Uplink transmission method and communication device
By using indication signaling and RRC parameters to define radio frequency chain states, the UE can efficiently handle uplink transmission in multiple frequency bands, addressing the challenge of state ambiguity in Release 18 wireless communication.
Patent Information
- Application Number
- JP2024559522
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-04-08
- Filing Date
- 2023-04-07
- Publication Date
- 2025-11-12
- Estimated Expiration
- 2043-04-07
AI Technical Summary
In Release 18 of wireless communication, the expansion of frequency bands from two to more than two for radio frequency chain switching poses a challenge for user equipment (UE) to determine the correct radio frequency chain state for uplink transmission due to multiple possible states, leading to inefficiencies in network communication.
The UE determines a specific radio frequency chain state through indication signaling and/or RRC parameters, allowing it to handle uplink switching in three or more frequency bands by setting a first RRC parameter and/or additional indication signaling to clearly define the state.
This approach reduces signaling overhead and increases scheduling flexibility by clearly defining the radio frequency chain state, ensuring efficient uplink transmission in complex network scenarios.
Smart Images

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Abstract
Description
[Technical Field]
[0001]
[0001] This application claims priority to Chinese Patent Application No. 202210370157.8 entitled "Uplink Transmission Method and Communication Apparatus", filed with the State Intellectual Property Office of the People's Republic of China on April 8, 2022, the entire contents of which are incorporated herein by reference.
[0002]
[0002] Technical field TECHNICAL FIELD Embodiments of the present application relate to the field of wireless communication technologies, and more particularly to an uplink transmission method and a communication device. [Background technology]
[0003]
[0003] In the 3rd Generation Partnership Project (3GPP) Release 16 (R16), it is proposed that when a user equipment (UE) supports two uplink carriers, the UE may perform radio frequency chain switching between the two uplink carriers to improve radio frequency chain utilization. The protocol defines the UE's transmission behavior on two carriers, where Carrier 1 and Carrier 2 represent the two carriers. In one case, the UE has one radio frequency chain on Carrier 1 and one radio frequency chain on Carrier 2. In another case, the UE has no radio frequency chain on Carrier 1 but two radio frequency chains on Carrier 2. It can be seen that the UE supports up to one radio frequency chain on Carrier 1 and up to two radio frequency chains on Carrier 2. Release 17 (R17) is an improvement over R16. In one aspect, an improvement in the number of radio frequency chains is presented. Specifically, the total number of radio frequency chains remains the same, but the maximum number of radio frequency chains in carrier 1 changes from 1 to 2. Therefore, there is one more case compared to R16, i.e., a case where a UE has two radio frequency chains in carrier 1 but no radio frequency chains in carrier 2. In another aspect, an improvement in the number of carriers is shown. Specifically, while switching is performed in two carriers in R16, in R17 a UE is allowed to perform radio frequency chain switching in three carriers in two frequency bands.
[0004]
[0004] With the continuous development and evolution of communication technology, Release 18 (R18), currently under discussion in the industry, is intended to expand the number of frequency bands from two in R17 to more than two, for example, three or four, but the total number of radio frequency chains is still limited to two. However, before the UE performs one uplink transmission, the network side needs to instruct the UE to perform radio frequency chain switching. In R16 or R17, the network side does not directly instruct the UE to perform radio frequency chain switching for a carrier, but rather implicitly instructs the UE to perform radio frequency chain switching based on the mapping relationship between the antenna ports and radio frequency chains for uplink transmission by instructing the UE on the number of antenna ports for uplink transmission. However, after the number of possible frequency bands for which radio frequency chain switching can be performed is expanded from two to more than two in R18, if the network side continues to implicitly instruct the UE to perform radio frequency chain switching by instructing the number of antenna ports for uplink transmission, the UE may fail to determine the number of radio frequency chains to be used for the current uplink transmission. This is because there are multiple radio frequency chain states supporting the current uplink transmission based on the number of antenna ports for uplink transmission instructed by the network side. Therefore, the UE cannot determine a specific radio frequency chain state among the multiple possible radio frequency chain states supporting the current uplink transmission, to which the radio frequency chain state for the latest uplink transmission should be switched. As a result, the UE cannot determine how to perform radio frequency chain switching for the current uplink transmission. Summary of the Invention
[0005]
[0005] Embodiments of the present application provide an uplink transmission method and a communication apparatus, which enable a terminal device to determine one radio frequency chain state as the radio frequency chain state during uplink transmission among multiple possible radio frequency chain states supporting uplink transmission.
[0006] According to a first aspect, there is provided an uplink transmission method, the method including:
[0007] A terminal device receives first information, the first information instructing the terminal device to perform one-antenna-port uplink transmission in a first carrier, and the terminal device supports uplink switching performed in at least three frequency bands.
[0007]
[0008] The terminal device determines a radio frequency chain state after uplink switching based on the indication signaling and / or the first RRC parameter in at least three radio frequency chain states supporting uplink transmission.
[0008]
[0009] The terminal device sends an uplink transmission in the radio frequency chain state after uplink switching.
[0009]
[0010] In this technical solution, when a terminal device supports uplink switching (in other words, radio frequency chain switching) performed in at least three frequency bands, and there are multiple radio frequency chain states supporting the terminal device when performing one uplink transmission, the network device indicates one of the multiple radio frequency chain states to be used as the radio frequency chain state of the terminal device during the current uplink transmission by setting a first RRC parameter and / or an indication signaling. In this way, the terminal device can determine one radio frequency chain state as the radio frequency chain state of the terminal device during the current uplink transmission based on the indication signaling and / or the first RRC parameter in multiple possible radio frequency chain states supporting uplink transmission.
[0010]
[0011] Regarding the first aspect, in some implementations of the first aspect, the terminal device is configured to perform uplink switching on at least three carriers, the at least three carriers belonging to three frequency bands; and a radio frequency chain state during the latest uplink transmission is a first state or a second state, the first state being one in which there are two radio frequency chains on the second carrier, and the second state being one in which there is one radio frequency chain on each of the second carrier and the third carrier; In the following implementations, the terminal device determines the radio frequency chain state after uplink switching based on the indication signaling and / or the first RRC parameter in at least three radio frequency chain states supporting uplink transmission.
[0011]
[0012] Optionally, the terminal device determines a state after uplink switching based on the first indication signaling and the first RRC parameter in at least three radio frequency chain states supporting uplink transmission, wherein: When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; If the first RRC parameter has a second value and the first indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; or When the first RRC parameter has a second value and the first indication signaling has a second value, the radio frequency chain state after the uplink switching is the second radio frequency chain state.
[0012]
[0013] This implementation allows full reuse of existing RRC parameters to specify the radio frequency chain state and reduces signaling overhead.
[0013]
[0014] Optionally, the terminal device determines a state after uplink switching based on the second indication signaling in at least three radio frequency chain states supporting uplink transmission, wherein: The second instruction signaling has at least three values, and the first value, the second value, and the third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
[0014]
[0015] In this implementation, new indication signaling is additionally introduced to indicate the radio frequency chain status, resulting in greater scheduling flexibility.
[0015]
[0016] Optionally, the terminal device determines a state after uplink switching based on a first RRC parameter in at least three radio frequency chain states supporting uplink transmission, wherein: The first RRC parameter has at least three values, and the first value, the second value, and the third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
[0016]
[0017] In this implementation, the existing RRC parameters are extended, and the extended RRC parameters indicate the radio frequency chain status, which reduces the implementation complexity of the terminal device and reduces the signaling overhead.
[0017]
[0018] In the above implementation, the first radio frequency chain state, the second radio frequency chain state, and the third radio frequency chain state all support one antenna port uplink transmission performed on the first carrier.
[0018]
[0019] Regarding the first aspect, in some implementations of the first aspect, the terminal device is configured to perform uplink switching on at least four carriers, and the at least four carriers belong to four frequency bands; a radio frequency chain state during the latest uplink transmission is a first state or a second state, the first state being one in which there are two radio frequency chains on the second carrier, and the second state being one in which there is one radio frequency chain on each of the second carrier and the third carrier; In the following embodiments, the terminal device determines a radio frequency chain state after uplink switching based on the indication signaling and / or the first RRC parameter in at least three radio frequency chain states that support uplink transmission.
[0019]
[0020] Optionally, the terminal device determines a state after uplink switching based on the third indication signaling and the first RRC parameter in at least three radio frequency chain states supporting uplink transmission, wherein: When the first RRC parameter has a first value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; When the first RRC parameter has a first value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or When the first RRC parameter has the second value and the third indication signaling has the second value, the radio frequency chain state after the uplink switching is the fourth radio frequency chain state.
[0020]
[0021] In this implementation, if existing RRC parameters are reused, additional indication signaling is introduced to indicate the radio frequency chain status, which can reduce the signaling overhead.
[0021]
[0022] Optionally, when the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; When the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or If the first RRC parameter has a second value and the third indication signaling has a third value, the radio frequency chain state after uplink switching is the fourth radio frequency chain state.
[0022]
[0023] In this implementation, if existing RRC parameters are reused, additional indication signaling is introduced to indicate the radio frequency chain status, which can reduce the signaling overhead.
[0023]
[0024] Optionally, the terminal device determines a radio frequency chain state after the uplink switching based on the fourth indication signaling in at least three radio frequency chain states supporting uplink transmission, wherein: The fourth instruction signaling has at least four values, and the first value, the second value, the third value, and the fourth value in the at least four values correspond to the first radio frequency chain state, the second radio frequency chain state, the third radio frequency chain state, and the fourth radio frequency chain state, respectively.
[0024]
[0025] In this implementation, additional indication signaling is introduced to indicate the radio frequency chain status, resulting in greater scheduling flexibility.
[0025]
[0026] Optionally, the terminal device determines a radio frequency chain state after the uplink switching based on a first RRC parameter in at least three radio frequency chain states supporting uplink transmission, wherein: The first RRC parameter has at least four values, and the first value, the second value, the third value, and the fourth value of the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively.
[0026]
[0027] In this implementation, existing RRC parameters are extended, and the extended RRC parameters indicate the radio frequency chain status, thereby reducing the implementation complexity of the terminal device and reducing the signaling overhead.
[0027]
[0028] In the above implementation, the first radio frequency chain state, the second radio frequency chain state, and the third radio frequency chain state all support one antenna port uplink transmission performed on the first carrier.
[0028]
[0029] According to a second aspect, there is provided an uplink transmission method, the method including:
[0030] A terminal device receives first information, the first information instructing the terminal device to perform one-antenna-port uplink transmission in a first carrier, and the terminal device supports uplink switching performed in at least three frequency bands.
[0029]
[0031] The terminal device determines a radio frequency chain state after uplink switching according to a predetermined selection policy among at least two radio frequency chain states supporting uplink transmission and / or based on a combination of carriers supported for parallel transmission, wherein the predetermined selection policy is: The number of carriers involved in uplink switching is minimal, Uplink switching means that uplink transmission does not include non-existent carriers; Uplink switching is performed when a radio frequency chain does not contain a non-existent carrier, or The switching time of the uplink switching includes satisfying one or more of the predetermined conditions.
[0030]
[0032] The terminal device transmits the uplink transmission in the radio frequency chain state after the uplink switching.
[0031]
[0033] In this technical solution, the terminal device determines the radio frequency chain state after uplink switching according to a predetermined selection policy among at least two radio frequency chain states supporting uplink transmission and / or based on a combination of supported carriers for parallel transmission, thereby reducing signaling overhead that occurs when the network side indicates the radio frequency chain state by setting RRC parameters and / or indication signaling.
[0032]
[0034] Regarding the second aspect, in some implementations of the second aspect, determining by the terminal device a radio frequency chain state after uplink switching according to a predetermined selection policy among at least two radio frequency chain states supporting uplink transmission and / or based on a combination of carriers supported for parallel transmission includes:
[0035] When two or more radio frequency chain states are determined according to a predetermined selection policy in at least two radio frequency chain states supporting uplink transmission and / or based on a combination of carriers supported by the terminal device and for parallel transmission, the terminal device further determines the radio frequency chain state after uplink switching based on a fifth indication signaling and / or a second RRC parameter in the two or more radio frequency chain states.
[0033]
[0036] In this implementation, the terminal device, among at least two radio frequency chain states supporting uplink transmission, determines a radio frequency chain state after uplink switching preferentially according to a predetermined selection policy and / or based on a combination of carriers supported for parallel transmission. If two or more Tx states remain after some Tx states are excluded based on the combination of carriers supported for parallel transmission and / or according to the predetermined selection policy, RRC parameters and / or indication signaling indicate / designate one of the at least two remaining Tx states, thereby reducing signaling overhead.
[0034]
[0037] Regarding the second aspect, in some implementations of the second aspect, the fifth instruction signaling indicates a carrier or frequency band that needs to be preferentially switched in uplink switching.
[0035]
[0038] Regarding the second aspect, in some implementations of the second aspect, the predetermined condition includes that the uplink switching switching time is the shortest or that the uplink switching switching time is equal to or less than a specified threshold.
[0036]
[0039] According to a third aspect, there is provided an uplink transmission method, the method including:
[0040] The network device transmits first information, the first information instructing the terminal device to perform one-antenna-port uplink transmission in a first carrier, and the terminal device supports uplink switching performed in at least three frequency bands.
[0037]
[0041] The network device transmits first RRC parameters and / or indication signaling to the terminal device, where the first RRC parameters and / or indication signaling are used by the terminal device to determine a radio frequency chain state after uplink switching among at least three radio frequency chain states supporting uplink transmission.
[0038]
[0042] The network device receives the uplink transmission sent by the terminal device in a radio frequency chain state after uplink switching.
[0039]
[0043] Regarding the third aspect, in some implementations of the third aspect, the terminal device is configured to perform uplink switching on at least three carriers, the at least three carriers belonging to three frequency bands; and
[0044] The network device transmits first RRC parameters and / or indication signaling to the terminal device in the following implementations, where the first RRC parameters and indication signaling are used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission.
[0040]
[0045] Optionally, the network device transmits first RRC parameters and first indication signaling to the terminal device, where the first RRC parameters and the first indication signaling are used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission; When a first RRC parameter is a first value, the radio frequency chain state after uplink switching is a first radio frequency chain state; If the first RRC parameter has a second value and the first indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; or When the first RRC parameter has a second value and the first indication signaling has a second value, the radio frequency chain state after uplink switching is a third radio frequency chain state;
[0046] Optionally, the network device sends second instruction signaling to the terminal device, where the second instruction signaling is used by the terminal device to determine a radio frequency chain state after uplink switching, among at least three radio frequency chain states supporting uplink transmission; The second instruction signaling has at least three values, and the first value, the second value, and the third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
[0041]
[0047] Optionally, the network device transmits first RRC parameters to the terminal device, where the first RRC parameters are used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission; The first RRC parameter has at least three values, and the first value, the second value, and the third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
[0042]
[0048] In the above implementation, the first radio frequency chain state, the second radio frequency chain state, and the third radio frequency chain state all support one antenna port uplink transmission performed on the first carrier.
[0043]
[0049] Regarding the third aspect, in some implementations of the third aspect, the terminal device is configured to perform uplink switching on at least four carriers, the at least four carriers belonging to four frequency bands; and
[0050] A network device transmits first RRC parameters and / or indication signaling to a terminal device in the following multiple implementations, wherein the first RRC parameters and indication signaling are used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission.
[0044]
[0051] Optionally, the network device transmits the first RRC parameters and third indication signaling to the terminal device, where the first RRC parameters and the third indication signaling are used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission; When the first RRC parameter has a first value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; When the first RRC parameter has a first value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or If the first RRC parameter has a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; or When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; When the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or If the first RRC parameter has a second value and the third indication signaling has a third value, the radio frequency chain state after uplink switching is the fourth radio frequency chain state.
[0045]
[0052] optionally, the network device sends fourth instruction signaling to the terminal device, where the fourth instruction signaling is used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission; The fourth instruction signaling has at least four values, and the first value, the second value, the third value, and the fourth value in the at least four values correspond to the first radio frequency chain state, the second radio frequency chain state, the third radio frequency chain state, and the fourth radio frequency chain state, respectively.
[0046]
[0053] Optionally, the network device transmits a first RRC parameter to the terminal device, wherein the first RRC parameter has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively.
[0047]
[0054] In the above implementation, the first radio frequency chain state, the second radio frequency chain state, the third radio frequency chain state, and the fourth radio frequency chain state all support one antenna port uplink transmission performed on the first carrier.
[0048]
[0055] For the beneficial technical effects of the third aspect or possible implementations of the third aspect, please refer to the technical effects of the first aspect or corresponding implementations of the first aspect, and the details will not be described again.
[0049]
[0056] According to a fourth aspect, there is provided an uplink transmission method, the method including:
[0057] The network device transmits first information, the first information instructing the terminal device to perform one-antenna-port uplink transmission in a first carrier, and the terminal device supports uplink switching performed in at least three frequency bands.
[0050]
[0058] The network device determines a radio frequency chain state of the terminal device during uplink transmission according to a predetermined selection policy and / or based on a combination of carriers supported by the terminal device and associated with parallel transmission, where the radio frequency chain state during uplink transmission is a radio frequency chain state after uplink switching, and the predetermined selection policy is: The number of carriers involved in uplink switching is minimal, Uplink switching means that uplink transmission does not include non-existent carriers; Uplink switching is performed when a radio frequency chain does not contain a non-existent carrier, or The uplink switching time must meet the specified conditions. Contains one or more of the following:
[0051]
[0059] The network device receives the uplink transmission sent by the terminal device in a radio frequency chain state after uplink switching.
