PUCCH (Physical Uplink Control Channel) transmission method and device, terminal, network equipment and medium
By configuring multiple PUCCH parameter groups and configuration groups for the terminal, and determining the PUCCH transmission resources according to the time domain resource type, the problem that the PUCCH frequency domain position in the SBFD system exceeds the available resources is solved, ensuring that PUCCH transmission is successful.
Patent Information
- Application Number
- CN202410176994.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-02-08
- Publication Date
- 2025-08-12
AI Technical Summary
In a subband non-overlapping full duplex (SBFD) system, the existing PUCCH resource configuration method causes the frequency domain position of the PUCCH to exceed the currently available uplink frequency domain resource, resulting in transmission failure.
By configuring the first configuration and the second configuration for the terminal, including a plurality of PUCCH parameter configurations and configuration parameter groups, the transmission resources of the PUCCH are determined according to the time domain resource type, so as to avoid the frequency domain location exceeding the available resources.
It effectively avoids the frequency domain position exceeding the available resources when PUCCH is frequencies between SBFD and non-SBFD time slots, ensuring successful PUCCH transmission.
Smart Images

Figure CN120474674A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of wireless technology, and in particular to a PUCCH transmission method, apparatus, terminal, network equipment, and medium. Background Art
[0002] SubBand non-overlapping Full Duplex (SBFD) combines the advantages of TDD and Frequency Division Duplexing (FDD). By introducing "sub-bands", the base station has the ability to simultaneously receive and send data on a single carrier, so that a single frequency band can have both ultra-low latency and ultra-large uplink communication capabilities, broadening the industry breadth and business depth of 5G integrated applications, and meeting the core production business needs of thousands of industries.
[0003] Currently, Physical Uplink Control Channel (PUCCH) transmission supports inter-slot frequency hopping. For a PUCCH resource, only one set of starting PRBs (PRBs) and second-hop PRBs (PRBs) are configured to determine the starting PRB for PUCCH transmission during PUCCH frequency hopping. However, in an SBFD system, the available uplink frequency domain resources in SBFD time slots / symbols and non-SBFD time slots / symbols are different. Using the existing PUCCH resource configuration method, when a terminal frequency hops between SBFD time slots and non-SBFD time slots, the PUCCH frequency domain position exceeds the currently available uplink frequency domain resources, resulting in PUCCH transmission failure. Summary of the Invention
[0004] The purpose of the technical solution of the present invention is to provide a PUCCH transmission method, apparatus, terminal, network equipment and medium, which are used to solve the problem that when the configuration method of PUCCH resources in the existing technology is applied to the SBFD frequency domain structure, the frequency domain position of PUCCH exceeds the currently available uplink frequency domain resources.
[0005] One embodiment of the present invention provides a physical uplink control channel (PUCCH) transmission method, wherein the method is performed by a terminal and includes:
[0006] Determine, based on first information, transmission resources for transmitting a first PUCCH in multiple time slots; wherein the first information includes one or more of the following information:
[0007] First configuration information; the first configuration information includes a first configuration and / or a second configuration; wherein the first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations includes a configuration parameter group; the second configuration includes one PUCCH parameter configuration, and the one PUCCH parameter configuration includes at least two configuration parameter groups;
[0008] The type of time domain resources on which the first PUCCH is transmitted.
[0009] Optionally, in the PUCCH transmission method, the configuration parameter groups each include one or more of the following parameters:
[0010] First PUCCH resource index;
[0011] The first PRB of the PUCCH resource;
[0012] The second PRB of the PUCCH resource;
[0013] Frequency hopping interval;
[0014] Transition time window.
[0015] Optionally, the PUCCH transmission method further includes:
[0016] Acquire downlink control information DCI sent by a network device; wherein the DCI is used to indicate a second PUCCH resource index;
[0017] The step of determining, according to the first information, transmission resources for transmitting the first PUCCH in multiple time slots includes:
[0018] According to the first information and the second PUCCH resource index, transmission resources for transmitting the first PUCCH in multiple time slots are determined.
[0019] Optionally, in the PUCCH transmission method, when the first configuration information includes a first configuration, determining, according to the first information and the second PUCCH resource index, a transmission resource for transmitting the first PUCCH includes:
[0020] When the time domain resource for the Nth transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the Nth transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration; or
[0021] When the time domain resources for the Nth transmission of the first PUCCH belong to the second type, it is determined that the transmission resources for the Nth transmission of the first PUCCH are second PUCCH resources, and the second PUCCH resources are the resources corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration; wherein N is an integer greater than or equal to 1.
[0022] Optionally, in the PUCCH transmission method, when the first configuration information includes a first configuration, determining, according to the first information and the second PUCCH resource index, a transmission resource for transmitting the first PUCCH includes one or more of the following:
[0023] When the time domain resource for the first transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the first transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration;
[0024] When the time domain resource for the first transmission of the first PUCCH belongs to the second type, determining that the transmission resource for the first transmission of the first PUCCH is a second PUCCH resource, where the second PUCCH resource is a resource corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration;
[0025] When the type of the time domain resource for the Mth transmission of the first PUCCH is the same as the type of the time domain resource for the first transmission, determine that the transmission resource for the Mth transmission of the first PUCCH is the same as the transmission resource for the first transmission;
[0026] When the type of time domain resources for the Mth transmission of the first PUCCH is different from the type of time domain resources for the first transmission, based on the association relationship between the first PUCCH resource index in the first PUCCH parameter configuration and the first PUCCH resource index in the second PUCCH parameter configuration of the first configuration, determine that the transmission resources associated with the transmission resources of the first transmission are the transmission resources of the Mth transmission of the first PUCCH; wherein M is an integer greater than 1.
[0027] Optionally, in the PUCCH transmission method, when the first configuration information includes a first configuration, determining, according to the first information, a transmission resource for transmitting the first PUCCH includes one or more of the following:
[0028] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, determining that the starting PRB for the first PUCCH transmission is a first PRB of the PUCCH resource corresponding to the Nth transmission;
[0029] When the transmission time unit of the Nth transmission of the first PUCCH is an odd time unit for multiple transmissions of the first PUCCH, the starting PRB of the first PUCCH transmission is determined to be the second PRB of the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
[0030] Optionally, in the PUCCH transmission method, when the first configuration information includes the second configuration, determining the transmission resource for transmitting the first PUCCH according to the first information includes one or more of the following:
[0031] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that a starting PRB for the Nth transmission of the first PUCCH is a first PRB corresponding to a first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0032] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the second type, determining that the starting PRB of the Nth transmission of the first PUCCH is the first PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0033] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an odd-numbered time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that the starting PRB for the Nth transmission of the first PUCCH is the second PRB corresponding to the first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0034] When the transmission time unit in which the Nth transmission of the first PUCCH is located is an odd time unit for multiple transmissions of the first PUCCH, and the time domain resource in which the Nth transmission of the first PUCCH is located belongs to the second type, the starting PRB of the Nth transmission of the first PUCCH is determined to be the second PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
[0035] Optionally, the PUCCH transmission method further includes:
[0036] sequentially counting a plurality of transmission time units for transmitting the first PUCCH, and determining whether the transmission time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit; or,
[0037] Count multiple transmission time units of the first PUCCH transmitted in the first type of time domain resources in sequence to determine whether the time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit; and count multiple transmission time units of the first PUCCH transmitted in the second type of time domain resources in sequence to determine whether the time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit.
[0038] Optionally, in the PUCCH transmission method, the first configuration parameter group in the first configuration information includes a first frequency hopping time parameter, and the second configuration parameter group includes a second frequency hopping time parameter;
[0039] The method further includes one or more of the following:
[0040] The transmission of the first PUCCH performs frequency hopping once every first frequency hopping time parameter in the first type of time domain resources;
[0041] Transmission of the first PUCCH performs frequency hopping once every second frequency hopping time parameter in the second type of time domain resources;
[0042] The time domain resource where the first PUCCH is transmitted is switched from the first type to the second type, or from the second type to the first type, and frequency hopping is performed once.
[0043] One embodiment of the present invention further provides a physical uplink control channel (PUCCH) transmission method, which is performed by a network device and includes:
[0044] Sending the configured first configuration information to the terminal, where the first configuration information is used by the terminal to determine transmission resources for transmitting a first PUCCH in multiple time slots;
[0045] The first configuration information includes one or more of the following configurations:
[0046] A first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations including a configuration parameter group;
[0047] The second configuration includes a PUCCH parameter configuration, where the PUCCH parameter configuration includes at least two configuration parameter groups.
[0048] Optionally, in the PUCCH transmission method, the configuration parameter groups each include one or more of the following parameters:
[0049] First PUCCH resource index;
[0050] The first PRB of the PUCCH resource;
[0051] The second PRB of the PUCCH resource;
[0052] Frequency hopping interval;
[0053] Transition time window.
