Parameter configuration method, device and storage medium
By receiving information to determine the PUSCH transmission target beta offset value of UCI in different types of symbols, the problem of UCI resource allocation in sub-band full-duplex and co-frequency simultaneous full-duplex is solved, the UL coverage and transmission capacity of the TDD system are improved, the latency is reduced, and the reliability of UCI is improved.
Patent Information
- Application Number
- PCT/CN2024/134456
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-02
- Filing Date
- 2024-11-26
- Publication Date
- 2025-10-09
AI Technical Summary
After the introduction of sub-band full-duplex and co-frequency simultaneous full-duplex sub-bands, existing technologies have difficulty in effectively allocating resources for uplink control information, resulting in higher interference in the UL portion of the bandwidth than in the DL portion of the bandwidth, affecting the reliability of UCI transmission.
By receiving the first information and/or the second information, the PUSCH transmission target beta offset value for UCI in different types of symbols is determined, including the beta offset value for HARQ-ACK information, the first part of CSI and the second part of CSI, thereby realizing the multiplexing of UCI in PUSCH.
The UL coverage of the TDD system is improved, the UL transmission delay is reduced, the UL transmission capacity is increased, and the reliability of UCI transmission is improved.
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Figure CN2024134456_09102025_PF_FP_ABST
Abstract
Description
Parameter configuration method, device and storage medium Technical Field
[0001] The embodiments of the present application relate to the field of communication technology, and in particular to a parameter configuration method, device, and storage medium. Background Art
[0002] In related technologies, uplink control information (UCI) can be transmitted in the physical uplink shared channel (PUSCH). To ensure the reliability of UCI transmission, a parameter is used to determine the PUSCH resource used by UCI. However, with the introduction of subband full duplex (SBFD) and co-frequency co-time full duplex (CCFD) subbands, it may be necessary to configure the same parameter when performing PUSCH transmission in SBFD symbols and non-SBFD symbols (or CCFD symbols and non-CCFD symbols). Generally, interference in the downlink bandwidth is higher than interference in the uplink bandwidth part (BWP) because adjacent frequency domains are used for downlink transmission, while adjacent frequency domain resources are not used for downlink transmission. Summary of the Invention
[0003] The embodiments of the present application provide a parameter configuration method, device, and storage medium, which facilitate the transmission of uplink control information.
[0004] To achieve the above objectives, an embodiment of the present application provides a parameter configuration method, which is performed by a user equipment and includes:
[0005] Receive first information and / or second information; wherein the first information includes DCI triggering PUSCH, and the second information includes: a beta offset value for configuring a semi-static or dynamic beta offset value;
[0006] Determine a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol;
[0007] The UCI is multiplexed in the PUSCH transmission based on the target beta offset value; wherein the target beta offset value includes a first beta offset value for transmitting HARQ-ACK information in the PUSCH, a second beta offset value for transmitting the first part of the CSI in the PUSCH, and a third beta offset value for transmitting the second part of the CSI in the PUSCH.
[0008] To achieve the above objectives, an embodiment of the present application provides a parameter configuration method, which is performed by a base station and includes:
[0009] Sending first information and / or second information; wherein the first information includes DCI triggering PUSCH, and the second information includes: a beta offset value for configuring a semi-static or dynamic beta offset value;
[0010] Determine a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol;
[0011] Receive the UCI multiplexed in the PUSCH transmission based on the target beta offset value; wherein the target beta offset value includes a first beta offset value for transmitting HARQ-ACK information in the PUSCH, a second beta offset value for transmitting the first part of CSI in the PUSCH, and a third beta offset value for transmitting the second part of CSI in the PUSCH.
[0012] In order to achieve the above-mentioned purpose, an embodiment of the present application provides a computer device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that when the processor executes the program, the parameter configuration method as described in the embodiment of the present application is implemented.
[0013] In order to achieve the above-mentioned purpose, an embodiment of the present application provides a computer-readable storage medium on which a computer program is stored, characterized in that when the program is executed by a processor, the parameter configuration method as described in the embodiment of the present application is implemented.
[0014] The embodiment of the present application discloses a parameter configuration method, device and storage medium. It includes: receiving first information and / or second information; wherein the first information includes DCI that triggers PUSCH, and the second information includes: a beta offset value for configuring a semi-static or dynamic beta offset value; determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol; multiplexing UCI in PUSCH transmission based on the target beta offset value; wherein the target beta offset value includes a first beta offset value for HARQ-ACK information transmission in PUSCH, a second beta offset value for the first part of CSI transmission in PUSCH, and a third beta offset value for the second part of CSI transmission in PUSCH. It is beneficial to the transmission of uplink control information. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] FIG1 is a flow chart of a parameter configuration method provided in an embodiment of the present application;
[0016] FIG2 is a schematic diagram of a method in which a portion of UCI is also punctured / transmission canceled, provided by an embodiment of the present application;
[0017] FIG3 is a schematic diagram of multiplexing UCI into the remaining resources in the PUSCH according to an embodiment of the present application;
[0018] FIG4 is a flow chart of a parameter configuration method provided in an embodiment of the present application;
[0019] FIG5 is a schematic diagram of the structure of a parameter configuration device provided in an embodiment of the present application;
[0020] FIG6 is a schematic diagram of the structure of a parameter configuration device provided in an embodiment of the present application;
[0021] FIG7 is a schematic structural diagram of a computer device provided in an embodiment of the present application. DETAILED DESCRIPTION
[0022] In order to improve the UL coverage of the Time Division Duplexing (TDD) system, reduce the UL transmission latency and increase the UL transmission capacity, subband full duplex (SBFD) technology is proposed for RRC connected UEs.
[0023] In some or all DL symbols / slots, one UL subband and up to two DL subbands are configured. For example, the UL subband and the DL subband are required to be configured based on a DL BWP and UL BWP pair, and the DL BWP and UL BWP pair are required to have the same center frequency. In the frequency domain, the frequency domain resources of the UL subband and the DL subband are generally considered to be configured within the frequency domain range of the DL BWP. The DL BWP is valid within the DL symbol or slot. However, in the frequency domain, the frequency domain resources of the UL subband and the DL subband can also be configured outside the DL BWP, for example, if some or all of the frequency domain resources of the UL subband and the DL subband exceed the frequency domain range of the DL BWP.
[0024] The UL subband and the DL subband are also referred to as SBFD subbands. That is, an SBFD subband is configured in a DL BWP in a DL symbol / slot. The SBFD subband generally includes at least one DL subband and one UL subband.
[0025] For example, in a 100 MHz TDD carrier, 20 consecutive resource blocks (RBs) are allocated as the UL subband in the DL BWP within a DL symbol / slot. The remaining frequency domain resources in the DL BWP are the DL subband (gap allocation is optional). Alternatively, a DL subband can be allocated within the DL BWP within a DL symbol / slot. In this way, within a DL symbol / slot, the UL subband can be used for UL transmission, and the DL subband can be used for DL transmission. Currently, subband full-duplexing technology includes the following features: the base station is capable of simultaneously receiving (in the UL subband) and transmitting (in the DL subband) in the same time domain. The UE is not capable of simultaneously receiving (in the DL subband) and transmitting (in the UL subband) in the same time domain. Here, the UL subband and DL subband are allocated within the same Orthogonal Frequency Division Multiplexing (OFDM) symbol / slot and are frequency-divided.
[0026] For ease of description, some technical terms are as follows: A symbol configured with an SBFD subband is called an SBFD symbol. A slot containing an SBFD symbol is called an SBFD slot. A symbol not configured with an SBFD subband is called a non-SBFD symbol (that is, a regular symbol). A slot not containing an SBFD symbol is called a non-SBFD slot.
[0027] In order to further improve system efficiency and spectrum efficiency, the present application proposes co-frequency co-time full duplex (CCFD) operation. First, CCFD subband resources are proposed, that is, for one carrier, a CCFD subband is configured in the frequency domain (the configuration of the CCFD subband can reuse the configuration of the following SBFD subband). In one carrier, the base station configures an RB set as a CCFD subband based on continuous RBs in the frequency domain and uses it for CCFD operation, and configures some slots or symbols as CCFD subbands based on symbols or slots in the time domain and uses them for CCFD operation. In this way, some time-frequency resources for CCFD operation (denoted as resource A) can be obtained. Resource A is also called CCFD subband, including resources that can be used for DL transmission and UL reception. At least from the base station side, resource A can be used for co-frequency simultaneous full-duplex transmission. That is, the base station can use the same time and the same frequency to send DL signals and receive UL signals in resource A at the same time. The UE side can only support time-division DL transmission and UL transmission. In this application, a symbol / slot configured with resource A is referred to as a CCFD symbol / slot, and a symbol / slot not configured with resource A is referred to as a non-CCFD symbol / slot (eg, a conventional DL, UL or F symbol / slot).
[0028] The following related methods are provided based on SBFD subbands, but these methods can also be used based on CCFD subbands. For example, it is only necessary to replace the SBFD symbols / slots in these methods with CCFD symbols / slots, and replace the non-SBFD symbols / slots with non-CCFD symbols / slots. Furthermore, if the following related methods are provided based on UL subbands or DL subbands, then the DL subbands and UL subbands can be replaced by CCFD subbands because CCFD subbands can support both DL reception and UL transmission. Correspondingly, UCI multiplexing on PUSCH in SBFD subbands / UL subbands in SBFD symbols and UCI multiplexing on PUSCH in UL BWPs in non-SBFD symbols can also be replaced by UCI multiplexing on PUSCH in CCFD subbands in CCFD symbols and UCI multiplexing on PUSCH in UL BWPs in non-CCFD symbols.
[0029] FIG1 is a flow chart of a parameter configuration method provided by an embodiment of the present application. The method is performed by a user equipment (UE). As shown in FIG1 , the method includes:
[0030] S110, receiving first information and / or second information.
[0031] Among them, the first information includes downlink control information (DCI) that triggers PUSCH, and the second information includes: for configuring a semi-static beta offset value or a dynamic beta offset value. The first information may be information in physical layer signaling, and the second information may be information in radio resource control (RRC) signaling. The DCI that triggers PUSCH can be understood as the DCI that schedules or activates PUSCH, that is, the PUSCH scheduled by DCI and the semi-static PUSCH activated by DCI. In this embodiment, the UE receives physical layer signaling and RRC signaling sent by the base station.
[0032] S120: Determine a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information.
[0033] The type of symbol includes a first type of symbol and a second type of symbol. The first type of symbol is an SBFD symbol, and the second type of symbol is a non-SBFD symbol; or the first type of symbol is a CCFD symbol, and the second type of symbol is a non-CCFD symbol.
[0034] S130: Multiplex the UCI in PUSCH transmission based on the target beta offset value.
[0035] The target beta offset value includes a first beta offset value for transmitting Hybrid Automatic Repeat Request Acknowledgement (HARQ-ACK) information on the PUSCH, a second beta offset value for transmitting the first portion of Channel State Information (CSI) on the PUSCH, and a third beta offset value for transmitting the second portion of CSI on the PUSCH. That is, UCI includes HARQ-ACK information, the first portion of CSI, and the second portion of CSI.
[0036] In one embodiment, if the first information includes: the DCI triggering the PUSCH does not include a beta offset value indication field, and the second information includes a beta offset value for configuring a semi-static, then a target beta offset value (hereinafter referred to as betaoffset) for PUSCH transmission of UCI in a type symbol is determined based on the first information and / or the second information, including at least one of the following: determining the semi-static beta offset value as a target beta offset value for PUSCH transmission of a UL subband for UCI transmission in a first type symbol; or, determining the semi-static beta offset value as a target beta offset value for PUSCH transmission of a UL BWP for UCI transmission in a second type symbol; or, determining the semi-static beta offset value as a target beta offset value for PUSCH transmission of a first priority UL subband for UCI transmission in a first type symbol; or, determining the semi-static beta offset value as a target beta offset value for PUSCH transmission of a UL BWP for UCI transmission in a second type symbol. The target beta offset value of the first priority PUSCH transmission of the BWP is determined as follows: or, the semi-static beta offset value is determined as the target beta offset value of the second priority PUSCH transmission of the UL subband in the first type symbol for UCI transmission; or, the semi-static beta offset value is determined as the target beta offset value of the second priority PUSCH transmission of the UL BWP in the second type symbol.
[0037] For example, taking SBFD technology as an example, if a DCI format does not contain a betaoffset indication field, and the DCI format triggers a PUSCH transmission from the UE, and the UE is configured by higher-layer signaling that the betaoffsets value is semi-static, then the UE considers the following mechanism to determine the betaoffset value for PUSCH transmission in SBFD symbols and in non-SBFD symbols: the base station configures the UE with a semi-static betaoffset value for the PUSCH transmission to be transmitted in the UL subband in the SBFD symbol, and the UE performs UCI multiplexing in the PUSCH transmission based on the betaoffset value. Alternatively, the base station configures the UE with a semi-static betaoffset value for the PUSCH transmission to be transmitted in the UL BWP of the non-SBFD symbol, and the UE performs UCI multiplexing in the PUSCH transmission based on the betaoffset value.
