Communication method and device, storage medium, electronic equipment and chip

By adjusting the power allocation priority of the carrier-transmitted SRS, the problem of insufficient SRS power in the carrier aggregation scenario is solved, ensuring the accurate judgment of the uplink status by network equipment and the stability of downlink traffic.

CN120379033APending Publication Date: 2025-07-25BEIJING X RING TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202410749460.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-06-11
Publication Date
2025-07-25

AI Technical Summary

Technical Problem

In the carrier aggregation scenario, the power allocation priority of the carrier wheel-transmitted detection reference signal (SRS) is the lowest, resulting in insufficient transmission power, affecting the network equipment's accurate judgment of the uplink condition, and thus causing downstream flow fluctuations.

Method used

Ensure that the SRS is transmitted at normal power by adjusting the power allocation priority of the carrier wheel transmit SRS so that it is higher than the priority of other channels, such as PUCCH and PUSCH, and when necessary, ensure that its transmit power is not lower than the transmit power of other channels.

Benefits of technology

The strength of network equipment receiving SRS signals is improved, the accurate judgment of the uplink status is ensured, and the downlink traffic of the corresponding cells of network equipment is stabilized.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a communication method and device, a storage medium, electronic equipment and a chip. The method comprises the following steps: firstly, acquiring a power distribution priority corresponding to a carrier wave in-turn SRS (Sounding Reference Signal); then, the power distribution priority is subjected to heightening processing; and then distributing the first transmitting power corresponding to the carrier wave in-turn transmission SRS according to the power distribution priority after the heightening processing. Through application of the technical scheme of the invention, the possibility of allocating relatively low transmitting power can be reduced, and it is ensured as far as possible that carrier wave turn transmission of the SRS is realized at normal transmitting power, so that the signal strength of the SRS received by the network equipment is not weakened, the network equipment can accurately judge the uplink condition, and the user experience is improved. Therefore, the network equipment is ensured to schedule the downlink flow of the corresponding cell.
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Description

Technical Field

[0001] The present disclosure relates to the field of communication technologies, and in particular, to a communication method, apparatus, storage medium, electronic device, and chip. Background Art

[0002] Carrier Aggregation (CA) is a wireless communication technology that allows multiple carriers (frequency channels) to be used simultaneously or alternately to increase data transmission rate and improve network capacity. Summary of the Invention

[0003] The present disclosure provides a communication method, apparatus, storage medium, electronic device, and chip, mainly aiming to improve the technical problem that in the current power allocation in the CA scenario, the power allocation priority of the carrier round-robin sounding reference signal (SRS) in the related art is the lowest, resulting in a relatively low transmission power of the allocated carrier round-robin SRS, and thus the signal strength of the SRS received by the network device will be weakened, affecting the accurate judgment of the network device on the uplink status, and causing fluctuations in the downlink traffic of the corresponding cell scheduled by the network device.

[0004] According to a first aspect of an embodiment of the present disclosure, a communication method is provided, including:

[0005] Obtaining the power allocation priority corresponding to the carrier round-robin SRS;

[0006] Performing a boosting process on the power allocation priority;

[0007] Allocating a first transmission power corresponding to the carrier round-robin SRS according to the boosted power allocation priority.

[0008] Optionally, performing a boosting process on the power allocation priority includes:

[0009] Adjusting the power allocation priority corresponding to the carrier round-robin SRS so that the power allocation priority corresponding to the carrier round-robin SRS is higher than the power allocation priority of the first channel.

[0010] Optionally, the first channel includes at least one of the following:

[0011] Physical Uplink Control Channel (PUCCH);

[0012] Physical Uplink Shared Channel (PUSCH).

[0013] Optionally, the method further includes: transmitting sounding reference signal (SRS) on a first component carrier (CC) according to the first transmission power; wherein, the first transmission power is not lower than a second transmission power for transmitting the first channel on a second carrier unit, and the time domain resources of the SRS overlap with those of the first channel.

[0014] Optionally, adjusting the power allocation priority corresponding to the carrier rotation SRS such that the power allocation priority corresponding to the carrier rotation SRS is higher than the power allocation priority corresponding to the first channel includes:

[0015] Adjusting the power allocation priority corresponding to the carrier rotation SRS such that the power allocation priority corresponding to the carrier rotation SRS is higher than the power allocation priority corresponding to the first channel and lower than the power allocation priority corresponding to the second channel.