[0052]
[0060] Optionally, in some implementations of the fourth aspect, the method includes:
[0061] When the network device determines, according to a predetermined selection policy and / or based on a combination of carriers supported by the terminal device and associated with parallel transmission, the status of two or more radio frequency chains of the terminal device during the uplink transmission, the network device transmits second RRC parameters and / or fifth indication signaling to the terminal device; The second RRC parameter and / or the fifth indication signaling specifies one of two or more radio frequency chain states of the terminal device that should be used as the radio frequency chain state during uplink transmission.
[0053]
[0062] Optionally, in some implementations of the fourth aspect, the fifth indication signaling indicates a carrier or frequency band that needs to be preferentially switched to in uplink switching.
[0054]
[0063] Optionally, in some implementations of the fourth aspect, the predetermined condition includes a minimum switching time for uplink switching or a switching time for uplink switching that is equal to or less than a specified threshold.
[0055]
[0064] For the beneficial technical effects of the fourth aspect or possible implementations of the fourth aspect, please refer to the technical effects of the second aspect or corresponding implementations of the second aspect, and the details will not be described again.
[0056]
[0065] According to a fifth aspect, there is provided a communication device. The communication device has functionality to perform the method according to the first aspect, the second aspect, or any one of the possible implementations of these aspects. The functionality may be implemented using hardware or by hardware executing corresponding software. The hardware or software includes one or more units corresponding to the aforementioned functionality.
[0057]
[0066] According to a sixth aspect, there is provided a communication device. The communication device has functionality to perform the method according to the third aspect, the fourth aspect, or any one of the possible implementations of these aspects. The functionality may be implemented using hardware or by hardware executing corresponding software. The hardware or software includes one or more units corresponding to the aforementioned functionality.
[0058]
[0067] According to a seventh aspect, there is provided a communications device, comprising a processor and a memory. Optionally, the communications device may further comprise a transceiver. The memory is configured to store a computer program. The processor is configured to: invoke and execute the computer program stored in the memory to control the transceiver to receive and transmit signals, such that the communications device can perform a method according to the first aspect, the second aspect, or any one of the possible implementations of these aspects.
[0059]
[0068] According to an eighth aspect, there is provided a communications device, comprising a processor and a memory. Optionally, the communications device may further comprise a transceiver. The memory is configured to store a computer program. The processor is configured to: invoke and execute the computer program stored in the memory to control the transceiver to receive and transmit signals, such that the communications device can perform a method according to the third aspect, the fourth aspect, or any one of the possible implementations of these aspects.
[0060]
[0069] According to a ninth aspect, there is provided a communications device, comprising a processor and a communications interface. The communications interface is configured to: receive and transmit information and transmit received data and / or information to the processor. The processor processes the data and / or information. The communications interface is further configured to output data and / or information obtained by processing by the processor, thereby performing a method according to the first aspect, the second aspect, or any one of the possible implementations of these aspects.
[0061]
[0070] According to a tenth aspect, there is provided a communications device, comprising a processor and a communications interface. The communications interface is configured to receive data and / or information (i.e., input) and transmit the received data and / or information to the processor. The processor processes the data and / or information. The communications interface is further configured to output data and / or information resulting from processing by the processor, thereby performing a method according to the third aspect, the fourth aspect, or any one of the possible implementations of these aspects.
[0062]
[0071] According to an eleventh aspect, there is provided a computer-readable storage medium storing computer instructions that, when executed on a computer, cause a method according to the first aspect, the second aspect, or any one of the possible implementations of these aspects to be performed.
[0063]
[0072] According to a twelfth aspect, there is provided a computer-readable storage medium storing computer instructions that, when executed on a computer, cause a method according to the third aspect, the fourth aspect, or any one of the possible implementations of these aspects to be performed.
[0064]
[0073] According to a thirteenth aspect, there is provided a computer program product, the computer program product comprising computer program code which, when executed on a computer, enables a method according to the first aspect, the second aspect, or any one of the possible implementations of these aspects to be performed.
[0065]
[0074] According to a fourteenth aspect, there is provided a computer program product, the computer program product comprising computer program code which, when executed on a computer, enables a method according to the third aspect, the fourth aspect, or any one of the possible implementations of these aspects to be performed.
[0066]
[0075] According to a fifteenth aspect, there is provided a wireless communication system, comprising a communication device according to the fifth aspect and / or a communication device according to the sixth aspect. [Brief explanation of the drawings]
[0067] [Figure 1]
[0076] FIG. 1 illustrates a case where the UE is unable to determine the radio frequency chain status during the current uplink transmission. [Figure 2]
[0077] Figure 2 shows an example of part of a system architecture applicable to the present application. [Figure 3]
[0077] Figure 3 shows an example of part of a system architecture applicable to the present application. [Figure 4]
[0077] Figure 4 shows an example of part of a system architecture applicable to the present application. [Figure 5]
[0078] FIG. 5 illustrates an example of when the UE is unable to determine the radio frequency chain status. [Figure 6]
[0079] FIG. 6 illustrates another example of when the UE is unable to determine the radio frequency chain status. [Figure 7]
[0080] FIG. 7 shows another example of part of a system architecture applicable to the present application. [Figure 8]
[0080] Figure 8 shows another example of part of a system architecture applicable to the present application. [Figure 9]
[0081] FIG. 9 illustrates an example of when the UE is unable to determine the radio frequency chain status. [Figure 10]
[0082] FIG. 10 illustrates another example of when the UE is unable to determine the radio frequency chain status. [Figure 11]
[0083] FIG. 11 shows an example of an uplink transmission method according to the present application. [Figure 12]
[0084] FIG. 12 illustrates another example of an uplink transmission method according to the present application. [Figure 13]
[0085] FIG. 13 shows an example of excluding some of the Tx states based on the combination of frequency bands supported for parallel transmission. [Figure 14]
[0086] FIG. 14 shows another example of excluding some of the Tx states based on the combination of frequency bands supported for parallel transmission. [Figure 15]
[0087] FIG. 15 shows some examples of excluding some of the Tx states based on the combination of frequency bands supported for parallel transmission. [Figure 16] FIG. 16 shows some examples of excluding some of the Tx states based on the combination of frequency bands supported for parallel transmission. [Figure 17] FIG. 17 shows some examples of excluding some of the Tx states based on the combination of frequency bands supported for parallel transmission. [Figure 18] FIG. 18 shows some examples of excluding some of the Tx states based on the combination of frequency bands supported for parallel transmission. [Figure 19]FIG. 19 shows some examples of excluding some of the Tx states based on the combination of frequency bands supported for parallel transmission. [Figure 20] FIG. 20 shows some examples of excluding some of the Tx states based on the combination of frequency bands supported for parallel transmission. [Figure 21]
[0088] FIG. 21 is a schematic block diagram of a communication device according to the present application. [Figure 22]
[0089] FIG. 22 is a configuration diagram of a communication device according to the present application. DETAILED DESCRIPTION OF THE INVENTION
[0068]
[0090] Hereinafter, the technical solutions in the embodiments of the present application will be described with reference to the accompanying drawings.
[0069]
[0091] The technical solutions in the embodiments of the present application may be applied to various communication systems, including but not limited to a 5th generation (5G) system, a new radio (NR) system, a long term evolution (LTE) system, an LTE frequency division duplex (FDD) system, an LTE time division duplex (TDD) system, etc. The technical solutions provided in the present application may further be applied to future communication systems, such as a 6th generation mobile communication system, and may further be applied to device-to-device (D2D) communication, vehicle-to-everything (V2X) communication, machine-to-machine (M2M) communication, machine type communication (MTC), internet of things (IoT) communication system, or other communication systems, etc.
[0070]
[0092] A communication system as used in this application may include one or more transmitting ends and one or more receiving ends. Optionally, one of the transmitting end and the receiving end may be a terminal device, and the other may be a network device. Alternatively, both may be terminal devices.
[0071]
[0093] For example, a terminal device may also be referred to as user equipment (UE), access terminal, subscriber unit, subscriber station, mobile station (MS), mobile terminal (MT), remote station, remote terminal, mobile device, user terminal, terminal, wireless communication device, user agent, or user equipment. A terminal device in embodiments of the present application may be a device that provides voice and / or data connectivity to a user and may be configured to connect people, objects, and machines, such as handheld or vehicle-mounted devices with wireless connectivity. The terminal device in the embodiments of the present application may be a mobile phone, a tablet computer (Pad), a notebook computer, a palmtop computer, a mobile internet device (MID), a wearable device, a virtual reality (VR) device, an augmented reality (AR) device, a wireless terminal in industrial control, a wireless terminal in self driving, a wireless terminal in remote medical surgery, a wireless terminal in a smart grid, a wireless terminal in transportation safety, a wireless terminal in a smart city, a wireless terminal in a smart home, etc. Optionally, the UE may be configured to function as a base station. For example, the UE may function as a scheduling entity providing sidelink signals between UEs in V2X, D2D, etc.
[0072]
[0094] In an embodiment of the present application, an apparatus configured to perform a function of a terminal may be a terminal device, or an apparatus capable of supporting a terminal device in realizing the function, such as a chip system or a chip. The apparatus may be mounted on a terminal device. In an embodiment of the present application, a chip system may be composed of a chip or may include a chip and other individual components.
[0073]
[0095] For example, a network device may be a device with wireless transceiver functionality. The network device may be a device that provides wireless communication function services, and is usually located on the network side, and may also be a next generation NodeB (gNodeB, gNB) in a fifth generation (5G) communication system, a base station in a sixth generation (6G) mobile communication system, a base station in a future mobile communication system, an access node in a wireless fidelity (Wi-Fi) system, an evolved NodeB (eNB) in a long term evolution (LTE) system, a radio network controller (RNC), a NodeB (NodeB, NB), a base station controller (BSC), a home base station (e.g., a Home Evolved NodeB or Home NodeB, HNB), a base band unit (BBU), a transmission reception point (TRP), a transmission point (TP), a base transceiver station (BTS), a base transceiver station (BTS), a base transceiver station (BTS), a base transceiver station (BTS), a base station controller (BSC), a base station controller (BSC), a base station controller (BSC), a base station controller (BSC), a base band unit (BBU), a transmission reception point (TRP), a transmission point (TP), a base transceiver station (BTS), a base transceiver station (BTS), a base transceiver station (BTS), a base station controller (BSC), a base station controller (BSC), a base station controller (BSC), a base station controller (BSC), a base transceiver station (BSC), a base station controller (BSC), a base station controller (BSC), a base station controller (BSC), a base station controller (BSC), a base band unit (BBU), a transmission reception point (TRP), a transmission point (TP), a base transceiver station (BSC), a base transceiver station (BSC), a base station controller ... station controller (BSC), a base station controller (BS In a network structure, the network devices may include, but are not limited to, a central unit (CU) node, a distributed unit (DU) node, a RAN device including a CU node and a DU node, or a RAN device including a CU control plane node, a CU user plane node, and a DU node. Alternatively, the network devices may be radio controllers, relay stations, in-vehicle devices, wearable devices, etc. in a cloud radio access network (CRAN) scenario.The base station may also be a macro base station, a micro base station, a relay node, a donor node, or a combination thereof. Alternatively, the base station may be a communication module, a modem, or a chip configured to be disposed within the aforementioned device or apparatus. Alternatively, the base station may be a mobile switching center, a device performing base station functions in D2D, V2X, or M2M communications, a network side device in a 6G network, or a device performing base station functions in a future communication system. The base station may support networks of the same access technology or different access technologies, without being limited thereto.
[0074]
[0096] In embodiments of the present application, an apparatus configured to realize the functions of a network device may be a network device itself, or may be an apparatus capable of supporting a network device in performing corresponding functions, such as a chip system or chip. The apparatus may be mounted on a network device. In embodiments of the present application, a chip system may be composed of a chip or may include a chip and other discrete components.
[0075]
[0097] To facilitate understanding of the technical solutions in this application, the concepts or techniques in this application are first briefly described.
[0076]
[0098] A transmission channel (transmitter, Tx) is a physical concept and may also be referred to as a radio frequency (RF) transmission channel, and is referred to as a transmission channel for short in this application. In this application, a transmission channel may operate in the following manner, but is not limited to this: it receives a baseband signal from a baseband chip, performs radio frequency processing (e.g., up-conversion, amplification, and filtering) on the baseband signal to obtain a radio frequency signal, and finally radiates the radio frequency signal into space via an antenna. Specifically, a transmission channel may include electronic components such as an antenna switch, an antenna tuner, a low noise amplifier (LNA), a power amplifier (PA), a mixer, a local oscillator (LO), and a filter. These electronic components may be integrated into one or more chips based on requirements. An antenna may also sometimes be considered part of the transmission channel.
[0077]
[0099] Alternatively, in this application, a transmission channel is also referred to as a radio frequency chain. Optionally, a radio frequency chain in this application may be alternatively replaced with a Tx, an antenna, a radio frequency, a transmission channel, a transmit port, a receive channel, or any combination thereof.
[0078]
[0100] A new uplink mode is proposed in Release 16: if a UE supports two uplink carriers, the UE can perform radio frequency chain switching between the two carriers to improve the utilization of the radio frequency chains.
[0079]
[0101] For a UE that supports two radio frequency chains on two uplink carriers and supports radio frequency chain switching on the two carriers, the transmission behavior of the UE on the two uplink carriers is defined in the following table.
[0080] [Table 1]
[0102] Carrier 1 and Carrier 2 represent two uplink carriers, and Tx represents a radio frequency chain. In Table 1, Case 1 indicates that the UE has one radio frequency chain on Carrier 1 and one radio frequency chain on Carrier 2; Case 2 indicates that the UE has no radio frequency chain on Carrier 1 and two radio frequency chains on Carrier 2. It can be seen that the UE supports up to one radio frequency chain on Carrier 1 and up to two radio frequency chains on Carrier 2. The UE can switch between the two cases, i.e., it can switch one radio frequency chain between the two carriers. Switching between the two cases requires a switching time. This switching time is sometimes called the uplink switching gap. During the uplink switching gap, the UE does not expect to transmit on either of the two carriers. The period during which the UE performs uplink switching is reported by the UE function. The values may be 35 μs, 140 μs, and 210 μs.
[0081]
[0103] Release 17 is an extension of Release 16.
[0082]
[0104] In one aspect, an expansion of the number of Tx's is shown. Specifically, the total number of Tx's configured in the UE remains the same, but the maximum number of Tx's supported by the UE on carrier 1 changes from 1 Tx to 2 Tx's. This corresponds to adding Case 3 based on Table 1, as shown in Table 2. Therefore, Tx switching in R16 can be referred to as 1Tx-2Tx switching, and Tx switching in R17 can be referred to as 2Tx-2Tx switching. In R16, only one Tx needs to be switched, while in R17, two Tx's are switched. Therefore, the R16 switching time and the R17 switching time reported to the base station by the same UE may be different.
[0083]
[0105] Another aspect shows an expansion of the number of carriers. Specifically, R16 allows switching to only two carriers, while R17 allows a UE to switch to three carriers in two frequency bands (hereinafter sometimes referred to as bands). For example, the three carriers are Carrier 1, Carrier 2, and Carrier 3, where Carrier 1 belongs to Frequency Band A, and Carrier 2 and Carrier 3 are two consecutive carriers in Frequency Band B. Carrier 2 and Carrier 3 may share the same radio frequency chain. Specifically, if there is one Tx in Frequency Band B, the Tx can be used on both of the two carriers in Frequency Band B. If there are two Tx in Frequency Band B, the two Txs can be used on both of the two carriers in Frequency Band B. It should be noted that the two carriers in R16 belong to two different frequency bands.
[0084] [Table 2]
[0106] In the case of R16, the existing protocol does not directly instruct the UE to perform radio frequency chain switching for a carrier. Instead, it indirectly instructs the UE to perform radio frequency chain switching via the number of ports used by the UE to transmit uplink transmissions on the carrier, and further determines whether radio frequency chain switching needs to be performed for the current uplink transmission, i.e., whether there is a switching time. The indirect indication method is used based on the mapping relationship between radio frequency chains and antenna ports for uplink transmission. Table 3 shows the mapping relationship between radio frequency chains and antenna ports for uplink transmission for a UE that supports 1Tx-2Tx switching and switchedUL for uplink carrier aggregation.
[0085] [Table 3]
[0107] In case 1, i.e., when there is one radio frequency chain in carrier 1 and one radio frequency chain in carrier 2, it can be seen from Table 3 that the UE can transmit one port uplink transmission in carrier 1 and no uplink transmission in carrier 2, i.e., 1P+0P.
[0086] In case 2, i.e., there is no radio frequency chain in carrier 1 and there are two radio frequency chains in carrier 2, the UE can send two-port uplink transmission in carrier 2 and there is no uplink transmission in carrier 1, which is 0P+2P; or the UE sends one-port uplink transmission in carrier 2 and there is no uplink transmission in carrier 1, which is 0P+1P. In the protocol, whether a switching time is required is determined based on the status of the uplink transmission ports to be transmitted by the UE for the two carriers and the latest status of the uplink transmission ports.
[0087]
[0108] For example, suppose a 1-port uplink transmission is to be performed on carrier 2, and the latest uplink transmission is a 1-port uplink transmission performed on carrier 1. That is, switching is performed from 1P+0P in case 1 to 0P+1P in case 2. In this case, the UE needs to perform radio frequency chain switching.
[0088]
[0109] Table 4 shows the mapping relationship between the radio frequency chains of a UE supporting dual UL for uplink carrier aggregation and the antenna ports for uplink transmission.
