WO2025112596A1 - 配置方法、通信装置及存储介质 - Google Patents

配置方法、通信装置及存储介质 Download PDF

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Publication number
WO2025112596A1
WO2025112596A1 PCT/CN2024/108210 CN2024108210W WO2025112596A1 WO 2025112596 A1 WO2025112596 A1 WO 2025112596A1 CN 2024108210 W CN2024108210 W CN 2024108210W WO 2025112596 A1 WO2025112596 A1 WO 2025112596A1
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node
information
capability
function
following
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English (en)
French (fr)
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鲁照华
刘锟
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ZTE Corp
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ZTE Corp
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/535Allocation or scheduling criteria for wireless resources based on resource usage policies
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0453Resources in frequency domain, e.g. a carrier in FDMA
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources

Definitions

  • the present disclosure relates to the field of communication technology, and in particular to a configuration method, a communication device and a storage medium.
  • Wireless communication systems are widely used in people's daily life and production.
  • wireless communication systems are used in video transmission, voice transmission, positioning, machine-to-machine communication in the industrial field, device-to-device communication, and communication between vehicles and other devices in the Internet of Vehicles. More and more extensive applications have also put forward higher and higher requirements on the transmission reliability, capacity, transmission rate, etc. of wireless communication technology, and also promoted the rapid development of the field of wireless communication.
  • an embodiment of the present disclosure provides a configuration method, the configuration method comprising:
  • the configuration information includes at least one of the following: information about a first capability; activation time configuration information corresponding to the first capability; information about a first function, where the first function is a function that needs to be activated by the second node; information about a second function, where the second function is a function that needs to be deactivated by the second node; first indication information, where the first indication information is used to instruct the second node to report the second capability; and first trigger condition information, where the first trigger condition information is used to trigger the second node to report the second capability.
  • an embodiment of the present disclosure provides another configuration method, the configuration method comprising:
  • the configuration information includes at least one of the following: information about a first capability; activation time configuration information corresponding to the first capability; information about a first function, where the first function is a function that needs to be activated by the second node; information about a second function, where the second function is a function that needs to be deactivated by the second node; first indication information, where the first indication information is used to instruct the second node to report the second capability; and first trigger condition information, where the first trigger condition information is used to trigger the second node to report the second capability.
  • an embodiment of the present disclosure provides a communication device.
  • the communication device includes:
  • the sending module is used to send configuration information.
  • the configuration information includes at least one of the following: information about the first capability; activation time configuration information corresponding to the first capability; information about the first function, where the first function is a function that needs to be activated by the second node; information about the second function, where the second function is a function that needs to be deactivated by the second node; first indication information, where the first indication information is used to instruct the second node to report the second capability; and first trigger condition information, where the first trigger condition information is used to trigger the second node to report the second capability.
  • an embodiment of the present disclosure provides another communication device.
  • the communication device includes:
  • a receiving module used for receiving configuration information
  • the configuration information includes at least one of the following: information about a first capability; activation time configuration information corresponding to the first capability; information about a first function, where the first function is a function that needs to be activated by the second node; information about a second function, where the second function is a function that needs to be deactivated by the second node; first indication information, where the first indication information is used to instruct the second node to report the second capability; and first trigger condition information, where the first trigger condition information is used to trigger the second node to report the second capability.
  • an embodiment of the present disclosure further provides a communication device.
  • the communication device includes: a memory and a processor; the memory and the processor are coupled; the memory is used to store instructions executable by the processor; when the processor executes the instructions, it executes any method provided in the first aspect or the second aspect.
  • the present disclosure provides a computer program product comprising computer instructions, which, when executed on a computer, enables The computer executes any one of the methods provided in the first aspect or the second aspect.
  • FIG. 1 is a schematic diagram of an architecture of a communication system according to some embodiments.
  • FIG2 is a schematic flow chart of a configuration method according to some embodiments.
  • FIG3 is a flowchart of another configuration method according to some embodiments.
  • FIG. 4 is a flowchart of yet another configuration method according to some embodiments.
  • FIG5 is a schematic flow chart of yet another configuration method according to some embodiments.
  • FIG6 is a flowchart of yet another configuration method according to some embodiments.
  • FIG. 7 is a schematic diagram showing components of a communication device according to some embodiments.
  • FIG8 is a schematic diagram showing the composition of another communication device according to some embodiments.
  • FIG. 9 is a schematic diagram of the structure of a communication device according to some embodiments.