[0054] One embodiment of the present invention further provides a terminal, comprising a processor, wherein the processor is configured to:
[0055] Determine, based on first information, transmission resources for transmitting a first PUCCH in multiple time slots; wherein the first information includes one or more of the following information:
[0056] First configuration information; the first configuration information includes a first configuration and / or a second configuration; wherein the first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations includes a configuration parameter group; the second configuration includes one PUCCH parameter configuration, and the one PUCCH parameter configuration includes at least two configuration parameter groups;
[0057] The type of time domain resources on which the first PUCCH is transmitted.
[0058] One embodiment of the present invention further provides a network device, comprising a transceiver, wherein the transceiver is configured to:
[0059] Sending the configured first configuration information to the terminal, where the first configuration information is used by the terminal to determine transmission resources for transmitting a first PUCCH in multiple time slots;
[0060] The first configuration information includes one or more of the following configurations:
[0061] A first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations including a configuration parameter group;
[0062] The second configuration includes a PUCCH parameter configuration, where the PUCCH parameter configuration includes at least two configuration parameter groups.
[0063] One embodiment of the present invention further provides a physical uplink control channel (PUCCH) transmission device, which is applied to a terminal and includes:
[0064] A first determining module is configured to determine, based on first information, transmission resources for transmitting a first PUCCH in multiple time slots; wherein the first information includes one or more of the following information:
[0065] First configuration information; the first configuration information includes a first configuration and / or a second configuration; wherein the first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations includes a configuration parameter group; the second configuration includes one PUCCH parameter configuration, and the one PUCCH parameter configuration includes at least two configuration parameter groups;
[0066] The type of time domain resources on which the first PUCCH is transmitted.
[0067] One embodiment of the present invention further provides a physical uplink control channel (PUCCH) transmission device, which is applied to a network device and includes:
[0068] a sending module, configured to send the configured first configuration information to the terminal, where the first configuration information is used by the terminal to determine a transmission resource for transmitting a first PUCCH in multiple time slots;
[0069] The first configuration information includes one or more of the following configurations:
[0070] A first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations including a configuration parameter group;
[0071] The second configuration includes a PUCCH parameter configuration, where the PUCCH parameter configuration includes at least two configuration parameter groups.
[0072] One embodiment of the present invention further provides a terminal, which includes a processor, a memory, and a program stored in the memory and executable on the processor, wherein the program, when executed by the processor, implements the PUCCH transmission method as described in any one of the above items.
[0073] One embodiment of the present invention further provides a network device, characterized in that it includes a processor, a memory, and a program stored in the memory and executable on the processor, wherein when the program is executed by the processor, the PUCCH transmission method as described in any one of the above items is implemented.
[0074] One embodiment of the present invention further provides a readable storage medium, characterized in that a program is stored on the readable storage medium, and when the program is executed by a processor, the steps in the PUCCH transmission method as described in any one of the above items are implemented.
[0075] One embodiment of the present invention further provides a computer program product, which includes computer instructions, and when the computer instructions are executed by a processor, the steps in any one of the above PUCCH transmission methods are implemented.
[0076] At least one of the above technical solutions of the present invention has the following beneficial effects:
[0077] Using the PUCCH transmission method described in an embodiment of the present invention, the network device configures first configuration information for the terminal, including one or more of the first configuration and the second configuration, and configures multiple configuration parameter groups for the terminal through the first configuration and / or the second configuration, so that the terminal can determine the transmission resources of the first PUCCH transmission based on the first configuration information and one or more of the time domain resource types where the first PUCCH transmission is located. In this way, when the time-frequency resources where the transmission resources are located are of different types, different PUCCH parameter configurations or different configuration parameter groups can be used to determine the starting PRB, thereby avoiding the situation where the frequency domain position of the PUCCH exceeds the currently available uplink frequency domain resources when the terminal hops between the SBFD time slot and the non-SBFD time slot, resulting in PUCCH transmission failure. BRIEF DESCRIPTION OF THE DRAWINGS
[0078] Figure 1 A schematic diagram of one implementation structure of the SBFD frequency domain structure;
[0079] Figure 2 Schematic diagram of a PUCCH transmission method according to one embodiment of the present invention;
[0080] Figure 3 Schematic diagram of a PUCCH transmission method according to another embodiment of the present invention;
[0081] Figure 4 This is a schematic diagram of the structure of a terminal according to an embodiment of the present invention;
[0082] Figure 5 A schematic diagram of the structure of a network device according to an embodiment of the present invention;
[0083] Figure 6 Schematic diagram of the structure of a PUCCH transmission device according to one embodiment of the present invention;
[0084] Figure 7 It is a structural diagram of a PUCCH transmission device according to another embodiment of the present invention. DETAILED DESCRIPTION
[0085] In order to make the technical problems, technical solutions and advantages to be solved by the present invention clearer, a detailed description will be given below with reference to the accompanying drawings and specific embodiments.
[0086] The terms "first," "second," and the like in the specification and claims of the present invention are used to distinguish similar objects, and are not used to describe a specific order or precedence. It should be understood that the terms used in this manner are interchangeable where appropriate, so that the embodiments of the present application can be implemented in an order other than that illustrated or described herein, and that the objects distinguished by "first" and "second" are generally of the same type, and do not limit the number of objects. For example, the first object can be one or more. In addition, the term "and / or" in the specification and claims refers to at least one of the connected objects, and the character " / " generally indicates that the objects connected are in an "or" relationship.
[0087] Subband non-overlapping Full Duplex (SBFD) combines the advantages of TDD and Frequency Division Duplex (FDD). By introducing "subbands", the base station can simultaneously perform uplink reception in the uplink subband (UL subband) and downlink transmission in the downlink subband (DL subband). For time slots / symbols configured with subbands, they can be called Subband Non-overlapping Full Duplex (SBFD) time slots / symbols. Correspondingly, for time slots / symbols without subbands, they can be called non-SBFD time slots / symbols.
[0088] like Figure 1 This diagram illustrates one implementation of an SBFD frequency-domain structure. An SBFD time slot / symbol includes a DL subband and an UL subband. In existing technologies, only one starting PRB and second-hop PRB are configured for each PUCCH resource. These PRBs are used to determine the starting PRB for PUCCH transmission during PUCCH frequency hopping. However, within the SBFD frequency-domain structure, the available uplink frequency-domain resources differ between SBFD time slots / symbols and non-SBFD time slots / symbols. Using existing PUCCH resource configuration methods, when a terminal frequency-hops between SBFD time slots and non-SBFD time slots, the PUCCH frequency-domain location exceeds the currently available uplink frequency-domain resources, resulting in PUCCH transmission failure.
[0089] To solve this technical problem, one embodiment of the present invention provides a physical uplink control channel PUCCH transmission method, wherein a network device configures first configuration information for a terminal, including one or more of a first configuration and a second configuration, and configures at least two PUCCH parameter configurations for the terminal through the first configuration, each PUCCH parameter configuration including a configuration parameter group, and configures a PUCCH parameter configuration for the terminal through the second configuration, and a PUCCH parameter configuration includes at least two configuration parameter groups. In this way, multiple configuration parameter groups are configured for the terminal through the first configuration and the second configuration respectively, so that the terminal can determine the transmission resource of the first PUCCH transmission based on the first configuration information and one or more of the time domain resource types where the first PUCCH transmission is located. In this way, when the time-frequency resources where the transmission resources are located are of different types, different PUCCH parameter configurations or different configuration parameter groups can be used to determine the transmission resource, so as to avoid the situation where the frequency domain position of the PUCCH exceeds the currently available uplink frequency domain resources when the terminal hops between SBFD time slots and non-SBFD time slots, resulting in PUCCH transmission failure.
[0090] One embodiment of the present invention provides a PUCCH transmission method, which is executed by a terminal, such as Figure 1 As shown, the method includes:
[0091] S210: Determine, based on first information, transmission resources for transmitting a first PUCCH in multiple time slots; wherein the first information includes one or more of the following information:
[0092] First configuration information; the first configuration information includes a first configuration and / or a second configuration; wherein the first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations includes a configuration parameter group; the second configuration includes one PUCCH parameter configuration, and the one PUCCH parameter configuration includes at least two configuration parameter groups;
[0093] The type of time domain resources on which the first PUCCH is transmitted.
[0094] In the embodiment of the present invention, optionally, the first PUCCH is any PUCCH transmitted by the terminal.
[0095] In one embodiment, optionally, the first configuration information configured by the network device includes a first configuration, and the first configuration includes at least two PUCCH parameter configurations, such as the first configuration includes a first PUCCH parameter configuration and a second PUCCH parameter configuration, and the first PUCCH parameter configuration and the second PUCCH parameter configuration each include a configuration parameter group.
[0096] Optionally, the configuration parameter group includes one or more of the following parameters:
[0097] First PUCCH resource index;
[0098] The first PRB of the PUCCH resource;
[0099] The second PRB of the PUCCH resource;
[0100] Frequency hopping interval;
[0101] Transition time window.
