况下,为了满足通信业务对低延迟的要求,通常不允许目标HARQ延迟传输,因此,此时UE可以确定目标HARQ不能延迟传输。
当第一时间间隔指示信息所指示的间隔大于第一预设间隔阈值时,该第二DCI调度的目标下行数据很可能并不是对延迟要求比较高的通信业务的数据,在这种情况下,通常可以允许目标HARQ延迟传输,因此,此时UE可以确定目标HARQ能够延迟传输。
需要指出的是,当第一上行资源用于传输多个目标HARQ时,UE可以获取每个目标HARQ对应的第一时间间隔指示信息,而后,UE可以从获取的多个第一时间间隔指示信息中确定第一最大时间间隔指示信息和第一最小时间间隔指示信息,该第一最大时间间隔指示信息所指示的间隔最大,该第一最小时间间隔指示信息所指示的间隔最小。UE可以判断该第一最大时间间隔指示信息所指示的间隔是否小于或等于第一预设间隔阈值,当该第一最大时间间隔指示信息所指示的间隔小于或等于第一预设间隔阈值时,UE可以确定该多个目标HARQ中的每个目标HARQ均不能延迟传输,UE可以判断该第一最小时间间隔指示信息所指示的间隔是否大于第一预设间隔阈值,当该第一最小时间间隔指示信息所指示的间隔大于第一预设间隔阈值时,UE可以确定该多个目标HARQ中的每个目标HARQ均能够延迟传输。
还需要指出的是,上述第一预设间隔阈值可以由基站进行配置,也可以由通信协议进行规定,还可以由UE的高层进行配置,其中,UE的高层可以为UE的RRC层或MAC(Media Access Control,媒体介入控制)层等,本公开实施例对此不作具体限定。
实际实现时,上述第一时间间隔指示信息可以位于第二DCI的时域资源分配域中,该第一时间间隔指示信息可以占用三个比特位,该第一时间间隔指示信息可以指示8种不同的时域间隔,该时域间隔的单位可以为时隙个数,例如,该第一时间间隔指示信息指示的时域间隔可以为1个时隙、2个时隙或5个时隙等。
在另一种可能的实现方式中,该延迟信息可以为第二时间间隔指示信息。基站可以通过第三DCI向UE发送该第二时间间隔指示信息,其中,第三DCI 用于调度上述目标下行数据,第三DCI包括该第二时间间隔指示信息,该第二时间间隔指示信息用于指示目标下行数据在时域上距离目标HARQ的间隔。
在对延迟要求比较高的通信业务中,下行数据和用于指示该下行数据是否被UE正确接收的HARQ在时域上的间隔往往较小。
因此,当第二时间间隔指示信息所指示的间隔小于或等于第二预设间隔阈值时,该第三DCI调度的目标下行数据很可能是对延迟要求比较高的通信业务的数据,在这种情况下,为了满足通信业务对低延迟的要求,通常不允许目标HARQ延迟传输,因此,此时UE可以确定目标HARQ不能延迟传输。
当第二时间间隔指示信息所指示的间隔大于第二预设间隔阈值时,该第三DCI调度的目标下行数据很可能并不是对延迟要求比较高的通信业务的数据,在这种情况下,通常可以允许目标HARQ延迟传输,因此,此时UE可以确定目标HARQ能够延迟传输。
需要指出的是,当第一上行资源用于传输多个目标HARQ时,UE可以获取每个目标HARQ对应的第二时间间隔指示信息,而后,UE可以从获取的多个第二时间间隔指示信息中确定第二最大时间间隔指示信息和第二最小时间间隔指示信息,该第二最大时间间隔指示信息所指示的间隔最大,该第二最小时间间隔指示信息所指示的间隔最小。UE可以判断该第二最大时间间隔指示信息所指示的间隔是否小于或等于第二预设间隔阈值,当该第二最大时间间隔指示信息所指示的间隔小于或等于第二预设间隔阈值时,UE可以确定该多个目标HARQ中的每个目标HARQ均不能延迟传输,UE可以判断该第二最小时间间隔指示信息所指示的间隔是否大于第二预设间隔阈值,当该第二最小时间间隔指示信息所指示的间隔大于第二预设间隔阈值时,UE可以确定该多个目标HARQ中的每个目标HARQ均能够延迟传输。
还需要指出的是,上述第二预设间隔阈值可以由基站进行配置,也可以由通信协议进行规定,还可以由UE的高层进行配置,其中,UE的高层可以为UE的RRC层或MAC层等,本公开实施例对此不作具体限定。
实际实现时,上述第二时间间隔指示信息可以占用两个比特位,该第二时间间隔指示信息可以指示4种不同的时域间隔,该时域间隔的单位可以为时隙个数,也即是,该第二时间间隔指示信息用于指示目标下行数据占用的最后一个符号所在的时隙与目标HARQ占用的最开始的一个符号所在的时隙相间隔的时隙个数。
在另一种可能的实现方式中,该延迟信息可以同时包括第一时间间隔指示信息和第二时间间隔指示信息。基站可以通过第四DCI向UE发送该第一时间间隔指示信息和该第二时间间隔指示信息,其中,第四DCI用于调度上述目标下行数据,第四DCI包括该第一时间间隔指示信息和该第二时间间隔指示信息,第一时间间隔指示信息用于指示第四DCI在时域上距离目标下行数据的间隔,第二时间间隔指示信息用于指示目标下行数据在时域上距离目标HARQ的间隔。
UE可以根据第一时间间隔指示信息所指示的间隔与第二时间间隔指示信息所指示的间隔之和的大小判断目标HARQ是否能够延迟传输,可选的,当第一时间间隔指示信息所指示的间隔和第二时间间隔指示信息所指示的间隔之和小于或等于第三预设间隔阈值时,UE确定目标HARQ不能延迟传输,当第一时间间隔指示信息所指示的间隔和第二时间间隔指示信息所指示的间隔之和大于第三预设间隔阈值时,UE确定目标HARQ能够延迟传输。
需要指出的是,当第一上行资源用于传输多个目标HARQ时,UE可以获取每个目标HARQ对应的第一时间间隔指示信息所指示的间隔与第二时间间隔指示信息所指示的间隔的和,而后,UE可以从获取的多个和值中确定最大和值和最小和值。UE可以判断该最大和值是否小于或等于第三预设间隔阈值,当该最大和值小于或等于第三预设间隔阈值时,UE可以确定该多个目标HARQ中的每个目标HARQ均不能延迟传输,UE可以判断该最小和值是否大于第三预设间隔阈值,当该最小和值大于第三预设间隔阈值时,UE可以确定该多个目标HARQ中的每个目标HARQ均能够延迟传输。
在另一种可能的实现方式中,该延迟信息可以为长度指示信息。基站可以通过第五DCI向UE发送该长度指示信息,其中,第五DCI用于调度上述目标下行数据,第五DCI包括该长度指示信息,该长度指示信息用于指示目标下行数据在时域上的长度。
在对延迟要求比较高的通信业务中,下行数据在时域上的长度往往较小。
因此,当该长度指示信息所指示的长度小于或等于第一预设长度阈值时,该第五DCI调度的目标下行数据很可能是对延迟要求比较高的通信业务的数据,在这种情况下,为了满足通信业务对低延迟的要求,通常不允许目标HARQ延迟传输,因此,此时UE可以确定目标HARQ不能延迟传输。