[0089] [Table 4]
[0110] Case 1, i.e., there is one radio frequency chain in carrier 1 and one radio frequency chain in carrier 2: The UE may send one port uplink transmission on carrier 1 and no uplink transmission on carrier 2 (i.e., 1P+0P); The UE may send one port uplink transmission on carrier 1 and one port uplink transmission on carrier 2 (i.e., 1P+0P); or It can be seen from Table 4 that the UE may send one port uplink transmission on carrier 2 and no uplink transmission on carrier 1 (i.e., 0P+1P);
[0090] Case 2, i.e., there are no radio frequency chains in carrier 1 and two radio frequency chains in carrier 2: The UE may send a two-port uplink transmission on carrier 2 and no uplink transmission on carrier 1 (i.e., 0P+2P); or The UE may send one port uplink transmission on carrier 2 and no uplink transmission on carrier 1 (i.e., 0P+1P).
[0091] In the protocol, whether a switching time is required is determined based on the status of the uplink transmission ports to be transmitted by the UE on the two carriers, the status of the latest uplink transmission ports, and the status of the ports for uplink transmission that the UE supports.
[0092]
[0111] Also, there is a switching time for both UEs supporting switchedUL and UEs supporting dualUL if the following two conditions are met:
[0112] For example, suppose a 2-port transmission is to be sent on one carrier and the previous uplink transmission on the other carrier is a 1-port uplink transmission (1P+0P in case 1 is switched to 0P+2P in case 2). In this case, the UE needs to perform radio frequency chain switching and does not expect to perform transmissions on either of the two carriers during the uplink switching gap.
[0093]
[0113] For example, suppose a 1-port transmission is to be sent on one carrier and the previous uplink transmission on the other carrier is a 2-port uplink transmission (0P+2P in case 2 is switched to 1P+0P in case 1). In this case, the UE needs to perform radio frequency chain switching and does not expect to perform transmissions on either of the two carriers during the uplink switching gap.
[0094]
[0114] Also, when the UE does not perform uplink transmission, the radio frequency chain state of the UE is the radio frequency chain state during the latest uplink transmission, i.e., the radio frequency chain state of the UE does not change.
[0095]
[0115] Also, in the same case, uplink transmissions via different ports do not need to be switched, so no switching time is required.
[0096]
[0116] In R17, the existing protocol does not directly instruct the UE to perform radio frequency chain switching for a carrier, but indirectly instructs the UE to perform radio frequency chain switching via the number of ports that the UE uses to send uplink transmissions on the carrier, and further determines whether radio frequency chain switching needs to be performed for this uplink transmission, i.e., whether there is a switching time.
[0097]
[0117] Table 5 shows the mapping relationship between the radio frequency chains and antenna ports for uplink transmission for a UE that supports 2Tx-2Tx switching and supports switchedUL for uplink carrier aggregation.
[0098] [Table 5]
[0118] It can be seen from Table 5 that in case 2, i.e., there is no radio frequency chain in carrier 1 and there are two radio frequency chains in carrier 2, the UE can transmit two-port uplink transmission in carrier 2 and there may be no uplink transmission in carrier 1 (0P+2P); or the UE can transmit one-port uplink transmission in carrier 2 and there may be no uplink transmission in carrier 1 (0P+1P).
[0099] In case 3, i.e., when there are two radio frequency chains in carrier 1 and no radio frequency chains in carrier 2, the UE may transmit two-port uplink transmissions in carrier 1 and may have no uplink transmissions in carrier 2 (2P+0P); or the UE may transmit one-port uplink transmissions in carrier 1 and may have no uplink transmissions in carrier 2 (1P+0P).
[0100]
[0119] In the protocol, whether a switching time is required is determined based on the status of the uplink transmission port to be transmitted by the UE for the two carriers and the status of the latest uplink transmission port. Alternatively, if the carrier for the latest transmission is different from the carrier for the current transmission, a switching time is required.
[0101]
[0120] For example, suppose a 2-port uplink transmission is to be sent on one carrier and the previous uplink transmission on the other carrier is a 2-port uplink transmission (2P+0P in case 3 is switched to 0P+2P in case 2). In this case, the UE needs to perform radio frequency chain switching and is not expected to perform transmissions on either of the two carriers during the uplink switching gap.
[0102]
[0121] Table 6 shows the mapping relationship between the radio frequency chains and antenna ports for uplink transmission of a UE that supports 2Tx-2Tx switching and dualUL for uplink carrier aggregation.
[0103] [Table 6]
[0122] However, in the case of 2Tx-2Tx dualUL switching, compared to 1Tx-2Tx dualUL switching, Case 3 has been added, which may cause a problem in that the UE cannot determine the number of radio frequencies to be used for transmission through the implicit indication of the transmission port status. For example, if the most recent transmission was performed in Case 3, i.e., the UE performs a 2-port transmission on Carrier 1, or performs a 1-port transmission on Carrier 1 but supports 2-port transmission on Carrier 1, and the next transmission is a 1-port transmission to be performed on Carrier 2, the UE needs to switch. However, as can be seen from Table 6, both Case 1 and Case 2 support 0P+1P. In this case, the UE does not determine whether to switch from 1Tx to Carrier 2 or from 2Tx to Carrier 2. That is, the UE does not determine whether to switch to Case 1 or Case 2. Similarly, if the most recent transmission was performed in Case 2 and the next transmission is a 1-port transmission on Carrier 1, the UE does not determine whether to switch to Case 1 or Case 3. As shown in FIG. 1, the UE does not determine whether to switch to Case 1 or Case 3.
[0104]
[0123] FIG. 1 illustrates a case where a UE cannot determine the radio frequency chain state during the current uplink transmission. As shown in FIG. 1, if the radio frequency chain state of the UE during the most recent uplink transmission is 0 Tx on a carrier in frequency band A and 2 Tx on a carrier in frequency band B, the most recent transmission was a one-port or two-port uplink transmission performed only on a carrier in frequency band B, and the current uplink transmission is a one-port uplink transmission performed on a carrier in frequency band A, the UE may correspond to two radio frequency chain states: Tx State 1 and Tx State 2. Tx State 1 is a state in which two radio frequency chains exist on a carrier in frequency band A and no radio frequency chain exists on a carrier in frequency band B. Tx State 2 is a state in which one radio frequency chain exists on a carrier in frequency band A and one on a carrier in frequency band B. Both Tx State 1 and Tx State 2 support one-port uplink transmission on a carrier in frequency band A. Therefore, the UE cannot determine whether the radio frequency chain should be switched to Tx state 1 or Tx state 2 from the Tx state during the latest uplink transmission.
[0105]
[0124] To solve this problem, in the current standard, whether to use 1Tx or 2Tx for transmission is determined by pre-setting an RRC parameter, i.e., whether to use Tx state 1 or Tx state 2 is pre-set using an RRC parameter.
[0106]
[0125] For example, as shown in Figure 1, if the most recent uplink transmission was a two-port or one-port (however, two-port uplink transmission is supported) uplink transmission performed on a carrier in a certain frequency band, and the current uplink transmission is not an uplink transmission on a carrier in that frequency band but a one-port uplink transmission to be performed on a carrier in another frequency band, if the RRC parameter is set to 1T, the UE has one Tx for each of the two carriers in the two frequency bands, e.g., Tx state 2; or if the RRC parameter is not set to 1T, the UE supports two Tx for the carrier used for the current uplink transmission, e.g., Tx state 1.
[0107]
[0126] As communication systems evolve and develop, future standards are intended to extend the number of frequency bands supporting Tx switching from two to more than two, for example, three or four, while still limiting the total number of Txs to two, i.e., 2Tx. In this case, when a UE performs Tx switching to carriers in more than two frequency bands, the number of transmitting antenna ports still indirectly indicates Tx switching. However, from the UE's perspective, the Tx states supporting switching are not unique. The UE cannot determine the status of the Tx state after switching.
[0108]
[0127] 1. At least three carriers are configured for the UE. The UE is capable of Tx switching to at least three carriers. The total number of Txs is 2. Optionally, the at least three carriers belong to at least three frequency bands.
[0109]
[0128] 2 through 4 show examples of parts of system architectures applicable to the present application.
[0110]
[0129] As shown in Figures 2 to 4, at least three carriers are configured for a UE. The at least three carriers belong to at least three frequency bands. The UE can perform Tx switching in at least three frequency bands. The total number of Txs of the UE in the at least three carriers is two. In Figure 2, Tx switching only involves two carriers. In Figure 3, Tx switching involves three carriers. In Figure 4, only one Tx can be switched.
[0111]
[0130] Figure 5 shows an example in which the UE cannot distinguish the radio frequency chain state. As shown in Figure 5, the UE can perform Tx switching for carriers of three frequency bands. If there are two Txs on carriers of frequency band B in the latest uplink transmission, i.e., the latest uplink transmission is a two-port transmission or one-port transmission performed on carriers of frequency band B (two-port transmission is supported), and the current uplink transmission is a one-port transmission to be performed on carriers of frequency band A, and there is no uplink transmission on carriers of other frequency bands, there are three possible Tx states on the UE side, which are indicated as Tx state 1 to Tx state 3. The details are as follows:
[0112]
[0131] Tx state 1: There are two Tx on carriers in frequency band A.
[0113]
[0132] Tx state 2: There is one Tx for each carrier in frequency band A and frequency band B.
[0114]
[0133] Tx state 3: There is one Tx for each carrier in frequency band A and frequency band C.
[0115]
[0134] It can be seen that each of Tx states 1 to 3 supports one port transmission on a carrier in frequency band A.
[0116]
[0135] 6 shows another example in which a UE cannot distinguish the radio frequency chain state. As shown in FIG. 6, the UE can perform Tx switching to carriers of three frequency bands. If the latest uplink transmission has one Tx on each of the carriers of frequency band B and frequency band C, i.e., the latest uplink transmission is a one-port transmission on the carrier of frequency band B, a one-port transmission on the carrier of frequency band C, or a one-port transmission on both the carriers of frequency band B and frequency band C, and the current uplink transmission is a one-port transmission to be performed on the carrier of frequency band A, and there is no uplink transmission on the carriers of other frequency bands, then there are still three possible Tx states on the UE side, which are indicated as Tx state 1 to Tx state 3.
[0136] 2. At least four carriers are configured for the UE. The UE is capable of Tx switching to at least four carriers. The total number of Txs is 2. Optionally, the at least four carriers belong to at least four frequency bands.
[0117]
[0137] 7 and 8 show another example of a system architecture applicable to the present application.
[0118]
[0138] As shown in Figures 7 and 8, at least four carriers are configured for the UE. The at least four carriers belong to at least four frequency bands. The UE can perform Tx switching for the at least four carriers. The total number of Txs for the UE on the at least four carriers is two.
[0119]
[0139] In Figure 7, every Tx switching involves two carriers and two Txs need to be switched. In Figure 8, every Tx switching involves four carriers. For example, one Tx on carrier 4 switches to carrier 3, and one Tx on carrier 2 switches to carrier 1.
[0120]
[0140] Figure 9 shows an example in which the UE cannot distinguish the radio frequency chain state. As shown in Figure 9, the UE can perform Tx switching for carriers of four frequency bands. If there are two Txs on carriers of frequency band B in the latest uplink transmission, i.e., the latest uplink transmission is a two-port transmission or one-port transmission performed on carriers of frequency band B (two-port transmission is supported), and the current uplink transmission is a one-port transmission to be performed on carriers of frequency band A, and there is no uplink transmission on carriers of other frequency bands, then there are four possible Tx states on the UE side, indicated as Tx state 1 to Tx state 4. The details are as follows:
[0121]
[0141] Tx state 1: There are two Tx on carriers in frequency band A.
[0122]
[0142] Tx state 2: There is one Tx for each carrier in frequency band A and frequency band B.
[0123]
[0143] Tx state 3: There is one Tx for each carrier in frequency band A and frequency band C.
[0124]
[0144] Tx state 4: There is one Tx for each carrier in frequency band A and frequency band D.
[0125]
[0145] 10 shows another example in which a UE cannot distinguish the radio frequency chain state. As shown in FIG. 10, the UE can perform Tx switching to carriers in four frequency bands. In the latest uplink transmission, if there is one Tx for each of the carriers in frequency band B and frequency band C, i.e., the latest uplink transmission is a one-port transmission for the carrier in frequency band B, a one-port transmission for the carrier in frequency band C, or a one-port transmission for both the carriers in frequency band B and frequency band C, and the current uplink transmission is a one-port transmission to be performed on the carrier in frequency band A, and there is no uplink transmission for the carriers in other frequency bands, then there are still four possible Tx states on the UE side, which are indicated as Tx state 1 to Tx state 4.
[0126]
[0146] For the UE, there are multiple possibilities for the Tx state that supports the current uplink transmission, so the UE side cannot decide how to perform Tx switching during the current uplink transmission.
[0127]
[0147] Therefore, the present application provides an uplink transmission method, which enables a UE to determine one Tx state among multiple possible Tx states supporting uplink transmission as the Tx state during the current uplink transmission.
[0128]
[0148] The technical solutions provided in this application are described in detail below.
[0129]
[0149] Solution 1
[0150] The network device configures RRC parameters and / or indication signaling to indicate one of multiple possible Tx states as the Tx state during the current uplink transmission, and the UE uses the indicated radio frequency chain state as the Tx state during the current uplink transmission.
[0130]
[0151] FIG. 11 is an example of an uplink transmission method according to the present application.
[0131]
[0152] 510: The terminal device receives first information from the network device.
[0132]
[0153] The first information instructs the terminal device to perform one-antenna port uplink transmission in a first carrier, the terminal device supporting uplink switching performed in at least three frequency bands.
[0133]
[0154] Alternatively, the uplink switching is radio frequency chain switching.
[0134]
[0155] It should be understood that the first carrier is a carrier in a frequency band within the at least three frequency bands.
[0135]
[0156] In this application, a carrier may be replaced by the frequency band to which it belongs, or by another carrier included in the frequency band to which it belongs; and a frequency band may be replaced by a carrier included in the frequency band. One frequency band may include one or more carriers.
[0136]
[0157] Furthermore, according to the above description, when the first information instructs the terminal device to perform two-antenna port uplink transmission on one carrier of a frequency band among the at least three supported frequency bands, there is only one possible Tx state supporting the uplink transmission, and the UE can determine the Tx state for the current uplink transmission. In this case, the technical solution provided in the present application is not involved. Therefore, the technical solution of the present application is mainly applicable to cases where there are multiple Tx states supporting the current uplink transmission. Therefore, the present application mainly focuses on how the UE determines the Tx state during the current uplink transmission when the first information instructs the terminal device to perform one-antenna port uplink transmission on one carrier.
[0137]
[0158] 520: The terminal device determines a radio frequency chain state after the uplink switching based on the indication signaling and / or the first radio resource control (RRC) parameter in at least three radio frequency chain states supporting the current uplink transmission.
[0138]
[0159] With respect to the network device, the network device determines the radio frequency chain state of the terminal device during a current uplink transmission based on the capability information reported by the terminal device, the radio frequency chain state of the terminal device during a most recent uplink transmission, and the state of the antenna port to be used by the terminal device to transmit the uplink transmission on the carrier during the current uplink transmission. If the network device determines that there are two or more radio frequency chain states of the terminal device during the current uplink transmission, the network device transmits first RRC parameters and / or indication signaling to the terminal device, specifying one of the two or more radio frequency chain states to be used as the radio frequency chain state of the terminal device during the current uplink transmission. Optionally, the capability information reported by the terminal device includes a combination of carriers (or frequency bands to which the carriers belong), in which the terminal device can support parallel transmission states and / or Tx switching supported by the terminal device.
[0139]
[0160] As shown in step 530, after uplink switching for the current uplink transmission is triggered for the terminal device, the terminal device performs uplink switching and then performs the current uplink transmission, so that the radio frequency chain state during the current uplink transmission is the radio frequency chain state after uplink switching.
[0140]
[0161] 530: The terminal device transmits (or executes) the current uplink transmission in the radio frequency chain state after uplink switching.
[0141]
[0162] Optionally, the indication signaling includes, but is not limited to, RRC signaling, media access control element (MAC CE) signaling, downlink control information (DCI) signaling, and the like.
[0142]
[0163] In Solution 1, there are several possible implementations, so that the network side can indicate one of several possible Tx states to the UE via the first RRC parameter and / or indication signaling, i.e., the network side indicates to the UE the Tx state after uplink switching.
[0143]
[0164] The specific implementation varies depending on the number of carriers that may be configured for the UE to perform Tx switching. Therefore, the following describes how the network side instructs the UE to change the Tx state after uplink switching when the UE is configured to perform uplink switching for at least three carriers or when the UE is configured to perform uplink switching for at least four carriers.
[0144]
[0165] For simplicity, we first describe the Tx state during the most recent uplink transmission.
[0145]
[0166] Optionally, the radio frequency chain state during the most recent uplink transmission may be the first state or the second state.
[0146]
[0167] The first state is that there are two radio frequency chains on the second carrier, and the second state is that there is one radio frequency chain each on the second carrier and the third carrier, and optionally, the first carrier, the second carrier, and the third carrier each belong to three different frequency bands.
[0147]
[0168] The description of the Tx state during the latest uplink transmission here is applicable to all the following embodiments, and will not be repeated below.
[0148]
[0169] (1) The UE is configured to be capable of performing Tx switching for at least three carriers.
[0149]
[0170] Optionally, the at least three carriers belong to three frequency bands.
[0150]
[0171] In some optional implementations, the same signaling is used for the indications of, for example, Implementations 1 to 3 below for the scenarios of Figures 5 and 6. Also, the same signaling is used for the indications of, for example, Implementations 4 to 6 below for the scenarios of Figures 9 and 10.
[0151]
[0172] Implementation 1
[0173] The network device transmits the first RRC parameters and the first indication signaling to the terminal device.