[0102] Among them, the first PUCCH resource index is the index of the PUCCH resource configured by the network device for the terminal; the first PRB of the PUCCH resource can also be described as the first starting PRB (starting PRB), which is used by the terminal to determine the first starting PRB of frequency hopping when transmitting the first PUCCH for frequency hopping; the second PRB of the PUCCH resource can also be described as the second hop PRB (secondHop PRB), which is used by the terminal to determine the second hop PRB of frequency hopping when transmitting the first PUCCH for frequency hopping.
[0103] Optionally, the frequency hopping interval and hopping time window in the configuration parameter group are used by the terminal to determine a time slot interval or a time window interval for frequency hopping when PUCCH DMRS bundling is configured.
[0104] In this embodiment, the first configuration configured by the network device for the terminal includes a first PUCCH parameter configuration and a second PUCCH parameter configuration. Different PUCCH parameter configurations may be used to determine transmission resources for different types of time domain resources. For example, when the terminal transmits the first PUCCH on multiple time slots and performs frequency hopping on odd and even time slots, the first PUCCH parameter configuration may be used to determine the transmission resources (e.g., to determine the starting PRB) for the first type of time domain resources; and the second PUCCH parameter configuration may be used to determine the transmission resources for the second type of time slot resources.
[0105] In an embodiment of the present invention, optionally, the first type of time domain resource may be one of an SBFD time slot / symbol and a non-SBFD time slot / symbol, and the second type of time domain resource may be the other of an SBFD time slot / symbol and a non-SBFD time slot / symbol.
[0106] In another implementation manner, optionally, the first configuration information configured by the network device includes a second configuration, the second configuration includes a PUCCH parameter configuration, and the PUCCH parameter configuration includes at least two configuration parameter groups.
[0107] Optionally, each configuration parameter group in the one PUCCH parameter configuration of the second configuration includes one or more of the following parameters:
[0108] First PUCCH resource index;
[0109] The first PRB of the PUCCH resource;
[0110] The second PRB of the PUCCH resource;
[0111] Frequency hopping interval;
[0112] Transition time window.
[0113] The meaning of each parameter in the configuration parameter group is as described above and will not be repeated here.
[0114] For example, the one PUCCH parameter configuration of the second configuration includes a first configuration parameter group and a second configuration parameter group. The first configuration parameter group includes the first first PRB of the PUCCH resource (such as the first starting PRB) and the first second PRB of the PUCCH resource (such as the first second hop PRB); the second configuration parameter group includes the second first PRB of the PUCCH resource (such as the second starting PRB) and the second second PRB of the PUCCH resource (such as the second second hop PRB); or, the first configuration parameter group includes a first frequency hopping interval, and the second configuration parameter group includes a second frequency hopping interval; or, the first configuration group includes a first hopping time window, and the second configuration parameter group includes a second hopping time window.
[0115] In this embodiment, the second configuration configured by the network device for the terminal includes a first configuration parameter group and a second configuration parameter group. Different configuration parameter groups may be used to determine transmission resources for different types of time domain resources. For example, when the terminal transmits a first PUCCH on multiple time slots and performs frequency hopping on odd and even time slots, the first configuration parameter group may be used to determine the transmission resources (e.g., determining the starting PRB) for the first type of time domain resources; and the second configuration parameter group may be used to determine the transmission resources for the second type of time slot resources.
[0116] In the embodiment of the present invention, optionally, the method further includes:
[0117] Obtaining downlink control information (DCI) sent by a network device; wherein the DCI is used to indicate a second PUCCH resource index;
[0118] In step S210, determining, based on the first information, transmission resources for transmitting the first PUCCH in multiple time slots includes:
[0119] According to the first information and the second PUCCH resource index, transmission resources for transmitting the first PUCCH in multiple time slots are determined.
[0120] Using this implementation, the terminal determines the PUCCH resource index for the first PUCCH transmission based on the second PUCCH resource index in the DCI sent by the network device, and determines the transmission resources for transmitting the first PUCCH in multiple time slots based on the second PUCCH resource index and the first configuration information configured by the network device.
[0121] In one embodiment, when the first configuration information includes the second configuration, that is, the network device is only configured with one PUCCH parameter configuration, after obtaining the second PUCCH resource index indicated by the DCI, the terminal determines that the PUCCH resource corresponding to the second PUCCH resource index is the transmission resource of the first PUCCH based on the PUCCH resource configured by the first PUCCH resource index in the PUCCH parameter configuration.
[0122] In another embodiment, optionally, when the first configuration information includes a first configuration, determining, according to the first information and the second PUCCH resource index, a transmission resource for transmitting the first PUCCH includes:
[0123] When the time domain resource for the Nth transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the Nth transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration; or
[0124] When the time domain resources for the Nth transmission of the first PUCCH belong to the second type, it is determined that the transmission resources for the Nth transmission of the first PUCCH are second PUCCH resources, and the second PUCCH resources are the resources corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration; wherein N is an integer greater than or equal to 1.
[0125] In the PUCCH transmission method described in an embodiment of the present invention, when the first configuration information configured by the network device for the terminal includes a first configuration, that is, includes a first PUCCH parameter configuration and a second PUCCH parameter configuration, in one embodiment, the terminal determines the second PUCCH resource index indicated by the network device and the type of the time domain resource where the first PUCCH transmission is located based on the DCI, and uses the PUCCH parameter configuration corresponding to the type to determine the transmission resource for transmitting the first PUCCH. For example, when the time domain resource where the first PUCCH transmission is located is of the first type, the transmission resource for transmitting the first PUCCH is determined to be the resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration; when the time domain resource where the first PUCCH transmission is located is of the second type, the transmission resource for transmitting the first PUCCH is determined to be the resource corresponding to the second PUCCH resource index in the second PUCCH parameter configuration.
[0126] Using the above rule, for the Nth transmission of the first PUCCH, when the time domain resource in which the Nth transmission is located belongs to the first type, determining that the transmission resource for the Nth transmission of the first PUCCH is the first PUCCH resource, and the first PUCCH resource is the resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration;
[0127] For the Nth transmission of the first PUCCH, when the time domain resources where the Nth transmission is located belong to the second type, the transmission resources of the Nth transmission of the first PUCCH are determined to be the second PUCCH resources, and the second PUCCH resources are the resources corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration; wherein N is an integer greater than or equal to 1.
[0128] In an embodiment of the present invention, another implementation method, optionally, the terminal determines the second PUCCH resource index indicated by the network device according to the DCI, and according to the second PUCCH resource index and the type of the time domain resource where the first transmission of the first PUCCH is located, uses the PUCCH parameter configuration corresponding to the type to determine the transmission resource for the first transmission of the first PUCCH; in addition, according to the type of the time domain resource where the Mth transmission is located and the association between the first PUCCH resource index in the first PUCCH parameter configuration configured by the network device and the first PUCCH resource index in the second PUCCH parameter configuration, determines the transmission resource for the Mth transmission of the first PUCCH; wherein M is an integer greater than 1.
[0129] Specifically, based on the above rules, in this embodiment, when the first configuration information includes the first configuration, determining the transmission resource for transmitting the first PUCCH according to the first configuration information and the second PUCCH resource index includes one or more of the following:
[0130] When the time domain resource for the first transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the first transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration;
[0131] When the time domain resource where the first PUCCH is transmitted belongs to the second type, determining that the transmission resource for the first transmission of the first PUCCH is a second PUCCH resource, where the second PUCCH resource is a resource corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration;
[0132] When the type of the time domain resource where the Mth transmission of the first PUCCH is located is the same as the type of the time domain resource where the first transmission is located, determining that the transmission resource of the Mth transmission of the first PUCCH is the same as the transmission resource of the first transmission;
[0133] When the type of time domain resources for the Mth transmission of the first PUCCH is different from the type of time domain resources for the first transmission, based on the association relationship between the first PUCCH resource index in the first PUCCH parameter configuration and the first PUCCH resource index in the second PUCCH parameter configuration of the first configuration, the transmission resources associated with the transmission resources of the first transmission are determined to be the transmission resources of the Mth transmission of the first PUCCH; wherein M is an integer greater than 1.
[0134] It should be noted that, based on the configuration information of the network device, the time domain resource for the Nth transmission of the first PUCCH can be determined, thereby determining the time domain resource type for the Nth transmission. In this embodiment of the present invention, based on the second PUCCH resource index indicated in the downlink control information DCI sent by the network device and the first information, the transmission resources for transmitting the first PUCCH in multiple time slots are determined. The determined transmission resources are also the PUCCH resources in the first PUCCH parameter configuration configured by the network device for the terminal based on the second PUCCH resource index.
[0135] The above method of determining the transmission resources for transmitting the first PUCCH in multiple time slots based on the first information and the second PUCCH resource index is only an example and is not limited thereto.