[0016] Optionally, the second channel includes: physical random access channel (PRACH).

[0017] According to a second aspect of the embodiments of the present disclosure, a communication device is provided, including:

[0018] An acquisition module, configured to acquire the power allocation priority corresponding to the carrier rotation SRS;

[0019] An adjustment module, configured to perform a raising process on the power allocation priority;

[0020] An allocation module, configured to allocate a first transmission power corresponding to the carrier rotation SRS according to the raised power allocation priority.

[0021] According to a third aspect of the embodiments of the present disclosure, a computer-readable storage medium is provided, on which a computer program is stored, and when the computer program is executed by a processor, the method described in the first aspect is implemented.

[0022] According to a fourth aspect of the embodiments of the present disclosure, a communication device is provided, including: a transceiver; a memory; a processor, which are respectively connected to the transceiver and the memory, and configured to control wireless signal transceiver of the transceiver by executing computer-executable instructions on the memory, and be capable of implementing the method described in the first aspect.

[0023] According to a fifth aspect of the embodiments of the present disclosure, a computer program product is provided, on which a computer program is stored, and when the computer program is executed by a processor, the method described in the first aspect is implemented.

[0024] According to a sixth aspect of the embodiments of the present disclosure, a chip is provided, including at least one processor and a communication interface; the communication interface is configured to receive signals input into the chip or signals output from the chip, and the processor communicates with the communication interface and implements the communication method described in the first aspect through logic circuits or by executing code instructions.

[0025] By means of the above technical solution, the present disclosure provides a communication method, device, storage medium, electronic device and chip. Specifically, first, obtain the power allocation priority corresponding to the carrier round-robin SRS; then perform a boosting process on the power allocation priority; and then allocate the first transmission power corresponding to the carrier round-robin SRS according to the boosted power allocation priority. Compared with the current related technology in which the power allocation priority of the carrier round-robin SRS is configured to be the lowest, the present disclosure can boost the power allocation priority of the carrier round-robin SRS, and then allocate the transmission power corresponding to the carrier round-robin SRS according to the boosted power allocation priority. In this way, when a certain carrier unit needs to send SRS, if there are also transmission requirements for signals overlapping with the SRS time-domain resources in other carrier units, since the power allocation priority of this SRS has been boosted, the possibility of its being allocated a lower transmission power can be reduced, and it is possible to ensure that the carrier round-robin SRS is achieved with a normal transmission power as much as possible, thereby ensuring that the signal strength of the SRS received by the network device will not be weakened, and the network device can accurately judge the uplink condition, so as to ensure that the network device schedules the downlink traffic of the corresponding cell.

[0026] It should be understood that the above general description and the following detailed description are only exemplary and explanatory, and cannot limit the present disclosure. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] The accompanying drawings herein are incorporated into the specification and constitute a part of this specification, showing embodiments consistent with the present disclosure and used together with the specification to explain the principles of the present disclosure.

[0028] Figure 1 The flowchart of a communication method provided by an embodiment of the present disclosure is shown;

[0029] Figure 2 The flowchart of an example provided by an embodiment of the present disclosure is shown;

[0030] Figure 3 The flowchart of a communication method provided by an embodiment of the present disclosure is shown;

[0031] Figure 4 The flowchart of an example provided by an embodiment of the present disclosure is shown;

[0032] Figure 5 The flowchart of an example provided by an embodiment of the present disclosure is shown;

[0033] Figure 6 Shows a schematic structural diagram of a communication device provided by an embodiment of the present disclosure;

[0034] Figure 7 Shows a schematic structural diagram of a communication device provided by an embodiment of the present disclosure;

[0035] Figure 8 Shows a schematic structural diagram of a chip provided by an embodiment of the present disclosure. Detailed implementation manners

[0036] Some embodiments of the present disclosure will be described in detail herein, and examples thereof are shown in the drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. Various changes, modifications, and equivalents of the methods, apparatuses, and / or systems described herein will become apparent after understanding the present disclosure. For example, the order of operations described herein is merely an example and is not limited to those set forth herein, but may be changed as will be apparent after understanding the present disclosure, except for operations that must be performed in a specific order. Additionally, descriptions of features known in the art may be omitted for the sake of clarity and conciseness. It should be noted that, without conflict, the embodiments and features in the embodiments of the present disclosure may be combined with each other.

