WO2022214032A1 - 一种信息发送、接收的方法和通信装置 - Google Patents
一种信息发送、接收的方法和通信装置 Download PDFInfo
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- WO2022214032A1 WO2022214032A1 PCT/CN2022/085579 CN2022085579W WO2022214032A1 WO 2022214032 A1 WO2022214032 A1 WO 2022214032A1 CN 2022085579 W CN2022085579 W CN 2022085579W WO 2022214032 A1 WO2022214032 A1 WO 2022214032A1
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- frequency band
- carrier
- sets
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- frequency
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0453—Resources in frequency domain, e.g. a carrier in FDMA
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signalling for the administration of the divided path, e.g. signalling of configuration information
- H04L5/0094—Indication of how sub-channels of the path are allocated
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W76/00—Connection management
- H04W76/10—Connection setup
- H04W76/15—Setup of multiple wireless link connections
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
- H04L5/001—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT the frequencies being arranged in component carriers
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/21—Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/51—Allocation or scheduling criteria for wireless resources based on terminal or device properties
Definitions
- the present application relates to the field of communication, and more particularly, to a method and a communication device for sending and receiving information.
- LTE long term evolution
- CA carrier aggregation
- Work plan 16 proposes a new uplink mode, that is, if the terminal device supports 2 uplink carriers, the terminal device can switch the radio frequency chain on these two carriers to improve the utilization rate of the radio frequency chain .
- the terminal device needs to report the list of frequency band combinations supported by the terminal device to the network device.
- R16 for the terminal device that supports dynamic radio frequency chain switching, the protocol is designed.
- a new frequency band combination list (list) that is, the terminal device needs to report the frequency band information related to the supported dynamic radio frequency chain switching in the new frequency band combination list (list).
- this protocol does not limit the number of carrier sets configured by the network device for the terminal device, but when the network device configures multiple carrier sets for the terminal device, how to make the network device better schedule the terminal device is an urgent problem to be solved.
- the present application provides a method and a communication device for sending information, which can solve the problem of how to enable the network device to better schedule the terminal device when the network device configures at least two carrier sets for the terminal device.
- a first aspect provides a method for sending information, including: a terminal device determining first information, where the first information includes a first information element and a second information element, the first information element indicates at least two frequency band sets, the at least The first frequency band set in the two frequency band sets includes at least one frequency band, and the second information element indicates a first relationship between the second frequency band set and the first frequency band set in the at least two frequency band sets, where the first relationship includes: switching and /or concurrently; the terminal device sends the first information to the network device.
- the present application can enable the network device to know the support of the terminal device for uplink Tx handover on at least one carrier set, so that the network device can normally schedule the terminal device when configuring at least one carrier set for the terminal device.
- all frequency bands in at least one frequency band set belong to a first frequency band combination
- the first information further includes a third information element
- the third information element indicates the first frequency band combination Number of RF chains supported.
- the present application can enable the network device to know the number of switchable radio frequency chains when the terminal device performs uplink Tx switching between at least one carrier set, so that the network device can more flexibly schedule the terminal device on the at least one carrier set.
- the first information includes a fourth information element, and the fourth information element indicates the number of radio frequency chains supported by the first frequency band set.
- the present application can realize that when the number of radio frequency chains supported by at least one frequency band set reported by the terminal device is different, the network device can know the number of radio frequency chains supported by each frequency point set, which is convenient for the network device to operate on at least one carrier set. More flexibility in scheduling end devices.
- the third frequency band set in the at least one frequency band set includes a fifth information element
- the fifth information element indicates a second relationship between frequency bands in the third frequency band set
- the third frequency band set includes a fifth information element.
- Two relationships include: switching and/or concurrency.
- the present application can facilitate the terminal equipment to report the relationship between the frequency bands in each frequency band set more flexibly.
- the first information further includes a sixth information element, and the sixth information element indicates a third relationship between frequency bands in all frequency band sets in at least one frequency band combination, and at least one The relationship between the frequency bands in the fourth frequency band set in the frequency band set obeys a third relationship, and the third relationship includes: handover and/or concurrency.
- the present application can realize that it is convenient for terminal equipment to uniformly report the relationship between frequency bands in some or all frequency band sets, thereby reducing the amount of reporting.
- At least one frequency band set belongs to at least two frequency band set groups, and switching between the first frequency band set group and the second frequency band set group in the at least two frequency band set groups cannot be performed .
- the present application enables the network device to know the support status of the terminal device for performing uplink Tx switching between at least one carrier set.
- the first information further includes a seventh information element, where the seventh information element indicates the number of radio frequency chains supported by the third frequency band set group in the at least two frequency band set groups.
- the present application enables the network device to know the number of switchable radio frequency chains when the terminal device performs uplink Tx switching in at least one carrier set group, which facilitates the network device to better schedule the terminal device on the at least one carrier set group .
- a method for receiving information including: a network device receives first information from a terminal device, the first information includes a first information element, the first information element indicates at least two frequency band sets, at least two frequency bands
- the first frequency band set in the set includes at least one frequency band, and at least one same frequency band is included between any two frequency band sets in the at least two frequency band sets; the network device configures the first carrier set, which is composed of frequency bands to which the carriers in the first carrier set belong.
- a band set does not belong to at least two band sets.
- the present application enables the network device to derive more frequency band sets according to the frequency band sets reported by the terminal device, thereby reducing the amount of frequency band sets reported.
- At least three frequency bands in the at least three frequency band sets appear at least twice in the at least three frequency band sets, or, at least All bands in the three band sets appear at least twice in the at least three band sets.
- the present application enables the network device to derive more frequency band sets according to the frequency band sets reported by the terminal device, thereby reducing the amount of frequency band sets reported.
- a method for receiving information including: a network device receives first information from a terminal device, the first information includes a first information element, the first information element indicates at least two frequency band sets, at least two frequency bands
- the first frequency band set in the set includes at least one frequency band
- the first information further includes a second information element, the second information element indicates a first relationship between the second frequency band set and the first frequency band set in the at least two frequency band sets, the first The relationship includes: handover and/or concurrency;
- the network device configures M carrier sets, the carriers in the M frequency band sets belong to at least one frequency band in the at least two frequency band sets, and the second carrier set in the M carrier sets includes at least one carrier,
- the relationship between the third carrier set and the second carrier set in the M carrier sets is the first relationship, wherein the second carrier set is a carrier set corresponding to the first frequency band set, and the third carrier set is a carrier set corresponding to the second frequency band set
- the carrier set of , M is greater than or equal to 2
- all frequency bands in the at least one frequency band set belong to the first frequency band combination
- the first information further includes a third information element
- the third information element indicates that the first frequency band combination supports number of RF chains.
- the first information includes a fourth information element, and the fourth information element indicates the number of radio frequency chains supported by the first frequency band set.
- the third frequency band set in the at least one frequency band set includes a fifth information element
- the fifth information element indicates a second relationship between frequency bands in the third frequency band set
- the second Relationships include: switching and/or concurrency.
- the first information further includes a sixth information element, and the sixth information element indicates a third relationship between frequency bands in all frequency band sets in the at least one frequency band combination, and at least one The relationship between the frequency bands in the fourth frequency band set in the frequency band set obeys a third relationship, and the third relationship includes: handover and/or concurrency.
- At least one frequency band set belongs to at least two frequency band set groups, and switching between the first frequency band set group and the second frequency band set group in the at least two frequency band set groups cannot be performed .
- the first information further includes a seventh information element, where the seventh information element indicates the number of radio frequency chains supported by the third frequency band set group in the at least two frequency band set groups.
- At least one carrier included in the second carrier set corresponds to the same frequency band in at least two frequency band sets, or, at least one carrier included in the second carrier set corresponds to in different frequency bands in at least two frequency band sets.
- a communication device comprising: a processing unit configured to determine first information, the first information includes a first information element and a second information element, the first information element indicates at least two frequency band sets, at least two The first frequency band set in the frequency band sets includes at least one frequency band, the second information element indicates a first relationship between the second frequency band set and the first frequency band set in the at least two frequency band sets, and the first relationship includes: switching and/or concurrent ; a transceiver unit for sending the first information to the network device.
- all frequency bands in the at least one frequency band set belong to the first frequency band combination
- the first information further includes a third information element
- the third information element indicates that the first frequency band combination supports number of RF chains.
- the first information includes a fourth information element, and the fourth information element indicates the number of radio frequency chains supported by the first frequency band set.
- the third frequency band set in the at least one frequency band set includes a fifth information element
- the fifth information element indicates a second relationship between frequency bands in the third frequency band set
- the third frequency band set includes a fifth information element.
- Two relationships include: switching and/or concurrency.
- the first information further includes a sixth information element, and the sixth information element indicates a third relationship between frequency bands in all frequency band sets in at least one frequency band combination, and at least one The relationship between the frequency bands in the fourth frequency band set in the frequency band set obeys a third relationship, and the third relationship includes: handover and/or concurrency.
- At least one frequency band set belongs to at least two frequency band set groups, and switching between the first frequency band set group and the second frequency band set group in the at least two frequency band set groups cannot be performed .
- the first information further includes a seventh information element, and the seventh information element indicates the number of radio frequency chains supported by the third frequency band set group in the at least two frequency band set groups.
- a communication apparatus comprising: a transceiver unit configured to receive first information from a terminal device, the first information includes a first information element, the first information element indicates at least two frequency band sets, at least two The first frequency band set in the frequency band set includes at least one frequency band, and at least one same frequency band is included between any two frequency band sets in the at least two frequency band sets; the processing unit is configured to configure the first carrier set, the carriers in the first carrier set The frequency band set composed of the belonging frequency bands does not belong to at least two frequency band sets.
- At least three frequency bands in the at least three frequency band sets appear at least twice in each of the at least three frequency band sets, or, All frequency bands in the at least three frequency band sets appear at least twice in the at least three frequency band sets.