[0152]
[0174] If the first RRC parameter has a first value, the Tx state after uplink switching is the first radio frequency chain state: If the first RRC parameter has a second value and the first indication signaling has a first value, the Tx state after the uplink switching is a second radio frequency chain state; or If the first RRC parameter has a second value and the first indication signaling has a second value, the Tx state after uplink switching is the third radio frequency chain state.
[0153]
[0175] The terminal device determines a Tx state after uplink switching based on the first indication signaling from the network device and the first RRC parameter.
[0154]
[0176] Optionally, the first RRC parameter may be uplinkTxSwitching-DualUL-Txstate-r17, which has two values: 2T and 1T.
[0155]
[0177] For example, if the value of uplinkTxSwitching-DualUL-Txstate-r17 is 2T, it indicates that the Tx state after uplink switching is the first radio frequency chain state. In this case, the network side can indicate the Tx state after uplink switching through the first RRC parameter, where the Tx state is specifically the first radio frequency chain state.
[0156]
[0178] If the value of uplinkTxSwitching-DualUL-Txstate-r17 is 1T, the network side is required to indicate to the UE the Tx state after uplink switching via both uplinkTxSwitching-DualUL-Txstate-r17 and the first indication signaling. Thus, if the value of uplinkTxSwitching-DualUL-Txstate-r17 is 1T and the first indication signaling has the first value, it indicates that the second radio frequency chain state is the radio frequency chain state after uplink switching. If the value of uplinkTxSwitching-DualUL-Txstate-r17 is 1T and the first indication signaling has the second value, it indicates that the third radio frequency chain state is the radio frequency chain state after uplink switching.
[0157]
[0179] For example, the first indication signaling may have one bit, where the first value is 0 and the second value is 1. Alternatively, the first value is 1 and the second value is 0. Alternatively, the first value and the second value of the first indication signaling may be other values. This is not limited.
[0158]
[0180] Optionally, the first radio frequency chain state may be Tx State 1 in Figure 5 or Figure 6. The second and third radio frequency chain states may be Tx State 2 and Tx State 3 in Figure 5 or Figure 6, respectively.
[0159]
[0181] Optionally, in this application, a value of 2T for uplinkTxSwitching-DualUL-Txstate-r17 indicates that there are two radio frequency chains in the carrier to be used; and a value of 1T for uplinkTxSwitching-DualUL-Txstate-r17 indicates that there is one radio frequency chain in the carrier to be used. Hereinafter, for ease of explanation, uplinkTxSwitching-DualUL-Txstate-r17 will be referred to as r-17 signaling.
[0160]
[0182] Figure 5 or Figure 6 is used as an example. Assume that the first carrier is a carrier of frequency band A. The total amount of Tx is 2 and remains unchanged. If the value of r-17 signaling is 2T, it indicates that there are two Txs in the carrier (i.e., the first carrier) to be used for this uplink transmission. That is, Tx state 1 in Figure 5 or Figure 6 can be specified.
[0161]
[0183] If the value of the r-17 signaling is 1T, it indicates that there is one Tx in the carrier to be used for the current uplink transmission (i.e., the first carrier). In this case, the remaining one Tx may be in a carrier of frequency band B, such as Tx state 2 in FIG. 5 or 6; or it may be in a carrier of frequency band C, such as Tx state 3 in FIG. 5 or 6. In this case, in implementation 1, the first and second values of the first indication signaling indicate Tx state 2 and Tx state 3.
[0162]
[0184] In implementation 1, it can be seen that the first value of the first RRC parameter can indicate Tx state 1; alternatively, if the first RRC parameter has a second value, Tx state 2 and Tx state 3 are specified with reference to the value of the first indication signaling.
[0163]
[0185] Optionally, the instruction may alternatively be carried out in the following manner:
[0164]
[0186] If the first indication signaling has a first value and the first RRC parameter has a first value, the Tx state after uplink switching is Tx state 1; If the first indication signaling has a first value and the first RRC parameter has a second value, the Tx state after uplink switching is Tx state 2; or If the first indication signaling has the second value, the Tx state after uplink switching is Tx state 3.
[0165]
[0187] For example, the first indication signaling may be one bit.
[0166] If the bit is 0 and the value of the r-17 signaling is 1T, the Tx state after uplink switching is Tx state 1; or If the bit is 0 and the value of r-17 signaling is 2T, the Tx state after uplink switching is Tx state 2; If the bit is 0 and the value of the r-17 signaling is 1T, the Tx state after uplink switching is Tx state 3.
[0167]
[0188] This indication scheme allows for the complete reuse of existing RRC parameters (e.g., R-17 signaling) and reduces signaling overhead.
[0168]
[0189] Implementation 2
[0190] The network device transmits a second indication signaling to the terminal device.
[0169]
[0191] The second instruction signaling has at least three values, and a first value, a second value, and a third value of the at least three values indicate a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
[0170]
[0192] In Implementation 2, a second indication signaling is additionally introduced, and different values of the second indication signaling indicate different Tx states. The UE determines the Tx state after uplink switching based on the value of the second indication signaling.
[0171]
[0193] If the second indication signaling sent by the network device has a first value, it indicates that the Tx state after uplink switching is Tx state 1; If the second indication signaling has a second value, it indicates that the Tx state after uplink switching is Tx state 2; or If the second indication signaling has a third value, it indicates that the Tx state after uplink switching is Tx state 3.
[0172]
[0194] For example, the second indication signaling may have two bits, and the values of the two bits may be 00, 01, 10, and 11. Any three of the four values may indicate Tx state 1 to Tx state 3, respectively. For example, 00 indicates Tx state 1, 01 indicates Tx state 2, and 10 indicates Tx state 3. 11 is reserved.
[0173]
[0195] This method of instruction provides great flexibility.
[0174]
[0196] Implementation 3
[0197] The network device transmits the first RRC parameters to the terminal device.
[0175]
[0198] The first RRC parameter has at least three values, and a first value, a second value, and a third value of the at least three values indicate a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
[0176]
[0199] For example, the first RRC parameter may be extended r-17 signaling. Specifically, the r-17 signaling may be extended to two bits, and the two bits have at least three values, where a first value, a second value, and a third value of the at least three values indicate Tx state 1, Tx state 2, and Tx state 3, respectively.
[0177] For example, if the value of extended r-17 signaling is 00, Tx state 1 is indicated; Tx state 2 is indicated if the extended r-17 signaling value is 01; or If the extended r-17 signaling has a value of 10, Tx state 3 is indicated.
[0178]
[0200] Optionally, if the number of carriers (or frequency bands to which carriers belong) configured by the network device for the terminal device and that may be used to perform uplink switching is three or more, the r-17 signaling may be extended to two bits, and the above indication is performed based on implementation 3. Also, if the number of carriers (or frequency bands to which carriers belong) configured by the network device for the terminal device and that may be used to perform uplink switching is equal to two, the indication method based on the existing r-17 signaling may continue to be used, i.e., the r-17 signaling still has one bit.
[0179]
[0201] When the UE is configured to be capable of performing Tx switching for at least three carriers, if there are multiple possible states for the radio frequency chain state during the current uplink transmission, the three implementations described above may be for specifying one of the multiple states as the radio frequency chain state during the current uplink transmission.
[0180]
[0202] (2) The UE is configured to be capable of performing Tx switching for at least four carriers.
[0181]
[0203] Optionally, the at least four carriers belong to four frequency bands.
[0182]
[0204] Implementation 4
[0205] The network device transmits the first RRC parameter and the third indication signaling to the terminal device.
[0183]
[0206] If the first RRC parameter has a first value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; If the first RRC parameter has a first value and the third indication signaling has a second value, the radio frequency chain state after uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the third radio frequency chain state; or If the first RRC parameter has the second value and the third indication signaling has the second value, the radio frequency chain state after uplink switching is the fourth radio frequency chain state.
[0184]
[0207] For example, the first radio frequency chain state, the second radio frequency chain state, the third radio frequency chain state, and the fourth radio frequency chain state may be Tx State 1, Tx State 2, Tx State 3, and Tx State 4 in FIG. 9 or FIG. 10, respectively.
[0185]
[0208] For example, the first RRC parameter may be r-17 signaling, and the parameter has two values: 2T and 1T.
[0186]
[0209] If the value of the r-17 signaling is 1T and the third instruction signaling has a first value, the radio frequency chain state after uplink switching is Tx state 1; alternatively, if the value of the r-17 signaling is 1T and the third instruction signaling has a second value, the radio frequency chain state after uplink switching is Tx state 2.
[0187]
[0210] If the value of the r-17 signaling is 2T and the third instruction signaling has a first value, the radio frequency chain state after uplink switching is Tx state 3; alternatively, if the value of the r-17 signaling is 2T and the third instruction signaling has a second value, the radio frequency chain state after uplink switching is Tx state 4.
[0188]
[0211] For example, the third indication signaling may have 1 bit, the first value of the third indication signaling may be 0, and the second value of the third indication signaling may be 1. Alternatively, the first value of the third indication signaling may be 1, and the second value of the third indication signaling may be 0. This is not limited.
[0189]
[0212] This indication scheme allows for the complete reuse of existing RRC parameters (e.g., R-17 signaling) and reduces signaling overhead.
[0190]
[0213] Implementation 5
[0214] The network device transmits the first RRC parameter and the third indication signaling to the terminal device.
[0191]
[0215] If the first RRC parameter has a first value, the radio frequency chain state after uplink switching is the first radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is the third radio frequency chain state; or If the first RRC parameter has the second value and the third indication signaling has the third value, the radio frequency chain state after uplink switching is the fourth radio frequency chain state.
[0192]
[0216] In Implementation 5, for example, the first RRC parameter may be r-17 signaling. If the value of the r-17 signaling is 2T, Tx state 1 in FIG. 9 or 10 may be indicated. That is, 2T is the first value of the r-17 signaling. If the value of the r-17 signaling is 1T, Tx state 2, Tx state 3, and Tx state 4 are indicated by the first value, second value, and third value of the third indication signaling, respectively. That is, 1T is the second value of the r-17 signaling.
[0193]
[0217] This indication scheme allows for the complete reuse of existing RRC parameters (e.g., R-17 signaling) and reduces signaling overhead.
[0194]
[0218] Implementation 6
[0219] The network device sends a fourth indication signaling to the terminal device.
[0195]
[0220] The fourth instruction signaling has at least four values, and a first value, a second value, a third value, and a fourth value of the at least four values indicate a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively.
[0196]
[0221] For example, the fourth indication signaling may have two bits, and the value of the two bits may have four values: 00, 01, 10, and 11. 00, 01, 10, and 11 respectively indicate Tx state 1, Tx state 2, Tx state 3, and Tx state 4 in FIG. 9 or FIG. 10.
[0197]
[0222] Alternatively, the network device transmits the first RRC parameters to the terminal device.
[0198]
[0223] The first RRC parameter has at least four values, and a first value, a second value, a third value, and a fourth value of the at least four values indicate a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively.
[0199]
[0224] For example, the first RRC parameter may be an extended r-17 signaling. For example, the extended r-17 signaling has two bits, and the two bits can have four values: 00, 01, 10, and 11. 00, 01, 10, and 11 represent Tx state 1, Tx state 2, Tx state 3, and Tx state 4 in Figure 9 or Figure 10, respectively.
[0200]
[0225] The above provides detailed explanations for the three frequency band scenario and the four frequency band scenario separately.
[0201]
[0226] Optionally, the indication signaling of the three frequency band scenario and the four frequency band scenario may be mutually reused.
[0202]
[0227] For example, the first indication signaling in a three-frequency band scenario and the third indication signaling in a four-frequency band scenario may be mutually reused. In other words, the first indication signaling and the third indication signaling are transmitted in the same information element. The meaning of the same information element varies depending on the number of carriers configured by the network device for the terminal device that may be used to perform Tx switching. For specific meanings, please refer to the meanings of the first indication signaling and the third indication signaling in the above embodiment.
[0203]
[0228] For example, a one-bit indication signaling is introduced on the network side. If the UE is configured to be able to perform Tx switching for carriers in four frequency bands, different values of the one-bit indication signaling may indicate Tx state 3 and Tx state 4 in Figure 9 or Figure 10, respectively. The one-bit indication signaling is, for example, the third indication signaling in Implementation 4. If the UE is configured to be able to perform Tx switching for carriers in three frequency bands, different values of the one-bit indication signaling may indicate Tx state 3 in Figure 5 or Figure 6, respectively. The one-bit indication signaling is, for example, the first indication signaling in Implementation 1.
[0204]
[0229] Optionally, the second indication signaling in the three frequency band scenario and the fourth indication signaling in the four frequency band scenario may be mutually reused. In other words, the second indication signaling and the fourth indication signaling are transmitted in the same information element. The meaning of the same information element varies depending on the number of carriers configured by the network device for the terminal device that may be used to perform Tx switching. For specific meanings, please refer to the meanings of the first indication signaling and the third indication signaling in the above embodiment.
[0205]
[0230] For example, a two-bit indication signaling is introduced on the network side. If the UE is configured to be able to perform Tx switching for carriers in four frequency bands, different values of the two-bit indication signaling indicate Tx state 1 to Tx state 4 in Figure 9 or Figure 10, respectively. The two-bit indication signaling is, for example, the fourth indication signaling in Implementation 6. If the UE is configured to be able to perform Tx switching for carriers in three frequency bands, different values of the two-bit indication signaling indicate Tx state 1 to Tx state 3 in Figure 5 or Figure 6, respectively (three Tx states in total). The two-bit indication signaling is, for example, the second indication signaling in Implementation 3.
[0206]
[0231] In some other implementations, different signaling may be used for the indication, for example, implementation 7 or implementation 8 below, for the scenarios of Figures 5 and 6.
[0207]
[0232] Implementation 7
[0233] The first value of the first RRC parameter indicates Tx state 1 in FIG. 5, and the second value of the first RRC parameter indicates Tx state 2 in FIG.
[0208]
[0234] A sixth indication signaling is additionally introduced, where the sixth indication signaling has at least four values, a first value of the at least four values indicates Tx State 3 in Figure 5, and a second value, a third value, and a fourth value of the at least four values indicate Tx State 1, Tx State 2, and Tx State 3 in Figure 6, respectively.
[0209]
[0235] For example, the first RRC parameter may be r-17 signaling and has two values, 2T and 1T, where 2T indicates Tx state 1 in Figure 5 and 1T indicates Tx state 2 in Figure 5. For example, the sixth indication signaling may have two bits corresponding to four values, 00, 01, 10, and 11, which respectively indicate Tx state 3 in Figure 5 and Tx state 1, Tx state 2, and Tx state 3 in Figure 6.
[0210]
[0236] Implementation 8
[0237] The seventh and eighth indication signaling indicate the three Tx states in FIG. 5 and the Tx states in FIG. 6, respectively.
[0211]
[0238] For example, the seventh indication signaling has two bits, the two bits correspond to four values, three of which respectively indicate Tx state 1, Tx state 2, and Tx state 3 in Figure 5, and one remaining value of the four values is reserved. For example, the eighth indication signaling also has two bits, the two bits correspond to four values, three of which respectively indicate Tx state 1, Tx state 2, and Tx state 3 in Figure 6, and one remaining value of the four values is reserved.
[0212]
[0239] For the scenarios of Figures 9 and 10, for example, the same signaling is used for indication in Implementations 9 and 10 below.
[0213]
[0240] Implementation 9
[0241] A first value of the first RRC parameter indicates Tx state 1 in Fig. 9, and a second value of the first RRC parameter indicates Tx state 2 in Fig. 9. Furthermore, a 1-bit ninth indication signaling is additionally introduced. The 1 bit in the ninth indication signaling corresponds to two values, and the two values respectively indicate Tx state 3 and Tx state 4 in Fig. 9. Furthermore, a 2-bit tenth indication signaling is additionally introduced. The 2 bits in the tenth indication signaling correspond to four values, and the four values respectively indicate Tx state 1 to Tx state 4 in Fig. 10 (a total of four Tx states).
[0214]
[0242] For example, the first RRC parameter may be r-17 signaling and may indicate two values. For example, 2T is the first value of the first RRC parameter, and 1T is the second value of the first RRC parameter. Alternatively, 1T is the first value of the first RRC parameter, and 2T is the second value of the first RRC parameter. This is not limited.
[0215]
[0243] Implementation 10
[0244] An eleventh instruction signaling of two bits is additionally introduced. The two-bit eleventh instruction signaling indicates Tx state 1 to Tx state 4 (a total of four Tx states) in Fig. 9. Furthermore, a twelfth instruction signaling of two bits is additionally introduced. The two-bit twelfth instruction signaling indicates Tx state 1 to Tx state 4 (a total of four Tx states) in Fig. 10.
[0216]
[0245] Optionally, the eleventh and twelfth indications and the indications in the three frequency band scenario may be mutually reused. For example, in the four frequency band scenario, the eleventh and twelfth indications indicate a total of eight Tx states in Figures 9 and 10; and in the three frequency band scenario, the eleventh and twelfth indications indicate a total of six Tx states in Figures 5 and 6. For example, four values corresponding to two bits in the eleventh indication can indicate Tx state 1, Tx state 2, and Tx state 3 in Figure 5, and Tx state 1 in Figure 6, respectively. Two of the four values corresponding to two bits in the twelfth indication can indicate the remaining Tx state 2 and Tx state 3 in Figure 6, respectively. It can be seen that in a three frequency band scenario, two unused values out of the four values corresponding to the twelfth indication signaling may be reserved.
[0217]
[0246] The above describes in detail several implementations of Solution 1 provided in this application.