[0037] The implementation manners described in some embodiments of the present disclosure below do not represent all implementation manners consistent with the present disclosure. On the contrary, they are merely examples of apparatuses and methods consistent with some aspects of the present disclosure as detailed in the appended claims.

[0038] Figure 1 Is a flowchart of a communication method shown according to some embodiments of the present disclosure, as Figure 1 Shown, including the following steps.

[0039] Step 101, obtain the power allocation priority corresponding to the carrier round-robin SRS.

[0040] For the execution subject of this embodiment, it may be a communication device or a communication device, such as an electronic device or a chip, etc., and may be configured on the end side such as a terminal device.

[0041] In some examples, the terminal device may be referred to as a terminal, user equipment (UE), mobile station (MS), mobile terminal (MT), etc. The terminal device may also be an automobile with communication functions, a smart car, a mobile phone, a wearable device, a tablet computer (Pad), a computer with wireless transceiver functions, a virtual reality (VR) device, an augmented reality (AR) device, a wireless terminal device in industrial control, a wireless terminal device in self-driving, a wireless terminal device in remote medical surgery, a wireless terminal device in a smart grid, a wireless terminal device in transportation safety, a wireless terminal device in a smart city, a wireless terminal device in a smart home, and so on. This embodiment does not limit the specific technologies and specific device forms adopted by the terminal device.

[0042] In the CA scenario, it is allowed to simultaneously or alternately use multiple carriers (frequency channels) to increase the data transmission rate and improve the network capacity. Carrier Aggregation SRS can be used to evaluate the channel conditions of the uplink. By using the mechanism in CA, SRS is systematically sent to multiple carriers to collect the channel state information of each carrier. In the CA scenario, the network can simultaneously use multiple component carriers (CCs) to transmit data to improve the data rate and system capacity. To optimize the use of these carriers, the network needs to know the uplink conditions of each component carrier, including fading, phase response, etc. By sending SRS on each component carrier, the network device can measure and collect this information, which is convenient for the network device to schedule the downlink traffic of the corresponding cell.

[0043] In some examples, the network device can be a device such as a base station or a satellite. In this embodiment, no specific limitation is made. The network device can be an entity on the network side for transmitting or receiving signals. For example, the network device can be a communication satellite, an evolved NodeB (eNB), a transmission reception point (TRP), a next generation NodeB (gNB) in an NR system, a base station in other future mobile communication systems, or an access node in a wireless fidelity (WiFi) system, etc. The embodiments of the present disclosure do not limit the specific technologies and specific device forms adopted by the network device. The network device provided in this embodiment can be composed of a central unit (CU) and a distributed unit (DU). Among them, the CU can also be called a control unit. Adopting the CU-DU structure can split the protocol layer of the network device, such as a base station. The functions of some protocol layers are centrally controlled by the CU, and the functions of the remaining part or all protocol layers are distributed in the DU, and the DU is centrally controlled by the CU.

[0044] For some examples, when performing power allocation in the CA scenario of the New Radio (NR) mode, it involves the transmission power allocation of signals such as PRACH, PUCCH, PUSCH, and SRS. Specifically, the transmission power can be allocated according to the power allocation priorities of these signals. In the related art, the power allocation priority of SRS is configured to be the lowest, that is, SRS has the lowest power allocation priority. In this way, when a certain carrier unit needs to send SRS, if there are also transmission requirements for these signals whose time domain resources overlap with the SRS of other carrier units, since the power allocation priority of this SRS is the lowest, the transmitted power of the carrier round-robin SRS allocated may be relatively low. As a result, the signal strength of the SRS received by the network device will be weakened, affecting the accurate judgment of the network device on the uplink condition, and thus causing fluctuations in the downlink traffic of the corresponding cell scheduled by the network device. However, in this embodiment, the power allocation priority corresponding to the carrier round-robin SRS can be increased, and according to the increased power allocation priority, the transmitted power corresponding to the carrier round-robin SRS is allocated, that is, the process shown in steps 102 to 103 is executed, which can reduce the possibility of it being allocated a relatively low transmitted power and ensure that the carrier round-robin SRS is transmitted at a normal transmitted power as much as possible.