- a communication device comprising: a transceiver unit configured to receive first information from a terminal device, the first information includes a first cell and a second cell, and the first cell indicates at least two frequency bands set, the first frequency band set in the at least two frequency band sets includes at least one frequency band, the second information element indicates the first relationship between the second frequency band set and the first frequency band set in the at least two frequency band sets, the first relationship includes: switching and/or concurrent; a processing unit configured to configure M carrier sets, where carriers in the M carrier sets belong to at least one frequency band in at least two frequency band sets, the second carrier set in the M carrier sets includes at least one carrier, and M The relationship between the third carrier set and the second carrier set in the carrier sets is the first relationship, wherein the second carrier set is the carrier set corresponding to the first frequency band set, and the third carrier set is the carrier set corresponding to the second frequency band set Carrier set, M is greater than or equal to 2, and M is a positive integer.
- all frequency bands in at least one frequency band set belong to the first frequency band combination
- the first information further includes a third information element
- the third information element indicates that the first frequency band combination supports number of RF chains.
- the first information includes a fourth information element, and the fourth information element indicates the number of radio frequency chains supported by the first frequency band set.
- the third frequency band set in the at least one frequency band set includes a fifth information element
- the fifth information element indicates a second relationship between frequency bands in the third frequency band set
- the third frequency band set includes a fifth information element.
- Two relationships include: switching and/or concurrency.
- the first information further includes a sixth information element, and the sixth information element indicates a third relationship between frequency bands in all frequency band sets in at least one frequency band combination, and at least one The relationship between the frequency bands in the fourth frequency band set in the frequency band set obeys a third relationship, and the third relationship includes: handover and/or concurrency.
- At least one frequency band set belongs to at least two frequency band set groups, and switching between the first frequency band set group and the second frequency band set group in the at least two frequency band set groups cannot be performed .
- the first information further includes a seventh information element, and the seventh information element indicates the number of radio frequency chains supported by the third frequency band set group in the at least two frequency band set groups.
- At least one carrier included in the second carrier set corresponds to the same frequency band in at least two frequency band sets, or, at least one carrier included in the second carrier set corresponds to in different frequency bands in at least two frequency band sets.
- a communication device comprising: a processor and a memory, the processor is coupled to the memory, the memory is used for storing a computer program, and the processor is used for executing the computer program stored in the memory, so that the communication device executes
- the communication method as described in the first aspect and any possible implementation manner of the first aspect, or the communication device as described in any possible implementation manner of the second aspect and the second aspect
- the communication method, or the communication method described in the third aspect and any possible implementation manner of the third aspect is performed by the communication device.
- a computer-readable storage medium storing instructions that, when the instructions are executed on a computer, cause the computer to execute the first aspect and any possible implementation manner of the first aspect
- the communication method or cause the computer to execute the communication method as described in any possible implementation manner of the second aspect and the second aspect, or cause the computer to execute any one of the third aspect and the third aspect.
- FIG. 1 is a schematic diagram of a communication scenario provided by the present application.
- FIG. 2 is a schematic flowchart of a method for sending and receiving information provided by the present application.
- FIG. 3 is a schematic flowchart of another method for sending and receiving information provided by the present application.
- FIG. 4 is a schematic block diagram of a communication apparatus provided by the present application.
- FIG. 5 is a schematic block diagram of another communication apparatus provided by the present application.
- GSM global system of mobile communication
- CDMA code division multiple access
- WCDMA wideband code division multiple access
- general packet radio service general packet radio service, GPRS
- long term evolution long term evolution
- LTE long term evolution
- LTE frequency division duplex frequency division duplex, FDD
- LTE time division Duplex time division duplex, TDD
- UMTS universal mobile telecommunication system
- WiMAX worldwide interoperability for microwave access
- FIG. 1 shows a schematic diagram of a communication scenario provided by the present application.
- the terminal equipment may refer to user equipment, access terminal, subscriber unit, subscriber station, mobile station, mobile station, remote station, remote terminal, mobile device, user terminal, terminal, A wireless communication device, user agent or user equipment.
- the terminal device may also be a cellular phone, a cordless phone, a session initiation protocol (SIP) phone, a wireless local loop (WLL) station, a personal digital assistant (PDA), a wireless communication Functional handheld devices, computing devices or other processing devices connected to wireless modems, in-vehicle devices, wearable devices, end devices in 5G networks or end devices in an evolved public land mobile network (PLMN) etc., this is not limited in the embodiments of the present application.
- SIP session initiation protocol
- WLL wireless local loop
- PDA personal digital assistant
- PLMN evolved public land mobile network
- the network device may be a device for communicating with a terminal device, and the network device may be a global system of mobile communication (GSM) or a code division multiple access (CDMA) system.
- GSM global system of mobile communication
- CDMA code division multiple access
- BTS base transceiver station
- NodeB, NB base station
- WCDMA wideband code division multiple access
- LTE LTE
- the evolved base station (evolutional nodeB, eNB or eNodeB) in the system can also be a wireless controller in a cloud radio access network (cloud radio access network, CRAN) scenario, or the network device can be a relay station, access point, Vehicle-mounted devices, wearable devices, network devices in the G network or network devices in the evolved PLMN network, etc., are not limited in the embodiments of the present application.
- Carrier aggregation refers to aggregating at least two carrier units (component carriers, CCs) together in order to support a larger transmission bandwidth.
- the terminal equipment when the terminal equipment is configured with multiple cells, and each cell includes one downlink carrier and 0 to 2 uplink carriers, the terminal equipment can activate some cells in the multiple cells, but some terminal equipment
- the uplink capability of the UPS is limited, and only two uplink carriers can be configured and activated at most.
- the terminal device can perform time-division transmission between the two configured carriers, and the terminal device has a total of two radio frequency chains that can transmit simultaneously.
- the two radio frequency chains can be dynamically allocated on the two carriers. For example, radio frequency chain 1 is used for transmission on carrier X, and radio frequency chain 2 is used for transmission on carrier Y.
- carrier X is not transmitted by radio frequency chain 1.
- the carrier Y is transmitted by using the radio frequency chain 1 and the radio frequency chain 2.
- the terminal device can report to the network device one or more frequency band combinations that can be simultaneously transmitted in the uplink, and the combination indicates that the terminal device supports simultaneous uplink transmission on the frequency bands in the combination.
- a transmit channel is a physical concept, and may also be called a radio frequency (radio frequency, RF).
- the transmit channel is simply referred to as a radio frequency chain.
- the radio frequency chain in this application can also be replaced with Tx, antenna, radio frequency, transmit channel, transmit port, receive channel or any combination thereof.
- the number of radio frequency chains of a terminal device on a carrier is X, which means that the terminal device supports uplink transmission with the number of antenna ports on this carrier less than or equal to X, and does not support uplink transmission with the number of antenna ports greater than X.
- the operating state of the terminal device is the uplink transmission with the number of antenna ports supported by this carrier less than or equal to X, and does not support the uplink transmission with the number of antenna ports greater than X, where X is a positive integer.
- the radio frequency chain may work in the following manner, but is not limited to the following manner: the radio frequency chain may receive the baseband signal from the baseband chip, and perform radio frequency processing (such as up-conversion, amplification and filtering) on the baseband signal to obtain the radio frequency signal , and finally radiate the radio frequency signal into space through the antenna.
- the radio frequency chain may include an antenna switch, an antenna tuner, a low noise amplifier (LNA), a power amplifier (PA), a mixer (mixer), and a local oscillator (LO) , filter (filter) and other electronic devices, these electronic devices can be integrated into one or more chips as required. Antennas can also sometimes be considered part of the RF chain.
- Antenna port is a logical concept. When actually sending a signal, the terminal device will map the antenna port to the corresponding radio frequency chain. When scheduling the terminal device to transmit data, the network device may explicitly indicate the port number of the antenna port used by the terminal device to transmit data.
- the antenna port may be referred to as a port for short.
- R16 proposes a new uplink mode, that is, if the terminal equipment supports two uplink carriers, the terminal equipment can perform Tx switching on these two carriers, thereby improving the utilization rate of the radio frequency chain.
- the protocol defines the sending behavior of the terminal device on the two uplink carriers through Table 1.
- Tx switching may be replaced by uplink Tx switching, dynamic uplink Tx switching, uplink switching, or dynamic Tx switching, which is not limited in this application.
- carriers X and Y respectively represent two uplink carriers, and Tx represents the radio frequency chain.
- case 1 indicates that the terminal device has one radio frequency chain on carrier X and one radio frequency chain on carrier Y.
- case2 indicates that the terminal equipment has no radio frequency chain on carrier X, and has 2 radio frequency chains on carrier Y.
- the terminal device supports a maximum of 1 Tx on carrier X and a maximum of 2 Tx on carrier Y.
- the terminal device can switch between these two cases, that is, one Tx can be switched between two carriers, and switching between these two cases requires switching time.
- This switching time can be called uplink switching time (uplink switching gap).
- the terminal equipment does not wish to transmit on either of the two carriers within the uplink switching gap.
- the protocol does not directly instruct the terminal equipment to perform Tx switching on the carrier, but indirectly instructs the terminal equipment to perform Tx switching through the number of uplink transmission ports of the terminal equipment on the carrier, and then determines whether the radio frequency chain switching is required for this uplink transmission. That is, whether there is a switching time.
- Table 2 shows the mapping relationship between the radio frequency chain and the uplink transmission port.
- Table 2 shows the mapping relationship between the Tx and the uplink transmission port of the terminal equipment supporting the uplink CA in the switched mode (switchedUL).
- the terminal device can send 1 port uplink transmission on carrier X while there is no uplink transmission on carrier Y (1P+0P).
- the terminal device can send 2 ports of uplink transmission on carrier Y while there is no uplink transmission on carrier X (0P+2P), and send 1 on carrier Y
- the upstream transmission of each port has no upstream transmission on the carrier X at the same time (0P+1P).