[0218]
[0247] It can be seen that these implementations in Solution 1 ensure maximum scheduling flexibility. Also, in the indication signaling reuse solution, when one indication signaling is applied to different frequency band scenarios (e.g., three frequency bands or four frequency bands) to indicate the Tx state, the meaning of the indication signaling differs depending on the frequency band scenario, but it is possible to ensure the uniformity of the indication signaling and reduce the indication signaling overhead.
[0248] Solution 2
[0249] The terminal device determines the radio frequency chain state after uplink switching based on a combination of carriers supported by the terminal device and intended for parallel transmission and / or according to a predetermined selection policy.
[0219]
[0250] The following description will be given with reference to FIG.
[0220]
[0251] FIG. 12 illustrates another example of an uplink transmission method according to the present application.
[0221]
[0252] 610: The terminal device receives first information from the network device, where the first information instructs the terminal device to perform one-antenna-port uplink transmission on a first carrier.
[0222]
[0253] The terminal device supports uplink switching performed in at least three frequency bands.
[0223]
[0254] For step 610, please refer to the description in step 510. The details will not be described again here.
[0224]
[0255] 620: The terminal device determines a radio frequency chain state after uplink switching according to a predetermined selection policy among at least two radio frequency chain states supporting uplink transmission and / or based on a combination of carriers supported for parallel transmission.
[0225]
[0256] The predetermined selection policies include one or more of the following:
[0257] The number of carriers involved in uplink switching is minimal; Uplink switching does not include carriers where uplink transmission does not exist; The uplink switching does not include carriers where the radio frequency chain does not exist; or The uplink switching time must meet the specified conditions.
[0226]
[0258] Optionally, the predetermined condition may be that the switching time of the uplink switching is the shortest, or that the switching time of the uplink switching is equal to or less than a specified threshold.
[0227]
[0259] Furthermore, the carrier involved in the uplink switching is the carrier that can guarantee the normalization of the current uplink transmission.
[0228]
[0260] 630: The terminal device transmits the current uplink transmission in the radio frequency chain state after uplink switching.
[0229]
[0261] In solution 2, the terminal device determines the Tx state after uplink switching according to a pre-determined selection policy and / or based on the combinations of supported carriers that may be for parallel transmission.
[0230]
[0262] Optionally, in some implementations, the terminal device may exclude some Tx states from among the multiple possible Tx states based on combinations of supported carriers that may be used for parallel transmission, or based on combinations thereof, according to a predetermined selection policy. For example, in the three-frequency band scenario of FIG. 5 or FIG. 6, there are three possible Tx states. For example, in the four-frequency band scenario of FIG. 9 or FIG. 10, there are four possible Tx states. After some Tx states are excluded from among the multiple possible Tx states, one or more Tx states may remain. If only one Tx state remains after some Tx states are excluded, the remaining Tx state is used as the Tx state after uplink switching.
[0231]
[0263] In some other implementations, after the terminal device eliminates some Tx states from the multiple possible Tx states based on the combinations of supported carriers that may be used for parallel transmission and / or according to a predetermined selection policy, two or more Tx states still remain. That is, the remaining Tx states are not unique. In this case, it is necessary to continue selecting from at least two remaining Tx states by referring to other Tx state selection methods provided in this application, and one of the Tx states is finally determined as the Tx state after uplink switching. Alternatively, the process of selecting the Tx state after uplink switching may actually be considered as a process of eliminating some Tx states from the multiple possible Tx states and finally leaving one Tx state.
[0232]
[0264] In an optional implementation, the terminal device can alternatively exclude some Tx states based on other Tx state selection methods provided in the present application and then use solution 2, i.e., determine the Tx state after uplink switching based on carrier combinations supported by the terminal device that may be suitable for parallel transmission and / or according to a predetermined selection policy. For example, the terminal device first excludes some Tx states from multiple possible Tx states based on instruction signaling from the network device and / or RRC parameters, and then determines one Tx state from the remaining Tx states after the exclusion of some Tx states based on carrier combinations supported by the terminal device that may be suitable for parallel transmission and / or according to a predetermined selection policy. Optionally, the RRC parameters and / or instruction signaling may be the RRC parameters and / or instruction signaling in solution 1.
[0233]
[0265] For example, if the r17 signaling has a first value (e.g., 2T), the terminal device selects a first radio frequency chain state (e.g., Tx state 1 in Figure 5, Figure 6, Figure 9 or Figure 10); or if the r17 signaling has a second value (e.g., 1T), the terminal device determines the Tx state according to a predetermined selection policy (e.g., for Figure 10, when the value of the r17 signaling is 1T, for example, Tx state 4 is excluded, and Tx state 2 and Tx state 3 remain after using a policy with the smallest number of frequency bands involved in uplink switching; or for Figure 5 or Figure 9, for example, A policy that minimizes the number of frequency bands involved in uplink switching; A corresponding policy where the carriers involved in uplink switching include carriers for which there was no Tx present during the most recent uplink transmission, or Tx state 2 remains after the corresponding policy is used, where the carriers involved in uplink switching include carriers on which no uplink transmission exists.
[0234] In this case, if multiple Tx states still remain, the Tx state is determined by using an indication signaling from the network device and / or an RRC parameter (e.g., with respect to FIG. 10 , one Tx state is selected from Tx state 2 and Tx state 3 based on the indication signaling from the network device). For example, the RRC parameter may be the first RRC parameter in Solution 1, and / or the indication signaling may be the indication signaling in Solution 1. This is not limited. Based on the description in Solution 1, a person skilled in the art can clearly know how the first RRC parameter and / or the indication signaling in Solution 1 indicate the remaining multiple Tx states. The details will not be described again here.
[0235]
[0266] The following describes in detail the process by which a terminal device selects a Tx state according to a predetermined selection policy in Solution 2 or based on the supported carrier combinations that may be beneficial for parallel transmission.
[0236]
[0267] (1) The terminal device excludes some Tx states from the multiple Tx states based on the combination of supported carriers that may benefit parallel transmission.
[0237]
[0268] If a three-frequency band scenario or a four-frequency band scenario supports only limited frequency band (or carrier) combinations for 1T+1T parallel transmission, the number of possible Tx states is reduced, which corresponds to excluding some Tx states from multiple possible Tx states. In some scenarios, the Tx state after uplink switching may be determined based solely on the supported carrier combinations that may be beneficial for parallel transmission without further determination. However, in some scenarios, two or more Tx states still remain after excluding some Tx states. In this case, one Tx state from the remaining Tx states must be finally selected as the Tx state after uplink switching, referring to other Tx state selection methods provided in this application.
[0238]
[0269] Optionally, if the terminal device supports parallel transmission in only two frequency bands, only the Tx states shown in Figures 13 and 14 remain among the possible Tx states supporting the current uplink transmission in Figures 5 and 6, respectively. Figure 5 corresponds to Figure 13, and Figure 6 corresponds to Figure 14.
[0239]
[0270] FIG. 13 shows an example of excluding some Tx states based on the combination of frequency bands supported for parallel transmission.
[0240]
[0271] As shown in FIG. 13, in the latest uplink transmission, there are two radio frequency chains on a carrier of frequency band B, and this uplink transmission is a one-port transmission to be performed on a carrier of frequency band A.
[0241]
[0272] If the terminal device supports parallel transmission only in frequency band A and frequency band B, the Tx states supported for this uplink transmission only include Tx state 1 and Tx state 2. Tx state 1 is a state in which there are two Txs on the carrier of frequency band A, and Tx state 2 is a state in which there is one Tx on the carrier of frequency band A and one on the carrier of frequency band B. That is, Tx state 3 is excluded.
[0242]
[0273] If the terminal device supports parallel transmission only in frequency band A and frequency band C, the Tx states supported for this uplink transmission only include Tx state 1 and Tx state 3. Tx state 1 is a state in which there are two Txs on the carrier of frequency band A, and Tx state 3 is a state in which there is one Tx on the carrier of frequency band A and one on the carrier of frequency band C. That is, Tx state 2 is excluded.
[0243]
[0274] If the terminal device only supports parallel transmission in frequency band B and frequency band C, the Tx states supported for this uplink transmission only include Tx state 1, i.e., there are two Txs on the carrier of frequency band A.
[0244]
[0275] In both the first two cases, two Tx states remain. In this case, one Tx state may be further excluded from the two remaining Tx states by referring to other methods, and finally one Tx state remains and is used as the Tx state after uplink switching. However, in the third case, the remaining Tx states only include Tx state 1, and Tx state 1 is the Tx state after uplink switching. In this case, there is no need to perform further exclusion by referring to other methods.
[0245]
[0276] FIG. 14 shows another example of excluding some Tx states based on the combination of frequency bands supported for parallel transmission.
[0246]
[0277] As shown in Figure 14, in the latest uplink transmission, there is one radio frequency chain for each of the carriers in frequency band B and frequency band C, and this uplink transmission is a one-port transmission to be performed on the carrier in frequency band A.
[0247]
[0278] If the terminal device supports parallel transmission only in frequency band B and frequency band C, the Tx states supported for this uplink transmission only include Tx state 1, i.e., Tx state 2 and Tx state 3 are excluded. In this case, Tx state 1 is the Tx state after uplink switching.
[0248]
[0279] In FIG. 13 or FIG. 14, if two or more Tx states remain, the Tx state after uplink switching may be determined by referring to another Tx state selection method among the remaining Tx states.
[0249]
[0280] Using Figure 13 as an example, there are only two remaining Tx states. The terminal device may select one of the two remaining Tx states as the Tx state after uplink switching in a number of ways.
[0250]
[0281] Optionally, in one example, the terminal device selects one Tx state from two remaining Tx states based on an indication signaling from the network device and / or an RRC parameter. For example, the RRC parameter may be the first RRC parameter in Solution 1. In another example, the RRC parameter may be a second RRC parameter from the network device. Optionally, the second RRC parameter may be an additionally introduced bit, which may have two different values, and the two different values may specify two remaining Tx states. Alternatively, the second RRC parameter may be r-17 signaling. That is, the r-17 signaling is reused. The r-17 signaling has two different values, and the two different values may specify two remaining Tx states. Optionally, the indication signaling may be the indication signaling in Solution 1 or may be a fifth indication signaling from the network device. Optionally, the fifth indication signaling indicates a carrier or frequency band on which Tx switching is to be preferentially performed during uplink switching. It should be understood that the function of the second RRC parameter and / or the fifth indication signaling in Solution 2 is to specify one of multiple remaining Tx states. The specific implementation of the indication is not limited.
[0251]
[0282] With respect to the network device, it should be understood that the network device determines the radio frequency chain state of the terminal device during uplink transmission based on a combination of carriers supported by the terminal device that may be used for parallel transmission and / or in accordance with a predetermined selection policy. Optionally, when two or more radio frequency chain states of the terminal device during uplink transmission are determined based on a combination of carriers supported by the terminal device that may be used for parallel transmission and / or in accordance with a predetermined selection policy, the network device indicates one of the two or more radio frequency chain states to the terminal device to identify the radio frequency chain state of the terminal device during uplink transmission. For example, the network device transmits second RRC parameters and / or fifth indication signaling to the terminal device. The second RRC parameters and / or fifth indication signaling indicate one of the two or more radio frequency chain states.
[0252]
[0283] Optionally, in another example, the terminal device selects one Tx state from the remaining two Tx states in a predetermined manner (eg, solution 3 below).
[0253]
[0284] Optionally, in another example, the terminal device selects one of the two remaining Tx states based on the length of the uplink switching switching time, e.g., the Tx state with the shorter switching time is selected.
[0254]
[0285] Similarly, if parallel transmission is supported only in two frequency bands, only the Tx states shown in Figures 15 and 16 remain among the possible Tx states that support the current uplink transmission in Figures 9 and 10. Figure 9 corresponds to Figure 15, and Figure 10 corresponds to Figure 16. Those skilled in the art can clearly know the remaining Tx states in each case based on the marks in Figures 15 and 16. The details will not be described again here.
[0255]
[0286] Optionally, if parallel transmission in more than one frequency band is supported, only the Tx states shown in Figures 17 and 18 remain among the possible Tx states supporting the current uplink transmission in Figures 5 and 6; and only the Tx states shown in Figures 19 and 20 remain among the possible Tx states supporting the current uplink transmission in Figures 9 and 10. Likewise, the details will not be described one by one again.
[0256]
[0287] 17 to 20, it can be seen that there are two or more Tx states remaining (i.e., at least two Tx states remaining), and therefore, referring to other Tx state selection methods, one Tx state must be ultimately selected from the at least two remaining Tx states.
[0257]
[0288] The above describes in detail the process by which a terminal device selects a Tx state based on the carriers (or the frequency bands to which the carriers belong) supported for parallel transmission. Then, the following describes the process by which a terminal device selects a Tx state according to a predetermined selection policy.
[0258]
[0289] (2) The terminal device excludes some of the Tx states from the plurality of Tx states according to a predetermined selection policy.
[0259]
[0290] For the predetermined selection policy, see the description of step 630. The details will not be repeated here.
[0260]
[0291] An example of excluding some Tx states from a plurality of possible Tx states using a predetermined selection policy is given below. An example of excluding some Tx states from a plurality of possible Tx states using a predetermined selection policy is given below.
[0261]
[0292] (a) For example, it is assumed that a given selection policy includes one or more of the following:
[0262]
[0293] Tx switching involves the fewest carriers (or involves the fewest frequency bands); The carriers involved in Tx switching should not include carriers on which there is no transmission; or Carriers involved in Tx switching do not include carriers where no Tx is present.
[0263]
[0294] After the above-mentioned predetermined selection policy is used for selection, some Tx states are excluded in FIGS. 5 and 6 or 9 and 10.
[0264]
[0295] Figure 5 or Figure 9 are used as examples. State 3 may be excluded.
[0265]
[0296] The uplink switching corresponding to Tx state 3 in Figures 5 and 9 involves three frequency bands (or three carriers), and the number of involved frequency bands (or carriers) is not minimal; The carriers involved in uplink switching corresponding to Tx state 3 in Figures 5 and 9 include carriers that have no Tx during the most recent uplink transmission (e.g., carrier C); or The carrier involved in the uplink switching corresponding to Tx state 3 in Figures 5 and 9 is a carrier with no uplink transmission, for example, no transmission on carrier C in both the most recent previous uplink transmission and the current uplink transmission.
[0266] Therefore, Tx state 3 in Figures 5 and 9 is excluded. Optionally, Tx state 1 and Tx state 2 may remain.
[0267]
[0297] Figure 6 or Figure 10 are used as examples. State 1 and / or Tx state 4 may be excluded.
[0268]
[0298] The uplink switching corresponding to Tx State 1 in Figures 6 and 10 involves three frequency bands (or carriers), the uplink switching corresponding to Tx State 4 in Figure 10 involves four frequency bands (or carriers), and both Tx States 2 and 3 in Figures 6 and 10 involve only two frequency bands (or carriers). Therefore, if a policy is used that minimizes the number of frequency bands involved in uplink switching, Tx States 1 and / or 4 may be excluded. Optionally, Tx States 2 and 3 may remain.
[0269]
[0299] Figure 6 or Figure 10 are used as examples. State 4 may be excluded.
[0270]
[0300] The carriers involved in uplink switching corresponding to Tx State 4 in FIG. 10 include carriers with no Tx during the most recent uplink transmission (e.g., carriers in frequency band D). In other words, uplink switching corresponding to Tx State 4 includes carriers with no transmission. For example, there is no transmission on carriers in frequency band D between the most recent uplink transmission and the current uplink transmission. Therefore, State 4 may be excluded if a policy is used that specifies that carriers involved in uplink switching should not include carriers with no transmission, or if a policy is used that specifies that carriers involved in uplink switching should not include carriers with no transmission. Optionally, Tx State 1, Tx State 2, and Tx State 3 may remain.
[0271]
[0301] (b) For example, it is assumed that a given selection policy is that Tx switching should involve switching the minimum number of Txs.
[0272]
[0302] Figure 5 or Figure 9 are used as examples, in this case only Tx state 2 remains.
[0273]
[0303] Uplink switching corresponding to only Tx state 2 involves switching only one Tx, while uplink switching corresponding to all other Tx states involves switching two Txs. In this case, from the perspective of the remaining Tx states, there is only one Tx state 2, so no further screening needs to be performed with other Tx state selection methods.
[0274]
[0304] Figure 6 or Figure 10 is used as an example. In this case, there are two remaining Tx states: Tx state 2 and Tx state 3.
[0275]
[0305] The reason is as follows: only Tx state 2 and Tx state 3 are involved in switching only one Tx, while all other Tx states are involved in switching two Txs.
[0276]
[0306] After the exclusion is performed according to the predetermined selection policy (a) or (b), there may still be several Tx states remaining, in which case one Tx state needs to be selected from the remaining Tx states by referring to another Tx state selection method.
[0277]
[0307] The terminal device may also select one Tx state from the remaining Tx states based on indication signaling from the network device and / or RRC parameters.
[0278]
[0308] For example, in implementations, the same indication signaling is used for the three frequency band scenario of Figures 5 and 6 and for the four frequency band scenario of Figures 9 and 10.
[0279]
[0309] For example, the r-17 signaling is reused. For example, the meaning of the two values of the r-17 signaling is redefined as follows: If there are no other carriers for uplink transmission, the transmission is performed by using one Tx or two Txs on the carrier for one-port transmission (e.g., the carrier of frequency band A in FIG. 5), regardless of the number of carriers involved in switching. That is, if the value of r-17 signaling is 2T, it indicates that the transmission is performed by using two Txs on the carrier for one-port transmission; or, if the value of r-17 signaling is 1T, it indicates that the transmission is performed by using one Tx on the carrier for one-port transmission.
[0280]
[0310] With respect to Figure 5 or Figure 9, if the value of r-17 signaling is 1T, Tx state 1 is excluded from the remaining Tx states; or if the value of r-17 signaling is 2T, Tx state 2 and Tx state 3 are excluded from the remaining Tx states.