[0045] Step 102: Increase the power allocation priority corresponding to the carrier round-robin SRS.

[0046] For example, compared with the power allocation priorities of some signals, the power allocation priority corresponding to the carrier-rotated SRS can be increased. Specifically, how much the power allocation priority is increased can be determined according to actual requirements. For example, the power allocation priority corresponding to the carrier-rotated SRS is higher than the power allocation priority corresponding to signal A, etc. The purpose is to reduce the possibility that the carrier-rotated SRS is allocated a lower transmission power.

[0047] Step 103: Allocate the first transmission power corresponding to the carrier-rotated SRS according to the adjusted power allocation priority.

[0048] Compared with the method in the current related technology that configures the lowest power allocation priority for the carrier-rotated SRS, in this embodiment, the power allocation priority of the carrier-rotated SRS can be increased, and then the transmission power corresponding to the carrier-rotated SRS can be allocated according to the increased power allocation priority. In this way, when a certain carrier unit needs to send SRS, if there are also transmission requirements for signals that overlap with the SRS time-domain resources in other carrier units, since the power allocation priority of this SRS has been increased, the possibility that it is allocated a lower transmission power can be reduced, and it is possible to ensure that the carrier-rotated SRS is sent at the normal transmission power as much as possible. Furthermore, it is ensured that the signal strength of the SRS received by the network device will not be weakened, and the network device can accurately judge the uplink condition, thereby ensuring that the network device schedules the downlink traffic of the corresponding cell.

[0049] For further illustrating the specific implementation process of the method as Figure 1 shown, this embodiment provides the specific method as Figure 2 shown, and the method includes:

[0050] Step 201: Obtain the power allocation priority corresponding to the carrier-rotated SRS.

[0051] Step 202: Adjust the power allocation priority corresponding to the carrier-rotated SRS so that the power allocation priority corresponding to the carrier-rotated SRS is higher than the power allocation priority of the first channel.

[0052] In some embodiments, the first channel includes at least one of the following:

[0053] PUCCH; PUSCH.

[0054] Step 203: Allocate the first transmission power corresponding to the carrier-rotated SRS according to the adjusted power allocation priority.

[0055] Step 204: Send SRS on the first carrier unit according to the first transmission power.

[0056] Among them, the first transmission power is not lower than the second transmission power for transmitting the first channel by the second carrier unit, and the SRS overlaps with the time-domain resources of the first channel.

[0057] For example, as Figure 3 shown, the terminal device transmits a carrier-round-robin SRS signal to the network device. The network device can schedule downlink control information (DCI) according to the reception situation of the carrier-round-robin SRS signal, and send DCI to the terminal device according to the scheduling information. The terminal device parses the DCI to obtain the physical downlink shared channel (PDSCH). That is, when the network device schedules the traffic of the PDSCH, it will refer to the reception situation of the corresponding SRS signal.

[0058] When performing power allocation in the NR mode CA scenario, the protocol stipulates that the SRS has the lowest power allocation priority. For example, the power allocation priority of the SRS is lower than that of the PUCCH, PUSCH, and PRACH. This will cause, when the total transmission power of the terminal device is fixed, if these signals need to be transmitted in the same time-domain resources, the corresponding transmission power will be allocated according to the power allocation priorities of these signals respectively. The higher the power allocation priority, the more it can ensure that its transmission power will not decrease. However, since the SRS has the lowest power allocation priority, the transmission power of the carrier-round-robin SRS will decrease. That is, if the power is allocated according to the power allocation priorities stipulated by the protocol and the carrier-round-robin SRS is positioned at the lowest level, the transmission power of the carrier-round-robin SRS signal may decrease, which will cause fluctuations in the traffic of the downlink PDSCH of the corresponding cell.