- the protocol determines whether switching time is required according to the number of ports in the upstream transmission to be sent by the terminal device on the two carriers and the number of ports in the last upstream transmission.
- the terminal equipment when the terminal equipment is about to perform 1port transmission on one carrier, and the previous transmission of the terminal equipment is 1port transmission on another carrier, it means that switching from 1P+0P of case1 to 0P+1P of case2, at this time
- the terminal equipment needs to perform radio frequency chain switching, and does not want to transmit on either of the two carriers within the uplink switching gap.
- Table 3 shows the mapping relationship between the Tx and the uplink transmission port of the terminal equipment supporting the uplink CA in the concurrent mode (dualUL).
- the terminal device can send 1port uplink transmission on carrier X while there is no uplink transmission on carrier Y (1P+0P), and send 1port on carrier X
- the uplink transmission of 1 port is sent on the carrier Y at the same time (1P+1P), and the uplink transmission of 1 port is sent on the carrier Y while there is no uplink transmission on the carrier X (0P+1P).
- the operating state of the terminal equipment is that the carrier X supports 1port uplink transmission, or the operating state of the terminal equipment is that the carrier Y supports 1port uplink transmission, or the operating state of the terminal equipment is that the carrier X supports 1port uplink transmission and at the same time Carrier Y supports 1port uplink transmission, or the operating status of the terminal equipment is that carrier X does not support 2port uplink transmission and carrier Y does not support 2port uplink transmission, or the operating status of the terminal equipment is that carrier X does not support 2port uplink transmission , or the operating state of the terminal device is that carrier Y does not support 2port uplink transmission.
- the terminal device can send 2 ports of uplink transmission on carrier Y while there is no uplink transmission on carrier X (0P+2P), and send 1 on carrier Y
- the upstream transmission of each port has no upstream transmission on the carrier X at the same time (0P+1P).
- the operating state of the terminal equipment is to support 2port or 1port uplink transmission on carrier Y and not support uplink transmission on carrier X.
- both case1 and case2 are in the state of 0P+1P. If the terminal equipment is about to perform 1port transmission on carrier Y and there is no uplink transmission on carrier X, the Tx state of the terminal equipment is the Tx state of the last uplink transmission. That is, the Tx state of the terminal device does not change, that is, the terminal device does not need switching time.
- the protocol determines whether switching time is required according to the number of upstream transmission ports to be sent by the terminal device on the two carriers, the number of ports in the last upstream transmission, and the number of supported upstream transmission ports or the operating status of the terminal device.
- 2port is to be sent on a carrier for transmission
- the previous transmission is 1port transmission on this carrier
- the operating state of the terminal device is that 2port transmission is not supported on this carrier, that is, switching from 0P+1P of case1 To 0P+2P of case2, the terminal equipment needs to perform Tx switching at this time, and does not want to transmit on either of the two carriers in the uplink switching gap.
- 1port transmission is about to be sent on one carrier
- the previous transmission is 1port transmission on another carrier
- the operating state of the terminal equipment is to support 2port transmission on this carrier, which means that the switch from 0P+1P of case2 to the one of case1 1P+XP, the value of X can be 0 or 1.
- the terminal device needs to perform Tx switching, and does not want to transmit on any of the two carriers in the uplink switching gap.
- both the terminal equipment supporting switchedUL and the terminal equipment supporting dualUL will have switching time under the following two conditions:
- Condition 1 2port transmission is about to be sent on one carrier, and the previous transmission is 1port uplink transmission on another carrier (1P+0P of case1 is switched to 0P+2P of case2). At this time, the terminal device needs to perform RF chain switching. Transmission on either of the two carriers is not desired within the switching gap.
- Condition 2 1port transmission is about to be sent on one carrier, and the previous transmission is 2port uplink transmission on another carrier (0P+2P of case2 is switched to 1P+0P of case1). At this time, the terminal device needs to perform RF chain switching. Transmission on either of the two carriers is not desired within the switching gap.
- the Tx state of the terminal device is the Tx state of the last uplink transmission. That is, the Tx state of the terminal device does not change.
- the terminal equipment does not need to switch between upstream transmissions of different ports in the same case, so no switching time is required.
- the network device Since the maximum number of ports supported on carrier X and carrier Y are different, the network device needs to specify whether the carrier is carrier X or carrier Y when configuring the carrier for the terminal device, so as to facilitate the distinction.
- the terminal device can report multiple frequency band sets to the network device, and there is no limit to the number of carrier sets configured by the network device for the terminal device, but when the network device configures at least two carrier sets for the terminal device, and no When the relationship between the at least two carrier sets configured for the terminal device is clear, the scheduling of the terminal device by the network device will be affected.
- the carrier that can perform radio frequency chain switching configured by the network device to the terminal device is based on the frequency band combination reported by the terminal device to the network device.
- a possible situation is that the carrier and the frequency band can be replaced with each other in whole or in part, and the carrier set and the frequency band set can also be replaced with each other in whole or in part.
- a frequency band can be replaced in whole or in part with a carrier belonging to that frequency band.
- a frequency band set may include one or more frequency bands, and the carriers in the carrier set may also be replaced with frequency bands in the frequency band set.
- a frequency band includes one or more carriers.
- a possible situation is that multiple frequency bands in the frequency band set may have the same frequency band or different frequency bands.
- the carriers in one frequency band set include at least one carrier on at least one frequency band in this frequency band set.
- the present application provides a capability reporting method, which can solve the problem when a network device configures at least two carrier sets for a terminal device and the relationship between the at least two carrier sets configured for the terminal device is unclear. , to enable the network device to schedule the terminal device.
- FIG. 2 shows a method for sending and receiving information provided by the present application.
- the execution subjects of the method are terminal equipment and network equipment, as shown in FIG. 2 .
- the terminal device determines first information, where the first information includes a first information element and a second information element, the first information element indicates at least two frequency band sets, and the first frequency band set in the at least two frequency band sets includes at least one frequency band , and the second information element indicates the first relationship between the second frequency band set and the first frequency band set in the at least two frequency band sets, where the first relationship includes handover or concurrency.
- the terminal device sends the first information to the network device.
- the network device receives the first information from the terminal device.
- the network device configures M carrier sets, the carriers in the M carrier sets belong to at least one frequency band in the at least two frequency band sets, the second carrier set in the M carrier sets includes at least one carrier, and the M carriers
- the relationship between the third carrier set and the second carrier set in the set is the first relationship between the second frequency band set and the first frequency band set, wherein the second carrier set is the carrier set corresponding to the first frequency band set, and the third The carrier set is a carrier set corresponding to the second frequency band set, M is greater than or equal to 2, and M is a positive integer.
- the second carrier set in the M carrier sets may refer to any one carrier set in the M carrier sets, and the second carrier set includes at least one carrier, and the third carrier set also includes at least one carrier, And the relationship with the second carrier set is consistent with the first relationship.
- a carrier set is a carrier set corresponding to (or belonging to) a frequency band set, which means that all carriers in this carrier set belong to at least one frequency band in this frequency band set.
- the second carrier set includes carrier 1 and carrier 2
- the first frequency band set includes at least frequency band A and frequency band B
- carrier 1 belongs to frequency band A and carrier 2 belongs to frequency band B
- the second carrier set corresponds to the first frequency band set the carrier set of (or to which it belongs).
- the second carrier set includes carrier 1 and carrier 2
- the first frequency band set includes at least frequency band A
- carrier 1 belongs to frequency band A
- carrier 2 belongs to frequency band A
- the second carrier set corresponds to the first frequency band set (or to which it belongs) carrier set.
- the second carrier set includes carrier 1, carrier 2 and carrier 3
- the first frequency band set includes at least frequency band A, frequency band B and frequency band C
- carrier 1 belongs to frequency band A
- carrier 2 belongs to frequency band A
- carrier 3 belongs to frequency band B
- the second carrier set is a carrier set corresponding to (or belonging to) the first frequency band set.
- the second carrier set includes carrier 1 and carrier 2
- the third carrier set includes carrier 3 and carrier 4
- the first frequency band set includes frequency band A and frequency band B
- the second frequency band set includes frequency band C and frequency band D
- carrier 1 It belongs to frequency band A
- carrier 2 belongs to frequency band B
- carrier 3 belongs to frequency band C
- carrier 4 belongs to frequency band D
- the first relationship between the first frequency band set and the second frequency band set and the second frequency band set is switching, then the second carrier The relationship between the set and the third carrier set is handover.
- the relationship between the two carrier sets is concurrent, which means that while scheduling or configuring the terminal device to transmit on at least one carrier in a carrier set, the network device can also schedule or configure the terminal device to perform transmission on at least one carrier in a carrier set. The transmission is performed on at least one carrier in another set of carriers.
- the relationship between the two carrier sets is handover, which means that when the network device schedules or configures the terminal device to transmit on at least one carrier in one carrier set, the network device cannot schedule or configure the terminal device to transmit on another carrier.
- the transmission is performed on at least one carrier in a set of carriers.
- the configuration information provided by the network device to the terminal device follows the first information.
- At least one frequency band set among the at least two frequency band sets reported by the terminal device is a frequency band set supported by the terminal device and capable of performing Tx switching.
- the terminal device may perform Tx switching on a carrier of at least one carrier set in the M carrier sets configured by the network device.
- the relationship between the first frequency band set and the second frequency band set may be handover or concurrent by default.
- the second cell is mandatory to report.
- the present application can enable the network device to know the support of the terminal device for uplink Tx handover on at least one carrier set, so that the network device can normally schedule the terminal device when configuring at least one carrier set for the terminal device.
- the first information may be a frequency band combination used for uplink radio frequency chain switching, or a frequency band combination supporting uplink radio frequency chain switching, which is used to indicate at least one frequency band reported by the terminal device to the network device combination, wherein one frequency band combination includes at least one frequency band.
- the first information may include a first information element.