当长度指示信息所指示的长度大于第一预设长度阈值时,该第五DCI调度的目标下行数据很可能并不是对延迟要求比较高的通信业务的数据,在这种情况下,通常可以允许目标HARQ延迟传输,因此,此时UE可以确定目标HARQ能够延迟传输。
需要指出的是,上述第一预设长度阈值可以由基站进行配置,也可以由通信协议进行规定,还可以由UE的高层进行配置,其中,UE的高层可以为UE的RRC层或MAC层等,本公开实施例对此不作具体限定。
在另一种可能的实现方式中,基站可以通过第六DCI向UE发送延迟信息,其中,第六DCI用于调度上述目标下行数据,第六DCI包括该延迟信息,该延迟信息可以显式地指示目标HARQ是否能够延迟传输。例如,该延迟信息可以占用一个比特位,当该延迟信息为“1”时,可以指示目标HARQ能够延迟传输,当该延迟信息为“0”时,可以指示目标HARQ不能延迟传输。
可选的,在这种实现方式中,该延迟信息还可以指示目标HARQ能够延迟传输的最大延迟时长。例如,该延迟信息可以占用两个比特位,其中,延迟信息为“00”时,可以指示目标HARQ不能延迟传输,延迟信息为“01”时,可以指示目标HARQ能够延迟传输,且,能够延迟传输的最大延迟时长为A1,延迟信息为“10”时,可以指示目标HARQ能够延迟传输,且,能够延迟传 输的最大延迟时长为A2。不同的延迟信息与最大延迟时长的对应关系可以由基站进行配置,也可以由通信协议进行规定。
当然,本公开实施例提供的其他延迟信息也可以指示目标HARQ能够延迟传输的最大延迟时长,例如,系统广播消息中包括的延迟信息和RRC信令中包括的延迟信息等均能够指示目标HARQ能够延迟传输的最大延迟时长。另外,基站也可以另外地向UE发送时长指示信息来指示目标HARQ能够延迟传输的最大延迟时长。
在后续步骤中,UE可以根据该最大延迟时长的大小来确定需要将目标HARQ以及上行数据,或者,目标HARQ以及目标UCI复用至第一上行资源和第二上行资源中的哪个上行资源上进行传输。可选的,当第一上行资源和第二上行资源在时域上的间隔小于或等于最大延迟时长时,UE可以选择第二上行资源进行复用传输,当第一上行资源和第二上行资源在时域上的间隔大于最大延迟时长时,UE可以选择第一上行资源进行复用传输。
其中,第一上行资源和第二上行资源在时域上的间隔指的是:第一上行资源最开始的一个符号与第二上行资源最开始的一个符号在时域上的间隔,或者,第一上行资源最后的一个符号与第二上行资源最后的一个符号在时域上的间隔。
第二种方式、UE通过数据传输所基于的时域资源单元判断目标HARQ是否能够延迟传输。
在5G通信系统中,对延迟要求比较高的通信业务的通信数据通常需要基于子时隙(英文:mini-slot)进行传输,其中,子时隙可以包括2个、4个或7个符号。
因此,当UE通过子时隙进行数据传输时,UE传输的数据很可能是对延迟要求比较高的通信业务的数据,在这种情况下,目标HARQ不能延迟传输。当UE通过时隙进行数据传输时,UE传输的数据很可能并不是对延迟要求比较高的通信业务的数据,在这种情况下,目标HARQ能够延迟传输。
可选的,UE可以通过以下方式确定自身是否基于子时隙进行数据传输:
1、UE可以基于基站的配置确定自身是否基于子时隙进行数据传输。
当接收到基站发送的第一信令时,UE可以确定自身基于子时隙进行数据传输,此时,UE可以确定目标HARQ不能延迟传输,其中,第一信令为用于指示UE通过子时隙进行数据传输的信令,该第一信令可以为RRC信令。
当接收到基站发送的第二信令时,UE可以确定自身基于时隙进行数据传输,此时,UE可以确定目标HARQ能够延迟传输,其中,第二信令为用于指示UE通过时隙进行数据传输的信令,该第二信令也可以为RRC信令。
2、UE可以基于接收到DCI的时频位置确定自身是否基于子时隙进行数据传输。
当UE在目标下行资源上接收到下行数据传输调度DCI时,确定目标HARQ不能延迟传输,目标下行资源不为UE接收按照时隙传输的下行数据的调度DCI的下行资源。
通常情况下,在UE基于时隙进行数据传输时,UE只能够在时隙的控制域(UE接收按照时隙传输的下行数据的调度DCI的时频位置)中接收到DCI,其中,时隙的控制域通常包括时隙的前几个符号(例如,前3个符号)。因此,当UE在除了时隙的控制域以外的下行资源(例如,时隙的中间几个符号)上接收到DCI时,说明UE基于子时隙进行数据传输,在这种情况下,UE可以确定目标HARQ不能延迟传输。
第三种方式、UE通过第一上行资源的特性判断目标HARQ是否能够延迟传输。
如上所述,该第一上行资源可以为PUCCH。
在一种可能的实现方式中,UE可以根据第一上行资源(PUCCH)的模式(英文:format)判断目标HARQ是否能够延迟传输。
通常情况下,不同模式的PUCCH传输的UCI的类型不同,占有的比特数也不同。例如,在LTE通信系统中,PUCCH可以分为1、1a、1b、2、2a和 2b几种模式,其中,模式1a的PUCCH用于传输HARQ,占有的比特数为1,模式1b的PUCCH也用于传输HARQ,但是占有的比特数为2。目前,5G通信系统的协议对新一代移动通信系统中的PUCCH的模式进行了规定(参考通信标准3GPP TS 38.211-38.215),其中,某些模式的PUCCH适用于传输对时延要求比较高的通信业务的数据,例如,模式0或模式2,而某些模式的PUCCH适用于传输对时延比较不敏感的通信业务的数据,例如,模式1、模式3或模式4。因此,UE可以根据第一上行资源的模式确定目标HARQ是否能够延迟传输,可选的,当第一上行资源的模式为适用于传输对时延要求比较高的通信业务的数据的PUCCH模式时,UE确定目标HARQ不能延迟传输,当第一上行资源的模式为适用于传输对时延不敏感的通信业务的数据的PUCCH模式时,UE确定目标HARQ能够延迟传输。
在另一种可能的实现方式中,UE可以根据第一上行资源(PUCCH)在时域上的长度判断目标HARQ是否能够延迟传输。
当PUCCH在时域上的长度较小时,该PUCCH通常适用于传输对时延要求比较高的通信业务的数据,例如,当PUCCH在时域上占用2个符号的长度时,该PUCCH适用于传输对时延要求比较高的通信业务的数据。当PUCCH在时域上的长度较大时,该PUCCH通常适用于传输对时延比较不敏感的通信业务的数据,例如,当PUCCH在时域上占用4个符号的长度时,该PUCCH适用于传输对时延比较不敏感的通信业务的数据。
因此,UE可以根据第一上行资源在时域上的长度判断目标HARQ是否能够延迟传输。可选的,当第一上行资源在时域上的长度小于或等于第二预设长度阈值时,UE可以确定目标HARQ不能延迟传输,当第一上行资源在时域上的长度大于第二预设长度阈值时,UE可以确定目标HARQ能够延迟传输。