[0059] For example, as Figure 4 shown, when the terminal device needs to transmit a carrier-round-robin SRS signal, it judges whether there are signals such as PUSCH and / or PUCCH with time-domain overlap in other carrier cells (CCs). If so, it reduces the transmission power of the SRS to transmit the carrier-round-robin SRS signal; if not, it normally transmits the carrier-round-robin SRS signal. If the transmission power of the carrier-round-robin SRS is reduced, the signal strength of the SRS received by the network device will be weakened, affecting the accurate judgment of the network device on the uplink status, and thus causing fluctuations in the traffic of the downlink PDSCH of the corresponding cell scheduled by the network device.

[0060] By adopting the solution of this embodiment, the power allocation priority corresponding to the carrier round-robin SRS is increased, so that the power allocation priority corresponding to the carrier round-robin SRS is higher than the power allocation priority of PUCCH and / or PUSCH. In this way, the transmission power of the carrier round-robin SRS does not need to be reduced, and the terminal device sends the signal of the carrier round-robin SRS at the normal transmission power. Furthermore, it can ensure that the network device correctly receives the signal of the carrier round-robin SRS, the rank number of the downlink PDSCH scheduled by the network device for the corresponding cell does not decrease, the service process of the downlink PDSCH is ensured, and thus the downlink traffic of the cell corresponding to the carrier round-robin SRS is ensured. As Figure 5 shown, when the terminal device needs to send the carrier round-robin SRS signal, regardless of whether there are signals such as PUSCH and / or PUCCH with time-domain overlap on other CCs, it can normally send the carrier round-robin SRS signal without reducing the corresponding transmission power.

[0061] In some embodiments, step 202 may specifically include: adjusting the power allocation priority corresponding to the carrier round-robin SRS, so that the power allocation priority corresponding to the carrier round-robin SRS is higher than the power allocation priority of the first channel and lower than the power allocation priority of the second channel. In some examples, the second channel includes: PRACH. For example, for the signal of the carrier round-robin SRS, its power allocation priority is higher than the priorities of PUCCH and PUSCH and lower than the priority of the PRACH of the primary cell, so as to ensure that the PRACH is sent at the normal power, and further ensure the success rate of the random access process of the primary cell.

[0062] Compared with the method in the current related technology that configures the lowest power allocation priority for the carrier round-robin SRS, the power allocation priority of the carrier round-robin SRS can be increased in this embodiment. Furthermore, the transmission power corresponding to the carrier round-robin SRS can be allocated according to the increased power allocation priority. In this way, when a certain carrier unit needs to send SRS, if there are also transmission requirements for signals that overlap with the SRS time-domain resource on other carrier units, since the power allocation priority of this SRS has been increased, the possibility of it being allocated a lower transmission power can be reduced, and it is possible to ensure that the carrier round-robin SRS is sent at the normal transmission power as much as possible. Furthermore, it can ensure that the signal strength of the SRS received by the network device does not weaken, and the network device can accurately judge the uplink link condition, so as to ensure the downlink traffic of the network device for the corresponding cell.

[0063] Figure 6 is a block diagram of a communication device shown according to some embodiments of the present disclosure. Referring to Figure 6 , the device includes: an acquisition module 31, an adjustment module 32, and an allocation module 33.

[0064] An acquisition module 31, configured to acquire the power allocation priority corresponding to the carrier round-robin SRS;

[0065] An adjustment module 32, configured to perform an increase processing on the power allocation priority;

[0066] An allocation module 33, configured to allocate a first transmission power corresponding to the carrier round-robin SRS according to the power allocation priority after the increase processing.

[0067] In some embodiments, the adjustment module 32 is specifically configured to adjust the power allocation priority corresponding to the carrier round-robin SRS, so that the power allocation priority corresponding to the carrier round-robin SRS is higher than the power allocation priority corresponding to a first channel.

[0068] In some embodiments, the first channel includes at least one of the following:

[0069] PUCCH; PUSCH.

[0070] In some embodiments, the apparatus further includes a transmission module;

[0071] The transmission module is configured to transmit SRS on a first carrier unit according to the first transmission power; wherein the first transmission power is not less than a second transmission power for transmitting the first channel on a second carrier unit, and the SRS overlaps with the time domain resources of the first channel.

[0072] In some embodiments, the adjustment module 32 is further specifically configured to adjust the power allocation priority corresponding to the carrier round-robin SRS, so that the power allocation priority corresponding to the carrier round-robin SRS is higher than the power allocation priority corresponding to the first channel and lower than the power allocation priority corresponding to a second channel.