- the first information element may be an uplink radio frequency chain switching frequency band set, which is used to indicate at least one frequency band set, wherein one frequency band set includes at least two frequency bands.
- the present application describes the technical solution of the present application by taking one frequency band combination including four frequency bands and one frequency band set including two frequency bands as an example, but the description method does not have a limiting effect.
- the first frequency band set or the second frequency band set may include only one frequency band.
- the terminal device reports two frequency band sets, namely the frequency band set ⁇ A, B ⁇ and the frequency band set ⁇ C ⁇
- the relationship between the two frequency band sets may be simultaneous transmission, that is, the concurrent mode is supported, Or time-division transmission, that is, switching modes. Therefore, after the relationship between the two frequency band sets is determined, any frequency band set in the two frequency band sets may only include one frequency band.
- the frequency band set needs to include at least two frequency bands.
- the at least two frequency bands may be the same or different.
- the frequency band set may include only one frequency band.
- all frequency bands in at least one frequency band set belong to one frequency band combination, and the frequency bands in one frequency band set may be the same or different, which is not limited in this application.
- the first information may further include a second information element, where the second information element indicates the relationship between the first frequency band set and the second frequency band set.
- first frequency band set and the second frequency band set refer to the frequency band sets that support uplink radio frequency chain switching, and the terminal device can perform uplink radio frequency chain switching on the frequency bands in one frequency band set.
- the terminal device may indicate which handover rule or handover mode the terminal device supports by reporting the maximum number of radio frequency chains supported by carriers in each frequency band in the frequency band set.
- the handover rule may be the handover rule corresponding to Table 2, Table 3 or Table 4.
- the terminal equipment reports that the maximum number of radio frequency chains supported on two carriers in a carrier set is both 2 and supports concurrent mode (dual UL), it indicates that the terminal equipment supports the handover rules corresponding to Table 4.
- the terminal equipment reports that the maximum number of radio frequency chains supported on one carrier in a carrier set is 2, the maximum number of radio frequency chains supported on another carrier in this carrier set is 1, and the concurrent mode (dual UL ), then it indicates that the terminal device supports the handover rules corresponding to Table 3.
- a possible situation is that the maximum number of ports of a sounding reference signal (sounding reference signal, SRS) resource is equal to the maximum number of ports in all periodic SRS, semi-static SRS and aperiodic SRS resources configured by the base station.
- SRS sounding reference signal
- the maximum number of ports of the SRS resource is equal to the maximum number of ports in all periodic SRS, activated semi-static SRS and aperiodic SRS resources configured by the base station.
- a possible situation is that the maximum number of radio frequency chains supported by a terminal device on a carrier is equal to or replaced by the maximum number of ports reported by the terminal device for SRS resources in the frequency band to which the carrier belongs, and/or the maximum number of ports supported by uplink transmission on this carrier.
- MIMO multiple input-multiple output
- a possible situation is that the maximum number of radio frequency chains supported by the terminal device on one carrier is equal to or replaced by the maximum number of ports of SRS resources on this carrier configured by the base station for the terminal device.
- a possible situation is that the maximum number of radio frequency chains supported by a carrier is equivalent to the maximum number of radio frequency chains of a carrier.
- Table 4 shows a mapping relationship between a radio frequency chain supporting a concurrent mode (dual UL) and an uplink transmission port. The difference from Table 3 is that the maximum number of radio frequency chains on carrier X of Table 4 can be 2.
- the network device may consider that the terminal device supports R16 dynamic Tx switching. If the two carriers in the reported frequency band set support the maximum number of radio frequency chains When the number of radio frequency chains is 2T and 2T respectively, the network device can consider that the terminal device supports R17 dynamic Tx switching.
- the network device can consider that the terminal device has a total of 2Tx between the two frequency band sets, or a total of 2 Tx on all the frequency bands of the two frequency band sets, then the terminal device is in the two frequency band sets. While transmission is being performed on at least one frequency band in one frequency band set of the frequency band sets, transmission cannot be performed on at least one frequency band in the other frequency band set of the two frequency band sets.
- the network device can consider that the terminal device has 2Tx in each frequency band set, or a total of 2 Tx on all frequency bands in each frequency band set, then the terminal device is in the two While transmitting on at least one frequency band in one frequency band set in the two frequency band sets, it can also transmit on at least one frequency band in the other frequency band set in the two frequency band sets, which means that the two frequency band sets can be independent schedule.
- the handover in the first relationship means that the terminal device cannot perform uplink transmission on at least one carrier in the second frequency band set while performing uplink transmission on at least one carrier in the first frequency band set .
- the terminal equipment is about to perform uplink transmission on at least one carrier in the first frequency band set, and the previous uplink transmission of the terminal equipment is uplink transmission on at least one carrier in the second frequency band set, then the terminal equipment is in the first frequency band set.
- Uplink transmission cannot be performed on any carrier in the two frequency band sets within a period of time.
- the terminal device needs to perform radio frequency chain switching within the first time period.
- the second transmission is an uplink transmission before the first transmission, it means that the first transmission and the second transmission are two adjacent transmissions in the time domain, and the second transmission precedes the first transmission.
- the first time period is reported by the terminal device, which indicates the Tx switching duration for performing Tx switching between the two frequency band sets.
- the first time period is equal to the Tx switching duration for performing Tx switching on a carrier in one of the two frequency band sets.
- the first time period is equal to the Tx switching duration of performing Tx switching on a carrier in one of the two frequency band sets and the Tx switching time of performing Tx switching on a carrier in the other frequency band set of the two frequency band sets. The larger of the duration.
- the concurrency in the first relationship means that the terminal device can perform uplink transmission on at least one carrier in the second frequency band set while performing uplink transmission on at least one carrier in the first frequency band set .
- Table 5 shows the maximum number of radio frequency chains supported by carriers in each band in the band set.
- the network device can configure two carrier sets for the terminal device, and the relationship between the two carrier sets can be configured according to the indication of the second information element.
- the present application can enable the network device to normally schedule the terminal device when configuring multiple carrier sets for the terminal device.
- the first information may further include a third information element, where the third information element is used to indicate the number of radio frequency chains supported by the terminal device in the first frequency band combination.
- the number of radio frequency chains supported by one frequency band combination, the number of radio frequency chains supported by one frequency band combination, and the maximum number of radio frequency chains supported by one frequency band combination can be replaced with each other.
- the number of radio frequency chains supported by one frequency band set, the number of radio frequency chains supported by one frequency band set, and the maximum number of radio frequency chains supported by one frequency band set can be replaced with each other.
- the third information element indicates that all frequency band sets in the first frequency band combination support the frequency bands.
- the total number of Tx indicates the total number of Tx supported on all carriers in all band sets.
- the maximum number of radio frequency chains supported by carrier X is 1, and the maximum number of radio frequency chains supported by carrier Y is 2.
- the maximum number of RF chains is 2. If a band combination contains only the fifth band set, then the number of RF chains supported by this band combination is 2.
- the maximum number of radio frequency chains supported by carrier X is 2
- the maximum number of radio frequency chains supported by carrier Y is 2
- the frequency band set (defined as the sixth frequency band set) composed of the frequency band where carrier X is located and the frequency band where carrier Y is located is supported.
- the maximum number of RF chains is 2. If a band combination contains only the sixth band set, the number of RF chains supported by this band combination is 2.
- the number of radio frequency chains supported by one carrier set may be the maximum value among the maximum numbers of radio frequency chains supported by all carriers in the carrier set. For example, Table 3.
- a frequency band combination includes a fifth frequency band set and a sixth frequency band set, and the first relationship between the two frequency band sets is handover, then the number of radio frequency chains supported by this frequency band combination may be 2.
- a frequency band combination includes a fifth frequency band set and a sixth frequency band set, and the first relationship between the two frequency band sets is concurrency, the number of radio frequency chains supported by this frequency band combination may be 4.
- the first relationship between the frequency band sets in this frequency band combination can be used to derive the radio frequency chains supported by each frequency band set. quantity. The amount of terminal reporting can be reduced.
- the number of radio frequency chains supported by the frequency band combination can be 2 by default.
- the number of radio frequency chains supported by one frequency band combination can be replaced with the number of radio frequency chains that can perform Tx switching in one frequency band combination, or can be replaced by the number of radio frequency chains that can perform Tx switching between at least one frequency band set in one frequency band combination. quantity.
- the frequency band combination can The number of RF chains for Tx switching is 2.
- the present application can enable the network device to better schedule the terminal device.
- the present application can enable the network device to know the number of switchable radio frequency chains when the terminal device performs uplink Tx switching between at least one carrier set, so that the network device can more flexibly schedule the terminal device on the at least one carrier set.
- the first information may further include a fourth information element, where the fourth information element is used to indicate the number of radio frequency chains supported by the first frequency band set, or the total Tx supported on all carriers in the frequency band set.
- the frequency band set ⁇ A, C ⁇ supports 4 Tx
- the frequency band set ⁇ B D ⁇ supports 2 Tx
- the terminal equipment switches between the above two frequency band sets, it has more Tx.
- some Tx can only be switched between these two frequency band sets, and the remaining Tx cannot be shared by the frequency band set ⁇ B, D ⁇ .
- the present application can enable the network device to better schedule the terminal device in this scenario .
- the number of radio frequencies supported by this frequency band set is 2 by default.
- the present application can realize that when the number of radio frequency chains supported by at least one frequency band set reported by the terminal device is different, the network device can know the number of radio frequency chains supported by each frequency point set, which is convenient for the network device to operate on at least one carrier set. More flexibility in scheduling end devices.
- the number of radio frequency chains supported by one carrier and the maximum number of radio frequency chains of one carrier can be replaced with each other.
- the number of radio frequency chains supported by each frequency band set in a frequency band combination may be used to derive the number of radio frequency chains supported by this frequency band combination.
- the amount of terminal reporting can be reduced.
- each band combination supports The number of RF chains is 2.