[0136] The PUCCH transmission method described in an embodiment of the present invention, on the basis of determining the transmission resources (PUCCH resources) for transmitting the first PUCCH according to one of the above-mentioned methods, can determine the PRB position of the first PUCCH frequency hopping based on the determined PUCCH resources, the time domain resource type where the PUCCH resources are located, and one or more of the first configuration information.
[0137] If the terminal is not enabled with PUCCH DMRS bundling, the terminal repeatedly transmits the first PUCCH on multiple time slots, and performs frequency hopping on odd time slots and even time slots respectively; if the terminal is enabled with PUCCH DMRS bundling, the terminal repeatedly transmits the first PUCCH on multiple time slots, and performs frequency hopping once when the frequency hopping conditions are met.
[0138] In an embodiment of the present invention, for a case where PUCCH DMRS bundling is not enabled for a terminal, odd time slots and even time slots are counted, and the starting PRB for the first PUCCH transmission in odd time slots and even time slots is determined respectively according to the determined transmission resources and the first configuration or the second configuration configured by the first configuration information.
[0139] In one embodiment, optionally, when counting odd time slots and even time slots, no distinction is made between first type of time domain resources and second type of time domain resources. Specifically, the time slot for the first transmission of the first PUCCH is recorded as 0, and no distinction is made between whether the time domain resources for each transmission of the first PUCCH are of the first type or the second type. Multiple time slots for transmitting the first PUCCH are counted in sequence to determine whether the transmission time slot for each transmission of the first PUCCH is an even time slot or an odd time slot. This counting method can be called joint counting.
[0140] In another embodiment, optionally, when counting odd and even time slots, a distinction is made between the first type of time domain resources and the second type of time domain resources, and the time slots in which each transmission of the first PUCCH occurs are counted separately to determine whether the time slot in which each transmission of the first PUCCH occurs is an even time slot or an odd time slot. That is, multiple time slots in which the first PUCCH is transmitted on the first type of time domain resources are counted sequentially to determine whether the time unit in which each transmission of the first PUCCH occurs is an even time slot or an odd time slot; and multiple time slots in which the first PUCCH is transmitted on the second type of time domain resources are counted sequentially to determine whether the time slot in which each transmission of the first PUCCH occurs is an even time slot or an odd time slot. For example, the time slot in which the terminal first transmits the PUCCH on the first type of time domain resources is recorded as 0, and then the multiple time slots in which the first PUCCH is transmitted on the first type of time domain resources are counted sequentially. The time slot in which the terminal first transmits the PUCCH on the second type of time domain resources is recorded as 0, and then the multiple time slots in which the first PUCCH is transmitted on the second type of time domain resources are counted sequentially. Optionally, this counting method can be referred to as separate counting.
[0141] In the embodiment of the present invention, the above-mentioned time slot may also be referred to as a transmission time unit.
[0142] In an embodiment of the present invention, for a case where the terminal is not enabled for PUCCH DMRS bundling, when the first configuration information includes a first configuration, that is, when the network device configures at least two PUCCH parameter configurations for the terminal, the transmission resource for transmitting the first PUCCH is determined according to the first information, that is, the starting physical resource block (PRB) for transmitting the first PUCCH is determined, including one or more of the following:
[0143] When the transmission time unit (time slot) in which the Nth transmission of the first PUCCH occurs is an even time unit (even time slot) in which the first PUCCH is transmitted multiple times, determining that the starting PRB for the first PUCCH transmission is the first PRB of the PUCCH resource corresponding to the Nth transmission;
[0144] When the transmission time unit (time slot) of the Nth transmission of the first PUCCH is an odd time unit (odd time slot) for multiple transmissions of the first PUCCH, the starting PRB of the first PUCCH transmission is determined to be the second PRB of the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
[0145] Optionally, the first PRB may be the first starting PRB in the PUCCH parameter configuration (the first PUCCH parameter configuration or the second PUCCH parameter configuration), and the second PRB may be the second hop PRB in the PUCCH parameter configuration (the first PUCCH parameter configuration or the second PUCCH parameter configuration).
[0146] Using this implementation, after determining the PUCCH resources for the first PUCCH transmission based on the first configuration information and the type of time domain resources where the first PUCCH transmission is located, the first starting PRB and the second hop PRB in the PUCCH parameter configuration (first PUCCH parameter configuration or second PUCCH parameter configuration) can be used to determine the starting PRB of the first PUCCH transmission for even time slots and odd time slots, respectively.
[0147] Specifically, the first PUCCH parameter configuration and the second PUCCH parameter configuration respectively include configuration information of multiple PUCCH resources, and the configuration information of each PUCCH resource respectively includes a first PUCCH resource index, a first starting PRB and a second hop PRB, etc. After determining the PUCCH transmission resource (PUCCH resource) used to transmit the first PUCCH in one time slot according to the above method, the PUCCH transmission resource is determined to be one of the PUCCH resources configured in the first PUCCH parameter configuration or the second PUCCH parameter configuration, that is, according to the PUCCH resource of the Nth transmission of the determined first PUCCH, and the corresponding first starting PRB and second hop PRB are also determined, the starting PRB of the first PUCCH transmission is determined according to the PUCCH resource and the corresponding first starting PRB or second hop PRB in the first PUCCH parameter configuration or the second PUCCH parameter configuration.
[0148] For example, when the transmission time slot where the Nth transmission of the first PUCCH is located is an even time slot, the starting PRB of the first PUCCH transmission is determined to be the first starting PRB of the corresponding PUCCH resource; when the transmission time slot where the Nth transmission of the first PUCCH is located is an odd time slot, the starting PRB of the first PUCCH transmission is determined to be the second hop PRB of the corresponding PUCCH resource.
[0149] In an embodiment of the present invention, in another implementation manner, the first configuration information configured by the network device for the terminal includes a second configuration, that is, includes a PUCCH parameter configuration, and the PUCCH parameter configuration includes at least two configuration parameter groups, such as a first configuration parameter group and a second configuration parameter. Optionally, for a case where the terminal is not enabled for PUCCH DMRS bundling, the first configuration parameter group includes a first first PRB (such as a first starting PRB) and a first second PRB (such as a first second hop PRB), and the second configuration parameter group includes a second first PRB (such as a second starting PRB) and a second second PRB (such as a second second hop PRB).
[0150] In this implementation, determining the transmission resource for transmitting the first PUCCH according to the first information includes one or more of the following:
[0151] When the transmission time unit (transmission time slot) in which the Nth transmission of the first PUCCH occurs is an even time unit (even time slot) in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that the starting PRB of the Nth transmission of the first PUCCH is the first PRB corresponding to the first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0152] When the transmission time unit (transmission time slot) in which the Nth transmission of the first PUCCH occurs is an even time unit (even time slot) in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the second type, determining that the starting PRB of the Nth transmission of the first PUCCH is the first PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0153] When the transmission time unit (transmission time slot) in which the Nth transmission of the first PUCCH occurs is an odd time unit (odd time slot) in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that the starting PRB of the Nth transmission of the first PUCCH is the second PRB corresponding to the first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0154] When the transmission time unit (transmission time slot) in which the Nth transmission of the first PUCCH is located is an odd time unit (odd time slot) for multiple transmissions of the first PUCCH, and the time domain resource in which the Nth transmission of the first PUCCH is located belongs to the second type, the starting PRB of the Nth transmission of the first PUCCH is determined to be the second PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
[0155] Specifically, according to the above rules, when the Nth transmission of the first PUCCH is an even time slot, if the time domain resource of the time slot is of the first type, the starting PRB for the terminal to transmit the Nth transmission of the first PUCCH is the first PRB corresponding to the first configuration parameter group in the corresponding PUCCH resource; if the time domain resource of the time slot is of the second type, the starting PRB for the terminal to transmit the Nth transmission of the first PUCCH is the first PRB corresponding to the second configuration parameter group in the corresponding PUCCH resource;
[0156] When the Nth transmission of the first PUCCH is an even time slot, if the time domain resources of the time slot are of the first type, the starting PRB for the terminal to transmit the Nth transmission of the first PUCCH is the second PRB corresponding to the first configuration parameter group in the corresponding PUCCH resource; if the time domain resources of the time slot are of the second type, the starting PRB for the terminal to transmit the Nth transmission of the first PUCCH is the second PRB corresponding to the second configuration parameter group in the corresponding PUCCH resource.
[0157] It should be noted that, in the embodiment of the present invention, when the first configuration information configured by the network device for the terminal includes the first configuration or the second configuration, the even and odd time slots mentioned in the manner in which the terminal determines the starting PRB for the first PUCCH transmission can be determined using a joint counting method or a separate counting method. That is, the above-mentioned manner of determining the starting PRB for the first PUCCH transmission can be applied to both joint counting and separate counting.