[0073] In some embodiments, the second channel includes: PRACH.

[0074] Regarding the apparatus in the above embodiments, the specific manners in which each module performs operations have been described in detail in the embodiments related to the method, and will not be elaborated here.

[0075] Figure 7 It is a schematic structural diagram of a communication device 1800 provided in this embodiment. The communication device 1800 may be a terminal device, a network device, a chip, a chip system, or a processor that supports the network device to implement the above method, or a chip, a chip system, or a processor that supports the user equipment to implement the above method. The apparatus can be used to implement the method described in the above method embodiments, and for details, reference can be made to the description in the above method embodiments.

[0076] The communication device 1800 includes: a transceiver; a memory; and a processor, which are respectively connected to the transceiver and the memory, and are configured to control the wireless signal transceiver of the transceiver by executing computer-executable instructions on the memory, and can implement the functions of any of the above method embodiments.

[0077] The communication device 1800 may include one or more processors 1801. The processor 1801 may be a general-purpose processor or a dedicated processor, etc. For example, it may be a baseband processor or a central processing unit. The baseband processor may be used to process communication protocols and communication data, and the central processing unit may be used to control a communication device (such as a base station, a baseband chip, a terminal device, a terminal device chip, a DU or a CU, etc.), execute a computer program, and process the data of the computer program.

[0078] Optionally, the communication device 1800 may further include one or more memories 1802, on which a computer program 1804 may be stored. The processor 1801 executes the computer program 1804 to cause the communication device 1800 to execute the method described in the above method embodiments. Optionally, data may also be stored in the memory 1802. The communication device 1800 and the memory 1802 may be provided separately or integrated together.

[0079] Optionally, the communication device 1800 may further include a transceiver 1805 and an antenna 1806. The transceiver 1805 may be referred to as a transceiver unit, a transceiver, or a transceiver circuit, etc., and is used to implement the transceiver function. The transceiver 1805 may include a receiver and a transmitter. The receiver may be referred to as a receiver or a receiving circuit, etc., and is used to implement the receiving function; the transmitter may be referred to as a transmitter or a transmitting circuit, etc., and is used to implement the transmitting function.

[0080] Optionally, the communication device 1800 may further include one or more interface circuits 1807. The interface circuit 1807 is used to receive code instructions and transmit them to the processor 1801. The processor 1801 runs the code instructions to cause the communication device 1800 to execute the method described in the above method embodiments.

[0081] In one implementation, the processor 1801 may include a transceiver for implementing the receiving and sending functions. For example, the transceiver may be a transceiver circuit, or an interface, or an interface circuit. The transceiver circuit, interface, or interface circuit for implementing the receiving and sending functions may be separate or integrated together. The above transceiver circuit, interface, or interface circuit may be used for reading and writing code / data, or the above transceiver circuit, interface, or interface circuit may be used for signal transmission or transfer.

[0082] In one implementation, the processor 1801 may store a computer program 1803, which runs on the processor 1801 and enables the communication device 1800 to perform the method described in the above method embodiment. The computer program 1803 may be fixed in the processor 1801, in which case the processor 1801 may be implemented by hardware.

[0083] In one implementation, the communication device 1800 may include a circuit that can implement the functions of sending or receiving or communicating in the aforementioned method embodiments. The processor and transceiver described in the present disclosure may be implemented in an integrated circuit (IC), an analog IC, a radio frequency integrated circuit RFIC, a mixed signal IC, an application specific integrated circuit (ASIC), a printed circuit board (PCB), an electronic device, etc. The processor and transceiver may also be manufactured using various IC process technologies, such as complementary metal oxide semiconductor (CMOS), N-type metal oxide semiconductor (nMetal-oxide-semiconductor, NMOS), P-type metal oxide semiconductor (positive channelmetal oxide semiconductor, PMOS), bipolar junction transistor (bipolar junction transistor, BJT), bipolar CMOS (BiCMOS), silicon germanium (SiGe), gallium arsenide (GaAs), etc.