[0038] Among them, the base station and UE agree that if the PUSCH transmission is performed in the UL subband in the SBFD symbol, then HARQ-ACK, CSI-1 (first part of CSI) and CSI-2 (second part of CSI) are transmitted in the PUSCH based on betaoffset1, betaoffset2 and betaoffset3 respectively. If the PUSCH transmission is performed in the UL BWP in the non-SBFD symbol, then HARQ-ACK, CSI-1 (first part of CSI) and CSI-2 (second part of CSI) are transmitted in the PUSCH based on betaoffset1-1, betaoffset2-1 and betaoffset3-1 respectively.
[0039] Exemplarily, if a DCI format does not include a betaoffset indication field, and the DCI format triggers a PUSCH transmission with priority 1 or priority 0 from the UE, and the UE is configured by higher layer signaling that the betaoffsets value is semi-static, the UE considers the following mechanism to determine the betaoffset value for PUSCH transmissions in SBFD symbols and in non-SBFD symbols: the base station configures the UE with a semi-static betaoffset value for the PUSCH transmission with priority 1 to be transmitted in the UL subband in the SBFD symbol, and the UE performs UCI multiplexing in the PUSCH transmission based on the betaoffset value.
[0040] The betaoffset value is H_betaoffset1 used for HARQ-ACK information with priority 1 transmitted in the PUSCH.
[0041] Optionally, the base station configures a semi-static betaoffset value for the UE for the PUSCH transmission with priority 0 to be transmitted in the UL subband in the SBFD symbol, and the UE performs UCI multiplexing in the PUSCH transmission based on the betaoffset value.
[0042] The betaoffset value is L_betaoffset1 for HARQ-ACK information with priority 0 transmitted in the PUSCH.
[0043] Optionally, the base station configures a semi-static betaoffset value for the UE for the PUSCH transmission with priority 1 to be transmitted in the UL BWP in the non-SBFD symbol, and the UE performs UCI multiplexing in the PUSCH transmission based on the betaoffset value.
[0044] The betaoffset value is H_betaoffset1-1, which is used for HARQ-ACK information with priority 1 to be transmitted in the PUSCH.
[0045] The base station configures a semi-static betaoffset value for the UE for the PUSCH transmission with priority 0 to be transmitted in the UL BWP in the non-SBFD symbol, and the UE performs UCI multiplexing in the PUSCH transmission based on the betaoffset value.
[0046] Here, the betaoffset value is L_betaoffset1-1 for HARQ-ACK information with priority 0 transmitted in the PUSCH.
[0047] Among them, priority 1 is higher than priority 0.
[0048] In this embodiment, the base station and the UE agree that if the PUSCH transmission with priority 1 is performed in the UL subband in the SBFD symbol, the HARQ-ACK with priority 1 is transmitted in the PUSCH based on H_betaoffset 1. If the PUSCH transmission with priority 1 is performed in the UL BWP in the non-SBFD symbol, the HARQ-ACK with priority 1 is transmitted in the PUSCH based on H_betaoffset 1-1. If the PUSCH transmission with priority 0 is performed in the UL subband in the SBFD symbol, the HARQ-ACK with priority 0 is transmitted in the PUSCH based on L_betaoffset 1. If the PUSCH transmission with priority 0 is performed in the UL BWP in the non-SBFD symbol, the HARQ-ACK with priority 0 is transmitted in the PUSCH based on L_betaoffset 1.
[0049] Optionally, if the first information includes: the DCI triggering the PUSCH does not include a beta offset value indication field, and the second information includes a beta offset value for configuring a semi-static beta offset value. Then, based on the first information and / or the second information, a target beta offset value for PUSCH transmission of UCI in a type symbol is determined, and at least one of the following is also included: if the beta offset value associated with the first type symbol is not configured, the beta offset value associated with the second type symbol is determined as the target beta offset value for PUSCH transmission of the UL subband for UCI transmission in the first type symbol; or, if the beta offset value associated with the second type symbol is not configured, the beta offset value associated with the first type symbol is determined as the target beta offset value for PUSCH transmission of the UL subband for UCI transmission in the second type symbol. a target beta offset value for PUSCH transmission of the BWP for the UL subband in the first type of symbol for UCI transmission; or, if the beta offset value with the first priority associated with the first type of symbol is not configured, the beta offset value with the first priority associated with the second type of symbol is determined as the target beta offset value for PUSCH transmission with the first priority for the UL subband in the first type of symbol for UCI transmission; or, if the beta offset value with the first priority associated with the first type of symbol is not configured, the beta offset value with the second priority associated with the second type of symbol is determined as the target beta offset value for PUSCH transmission with the first priority for the UL subband in the first type of symbol for UCI transmission; or, if the beta offset value with the second priority associated with the first type of symbol is is not configured, determining the beta offset value with the first priority associated with the second type symbol as a target beta offset value for PUSCH transmission with the second priority in the UL subband of the first type symbol for UCI transmission; or, if the beta offset value with the second priority associated with the first type symbol is not configured, determining the beta offset value with the second priority associated with the second type symbol as a target beta offset value for PUSCH transmission with the second priority in the UL subband of the first type symbol for UCI transmission; or, if the beta offset value with the first priority associated with the second type symbol is not configured, determining the beta offset value with the first priority associated with the first type symbol as a target beta offset value for PUSCH transmission with the first priority in the UL BWP of the second type symbol for UCI transmission; or, if the beta offset value with the first priority associated with the second type symbol is not configured, determining the beta offset value with the second priority associated with the first type symbol as a target beta offset value for PUSCH transmission with the first priority in the UL BWP of the second type symbol for UCI transmission;Alternatively, if the beta offset value with the second priority associated with the second type symbol is not configured, the beta offset value with the first priority associated with the first type symbol is determined as the target beta offset value for PUSCH transmission with the second priority in the UL BWP of the second type symbol for UCI transmission; or, if the beta offset value with the second priority associated with the second type symbol is not configured, the beta offset value with the second priority associated with the first type symbol is determined as the target beta offset value for PUSCH transmission with the second priority in the UL BWP of the second type symbol for UCI transmission.
[0050] Specifically, if the above-mentioned UCI is transmitted in PUSCH, if the betaoffset value associated with SBFD symbols is not configured, the base station and the UE agree that the betaoffset value associated with non-SBFD symbols can be used for UCI transmission in PUSCH in SBFD symbols. If the betaoffset value associated with non-SBFD symbols is not configured, the base station and the UE agree that the betaoffset value associated with SBFD symbols can be used for UCI transmission in PUSCH in non-SBFD symbols.
[0051] It can be assumed that UCI and PUSCH have the same priority index.
[0052] If the above-mentioned UCI is transmitted in a PUSCH with priority 0 (or priority 1), if the betaoffset value with priority 0 (or priority 1) associated with the SBFD symbol (or non-SBFD symbol) is not configured, the base station and the UE agree that the betaoffset value with priority 1 (or with priority 0) associated with the non-SBFD symbol (or SBFD symbol) can be used for UCI to be transmitted in the PUSCH with priority 0 (or priority 1) in the SBFD symbol (or non-SBFD symbol).
[0053] Specifically, if the betaoffset value with priority 0 associated with the SBFD symbol is not configured, the base station and the UE agree that the betaoffset value with priority 1 associated with the non-SBFD symbol can be used for UCI transmission in the PUSCH with priority 0 in the SBFD symbol. If the betaoffset value with priority 0 associated with the SBFD symbol is not configured, the base station and the UE agree that the betaoffset value with priority 0 associated with the non-SBFD symbol can be used for UCI transmission in the PUSCH with priority 0 in the SBFD symbol. If the betaoffset value with priority 1 associated with the SBFD symbol is not configured, the base station and the UE agree that the betaoffset value with priority 1 associated with the non-SBFD symbol can be used for UCI transmission in the PUSCH with priority 1 in the SBFD symbol. If the betaoffset value with priority 1 associated with SBFD symbols is not configured, the base station and UE agree that the betaoffset value with priority 0 associated with non-SBFD symbols can be used for UCI transmission in the PUSCH with priority 1 in the SBFD symbols.
[0054] Specifically, if the betaoffset value with priority 0 associated with the non-SBFD symbol is not configured, the base station and the UE agree that the betaoffset value with priority 1 associated with the SBFD symbol can be used for UCI transmission in the non-SBFD symbol in the PUSCH with priority 0. If the betaoffset value with priority 0 associated with the non-SBFD symbol is not configured, the base station and the UE agree that the betaoffset value with priority 0 associated with the SBFD symbol can be used for UCI transmission in the non-SBFD symbol in the PUSCH with priority 0. If the betaoffset value with priority 1 associated with the non-SBFD symbol is not configured, the base station and the UE agree that the betaoffset value with priority 1 associated with the SBFD symbol can be used for UCI transmission in the non-SBFD symbol in the PUSCH with priority 1. If the betaoffset value with priority 1 associated with non-SBFD symbols is not configured, the base station and UE agree that the betaoffset value with priority 0 associated with SBFD symbols can be used for UCI transmission in the PUSCH with priority 1 in non-SBFD symbols.
[0055] In one embodiment, if the first information includes that the PUSCH is semi-static and the second information includes a beta offset value for configuring the semi-static state, determining a target beta offset value for the PUSCH transmission of UCI in a type symbol based on the first information and / or the second information includes at least one of the following: determining the beta offset value associated with the first type symbol as a target beta offset value for the PUSCH transmission of the UL subband for UCI transmission in the first type symbol; or, determining the beta offset value associated with the second type symbol as a target beta offset value for the PUSCH transmission of the UL BWP for UCI transmission in the second type symbol; or, determining the beta offset value of the first priority associated with the first type symbol as a target beta offset value for the PUSCH transmission of the first priority for the UL subband for UCI transmission in the first type symbol; or, determining the beta offset value of the second priority associated with the first type symbol as a target beta offset value for the PUSCH transmission of the second priority for UCI transmission in the UL subband for UCI transmission in the first type symbol; or, determining the beta offset value of the first priority associated with the second type symbol as a target beta offset value for the PUSCH transmission of the second priority for UCI transmission in the second type symbol. or, determining the beta offset value of the second priority associated with the second type symbol as the target beta offset value for PUSCH transmission of the second priority of the UL BWP in the second type symbol for UCI transmission.
[0056] For example, if a PUSCH transmission is semi-statically configured and the UE is configured with a semi-static betaoffset value, then for the transmission of UCI in the PUSCH in the SBFD symbol, the base station and the UE agree that the betaoffset value associated with the SBFD symbol is used; or, for the transmission of UCI in the PUSCH in the non-SBFD symbol, the base station and the UE agree that the betaoffset value associated with the non-SBFD symbol is used.
[0057] Exemplarily, if the PUSCH transmission has priority 1 and the UCI has priority 1, then for the transmission of the UCI in the PUSCH in the SBFD symbol, the base station and the UE agree that the betaoffset value of priority 1 associated with the SBFD symbol is used. If the PUSCH transmission has priority 0 and the UCI has priority 0, then for the transmission of the UCI in the PUSCH in the SBFD symbol, the base station and the UE agree that the betaoffset value of priority 0 associated with the SBFD symbol is used. If the PUSCH transmission has priority 1 and the UCI has priority 1, then for the transmission of the UCI in the PUSCH in the non-SBFD symbol, the base station and the UE agree that the betaoffset value of priority 1 associated with the non-SBFD symbol is used. If the PUSCH transmission has priority 0 and the UCI has priority 0, then for the transmission of the UCI in the PUSCH in the non-SBFD symbol, the base station and the UE agree that the betaoffset value of priority 0 associated with the non-SBFD symbol is used.
[0058] In one embodiment, if the first information includes: the DCI format for triggering PUSCH is 0_0, and the second information includes a beta offset value for configuring a dynamic, then determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information includes at least one of the following: determining a first value in a set of beta offset values associated with the first type symbol as a target beta offset value for PUSCH transmission of a UL subband for UCI transmission in the first type symbol; or determining a first value in a set of beta offset values associated with the second type symbol as a target beta offset value for PUSCH transmission of a UL subband for UCI transmission in the second type symbol. or, determining the first value in a set of beta offset values of the first priority associated with the first type symbol as the target beta offset value for PUSCH transmission of the UL subband in the first type symbol for UCI transmission; or, determining the first value in a set of beta offset values of the second priority associated with the first type symbol as the target beta offset value for PUSCH transmission of the UL subband in the first type symbol for UCI transmission; or, determining the first value in a set of beta offset values of the second priority associated with the first type symbol as the target beta offset value for PUSCH transmission of the UL subband in the first type symbol for UCI transmission; or, determining the first value in a set of beta offset values of the first priority associated with the second type symbol as the target beta offset value for PUSCH transmission of the UL BWP in the second type symbol for UCI transmission; or, determining the first value in a set of beta offset values of the second priority associated with the second type symbol as the target beta offset value for PUSCH transmission of the UL BWP in the second type symbol for UCI transmission.
[0059] Among them, DCI format 0_0 does not contain the betaoffset indication field.
[0060] For example, if a PUSCH transmission is triggered by DCI0_0 and the UE is configured with a dynamic betaoffset value, then for UCI transmission in this PUSCH in SBFD symbols, the base station and the UE agree that the first betaoffset value in the set associated with the SBFD symbol is used. For UCI transmission in this PUSCH in non-SBFD symbols, the base station and the UE agree that the first betaoffset value in the set associated with the non-SBFD symbol is used.