[0158] Another implementation of the PUCCH transmission method described in the embodiment of the present invention can also be applied to a case where the terminal is enabled with PUCCH DMRS bundling. The terminal repeatedly transmits the first PUCCH in multiple time slots and performs frequency hopping once when a frequency hopping condition is met.
[0159] Optionally, when the terminal repeatedly transmits the first PUCCH in multiple time slots, the frequency hopping condition satisfied is a first condition, and the first condition includes one or more of the following:
[0160] a first frequency hopping time parameter per interval within the first type of time domain resources;
[0161] a second frequency hopping time parameter per interval within the second type of time domain resources;
[0162] The time domain resources where the first PUCCH is transmitted are switched from the first type to the second type, or from the second type to the first type.
[0163] According to the first condition, the method further includes one or more of the following:
[0164] The transmission of the first PUCCH performs frequency hopping once every first frequency hopping time parameter in the first type of time domain resources;
[0165] Transmission of the first PUCCH performs frequency hopping once every second frequency hopping time parameter in the second type of time domain resources;
[0166] The time domain resource where the first PUCCH is transmitted is switched from the first type to the second type, or from the second type to the first type, and frequency hopping is performed once.
[0167] Optionally, the frequency hopping time parameter includes a frequency hopping interval and / or a hopping time window.
[0168] In this embodiment, when the first configuration information configured for the terminal by the network device includes the first configuration, the first PUCCH parameter configuration in the first configuration includes the first frequency hopping time parameter, and the second PUCCH parameter configuration includes the second frequency hopping time parameter; when the first configuration information configured for the terminal by the network device includes the second configuration, a PUCCH parameter configuration of the second configuration includes a first configuration parameter group and a second configuration parameter group; wherein the first configuration parameter group includes the first frequency hopping time parameter, and the second configuration parameter group includes the second frequency hopping time parameter. The first frequency hopping time parameter and the second frequency hopping time parameter may have the same value, or when one of the first frequency hopping time parameter and the second frequency hopping time parameter is not configured, the value of the configured parameter of the first frequency hopping time parameter and the second frequency hopping time parameter is defaulted to be equal to the value of the other parameter configuration, that is, if the second frequency hopping time parameter of the first frequency hopping time parameter and the second frequency hopping time parameter is not configured, the value of the second frequency hopping time parameter may be defaulted to be equal to the value of the first frequency hopping time parameter.
[0169] In this way, the first frequency hopping time parameter and the second frequency hopping time parameter can be determined according to the first configuration information configured by the network device for the terminal. When it is determined that the first condition is met according to the first frequency hopping time parameter and the second frequency hopping time parameter, a frequency hopping is performed.
[0170] The PUCCH transmission method described in an embodiment of the present invention, in this implementation mode, when the terminal is configured with PUCCH DMRSbundling, the terminal repeatedly transmits the first PUCCH on multiple time slots, and performs frequency hopping at intervals of one transmission time unit. In each hop, the starting physical resource block PRB of the first PUCCH transmission is determined according to the parity type of the transmission time unit of the first PUCCH transmission and / or the time domain resource type where the transmission resource is located.
[0171] Optionally, the transmission time unit may include a frequency hopping time window, and the time length of the time window is configured by a first frequency hopping time parameter.
[0172] In one embodiment, optionally, in an embodiment of the present invention, regardless of whether the first type of time domain resources or the second type of time domain resources are distinguished, the frequency hopping time windows during the transmission of the first PUCCH are jointly counted. Specifically, the frequency hopping time window during the first transmission of the first PUCCH by the terminal is recorded as 0, and regardless of whether the frequency hopping time window for each transmission of the first PUCCH is of the first type or the second type, multiple frequency hopping time windows for transmitting the first PUCCH are counted sequentially to determine whether the frequency hopping time window during each transmission of the first PUCCH is an odd-numbered frequency hopping time window or an even-numbered frequency hopping time window.
[0173] In another embodiment of the present invention, a distinction is made between first-type time domain resources and second-type time domain resources, and the frequency hopping time window in which each first PUCCH transmission occurs is counted separately. That is, the multiple frequency hopping time windows in which the first PUCCH is transmitted on the first-type time domain resources are counted to determine whether the frequency hopping time window in which each first PUCCH transmission occurs is an even-numbered frequency hopping time window or an odd-numbered frequency hopping time window; and the multiple frequency hopping time windows in which the first PUCCH is transmitted on the second-type time domain resources are counted sequentially to determine whether the frequency hopping time window in which each first PUCCH transmission occurs is an even-numbered frequency hopping time window or an odd-numbered frequency hopping time window. For example, the frequency hopping time window for the first transmission of the PUCCH on the first-type time domain resources by the terminal is recorded as 0, and then the multiple frequency hopping time windows for the transmission of the first PUCCH on the first-type time domain resources are counted sequentially. The frequency hopping time window for the first transmission of the PUCCH on the second-type time domain resources by the terminal is recorded as 0, and then the multiple frequency hopping time windows for the transmission of the first PUCCH on the second-type time domain resources are counted sequentially.
[0174] In an embodiment of the present invention, when the terminal is enabled for PUCCH DMRS bundling, the first configuration information includes a first configuration, that is, when the network device configures at least two PUCCH parameter configurations for the terminal, determining the starting physical resource block PRB for the first PUCCH transmission according to the first information includes one or more of the following:
[0175] When the frequency hopping time window in which the Nth transmission of the first PUCCH occurs is an even-numbered frequency hopping time window in which the first PUCCH is transmitted multiple times, determining that the starting PRB for the first PUCCH transmission is the first PRB of the PUCCH resource corresponding to the Nth transmission;
[0176] When the frequency hopping time window in which the Nth transmission of the first PUCCH occurs is an odd-numbered frequency hopping time window in which the first PUCCH is transmitted multiple times, the starting PRB of the first PUCCH transmission is determined to be the second PRB of the PUCCH resource corresponding to the Nth transmission; wherein N is an integer greater than or equal to 1.
[0177] Using this implementation, after determining the PUCCH resources for the first PUCCH transmission based on the first configuration information and the type of time domain resources where the first PUCCH transmission is located, the first starting PRB and the second hopping PRB in the PUCCH parameter configuration (first PUCCH parameter configuration or second PUCCH parameter configuration) can be used to determine the starting PRB of the first PUCCH transmission for even-numbered frequency hopping time windows and odd-numbered frequency hopping time windows, respectively.
[0178] In an embodiment of the present invention, in another implementation manner, the first configuration information configured by the network device for the terminal includes a second configuration, that is, includes a PUCCH parameter configuration, and the PUCCH parameter configuration includes at least two configuration parameter groups, such as a first configuration parameter group and a second configuration parameter. Optionally, for a case where the terminal is enabled for PUCCH DMRS bundling, the first configuration parameter group includes a first first PRB (such as a first starting PRB), a first second PRB (such as a first second hop PRB) and a first frequency hopping time parameter, and the second configuration parameter group includes a second first PRB (such as a second starting PRB), a second second PRB (such as a second second hop PRB) and a second frequency hopping time parameter.
[0179] In this implementation manner, determining the starting physical resource block (PRB) for the first PUCCH transmission according to the first information includes one or more of the following:
[0180] When the frequency hopping time window in which the Nth transmission of the first PUCCH occurs is an even-numbered frequency hopping time window in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that a starting PRB for the Nth transmission of the first PUCCH is a first PRB corresponding to a first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0181] When the frequency hopping time window in which the Nth transmission of the first PUCCH occurs is an even-numbered frequency hopping time window in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the second type, determining that a starting PRB for the Nth transmission of the first PUCCH is a first PRB corresponding to a second configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0182] When the frequency hopping time window in which the Nth transmission of the first PUCCH occurs is an odd-numbered frequency hopping time window in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that a starting PRB for the Nth transmission of the first PUCCH is a second PRB corresponding to a first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0183] When the frequency hopping time window in which the Nth transmission of the first PUCCH is located is an odd-numbered frequency hopping time window for multiple transmissions of the first PUCCH, and the time domain resource in which the Nth transmission of the first PUCCH is located belongs to the second type, the starting PRB of the Nth transmission of the first PUCCH is determined to be the second PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
[0184] In the embodiment of the present invention, when the terminal is enabled with PUCCH DMRS bundling, the even frequency hopping time window and the odd frequency hopping time window mentioned may be determined in a joint counting manner or in a separate counting manner.
[0185] By adopting the PUCCH transmission method described in the embodiment of the present invention, multiple configuration parameter groups are configured for the terminal through the first configuration and the second configuration respectively, so that PUCCH frequency hopping under different uplink available resources in the SBFD system can be realized, thereby avoiding the situation where the frequency domain position of the PUCCH exceeds the currently available uplink frequency domain resources when the terminal hops between the SBFD time slot and the non-SBFD time slot, resulting in PUCCH transmission failure.