- the number of radio frequency chains supported by this frequency band combination may be the maximum value of the number of radio frequency chains supported in all the included frequency band sets.
- the number of radio frequency chains supported by each band combination is 2.
- the number of radio frequency chains is 4, which is the sum of the number of radio frequency chains supported by these two frequency band sets.
- the number of radio frequency chains supported by these three frequency band sets is 2.
- the number of RF chains is 2.
- the number of RF chains supported by one band set is 2
- the number of RF chains supported by the other band set is 4, then the number of RF chains supported by each band combination is 6.
- the third frequency band set includes a fifth information element, where the fifth information element is used to indicate a second relationship within the third frequency band set, where the second relationship includes: handover and/or concurrency.
- the fifth information element is used to indicate the second relationship between frequency bands in the frequency band set, that is, the second relationship includes handover and/or concurrency.
- the relationship between frequency bands in the third frequency band set obeys the indication of the sixth information element in the first information
- the sixth information element indicates at least The third relationship between frequency bands in all frequency band sets in one frequency band combination
- the relationship between frequency bands in the fourth frequency band set in the at least one frequency band set obeys the third relationship, that is, the third relationship includes: handover and/or concurrency.
- the present application can realize that it is convenient for terminal equipment to uniformly report the relationship between frequency bands in some or all frequency band sets, thereby reducing the amount of reporting.
- a frequency band in a frequency band set reported by the UE supports multiple carriers, and the UE supports radio frequency chain switching on the aforementioned multiple carriers, and the UE reports the fifth information element corresponding to the frequency band set, then the aforementioned The relationship between the multiple carriers obeys the indication of the fifth information element corresponding to the frequency band set.
- a frequency band in a frequency band set reported by the UE supports multiple carriers, and the UE supports radio frequency chain switching on the aforementioned multiple carriers, but the UE does not report the fifth information element corresponding to the frequency band set, then the aforementioned The relationship between the plurality of carriers is subject to the indication of the sixth information element.
- the relationship between the aforementioned multiple carriers obeys the first frequency corresponding to the frequency band set.
- the eighth information element is used to indicate the fourth relationship among multiple carriers in one frequency band: handover and/or concurrent and/or sharing.
- the relationship between the at least two carriers is sharing, it can be understood that if the at least one radio frequency chain is on one of the at least two carriers, the aforementioned at least one radio frequency chain is simultaneously available on the at least two carriers.
- the UE can be scheduled or configured for uplink transmission on at least two carriers (or frequency bands) at the same time.
- the UE cannot be scheduled or configured for uplink transmission on at least two carriers (or frequency bands) at the same time.
- the present application can facilitate the terminal equipment to report the relationship between the frequency bands in each frequency band set more flexibly.
- the at least two frequency band sets reported by the terminal device may belong to at least two frequency band set groups.
- the terminal device reports the frequency band sets ⁇ A, C ⁇ , ⁇ B, D ⁇ , ⁇ A, D ⁇ and
- ⁇ C, D ⁇ the frequency band sets ⁇ A, C ⁇ and ⁇ B, D ⁇ may belong to the first frequency band set group
- the frequency band sets ⁇ A, D ⁇ and ⁇ C, D ⁇ may belong to the second frequency band set group.
- at least two frequency band sets in each frequency band set group can be switched and concurrently switched, but frequency band sets between different set groups cannot be switched.
- the terminal device reports a second frequency band combination
- the second frequency band combination includes a total of 8 frequency bands of A, B, C, D, E, F, G, and H, and is divided into ⁇ A, B ⁇ , ⁇ C, D ⁇ , ⁇ E, F ⁇ , ⁇ G, H ⁇
- the first frequency band set group includes frequency band sets ⁇ A, B ⁇ and ⁇ C, D ⁇
- the second frequency band set group includes frequency band set ⁇ E, F ⁇ and ⁇ G, H ⁇ , and do not overlap each other.
- at least two frequency band sets in each frequency band set group can be switched and concurrently switched, but frequency band sets between different set groups cannot be switched.
- all frequency bands in the frequency band set in the first frequency band set group are low frequency frequency bands, and all frequency bands in the frequency band set in the second frequency band set group are high frequency frequency bands, then at least two frequency bands in the first frequency band set group
- the frequency band sets can be switched and/or concurrently switched, and at least two frequency band sets in the second frequency band set group can be switched and/or concurrently switched, and the frequency band sets in the first frequency band set group and the frequency band sets in the second frequency band set group are not can be switched.
- the present application enables the network device to know the support status of the terminal device for performing uplink Tx switching between at least one carrier set.
- the first information may further include a seventh information element, where the seventh information element indicates the number of radio frequency chains supported by the third frequency band set group in the at least two frequency band set groups, or indicates all the radio frequency chains in the third frequency band set group.
- the number of radio frequency chains supported by one frequency band set group can be replaced by the number of radio frequency chains that can perform Tx switching in one frequency band set group, or can be replaced by the number of radio frequency chains that can perform Tx switching between at least one frequency band set in one frequency band set group. number of RF chains.
- the present application can enable the terminal device to switch between high frequency and low frequency respectively under the condition of supporting high and low frequency at the same time.
- the network device may configure M carrier sets for the terminal device, and at least one carrier included in the second carrier set in the M carrier sets may belong to the same frequency band, or may belong to different and the carriers in the carrier set can be sent simultaneously or in time division; the carriers between the carrier sets can also be sent simultaneously (concurrent mode) or time-divisionally sent (switching mode).
- the network device configures three carrier sets for the terminal device, namely carrier set 1 ⁇ CC1, CC2 ⁇ , carrier set 2 ⁇ CC3, CC4 ⁇ , and carrier set 3 ⁇ CC5 ⁇ , then the carrier set 1
- the two carriers may belong to the same frequency band, and the two carriers in the carrier set 2 may belong to two different frequency bands.
- two carriers of carrier set 1 can be sent at the same time (concurrent relationship)
- two carriers of carrier set 2 can be sent simultaneously (concurrent relationship)
- carrier set 1 and carrier set 2 can be sent simultaneously (concurrent relationship)
- carrier set 2 can be sent simultaneously (concurrent relationship).
- the third and the carrier set 1 may be transmitted in time division (switching relationship), and the carrier set 3 and the carrier set 2 may also be time-division transmission (switching relationship).
- the terminal device reports at least three frequency band sets to the network device.
- the first frequency band set includes at least frequency band 1, and the second frequency band set includes at least frequency band 3 and frequency band 4.
- the frequency band set 3 includes at least frequency band 5, the relationship between frequency bands in frequency band set 1 or between multiple carriers in a frequency band at least includes a concurrency relationship, the relationship between frequency bands in frequency band set 2 includes at least a concurrency relationship, and the frequency band set 1 and the The first relationship between frequency band set 2 is concurrency, the first relationship between frequency band set 1 and frequency band set 3 is handover, the first relationship between frequency band set 2 and frequency band set 3 is handover, and CC1 and CC2 belong to frequency band 1 , CC3 belongs to frequency band 3, CC4 belongs to frequency band 4, and CC5 belongs to frequency band 5.
- the relationship between the carriers belonging to the frequency bands in the frequency band set 1 and the carriers belonging to the frequency bands in the frequency band set 2 is handover.
- the relationship between the carriers belonging to the frequency bands in the frequency band set 1 and the carriers belonging to the frequency bands in the frequency band set 2 is concurrent.
- the relationship between frequency bands in the frequency band set is handover, then the relationship between carriers belonging to different frequency bands in the frequency band set is handover.
- the relationship between frequency bands in the frequency band set is concurrent, then the relationship between carriers belonging to different frequency bands in the frequency band set is concurrent.
- the terminal device reports the first relationship between the frequency band sets to the network device
- the relationship between the carrier sets configured by the network device for the terminal device also obeys the first relationship, or the network device is the terminal device.
- the relationship between the configured carrier sets is consistent with the first relationship.
- the carriers in the carrier set belong to frequency bands in the frequency band set.
- the carrier set may be replaced by a carrier group, and the frequency band set may also be replaced by a frequency band group, which is not specifically limited in this application.
- the present application enables the network device to know the number of switchable radio frequency chains when the terminal device performs uplink Tx switching in at least one carrier set group, which facilitates the network device to better schedule the terminal device on the at least one carrier set group .
- each frequency band set includes at least two frequency bands, and each frequency band set may only include the same frequency band, for example, the frequency band set ⁇ A, A ⁇ .
- FIG. 3 shows another method for sending and receiving information provided by the present application.
- the execution subjects of this method are network equipment and terminal equipment, and the specific method is shown in Figure 3:
- the terminal device determines first information, where the first information includes a first information element, the first information element indicates at least two frequency band sets, and the first frequency band set in the at least two frequency band sets includes at least one frequency band, and the at least two frequency band sets include at least one frequency band. At least one identical frequency band is included between any two frequency band sets in the frequency band set.
- the terminal device sends the first information to the network device.
- the network device receives the first information from the terminal device.
- the network device configures a first carrier set, and the frequency band set composed of frequency bands to which the carriers in the first carrier set belong do not belong to the at least two frequency band sets.
- set A belongs to set B means that all elements in set A exist in set B. If there are elements in set A that are not in set B, set A does not belong to set B.
- step S310 when the terminal device reports at least two frequency band sets, and at least one same frequency band is included between any two frequency band sets in the at least two frequency band sets, the network device will consider the terminal device to be Dynamic Tx switching is supported on the new frequency band set composed of these multiple frequency bands; or, the terminal device reports at least two frequency band sets, and any two frequency band sets in the at least two frequency band sets include at least one identical frequency band set.
- the network device When the number of radio frequency chains reported in the same frequency band is not zero, the network device will consider that the terminal device supports dynamic Tx switching on the new frequency band set composed of these multiple frequency bands.
- the new frequency band set here includes at least one same frequency band.