[0061] For example, if a PUSCH transmission is triggered by DCI0_0, and the UE is configured with a dynamic betaoffset value, then for UCI of priority 1 transmitted in this PUSCH in SBFD symbols, the base station and the UE agree that the first value in the set of betaoffset values for priority 1 associated with the SBFD symbols is used. For UCI of priority 0 transmitted in this PUSCH in SBFD symbols, the base station and the UE agree that the first value in the set of betaoffset values for priority 0 associated with the SBFD symbols is used. For UCI of priority 1 transmitted in this PUSCH in non-SBFD symbols, the base station and the UE agree that the first value in the set of betaoffset values for priority 1 associated with non-SBFD symbols is used. For UCI of priority 0 transmitted in this PUSCH in non-SBFD symbols, the base station and the UE agree that the first value in the set of betaoffset values for priority 0 associated with non-SBFD symbols is used.
[0062] The betaoffset value is dynamic, indicating that a set of betaoffset values is configured. It is assumed here that two sets of betaoffset values are configured and associated with SBFD symbols and non-SBFD symbols, respectively.
[0063] In one embodiment, if the second information includes: a beta offset value for configuring a semi-static beta offset value, and configuring a beta offset value associated with a first type symbol and a beta offset value associated with a second type symbol; or, configuring a set of two beta offset values, one of which is associated with a first type symbol and the other is associated with a second type symbol; then the method for determining the target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information may be: determining the beta offset value associated with the first type symbol as the target beta offset value for PUSCH transmission of a UL subband for UCI transmission in the first type symbol; and determining the beta offset value associated with the second type symbol as the target beta offset value for PUSCH transmission of a UL BWP for UCI transmission in the second type symbol.
[0064] For example, when UCI is transmitted in the PUSCH and is in an SBFD symbol or a non-SBFD symbol, the base station configures a set of betaoffset values, each set containing one betaoffset value. Alternatively, the base station configures a set of betaoffset values, and the set contains two betaoffset values, and the two betaoffset values are associated with non-SBFD symbols and SBFD symbols, respectively, thereby reducing one set configuration.
[0065] In one embodiment, if the second information includes: a beta offset value for configuring a semi-static beta offset value, and configuring a beta offset value associated with a first type symbol and an adjustment parameter; then the method for determining the target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information may be: determining the beta offset value associated with the first type symbol as the target beta offset value for PUSCH transmission of the UL subband for UCI transmission in the first type symbol; determining another beta offset value based on the beta offset value associated with the first type symbol and the adjustment parameter, and determining the other beta offset as the target beta offset value for PUSCH transmission of the UL BWP for UCI transmission in the second type symbol. Or,
[0066] In one embodiment, if the second information includes: a beta offset value for configuring a semi-static beta offset value, and a beta offset value and an adjustment parameter associated with the second type symbol; then the method for determining the target beta offset value for PUSCH transmission of UCI in the type symbol based on the first information and / or the second information may be: determining the beta offset value associated with the second type symbol as the target beta offset value for PUSCH transmission of the UL BWP for UCI transmission in the second type symbol; determining another beta offset based on the beta offset value and the adjustment parameter associated with the second type symbol, and determining the other beta offset as the target beta offset value for PUSCH transmission of the UL subband for UCI transmission in the first type symbol.
[0067] The adjustment parameter includes an offset or a scaling factor, and the offset or the scaling factor is set based on a stable interference difference between transmissions in the UL subband and the UL BWP, and the interference difference may be an average value of historical interference.
[0068] Exemplarily, the base station configures a set of betaoffset values and associates them with non-SBFD symbols, and configures an offset / scaling factor. Based on the betaoffset values in the set and the offset / scaling factor, another betaoffset value is obtained and associated with the SBFD symbol. Alternatively, the base station configures a set of betaoffset values and associates them with SBFD symbols, and configures an offset / scaling factor. Based on the betaoffset values in the set and the offset / scaling factor, another betaoffset value is obtained and associated with the non-SBFD symbol.
[0069] In one embodiment, if the first information includes: the DCI triggering PUSCH includes a beta offset value indication field, and the second information includes: a beta offset value for configuring a dynamic beta offset value, and configuring a beta offset value set associated with a first type of symbol and a beta offset value set associated with a second type of symbol, then determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information includes at least one of the following: determining the beta offset value determined from the beta offset value set associated with the first type of symbol based on the beta offset value indication field as the target beta offset value for PUSCH transmission of the UL subband for UCI transmission in the first type of symbol; or determining the beta offset value determined from the beta offset value set associated with the second type of symbol based on the beta offset value indication field as the target beta offset value for PUSCH transmission of the UL BWP for UCI transmission in the second type of symbol.
[0070] Wherein, if the number of elements in the beta offset value set associated with the first type of symbol is different from the number of elements in the beta offset value set associated with the second type of symbol, the number of bits of the beta offset value indication field is determined according to the maximum number of elements.
[0071] For example, if a DCI format includes a betaoffset indication field, and the DCI format triggers a PUSCH transmission, and the UE is configured by higher-layer signaling to have a dynamic betaoffset value, the UE considers the following mechanism to determine the betaoffset value for PUSCH transmission in SBFD symbols and non-SBFD symbols: the base station configures a set 1 of betaoffset values for the UE, and the set 1 is associated with SBFD symbols, for example, when UCI is transmitted in a PUSCH in a UL subband in a SBFD symbol, the set 1 is used, and the UE performs UCI multiplexing in the PUSCH transmission based on the determined betaoffset value. The base station configures a set 2 of betaoffset values for the UE, and the set 2 is associated with non-SBFD symbols, for example, when UCI is transmitted in a PUSCH in a UL BWP in a non-SBFD symbol, the set 2 is used, and the UE performs UCI multiplexing in the PUSCH transmission based on the determined betaoffset value.
[0072] Among them, betaoffset set 1 actually has a corresponding set for each UCI type. For example, the betaoffset value used for transmitting HARQ-ACK information in PUSCH in SBFD symbols corresponds to one set, the betaoffset value used for transmitting CSI-1 (first part of CSI) information in PUSCH in SBFD symbols corresponds to one set, and the betaoffset value used for transmitting CSI-2 (second part of CSI) information in PUSCH in SBFD symbols corresponds to one set. CSI-2 needs to be decoded based on the inner part of CSI-1. Correspondingly, for non-SBFD symbols, betaoffset set 2 actually has a corresponding set for each UCI type. For example: the betaoffset value used for transmitting HARQ-ACK information in PUSCH in non-SBFD symbols corresponds to a set, the betaoffset value used for transmitting CSI-1 (first part of CSI) information in PUSCH in non-SBFD symbols corresponds to a set, and the betaoffset value used for transmitting CSI-2 (second part of CSI) information in PUSCH in non-SBFD symbols corresponds to a set.
[0073] The betaoffset value is determined based on the set corresponding to the betaoffset indication field in the DCI format.
[0074] Among them, if the DCI only includes a betaoffset indication field, the UE determines that the PUSCH is transmitted in the SBFD symbol, and the UE uses the betaoffset indication field to determine a betaoffset from the betaoffset set associated with the SBFD symbol to perform UCI transmission in the PUSCH. If the DCI only includes a betaoffset indication field, the UE determines that the PUSCH is transmitted in the non-SBFD symbol, and the UE uses the betaoffset indication field to determine a betaoffset from the betaoffset set associated with the non-SBFD symbol to perform UCI transmission in the PUSCH.
[0075] If the number of elements in the set associated with the SBFD symbol is different from the number of elements in the set associated with the non-SBFD symbol, and the betaoffset indicator field requires a different number of bits, for example, one set contains 2 elements and the betaoffset indicator field requires only 1 bit, while the other set contains 4 elements and the betaoffset indicator field requires 2 bits, then the betaoffset indicator field is determined based on the largest number of bits, and zeros are inserted before the smaller number of bits to account for the bits. For example, in the above example, the betaoffset indicator field is 2 bits. When determining a betaoffset value from the set containing 2 elements, the UE determines that the upper bit of the 2 bits is 0.
[0076] In one embodiment, the second information also includes: configuring a control resource set associated with the first type symbol and a control resource set associated with the second type symbol, and then determining a target beta offset value for PUSCH transmission of UCI in the type symbol based on the first information and / or the second information, including at least one of the following: if the DCI corresponding to the beta offset value indication field is received from the control resource set associated with the first type symbol, the beta offset value determined by the beta offset value indication field from the beta offset value set associated with the first type symbol is determined as the target beta offset value for PUSCH transmission of the UL subband for UCI transmission in the first type symbol; if the DCI corresponding to the beta offset value indication field is received from the control resource set associated with the second type symbol, the beta offset value determined by the beta offset value indication field from the beta offset value set associated with the second type symbol is determined as the target beta offset value for PUSCH transmission of the UL BWP for UCI transmission in the second type symbol.
[0077] For example, if the DCI only includes a betaoffset indication field, the base station and the UE may agree to configure / associate corresponding CORESETs for DL or UL transmission in SBFD symbols and DL or UL transmission in non-SBFD symbols, respectively. That is, for example, if the PUSCH is triggered by a DCI to be transmitted in an SBFD symbol, the DCI should be transmitted in the CORESET associated with the SBFD symbol. If the PUSCH is triggered by the DCI to be transmitted in a non-SBFD symbol, the DCI should be transmitted in the CORESET associated with the non-SBFD symbol.
[0078] Thus, if the UE receives a DCI triggering PUSCH from a CORESET associated with an SBFD symbol, then since the DCI is received from the CORESET associated with the SBFD symbol, the UE determines that the betaoffset indicator field in the DCI should determine the betaoffset value from the betaoffset set associated with the SBFD symbol. Alternatively, if the UE receives a DCI triggering PUSCH from a CORESET associated with a non-SBFD symbol, then since the DCI is received from the CORESET associated with the non-SBFD symbol, the UE determines that the betaoffset indicator field in the DCI should determine the betaoffset value from the betaoffset set associated with the non-SBFD symbol.
[0079] In one embodiment, the first information also includes: the DCI includes another beta offset value indication field, and one beta offset value indication field is associated with the first type of symbol as the first beta offset value indication field, and the other beta offset value indication field is associated with the second type of symbol as the second beta offset value indication field, then the method for determining the target beta offset value for PUSCH transmission of UCI in the type symbol based on the first information and / or the second information can be: determining the beta offset value determined based on the first beta offset value indication field from the beta offset value set associated with the first type of symbol as the target beta offset value for PUSCH transmission of the UL subband in the first type of symbol for UCI transmission; and determining the beta offset value determined based on the second beta offset value indication field from the beta offset value set associated with the second type of symbol as the target beta offset value for PUSCH transmission of the UL BWP in the second type of symbol for UCI transmission.
[0080] For example, the base station and the UE agree to add another betaoffset indicator field to the DCI, so that the DCI includes two betaoffset indicator fields, which are respectively associated with the betaoffset set corresponding to the SBFD symbol and the betaoffset set corresponding to the non-SBFD symbol. In this way, the UE receives a DCI triggering a PUSCH, determines the symbol type (SBFD symbol or non-SBFD symbol) of the PUSCH, and then determines the betaoffset value from the set corresponding to the determined symbol type based on the betaoffset indicator field corresponding to the determined symbol type, thereby performing UCI transmission in the PUSCH.
[0081] In addition to solving the problem of UCI multiplexing on the PUSCH when the PUSCH is only transmitted in one SBFD slot or non-SBFD slot, this method can also solve the problem of UCI multiplexing on the PUSCH when the PUSCH is transmitted across different types of slots (for example, across SBFD slots and non-SBFD slots, that is, the PUSCH transmission is repeated or periodic). For example, a PUSCH transmission is transmitted across 2 slots. The first slot is an SBFD slot, and the PUSCH is transmitted in an SBFD symbol. The second slot is a non-SBFD slot, and the PUSCH is transmitted in a non-SBFD symbol. Further assuming that UCI is transmitted in the PUSCH in the two slots respectively, the base station and the UE agree that the UE determines the betaoffset value based on the set associated with the symbol type and the betaoffset indication field, and uses the determined betaoffset value to complete the UCI transmission in the PUSCH in the first slot and the second slot respectively.
[0082] In one embodiment, if a PUSCH transmission is transmitted across time slots of different types of symbols, the first information further includes: configuring an adjustment parameter, then determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information, including at least one of the following: determining a beta offset value determined from a beta offset value set associated with the first type symbol based on a beta offset value indication field as a target beta offset value for PUSCH transmission of a UL subband for UCI transmission in the first type symbol; determining a beta offset value determined based on the target beta offset value and the adjustment parameter as a target beta offset value for PUSCH transmission of a UL BWP for UCI transmission in a second type symbol; or,
[0083] The beta offset value determined from the beta offset value set associated with the second type symbol based on the beta offset value indication field is determined as the target beta offset value for PUSCH transmission of the UL BWP in the second type symbol for UCI transmission; the beta offset value determined based on the target beta offset value and the adjustment parameter is determined as the target beta offset value for PUSCH transmission of the UL subband in the first type symbol for UCI transmission.