需要指出的是,上述第二预设长度阈值可以由基站进行配置,也可以由通信协议进行规定,还可以由UE的高层进行配置,其中,UE的高层可以为UE的RRC层或MAC层等,本公开实施例对此不作具体限定。
在另一种可能的实现方式中,UE可以根据第一上行资源(PUCCH)在频域上占用的子载波的个数判断目标HARQ是否能够延迟传输。
不同PUCCH在频域上占用的子载波的个数通常不同,例如,某些PUCCH在频域上占用的子载波的个数可以等一1个PRB(Physical Resource Block,物力资源块)所占用的子载波的个数,某些PUCCH在频域上占用的子载波的个数可以等于16个PRB所占用的子载波的个数。
当第一上行资源在频域上占用的子载波的个数较少时,也即是,当第一上行资源在频域上占用的子载波的个数小于或等于预设个数阈值时,第一上行资源的容量较小,在这种情况下,第一上行资源通常难以完全容纳目标UCI,而第二上行资源,尤其是用于传输CSI或上行数据的第二上行资源的容量通常较大,该第二上行资源通常可以容纳目标HARQ,因此,在这种情况下,通常可以选择将目标HARQ延迟传输,以将目标HARQ和上行数据,或者,目标HARQ和目标UCI复用至第二上行资源上传输。
当第一上行资源在频域上占用的子载波的个数较多时,也即是,当第一上行资源在频域上占用的子载波的个数大于预设个数阈值时,第一上行资源的容量较大,在这种情况下,通常可以选择不将目标HARQ延迟传输,以将目标HARQ和目标UCI复用至第一上行资源上传输。
需要指出的是,上述预设个数阈值可以由基站进行配置,也可以由通信协议进行规定,还可以由UE的高层进行配置,其中,UE的高层可以为UE的RRC层或MAC层等,本公开实施例对此不作具体限定。
第四种方式、UE通过内部高层信令判断目标HARQ是否能够延迟传输。
与UE的物理层只能识别通信数据的比特流不同,UE的高层(如MAC层)可以识别不同通信数据的逻辑信道标识,并可以根据逻辑信道的标识确定不同通信数据所对应的通信业务。
在本公开的实施例中,UE的高层可以根据逻辑信道的标识确定通信数据对应的通信业务的类型,以相应地生成内部高层信令,并通过该内部高层信令 指示目标HARQ是否能够延迟传输。
可选的,当UE的高层根据逻辑信道的标识确定目标下行数据为低延迟业务(也即是对延迟要求比较高的通信业务)的通信数据时,UE的高层可以生成第一内部高层信令,当UE的物理层接收到该第一内部高层信令时,可以确定目标HARQ不能延迟传输。
当UE的高层根据逻辑信道的标识确定目标下行数据不为低延迟业务的通信数据时,UE的高层可以生成第二内部高层信令,当UE的物理层接收到该第二内部高层信令时,可以确定目标HARQ能够延迟传输。
步骤403、当目标HARQ能够延迟传输,UE将目标HARQ复用至第二上行资源上传输。
当目标HARQ能够延迟传输时,UE可以通过第二上行资源传输该目标HARQ和上行数据,或者,UE可以通过第二上行资源传输该目标HARQ和目标UCI。
需要指出的是,当第一上行资源用于传输多个目标HARQ,则UE需要在确定每个目标HARQ均能够延迟传输时,将该多个目标HARQ复用至第二上行资源上传输。
当目标HARQ不能延迟传输时,UE可以将目标UCI复用至第一上行资源上传输,也即是,UE可以通过第一上行资源传输该目标UCI和该目标HARQ。
由于上行数据不能通过PUCCH传输,也即是,上行数据不能通过第一上行资源传输,因此,当目标HARQ不能延迟传输时,UE需要丢弃该上行数据,并通过第一上行资源传输该目标HARQ。
同时,由于用于传输HARQ的上行资源的容量通常较小,因此,当目标HARQ不能延迟传输时,若第一上行资源的容量不足以同时容纳目标UCI和目标HARQ,UE需要丢弃该目标UCI,并通过第一上行资源传输该目标HARQ。
当然,在实际实现时,当目标HARQ不能延迟传输时,UE也可以直接丢弃上行数据和目标UCI,并通过第一上行资源传输该目标HARQ。
综上所述,本公开实施例提供的信息传输方法,通过当第一上行资源和第二上行资源在时域上部分重叠,且目标HARQ能够延迟传输时,将该目标HARQ复用至第二上行资源上传输,这样,能够解决用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ的问题。
图5是是根据一示例性实施例示出的一种信息传输装置500的框图,该信息传输装置500可以为图1所示的UE 20。参照图5,该信息传输装置500包括第一传输模块501。
其中,该第一传输模块501,用于在第一上行资源和第二上行资源在时域上部分重叠,且目标HARQ能够延迟传输时,将该目标HARQ复用至该第二上行资源上传输。
其中,该第一上行资源为基站分配给UE的用于传输该目标HARQ的上行资源,该第二上行资源为该基站分配给该UE的用于传输上行数据或目标UCI的上行资源,该目标UCI包括SR或CSI,该第一上行资源在时域上位于该第二上行资源之前。
在本公开的一个实施例中,该第一上行资源用于传输多个该目标HARQ,该第一传输模块501包括第一复用子模块。
其中,该第一复用子模块,用于当该第一上行资源和该第二上行资源在时域上部分重叠,且每个该目标HARQ均能够延迟传输时,将该多个目标HARQ复用至该第二上行资源上传输。
在本公开的一个实施例中,该第一传输模块501包括获取子模块和第二复用子模块。
其中,该获取子模块,用于当该第一上行资源和该第二上行资源在时域上部分重叠,且该目标HARQ能够延迟传输时,获取该目标HARQ能够延迟传输的最大延迟时长;
该第二复用子模块,用于当该第二上行资源在时域上距离该第一上行资源 的间隔小于或等于该最大延迟时长时,将该目标HARQ复用至该第二上行资源上传输。
如图6所示,本公开实施例还提供了另一种信息传输装置600,该信息传输装置600除了包括信息传输装置500包括的模块外,还包括判断模块502和第二传输模块503,其中,该判断模块502用于判断该目标HARQ是否能够延迟传输。
在本公开的一个实施例中,该第二传输模块503,用于当该第一上行资源和该第二上行资源在时域上部分重叠,且目标HARQ不能延迟传输时,将目标UCI复用至第一上行资源上传输。
在本公开的一个实施例中,该判断模块502包括第一接收子模块和第一判断子模块。
其中,第一接收子模块,用于接收该基站发送的延迟信息,该延迟信息用于指示该目标HARQ是否能够延迟传输;
第一判断子模块,用于根据该延迟信息判断该目标HARQ是否能够延迟传输。
在本公开的一个实施例中,第一接收子模块,用于接收该基站发送的系统广播消息,该系统广播消息包括该延迟信息。
在本公开的一个实施例中,该第一接收子模块,用于接收该基站发送的RRC信令,该RRC信令包括该延迟信息。