[0084] The communication device described in the above embodiments may be a network device or a user device, but the scope of the communication device described in the present disclosure is not limited thereto, and the structure of the communication device may not be limited thereto. Figure 7 The communication device may be an independent device or may be part of a larger device. For example, the communication device may be:

[0085] (1) Independent integrated circuit IC, or chip, or chip system or subsystem;

[0086] (2) having a set of one or more ICs, and optionally, the IC set may also include a storage component for storing data and computer programs;

[0087] (3) ASIC, such as modem;

[0088] (4) Modules that can be embedded in other devices;

[0089] (5) Receiver, terminal device, intelligent terminal device, cellular phone, wireless device, handheld device, mobile unit, vehicle-mounted device, network device, cloud device, artificial intelligence device, etc.;

[0090] (6) Others, etc.

[0091] Based on the above embodiments, this embodiment also provides a chip, including at least one processor and a communication interface; the communication interface is used to receive signals input to the chip or signals output from the chip, and the processor communicates with the communication interface and implements the above-mentioned method as shown in Figure 1 and Figure 4 shown.

[0092] Figure 8 is a schematic structural diagram of a chip 1000 for implementing the above communication method provided by this embodiment. Refer to Figure 8 , the chip 1000 includes at least one communication interface 1001 and a processor 1002. The communication interface 1001 is used to receive signals input to the chip 1000 or signals output from the above chip 1000, and the processor 1002 communicates with the communication interface 1001 and implements the communication method described in the above embodiments of the present disclosure through logic circuits or by executing code instructions.

[0093] Those skilled in the art can also understand that the various illustrative logical blocks and steps listed in the embodiments of the present disclosure can be implemented by electronic hardware, computer software, or a combination of both. Whether such a function is implemented by hardware or software depends on the specific application and the design requirements of the entire system. Those skilled in the art can use various methods to implement the described function for each specific application, but such implementation should not be construed as exceeding the scope of protection of the embodiments of the present disclosure.

[0094] The present disclosure also provides a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor of the computer, it implements the functions of any one of the above method embodiments.

[0095] The present disclosure also provides a computer program product. When the computer program product is executed by a computer, it implements the functions of any one of the above method embodiments. Such as a computer program is stored thereon, and when the computer program product is executed by a processor of the computer, it implements the functions of any one of the above method embodiments.

[0096] In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware, or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer programs. When the computer program is loaded and executed on a computer, the processes or functions according to the embodiments of the present disclosure are generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices. The computer program can be stored in a computer-readable storage medium, or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer program can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center by wire (such as coaxial cable, optical fiber, digital subscriber line (DSL)) or wirelessly (such as infrared, wireless, microwave, etc.). The computer-readable storage medium can be any available medium that can be accessed by a computer, or a data storage device such as a server or data center that includes one or more integrated available media. The available medium can be a magnetic medium (such as a floppy disk, hard disk, magnetic tape), an optical medium (such as a high-density digital video disc (DVD)), or a semiconductor medium (such as a solid state disk (SSD)), etc.

[0097] Those of ordinary skill in the art can understand that the various digital numbers such as the first and second involved in the present disclosure are only for the convenience of description and are not used to limit the scope of the embodiments of the present disclosure, nor do they represent the order of precedence.

[0098] At least one in the present disclosure can also be described as one or more. The plurality can be two, three, four, or more, and the present disclosure does not make any limitations. In the embodiments of the present disclosure, for a technical feature, the technical features in this technical feature are distinguished by "first", "second", "third", "A", "B", "C", and "D", etc. There is no order of precedence or size order among the technical features described by the "first", "second", "third", "A", "B", "C", and "D".

[0099] As used herein, the terms "machine-readable medium" and "computer-readable medium" refer to any computer program product, device, and / or apparatus (such as a disk, optical disc, memory, programmable logic device (PLD)) for providing machine instructions and / or data to a programmable processor, including a machine-readable medium that receives machine instructions as a machine-readable signal. The term "machine-readable signal" refers to any signal for providing machine instructions and / or data to a programmable processor.

[0100] The systems and techniques described herein can be implemented in a computing system including backend components (e.g., as a data server), or a computing system including middleware components (e.g., an application server), or a computing system including frontend components (e.g., a user computer having a graphical user interface or a web browser through which a user can interact with an implementation of the systems and techniques described herein), or a computing system including any combination of such backend components, middleware components, or frontend components. The components of the system can be interconnected to each other by digital data communication in any form or medium (e.g., a communication network). Examples of communication networks include: local area network (LAN), wide area network (WAN), and the Internet.