[0084] Exemplarily, if the DCI includes a betaoffset indication field, and if a PUSCH transmission is transmitted across different types of slots, then different betaoffset values are determined for performing UCI transmission in PUSCH in different symbol types in one of the following ways: the base station configures or agrees with the UE on an offset or scaling factor. If the UE determines a betaoffset value for UCI transmission in PUSCH in SBFD symbols, the UE derives another betaoffset value for UCI transmission in PUSCH in non-SBFD symbols based on the offset or scaling factor. If the UE determines a betaoffset value for UCI transmission in PUSCH in non-SBFD symbols, the UE derives another betaoffset value for UCI transmission in PUSCH in SBFD symbols based on the offset or scaling factor.
[0085] In one embodiment, if a PUSCH transmission is transmitted across time slots of different types of symbols, the first information includes: configuring a beta offset value indication field to be associated with both a beta offset value set associated with the first type of symbol and a beta offset value set associated with the second type of symbol, then a method for determining a target beta offset value for PUSCH transmission of UCI in a type of symbol based on the first information and / or the second information may be: determining a beta offset value determined based on the beta offset value indication field from the beta offset value set associated with the first type of symbol as a target beta offset value for PUSCH transmission of the UL subband for UCI transmission in the first type of symbol; and determining a beta offset value determined based on the beta offset value indication field from the beta offset value set associated with the second type of symbol as a target beta offset value for PUSCH transmission of the UL BWP for UCI transmission in the second type of symbol.
[0086] Exemplarily, if the DCI includes a betaoffset indication field, and if a PUSCH transmission is transmitted across different types of slots, then different betaoffset values are determined in one of the following ways to perform UCI transmission in PUSCH in different symbol types: the betaoffset indication field in the DCI is simultaneously associated with two sets of betaoffset values. For example, the set associated with SBFD symbols and the set associated with non-SBFD symbols are simultaneously associated with the betaoffset indication field, and the UE uses the betaoffset indication field to determine the betaoffset value from the two sets respectively, and use them for the corresponding symbol types respectively. For example, if the betaoffset indication field takes a value of 0, the UE determines the first betaoffsets from the two sets respectively, which are used for UCI transmission in PUSCH in SBFD symbols and non-SBFD symbols respectively.
[0087] Optionally, if the PUSCH transmission has priority 1 (or priority 0) and the UCI has priority 1 (or priority 0), then for the transmission of the UCI in the PUSCH in the SBFD symbol (or non-SBFD symbol), the base station and the UE agree to determine a betaoffset value from the set of betaoffset values of priority 1 (or priority 0) associated with the SBFD symbol (or non-SBFD symbol) according to the betaoffset indication field in the DCI.
[0088] In one embodiment, the first information also includes at least one of the following: the first type symbol and the second type symbol are associated with the same time slot interval k, the same time slot interval k set or the same time domain resource allocation table; and also includes the following steps: determining the time slot position in which the PUSCH triggered by the DCI is transmitted based on at least one of the same time slot interval, the same time slot interval set or the same time domain resource allocation table.
[0089] The time slot interval k satisfies: if the DCI triggering the PUSCH is received in time slot n, then the time slot in which the PUSCH triggered by the DCI is located is time slot n+k; the time domain resource allocation table refers to the time domain resource allocation table of the PUSCH, which includes at least one column of time slot intervals and at least two columns of PUSCH symbol positions.
[0090] For example, for a PUSCH triggered by DCI, the UE can determine the slot position and symbol position of the triggered PUSCH based on the time domain resource allocation in the DCI. The time domain resource allocation includes a slot interval k. For example, if the DCI is transmitted in slot n, the PUSCH scheduled by the DCI is transmitted in slot n+k. However, after the introduction of SBFD symbols, considering that SBFD symbols and non-SBFD symbols will be independently configured with k, after the UE receives the DCI, the UE is unclear whether the k in the time domain resource allocation in the DCI should be parsed according to the k value corresponding to the SBFD symbol or the k value corresponding to the non-SBFD symbol. Since the k value cannot be determined, the UE cannot determine the slot position of a PUSCH based on the time domain resource allocation in the DCI. Therefore, the UE cannot determine the symbol position where the PUSCH is transmitted, and thus cannot determine the symbol type of the symbol where the PUSCH is located. In order to solve the above problem, the base station and the UE agree to configure the same k value or k set for SBFD symbols and non-SBFD symbols, or to configure the same time domain resource allocation table for SBFD symbols and non-SBFD symbols, or to share a time domain resource allocation table for SBFD symbols and non-SBFD symbols, where the time domain resource allocation table contains multiple columns, one of which is the k value, so it can also be that at least one column corresponding to the k value is the same between SBFD symbols and non-SBFD symbols.
[0091] In one embodiment, the following steps are further included: if part of the time domain or frequency domain resources of the PUSCH are punctured / canceled, the UCI is only transmitted in the remaining resources of the PUSCH; wherein the resources used by the UCI are determined based on the determined target beta offset value, the number of UCI bits and the remaining resources of the PUSCH, and the UCI is mapped to the remaining resources of the PUSCH for transmission.
[0092] Optionally, if part of the time domain or frequency domain resources of the PUSCH are punctured / cancelled, and the PUSCH is triggered to be transmitted in the first type of symbols, the UCI is multiplexed in the remaining resources of the PUSCH.
[0093] The remaining PUSCH resources are resources of the PUSCH located in the time domain and / or frequency domain of the UL subband.
[0094] Specifically, if a PUSCH is partially punctured or transmission is canceled, especially if some frequency domain resources of the PUSCH are punctured or canceled, the UCI (especially HARQ-ACK) transmitted in the punctured or canceled PUSCH resources will also be punctured or canceled, ultimately reducing the reliability of the UCI. This operation has a significant impact, especially when the UCI is HARQ-ACK information. Therefore, the following improvement is provided.
[0095] The base station and UE agree that if part of the time domain or frequency domain resources of the PUSCH are punctured / canceled, that is, the PUSCH cannot be transmitted in this part of the time domain or frequency domain resources, then for UCI transmitted in the PUSCH, the UCI is only transmitted in the remaining resources of the PUSCH. A PUSCH is scheduled for transmission in the UL subband in the SBFD symbol, but due to the limitation of PUSCH resource allocation, some of the resources of the PUSCH exceed the frequency domain range of the UL subband. For example, as shown in Figure 2, part of the UCI is also punctured / canceled. In response to the above situation, the base station and UE determine the remaining resources of the PUSCH, that is, the resources within the UL subband frequency domain range, and multiplex the UCI in the remaining resources of the PUSCH. For example, as shown in Figure 3.
[0096] Specifically, when the UE determines the resources occupied by the UCI, it is based only on the remaining resources of the PUSCH, that is, the resources of the UL subband. For example, in the calculation formula for calculating the resources used by the UCI in the existing protocol (TS38.212), the meaning of some parameters has been reinterpreted. For example, the following is one of the existing formulas:
[0097] Where O is the number of bits of HARQ-ACK, first part CSI, or second part CSI;
[0098] If O≥360, L=11, then L is the number of cyclic redundancy check (CRC) bits of HARQ-ACK, the first part of CSI, or the second part of CSI;
[0099] is the beta offset value corresponding to HARQ-ACK, the first part of CSI, or the second part of CSI;
[0100] C UL-SCH is the number of code blocks for UL-SCH in PUSCH transmission;
[0101] is the scheduled bandwidth of PUSCH transmission, expressed as the number of subcarriers; The number of subcarriers in the OFDM symbol carrying the Phase-Tracking Reference Signal (PTRS) in PUSCH transmission; is the number of resource elements in OFDM symbol l that can be used to transmit UCI, in PUSCH transmission is the total number of PUSCH OFDM symbols, including all OFDM symbols used for demodulation reference signals (DMRS); for any OFDM symbol carrying PUSCH DMRS, For any OFDM symbol that does not carry PUSCH DMRS,
[0102] α is a scaling parameter configured by the upper layer;
[0103] l0 is the symbol index of the first OFDM symbol that does not carry PUSCH DMRS after the first DMRS symbol in PUSCH transmission.
[0104] There are multiple formulas for calculating UCI resources in the existing protocol (TS38.212), which are applicable to different situations. And the The calculation methods are as described above, so the method here is applicable to all formulas for calculating UCI resources. The parameters in the formula Modify the meaning of, for example, Indicates the PUSCH resources in the UL subband in the scheduled bandwidth of a PUSCH transmission, and is expressed in terms of the number of subcarriers. In other words, It originally indicated the scheduled bandwidth, but now it only refers to the remaining resources in the scheduled bandwidth after excluding the resources outside the UL subband, that is, the resources located in the UL subband.
[0105] It can also be described as: the existing It should be interpreted as the number of valid subcarriers in the bandwidth of the scheduled PUSCH. That is, the subcarriers outside the frequency domain resources of the UL subband are considered invalid, and the subcarriers within the frequency domain resources in the UL subband are valid. Alternatively, if the UE is configured with a UL subband and the UE's PUSCH is transmitted in the UL subband, the UE always determines the valid resources (at least the frequency domain valid resources) in the resources allocated to the PUSCH as the resources of the PUSCH, and uses the resources of the PUSCH (here refers to the valid resources, not the allocated resources) to determine the UCI resources from the resources of the PUSCH based on the above formula. Furthermore, when UCI is transmitted in the valid resources of the PUSCH, the existing UCI mapping rules are reused. The technical solution of this embodiment includes receiving first information and / or second information; wherein the first information includes DCI triggering a PUSCH, and the second information includes: a beta offset value for configuring a semi-static or dynamic beta offset value; determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol; multiplexing UCI into PUSCH transmission based on the target beta offset value; wherein the target beta offset value includes a first beta offset value for transmitting HARQ-ACK information in PUSCH, a second beta offset value for transmitting a first portion of CSI in PUSCH, and a third beta offset value for transmitting a second portion of CSI in PUSCH. This facilitates the transmission of uplink control information.
[0106] In one embodiment, the method for multiplexing the UCI in the PUSCH transmission based on the target beta offset value may be: for a connected user equipment or an idle user equipment, if the intersection of the UL subband and the activated UL BWP in the frequency domain is greater than 0, then multiplexing the UCI in the PUSCH transmission based on at least one of the following factors: physical resources for performing the transmission; wherein the physical resources include UL subbands or available physical resource blocks (PRBs). Or, resource configuration corresponding to the transmission; wherein the resource configuration includes: time domain resource allocation (TDRA) of the UL subband, TDRA of the activated UL BWP, and TDRA associated with available PRBs. Or, parameters used for the transmission. wherein the parameters include: subcarrier spacing (SCS) of the UL subband, SCS of available PRBs, and SCS of the activated UL BWP.
[0107] If the frequency domain intersection of the UL subband and the activated UL BWP is equal to 0, the UCI is multiplexed into the PUSCH transmission based on at least one of the following factors: the physical resource on which the transmission is performed, wherein the physical resource includes the UL subband. Alternatively, the resource configuration corresponding to the transmission is performed, wherein the resource configuration includes: the TDRA of the UL subband, the TDRA of the activated UL BWP, and the TDRA associated with the available PRBs. Alternatively, the parameters used for the transmission are performed, wherein the parameters include: the SCS of the UL subband, the SCS of the available PRBs, and the SCS of the activated UL BWP. Alternatively, no transmission is performed.
[0108] The following provides some transmission methods in SBFD sub-bands (including UL sub-bands and DL sub-bands).
[0109] In the related art, a UE can be configured with one initial DL / UL BWP and can be configured with four DL / UL BWPs but only activates one DL / UL BWP for DL reception and UL transmission.
[0110] Furthermore, since the configuration of DL / UL BWP is optional, if the activated DL / UL BWP is not configured, the UE uses the initial DL / UL BWP for DL reception and UL transmission, and also uses the parameters (such as SCS) and resource configuration (such as DL TDRA table, UL TDRA table, common physical uplink control channel (Physical Uplink Control Channel, PUCCH) resources) configured by the initial DL / UL BWP.
[0111] Furthermore, in some cases, the UE's activated DL / UL BWP is configured, but the corresponding time domain resource configuration is not configured. For example, after the activated DL BWP is configured, but the corresponding TDRA table is not configured, in this case, the UE will use the TDRA table corresponding to the initial DL BWP; or, for example, after the activated UL BWP is configured, but the corresponding PUCCH-config or PUSCH TDRA table is not provided, the UE will use the cell's common PUCCH resources, or the TDRA table corresponding to the initial UL BWP. The above is just that the time domain resource configuration uses another BWP (or in other words, it falls back to the time domain resource configuration associated with another BWP), and the actual transmission is still in the activated DL / UL BWP.
[0112] Therefore, based on the above analysis, after the SBFD subband is configured, it is also possible that the above "available PRB" is 0. The corresponding transmission mechanism or UE behavior (or fallback mechanism) also needs to be considered.
[0113] Possible reasons for the available PRB being 0:
[0114] 1) The activated DL / UL BWP is not configured. This is supported by existing protocols and has corresponding base station and UE behaviors.
[0115] 2) The DL subband is not configured, and only the UL subband is configured. This is currently only possible and depends on the progress of subsequent discussions.