[0186] One embodiment of the present invention further provides a physical uplink control channel PUCCH transmission method, which is executed by a network device, such as Figure 3 As shown, the method includes:
[0187] S310, sending the configured first configuration information to the terminal, where the first configuration information is used by the terminal to determine transmission resources for transmitting a first PUCCH in multiple time slots;
[0188] The first configuration information includes one or more of the following configurations:
[0189] A first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations including a configuration parameter group;
[0190] The second configuration includes a PUCCH parameter configuration, where the PUCCH parameter configuration includes at least two configuration parameter groups.
[0191] Using the PUCCH transmission method described in this embodiment, the network device configures first configuration information for the terminal, including one or more of the first configuration and the second configuration, and configures multiple configuration parameter groups for the terminal through the first configuration and / or the second configuration, so that the terminal can determine the transmission resources for the first PUCCH transmission based on the first configuration information, the transmission resources, and one or more of the time domain resource types where the transmission resources are located. In this way, when the time-frequency resources where the first PUCCH transmission is located are of different types, different PUCCH parameter configurations or different configuration parameter groups can be used to determine the transmission resources, thereby avoiding the situation where the frequency domain position of the PUCCH exceeds the currently available uplink frequency domain resources when the terminal hops between the SBFD time slot and the non-SBFD time slot, resulting in PUCCH transmission failure.
[0192] Optionally, the PUCCH transmission method, wherein:
[0193] The configuration parameter groups each include one or more of the following parameters:
[0194] First PUCCH resource index;
[0195] The first PRB of the PUCCH resource;
[0196] The second PRB of the PUCCH resource;
[0197] Frequency hopping interval;
[0198] Transition time window.
[0199] For a specific implementation of the PUCCH transmission method described in an embodiment of the present invention applied to a network device, please refer to the detailed description of the specific implementation of the method applied to a terminal, and will not be repeated here.
[0200] One embodiment of the present invention further provides a terminal, such as Figure 4 As shown, the terminal 400 includes a processor 410 and a transceiver 420, and the processor 410 is configured to:
[0201] Determine, based on first information, transmission resources for transmitting a first PUCCH in multiple time slots; wherein the first information includes one or more of the following information:
[0202] First configuration information; the first configuration information includes a first configuration and / or a second configuration; wherein the first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations includes a configuration parameter group; the second configuration includes one PUCCH parameter configuration, and the one PUCCH parameter configuration includes at least two configuration parameter groups;
[0203] The type of time domain resources on which the first PUCCH is transmitted.
[0204] Optionally, in the terminal, the configuration parameter groups respectively include one or more of the following parameters:
[0205] First PUCCH resource index;
[0206] The first PRB of the PUCCH resource;
[0207] The second PRB of the PUCCH resource;
[0208] Frequency hopping interval;
[0209] Transition time window.
[0210] Optionally, in the terminal, the transceiver 420 is configured to:
[0211] Acquire downlink control information DCI sent by a network device; wherein the DCI is used to indicate a second PUCCH resource index;
[0212] The processor 410 determines, according to the first information, transmission resources for transmitting the first PUCCH in multiple time slots, including:
[0213] According to the first information and the second PUCCH resource index, transmission resources for transmitting the first PUCCH in multiple time slots are determined.
[0214] Optionally, in the terminal, when the first configuration information includes a first configuration, the processor 410 determines, according to the first information and the second PUCCH resource index, a transmission resource for transmitting the first PUCCH, including:
[0215] When the time domain resource for the Nth transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the Nth transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration; or
[0216] When the time domain resources for the Nth transmission of the first PUCCH belong to the second type, it is determined that the transmission resources for the Nth transmission of the first PUCCH are second PUCCH resources, and the second PUCCH resources are the resources corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration; wherein N is an integer greater than or equal to 1.
[0217] Optionally, in the terminal, when the first configuration information includes a first configuration, the processor 410 determines, according to the first information and the second PUCCH resource index, a transmission resource for transmitting the first PUCCH, including one or more of the following:
[0218] When the time domain resource for the first transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the first transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration;
[0219] When the time domain resource for the first transmission of the first PUCCH belongs to the second type, determining that the transmission resource for the first transmission of the first PUCCH is a second PUCCH resource, where the second PUCCH resource is a resource corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration;
[0220] When the type of the time domain resource for the Mth transmission of the first PUCCH is the same as the type of the time domain resource for the first transmission, determine that the transmission resource for the Mth transmission of the first PUCCH is the same as the transmission resource for the first transmission;
[0221] When the type of time domain resources for the Mth transmission of the first PUCCH is different from the type of time domain resources for the first transmission, based on the association relationship between the first PUCCH resource index in the first PUCCH parameter configuration and the first PUCCH resource index in the second PUCCH parameter configuration of the first configuration, determine that the transmission resources associated with the transmission resources of the first transmission are the transmission resources of the Mth transmission of the first PUCCH; wherein M is an integer greater than 1.
[0222] Optionally, in the terminal, when the first configuration information includes a first configuration, the processor 410 determines, according to the first information, a transmission resource for transmitting the first PUCCH, including one or more of the following:
[0223] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, determining that the starting PRB for the first PUCCH transmission is a first PRB of the PUCCH resource corresponding to the Nth transmission;
[0224] When the transmission time unit of the Nth transmission of the first PUCCH is an odd time unit for multiple transmissions of the first PUCCH, the starting PRB of the first PUCCH transmission is determined to be the second PRB of the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
[0225] Optionally, in the terminal, when the first configuration information includes the second configuration, determining, according to the first information, a transmission resource for transmitting the first PUCCH includes one or more of the following:
[0226] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that a starting PRB for the Nth transmission of the first PUCCH is a first PRB corresponding to a first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0227] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the second type, determining that the starting PRB of the Nth transmission of the first PUCCH is the first PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0228] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an odd-numbered time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that the starting PRB for the Nth transmission of the first PUCCH is the second PRB corresponding to the first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0229] When the transmission time unit in which the Nth transmission of the first PUCCH is located is an odd time unit for multiple transmissions of the first PUCCH, and the time domain resource in which the Nth transmission of the first PUCCH is located belongs to the second type, the starting PRB of the Nth transmission of the first PUCCH is determined to be the second PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
[0230] Optionally, in the terminal, the processor 410 is further configured to:
[0231] sequentially counting a plurality of transmission time units for transmitting the first PUCCH, and determining whether a transmission time unit in which the first PUCCH is each transmitted is an even time unit or an odd time unit; or
[0232] Count multiple transmission time units of the first PUCCH transmitted in the first type of time domain resources in sequence to determine whether the time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit; and count multiple transmission time units of the first PUCCH transmitted in the second type of time domain resources in sequence to determine whether the time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit.
[0233] Optionally, in the terminal, the first configuration parameter group in the first configuration information includes a first frequency hopping time parameter, and the second configuration parameter group includes a second frequency hopping time parameter;
[0234] The processor 410 is further configured to perform one or more of the following:
[0235] The transmission of the first PUCCH performs frequency hopping once every first frequency hopping time parameter in the first type of time domain resources;
[0236] Transmission of the first PUCCH performs frequency hopping once every second frequency hopping time parameter in the second type of time domain resources;
[0237] The time domain resource where the first PUCCH is transmitted is switched from the first type to the second type, or from the second type to the first type, and frequency hopping is performed once.
[0238] One embodiment of the present invention further provides a network device. The network device 500 includes a transceiver 510. The transceiver 510 is configured to:
[0239] Sending the configured first configuration information to the terminal, where the first configuration information is used by the terminal to determine transmission resources for transmitting a first PUCCH in multiple time slots;
[0240] The first configuration information includes one or more of the following configurations:
[0241] A first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations including a configuration parameter group;
[0242] The second configuration includes a PUCCH parameter configuration, where the PUCCH parameter configuration includes at least two configuration parameter groups.
[0243] Optionally, in the network device, the configuration parameter groups each include one or more of the following parameters:
[0244] First PUCCH resource index;
[0245] The first PRB of the PUCCH resource;
[0246] The second PRB of the PUCCH resource;
[0247] Frequency hopping interval;
[0248] Transition time window.
[0249] One embodiment of the present invention further provides a physical uplink control channel PUCCH transmission device, which is applied to a terminal, such as Figure 6 As shown, the device includes:
[0250] The first determining module 610 is configured to determine, based on first information, transmission resources for transmitting a first PUCCH in multiple time slots; wherein the first information includes one or more of the following information:
[0251] First configuration information; the first configuration information includes a first configuration and / or a second configuration; wherein the first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations includes a configuration parameter group; the second configuration includes one PUCCH parameter configuration, and the one PUCCH parameter configuration includes at least two configuration parameter groups;
[0252] The type of time domain resources on which the first PUCCH is transmitted.
[0253] Optionally, in the PUCCH transmission device, the configuration parameter groups each include one or more of the following parameters:
[0254] First PUCCH resource index;
[0255] The first PRB of the PUCCH resource;
[0256] The second PRB of the PUCCH resource;
[0257] Frequency hopping interval;
[0258] Transition time window.