在本公开的一个实施例中,该延迟信息为HARQ进程标识,该HARQ进程标识用于指示该目标HARQ所属的HARQ进程。
该第一接收子模块,用于接收该基站发送的第一DCI,该第一DCI用于调度目标下行数据,该目标HARQ用于指示该UE是否正确接收到该目标下行数据,该第一DCI包括该HARQ进程标识;
该第一判断子模块,用于当该HARQ进程标识属于目标标识集合时,确定该目标HARQ能够延迟传输,该目标标识集合包括的每个该进程标识为 HARQ能够延迟传输的HARQ进程的标识;当该HARQ进程标识不属于该目标标识集合时,确定该目标HARQ不能延迟传输。
在本公开的一个实施例中,该延迟信息为第一时间间隔指示信息,该第一时间间隔指示信息用于指示第二DCI在时域上距离目标下行数据的间隔,该第二DCI用于调度该目标下行数据,该目标HARQ用于指示该UE是否正确接收到该目标下行数据。
该第一接收子模块,用于接收该基站发送的该第二DCI,该第二DCI包括该第一时间间隔指示信息;
该第一判断子模块,用于当该第一时间间隔指示信息所指示的间隔小于或等于第一预设间隔阈值时,确定该目标HARQ不能延迟传输;当该第一时间间隔指示信息所指示的间隔大于该第一预设间隔阈值时,确定该目标HARQ能够延迟传输。
在本公开的一个实施例中,该延迟信息为第二时间间隔指示信息,该第二时间间隔指示信息用于指示目标下行数据在时域上距离该目标HARQ的间隔,该目标HARQ用于指示该UE是否正确接收到该目标下行数据。
该第一接收子模块,用于接收该基站发送的第三DCI,该第三DCI用于调度该目标下行数据,该第三DCI包括该第二时间间隔指示信息;
该第一判断子模块,用于当该第二时间间隔指示信息所指示的间隔小于或等于第二预设间隔阈值时,确定该目标HARQ不能延迟传输;当该第二时间间隔指示信息所指示的间隔大于该第二预设间隔阈值时,确定该目标HARQ能够延迟传输。
在本公开的一个实施例中,该延迟信息包括第一时间间隔指示信息和第二时间间隔指示信息,该第一时间间隔指示信息用于指示第四DCI在时域上距离目标下行数据的间隔,该第二时间间隔指示信息用于指示该目标下行数据在时域上距离该目标HARQ的间隔,该第四DCI用于调度该目标下行数据,该目标HARQ用于指示该UE是否正确接收到该目标下行数据。
该第一接收子模块,用于接收该基站发送的该第四DCI,该第四DCI包括该第一时间间隔指示信息和该第二时间间隔指示信息;
该第一判断子模块,用于当该第一时间间隔指示信息所指示的间隔和该第二时间间隔指示信息所指示的间隔之和小于或等于第三预设间隔阈值时,确定该目标HARQ不能延迟传输;当该第一时间间隔指示信息所指示的间隔和该第二时间间隔指示信息所指示的间隔之和大于该第三预设间隔阈值时,确定该目标HARQ能够延迟传输。
在本公开的一个实施例中,该延迟信息为长度指示信息,该长度指示信息用于指示目标下行数据在时域上的长度,该目标HARQ用于指示该UE是否正确接收到该目标下行数据。
该第一接收子模块,用于接收该基站发送的第五DCI,该第五DCI用于调度该目标下行数据,该第五DCI包括该长度指示信息;
该第一判断子模块,用于当该长度指示信息所指示的长度小于或等于第一预设长度阈值时,确定该目标HARQ不能延迟传输;当该长度指示信息所指示的长度大于该第一预设长度阈值时,确定该目标HARQ能够延迟传输。
在本公开的一个实施例中,该第一接收子模块,用于接收该基站发送的第六DCI,该第六DCI用于调度目标下行数据,该目标HARQ用于指示该UE是否正确接收到该目标下行数据,该第六DCI包括该延迟信息。
在本公开的一个实施例中,该延迟信息还用于指示该目标HARQ能够延迟传输的最大延迟时长。
在本公开的一个实施例中,该判断模块502包括第二判断子模块。
该第二判断子模块,用于当该UE通过子时隙进行数据传输时,确定该目标HARQ不能延迟传输;当该UE通过时隙进行数据传输时,确定该目标HARQ能够延迟传输。
在本公开的一个实施例中,该第二判断子模块,用于:当接收到该基站发送的第一信令时,确定该目标HARQ不能延迟传输,该第一信令用于指示该 UE通过子时隙进行数据传输;当接收到该基站发送的第二信令时,确定该目标HARQ能够延迟传输,该第二信令用于指示该UE通过时隙进行数据传输。
在本公开的一个实施例中,该第二判断子模块,用于:当UE在目标下行资源上接收到下行数据传输调度DCI时,确定目标HARQ不能延迟传输,目标下行资源不为UE接收按照时隙传输的下行数据的调度DCI的下行资源。
在本公开的一个实施例中,该第一上行资源为PUCCH,该判断模块502包括第一确定子模块和第三判断子模块。
第一确定子模块,用于确定该PUCCH的模式;
第三判断子模块,用于根据该PUCCH的模式判断该目标HARQ是否能够延迟传输。
在本公开的一个实施例中,该第一上行资源为PUCCH,该判断模块502包括第二确定子模块和第四判断子模块。
该第二确定子模块,用于确定该PUCCH在时域上的长度;
该第四判断子模块,用于当该PUCCH在时域上的长度小于或等于第二预设长度阈值时,确定该目标HARQ不能延迟传输;当该PUCCH在时域上的长度大于该第二预设长度阈值时,确定该目标HARQ能够延迟传输。
在本公开的一个实施例中,该第一上行资源为PUCCH,该判断模块502包括第三确定子模块和第五判断子模块。
该第三确定子模块,用于确定该PUCCH在频域上占用的子载波的个数;
该第五判断子模块,用于当该PUCCH在频域上占用的子载波的个数小于或等于预设个数阈值时,确定该目标HARQ能够延迟传输;当该PUCCH在频域上占用的子载波的个数大于该预设个数阈值时,确定该目标HARQ不能延迟传输。
在本公开的一个实施例中,该判断模块502包括第六判断子模块。
该第六判断子模块,用于当接收到第一内部高层信令时,确定该目标HARQ不能延迟传输,该第一内部高层信令是该UE的高层在目标下行数据对 应的通信业务为低延迟业务时生成的,该目标HARQ用于指示该UE是否正确接收到该目标下行数据;当接收到第二内部高层信令时,确定该目标HARQ能够延迟传输,该第二内部高层信令是该UE的高层在该目标下行数据对应的通信业务不为低延迟业务时生成的。
综上所述,本公开实施例提供的信息传输装置,通过当第一上行资源和第二上行资源在时域上部分重叠,且目标HARQ能够延迟传输时,将该目标HARQ复用至第二上行资源上传输,这样,能够解决用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ的问题。
关于上述实施例中的装置,其中各个模块执行操作的具体方式已经在有关该方法的实施例中进行了详细描述,此处将不做详细阐述说明。