[0116] Even if the DL / UL BWP is activated and configured, and the DL and UL subbands are also configured, there is still no frequency domain overlap. This situation is unlikely to occur. A requirement exists where the base station does not want to schedule an SBFD UE based on either the DL or UL subbands. This is achieved by adopting a non-overlapping approach. Otherwise, the SBFD UE would only transmit based on the DL or UL subbands within the SBFD symbol. Alternatively, a signaling mechanism could be considered to achieve this goal.
[0117] ●For downlink reception
[0118] The definition of PRB is applicable in two cases.
[0119] (1) “Available PRBs” are defined based on the frequency domain intersection of the initial DL BWP and the DL subband, and are used for downlink reception (including System Information Blocks (SIBs) (broadcast) and UE-level DL reception (including msg2 / msgB / msg4 during random access, and non-broadcast SIBs)).
[0120] (2) “Available PRBs” are defined as follows: If the UE is not configured with an activated DL BWP, the UE considers the intersection of the initial DL BWP and the DL subband as the “available PRBs” for downlink reception (including SIBs (broadcast) and UE-level DL reception (including msg2 / msgB / msg4, and non-broadcast SIBs)).
[0121] Case 1: For UE in RRC connected state.
[0122] In SBFD symbols, if the intersection of the DL subband and the activated DL BWP in the frequency domain (DL "available PRBs") is greater than 0, then msg2 / msgB / msg4 / PDSCH containing SIBs (UE-triggered, non-broadcast mechanism) is transmitted from the eNB or received by the UE based on the following factors:
[0123] ① The physical resource where the transmission is performed (e.g., in a DL subband, in an activated DL BWP, or in an available PRB);
[0124] ② Execute the resource configuration corresponding to the transmission (for example, the resources corresponding to the transmission are determined to be based on TDRA of the DL subband, TDRA of the activated DL BWP, and TDRA associated with the available PRB (less likely));
[0125] ③ Parameters used for transmission, such as the SCS of the DL subband, the SCS of the available PRBs, and the SCS of the activated DL BWP.
[0126] In SBFD symbols, if the intersection of the DL subband and the activated DL BWP in the frequency domain (DL "available PRBs") is equal to 0, then msg2 / msgB / msg4 / PDSCH containing SIBs (UE-triggered, non-broadcast mechanism) is transmitted from the eNB or received by the UE based on the following factors:
[0127] ① The physical resource where the transmission is performed (e.g. in a DL subband, or in an activated DL BWP);
[0128] ② Execute the resource configuration corresponding to the transmission (for example, the resources corresponding to the transmission are determined to be based on TDRA of the DL subband, TDRA of the activated DL BWP, and TDRA associated with the available PRB (less likely));
[0129] ③ Parameters used for transmission, such as the SCS of the DL subband, the SCS of the available PRBs, and the SCS of the activated DL BWP.
[0130] Case 2: Idle UE (Connected UE is also possible)
[0131] In SBFD symbols, if the intersection of the DL subband and the cell initial DL BWP in the frequency domain (DL "available PRBs") is greater than 0, then msg2 / msgB / msg4 / PDSCH (broadcast) containing SIBs is transmitted from the base station or received by the UE based on the following factors:
[0132] ① The physical resource where the transmission is performed (e.g. in a DL subband, or in the initial DL BWP, or in an available PRB);
[0133] ② Execute resource configuration corresponding to the transmission (for example, the resources corresponding to the transmission are determined based on TDRA of the DL subband, TDRA of the initial DL BWP, TDRA associated with available PRBs (less likely));
[0134] ③ Parameters used for transmission, such as the SCS of the DL subband, the SCS of the available PRBs, and the SCS of the initial DL BWP.
[0135] In SBFD symbols, if the intersection of the DL subband and the cell-initial DL BWP in the frequency domain (DL "available PRBs") is equal to 0, then msg2 / msgB / msg4 / PDSCH containing SIBs (broadcast mechanism) is transmitted from the eNB or received by the UE based on the following factors:
[0136] ① The physical resource where the transmission is performed (e.g. in a DL subband, or in the initial DL BWP);
[0137] ② Execute resource configuration corresponding to the transmission (for example, the resources corresponding to the transmission are determined based on TDRA of the DL subband, TDRA of the initial DL BWP, TDRA associated with available PRBs (less likely));
[0138] ③ Parameters used for transmission, such as the SCS of the DL subband, the SCS of the available PRBs, and the SCS of the initial DL BWP.
[0139] Note: In the rules for Cases 1 and 2 above, if msg2 / 4 / PDSCH containing SIBs is transmitted in a DL subband, the base station and UE consider that no more than m RBs in that DL subband are used, where m is equal to the number of RBs in the initial DL BWP. This applies to both connected and idle UEs.
[0140] ●For uplink transmission
[0141] PRB definition can be used in two cases
[0142] (1) “Available PRBs” are defined based on the frequency domain intersection resources of the initial UL BWP and the UL subband, and are used for uplink transmission (including msg1 / msgA in the random access procedure and UE-level UL transmission (including PUCCH of msg3 and msg4 / msgB in the random access procedure)).
[0143] (2) “Available PRBs” are defined as follows: If the UE is not configured with an activated UL BWP, the UE considers the intersection of the initial UL BWP and the UL subband as “available PRBs” for uplink reception (msg1 / msgA and UE-level UL transmission (including PUCCH of msg3 and msg4 / msgB)).
[0144] Case 1: For connected UE
[0145] In SBFD symbols, if the intersection of the UL subband and the activated UL BWP in the frequency domain (UL "available PRBs") is greater than 0, then msg1 / msgA and UE-level UL transmissions (including PUCCH of msg3 and msg4 / msgB) are received by the base station or transmitted from the UE based on the following factors:
[0146] ① The physical resource where the transmission is performed (e.g. in the UL subband, or in the available PRBs);
[0147] ② Execute the resource configuration corresponding to the transmission (for example, the resource corresponding to the transmission is determined to be based on the UL subband TDRA, activate the UL BWP TDRA, and use the PRB-associated TDRA (less likely));
[0148] ③ Parameters used for transmission, such as the SCS of the UL subband, the SCS of the available PRBs, and the SCS of the activated UL BWP.
[0149] Note: In all cases, the number of PRBs that can be used is limited to not more than the number of PRBs in the initial UL BWP.
[0150] In SBFD symbols, if the intersection of the UL subband and the activated UL BWP in the frequency domain (UL "available PRBs") is equal to 0, then msg1 / msgA and UE-level UL transmissions (including PUCCH of msg3 and msg4 / msgB) are received by the base station or transmitted from the UE based on the following factors:
[0151] ① The physical resource where the transmission is performed (e.g. in the UL subband);
[0152] ② Execute the resource configuration corresponding to the transmission (for example, the resource corresponding to the transmission is determined to be based on the UL subband TDRA, activate the UL BWP TDRA, and use the PRB-associated TDRA (less likely));
[0153] ③ Parameters used for transmission, such as the SCS of the UL subband, the SCS of the available PRBs, and the SCS of the activated UL BWP.
[0154] ④ The above transmission is not performed in SBFD symbols.
[0155] Case 2: For idle UE (connected state is also possible)
[0156] In SBFD symbols, if the intersection of the UL subband and the initial UL BWP in the frequency domain (UL "available PRBs") is greater than 0, then msg1 / msgA and UE-level UL transmissions (including PUCCH of msg3 and msg4 / msgB) are received by the base station or transmitted from the UE based on the following factors:
[0157] ① The physical resource where the transmission is performed (e.g. in the UL subband, or in the available PRBs);
[0158] ② Execute the resource configuration corresponding to the transmission (for example, the resource corresponding to the transmission is determined to be based on the UL subband TDRA, activate the UL BWP TDRA, and use the PRB-associated TDRA (less likely));
[0159] ③ Parameters used for transmission, such as the SCS of the UL subband, the SCS of the available PRBs, and the SCS of the activated UL BWP.
[0160] In SBFD symbols, if the intersection of the UL subband and the initial UL BWP in the frequency domain (UL "available PRBs") is equal to 0, then msg1 / msgA and UE-level UL transmissions (including PUCCH of msg3 and msg4 / msgB) are received by the base station or transmitted from the UE based on the following factors:
[0161] ① The physical resource where the transmission is performed (e.g. in the UL subband);
[0162] ② Execute the resource configuration corresponding to the transmission (for example, the resource corresponding to the transmission is determined to be based on the UL subband TDRA, activate the UL BWP TDRA, and use the PRB-associated TDRA (less likely));
[0163] ③ Parameters used for transmission, such as the SCS of the UL subband, the SCS of the available PRBs, and the SCS of the activated UL BWP.
[0164] ④ The above transmission is not performed in SBFD symbols.
[0165] Note: In the rules for Case 1 and Case 2 above, if MSG3 is transmitted in a UL subband, the base station and UE consider that no more than n RBs in that UL subband are used, where n is equal to the number of RBs in the initial UL BWP. This applies to both connected and idle UEs.
[0166] In the presence of SBFD subbands and non-SBFD symbols, how should the DL reception or UL transmission be performed if multiple occasions of a DL reception or UL transmission are located in different types of symbols / slots, or if an occasion is located in different types of symbols / slots at the same time?
[0167] After supporting SBFD subbands (including UL subbands or DL subbands), OFDM symbols / slots can be divided into two types, denoted as type 1 symbols / slots and type 2 symbols / slots (if type 1 is a non-SBFD symbol, type 2 is an SBFD symbol, and vice versa). Please refer to the aforementioned clarification of related concepts for details. SBFD symbols contain DL subbands and UL subbands. UL subbands are generally composed of consecutive RBs, with a maximum of two DL subbands, each of which is also composed of consecutive RBs. Non-SBFD symbols are symbols that are not configured with SBFD subbands. Obviously, DL reception or UL transmission in SBFD symbols interfere with each other, while in non-SBFD symbols, either only DL reception or only UL transmission is performed, so there is no interference between UL transmission and DL reception.
[0168] For a DL reception or UL transmission, if they are periodic and / or have repeated transmissions, the DL reception or UL transmission has multiple transmission occasions, some of which are located only in SBFD symbols, some are located only in non-SBFD symbols, and some are located in both SBFD symbols and non-SBFD symbols (for example, the Occasion contains 10 symbols, of which the first 5 symbols are located in SBFD symbols and the last 5 symbols are located in non-SBFD symbols, or vice versa). In this case, the following solution mechanism is provided to complete the corresponding DL reception or UL transmission.
[0169] The above-mentioned DL reception or UL transmission may include:
[0170] 1) With repeated transmissions: PDSCH / PUSCH / PUCCH repetitions. For example, a PDSCH / PUSCH / PUCCH transmission is configured to be repeated four times, meaning that the transmission needs to be performed in four occasions. However, since the configuration of SBFD symbols does not strictly match the period and resources of the Semi-Persistent Scheduling (SPS) PDSCH / Configured Grant (CG) PUSCH, some occasions are only in SBFD symbols, some are only in non-SBFD symbols, or some are in both SBFD and non-SBFD symbols.
[0171] 2) Periodic transmission: SPS PDSCH / configured PUSCH with grants, and Periodic / semi-persistent SRS / Channel State Information-Reference Signal (CSI-RS) / PUCCH / Physical Downlink Control Channel (PDCCH). For example, since the configuration of SBFD symbols does not strictly match the periodicity and resources of SPS PDSCH / CG PUSCH / SRS / CSI-RS / PUCCH / PDCCH, some SPS PDSCH / CGPU SCH SRS / CSI-RS / PUCCH / PDCCH occasions occur only in SBFD symbols, some SPS PDSCH / CG PUSCH SCH SRS / CSI-RS / PUCCH / PDCCH occasions occur only in non-SBFD symbols, or some SPS PDSCH / CGPU SCH SRS / CSI-RS / PUCCH / PDCCH occasions occur in both SBFD and non-SBFD symbols.
[0172] 3) The transport block corresponding to a transmission spans multiple slots, known as a Transmission Block Over Multiple Slots (TBoMS). For example, a larger TB is configured to transmit in four slots, resulting in four transmission occasions in each of the four slots. However, because the SBFD symbol configuration does not strictly match the SPS PDSCH / CG PUSCH period and resources, some occasions occur only in SBFD symbols, some only in non-SBFD symbols, or some in both SBFD and non-SBFD symbols.
[0173] 4) Multiple PUSCHs / PDSCHs scheduled by a DCI are in different slots. For example, if a DCI schedules four PDSCHs / PUSCHs, each PUSCH / PUSCH corresponds to one TB. Thus, the four scheduled PDSCHs / PUSCHs have four occurrences, but each occurrence corresponds to one TB. Because the configuration of SBFD symbols does not strictly match the period and resources of SPS PDSCH / CG PUSCH, some occurrences are only in SBFD symbols, some are only in non-SBFD symbols, or some are in both SBFD and non-SBFD symbols.
[0174] Generally, DL reception / UL transmission for different types of symbols / slots are performed based on the corresponding configured parameters, such as power control-related parameters, beam-related parameters, precoding-related parameters, modulation and coding scheme (MCS), PDCCH aggregation level, TCI state configuration parameters, QCL relationship configuration parameters, etc. However, there are cases where DL reception / UL transmission for one type of symbol / slot is not configured.