[0101] A computer system can include a client and a server. The client and the server are generally remote from each other and typically interact through a communication network. The client - server relationship is created by computer programs running on the respective computers and having a client - server relationship with each other.

[0102] It should be understood that the various forms of the processes shown above can be used, with steps reordered, added, or deleted. For example, the steps recited in this disclosure can be executed in parallel, sequentially, or in a different order, as long as the desired results of the technical solution of this disclosure application can be achieved, and this is not limited herein.

[0103] In addition, it should be understood that the various embodiments described in this disclosure can be implemented separately or, where the solution permits, in combination with other embodiments.

[0104] Those of ordinary skill in the art can realize that the units and algorithm steps of the examples described in connection with the embodiments claimed herein can be implemented in electronic hardware, or in a combination of computer software and electronic hardware. Whether these functions are executed in hardware or software depends on the specific application and design constraints of the technical solution. A professional technician can use different methods for each specific application to implement the described functions, but such implementation should not be considered to exceed the scope of this disclosure.

[0105] Those skilled in the art can clearly understand that, for the convenience and brevity of description, the specific working processes of the systems, devices, and units described above can refer to the corresponding processes in the foregoing method embodiments and will not be elaborated herein.

[0106] As described above, it is only the specific implementation manner of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily think of changes or substitutions, which should all be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure shall be subject to the protection scope of the claimed rights.

Claims

1. A communication method, characterized in that, including: obtaining the power allocation priority corresponding to the carrier cyclic sounding reference signal SRS; performing an increase processing on the power allocation priority; allocating a first transmission power corresponding to the carrier cyclic SRS according to the increased power allocation priority.

2. The method according to claim 1, wherein Performing an increase processing on the power allocation priority includes: adjusting the power allocation priority corresponding to the carrier cyclic SRS such that the power allocation priority corresponding to the carrier cyclic SRS is higher than the power allocation priority corresponding to a first channel.

3. The method according to claim 2, characterized in that, The first channel includes at least one of the following: physical uplink control channel PUCCH; physical uplink shared channel PUSCH.

4. The method according to any one of claims 2 to 3, characterized in that, The method further includes: transmitting SRS on a first carrier unit according to the first transmission power; wherein the first transmission power is not lower than a second transmission power for transmitting the first channel on a second carrier unit, and the time domain resources of the SRS and the first channel overlap.

5. The method according to any one of claims 2 to 3, characterized in that, Adjusting the power allocation priority corresponding to the carrier cyclic SRS such that the power allocation priority corresponding to the carrier cyclic SRS is higher than the power allocation priority corresponding to a first channel includes: adjusting the power allocation priority corresponding to the carrier cyclic SRS such that the power allocation priority corresponding to the carrier cyclic SRS is higher than the power allocation priority corresponding to the first channel and the power allocation priority corresponding to the carrier cyclic SRS is lower than the power allocation priority corresponding to a second channel.

6. The method according to claim 5, characterized in that, The second channel includes: physical random access channel PRACH.

7. A communication device, characterized in that, including: an obtaining module configured to obtain the power allocation priority corresponding to the carrier cyclic sounding reference signal SRS; an adjusting module configured to perform an increase processing on the power allocation priority; an allocating module configured to allocate a first transmission power corresponding to the carrier cyclic SRS according to the increased power allocation priority.

8. A computer-readable storage medium having a computer program stored thereon, characterized in that, The computer program, when executed by a processor, implements the method according to any one of claims 1 to 6.

9. A communication device, wherein, including: a transceiver; a memory; a processor, respectively connected to the transceiver and the memory, configured to control the wireless signal transceiver of the transceiver by executing computer-executable instructions on the memory and capable of implementing the method according to any one of claims 1 to 6.

10. A chip, characterized in that, including at least one processor and a communication interface; the communication interface is used for receiving signals input to the chip or signals output from the chip, and the processor communicates with the communication interface and implements the method according to any one of claims 1 to 6 through logic circuits or by executing code instructions.