图7是根据一示例性实施例示出的一种信息传输装置700的框图,该信息传输装置700可以为图1所示的基站10。参照图7,该信息传输装置700包括发送模块701。
该发送模块701,用于向UE发送延迟信息,该延迟信息用于指示目标HARQ是否能够延迟传输,该UE用于在第一上行资源和第二上行资源在时域上部分重叠,且该延迟信息指示该目标HARQ能够延迟传输时,将该目标HARQ复用至该第二上行资源上传输。
其中,该第一上行资源为基站分配给该UE的用于传输该目标HARQ的上行资源,该第二上行资源为该基站分配给该UE的用于传输上行数据或目标UCI的上行资源,该目标UCI包括SR或CSI,该第一上行资源在时域上位于该第二上行资源之前。
在本公开的一个实施例中,该发送模块701包括第一发送子模块。
该第一发送子模块,用于向该UE发送系统广播消息,该系统广播消息包括该延迟信息。
在本公开的一个实施例中,该发送模块701包括第二发送子模块。
该第二发送子模块,用于向该UE发送RRC信令,该RRC信令包括该延迟信息。
在本公开的一个实施例中,该延迟信息为HARQ进程标识,该HARQ进程标识用于指示该目标HARQ所属的HARQ进程,该发送模块701包括第三发送子模块。
该第三发送子模块,用于向该UE发送第一DCI,该第一DCI用于调度目标下行数据,该目标HARQ用于指示该UE是否正确接收到该目标下行数据,该第一DCI包括该HARQ进程标识;其中,当该HARQ进程标识属于目标标识集合时,该HARQ进程标识指示该目标HARQ能够延迟传输,该目标标识集合包括的每个该进程标识为HARQ能够延迟传输的HARQ进程的标识;当该HARQ进程标识不属于该目标标识集合时,该HARQ进程标识指示该目标HARQ不能延迟传输。
在本公开的一个实施例中,该发送模块701包括第四发送子模块。
该第四发送子模块,用于向该UE发送第六DCI,该第六DCI用于调度目标下行数据,该目标HARQ用于指示该UE是否正确接收到该目标下行数据,该第六DCI包括该延迟信息。
在本公开的一个实施例中,该延迟信息还用于指示该目标HARQ能够延迟传输的最大延迟时长。
综上所述,本公开实施例提供的信息传输装置,通过向UE发送用于指示目标HARQ是否能够延迟传输的延迟信息,使得UE在第一上行资源和第二上行资源在时域上部分重叠,且延迟信息指示目标HARQ能够延迟传输时,将该目标HARQ复用至第二上行资源上传输,这样,能够解决用于传输HARQ的PUCCH和其他PUCCH或PUSCH在时域上部分重叠时,UE如何传输HARQ的问题。
关于上述实施例中的装置,其中各个模块执行操作的具体方式已经在有关该方法的实施例中进行了详细描述,此处将不做详细阐述说明。
图8是根据一示例性实施例示出的一种信息传输装置800的框图。例如,装置800可以是移动电话,计算机,数字广播终端,消息收发设备,游戏控制台,平板设备,医疗设备,健身设备,个人数字助理等。
参照图8,装置800可以包括以下一个或多个组件:处理组件802,存储器804,电源组件806,多媒体组件808,音频组件810,输入/输出(I/O)的接口812,传感器组件814,以及通信组件816。
处理组件802通常控制装置800的整体操作,诸如与显示,电话呼叫,数据通信,相机操作和记录操作相关联的操作。处理组件802可以包括一个或多个处理器820来执行指令,以完成上述的方法实施例中UE20所执行的全部或部分步骤。此外,处理组件802可以包括一个或多个模块,便于处理组件802和其他组件之间的交互。例如,处理组件802可以包括多媒体模块,以方便多媒体组件808和处理组件802之间的交互。
存储器804被配置为存储各种类型的数据以支持在装置800的操作。这些数据的示例包括用于在装置800上操作的任何应用程序或方法的指令,联系人数据,电话簿数据,消息,图片,视频等。存储器804可以由任何类型的易失性或非易失性存储设备或者它们的组合实现,如静态随机存取存储器(SRAM),电可擦除可编程只读存储器(EEPROM),可擦除可编程只读存储器(EPROM),可编程只读存储器(PROM),只读存储器(ROM),磁存储器,快闪存储器,磁盘或光盘。
电源组件806为装置800的各种组件提供电力。电源组件806可以包括电源管理系统,一个或多个电源,及其他与为装置800生成、管理和分配电力相关联的组件。
多媒体组件808包括在所述装置800和用户之间的提供一个输出接口的屏幕。在一些实施例中,屏幕可以包括液晶显示器(LCD)和触摸面板(TP)。如果屏幕包括触摸面板,屏幕可以被实现为触摸屏,以接收来自用户的输入信 号。触摸面板包括一个或多个触摸传感器以感测触摸、滑动和触摸面板上的手势。所述触摸传感器可以不仅感测触摸或滑动动作的边界,而且还检测与所述触摸或滑动操作相关的持续时间和压力。在一些实施例中,多媒体组件808包括一个前置摄像头和/或后置摄像头。当装置800处于操作模式,如拍摄模式或视频模式时,前置摄像头和/或后置摄像头可以接收外部的多媒体数据。每个前置摄像头和后置摄像头可以是一个固定的光学透镜系统或具有焦距和光学变焦能力。
音频组件810被配置为输出和/或输入音频信号。例如,音频组件810包括一个麦克风(MIC),当装置800处于操作模式,如呼叫模式、记录模式和语音识别模式时,麦克风被配置为接收外部音频信号。所接收的音频信号可以被进一步存储在存储器804或经由通信组件816发送。在一些实施例中,音频组件810还包括一个扬声器,用于输出音频信号。
I/O接口812为处理组件802和外围接口模块之间提供接口,上述外围接口模块可以是键盘,点击轮,按钮等。这些按钮可包括但不限于:主页按钮、音量按钮、启动按钮和锁定按钮。
传感器组件814包括一个或多个传感器,用于为装置800提供各个方面的状态评估。例如,传感器组件814可以检测到装置800的打开/关闭状态,组件的相对定位,例如所述组件为装置800的显示器和小键盘,传感器组件814还可以检测装置800或装置800一个组件的位置改变,用户与装置800接触的存在或不存在,装置800方位或加速/减速和装置800的温度变化。传感器组件814可以包括接近传感器,被配置用来在没有任何的物理接触时检测附近物体的存在。传感器组件814还可以包括光传感器,如CMOS或CCD图像传感器,用于在成像应用中使用。在一些实施例中,该传感器组件814还可以包括加速度传感器,陀螺仪传感器,磁传感器,压力传感器或温度传感器。