[0281]
[0311] For example, in another implementation, different indication signaling is used for the three frequency band scenario of Figures 5 and 6 and for the four frequency band scenario of Figures 9 and 10.
[0282]
[0312] For example, for Figures 5 and 9, the r-17 signaling is reused. If the value of the r-17 signaling is 1T, Tx state 1 is excluded; or if the value of the r-17 signaling is 2T, Tx state 2 is excluded.
[0283]
[0313] 6 and 10, a new indication signaling, for example, a fifth indication signaling, is introduced. The fifth indication signaling indicates a carrier or frequency band on which Tx switching is preferentially performed during uplink switching. If the fifth indication signaling indicates preferential switching of 1 Tx from a carrier in frequency band B, Tx state 2 is excluded.
[0284]
[0314] For example, in yet another implementation, there is the same and different signaling for the three frequency band scenario of Figures 5 and 6 and for the four frequency band scenario of Figures 9 and 10.
[0285]
[0315] For example, if a predetermined selection policy is that the carrier involved in Tx switching should not be involved in a carrier with no transmission or no Tx, Tx state 1 and Tx state 2 remain for FIGS. 5 and 9; and Tx state 1, Tx state 2, and Tx state 3 remain for FIGS. 6 and 10. In this case, the r-17 signaling may be reused first. If the value of the r-17 signaling is 2T, Tx state 1 is selected in each of FIGS. 5, 6, 9, and 10. If the value of the r-17 signaling is 1T, Tx state 2 may be directly selected in FIGS. 5 and 9. However, in FIGS. 6 and 10, a new instruction signaling needs to be introduced to select between Tx state 2 and Tx state 3. For example, whether to switch Tx from frequency band B or frequency band C is determined based on the instruction of the fifth instruction signaling.
[0286]
[0316] Optionally, in some other implementations, the r-17 signaling may alternatively be reused for the selection first. If there are still more than one Tx state remaining after the selection is performed by using the r-17 signaling, the selection is performed with reference to the combination of carriers (or frequency bands) supported by the terminal device that may be used for parallel transmission, a predetermined selection policy, and the introduction of additional indication signaling to finally determine one Tx state as the Tx state after uplink switching.
[0287]
[0317] Optionally, in the above-mentioned predetermined selection policy, the switching time of the uplink switching can satisfy a predetermined condition.
[0288]
[0318] For example, the predetermined condition may be that the switching time is shortest.
[0289]
[0319] For example, if the switching time between frequency band A and frequency band B is the shortest, i.e., shorter than the switching time between any other two frequency bands, In the three frequency band scenario in Figure 5, Tx state 3 may be excluded, In the three frequency band scenario in Figure 6, Tx state 4 may be excluded, In the four frequency band scenario in Figure 9, Tx states 3 and 4 may be excluded, In the four frequency band scenario of FIG. 10, Tx state 2 and Tx state 4 may be omitted.
[0290]
[0320] In Figure 5, Tx state 3 involves switching between frequency band B and frequency band C. In Figure 6, Tx state 2 involves switching between frequency band A and frequency band C. In Figure 9, Tx state 3 involves switching between frequency band B and frequency band C, and Tx state 4 involves switching between frequency band B and frequency band D. In Figure 10, Tx state 2 involves switching between frequency band A and frequency band C, and Tx state 4 involves switching between frequency band B and frequency band D, or frequency band C and frequency band D. However, the switching time required for switching is greater than the switching time between frequency band A and frequency band B. Therefore, the Tx state is excluded.
[0291]
[0321] For example, the predetermined condition may be that the switching time is equal to or less than a specified threshold.
[0292]
[0322] Based on a predetermined condition, the terminal device excludes, from among a plurality of possible Tx states, Tx states whose switching times are equal to or greater than a specified threshold.
[0293] For example, if the switching time between frequency band A and frequency band C is greater than or equal to a specified threshold, Tx state 2 in FIG. 6 for the three frequency band scenario is excluded, and Tx state 2 in FIG. 10 for the four frequency band scenario is excluded.
[0294] If the switching time between frequency band B and frequency band C is greater than or equal to a specified threshold, Tx state 3 in Figure 5 for the three frequency band scenario is ruled out, and Tx state 3 in Figure 9 for the four frequency band scenario is ruled out.
[0295]
[0323] Optionally, if there are still at least two Tx states remaining after exclusion based on switching time, further screening (i.e. exclusion) may be performed with reference to other Tx state selection methods.
[0296]
[0324] For example, if the switching times of the two remaining Tx states are the same or less than a predetermined threshold, the selection is performed by reusing the r-17 signaling, by additionally introducing a new indication signaling, or according to other predetermined selection policies (e.g., the number of carriers involved in uplink switching is minimal, or the uplink switching does not involve carriers with no transmission). For example, in a four-frequency band scenario, if the two remaining Tx states are Tx state 3 and Tx state 4, the selection is further performed by using a fifth indication signaling. The fifth indication signaling indicates the carrier on which Tx switching is preferentially performed. Then, one Tx state is selected from Tx state 3 and Tx state 4. As another example, in a four-frequency band scenario, if the two remaining Tx states are Tx state 1 and Tx state 2, the r-17 signaling may alternatively be reused to select one Tx state from the two Tx states.
[0297]
[0325] Based on the description of the above embodiments, it can be seen that multiple policies included in a predetermined selection policy may optionally be used in any combination. For example, a policy with the shortest switching time may be used in combination with a policy with the smallest number of carriers involved, or a policy in which carriers without Txes are not involved in uplink switching. For example, a policy with the shortest switching time may be used in combination with a policy with the smallest number of carriers involved, or a policy in which uplink switching is not involved in carriers without Txes. Alternatively, multiple policies may be combined with a Tx state selection method other than the predetermined selection policy provided in the present application. For example, one or more policies may be used in combination with R-17 signaling or additionally introduced indication signaling.
[0298]
[0326] Furthermore, in embodiments where various Tx state selection methods are combined to determine the Tx state, the order in which the various Tx state selection methods are used is not limited.
[0299]
[0327] For example, the selection may be first performed based on one or more policies in a predetermined selection policy. If at least two Tx states remain, the r-17 signaling may be reused, or a newly introduced indication signaling may be used to perform the selection from among the remaining Tx states. Alternatively, the r-17 signaling may be reused first for the selection. If at least two Tx states remain, the selection may be performed from among the remaining Tx states by using one or more policies in a predetermined selection policy. Specific examples will not be described one by one.
[0300]
[0328] To assist the terminal device in determining the Tx state after uplink switching while reducing the indication overhead for specifically configuring RRC parameters and / or indication signaling, the terminal device preferentially determines the Tx state after uplink switching by using supported carrier combinations for parallel transmission and / or a predetermined selection policy. If two or more Tx states remain after some Tx states are excluded from the multiple possible Tx states according to the predetermined selection policy and / or based on the supported carrier combinations for parallel transmission, one Tx state is selected from the remaining Tx states by referring to the indication signaling and / or RRC parameters configured by the network device.
[0301]
[0329] Solution 3
[0330] In a predetermined manner, one Tx state is selected from among a plurality of possible Tx states to be used as the Tx state after uplink switching.
[0302]
[0331] That is, in Solution 3, one Tx state is identified in a predetermined way as the Tx state after uplink switching.
[0303]
[0332] For example, in the three-frequency band scenarios shown in Figures 5 and 6, Tx State 1 is predetermined as the Tx state after uplink switching; Tx State 2 is predetermined as the Tx state after uplink switching; or Tx State 3 is predetermined as the Tx state after uplink switching. If Tx State 1 is selected, uplink transmission performance may be better ensured. If Tx State 2 in Figure 5 or Tx State 2 or Tx State 3 in Figure 6 are selected, the number of Txs involved in uplink switching is minimized.
[0304]
[0333] For example, with respect to the four frequency band scenarios shown in FIGS. 9 and 10, Tx State 1, Tx State 2, Tx State 3, or Tx State 4 may be predetermined as the Tx state after uplink switching. If Tx State 1 is selected, uplink transmission performance may be better ensured. If Tx State 2 in FIG. 9 or Tx State 2 or Tx State 3 in FIG. 10 is selected, the number of Txs involved in uplink switching is minimized. Alternatively, in the four frequency band scenario, the Tx state predetermined in the three frequency band scenario may still be used. That is, one of Tx State 1, Tx State 2, or Tx State 3 is selected. Solutions in various scenarios are integrated.
[0305]
[0334] It can be seen that in Solution 3, the Tx state is determined in a predetermined manner as the Tx state after uplink switching, and Solution 3 does not need to be used in combination with another Tx state determination method, and by using Solution 3, the signaling overhead for the terminal device to determine the Tx state can be reduced.
[0306]
[0335] Optionally, Solution 3 may alternatively be used in combination with other Tx state determination methods. For example, if at least two Tx states remain after selection is performed using other methods, and the remaining Tx states include the Tx state specified by the predetermined method, the Tx state specified by the predetermined method may be used as the Tx state after uplink switching. For example, in a three-band scenario, if the remaining Tx states after selection is performed according to a predetermined selection policy are Tx state 2 and Tx state 3, and the predetermined Tx state after uplink switching is Tx state 2, Tx state 3 is excluded, and Tx state 2 becomes the Tx state after uplink switching.
[0307]
[0336] Solution 4
[0337] The Tx state after uplink switching is determined based on the type of uplink transmission. Alternatively, after some Tx states are eliminated from among multiple possible Tx states based on the type of uplink transmission, the Tx state after uplink switching is determined from among the remaining Tx states with reference to another Tx state selection method.
[0308]
[0338] For example, if the type of uplink transmission is a scheduling request (SR), physical random access channel (PRACH), physical uplink control channel (PUCCH), or physical uplink shared channel (PUSCH) and its transmitted precoding matrix indicator (TPMI) is [1,0], there is one Tx on the carrier to be used for this uplink transmission. Therefore, Tx state 1 may be excluded. In a scenario with three frequency bands, one Tx state is selected from Tx state 2 and Tx state 3, as shown in other solutions. In a scenario with four frequency bands, one Tx state is selected from Tx state 2, Tx state 3, and Tx state 4, as shown in other solutions.
[0309]
[0339] For example, if the type of uplink transmission is a sounding reference signal (SRS) or PUSCH with TPMI of [1,0] or [1,1], or a configured grant (CG) PUSCH, there are two Txs on the carrier used during this uplink transmission. In this case, only one Tx state 1 remains, regardless of whether it is a three-frequency band scenario or a four-frequency band scenario.
[0310]
[0340] Using one of the aforementioned solutions 1 to 4, for example, solution 1, solution 2, solution 3, or solution 4, Combinations of some of these solutions, such as a combination of Solution 1 and Solution 2, a combination of Solution 2 and Solution 3, or a combination of Solution 2, Solution 3 and Solution 4, Combining different implementations in one solution, e.g., combining various predefined selection policies in solution 2, or A combination of implementations of different solutions, e.g., a combination of various predefined selection policies in Solution 2 and Solution 3, may allow the network device and the terminal device to align the Tx state of the terminal device with the Tx state during the current uplink transmission.
[0311]
[0341] In the embodiments of the present application, unless otherwise specified or there is no logical contradiction, the terms and / or descriptions among different embodiments are consistent and may be cross-referenced, and the technical features in different embodiments may be combined based on their internal logical relationships to form new embodiments. The above method embodiments may be implemented individually or in combination.
[0312]
[0342] The above describes in detail the uplink transmission method provided in the present application, and the following describes the communication device provided in the present application.
[0313]
[0343] 21 is a schematic block diagram of a communication device according to the present application. As shown in FIG. 21, the communication device 1000 includes a processing unit 1100, a receiving unit 1200, and a transmitting unit 1300.
[0314]
[0344] Optionally, the communication device 1000 may correspond to a terminal device in an embodiment of the present application.
[0315]
[0345] In implementation, the units in the communication device 1000 are configured to realize the following functions:
[0346] The receiving unit 1200 is configured to receive first information, the first information instructing the communication device to perform one-antenna-port uplink transmission in a first carrier, and the communication device supports uplink switching performed in at least three frequency bands.
[0316]
[0347] The processing unit 1100 is configured to determine a radio frequency chain state after uplink switching based on an indication signaling and / or a first radio resource control (RRC) parameter in at least three radio frequency chain states supporting uplink transmission.
[0317]
[0348] The transmitting unit is configured to transmit an uplink transmission in a radio frequency chain state after the uplink switching.
[0318]
[0349] Optionally, in an embodiment, the communications device is configured to perform uplink switching on at least three carriers, the at least three carriers belonging to three frequency bands; a radio frequency chain state during the latest uplink transmission is a first state or a second state, the first state being one in which there are two radio frequency chains on the second carrier, and the second state being one in which there is one radio frequency chain on each of the second carrier and the third carrier; The processing unit 1100: and configured to determine a state after uplink switching based on the first indication signaling and the first RRC parameter in at least three radio frequency chain states supporting uplink transmission; When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; If the first RRC parameter has a second value and the first indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; or or if the first RRC parameter has a second value and the first indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or The processing unit 1100 is configured to: determine a state after uplink switching based on the second indication signaling in at least three radio frequency chain states supporting uplink transmission; the second indication signaling has at least three values, and a first value, a second value, and a third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively; or The processing unit 1100: configured to determine a state after uplink switching based on a first RRC parameter in at least three radio frequency chain states supporting uplink transmission; The first RRC parameter has at least three values, and the first value, the second value, and the third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
[0319]
[0350] The first radio frequency chain state, the second radio frequency chain state, and the third radio frequency chain state all support one antenna port uplink transmission to be performed on the first carrier.
[0351] Optionally, in an embodiment, the communications device is configured to perform uplink switching on at least four carriers, the at least four carriers belonging to four frequency bands; a radio frequency chain state during the latest uplink transmission is a first state or a second state, the first state being one in which there are two radio frequency chains on the second carrier, and the second state being one in which there is one radio frequency chain on each of the second carrier and the third carrier; The processing unit 1100: and configured to determine a radio frequency chain state after the uplink switching based on the third indication signaling and the first RRC parameter in at least three radio frequency chain states supporting uplink transmission; When the first RRC parameter has a first value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; When the first RRC parameter has a first value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or or if the first RRC parameter has a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; or When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; When the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or If the first RRC parameter has a second value and the third indication signaling has a third value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; The processing unit 1100: and configured to determine a radio frequency chain state after uplink switching based on the fourth indication signaling in at least three radio frequency chain states supporting uplink transmission; the fourth indication signaling has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively; or The processing unit 1100: configured to determine a radio frequency chain state after uplink switching based on a first RRC parameter in at least three radio frequency chain states supporting uplink transmission; The first RRC parameter has at least four values, and the first value, the second value, the third value, and the fourth value of the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively.
[0320]
[0352] The first radio frequency chain state, the second radio frequency chain state, the third radio frequency chain state, and the fourth radio frequency chain state all support one antenna port uplink transmission to be performed on the first carrier.
[0321]
[0353] Optionally, in other implementations, units within the communication device 1000 are configured to implement the following functions:
[0354] The receiving unit 1200 is configured to receive first information, the first information instructing the communication device to perform one-antenna-port uplink transmission in a first carrier, and the communication device supports uplink switching performed in at least three frequency bands.
[0322]
[0355] The processing unit 1100 is configured to determine a radio frequency chain state after uplink switching according to a predetermined selection policy among at least two radio frequency chain states supporting uplink transmission and / or based on a combination of carriers supported for parallel transmission, wherein the predetermined selection policy is: The number of carriers involved in uplink switching is minimal, Uplink switching means that uplink transmission does not include non-existent carriers; Uplink switching is performed when a radio frequency chain does not contain a non-existent carrier, or The uplink switching time must meet the specified conditions. Contains one or more of the following:
[0323]
[0356] The transmitting unit 1300 is configured to transmit an uplink transmission in a radio frequency chain state after uplink switching.
[0324]
[0357] Optionally, in an embodiment, the processing unit 1100: When two or more radio frequency chain states are determined according to a predetermined selection policy in at least two radio frequency chain states supporting uplink transmission and / or based on a combination of supported carriers for parallel transmission, the radio frequency chain state after uplink switching is further configured to determine based on a fifth indication signaling and / or a second RRC parameter in the two or more radio frequency chain states.
[0325]
[0358] Optionally, in an embodiment, the fifth indication signaling indicates a carrier or frequency band that needs to be preferentially switched in the uplink switching.
[0326]
[0359] Optionally, in an embodiment, the predetermined condition includes a minimum switching time for uplink switching, or a switching time for uplink switching that is equal to or less than a specified threshold.
[0327]
[0360] In the above implementation, the receiving unit 1200 and the transmitting unit 1300 may alternatively be integrated into one transceiver unit having both receiving and transmitting functions, which is not a limitation of the present invention.
[0328]
[0361] In an embodiment in which the communication apparatus 1000 corresponds to a terminal device, the processing unit 1100 is configured to perform processing and / or operations other than transmitting and receiving operations implemented in the terminal device, the receiving unit 1200 is configured to perform receiving operations performed by the terminal device, and the transmitting unit 1300 is configured to perform transmitting operations performed by the terminal device.
[0329]
[0362] For example, in FIG. 11, the receiving unit 1200 performs an operation of receiving first information in step 510; the processing unit 1100 performs step 520; and the transmitting unit 1300 performs an operation of sending uplink transmission in step 530.
[0330]
[0363] For another example, in FIG. 12 , the receiving unit 1200 performs an operation of receiving first information in step 610; the processing unit 1100 performs step 620; and the transmitting unit 1300 performs an operation of sending an uplink transmission in step 630.