[0175] For a DL reception / UL transmission, if it is configured to be associated with a symbol / slot of the first type, and if one of its occasions is configured / determined to be located only in a symbol / slot of the second type, at least one of the following is supported:
[0176] 1) The UE does not expect the corresponding DL reception / UL transmission to be performed in this occasion, and the base station does not perform the corresponding DL reception / UL transmission in this occasion.
[0177] 2) The base station and the UE agree that the corresponding DL reception / UL transmission is performed in this occasion, but the transmission parameters used are the transmission parameters configured when the DL reception / UL transmission is transmitted in the second type of symbol / slot (here it is assumed that the DL reception / UL transmission is configured to be associated with the first type of symbol / slot, but the base station still configures or agrees on the transmission parameters used for transmission in the second type of symbol / slot).
[0178] 3) The base station and the UE agree that the corresponding DL reception / UL transmission is performed in this occasion, but the transmission parameters used are at least one of the following:
[0179] a. If the DL reception / UL transmission is repeated, the same transmission parameters as the first repeated transmission are used, or the transmission parameters configured when the DL reception / UL transmission is transmitted in the first type of symbol / slot are used, or the transmission parameters configured when the DL reception / UL transmission is transmitted in the second type of symbol / slot are used (if any). The transmission parameters here include at least one of the following: power control-related parameters, beam-related parameters (such as TCI (Transmission Configuration Indicator) relationship, Quasi Co-Location (QCL) relationship), precoding-related parameters, MCS parameters, MCS table, UCI multiplexing betaoffset parameter, maximum RANK number, and DMRS mapping type.
[0180] b. If the DL reception / UL transmission is a PDCCH or a CORESET / SearchSpace of a PDCCH, use the transmission parameters configured for the DL reception / UL transmission when transmitting in the first type of symbol / slot, or use the transmission parameters (if any) configured for the DL reception / UL transmission when transmitting in the second type of symbol / slot. The transmission parameters include at least one of the following: aggregation level-related parameters and the number of PDCCH candidates for each aggregation level.
[0181] c. If the DL reception / UL transmission is PUSCH repetition Type B (defined in TS 38.214), the occasion is split into two UL transmissions because the symbols corresponding to the occasion include symbols of the first type and symbols of the second type. The two UL transmissions are in symbols of different types. That is, the occasion is originally a nominal repetition, but because the symbol types corresponding to the repeated transmissions in the occasion are different, the nominal repetition transmission is split into two actual repetitions, and each is executed in the two symbol types in the symbols corresponding to the occasion. The actual repeated transmission will be performed in the second type of symbol, and the transmission parameters used in the repeated transmission include at least one of the following: if the DL reception / UL transmission is configured with transmission parameters associated with the second symbol type, the transmission parameters associated with the second symbol type are used; if the DL reception / UL transmission is not configured with transmission parameters associated with the second symbol type, the transmission parameters associated with the first symbol type are used, so that the transmission parameters used in the two actual transmissions are the same; the same transmission parameters of the DL reception / UL transmission in the first repeated transmission are used; the transmission parameters configured for the DL reception / UL transmission and corresponding to the SBFD symbol / slot type are used; the transmission parameters here include at least one of the following: power control related parameters, beam related parameters (such as TCI (Transmission Configuration Indicator) relationship, quasi co-location QCL (Quasi Co-Location) relationship), precoding related parameters, MCS parameters, MCS table, UCI multiplexing betaoffset parameter, maximum RANK number, DMRS mapping type.
[0182] FIG4 is a flow chart of a parameter configuration method provided in an embodiment of the present application, the method being executed by a base station side. As shown in FIG4 , the method includes:
[0183] S410, sending the first information and / or the second information.
[0184] The first information includes a DCI triggering a PUSCH, and the second information includes: a beta offset value for configuring a semi-static or dynamic beta offset value;
[0185] S420: Determine a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information.
[0186] The type of symbol includes a first type of symbol and a second type of symbol. The first type of symbol is an SBFD symbol, and the second type of symbol is a non-SBFD symbol; or the first type of symbol is a CCFD symbol, and the second type of symbol is a non-CCFD symbol.
[0187] The method of determining the target beta offset value for PUSCH transmission of UCI in the type symbol based on the first information and / or the second information can be referred to the above embodiment and will not be repeated here.
[0188] S430: Receive UCI multiplexed in PUSCH transmission based on the target beta offset value.
[0189] The target beta offset value includes a first beta offset value for transmitting HARQ-ACK information in PUSCH, a second beta offset value for transmitting the first part of CSI in PUSCH, and a third beta offset value for transmitting the second part of CSI in PUSCH.
[0190] FIG5 is a schematic diagram of the structure of a parameter configuration device provided in an embodiment of the present application. The device is provided in a user equipment and includes:
[0191] The information receiving module 510 is configured to receive first information and / or second information; wherein the first information includes a DCI triggering a PUSCH, and the second information includes: a beta offset value configured as a semi-static value or a dynamic value;
[0192] A target beta offset value determining module 520 is configured to determine a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol;
[0193] The UCI transmission module 530 is used to multiplex the UCI in the PUSCH transmission based on the target beta offset value; wherein the target beta offset value includes a first beta offset value for transmitting HARQ-ACK information in the PUSCH, a second beta offset value for transmitting the first part of the CSI in the PUSCH, and a third beta offset value for transmitting the second part of the CSI in the PUSCH.
[0194] Optionally, if the first information includes: the DCI triggering the PUSCH does not include a beta offset value indication field, and the second information includes a beta offset value for configuring a semi-static beta offset value, the target beta offset value determination module 520 is further configured to:
[0195] Determine a semi-static beta offset value as a target beta offset value for PUSCH transmission of a UL subband in a first type symbol for UCI transmission; or,
[0196] Determine a semi-static beta offset value as a target beta offset value for PUSCH transmission of a UL BWP in a second type symbol for UCI transmission; or
[0197] Determine a semi-static beta offset value as a target beta offset value for first-priority PUSCH transmission of a UL subband in a first-type symbol for UCI transmission; or,
[0198] Determine a semi-static beta offset value as a target beta offset value for first-priority PUSCH transmission of a UL BWP in a second-type symbol for UCI transmission; or
[0199] Determine a semi-static beta offset value as a target beta offset value for second priority PUSCH transmission of a UL subband in a first type symbol for UCI transmission; or,
[0200] A semi-static beta offset value is determined as a target beta offset value for a second priority PUSCH transmission transmitting a UL BWP in a second type of symbol.
[0201] Optionally, the target beta offset value determination module 520 is further configured to:
[0202] If the beta offset value associated with the first type of symbol is not configured, determining the beta offset value associated with the second type of symbol as the target beta offset value for PUSCH transmission of the UL subband in the first type of symbol for UCI transmission; or,
[0203] If the beta offset value associated with the second type symbol is not configured, the beta offset value associated with the first type symbol is determined as the target beta offset value for PUSCH transmission of the UL BWP in the second type symbol for UCI transmission; or
[0204] If the beta offset value with the first priority associated with the first type of symbol is not configured, determining the beta offset value with the first priority associated with the second type of symbol as the target beta offset value for PUSCH transmission with the first priority for UL subband in the first type of symbol for UCI transmission; or
[0205] If the beta offset value with the first priority associated with the first type of symbol is not configured, determining the beta offset value with the second priority associated with the second type of symbol as the target beta offset value for PUSCH transmission with the first priority for UL subband in the first type of symbol for UCI transmission; or
[0206] If the beta offset value with the second priority associated with the first type symbol is not configured, determining the beta offset value with the first priority associated with the second type symbol as the target beta offset value for PUSCH transmission with the second priority for UL subbands in the first type symbol for UCI transmission; or
[0207] If the beta offset value with the second priority associated with the first type symbol is not configured, determining the beta offset value with the second priority associated with the second type symbol as the target beta offset value for PUSCH transmission with the second priority for UL subbands in the first type symbol for UCI transmission; or
[0208] If the beta offset value with the first priority associated with the second type symbol is not configured, determining the beta offset value with the first priority associated with the first type symbol as the target beta offset value for PUSCH transmission with the first priority for UL BWP in the second type symbol for UCI transmission; or
[0209] If the beta offset value with the first priority associated with the second type symbol is not configured, determining the beta offset value with the second priority associated with the first type symbol as the target beta offset value for PUSCH transmission with the first priority for UL BWP in the second type symbol for UCI transmission; or
[0210] If the beta offset value with the second priority associated with the second type symbol is not configured, determining the beta offset value with the first priority associated with the first type symbol as the target beta offset value for PUSCH transmission with the second priority for UL BWP in the second type symbol for UCI transmission; or
[0211] If the beta offset value with the second priority associated with the second type symbol is not configured, the beta offset value with the second priority associated with the first type symbol is determined as the target beta offset value for PUSCH transmission with the second priority for UL BWP of UCI transmission in the second type symbol.
[0212] Optionally, if the first information includes that the PUSCH is semi-static, and the second information includes a beta offset value for configuring the semi-static, the target beta offset value determination module 520 is further configured to:
[0213] determining a beta offset value associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; or,
[0214] determining a beta offset value associated with the second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission; or,
[0215] determining a beta offset value of a first priority associated with a first type of symbol as a target beta offset value for PUSCH transmission of a first priority for a UL subband in the first type of symbol for UCI transmission; or,
[0216] determining a beta offset value of the second priority associated with the first type symbol as a target beta offset value for PUSCH transmission of the second priority for UCI transmission in the UL subband in the first type symbol; or,
[0217] determining a beta offset value of the first priority associated with the second type symbol as a target beta offset value for PUSCH transmission of the first priority for UL BWP in the second type symbol for UCI transmission; or,
[0218] The beta offset value of the second priority associated with the second type symbol is determined as a target beta offset value for PUSCH transmission of the second priority for UL BWP in the second type symbol for UCI transmission.
[0219] Optionally, if the first information includes: the DCI format for triggering the PUSCH is 0_0, and the second information includes a beta offset value for configuring a dynamic beta offset value, the target beta offset value determination module 520 is further configured to:
[0220] determining a first value in a set of beta offset values associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; or,
[0221] determining a first value in a set of beta offset values associated with a second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in a second type of symbol for UCI transmission; or,
[0222] determining a first value in a set of beta offset values of a first priority associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; or,
[0223] determining a first value in a set of beta offset values of a second priority associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; or,
[0224] determining a first value in a set of first priority beta offset values associated with a second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in a second type of symbol for UCI transmission; or,
[0225] A first value in a set of second priority beta offset values associated with the second type of symbol is determined as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission.
[0226] Optionally, if the second information includes: configuring a semi-static beta offset value, and configuring a beta offset value associated with the first type of symbol and a beta offset value associated with the second type of symbol; or configuring a set of two beta offset values, one of which is associated with the first type of symbol and the other is associated with the second type of symbol;
[0227] The target beta offset value determination module 520 is further configured to:
[0228] The beta offset value associated with the first type symbol is determined as the target beta offset value for PUSCH transmission of the UL subband in the first type symbol for UCI transmission; the beta offset value associated with the second type symbol is determined as the target beta offset value for PUSCH transmission of the UL BWP in the second type symbol for UCI transmission.
[0229] Optionally, if the second information includes: configuring a semi-static beta offset value, and configuring a beta offset value associated with the first type of symbol and an adjustment parameter; then the target beta offset value determination module 520 is further configured to:
[0230] determining a beta offset value associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission;
[0231] Determine another beta offset based on the beta offset value and the adjustment parameter associated with the first type of symbol, and determine the another beta offset as a target beta offset value for PUSCH transmission of the UL BWP in the second type of symbol for UCI transmission; or
[0232] If the second information includes: a beta offset value for configuring a semi-static beta offset value, and configuring a beta offset value and an adjustment parameter associated with a second type of symbol; determining a target beta offset value for PUSCH transmission of UCI in the type of symbol based on the first information and / or the second information, including:
[0233] determining a beta offset value associated with the second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission;
[0234] Another beta offset is determined based on the beta offset value associated with the second type of symbol and the adjustment parameter, and the other beta offset is determined as a target beta offset value for PUSCH transmission of the UL subband in the first type of symbol for UCI transmission.
[0235] Optionally, if the first information includes: the DCI triggering the PUSCH includes a beta offset value indication field, and the second information includes: for configuring a dynamic beta offset value, and configuring a beta offset value set associated with the first type of symbol and a beta offset value set associated with the second type of symbol, then the target beta offset value determination module 520 is further used to:
[0236] Determine a beta offset value determined from a beta offset value set associated with a first type of symbol based on a beta offset value indication field as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; or
[0237] A beta offset value determined from a beta offset value set associated with a second type of symbol based on a beta offset value indication field is determined as a target beta offset value for PUSCH transmission of a UL BWP in a second type of symbol for UCI transmission; wherein, if the number of elements in the beta offset value set associated with the first type of symbol and the beta offset value set associated with the second type of symbol are different, the number of bits of the beta offset value indication field is determined according to the maximum number of elements.