- the network device may consider that the terminal device supports dynamic Tx switching on the frequency band set ⁇ A, C, D ⁇ . And when there is Tx on A or D, Tx can be switched to C; when there is Tx on C, Tx can be switched to A or D; when there is Tx on A, Tx cannot be switched to D; During Tx, Tx cannot be switched to A.
- the network device can configure a new carrier set for the terminal device, and the frequency band set composed of frequency bands to which the carriers in the new carrier set belong is or belongs to the frequency band set ⁇ A, C, D ⁇ , and the carriers in the new carrier set
- the frequency band set formed by the frequency band to which it belongs does not belong to the frequency band set reported by the terminal device.
- the network device may consider that the terminal device supports dynamic Tx switching on the set of frequency bands ⁇ A, C, D ⁇ . And when there is Tx on A or D, Tx can be switched to C; when there is Tx on C, Tx can be switched to A or D; when there is Tx on A, Tx cannot be switched to D; During Tx, Tx cannot be switched to A.
- the network device can configure a new carrier set for the terminal device, and the frequency band set composed of frequency bands to which the carriers in the new carrier set belong is or belongs to the frequency band set ⁇ A, C, D ⁇ , and the carriers in the new carrier set
- the frequency band set formed by the frequency band to which it belongs does not belong to the frequency band set reported by the terminal device.
- a possible implementation is that, in the at least two frequency band sets reported by the terminal device, if there are at least three frequency bands in the at least three frequency band sets, at least three frequency bands in the at least three frequency band sets appear at least twice, or at least three frequency bands appear in the at least three frequency band sets. If all the frequency bands in the frequency band sets appear at least twice in the at least three frequency band sets, the network device will consider that the terminal device supports dynamic Tx switching in a new frequency band set. Wherein, the new frequency band set is composed of the at least three frequency bands that appear at least twice.
- the network device can consider that the terminal device supports dynamic Tx switching on the frequency band set ⁇ A, C, D ⁇ . In this way, the network device can configure a new carrier set for the terminal device.
- the frequency band set composed of frequency bands to which the carriers in the new carrier set belong is or belongs to the frequency band set ⁇ A, C, D ⁇ , and the carriers in the new carrier set belong to
- the frequency band set formed by the frequency band does not belong to the frequency band set reported by the terminal device.
- the network device will consider that the terminal device supports dynamic Tx switching on the frequency band set ⁇ A, C, D ⁇ .
- the network device can configure a new carrier set for the terminal device, and the frequency band set composed of frequency bands to which the carriers in the new carrier set belong is or belongs to the frequency band set ⁇ A, C, D ⁇ , and the carriers in the new carrier set
- the frequency band set formed by the frequency band to which it belongs does not belong to the frequency band set reported by the terminal device.
- the network device may consider that the terminal device supports dynamic Tx switching on the frequency band set ⁇ A, B, C, D ⁇ .
- the network device can configure a new set of carriers for the terminal device, and the set of frequency bands formed by the frequency bands to which the carriers in the new set of carriers belong are or belong to the set of frequency bands ⁇ A, B, C, D ⁇ , and in the new set of carriers,
- the frequency band set formed by the frequency band to which the carrier belongs does not belong to the frequency band set reported by the terminal device.
- the network device can consider that the terminal device supports dynamic Tx switching on the frequency band set ⁇ A, B, C, D ⁇ .
- the network device can configure a new set of carriers for the terminal device, and the set of frequency bands formed by the frequency bands to which the carriers in the new set of carriers belong are or belong to the set of frequency bands ⁇ A, B, C, D ⁇ , and in the new set of carriers
- the frequency band set formed by the frequency band to which the carrier belongs does not belong to the frequency band set reported by the terminal device.
- the present application can enable the terminal device to report the situation that the number of frequency bands in the dynamic Tx switching set is greater than 2.
- the network device will consider that the terminal device supports dynamic Tx switching in a new frequency band set, thereby The terminal device can be better scheduled, and the network device can configure a carrier set containing multiple frequency bands for the terminal device, and the frequency band set composed of the frequency bands to which the carriers in the carrier set belong does not belong to the original frequency band reported by the terminal device. gather.
- the communication device provided by the present application will be described below with reference to FIG. 4 and FIG. 5 .
- FIG. 4 shows a schematic block diagram of a communication apparatus 400 provided by the present application.
- the communication device may be a terminal device, or may be a component (for example, a chip or a circuit) that can be used in the terminal device.
- the communication apparatus 400 may include a processing unit 401 and a transceiver unit 402 .
- the communication apparatus 400 may be configured to perform the actions performed by the terminal device in the above method embodiments, the communication apparatus 400 may be a terminal device or a component that can be configured in the terminal device, and the transceiver unit 402 is configured to perform the above method embodiments.
- the processing unit 401 is configured to perform the operations related to the processing on the terminal device side in the above method embodiments.
- the communication apparatus 400 may implement the steps or processes performed by the terminal equipment corresponding to the methods 200 to 300 according to the embodiments of the present application, and the communication apparatus 400 may include a method for executing the methods 200 and 300 in FIG. A unit of the method performed by the terminal device in .
- each unit in the communication device 400 and the above-mentioned other operations and/or functions are for implementing the corresponding processes in the method 200 and the method 300 in FIG. 2 and FIG. 3 , respectively.
- the processing unit 401 can be used to execute the step 210 of the method 200
- the transceiver unit 402 can be used to execute the step 220 of the method 200 .
- the processing unit 401 can be used to execute the step 310 of the method 300
- the transceiver unit 402 can be used to execute the step 320 of the method 300 .
- a communication apparatus may be a terminal device, or may be a component (such as a chip or a circuit, etc.) used for the terminal device.
- the communication device may include a transceiver and a processor, and optionally, a memory.
- the transceiver may be used to implement the corresponding functions and operations corresponding to the above-mentioned sending unit and the processing unit, and the processor may be used to implement the corresponding functions and operations of the above-mentioned processing unit.
- the memory can be used to store execution instructions or application code, and the execution is controlled by the processor to implement the communication method provided by the above embodiments of the present application; and/or, it can also be used to temporarily store some data and instruction information.
- the memory may exist independently of the processor, and in this case, the memory may be connected to the processor through a communication line. In another possible design, the memory may also be integrated with the processor, which is not limited in this embodiment of the present application.
- the communication apparatus described in FIG. 4 may also be a network device, and may also be a component (for example, a chip or a circuit) that can be used in a network device.
- the communication apparatus 400 may include a processing unit 401 and a transceiver unit 402 .
- the communication apparatus 400 may be configured to perform the actions performed by the network device in the above method embodiments.
- the communication apparatus 400 may be a network device or a component configurable in the network device, and the transceiver unit 402 is configured to perform the above method embodiments.
- the processing unit 401 is configured to perform the operations related to the processing on the network device side in the above method embodiments.
- the communication apparatus 400 may implement steps or processes corresponding to the network equipment in the method 200 and the method 300 according to the embodiments of the present application.
- the communication apparatus 400 may include a method for executing the method 200 and the method 300 in FIG. A unit of a method performed by a network device.
- each unit in the communication device 400 and the above-mentioned other operations and/or functions are for implementing the corresponding processes in the method 200 and the method 300 in FIG. 2 and FIG. 3 , respectively.
- the processing unit 401 can be used to execute the step 240 of the method 200
- the transceiver unit 402 can be used to execute the step 230 of the method 200 .
- the processing unit 401 can be used to execute the step 340 of the method 300
- the transceiver unit 402 can be used to execute the step 330 of the method 300 .
- processing unit 401 and the transceiver unit 402 are configured to perform the actions of the second terminal device in the aforementioned method side.
- the processing unit 401 and the transceiver unit 402 are configured to perform the actions of the second terminal device in the aforementioned method side.
- the processing unit 401 and the transceiver unit 402 are configured to perform the actions of the second terminal device in the aforementioned method side.
- the processing unit 401 and the transceiver unit 402 are configured to perform the actions of the second terminal device in the aforementioned method side.
- the processing unit 401 and the transceiver unit 402 are configured to perform the actions of the second terminal device in the aforementioned method side.
- a communication apparatus is also provided, and the communication apparatus may be a network device, or may be a component (for example, a chip or a circuit, etc.) used for a network device.
- the transmission device may include a transceiver and a processor, and optionally, a memory.
- the transceiver may be used to implement the corresponding functions and operations corresponding to the above-mentioned sending unit and the processing unit, and the processor may be used to implement the corresponding functions and operations of the above-mentioned processing unit.
- the memory can be used to store execution instructions or application code, and the execution is controlled by the processor to implement the communication method provided by the above embodiments of the present application; and/or, it can also be used to temporarily store some data and instruction information.
- the memory may exist independently of the processor, and in this case, the memory may be connected to the processor through a communication line. In another possible design, the memory may also be integrated with the processor, which is not limited in this embodiment of the present application.
- FIG. 5 is a structural block diagram of a communication device provided by the present application.
- the communication device may be a terminal device.
- the terminal device includes a processor 501, a radio frequency circuit, an antenna, and an input and output device.
- the processor 501 may be used to process communication protocols and communication data, control terminal devices, execute software programs, process data of software programs, and the like.
- the radio frequency circuit is mainly used for the conversion of the baseband signal and the radio frequency signal and the processing of the radio frequency signal.
- Antennas are mainly used to send and receive radio frequency signals in the form of electromagnetic waves.
- Input and output devices such as touch screens, display screens, keyboards, etc., are mainly used to receive data input by users and output data to users. It should be noted that some types of terminal equipment may not have input and output devices.
- the terminal device may further include a memory 502, which is mainly used for storing software programs and data.
- the processor 501 When data needs to be sent, the processor 501 performs baseband processing on the data to be sent, and outputs a baseband signal to a radio frequency circuit.
- the radio frequency circuit performs radio frequency processing on the baseband signal and sends the radio frequency signal through an antenna in the form of electromagnetic waves.