[0259] Optionally, the PUCCH transmission device further includes:
[0260] The acquisition module 620 is configured to acquire downlink control information DCI sent by the network device; wherein the DCI is used to indicate a second PUCCH resource index;
[0261] The first determining module 610 determines, based on the first information, transmission resources for transmitting the first PUCCH in multiple time slots, including:
[0262] According to the first information and the second PUCCH resource index, transmission resources for transmitting the first PUCCH in multiple time slots are determined.
[0263] Optionally, in the PUCCH transmission device, when the first configuration information includes the first configuration, the first determination module 610 determines the transmission resource for transmitting the first PUCCH according to the first information and the second PUCCH resource index, including:
[0264] When the time domain resource for the Nth transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the Nth transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration; or
[0265] When the time domain resources for the Nth transmission of the first PUCCH belong to the second type, it is determined that the transmission resources for the Nth transmission of the first PUCCH are second PUCCH resources, and the second PUCCH resources are the resources corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration; wherein N is an integer greater than or equal to 1.
[0266] Optionally, in the PUCCH transmission device, when the first configuration information includes the first configuration, the first determination module 610 determines, according to the first information and the second PUCCH resource index, a transmission resource for transmitting the first PUCCH, including one or more of the following:
[0267] When the time domain resource for the first transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the first transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration;
[0268] When the time domain resource for the first transmission of the first PUCCH belongs to the second type, determining that the transmission resource for the first transmission of the first PUCCH is a second PUCCH resource, where the second PUCCH resource is a resource corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration;
[0269] When the type of the time domain resource for the Mth transmission of the first PUCCH is the same as the type of the time domain resource for the first transmission, determine that the transmission resource for the Mth transmission of the first PUCCH is the same as the transmission resource for the first transmission;
[0270] When the type of time domain resources for the Mth transmission of the first PUCCH is different from the type of time domain resources for the first transmission, based on the association relationship between the first PUCCH resource index in the first PUCCH parameter configuration and the first PUCCH resource index in the second PUCCH parameter configuration of the first configuration, determine that the transmission resources associated with the transmission resources of the first transmission are the transmission resources of the Mth transmission of the first PUCCH; wherein M is an integer greater than 1.
[0271] Optionally, in the PUCCH transmission device, when the first configuration information includes the first configuration, the first determination module 610 determines, according to the first information, a transmission resource for transmitting the first PUCCH, including one or more of the following:
[0272] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, determining that the starting PRB for the first PUCCH transmission is a first PRB of the PUCCH resource corresponding to the Nth transmission;
[0273] When the transmission time unit of the Nth transmission of the first PUCCH is an odd time unit for multiple transmissions of the first PUCCH, the starting PRB of the first PUCCH transmission is determined to be the second PRB of the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
[0274] Optionally, in the PUCCH transmission device, when the first configuration information includes the second configuration, the transmission resource for transmitting the first PUCCH according to the first information includes one or more of the following:
[0275] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that a starting PRB for the Nth transmission of the first PUCCH is a first PRB corresponding to a first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0276] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the second type, determining that the starting PRB of the Nth transmission of the first PUCCH is the first PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0277] When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an odd-numbered time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that the starting PRB for the Nth transmission of the first PUCCH is the second PRB corresponding to the first configuration parameter group in the PUCCH resource corresponding to the Nth transmission;
[0278] When the transmission time unit in which the Nth transmission of the first PUCCH is located is an odd time unit for multiple transmissions of the first PUCCH, and the time domain resource in which the Nth transmission of the first PUCCH is located belongs to the second type, the starting PRB of the Nth transmission of the first PUCCH is determined to be the second PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
[0279] Optionally, in the PUCCH transmission device, the second determining module 620 is further configured to:
[0280] sequentially counting a plurality of transmission time units for transmitting the first PUCCH, and determining whether a transmission time unit in which the first PUCCH is each transmitted is an even time unit or an odd time unit; or
[0281] Count multiple transmission time units of the first PUCCH transmitted in the first type of time domain resources in sequence to determine whether the time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit; and count multiple transmission time units of the first PUCCH transmitted in the second type of time domain resources in sequence to determine whether the time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit.
[0282] Optionally, in the PUCCH transmission device, the first configuration parameter group in the first configuration information includes a first frequency hopping time parameter, and the second configuration parameter group includes a second frequency hopping time parameter;
[0283] The first determining module 610 is further configured to:
[0284] The transmission of the first PUCCH performs frequency hopping once every first frequency hopping time parameter in the first type of time domain resources;
[0285] Transmission of the first PUCCH performs frequency hopping once every second frequency hopping time parameter in the second type of time domain resources;
[0286] The time domain resource where the first PUCCH is transmitted is switched from the first type to the second type, or from the second type to the first type, and frequency hopping is performed once.
[0287] One embodiment of the present invention further provides a physical uplink control channel PUCCH transmission device, which is applied to network equipment, such as Figure 7 As shown, the device includes:
[0288] A sending module 710 is configured to send the configured first configuration information to the terminal, where the first configuration information is used by the terminal to determine transmission resources for transmitting a first PUCCH in multiple time slots;
[0289] The first configuration information includes one or more of the following configurations:
[0290] A first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations including a configuration parameter group;
[0291] The second configuration includes a PUCCH parameter configuration, where the PUCCH parameter configuration includes at least two configuration parameter groups.
[0292] One embodiment of the present invention further provides a terminal, which includes a processor, a memory, and a program stored in the memory and executable on the processor, wherein the program, when executed by the processor, implements the PUCCH transmission method as described in any one of the above items.
[0293] The specific implementation of the PUCCH transmission method executed by the program running on the processor of the terminal can refer to the detailed description of the PUCCH transmission method when it is applied to the terminal, and will not be repeated here.
[0294] One embodiment of the present invention further provides a network device, which includes a processor, a memory, and a program stored in the memory and executable on the processor, wherein the program, when executed by the processor, implements the PUCCH transmission method as described in any one of the above items.
[0295] Among them, the specific implementation method of executing the PUCCH transmission method by the program running on the processor of the network device can refer to the detailed description of the PUCCH transmission method when it is applied to the network device, and will not be repeated here.
[0296] In addition, a specific embodiment of the present invention further provides a readable storage medium having a computer program stored thereon, wherein the program, when executed by a processor, implements the steps in any one of the switching methods described above.
[0297] Specifically, the readable storage medium is applied to the above-mentioned terminal or network device. When applied to the terminal or network device, the execution steps in the corresponding PUCCH transmission method are described in detail above and will not be repeated here.
[0298] Another embodiment of the present invention further provides a computer program product, which includes computer instructions, and when the computer instructions are executed by a processor, the steps in any one of the above PUCCH transmission methods are implemented.
[0299] Optionally, the embodiments of the present application may take the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.
[0300] The computer program product of the embodiment of the present invention includes computer instructions that, when executed by a processor, implement the above Figures 2 to 3 The various processes of the method embodiment shown can achieve the same technical effect, and to avoid repetition, they will not be described here.
[0301] In the several embodiments provided in this application, it should be understood that the disclosed methods and devices can be implemented in other ways. For example, the device embodiments described above are merely schematic. For example, the division of the units is merely a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be an indirect coupling or communication connection of some interfaces, devices or units, which can be electrical, mechanical or other forms.
[0302] In addition, the functional units in various embodiments of the present invention may be integrated into a single processing unit, each unit may be physically included separately, or two or more units may be integrated into a single unit. The aforementioned integrated units may be implemented in the form of hardware or hardware plus software functional units.
[0303] The above-mentioned integrated unit implemented in the form of a software functional unit can be stored in a computer-readable storage medium. The above-mentioned software functional unit is stored in a storage medium and includes a number of instructions for causing a computer device (which can be a personal computer, server, or network device, etc.) to perform some of the steps of the sending and receiving methods described in various embodiments of the present invention. The aforementioned storage medium includes: a USB flash drive, a mobile hard drive, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, an optical disk, and other media that can store program code.
[0304] The above is a preferred embodiment of the present invention. It should be pointed out that for ordinary personnel in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications should also be regarded as the scope of protection of the present invention.
Claims
1. A physical uplink control channel (PUCCH) transmission method, characterized in that: Executed by a terminal, the method includes: Determine, based on first information, transmission resources for transmitting a first PUCCH in multiple time slots; wherein the first information includes one or more of the following information: First configuration information; the first configuration information includes a first configuration and / or a second configuration; wherein the first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations includes a configuration parameter group; the second configuration includes one PUCCH parameter configuration, and the one PUCCH parameter configuration includes at least two configuration parameter groups; The type of time domain resources on which the first PUCCH is transmitted.