通信组件816被配置为便于装置800和其他设备之间有线或无线方式的通信。装置800可以接入基于通信标准的无线网络,如WiFi,2G或3G,或它们 的组合。在一个示例性实施例中,通信部件816经由广播信道接收来自外部广播管理系统的广播信号或广播相关信息。在一个示例性实施例中,所述通信部件816还包括近场通信(NFC)模块,以促进短程通信。例如,在NFC模块可基于射频识别(RFID)技术,红外数据协会(IrDA)技术,超宽带(UWB)技术,蓝牙(BT)技术和其他技术来实现。
在示例性实施例中,装置800可以被一个或多个应用专用集成电路(ASIC)、数字信号处理器(DSP)、数字信号处理设备(DSPD)、可编程逻辑器件(PLD)、现场可编程门阵列(FPGA)、控制器、微控制器、微处理器或其他电子元件实现,用于执行上述方法实施例中UE20所执行的技术过程。
在示例性实施例中,还提供了一种包括指令的非临时性计算机可读存储介质,例如包括指令的存储器804,上述指令可由装置800的处理器820执行以完成上述方法实施例中UE20所执行的技术过程。例如,所述非临时性计算机可读存储介质可以是ROM、随机存取存储器(RAM)、CD-ROM、磁带、软盘和光数据存储设备等。
图9是根据一示例性实施例示出的一种信息传输装置900的框图。例如,信息传输装置900可以是基站。如图9所示,信息传输装置900可以包括:处理器901、接收机902、发射机903和存储器904。接收机902、发射机903和存储器904分别通过总线与处理器901连接。
其中,处理器901包括一个或者一个以上处理核心,处理器901通过运行软件程序以及模块以执行本公开实施例提供的信息传输方法中基站所执行的方法。存储器904可用于存储软件程序以及模块。具体的,存储器904可存储操作系统9041、至少一个功能所需的应用程序模块9042。接收机902用于接收其他设备发送的通信数据,发射机903用于向其他设备发送通信数据。
图10是根据一示例性实施例示出的一种信息传输系统1000的框图,如图 10所示,该信息传输系统1000包括基站1001和UE 1002。
其中,基站1001用于执行图4所示实施例中基站所执行的信息传输方法。
UE 1002用于执行图4所示实施例中UE所执行的信息传输方法。
在示例性实施例中,还提供了一种计算机可读存储介质,该计算机可读存储介质为非易失性的计算机可读存储介质,该计算机可读存储介质中存储有计算机程序,存储的计算机程序被处理组件执行时能够实现一种信息传输方法,例如,该信息传输方法可以为:当第一上行资源和第二上行资源在时域上部分重叠,且目标HARQ能够延迟传输时,将该目标HARQ复用至该第二上行资源上传输;其中,该第一上行资源为基站分配给UE的用于传输该目标HARQ的上行资源,该第二上行资源为该基站分配给该UE的用于传输上行数据或目标UCI的上行资源,该目标UCI包括SR或CSI,该第一上行资源在时域上位于该第二上行资源之前;
或者,该信息传输方法可以为:向UE发送延迟信息,该延迟信息用于指示目标HARQ是否能够延迟传输,该UE用于在第一上行资源和第二上行资源在时域上部分重叠,且该延迟信息指示该目标HARQ能够延迟传输时,将该目标HARQ复用至该第二上行资源上传输;其中,该第一上行资源为基站分配给该UE的用于传输该目标HARQ的上行资源,该第二上行资源为该基站分配给该UE的用于传输上行数据或目标UCI的上行资源,该目标UCI包括SR或CSI,该第一上行资源在时域上位于该第二上行资源之前。
本领域技术人员在考虑说明书及实践这里公开的发明后,将容易想到本公开的其它实施方案。本申请旨在涵盖本公开的任何变型、用途或者适应性变化,这些变型、用途或者适应性变化遵循本公开的一般性原理并包括本公开未公开的本技术领域中的公知常识或惯用技术手段。说明书和实施例仅被视为示例性的,本公开的真正范围和精神由下面的权利要求指出。
应当理解的是,本公开并不局限于上面已经描述并在附图中示出的精确结构,并且可以在不脱离其范围进行各种修改和改变。本公开的范围仅由所附的权利要求来限制。

Claims (34)

  1. 一种信息传输方法,其特征在于,所述方法包括:
    当第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
    其中,所述第一上行资源为基站分配给用户设备UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
  2. 根据权利要求1所述的方法,其特征在于,所述第一上行资源用于传输多个所述目标HARQ,所述当第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输,包括:
    当所述第一上行资源和所述第二上行资源在时域上部分重叠,且每个所述目标HARQ均能够延迟传输时,将所述多个目标HARQ复用至所述第二上行资源上传输。
  3. 根据权利要求1所述的方法,其特征在于,所述当第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输,包括:
    当所述第一上行资源和所述第二上行资源在时域上部分重叠,且所述目标HARQ能够延迟传输时,获取所述目标HARQ能够延迟传输的最大延迟时长;
    当所述第二上行资源在时域上距离所述第一上行资源的间隔小于或等于所述最大延迟时长时,将所述目标HARQ复用至所述第二上行资源上传输。
  4. 根据权利要求1所述的方法,其特征在于,所述方法还包括:
    当所述第一上行资源和所述第二上行资源在时域上部分重叠,且所述目标HARQ不能延迟传输时,将所述目标UCI复用至所述第一上行资源上传输。
  5. 根据权利要求1所述的方法,其特征在于,所述方法还包括:
    判断所述目标HARQ是否能够延迟传输。
  6. 根据权利要求5所述的方法,其特征在于,所述判断所述目标HARQ是否能够延迟传输,包括:
    接收所述基站发送的延迟信息,所述延迟信息用于指示所述目标HARQ是否能够延迟传输;
    根据所述延迟信息判断所述目标HARQ是否能够延迟传输。
  7. 根据权利要求6所述的方法,其特征在于,所述接收所述基站发送的延迟信息,包括:
    接收所述基站发送的系统广播消息,所述系统广播消息包括所述延迟信息。
  8. 根据权利要求6所述的方法,其特征在于,所述接收所述基站发送的延迟信息,包括:
    接收所述基站发送的无线资源控制RRC信令,所述RRC信令包括所述延迟信息。
  9. 根据权利要求6所述的方法,其特征在于,所述延迟信息为HARQ进程标识,所述HARQ进程标识用于指示所述目标HARQ所属的HARQ进程,所述接收所述基站发送的延迟信息,包括:
    接收所述基站发送的第一下行控制信息DCI,所述第一DCI用于调度目标 下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第一DCI包括所述HARQ进程标识;
    所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
    当所述HARQ进程标识属于目标标识集合时,确定所述目标HARQ能够延迟传输,所述目标标识集合包括的每个所述进程标识为HARQ能够延迟传输的HARQ进程的标识;
    当所述HARQ进程标识不属于所述目标标识集合时,确定所述目标HARQ不能延迟传输。
  10. 根据权利要求5所述的方法,其特征在于,所述判断所述目标HARQ是否能够延迟传输,包括:
    当所述UE通过子时隙进行数据传输时,确定所述目标HARQ不能延迟传输;
    当所述UE通过时隙进行数据传输时,确定所述目标HARQ能够延迟传输。
  11. 根据权利要求10所述的方法,其特征在于,所述当所述UE通过子时隙进行数据传输时,确定所述目标HARQ不能延迟传输,包括:
    当接收到所述基站发送的第一信令时,确定所述目标HARQ不能延迟传输,所述第一信令用于指示所述UE通过子时隙进行数据传输;
    所述当所述UE通过时隙进行数据传输时,确定所述目标HARQ能够延迟传输,包括:
    当接收到所述基站发送的第二信令时,确定所述目标HARQ能够延迟传输,所述第二信令用于指示所述UE通过时隙进行数据传输。
  12. 根据权利要求10所述的方法,其特征在于,所述当所述UE通过子时隙进行数据传输时,确定所述目标HARQ不能延迟传输,包括:
    当所述UE在目标下行资源上接收到下行数据传输调度DCI时,确定所述目标HARQ不能延迟传输,所述目标下行资源不为所述UE接收按照时隙传输的下行数据的调度DCI的下行资源。
  13. 根据权利要求6所述的方法,其特征在于,所述延迟信息为第一时间间隔指示信息,所述第一时间间隔指示信息用于指示第二DCI在时域上距离目标下行数据的间隔,所述第二DCI用于调度所述目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述接收所述基站发送的延迟信息,包括:
    接收所述基站发送的所述第二DCI,所述第二DCI包括所述第一时间间隔指示信息;
    所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
    当所述第一时间间隔指示信息所指示的间隔小于或等于第一预设间隔阈值时,确定所述目标HARQ不能延迟传输;
    当所述第一时间间隔指示信息所指示的间隔大于所述第一预设间隔阈值时,确定所述目标HARQ能够延迟传输。
  14. 根据权利要求6所述的方法,其特征在于,所述延迟信息为第二时间间隔指示信息,所述第二时间间隔指示信息用于指示目标下行数据在时域上距离所述目标HARQ的间隔,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述接收所述基站发送的延迟信息,包括:
    接收所述基站发送的第三DCI,所述第三DCI用于调度所述目标下行数据,所述第三DCI包括所述第二时间间隔指示信息;
    所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
    当所述第二时间间隔指示信息所指示的间隔小于或等于第二预设间隔阈值时,确定所述目标HARQ不能延迟传输;
    当所述第二时间间隔指示信息所指示的间隔大于所述第二预设间隔阈值时,确定所述目标HARQ能够延迟传输。
  15. 根据权利要求6所述的方法,其特征在于,所述延迟信息包括第一时间间隔指示信息和第二时间间隔指示信息,所述第一时间间隔指示信息用于指示第四DCI在时域上距离目标下行数据的间隔,所述第二时间间隔指示信息用于指示所述目标下行数据在时域上距离所述目标HARQ的间隔,所述第四DCI用于调度所述目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述接收所述基站发送的延迟信息,包括:
    接收所述基站发送的所述第四DCI,所述第四DCI包括所述第一时间间隔指示信息和所述第二时间间隔指示信息;
    所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
    当所述第一时间间隔指示信息所指示的间隔和所述第二时间间隔指示信息所指示的间隔之和小于或等于第三预设间隔阈值时,确定所述目标HARQ不能延迟传输;
    当所述第一时间间隔指示信息所指示的间隔和所述第二时间间隔指示信息所指示的间隔之和大于所述第三预设间隔阈值时,确定所述目标HARQ能够延迟传输。
  16. 根据权利要求6所述的方法,其特征在于,所述延迟信息为长度指示信息,所述长度指示信息用于指示目标下行数据在时域上的长度,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述接收所述基站发送的延迟信息,包括:
    接收所述基站发送的第五DCI,所述第五DCI用于调度所述目标下行数据,所述第五DCI包括所述长度指示信息;
    所述根据所述延迟信息判断所述目标HARQ是否能够延迟传输,包括:
    当所述长度指示信息所指示的长度小于或等于第一预设长度阈值时,确定所述目标HARQ不能延迟传输;
    当所述长度指示信息所指示的长度大于所述第一预设长度阈值时,确定所述目标HARQ能够延迟传输。
  17. 根据权利要求6所述的方法,其特征在于,所述接收所述基站发送的延迟信息,包括:
    接收所述基站发送的第六DCI,所述第六DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第六DCI包括所述延迟信息。
  18. 根据权利要求17所述的方法,其特征在于,所述延迟信息还用于指示所述目标HARQ能够延迟传输的最大延迟时长。
  19. 根据权利要求5所述的方法,其特征在于,所述第一上行资源为物理上行链路控制信道PUCCH,所述判断所述目标HARQ是否能够延迟传输,包括:
    确定所述PUCCH的模式;
    根据所述PUCCH的模式判断所述目标HARQ是否能够延迟传输。
  20. 根据权利要求5所述的方法,其特征在于,所述第一上行资源为PUCCH,所述判断所述目标HARQ是否能够延迟传输,包括:
    确定所述PUCCH在时域上的长度;
    当所述PUCCH在时域上的长度小于或等于第二预设长度阈值时,确定所述目标HARQ不能延迟传输;