[0238] Optionally, the second information further includes: configuring a control resource set associated with the first type of symbol and a control resource set associated with the second type of symbol, and the target beta offset value determination module 520 is further configured to:
[0239] If the DCI corresponding to the beta offset value indication field is received from a control resource set associated with a first type of symbol, a beta offset value determined by the beta offset value indication field from the beta offset value set associated with the first type of symbol is determined as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission;
[0240] If the DCI corresponding to the beta offset value indication field is received from a control resource set associated with a second type of symbol, the beta offset value determined by the beta offset value indication field from the beta offset value set associated with the second type of symbol is determined as the target beta offset value for PUSCH transmission of the UL BWP in the second type of symbol for UCI transmission.
[0241] Optionally, the first information further includes: the DCI includes another beta offset value indication field, and one beta offset value indication field is associated with the first type of symbol as the first beta offset value indication field, and the other beta offset value indication field is associated with the second type of symbol as the second beta offset value indication field, then the target beta offset value determination module 520 is further configured to:
[0242] determining, as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission, a beta offset value determined from a beta offset value set associated with the first type of symbol based on the first beta offset value indication field;
[0243] A beta offset value determined from a beta offset value set associated with the second type symbol based on the second beta offset value indication field is determined as a target beta offset value for PUSCH transmission of a UL BWP in the second type symbol for UCI transmission.
[0244] Optionally, if a PUSCH transmission is transmitted across time slots of different types of symbols, the first information further includes: configuring an adjustment parameter, and the target beta offset value determination module 520 is further configured to:
[0245] determining a beta offset value determined from a beta offset value set associated with a first type of symbol based on a beta offset value indication field as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission;
[0246] Determine the beta offset value determined according to the target beta offset value and the adjustment parameter as the target beta offset value for PUSCH transmission of the UL BWP in the second type symbol for UCI transmission; or
[0247] determining, based on the beta offset value indication field, a beta offset value determined from a beta offset value set associated with the second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission;
[0248] The beta offset value determined according to the target beta offset value and the adjustment parameter is determined as the target beta offset value for PUSCH transmission of the UL subband in the first type symbol for UCI transmission.
[0249] Optionally, if a PUSCH transmission is transmitted across time slots of different types of symbols, the first information includes: configuring a beta offset value indication field to be associated with both a beta offset value set associated with the first type of symbol and a beta offset value set associated with the second type of symbol, then the target beta offset value determination module 520 is further configured to:
[0250] determining a beta offset value determined from a beta offset value set associated with a first type of symbol based on a beta offset value indication field as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission;
[0251] A beta offset value determined from a beta offset value set associated with the second type symbol based on the beta offset value indication field is determined as a target beta offset value for PUSCH transmission of a UL BWP in the second type symbol for UCI transmission.
[0252] Optionally, the first information further includes at least one of the following: associating the first type symbol and the second type symbol with the same time slot interval k, the same time slot interval k set, or the same time domain resource allocation table; and further includes: a time slot position determination module, configured to:
[0253] Determine a time slot position in which a PUSCH triggered by a DCI is transmitted based on at least one of the same time slot interval, the same time slot interval set, or the same time domain resource allocation table;
[0254] The time slot interval k satisfies: if the DCI triggering the PUSCH is received in time slot n, then the time slot in which the PUSCH triggered by the DCI is located is time slot n+k; the time domain resource allocation table refers to the time domain resource allocation table of the PUSCH, which includes at least one column for the time slot interval and at least two columns for the symbol position of the PUSCH.
[0255] Optionally, the system further includes: a transmission resource determination module, configured to:
[0256] If part of the time domain or frequency domain resources of the PUSCH are punctured / cancelled, the UCI is only transmitted in the remaining resources of the PUSCH; wherein the resources used by the UCI are determined based on the determined target beta offset value, the number of UCI bits and the remaining resources of the PUSCH, and the UCI is mapped to the remaining resources of the PUSCH for transmission.
[0257] Optionally, the transmission resource determination module is also used to: if part of the time domain or frequency domain resources of the PUSCH are punctured / canceled, and the PUSCH is triggered to be transmitted in the first type of symbol, the UCI is multiplexed in the remaining resources of the PUSCH; wherein the remaining resources of the PUSCH are the resources within the time domain and / or frequency domain range of the PUSCH located in the UL subband.
[0258] Optionally, the UCI transmission module 530 is further configured to:
[0259] For connected or idle user equipment, if the frequency domain intersection of the UL subband and the activated UL BWP is greater than 0, the UCI is multiplexed in the PUSCH transmission based on at least one of the following factors:
[0260] Physical resources for performing transmission; wherein the physical resources include UL subbands or available PRBs; or,
[0261] Execute resource configuration corresponding to the transmission; wherein the resource configuration includes: TDRA of UL subband, TDRA of activated UL BWP, TDRA associated with available PRB; or,
[0262] Parameters used for transmission; wherein the parameters include: SCS of UL subband, SCS of available PRB, SCS of activated UL BWP;
[0263] If the frequency domain intersection of the UL subband and the activated UL BWP is equal to 0, the UCI is multiplexed in the PUSCH transmission based on at least one of the following factors:
[0264] Physical resources for performing transmission; wherein the physical resources include UL subbands; or,
[0265] Execute resource configuration corresponding to the transmission; wherein the resource configuration includes: TDRA of UL subband, TDRA of activated UL BWP, TDRA associated with available PRB; or,
[0266] Parameters used for transmission; wherein the parameters include: SCS of UL subband, SCS of available PRB, SCS of activated UL BWP; or,
[0267] No transfer is performed.
[0268] FIG6 is a schematic diagram of the structure of a parameter configuration device provided in an embodiment of the present application. The device is provided in a base station and includes:
[0269] An information sending module 610 is configured to send first information and / or second information; wherein the first information includes a DCI triggering a PUSCH, and the second information includes: a beta offset value configured semi-statically or a dynamic beta offset value;
[0270] A target beta offset value determining module 620 is configured to determine a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol;
[0271] A UCI receiving module is used to receive UCI multiplexed in PUSCH transmission based on a target beta offset value; wherein the target beta offset value includes a first beta offset value for transmitting HARQ-ACK information in PUSCH, a second beta offset value for transmitting the first part of CSI in PUSCH, and a third beta offset value for transmitting the second part of CSI in PUSCH.
[0272] In one embodiment, FIG7 is a schematic diagram of the structure of a computer device provided in an embodiment of the present application. As shown in FIG7 , the device provided in the present application includes: a processor 510 and a memory 520. The number of processors 510 in the device can be one or more, and FIG7 uses one processor 510 as an example. The number of memories 520 in the device can be one or more, and FIG7 uses one memory 520 as an example. The processor 510 and memory 520 of the device can be connected via a bus or other means, and FIG7 uses a bus connection as an example. In the embodiment, the device is a computer device.
[0273] The memory 520, as a computer-readable storage medium, can be configured to store software programs, computer executable programs, and modules, such as program instructions / modules corresponding to the device of any embodiment of the present application (for example, the encoding module and the first sending module in the data transmission device). The memory 520 may include a program storage area and a data storage area, wherein the program storage area may store an operating system, an application required for at least one function; the data storage area may store data created according to the use of the device, etc. In addition, the memory 520 may include a high-speed random access memory, and may also include a non-volatile memory, such as at least one disk storage device, a flash memory device, or other non-volatile solid-state storage device. In some instances, the memory 520 may further include a memory remotely located relative to the processor 510, and these remote memories may be connected to the device via a network. Examples of the above-mentioned network include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and a combination thereof.
[0274] The device provided above can be configured to execute the parameter configuration method provided in any of the above embodiments, and have corresponding functions and effects.
[0275] The program stored in the corresponding memory 520 may be a program instruction / module corresponding to the parameter configuration method provided in the embodiments of the present application. The processor 510 executes the software program, instructions, and modules stored in the memory 520 to execute one or more functional applications and data processing of the computer device, that is, to implement the association query method applied to data in the above method embodiments. It is understood that when the above device is a receiving end, it can execute the parameter configuration method provided in any embodiment of the present application and have the corresponding functions and effects.
[0276] An embodiment of the present application also provides a storage medium containing computer-executable instructions, which, when executed by a computer processor, are used to perform a parameter configuration method, the method comprising: receiving first information and / or second information; wherein the first information includes DCI that triggers PUSCH, and the second information includes: a beta offset value for configuring a semi-static or dynamic beta offset value; determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol; multiplexing the UCI in the PUSCH transmission based on the target beta offset value; wherein the target beta offset value includes a first beta offset value for transmitting HARQ-ACK information in PUSCH, a second beta offset value for transmitting the first part of CSI in PUSCH, and a third beta offset value for transmitting the second part of CSI in PUSCH. Alternatively, first information and / or second information are sent; wherein the first information includes DCI for triggering PUSCH, and the second information includes: a beta offset value for configuring a semi-static or dynamic beta offset value; a target beta offset value for PUSCH transmission of UCI in a type symbol is determined based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol; and the UCI multiplexed in the PUSCH transmission based on the target beta offset value is received; wherein the target beta offset value includes a first beta offset value for transmitting HARQ-ACK information in PUSCH, a second beta offset value for transmitting the first part of CSI in PUSCH, and a third beta offset value for transmitting the second part of CSI in PUSCH.
[0277] It will be appreciated by those skilled in the art that the term user equipment encompasses any suitable type of wireless user equipment, such as a mobile phone, a portable data processing device, a portable web browser or a car-mounted mobile station.
[0278] In general, various embodiments of the present application may be implemented in hardware or dedicated circuits, software, logic, or any combination thereof. For example, some aspects may be implemented in hardware, while other aspects may be implemented in firmware or software that can be executed by a controller, microprocessor, or other computing device, although the present application is not limited thereto.
[0279] Embodiments of the present application may be implemented by executing computer program instructions by a data processor of a mobile device, for example, in a processor entity, or by hardware, or by a combination of software and hardware. The computer program instructions may be assembly instructions, instruction set architecture (ISA) instructions, machine instructions, machine-dependent instructions, microcode, firmware instructions, state setting data, or source code or object code written in any combination of one or more programming languages.
[0280] The block diagram of any logic flow in the drawings of the present application may represent program steps, or may represent interconnected logic circuits, modules and functions, or may represent a combination of program steps and logic circuits, modules and functions. A computer program may be stored on a memory. The memory may be of any type suitable for the local technical environment and may be implemented using any suitable data storage technology, such as, but not limited to, read-only memory (ROM), random access memory (RAM), optical storage devices and systems (digital versatile discs (DVD) or compact disks (CD)), etc. Computer-readable media may include non-transient storage media. A data processor may be of any type suitable for the local technical environment, such as, but not limited to, a general-purpose computer, a special-purpose computer, a microprocessor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), and a processor based on a multi-core processor architecture.
[0281] The above description is merely an exemplary embodiment of the present application and is not intended to limit the scope of protection of the present application.
[0282] Embodiments of the present application may be implemented by executing computer program instructions by a data processor of a mobile device, for example, in a processor entity, or by hardware, or by a combination of software and hardware. The computer program instructions may be assembly instructions, instruction set architecture (ISA) instructions, machine instructions, machine-dependent instructions, microcode, firmware instructions, state setting data, or source code or object code written in any combination of one or more programming languages.
[0283] The above description of exemplary embodiments of the present application has been provided by way of exemplary and non-limiting examples. However, various modifications and adaptations of the above embodiments will be apparent to those skilled in the art, when considered in conjunction with the accompanying drawings and the appended claims, without departing from the scope of the present application. Therefore, the proper scope of the present application will be determined by reference to the appended claims.
Claims
1. A parameter configuration method, performed by a user equipment, comprising: Receive first information and / or second information; wherein the first information includes downlink control information DCI for triggering a physical uplink shared channel PUSCH, and the second information includes: a beta offset value for configuring a semi-static or dynamic beta offset value; Determine a target beta offset value for PUSCH transmission of uplink control information UCI in a type symbol based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol; The UCI is multiplexed in the PUSCH transmission based on the target beta offset value; wherein the target beta offset value includes a first beta offset value for transmitting hybrid automatic repeat request confirmation HARQ-ACK information in the PUSCH, a second beta offset value for transmitting the first part of the channel state information CSI in the PUSCH, and a third beta offset value for transmitting the second part of the CSI in the PUSCH.
2. The method according to claim 1, wherein In response to the first information including: the DCI triggering the PUSCH does not include a beta offset value indication field, and the second information includes a beta offset value for configuring a semi-static beta offset value, determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information, including at least one of the following: Determining the semi-static beta offset value as a target beta offset value for PUSCH transmission in an uplink UL subband in a first type of symbol for UCI transmission; Determine the semi-static beta offset value as a target beta offset value for PUSCH transmission of the UL part bandwidth BWP in the second type of symbols for UCI transmission; Determining the semi-static beta offset value as a target beta offset value for first-priority PUSCH transmission of a UL subband in a first type of symbol for UCI transmission; Determine the semi-static beta offset value as a target beta offset value for first-priority PUSCH transmission of a UL BWP in a second type symbol for UCI transmission; Determining the semi-static beta offset value as a target beta offset value for second-priority PUSCH transmission of a UL subband in a first-type symbol for UCI transmission; The semi-static beta offset value is determined as a target beta offset value for a second priority PUSCH transmission transmitting a UL BWP in a second type of symbol.