- the radio frequency circuit receives the radio frequency signal through the antenna, converts the radio frequency signal into a baseband signal, and outputs the baseband signal to the processor, which converts the baseband signal into data and processes the data.
- only one memory and processor are shown in FIG. 5 . In an actual end device product, there may be one or more processors and one or more memories.
- the memory may also be referred to as a storage medium or a storage device or the like.
- the memory may be set independently of the processor, or may be integrated with the processor, which is not limited in this embodiment of the present application.
- an antenna and a radio frequency circuit with a transceiver function can be regarded as the transceiver 503 of the terminal device, and a processor with a processing function can be regarded as a processing unit of the terminal device.
- a transceiver may also be referred to as a transceiver unit, a transceiver, a transceiver, or the like.
- the processing unit may also be referred to as a processor, a processing single board, a processing module, a processing device, and the like.
- the device for implementing the receiving function in the transceiver 503 may be regarded as a receiving unit, and the device for implementing the transmitting function in the transceiver 503 may be regarded as a transmitting unit, that is, the transceiver 503 includes a receiving unit and a transmitting unit.
- the receiving unit may also sometimes be referred to as a receiver, receiver, or receiving circuit, or the like.
- the transmitting unit may also sometimes be referred to as a transmitter, a transmitter, or a transmitting circuit, or the like.
- the processor 501, the memory 502 and the transceiver 503 communicate with each other through an internal connection path to transmit control and/or data signals.
- the memory 502 may store instructions for performing the methods performed by the terminal device in the methods shown in FIGS. 2 to 3 .
- the processor 501 can execute the instructions stored in the memory 502 in combination with other hardware (such as the transceiver 503) to complete the steps performed by the first terminal device in the methods shown in Figs. The description in the embodiment shown in FIG. 3 .
- the methods disclosed in the above embodiments of the present application may be applied to the processor 501 or implemented by the processor 801 .
- the processor 501 may be an integrated circuit chip with signal processing capability.
- each step of the above-mentioned method can be completed by an integrated logic circuit of hardware in the processor 501 or an instruction in the form of software.
- the communication apparatus shown in FIG. 5 may be a network device.
- the network device includes a processor 501, a radio frequency circuit, an antenna, and an input and output device.
- the processor 501 may be used to process communication protocols and communication data, control network devices, execute software programs, process data of software programs, and the like.
- the radio frequency circuit is mainly used for the conversion of the baseband signal and the radio frequency signal and the processing of the radio frequency signal.
- Antennas are mainly used to send and receive radio frequency signals in the form of electromagnetic waves.
- Input and output devices, such as touch screens, display screens, and keyboards, are mainly used to receive data input by users and output data to users. It should be noted that some types of network devices may not have input and output devices.
- the network device may further include a memory 502, which is mainly used for storing software programs and data.
- the processor 501 When data needs to be sent, the processor 501 performs baseband processing on the data to be sent, and outputs a baseband signal to a radio frequency circuit.
- the radio frequency circuit performs radio frequency processing on the baseband signal and sends the radio frequency signal through an antenna in the form of electromagnetic waves.
- the radio frequency circuit receives the radio frequency signal through the antenna, converts the radio frequency signal into a baseband signal, and outputs the baseband signal to the processor, which converts the baseband signal into data and processes the data.
- FIG. 5 only one memory and processor are shown in FIG. 5 . In an actual network device product, there may be one or more processors and one or more memories.
- the memory may also be referred to as a storage medium or a storage device or the like.
- the memory may be set independently of the processor, or may be integrated with the processor, which is not limited in this embodiment of the present application.
- the antenna and the radio frequency circuit with a transceiver function can be regarded as the transceiver 503 of the network device, and the processor with the processing function can be regarded as a processing unit of the network device.
- a transceiver may also be referred to as a transceiver unit, a transceiver, a transceiver, or the like.
- the processing unit may also be referred to as a processor, a processing single board, a processing module, a processing device, and the like.
- the device for implementing the receiving function in the transceiver 503 may be regarded as a receiving unit, and the device for implementing the transmitting function in the transceiver 503 may be regarded as a transmitting unit, that is, the transceiver 503 includes a receiving unit and a transmitting unit.
- the receiving unit may also sometimes be referred to as a receiver, receiver, or receiving circuit, or the like.
- the transmitting unit may also sometimes be referred to as a transmitter, a transmitter, or a transmitting circuit, or the like.
- the processor 501, the memory 502 and the transceiver 503 communicate with each other through an internal connection path to transmit control and/or data signals.
- the methods disclosed in the above embodiments of the present application may be applied to the processor 501 or implemented by the processor 501 .
- the processor 501 may be an integrated circuit chip with signal processing capability.
- each step of the above-mentioned method can be completed by an integrated logic circuit of hardware in the processor 501 or an instruction in the form of software.
- the processor described in each embodiment of the present application may be a general-purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (field programmable gate array) , FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components.
- DSP digital signal processor
- ASIC application specific integrated circuit
- FPGA field programmable gate array
- the methods, steps, and logic block diagrams disclosed in the embodiments of this application can be implemented or executed.
- a general purpose processor may be a microprocessor or the processor may be any conventional processor or the like.
- the steps of the method disclosed in conjunction with the embodiments of the present application may be directly embodied as executed by a hardware decoding processor, or executed by a combination of hardware and software modules in the decoding processor.
- Software modules can be located in random access memory (RAM), flash memory, read-only memory (ROM), programmable read-only memory or electrically erasable programmable memory, registers, etc. in the storage medium.
- RAM random access memory
- ROM read-only memory
- the storage medium is located in the memory, and the processor reads the instructions in the memory, and completes the steps of the above method in combination with its hardware.
- the memory 502 may store instructions for performing the method performed by the network device in the methods shown in FIGS. 2-3 .
- the processor 501 can execute the instructions stored in the memory 502 in combination with other hardware (such as the transceiver 503) to complete the steps performed by the network device in the method shown in FIG. description in the illustrated embodiment.
- Embodiments of the present application further provide a chip, where the chip includes a transceiver unit and a processing unit.
- the transceiver unit may be an input/output circuit or a communication interface;
- the processing unit may be a processor, a microprocessor or an integrated circuit integrated on the chip.
- the chip can execute the methods on the terminal device side and the network device side in the foregoing method embodiments.
- Embodiments of the present application further provide a computer-readable storage medium, on which instructions are stored, and when the instructions are executed, the methods on the terminal device side and the network device side in the foregoing method embodiments are executed.
- the embodiments of the present application further provide a computer program product including an instruction, when the instruction is executed, the methods on the terminal device side and the network device side in the foregoing method embodiments are performed.
- Embodiments of the present application further provide a communication system, including a terminal device and a network device, which are respectively configured to execute the methods on the terminal device side and the network device side in the foregoing method embodiments.
- the terminal device includes a hardware layer, an operating system layer running on the hardware layer, and an application layer running on the operating system layer.
- This hardware layer includes hardware such as central processing unit (CPU), memory management unit (MMU), and memory (also called main memory).
- the operating system may be any one or more computer operating systems that implement business processing through processes, such as a Linux operating system, a Unix operating system, an Android operating system, an iOS operating system, or a Windows operating system.
- the application layer includes applications such as browsers, address books, word processing software, and instant messaging software.
- the embodiments of the present application do not specifically limit the specific structure of the execution body of the methods provided by the embodiments of the present application, as long as the program that records the codes of the methods provided by the embodiments of the present application can be executed to provide the methods provided by the embodiments of the present application.
- the execution subject of the method provided by the embodiment of the present application may be a terminal device, or a functional module in the terminal device that can call a program and execute the program.
- the network device in this application may implement the functions in the above embodiments through one or more functional units (or functional modules), and the one or more functional units (or functional modules) may be located in the in the same device or in a different device.
- the disclosed system, apparatus and method may be implemented in other manners.
- the apparatus embodiments described above are only illustrative.
- the division of the units is only a logical function division. In actual implementation, there may be other division methods.
- multiple units or components may be combined or Can be integrated into another system, or some features can be ignored, or not implemented.
- the shown or discussed mutual coupling or direct coupling or communication connection may be through some interfaces, indirect coupling or communication connection of devices or units, and may be in electrical, mechanical or other forms.
- the units described as separate components may or may not be physically separated, and components displayed as units may or may not be physical units, that is, may be located in one place, or may be distributed to multiple network units. Some or all of the units may be selected according to actual needs to achieve the purpose of the solution in this embodiment.
- each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically alone, or two or more units may be integrated into one unit.
- the functions, if implemented in the form of software functional units and sold or used as independent products, may be stored in a computer-readable storage medium.
- the technical solution of the present application can be embodied in the form of a software product in essence, or the part that contributes to the prior art or the part of the technical solution.
- the computer software product is stored in a storage medium, including Several instructions are used to cause a computer device (which may be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present application.
- the aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (ROM), random access memory (RAM), magnetic disk or optical disk and other media that can store program codes .