[0331]
[0364] Optionally, the communication device 1000 may correspond to a network device in an embodiment of the present application.
[0332]
[0365] In implementation, the units in the communication device 1000 are configured to perform the following functions:
[0333]
[0366] The transmitting unit 1300 is configured to: transmit first information, the first information instructing a terminal device to perform one-antenna-port uplink transmission in a first carrier, and the terminal device supports uplink switching performed in at least three frequency bands; and The transmitting unit 1300 is configured to: transmit first RRC parameters and first indication signaling to a terminal device, where the first RRC parameters and the first indication signaling are used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission.
[0334]
[0367] The receiving unit 1200 is configured to receive an uplink transmission sent by a terminal device in a radio frequency chain state after uplink switching.
[0335]
[0368] Optionally, in an embodiment, the terminal device is configured to perform uplink switching on at least three carriers, the at least three carriers belonging to three frequency bands; The transmitting unit 1300: The method is configured to transmit first RRC parameters and first indication signaling to a terminal device, the first RRC parameters and the first indication signaling being used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission; When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; If the first RRC parameter has a second value and the first indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; or or if the first RRC parameter has a second value and the first indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or The transmitting unit 1300: and configured to transmit second instruction signaling to the terminal device, the second instruction signaling being used by the terminal device to determine a radio frequency chain state after uplink switching among at least three radio frequency chain states supporting uplink transmission; the second indication signaling has at least three values, and a first value, a second value, and a third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively; or The transmitting unit 1300: The method is configured to transmit first RRC parameters to a terminal device, the first RRC parameters being used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission; The first RRC parameter has at least three values, and the first value, the second value, and the third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
[0336]
[0369] The first radio frequency chain state, the second radio frequency chain state, and the third radio frequency chain state all support one antenna port uplink transmission to be performed on the first carrier.
[0337]
[0370] Optionally, in an embodiment, the terminal device is configured to perform uplink switching on at least four carriers, the at least four carriers belonging to four frequency bands; The transmitting unit 1300: The method is configured to transmit first RRC parameters and third indication signaling to a terminal device, wherein the first RRC parameters and the third indication signaling are used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission; When the first RRC parameter has a first value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; When the first RRC parameter has a first value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or or if the first RRC parameter has a second value and the third indication signaling has a second value, the radio frequency chain state after uplink switching is a fourth radio frequency chain state; or When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is the first radio frequency chain state; When the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is the second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or If the first RRC parameter has a second value and the third indication signaling has a third value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; The transmitting unit 1300: and configured to send fourth instruction signaling to the terminal device, the fourth instruction signaling being used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission; the fourth indication signaling has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively; or The transmitting unit 1300: The method is configured to transmit first RRC parameters to a terminal device, the first RRC parameters being used by the terminal device to determine a radio frequency chain state after uplink switching in at least three radio frequency chain states supporting uplink transmission; The first RRC parameter has at least four values, and the first value, the second value, the third value, and the fourth value of the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively.
[0338]
[0371] The first radio frequency chain state, the second radio frequency chain state, the third radio frequency chain state, and the fourth radio frequency chain state all support one antenna port uplink transmission to be performed on the first carrier.
[0339]
[0372] In another implementation, the units in the communication device 1000 are configured to perform the following functions:
[0373] The transmitting unit 1300 is configured to transmit first information, the first information instructing the terminal device to perform one-antenna-port uplink transmission in a first carrier, the terminal device supporting uplink switching performed in at least three frequency bands.
[0340]
[0374] The processing unit 1100 is configured to determine a radio frequency chain state of the terminal device during uplink transmission according to a predetermined selection policy and / or based on a combination of carriers supported by the terminal device and associated with parallel transmission, the radio frequency chain state during uplink transmission being a radio frequency chain state after uplink switching, the predetermined selection policy being: The number of carriers involved in uplink switching is minimal, Uplink switching means that uplink transmission does not include non-existent carriers; Uplink switching is performed when a radio frequency chain does not contain a non-existent carrier, or The uplink switching time must meet the specified conditions. Contains one or more of the following:
[0341]
[0375] The receiving unit 1200 is configured to receive an uplink transmission sent by a terminal device in a radio frequency chain state after uplink switching.
[0342]
[0376] Optionally, in an embodiment, the sending unit 1300: configured to send second RRC parameters and / or fifth indication signaling to the terminal device when the processing unit 1100 determines, according to a predetermined selection policy and / or based on a combination of carriers supported by the terminal device and associated with parallel transmission, a state of two or more radio frequency chains of the terminal device during uplink transmission; The second RRC parameter and / or the fifth indication signaling specifies one of two or more radio frequency chain states of the terminal device that should be used as the radio frequency chain state during uplink transmission.
[0343]
[0377] Optionally, in an embodiment, the fifth indication signaling indicates a carrier or frequency band that needs to be preferentially switched in the uplink switching.
[0344]
[0378] Optionally, in an embodiment, the predetermined condition includes a minimum switching time for uplink switching, or a switching time for uplink switching that is equal to or less than a specified threshold.
[0345]
[0379] In the above implementation, the receiving unit 1200 and the transmitting unit 1300 may alternatively be integrated into one transceiver unit having both receiving and transmitting functions, which is not a limitation of the present invention.
[0346]
[0380] In an embodiment in which the communication apparatus 1000 corresponds to a network device, the processing unit 1100 is configured to perform processing and / or operations other than transmitting and receiving operations implemented in the network device, the receiving unit 1200 is configured to perform receiving operations performed by the network device, and the transmitting unit 1300 is configured to perform transmitting operations performed by the network device.
[0347]
[0381] For example, in Fig. 11, the transmitting unit 1300 is configured to perform an operation of transmitting first information in step 510; the receiving unit 1200 is configured to perform an operation of receiving the first information in step 510. In Fig. 12, the transmitting unit 1300 is configured to perform an operation of transmitting first information in step 610; the receiving unit 1200 is configured to perform an operation of receiving uplink transmission in step 630. Furthermore, the processing unit 1100 is configured to perform an operation of determining radio frequency chain states after uplink switching in an embodiment of a method performed by the network device.
[0348]
[0382] 22 is a structural diagram of a communication device according to the present application. As shown in FIG. 22, the communication device 10 includes one or more processors 11, one or more memories 12, and one or more communication interfaces 13. The processor 11 is configured to control the communication interfaces 13 to send and receive signals, the memory 12 is configured to store computer programs, and the processor 11 is configured to call and execute the computer programs from the memory 12, enabling the communication device 10 to perform the processes performed by a terminal device or a network device in the method embodiments of the present application.
[0349]
[0383] For example, the processor 11 may have the functionality of the processing unit 1100 shown in Figure 21, and the communication interface 13 may have the functionality of the receiving unit 1200 and / or the transmitting unit 1300 shown in Figure 21. Specifically, the processor 11 may be configured to perform processes or operations performed within a communication device, and the communication interface 13 is configured to perform transmitting and / or receiving operations performed by the communication device.
[0350]
[0384] Optionally, in implementation, the communication device 10 may be a terminal device in the embodiment of the method. In this embodiment, the communication interface 13 may be a transceiver of the terminal device. The transceiver may include a receiver and / or a transmitter. Optionally, the processor 11 may be a baseband device of the terminal device, and the communication interface 13 may be a radio frequency device.
[0351]
[0385] In another implementation, the communication device 10 may be a chip (or chip system) mounted on a terminal device, and in this implementation, the communication interface 13 may be an interface circuit or an input / output interface.
[0352]
[0386] Optionally, in an implementation, the communication device 10 may be a network device in the method embodiment. In this implementation, the communication interface 13 may be a transceiver of the network device. The transceiver may include a receiver and / or a transmitter. Optionally, the processor 11 may be a baseband device of the network device, and the communication interface 13 may be a radio frequency device.
[0353]
[0387] In another implementation, the communication device 10 may be a chip (or chip system) mounted on a network device, and in this implementation, the communication interface 13 may be an interface circuit or an input / output interface.
[0354]
[0388] In FIG. 22, a dashed box behind a component (eg, a processor, memory, or a communication interface) indicates that it may be at least one component.
[0355]
[0389] Additionally, the present application further provides a computer-readable storage medium that stores computer instructions that, when executed on a computer, enable the computer to perform the actions and / or processes performed by the terminal device in the method embodiments of the present application.
[0356]
[0390] The present application further provides a computer-readable storage medium having stored thereon computer instructions that, when executed on a computer, enable the computer to perform the actions and / or processes performed by the network device in the method embodiments of the present application.
[0357]
[0391] The present application further provides a computer program product, which includes computer program code or instructions that, when executed on a computer, enable the computer to perform the operations and / or processes performed by a terminal device in the method embodiments of the present application.
[0358]
[0392] The present application further provides a computer program product, which includes computer program code or instructions that, when executed on a computer, enable the computer to perform the operations and / or processes performed by the network device in the method embodiments of the present application.
[0359]
[0393] The present application further provides a chip, the chip including a processor. A memory configured to store a computer program is located independently of the chip. The processor is configured to execute the computer program stored in the memory, enabling a communications device incorporating the chip to perform operations and / or processes performed by a terminal device in some method embodiments.
[0360]
[0394] The present application further provides a chip, the chip including a processor. A memory configured to store a computer program is located independently of the chip. The processor is configured to execute the computer program stored in the memory, enabling a communications device incorporating the chip to perform the operations and / or processes performed by a network device in some method embodiments.
[0361]
[0395] Furthermore, the chip may include a communication interface, which may be an input / output interface, an interface circuit, etc. Furthermore, the chip may include a memory.
[0362]
[0396] Optionally, there may be one or more processors, there may be one or more memories, and there may be one or more memories.
[0363]
[0397] The present application further provides a communication device (which may be, for example, a chip or chip system) including a processor and a communication interface. The communication interface is configured to receive (i.e., input) data and / or information and send the received data and / or information to the processor. The processor processes the data and / or information. The communication interface is further configured to output (i.e., output) data and / or information obtained through processing by the processor, thereby enabling operations and / or processes performed by a terminal device in some method embodiments.
[0364]
[0398] The present application further provides a communication device (which may be, for example, a chip or chip system) including a processor and a communication interface. The communication interface is configured to receive (i.e., input) data and / or information and send the received data and / or information to the processor. The processor processes the data and / or information. The communication interface is further configured to output (i.e., output) data and / or information obtained through processing by the processor, thereby enabling the operations and / or processes performed by the network device in some method embodiments to be performed.
[0365]
[0399] The present application further provides a communications device including at least one processor coupled to at least one memory, the at least one processor configured to execute computer programs or instructions stored in the at least one memory, such that the communications device performs operations and / or processes performed by a terminal device in any method embodiment.
[0366]
[0400] The present application further provides a communications device including at least one processor coupled to at least one memory, the at least one processor configured to execute computer programs or instructions stored in the at least one memory, enabling the communications device to perform operations and / or processes performed by a network device in any method embodiment.
[0367]
[0401] The present application further provides a wireless communication system including a terminal device according to the embodiment of the method of the present application. Optionally, the wireless communication system may further include a network device according to the embodiment of the method.
[0368]
[0402] The processor in the embodiments of the present application may be an integrated circuit chip and have signal processing capabilities. In the implementation process, the steps in the aforementioned method embodiments can be completed by using hardware integrated logic circuitry within the processor or by using instructions in the form of software. The processor may be a general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic device, a discrete gate or transistor logic device, or a discrete hardware component. The general-purpose processor may be a microprocessor, or the processor may be any conventional processor, etc. The steps of the methods disclosed in the embodiments of the present application may be directly presented as being performed and completed by a hardware coding processor, or may be performed and completed by a combination of hardware and software modules within the coding processor. The software modules may be located in storage media known in the art, such as random access memory, flash memory, read-only memory, programmable read-only memory, electrically erasable programmable memory, or registers. The storage medium is located in a memory, and the processor reads the information in the memory and completes the steps of the aforementioned method in combination with the processor's hardware.
[0369]
[0403] The memory in the embodiments of the present application may be volatile or nonvolatile memory, or may include both volatile and nonvolatile memory. The nonvolatile memory may be read-only memory (ROM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), or flash memory. The volatile memory may be random access memory (RAM), used as an external cache. By way of example and not limitation, many forms of RAM are available, such as static random access memory (SRAM), dynamic random access memory (DRAM), synchronous dynamic random access memory (SDRAM), double data rate synchronous dynamic random access memory (DDR SDRAM), enhanced synchronous dynamic random access memory (ESDRAM), synchlink dynamic random access memory (SLDRAM), and direct Rambus random access memory (DRRAM). It should be noted that memory in the methods and systems herein is intended to include, but is not limited to, these and any other suitable types of memory.
[0370]
[0404] All or part of the methods provided in the above embodiments may be implemented by software, hardware, firmware, or any combination thereof. When a method is implemented using software, all or part of the method may be embodied in the form of a computer program product. The computer program product may include one or more computer instructions. When the computer program instructions are loaded into a computer and executed, the procedures or functions according to the embodiments of the present application are performed in whole or in part. The computer may be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions may be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another. For example, the computer instructions may be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via wire (e.g., coaxial cable, optical fiber, or digital subscriber line (DSL)) or wireless (e.g., infrared, radio, microwave) methods. The computer-readable storage medium may be any available medium accessible to a computer or data storage device, such as a server or data center that integrates one or more available media.
[0371]
[0405] In order to clearly describe the technical solutions in the embodiments of the present application, terms such as "first" and "second" are used in the embodiments of the present application to distinguish between identical or similar items having essentially the same functions and effects. For example, the first indication signaling and the second indication signaling are merely used to distinguish between the descriptions of the indication signaling in two implementations. Those skilled in the art will understand that the terms "first" and "second" do not limit the quantity or time order. Furthermore, the terms "first" and "second" do not indicate a clear distinction. For example, the first indication signaling and the second indication signaling may be the same indication signaling.
[0372]
[0406] The term "and / or" in this application is merely a relation of association to describe related objects, and indicates that three relations may exist. For example, A and / or B may represent: only A is present, both A and B are present, or only B is present. A, B, and C may all be singular or plural, and are not limited.
[0373]
[0407] Those skilled in the art can recognize that, with respect to the units and algorithm steps in the examples described in the embodiments disclosed herein, the present application can be implemented by electronic hardware or a combination of computer software and electronic hardware. Whether a function is implemented by hardware or software depends on the specific application and the design constraints of the technical solution. Those skilled in the art may use various methods to implement the function for each specific application, but such implementation should not be considered to go beyond the scope of the present application.
[0374]
[0408] In some embodiments provided in the present application, it should be understood that the disclosed systems, devices, and methods may be implemented in other ways. For example, the device embodiments described above are merely examples. For example, the division into units is merely a logical division of function, and other divisions may be used in actual implementation. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not implemented. Furthermore, the shown or discussed mutual couplings or direct couplings or communication connections may be implemented via some interface. Indirect couplings or communication connections between devices or units may be implemented in electrical, mechanical, or other forms.
[0375]
[0409] The units described as separate parts may or may not be physically separated, and the parts illustrated as units may or may not be physical units, i.e., they may be located in one place or distributed across multiple network units. All or part of the units may be selected based on actual requirements to achieve the objectives of the solutions in the embodiments.
[0376]
[0410] Furthermore, the functional units in the embodiments of the present application may be integrated into one processing unit, each unit may exist physically alone, or two or more units may be integrated into one unit.
[0377]
[0411] When a function is implemented in the form of a software functional unit and sold or used as an independent product, the function may be stored in a computer-readable storage medium. Based on this understanding, the technical solution in the present application essentially contributes to the prior art, or a part of the technical solution may be implemented in the form of a software product. A computer software product is stored in a storage medium and includes several instructions for instructing a computer device (which may be a personal computer, a server, a network device, etc.) to perform all or part of the steps of the method in the embodiments of the present application. The aforementioned storage medium includes any medium capable of storing program code, such as a USB flash drive, a removable hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.
[0378]
[0412] The above description is merely a specific implementation of the present application, and the scope of protection of the present application is not limited thereto. Any modifications or substitutions that can be easily understood by those skilled in the art within the technical scope disclosed in the present application shall be included in the scope of protection of the present application. Therefore, the scope of protection of the present application shall be subject to the scope of protection of the claims.