3. The method according to claim 2, wherein: Determining a target beta offset value for PUSCH transmission of uplink control information UCI in a type symbol based on the first information and / or the second information, further comprising: In response to the beta offset value associated with the first type symbol not being configured, determining the beta offset value associated with the second type symbol as a target beta offset value for PUSCH transmission of the UL subband in the first type symbol for UCI transmission; or, In response to the beta offset value associated with the second type symbol not being configured, determining the beta offset value associated with the first type symbol as a target beta offset value for PUSCH transmission of the UL BWP in the second type symbol for UCI transmission; or, In response to the beta offset value with the first priority associated with the first type of symbol not being configured, determining the beta offset value with the first priority associated with the second type of symbol as a target beta offset value for PUSCH transmission with the first priority for UL subbands in the first type of symbol for UCI transmission; or In response to the beta offset value with the first priority associated with the first type symbol not being configured, determining the beta offset value with the second priority associated with the second type symbol as a target beta offset value for PUSCH transmission with the first priority for UL subbands in the first type symbol for UCI transmission; or In response to the beta offset value with the second priority associated with the first type symbol not being configured, determining the beta offset value with the first priority associated with the second type symbol as a target beta offset value for PUSCH transmission with the second priority for UL subbands in the first type symbol for UCI transmission; or In response to the beta offset value with the second priority associated with the first type symbol not being configured, determining the beta offset value with the second priority associated with the second type symbol as a target beta offset value for PUSCH transmission with the second priority for UL subbands in the first type symbol for UCI transmission; or In response to the beta offset value with the first priority associated with the second type symbol not being configured, determining the beta offset value with the first priority associated with the first type symbol as a target beta offset value for PUSCH transmission with the first priority for the UL BWP in the second type symbol for UCI transmission; or In response to the beta offset value with the first priority associated with the second type symbol not being configured, determining the beta offset value with the second priority associated with the first type symbol as a target beta offset value for PUSCH transmission with the first priority for UL BWP in the second type symbol for UCI transmission; or In response to the beta offset value with the second priority associated with the second type symbol not being configured, determining the beta offset value with the first priority associated with the first type symbol as a target beta offset value for PUSCH transmission with the second priority for UL BWP in the second type symbol for UCI transmission; or In response to the beta offset value with the second priority associated with the second type symbol not being configured, the beta offset value with the second priority associated with the first type symbol is determined as a target beta offset value for PUSCH transmission with the second priority for UL BWP of UCI transmission in the second type symbol.
4. The method according to claim 1, wherein In response to the first information including that the PUSCH is semi-static, and the second information including a beta offset value for configuring the semi-static, determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information, including at least one of the following: determining a beta offset value associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; determining a beta offset value associated with the second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission; determining a beta offset value of a first priority associated with a first type of symbol as a target beta offset value for PUSCH transmission of a first priority for a UL subband in the first type of symbol for UCI transmission; determining a beta offset value of a second priority associated with a first type of symbol as a target beta offset value for PUSCH transmission of the second priority for a UL subband in the first type of symbol for UCI transmission; determining a beta offset value of the first priority associated with the second type of symbol as a target beta offset value for PUSCH transmission of the first priority for UL BWP in the second type of symbol for UCI transmission; The beta offset value of the second priority associated with the second type symbol is determined as a target beta offset value for PUSCH transmission of the second priority for UL BWP in the second type symbol for UCI transmission.
5. The method according to claim 1, wherein In response to the first information including: the DCI format triggering the PUSCH is 0_0, and the second information includes a beta offset value for configuring a dynamic, determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information, including at least one of the following: determining a first value in a set of beta offset values associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; determining a first value in a set of beta offset values associated with a second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission; determining a first value in a set of beta offset values of a first priority associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; determining a first value in a set of beta offset values of a second priority associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; determining a first value in a set of first priority beta offset values associated with a second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission; A first value in a set of second priority beta offset values associated with the second type of symbol is determined as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission.
6. The method according to claim 1, wherein In response to the second information, the device includes: configuring a semi-static beta offset value, and configuring a beta offset value associated with the first type of symbol and a beta offset value associated with the second type of symbol; or configuring a set of two beta offset values, wherein one beta offset value is associated with the first type of symbol and the other beta offset value is associated with the second type of symbol; Determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information includes: The beta offset value associated with the first type symbol is determined as the target beta offset value for PUSCH transmission of the UL subband in the first type symbol for UCI transmission; the beta offset value associated with the second type symbol is determined as the target beta offset value for PUSCH transmission of the UL BWP in the second type symbol for UCI transmission.
7. The method according to claim 1, wherein In response to the second information including: configuring a semi-static beta offset value, and configuring a beta offset value and an adjustment parameter associated with a first type symbol; determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information, including: determining a beta offset value associated with a first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; Determine another beta offset based on the beta offset value associated with the first type of symbol and the adjustment parameter, and determine the another beta offset as a target beta offset value for PUSCH transmission of the UL BWP in the second type of symbol for UCI transmission; or In response to the second information including: configuring a semi-static beta offset value, and configuring a beta offset value and an adjustment parameter associated with a second type symbol; determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information, including: determining a beta offset value associated with the second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission; Another beta offset is determined based on the beta offset value associated with the second type of symbol and the adjustment parameter, and the another beta offset is determined as a target beta offset value for PUSCH transmission of the UL subband in the first type of symbol for UCI transmission.
8. The method according to claim 1, wherein In response to the first information including: the DCI triggering the PUSCH includes a beta offset value indication field, and the second information includes: for configuring a dynamic beta offset value, and configuring a beta offset value set associated with a first type of symbol and a beta offset value set associated with a second type of symbol, determining a target beta offset value for PUSCH transmission of UCI in a type of symbol based on the first information and / or the second information, including at least one of the following: determining a beta offset value determined from a beta offset value set associated with a first type of symbol based on a beta offset value indication field as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; A beta offset value determined from a beta offset value set associated with a second type of symbol based on a beta offset value indication field is determined as a target beta offset value for PUSCH transmission of a UL BWP in a second type of symbol for UCI transmission; wherein, in response to a different number of elements in the beta offset value set associated with the first type of symbol and the beta offset value set associated with the second type of symbol, the number of bits of the beta offset value indication field is determined according to the maximum number of elements.
9. The method according to claim 1, wherein The second information further includes: configuring a control resource set associated with the first type symbol and a control resource set associated with the second type symbol; and determining a target beta offset value for PUSCH transmission of UCI in the type symbol based on the first information and / or the second information, including at least one of the following: In response to DCI corresponding to a beta offset value indication field being received from a control resource set associated with a first type of symbol, the beta offset value indication field determines a beta offset value determined from a beta offset value set associated with the first type of symbol as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; In response to DCI corresponding to the beta offset value indication field being received from a control resource set associated with a second type of symbol, the beta offset value indication field determines a beta offset value determined from the beta offset value set associated with the second type of symbol as a target beta offset value for PUSCH transmission of the UL BWP for UCI transmission in the second type of symbol.
10. The method according to claim 1, wherein The first information further includes: the DCI includes another beta offset value indication field, and one beta offset value indication field is associated with a first type symbol as a first beta offset value indication field, and the other beta offset value indication field is associated with a second type symbol as a second beta offset value indication field, and determining a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information includes: determining, as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission, a beta offset value determined from a beta offset value set associated with the first type of symbol based on the first beta offset value indication field; A beta offset value determined from a beta offset value set associated with the second type symbol based on the second beta offset value indication field is determined as a target beta offset value for PUSCH transmission of a UL BWP in the second type symbol for UCI transmission.
11. The method according to claim 1, wherein In response to a PUSCH transmission being transmitted across time slots of different types of symbols, the first information further includes: configuring an adjustment parameter to determine a target beta offset value for PUSCH transmission of UCI in a type symbol based on the first information and / or the second information, including at least one of the following: determining a beta offset value determined from a beta offset value set associated with a first type of symbol based on a beta offset value indication field as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; determining the beta offset value determined according to the target beta offset value and the adjustment parameter as the target beta offset value for PUSCH transmission of the UL BWP in the second type symbol for UCI transmission; or, determining, based on the beta offset value indication field, a beta offset value determined from a beta offset value set associated with the second type of symbol as a target beta offset value for PUSCH transmission of a UL BWP in the second type of symbol for UCI transmission; The beta offset value determined according to the target beta offset value and the adjustment parameter is determined as a target beta offset value for PUSCH transmission of a UL subband in a first type symbol for UCI transmission.
12. The method according to claim 1, wherein If, in response to a PUSCH transmission being transmitted across time slots of symbols of different types, the first information includes: configuring the beta offset value indication field to be associated with both a beta offset value set associated with the first type of symbol and a beta offset value set associated with the second type of symbol; and determining, based on the first information and / or the second information, a target beta offset value for PUSCH transmission of UCI in the symbols of the first type, including: determining a beta offset value determined from a beta offset value set associated with a first type of symbol based on a beta offset value indication field as a target beta offset value for PUSCH transmission of a UL subband in the first type of symbol for UCI transmission; A beta offset value determined from a beta offset value set associated with the second type symbol based on the beta offset value indication field is determined as a target beta offset value for PUSCH transmission of a UL BWP in the second type symbol for UCI transmission.
13. The method according to claim 1, wherein The first information further includes at least one of the following: the first type of symbols and the second type of symbols are associated with the same time slot interval k, the same time slot interval k set, or the same time domain resource allocation table; the method further includes: Determine a time slot position in which a PUSCH triggered by the DCI is transmitted based on at least one of the same time slot interval, the same time slot interval set, or the same time domain resource allocation table; Among them, the time slot interval k satisfies: if the DCI in response to triggering the PUSCH is received in time slot n, the time slot in which the PUSCH triggered by the DCI is located is time slot n+k; the time domain resource allocation table refers to the time domain resource allocation table of the PUSCH, which includes at least one column of time slot intervals and at least two columns of symbol positions of the PUSCH.
14. The method according to claim 1, further comprising: In response to part of the time domain or frequency domain resources of the PUSCH being punctured / canceled, the UCI is transmitted only in the remaining resources of the PUSCH; wherein the resources used by the UCI are determined based on the determined target beta offset value, the number of bits of the UCI and the remaining resources of the PUSCH, and the UCI is mapped to the remaining resources of the PUSCH for transmission.
15. The method according to claim 14, wherein In response to part of the time domain or frequency domain resources of the PUSCH being punctured / canceled and the PUSCH being triggered to be transmitted in the first type of symbol, the UCI is multiplexed in the remaining resources of the PUSCH; wherein the remaining resources of the PUSCH are the resources of the PUSCH within the time domain and / or frequency domain range of the UL subband.
16. The method according to claim 1, wherein Multiplexing the UCI in a PUSCH transmission based on the target beta offset value includes: For a connected user equipment or an idle user equipment, in response to the intersection of the UL subband and the activated UL BWP in the frequency domain being greater than 0, the UCI is multiplexed in the PUSCH transmission based on at least one of the following factors: Physical resources for performing transmission; wherein the physical resources include UL subbands or available physical resource blocks PRB; Execute resource configuration corresponding to the transmission; wherein the resource configuration includes: time domain resource allocation TDRA of UL subband, TDRA of activated UL BWP, and TDRA associated with available PRB; Parameters used for transmission; wherein the parameters include: subcarrier spacing SCS of UL subband, SCS of available PRB, SCS of activated UL BWP; In response to an intersection resource of the UL subband and the activated UL BWP in the frequency domain being equal to 0, multiplexing the UCI into a PUSCH transmission based on at least one of the following factors: Physical resources for performing transmission; wherein the physical resources include UL subbands; Execute resource configuration corresponding to the transmission; wherein the resource configuration includes: TDRA of UL subband, TDRA of activated UL BWP, and TDRA associated with available PRB; Parameters used for transmission; wherein the parameters include: SCS of UL subband, SCS of available PRB, SCS of activated UL BWP; No transfer is performed.
17. A parameter configuration method, performed by a base station, comprising: Sending first information and / or second information; wherein the first information includes downlink control information DCI for triggering a physical uplink shared channel PUSCH, and the second information includes: a beta offset value for configuring a semi-static or dynamic beta offset value; Determine a target beta offset value for PUSCH transmission of uplink control information UCI in a type symbol based on the first information and / or the second information; wherein the type symbol includes a first type symbol and a second type symbol; Receive the UCI multiplexed in the PUSCH transmission based on the target beta offset value; wherein the target beta offset value includes a first beta offset value for transmitting hybrid automatic repeat request confirmation HARQ-ACK information in the PUSCH, a second beta offset value for transmitting the first part of channel state information CSI in the PUSCH, and a third beta offset value for transmitting the second part of CSI in the PUSCH.
18. A computer device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein: When the processor executes the program, the parameter configuration method according to any one of claims 1 to 17 is implemented.
19. A computer-readable storage medium having a computer program stored thereon, wherein: When the program is executed by a processor, the parameter configuration method according to any one of claims 1 to 17 is implemented.
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