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Abstract
Description
| 频段 | A | B | C | D |
| 最大射频链数量 | 1 | 1 | 2 | 2 |
| 频段 | A | C | D |
| 最大射频链数量 | 1 | 2 | 2 |
| 频段 | A | B | C | D |
| 最大射频链数量 | 1 | 0 | 2 | 2 |
| 频段 | A | B | C | D |
| 最大射频链数量 | 1 | 1 | 2 | 2 |
Claims (36)
- 一种信息发送的方法,其特征在于,包括:终端设备确定第一信息,所述第一信息包括第一信元和第二信元,所述第一信元指示至少两个频段集合,所述至少两个频段集合中第一频段集合包括至少一个频段,所述第二信元指示所述至少两个频段集合中第二频段集合与所述第一频段集合之间的第一关系,所述第一关系包括:切换和/或并发;所述终端设备向网络设备发送所述第一信息。
- 根据权利要求1所述的方法,其特征在于,所述至少一个频段集合中的所有频段属于第一频段组合,所述第一信息还包括第三信元,所述第三信元指示所述第一频段组合支持的射频链数量。
- 根据权利要求1所述的方法,其特征在于,所述第一信息包括第四信元,所述第四信元指示所述第一频段集合支持的射频链数量。
- 根据权利要求1至3中任一项所述的方法,其特征在于,所述至少一个频段集合中第三频段集合包括第五信元,所述第五信元指示所述第三频段集合内频段之间的第二关系,所述第二关系包括:切换和/或并发。
- 根据权利要求1至3中任一项所述的方法,其特征在于,所述第一信息还包括第六信元,所述第六信元指示至少一个频段组合中所有频段集合内频段之间的第三关系,所述至少一个频段集合中第四频段集合内频段之间的关系服从第三关系,所述第三关系包括:切换和/或并发。
- 根据权利要求1至5任一项所述的方法,其特征在于,所述至少一个频段集合属于至少两个频段集合组,所述至少两个频段集合组中第一频段集合组与第二频段集合组之间不能切换。
- 根据权利要求6所述的方法,其特征在于,所述第一信息还包括第七信元,所述第七信元指示所述至少两个频段集合组中第三频段集合组支持的射频链数量。
- 一种信息接收的方法,其特征在于,包括:网络设备接收来自终端设备的第一信息,所述第一信息包括第一信元,所述第一信元指示至少两个频段集合,所述至少两个频段集合中第一频段集合包括至少一个频段,所述至少两个频段集合中任意两个频段集合之间包含至少一个相同的频段;所述网络设备配置第一载波集合,所述第一载波集合中载波所属的频段组成的频段集合不属于所述至少两个频段集合。
- 根据权利要求8所述的方法,其特征在于,在所述至少两个频段集合中,至少三个频段集合中的至少三个频段在所述至少三个频段集合中出现至少两次,或者,至少三个频段集合中的所有频段在所述至少三个频段集合中出现至少两次。
- 一种信息接收的方法,其特征在于,包括:网络设备接收来自终端设备的第一信息,所述第一信息包括第一信元和第二信元,所 述第一信元指示至少两个频段集合,所述至少两个频段集合中第一频段集合包括至少一个频段,所述第二信元指示所述至少两个频段集合中第二频段集合与所述第一频段集合之间的第一关系,所述第一关系包括:切换和/或并发;所述网络设备配置M个载波集合,所述M个载波集合中的载波属于所述至少两个频段集合中的至少一个频段,所述M个载波集合中第二载波集合包括至少一个载波,所述M个载波集合中第三载波集合与所述第二载波集合之间的关系为所述第一关系,其中,所述第二载波集合为所述第一频段集合对应的载波集合,所述第三载波集合为所述第二频段集合对应的载波集合,所述M大于或等于2,所述M为正整数。
- 根据权利要求10所述的方法,其特征在于,所述至少一个频段集合中的所有频段属于第一频段组合,所述第一信息还包括第三信元,所述第三信元指示所述第一频段组合支持的射频链数量。
- 根据权利要求10所述的方法,其特征在于,所述第一信息包括第四信元,所述第四信元指示所述第一频段集合支持的射频链数量。
- 根据权利要求10至12中任一项所述的方法,其特征在于,所述至少一个频段集合中第三频段集合包括第五信元,所述第五信元指示所述第三频段集合内频段之间的第二关系,所述第二关系包括:切换和/或并发。
- 根据权利要求10至12中任一项所述的方法,其特征在于,所述第一信息还包括第六信元,所述第六信元指示至少一个频段组合中所有频段集合内频段之间的第三关系,所述至少一个频段集合中第四频段集合内频段之间的关系服从第三关系,所述第三关系包括:切换和/或并发。
- 根据权利要求10至14任一项所述的方法,其特征在于,所述至少一个频段集合属于至少两个频段集合组,所述至少两个频段集合组中第一频段集合组与第二频段集合组之间不能切换。
- 根据权利要求15所述的方法,其特征在于,所述第一信息还包括第七信元,所述第七信元指示所述至少两个频段集合组中第三频段集合组支持的射频链数量。
- 根据权利要求10至16中任一项所述的方法,其特征在于,所述第二载波集合包括的至少一个载波对应于所述至少两个频段集合中的同一个频段,或者,所述第二载波集合包括的至少一个载波对应于所述至少两个频段集合中的不同频段。
- 一种通信装置,其特征在于,包括:处理单元,用于确定第一信息,所述第一信息包括第一信元和第二信元,所述第一信元指示至少两个频段集合,所述至少两个频段集合中第一频段集合包括至少一个频段,所述第二信元指示所述至少两个频段集合中第二频段集合与所述第一频段集合之间的第一关系,所述第一关系包括:切换和/或并发;收发单元,用于向网络设备发送所述第一信息。
- 根据权利要求18所述的装置,其特征在于,所述至少一个频段集合中的所有频段属于第一频段组合,所述第一信息还包括第三信元,所述第三信元指示所述第一频段组合支持的射频链数量。
- 根据权利要求18所述的装置,其特征在于,所述第一信息包括第四信元,所述第四信元指示所述第一频段集合支持的射频链数量。
- 根据权利要求18至20中任一项所述的装置,其特征在于,所述至少一个频段集合中第三频段集合包括第五信元,所述第五信元指示所述第三频段集合内频段之间的第二关系,所述第二关系包括:切换和/或并发。
- 根据权利要求18至20中任一项所述的装置,其特征在于,所述第一信息还包括第六信元,所述第六信元指示至少一个频段组合中所有频段集合内频段之间的第三关系,所述至少一个频段集合中第四频段集合内频段之间的关系服从第三关系,所述第三关系包括:切换和/或并发。
- 根据权利要求18至22任一项所述的装置,其特征在于,所述至少一个频段集合属于至少两个频段集合组,所述至少两个频段集合组中第一频段集合组与第二频段集合组之间不能切换。
- 根据权利要求23所述的装置,其特征在于,所述第一信息还包括第七信元,所述第七信元指示所述至少两个频段集合组中第三频段集合组支持的射频链数量。
- 一种通信装置,其特征在于,包括:收发单元,用于接收来自终端设备的第一信息,所述第一信息包括第一信元,所述第一信元指示至少两个频段集合,所述至少两个频段集合中第一频段集合包括至少一个频段,所述至少两个频段集合中任意两个频段集合之间包含至少一个相同的频段;处理单元,用于配置第一载波集合,所述第一载波集合中载波所属的频段组成的频段集合不属于所述至少两个频段集合。
- 根据权利要求25所述的装置,其特征在于,在所述至少两个频段集合中,至少三个频段集合中的至少三个频段在所述至少三个频段集合中均出现至少两次,或者,至少三个频段集合中的所有频段在所述至少三个频段集合中均出现至少两次。
- 一种通信装置,其特征在于,包括:收发单元,用于接收来自终端设备的第一信息,所述第一信息包括第一信元和第二信元,所述第一信元指示至少两个频段集合,所述至少两个频段集合中第一频段集合包括至少一个频段,所述第二信元指示所述至少两个频段集合中第二频段集合与所述第一频段集合之间的第一关系,所述第一关系包括:切换和/或并发;处理单元,用于配置M个载波集合,所述M个载波集合中的载波属于所述至少两个频段集合中的至少一个频段,所述M个载波集合中第二载波集合包括至少一个载波,所述M个载波集合中第三载波集合与所述第二载波集合之间的关系为所述第一关系,其中,所述第二载波集合为所述第一频段集合对应的载波集合,所述第三载波集合为所述第二频段集合对应的载波集合,所述M大于或等于2,所述M为正整数。
- 根据权利要求27所述的装置,其特征在于,所述至少一个频段集合中的所有频段属于第一频段组合,所述第一信息还包括第三信元,所述第三信元指示所述第一频段组合支持的射频链数量。
- 根据权利要求27所述的装置,其特征在于,所述第一信息包括第四信元,所述第四信元指示所述第一频段集合支持的射频链数量。
- 根据权利要求27至29中任一项所述的装置,其特征在于,所述至少一个频段集合中第三频段集合包括第五信元,所述第五信元指示所述第三频段集合内频段之间的第二关系,所述第二关系包括:切换和/或并发。
- 根据权利要求27至30中任一项所述的装置,其特征在于,所述第一信息还包括第六信元,所述第六信元指示至少一个频段组合中所有频段集合内频段之间的第三关系,所述至少一个频段集合中第四频段集合内频段之间的关系服从第三关系,所述第三关系包括:切换和/或并发。
- 根据权利要求27至31任一项所述的装置,其特征在于,所述至少一个频段集合属于至少两个频段集合组,所述至少两个频段集合组中第一频段集合组与第二频段集合组之间不能切换。
- 根据权利要求32所述的装置,其特征在于,所述第一信息还包括第七信元,所述第七信元指示所述至少两个频段集合组中第三频段集合组支持的射频链数量。
- 根据权利要求27至33中任一项所述的装置,其特征在于,所述第二载波集合包括的至少一个载波对应于所述至少两个频段集合中的同一个频段,或者,所述第二载波集合包括的至少一个载波对应于所述至少两个频段集合中的不同频段。
- 一种通信装置,其特征在于,包括:处理器和存储器,所述处理器与存储器耦合,所述存储器用于存储计算机程序,处理器,用于执行所述存储器中存储的计算机程序,以使得所述通信装置执行如权利要求1至7中任一项所述的通信方法,或以使得所述通信装置执行如权利要求8至9中任一项所述的通信方法,或以使得所述通信装置执行如权利要求10至17中任一项所述的通信方法。
- 一种计算机可读存储介质,存储有指令,当所述指令在计算机上运行时,使得所述计算机执行如权利要求1至7中任一项所述的通信方法,或使得所述计算机执行如权利要求8至9中任一项所述的通信方法,或使得所述计算机执行如权利要求10至17中任一项所述的通信方法。
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| US20240031114A1 (en) | 2024-01-25 |
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