2. The PUCCH transmission method according to claim 1, wherein: The configuration parameter groups each include one or more of the following parameters: First PUCCH resource index; The first PRB of the PUCCH resource; The second PRB of the PUCCH resource; Frequency hopping interval; Transition time window.
3. The PUCCH transmission method according to claim 1, wherein: The method further comprises: Acquire downlink control information DCI sent by a network device; wherein the DCI is used to indicate a second PUCCH resource index; The step of determining, according to the first information, transmission resources for transmitting the first PUCCH in multiple time slots includes: According to the first information and the second PUCCH resource index, transmission resources for transmitting the first PUCCH in multiple time slots are determined.
4. The PUCCH transmission method according to claim 3, wherein: When the first configuration information includes the first configuration, determining, according to the first information and the second PUCCH resource index, a transmission resource for transmitting the first PUCCH includes: When the time domain resource for the Nth transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the Nth transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration; or When the time domain resources for the Nth transmission of the first PUCCH belong to the second type, it is determined that the transmission resources for the Nth transmission of the first PUCCH are second PUCCH resources, and the second PUCCH resources are the resources corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration; wherein N is an integer greater than or equal to 1.
5. The PUCCH transmission method according to claim 3, wherein: When the first configuration information includes the first configuration, determining, according to the first information and the second PUCCH resource index, a transmission resource for transmitting the first PUCCH includes one or more of the following: When the time domain resource for the first transmission of the first PUCCH belongs to the first type, determining that the transmission resource for the first transmission of the first PUCCH is a first PUCCH resource, where the first PUCCH resource is a resource corresponding to the second PUCCH resource index in the first PUCCH parameter configuration of the first configuration; When the time domain resource for the first transmission of the first PUCCH belongs to the second type, determining that the transmission resource for the first transmission of the first PUCCH is a second PUCCH resource, where the second PUCCH resource is a resource corresponding to the second PUCCH resource index in the second PUCCH parameter configuration of the first configuration; When the type of the time domain resource for the Mth transmission of the first PUCCH is the same as the type of the time domain resource for the first transmission, determine that the transmission resource for the Mth transmission of the first PUCCH is the same as the transmission resource for the first transmission; When the type of time domain resources for the Mth transmission of the first PUCCH is different from the type of time domain resources for the first transmission, based on the association relationship between the first PUCCH resource index in the first PUCCH parameter configuration and the first PUCCH resource index in the second PUCCH parameter configuration of the first configuration, determine that the transmission resources associated with the transmission resources of the first transmission are the transmission resources of the Mth transmission of the first PUCCH; wherein M is an integer greater than 1.
6. The PUCCH transmission method according to claim 1 or 3, characterized in that: When the first configuration information includes the first configuration, determining the transmission resource for transmitting the first PUCCH according to the first information includes one or more of the following: When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, determining that the starting PRB for the first PUCCH transmission is a first PRB of the PUCCH resource corresponding to the Nth transmission; When the transmission time unit of the Nth transmission of the first PUCCH is an odd time unit for multiple transmissions of the first PUCCH, the starting PRB of the first PUCCH transmission is determined to be the second PRB of the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
7. The PUCCH transmission method according to claim 1 or 3, characterized in that: When the first configuration information includes the second configuration, determining the transmission resource for transmitting the first PUCCH according to the first information includes one or more of the following: When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that a starting PRB for the Nth transmission of the first PUCCH is a first PRB corresponding to a first configuration parameter group in the PUCCH resource corresponding to the Nth transmission; When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an even time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the second type, determining that the starting PRB of the Nth transmission of the first PUCCH is the first PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission; When the transmission time unit in which the Nth transmission of the first PUCCH occurs is an odd-numbered time unit in which the first PUCCH is transmitted multiple times, and the time domain resource in which the Nth transmission of the first PUCCH occurs belongs to the first type, determining that the starting PRB for the Nth transmission of the first PUCCH is the second PRB corresponding to the first configuration parameter group in the PUCCH resource corresponding to the Nth transmission; When the transmission time unit in which the Nth transmission of the first PUCCH is located is an odd time unit for multiple transmissions of the first PUCCH, and the time domain resource in which the Nth transmission of the first PUCCH is located belongs to the second type, the starting PRB of the Nth transmission of the first PUCCH is determined to be the second PRB corresponding to the second configuration parameter group in the PUCCH resource corresponding to the Nth transmission; where N is an integer greater than or equal to 1.
8. The PUCCH transmission method according to claim 6 or 7, characterized in that: The method further comprises: sequentially counting a plurality of transmission time units for transmitting the first PUCCH, and determining whether the transmission time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit; or, Count multiple transmission time units of the first PUCCH transmitted in the first type of time domain resources in sequence to determine whether the time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit; and count multiple transmission time units of the first PUCCH transmitted in the second type of time domain resources in sequence to determine whether the time unit in which each transmission of the first PUCCH occurs is an even time unit or an odd time unit.
9. The PUCCH transmission method according to claim 1, wherein: The first configuration parameter group in the first configuration information includes a first frequency hopping time parameter, and the second configuration parameter group includes a second frequency hopping time parameter; The method further includes one or more of the following: The transmission of the first PUCCH performs frequency hopping once every first frequency hopping time parameter in the first type of time domain resources; Transmission of the first PUCCH performs frequency hopping once every second frequency hopping time parameter in the second type of time domain resources; The time domain resource where the first PUCCH is transmitted is switched from the first type to the second type, or from the second type to the first type, and frequency hopping is performed once.
10. A physical uplink control channel (PUCCH) transmission method, characterized in that: Executed by a network device, the method includes: Sending the configured first configuration information to the terminal, where the first configuration information is used by the terminal to determine transmission resources for transmitting a first PUCCH in multiple time slots; The first configuration information includes one or more of the following configurations: A first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations including a configuration parameter group; The second configuration includes a PUCCH parameter configuration, where the PUCCH parameter configuration includes at least two configuration parameter groups.
11. The PUCCH transmission method according to claim 10, wherein: The configuration parameter groups each include one or more of the following parameters: First PUCCH resource index; The first PRB of the PUCCH resource; The second PRB of the PUCCH resource; Frequency hopping interval; Transition time window.
12. A terminal, characterized in that: comprising a processor configured to: Determine, based on first information, transmission resources for transmitting a first PUCCH in multiple time slots; wherein the first information includes one or more of the following information: First configuration information; the first configuration information includes a first configuration and / or a second configuration; wherein the first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations includes a configuration parameter group; the second configuration includes one PUCCH parameter configuration, and the one PUCCH parameter configuration includes at least two configuration parameter groups; The type of time domain resources on which the first PUCCH is transmitted.
13. A network device, characterized in that: comprising a transceiver configured to: Sending the configured first configuration information to the terminal, where the first configuration information is used by the terminal to determine transmission resources for transmitting a first PUCCH in multiple time slots; The first configuration information includes one or more of the following configurations: A first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations including a configuration parameter group; The second configuration includes a PUCCH parameter configuration, where the PUCCH parameter configuration includes at least two configuration parameter groups.
14. A physical uplink control channel (PUCCH) transmission device, characterized in that: Applied to a terminal, the device includes: A first determining module is configured to determine, based on first information, transmission resources for transmitting a first PUCCH in multiple time slots; wherein the first information includes one or more of the following information: First configuration information; the first configuration information includes a first configuration and / or a second configuration; wherein the first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations includes a configuration parameter group; the second configuration includes one PUCCH parameter configuration, and the one PUCCH parameter configuration includes at least two configuration parameter groups; The type of time domain resources on which the first PUCCH is transmitted.
15. A physical uplink control channel PUCCH transmission device, characterized in that: Applied to network equipment, the device includes: a sending module, configured to send the configured first configuration information to the terminal, where the first configuration information is used by the terminal to determine a transmission resource for transmitting a first PUCCH in multiple time slots; The first configuration information includes one or more of the following configurations: A first configuration includes at least two PUCCH parameter configurations, each of the at least two PUCCH parameter configurations including a configuration parameter group; The second configuration includes a PUCCH parameter configuration, where the PUCCH parameter configuration includes at least two configuration parameter groups.
16. A terminal, characterized in that: The method comprises a processor, a memory, and a program stored in the memory and executable on the processor, wherein when the program is executed by the processor, the method implements the PUCCH transmission method according to any one of claims 1 to 9.
17. A network device, characterized in that: The method comprises a processor, a memory, and a program stored in the memory and executable on the processor, wherein when the program is executed by the processor, the method implements the PUCCH transmission method according to any one of claims 10 to 11.
18. A readable storage medium, characterized in that: The readable storage medium stores a program, and when the program is executed by the processor, it implements the steps in the PUCCH transmission method according to any one of claims 1 to 9, or implements the steps in the PUCCH transmission method according to any one of claims 10 to 11.
19. A computer program product, characterized in that The method comprises computer instructions, which, when executed by a processor, implement the steps in the PUCCH transmission method according to any one of claims 1 to 11.