    当所述PUCCH在时域上的长度大于所述第二预设长度阈值时,确定所述目标HARQ能够延迟传输。
  21. 根据权利要求5所述的方法,其特征在于,所述第一上行资源为PUCCH,所述判断所述目标HARQ是否能够延迟传输,包括:
    确定所述PUCCH在频域上占用的子载波的个数;
    当所述PUCCH在频域上占用的子载波的个数小于或等于预设个数阈值时,确定所述目标HARQ能够延迟传输;
    当所述PUCCH在频域上占用的子载波的个数大于所述预设个数阈值时,确定所述目标HARQ不能延迟传输。
  22. 根据权利要求5所述的方法,其特征在于,所述判断所述目标HARQ是否能够延迟传输,包括:
    当接收到第一内部高层信令时,确定所述目标HARQ不能延迟传输,所述第一内部高层信令是所述UE的高层在目标下行数据对应的通信业务为低延迟业务时生成的,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据;
    当接收到第二内部高层信令时,确定所述目标HARQ能够延迟传输,所述第二内部高层信令是所述UE的高层在所述目标下行数据对应的通信业务不为低延迟业务时生成的。
  23. 一种信息传输方法,其特征在于,所述方法包括:
    向用户设备UE发送延迟信息,所述延迟信息用于指示目标混合自动重传请求HARQ是否能够延迟传输,所述UE用于在第一上行资源和第二上行资源在时域上部分重叠,且所述延迟信息指示所述目标HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
    其中,所述第一上行资源为基站分配给所述UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道 状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
  24. 根据权利要求23所述的方法,其特征在于,所述向用户设备UE发送延迟信息,包括:
    向所述UE发送系统广播消息,所述系统广播消息包括所述延迟信息。
  25. 根据权利要求23所述的方法,其特征在于,所述向用户设备UE发送延迟信息,包括:
    向所述UE发送RRC信令,所述RRC信令包括所述延迟信息。
  26. 根据权利要求23所述的方法,其特征在于,所述延迟信息为HARQ进程标识,所述HARQ进程标识用于指示所述目标HARQ所属的HARQ进程,所述向用户设备UE发送延迟信息,包括:
    向所述UE发送第一DCI,所述第一DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第一DCI包括所述HARQ进程标识;
    当所述HARQ进程标识属于目标标识集合时,所述HARQ进程标识指示所述目标HARQ能够延迟传输,所述目标标识集合包括的每个所述进程标识为HARQ能够延迟传输的HARQ进程的标识;
    当所述HARQ进程标识不属于所述目标标识集合时,所述HARQ进程标识指示所述目标HARQ不能延迟传输。
  27. 根据权利要求23所述的方法,其特征在于,所述向用户设备UE发送延迟信息,包括:
    向所述UE发送第六DCI,所述第六DCI用于调度目标下行数据,所述目标HARQ用于指示所述UE是否正确接收到所述目标下行数据,所述第六DCI包括所述延迟信息。
  28. 根据权利要求27所述的方法,其特征在于,所述延迟信息还用于指示所述目标HARQ能够延迟传输的最大延迟时长。
  29. 一种信息传输装置,其特征在于,所述信息传输装置,包括:
    第一传输模块,用于在第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
    其中,所述第一上行资源为基站分配给用户设备UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
  30. 一种信息传输装置,其特征在于,所述信息传输装置,包括:
    发送模块,用于向用户设备UE发送延迟信息,所述延迟信息用于指示目标混合自动重传请求HARQ是否能够延迟传输,所述UE用于在第一上行资源和第二上行资源在时域上部分重叠,且所述延迟信息指示所述目标HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
    其中,所述第一上行资源为基站分配给所述UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
  31. 一种信息传输装置,其特征在于,包括:
    处理器;
    用于存储处理器可执行的指令的存储器;
    其中,所述处理器被配置为:
    当第一上行资源和第二上行资源在时域上部分重叠,且目标混合自动重传请求HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
    其中,所述第一上行资源为基站分配给用户设备UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
  32. 一种信息传输装置,其特征在于,包括:
    处理器;
    用于存储处理器可执行的指令的存储器;
    其中,所述处理器被配置为:
    向用户设备UE发送延迟信息,所述延迟信息用于指示目标混合自动重传请求HARQ是否能够延迟传输,所述UE用于在第一上行资源和第二上行资源在时域上部分重叠,且所述延迟信息指示所述目标HARQ能够延迟传输时,将所述目标HARQ复用至所述第二上行资源上传输;
    其中,所述第一上行资源为基站分配给所述UE的用于传输所述目标HARQ的上行资源,所述第二上行资源为所述基站分配给所述UE的用于传输上行数据或目标上行控制信息UCI的上行资源,所述目标UCI包括调度请求SR或信道状态信息CSI,所述第一上行资源在时域上位于所述第二上行资源之前。
  33. 一种信息传输系统,其特征在于,所述信息传输系统包括如权利要求29所述的信息传输装置和如权利要求30所述的信息传输装置。
  34. 一种计算机可读存储介质,其特征在于,所述计算机可读存储介质中存储有计算机程序,存储的所述计算机程序被处理组件执行时能够实现如权利 要求1至22任一所述的信息传输方法;或者,
    存储的所述计算机程序被处理组件执行时能够实现如权利要求23至28任一所述的信息传输方法。
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