Claims
1. 1. An uplink transmission method comprising: receiving, by a terminal device, first information, the first information instructing the terminal device to perform one-antenna-port uplink transmission on a first carrier, the terminal device supporting uplink switching performed in at least three frequency bands; The terminal device determines a radio frequency chain state after the uplink switching based on indication signaling and / or first radio resource control (RRC) parameters in at least three radio frequency chain states supporting the uplink transmission; and the terminal device transmitting the uplink transmission in the radio frequency chain state after the uplink switching; A method comprising:
2. 10. The method of claim 1, wherein the terminal device is configured to perform uplink switching on at least three carriers, the at least three carriers belonging to three frequency bands; a radio frequency chain state during a most recent uplink transmission is a first state or a second state, the first state being one in which there are two radio frequency chains on a second carrier, and the second state being one in which there is one radio frequency chain on each of the second carrier and a third carrier; The step of the terminal device determining a radio frequency chain state after the uplink switching based on indication signaling and / or first radio resource control (RRC) parameters in at least three radio frequency chain states supporting the uplink transmission includes: The terminal device determines a state after the uplink switching based on first indication signaling and the first RRC parameter in the at least three radio frequency chain states supporting the uplink transmission, When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; If the first RRC parameter has a second value and the first indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; or or if the first RRC parameter is a second value and the first indication signaling has the second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or The step of the terminal device determining a radio frequency chain state after the uplink switching based on indication signaling and / or a first RRC parameter in at least three radio frequency chain states supporting the uplink transmission includes: The terminal device determines a state after the uplink switching based on second indication signaling in the at least three radio frequency chain states supporting the uplink transmission, the second indication signaling has at least three values, a first value, a second value, and a third value in the at least three values corresponding to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively; or The step of the terminal device determining a radio frequency chain state after the uplink switching based on indication signaling and / or a first RRC parameter in at least three radio frequency chain states supporting the uplink transmission includes: The terminal device determines a state after the uplink switching based on the first RRC parameters in the at least three radio frequency chain states supporting the uplink transmission, The method includes a step in which the first RRC parameter has at least three values, and a first value, a second value, and a third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
3. 10. The method of claim 1, wherein the terminal device is configured to perform uplink switching on at least four carriers, the at least four carriers belonging to four frequency bands; a radio frequency chain state during a most recent uplink transmission is a first state or a second state, the first state being one in which there are two radio frequency chains on a second carrier, and the second state being one in which there is one radio frequency chain on each of the second carrier and a third carrier; The step of the terminal device determining a radio frequency chain state after the uplink switching based on indication signaling and / or a first RRC parameter in at least three radio frequency chain states supporting the uplink transmission includes: The terminal device determines a state after the uplink switching based on a third indication signaling and the first RRC parameter in the at least three radio frequency chain states supporting the uplink transmission, When the first RRC parameter is a first value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; When the first RRC parameter has a first value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or or if the first RRC parameter is a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; or When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; When the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; If the first RRC parameter is a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or if the first RRC parameter has a second value and the third indication signaling has a third value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; The step of the terminal device determining a radio frequency chain state after the uplink switching based on indication signaling and / or a first RRC parameter in at least three radio frequency chain states supporting the uplink transmission includes: The terminal device determines a radio frequency chain state after the uplink switching based on a fourth indication signaling in the at least three radio frequency chain states supporting the uplink transmission, the fourth indication signaling has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively; or The step of the terminal device determining a radio frequency chain state after the uplink switching based on indication signaling and / or a first RRC parameter in at least three radio frequency chain states supporting the uplink transmission includes: determining, by the terminal device, a radio frequency chain state after the uplink switching based on a first RRC parameter in the at least three radio frequency chain states supporting the uplink transmission; the first RRC parameter has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively.
4. 1. An uplink transmission method comprising: receiving, by a terminal device, first information, the first information instructing the terminal device to perform one-antenna-port uplink transmission on a first carrier, the terminal device supporting uplink switching performed in at least three frequency bands; determining, by the terminal device, a radio frequency chain state after the uplink switching according to a predetermined selection policy among at least two radio frequency chain states supporting the uplink transmission and / or based on a combination of carriers supported for parallel transmission, wherein the predetermined selection policy comprises: the number of carriers involved in said uplink switching is minimal; the uplink switching does not include carriers on which no uplink transmission exists; The uplink switching does not include carriers for which no radio frequency chain exists; or the switching time of the uplink switching satisfies a predetermined condition; and the terminal device transmitting the uplink transmission in the radio frequency chain state after the uplink switching; A method comprising:
5. 5. The method according to claim 4, wherein the step of the terminal device determining a radio frequency chain state after the uplink switching according to a predetermined selection policy for at least two radio frequency chain states supporting the uplink transmission and / or based on a combination of carriers supported for parallel transmission comprises: When two or more radio frequency chain states are determined according to a predetermined selection policy in at least two radio frequency chain states supporting the uplink transmission and / or based on a combination of the carriers supported by the terminal device and for the parallel transmission, the method further includes a step in which the terminal device determines a radio frequency chain state after the uplink switching based on a fifth indication signaling and / or a second RRC parameter in the two or more radio frequency chain states.
6. The method of claim 5, wherein the fifth indication signaling indicates a carrier or frequency band that needs to be preferentially switched to in the uplink switching.
7. 7. The method according to claim 4, wherein the predetermined condition comprises that a switching time of the uplink switching is shortest or that a switching time of the uplink switching is equal to or less than a specified threshold.
8. 1. An uplink transmission method comprising: a step of a network device transmitting first information, the first information instructing a terminal device to perform one-antenna port uplink transmission in a first carrier, the terminal device supporting uplink switching performed in at least three frequency bands; a step of the network device transmitting first RRC parameters and / or indication signaling to the terminal device, the first RRC parameters and / or the indication signaling for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; and receiving, by the network device, the uplink transmission from the terminal device in the radio frequency chain state after the uplink switching; A method comprising:
9. 9. The method of claim 8, wherein the terminal device is configured to perform uplink switching on at least three carriers, the at least three carriers belonging to three frequency bands; The step of the network device sending first RRC parameters and / or indication signaling to the terminal device includes: a step of the network device transmitting the first RRC parameters and first indication signaling to the terminal device, the first RRC parameters and the first indication signaling being for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; If the first RRC parameter has a second value and the first indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; or if the first RRC parameter is a second value and the first indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or a step of the network device transmitting second instruction signaling to the terminal device, the second instruction signaling being for the terminal device to determine a radio frequency chain state after the uplink switching among at least three radio frequency chain states supporting the uplink transmission; the second indication signaling has at least three values, a first value, a second value, and a third value in the at least three values corresponding to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively; or a step of the network device transmitting the first RRC parameters to the terminal device, the first RRC parameters being for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; the first RRC parameter has at least three values, and a first value, a second value, and a third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively; A method comprising:
10. 9. The method of claim 8, wherein the terminal device is configured to perform uplink switching on at least four carriers, the at least four carriers belonging to four frequency bands; The step of the network device sending first RRC parameters and / or indication signaling to the terminal device includes: a step of the network device transmitting the first RRC parameters and third indication signaling to the terminal device, the first RRC parameters and the third indication signaling being for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; When the first RRC parameter is a first value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; When the first RRC parameter has a first value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or or if the first RRC parameter is a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; or When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; When the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; If the first RRC parameter is a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or if the first RRC parameter has a second value and the third indication signaling has a third value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; a step of the network device transmitting fourth instruction signaling to the terminal device, the fourth instruction signaling being for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; the fourth indication signaling has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively; or a step of the network device transmitting the first RRC parameters to the terminal device, the first RRC parameters being for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; the first RRC parameter has at least four values, and a first value, a second value, a third value, and a fourth value of the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively; A method comprising:
11. 1. An uplink transmission method comprising: a step of a network device transmitting first information, the first information instructing a terminal device to perform one-antenna port uplink transmission in a first carrier, the terminal device supporting uplink switching performed in at least three frequency bands; the network device determining, according to a predetermined selection policy and / or based on a combination of carriers supported by the terminal device and associated with parallel transmission, a radio frequency chain state of the terminal device during the uplink transmission, wherein the radio frequency chain state during the uplink transmission is a radio frequency chain state after the uplink switching, and the predetermined selection policy is: the number of carriers involved in said uplink switching is minimal; the uplink switching does not include carriers on which no uplink transmission exists; The uplink switching does not include carriers for which no radio frequency chain exists; or the switching time of the uplink switching satisfies a predetermined condition; and receiving, by the network device, the uplink transmission from the terminal device in the radio frequency chain state after the uplink switching; A method comprising:
12. 12. The method of claim 11, further comprising: transmitting, by the network device, second RRC parameters and / or fifth indication signaling to the terminal device when the network device determines, according to a predetermined selection policy and / or based on a combination of carriers supported by the terminal device and associated with parallel transmission, two or more radio frequency chain states of the terminal device during the uplink transmission; the second RRC parameter and / or the fifth indication signaling specifying one of the two or more radio frequency chain states to be used as a radio frequency chain state of the terminal device during the uplink transmission; A method comprising:
13. 13. The method of claim 12, wherein the fifth indication signaling indicates a carrier or frequency band that needs to be preferentially switched to in the uplink switching.
14. 12. The method of claim 11, wherein the predetermined condition includes that a switching time of the uplink switching is the shortest or that a switching time of the uplink switching is equal to or less than a specified threshold.
15. 1. A communications device comprising: a receiving unit configured to receive first information, the first information instructing the communication device to perform one-antenna-port uplink transmission on a first carrier, the communication device supporting uplink switching performed in at least three frequency bands; a processing unit configured to determine a radio frequency chain state after the uplink switching based on an indication signaling and / or a first radio resource control (RRC) parameter in at least three radio frequency chain states supporting the uplink transmission; and a transmitting unit configured to transmit the uplink transmission in the radio frequency chain state after the uplink switching; 2. A communication device comprising:
16. 16. The communication device of claim 15, wherein the communication device is configured to perform uplink switching on at least three carriers, the at least three carriers belonging to three frequency bands; a radio frequency chain state during a most recent uplink transmission is a first state or a second state, the first state being one in which there are two radio frequency chains on a second carrier, and the second state being one in which there is one radio frequency chain on each of the second carrier and a third carrier; The processing unit is configured to: determine a state after the uplink switching based on first indication signaling and the first RRC parameters in the at least three radio frequency chain states supporting the uplink transmission; When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; If the first RRC parameter has a second value and the first indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; or or if the first RRC parameter is a second value and the first indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or The processing unit is configured to: determine a state after the uplink switching based on a second indication signaling in the at least three radio frequency chain states supporting the uplink transmission; the second indication signaling has at least three values, and a first value, a second value, and a third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively; or The processing unit is configured to: determine a state after the uplink switching based on the first RRC parameters in the at least three radio frequency chain states supporting the uplink transmission; A communications device, wherein the first RRC parameter has at least three values, and a first value, a second value, and a third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
17. 16. The communication device of claim 15, wherein the communication device is configured to perform uplink switching on at least four carriers, the at least four carriers belonging to four frequency bands; a radio frequency chain state during a most recent uplink transmission is a first state or a second state, the first state being one in which there are two radio frequency chains on a second carrier, and the second state being one in which there is one radio frequency chain on each of the second carrier and a third carrier; The processing unit is configured to: determine a radio frequency chain state after the uplink switching based on a third indication signaling and the first RRC parameter in the at least three radio frequency chain states supporting the uplink transmission; When the first RRC parameter is a first value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; When the first RRC parameter has a first value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or or if the first RRC parameter is a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; or When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; When the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; If the first RRC parameter is a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or When the first RRC parameter has a second value and the third indication signaling has a third value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; The processing unit is configured to: determine a radio frequency chain state after the uplink switching based on a fourth indication signaling in the at least three radio frequency chain states supporting the uplink transmission; the fourth indication signaling has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively; or The processing unit is configured to: determine a radio frequency chain state after the uplink switching based on the first RRC parameter in the at least three radio frequency chain states supporting the uplink transmission; A communications device, wherein the first RRC parameter has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively.
18. 1. A communications device comprising: a receiving unit configured to receive first information, the first information instructing the communication device to perform one-antenna-port uplink transmission on a first carrier, the communication device supporting uplink switching performed in at least three frequency bands; a processing unit configured to determine a radio frequency chain state after the uplink switching according to a predetermined selection policy among at least two radio frequency chain states supporting the uplink transmission and / or based on a combination of carriers supported for parallel transmission, the predetermined selection policy comprising: the number of carriers involved in said uplink switching is minimal; the uplink switching does not include carriers on which no uplink transmission exists; The uplink switching does not include carriers for which no radio frequency chain exists; or The switching time of the uplink switching satisfies a predetermined condition. a processing unit including one or more of: a transmitting unit configured to transmit the uplink transmission in the radio frequency chain state after the uplink switching; 2. A communication device comprising:
19. 20. The communication device of claim 18, wherein the processing unit: A communication device configured to determine a radio frequency chain state after the uplink switching according to a predetermined selection policy in at least two radio frequency chain states supporting the uplink transmission and / or when two or more radio frequency chain states are determined based on a combination of carriers supported by the communication device and for the parallel transmission, further based on a fifth instruction signaling and / or a second RRC parameter in the two or more radio frequency chain states.
20. 20. The communications device of claim 19, wherein the fifth indication signaling indicates a carrier or frequency band that needs to be preferentially switched to in the uplink switching.
21. 21. The communication device according to claim 18, wherein the predetermined condition includes that a switching time of the uplink switching is the shortest or that a switching time of the uplink switching is equal to or less than a specified threshold.
22. 1. A communications device comprising: a transmitting unit configured to transmit first information, the first information instructing a terminal device to perform one-antenna-port uplink transmission on a first carrier, the terminal device supporting uplink switching performed in at least three frequency bands; the transmitting unit is further configured to transmit first RRC parameters and / or indication signaling to the terminal device, the first RRC parameters and / or the indication signaling for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; and a receiving unit configured to receive the uplink transmission from the terminal device in the radio frequency chain state after the uplink switching; A communication device comprising:
23. 23. The communication apparatus of claim 22, wherein the terminal device is configured to perform uplink switching on at least three carriers, the at least three carriers belonging to three frequency bands; The transmitting unit is configured to: transmit the first RRC parameters and first indication signaling to the terminal device, the first RRC parameters and the first indication signaling for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; If the first RRC parameter has a second value and the first indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; or or if the first RRC parameter is a second value and the first indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or The transmitting unit is configured to: transmit second instruction signaling to the terminal device, the second instruction signaling being for the terminal device to determine a radio frequency chain state after the uplink switching among at least three radio frequency chain states supporting the uplink transmission; the second indication signaling has at least three values, and a first value, a second value, and a third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively; or The transmitting unit is configured to: transmit the first RRC parameters to the terminal device, the first RRC parameters being for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; A communications device, wherein the first RRC parameter has at least three values, and a first value, a second value, and a third value in the at least three values correspond to a first radio frequency chain state, a second radio frequency chain state, and a third radio frequency chain state, respectively.
24. 23. The communication apparatus of claim 22, wherein the terminal device is configured to perform uplink switching on at least four carriers, the at least four carriers belonging to four frequency bands; The transmitting unit is configured to: transmit the first RRC parameters and third indication signaling to the terminal device, the first RRC parameters and the third indication signaling for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; When the first RRC parameter is a first value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; When the first RRC parameter has a first value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; If the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or or if the first RRC parameter is a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; or When the first RRC parameter is a first value, the radio frequency chain state after the uplink switching is a first radio frequency chain state; When the first RRC parameter has a second value and the third indication signaling has a first value, the radio frequency chain state after the uplink switching is a second radio frequency chain state; If the first RRC parameter is a second value and the third indication signaling has a second value, the radio frequency chain state after the uplink switching is a third radio frequency chain state; or When the first RRC parameter has a second value and the third indication signaling has a third value, the radio frequency chain state after the uplink switching is a fourth radio frequency chain state; The transmitting unit is configured to: transmit fourth instruction signaling to the terminal device, the fourth instruction signaling being for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; the fourth indication signaling has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively; or The transmitting unit is configured to: transmit the first RRC parameters to the terminal device, the first RRC parameters being for the terminal device to determine a radio frequency chain state after the uplink switching in at least three radio frequency chain states supporting the uplink transmission; A communications device, wherein the first RRC parameter has at least four values, and a first value, a second value, a third value, and a fourth value in the at least four values correspond to a first radio frequency chain state, a second radio frequency chain state, a third radio frequency chain state, and a fourth radio frequency chain state, respectively.
25. 1. A communications device comprising: a transmitting unit configured to transmit first information, the first information instructing a terminal device to perform one-antenna-port uplink transmission on a first carrier, the terminal device supporting uplink switching performed in at least three frequency bands; and a processing unit configured to determine radio frequency chain states of the terminal device during the uplink transmission according to a predetermined selection policy and / or based on a combination of carriers supported by the terminal device and associated with parallel transmission, the radio frequency chain states during the uplink transmission being radio frequency chain states after the uplink switching, the predetermined selection policy being: the number of carriers involved in said uplink switching is minimal; the uplink switching does not include carriers on which no uplink transmission exists; The uplink switching does not include carriers for which no radio frequency chain exists; or The switching time of the uplink switching satisfies a predetermined condition. a processing unit including one or more of: a receiving unit configured to receive the uplink transmission from the terminal device in the radio frequency chain state after the uplink switching; A communication device comprising:
26. 26. The communication device of claim 25, wherein the transmitting unit: configured to send second RRC parameters and / or fifth indication signaling to the terminal device when the processing unit determines, according to a predetermined selection policy and / or based on a combination of carriers supported by the terminal device and associated with parallel transmission, a state of two or more radio frequency chains of the terminal device during the uplink transmission; The second RRC parameter and / or the fifth instruction signaling specify one of the two or more radio frequency chain states that should be used as a radio frequency chain state of the terminal device during the uplink transmission.
27. 27. The communications device of claim 26, wherein the fifth indication signaling indicates a carrier or frequency band that needs to be preferentially switched to in the uplink switching.
28. 28. The communication device according to claim 25, wherein the predetermined condition includes that the switching time of the uplink switching is the shortest, or that the switching time of the uplink switching is equal to or less than a specified threshold.
29. 15. A communication device comprising at least one processor, the at least one processor being coupled to at least one memory, the at least one processor being configured to execute computer programs or instructions stored in the at least one memory, such that the communication device is capable of performing a method according to any one of claims 1 to 6 or a method according to any one of claims 8 to 14.
30. A chip comprising a processor and a communication interface, the communication interface configured to receive data and / or information and to transmit the received data and / or information to the processor, the processor configured to process the data and information to perform a method according to any one of claims 1 to 6 or a method according to any one of claims 8 to 14.
31. A computer-readable storage medium storing computer instructions which, when executed on a computer, enable the method of any one of claims 1 to 6 or any one of claims 8 to 14 to be performed.
32. 15. A computer program comprising computer program code, the computer program enabling, when said computer program is run on a computer, to perform the method according to any one of claims 1 to 6 or the method according to any one of claims 8 to 14.
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