  • A/B can mean A or B.
  • “And/or” in this article is only a way to describe the association relationship of associated objects, indicating that there can be three relationships.
  • a and/or B can mean: only A, only B, and A and B.
  • “at least one” means one or more
  • “plurality” means two or more. Expressions such as “first” and “second” do not limit the quantity and execution order, and expressions such as “first” and “second” do not limit them to be different.
  • the fifth generation mobile communication system is used in smart phones, the Internet of Things, the industrial Internet and other fields.
  • the large-scale application of 5G new radio (NR) accelerates the transformation of the economy and society to digitalization, networking and intelligence, and promotes the network to enter a new era of the Internet of Everything.
  • NR new radio
  • the rapidly emerging application needs of smart cities, smart transportation, smart industrial production, etc. have led to the continuous strengthening of the development trend of differentiated network equipment capabilities, diversified network functions, and intelligent network management and control, further promoting the arrival of the sixth generation mobile communication system (6G) of the intelligent connection of all things.
  • AI technology can be widely used in wireless communication systems.
  • AI technology is a branch of computer science, with self-learning devices, components, functional modules, etc., represented by deep learning, reinforcement learning, distributed learning, etc.
  • AI technology has a wide and profound impact in many fields such as communication network optimization, intelligent perception and control applications, and has greatly improved the possibility of deep integration in the fields of communication, perception and computing.
  • Computing power plays a vital role in the field of AI technology. It can improve the accuracy and performance of models, accelerate data processing and analysis, optimize model configuration, and improve model effects and efficiency, thereby promoting the development and application of artificial intelligence technology.
  • Computing power refers to the ability of computer equipment or computing models to process and calculate data.
  • computing power processing objects are mainly data, including various forms of data such as text, audio, and video.
  • the realization of computing power services is mainly achieved through terminals such as servers, personal computers (PCs), and mobile phones.
  • computing power can speed up training, thereby improving the accuracy and performance of the model.
  • artificial intelligence applications usually need to process large-scale data sets (including images, text, voice, etc.). Improving computing power can accelerate data processing and analysis to extract useful features and patterns, thereby supporting higher-level artificial intelligence tasks (such as image recognition, natural language processing, and speech recognition, etc.).
  • increasing computing power can support optimization search of model hyperparameters to find the best configuration.
  • increasing computing power can also be used for model architecture search and automated machine learning processes to improve the effectiveness and efficiency of the model.
  • increasing computing power can also improve model effectiveness and efficiency.
  • the increase in computing power can enable more complex models to be implemented, such as large-scale language models and image generation models, which require a lot of computing resources to train and generate high-quality results.
  • the present disclosure provides a configuration method, which includes sending configuration information, and the configuration information includes at least one of the following: information about a first capability; activation time configuration information corresponding to the first capability; information about a first function, the first function is a function that needs to be activated by the second node; information about a second function, the second function is a function that needs to be deactivated by the second node; first indication information, the first indication information is used to indicate that the second node reports the second capability; first trigger condition information, the first trigger condition information is used to trigger the second node to report the second capability.
  • the first capability can be understood as a capability that needs to be supported by the second node.
  • the configuration information can be determined based on actual terminal needs, service types, and wireless channel environments, so that adaptive wireless resource allocation can be performed based on actual application scenarios, thereby improving the utilization efficiency of the terminal's computing power, thereby achieving efficient terminal wireless resource allocation, and improving the spectrum efficiency of the system.
  • the communication system can be a long term evolution (LTE) system, a 5G communication system, a Wi-Fi system, a communication system related to the 3rd Generation Partnership Project (3GPP), a future evolving communication system (such as the sixth generation (6G) communication system, etc.), or a system integrating multiple systems, etc., without limitation.
  • LTE long term evolution
  • 5G Fifth Generation
  • Wi-Fi Wireless Fidelity
  • 3GPP 3rd Generation Partnership Project
  • 6G sixth generation
  • FIG. 1 is only a schematic diagram and does not constitute a limitation on the applicable scenarios of the technical solution provided by the present disclosure.
  • FIG1 is a schematic diagram of the architecture of a communication system provided by an embodiment of the present disclosure.
  • the communication system 100 may include one or more first nodes 11 and one or more second nodes 12.
  • the second node 12 may be connected to the one or more first nodes 11 for communication.
  • the first node 11 may be a network device
  • the second node 12 may be a terminal device.
  • the network device may be used to implement functions such as resource scheduling, wireless resource management, and wireless access control of the terminal device.
  • it may be an evolution node B (eNB), a next generation node B (gNB), a transmission receive point (TRP), a transmission point (TP), and some other access nodes.
  • eNB evolution node B
  • gNB next generation node B
  • TRP transmission receive point
  • TP transmission point
  • the base station can be divided into a macro base station for providing macro cells (Macro cells), a micro base station for providing micro cells (Pico cells), and a femto base station for providing femto cells (Femto cells).
  • future base stations may also adopt other names.
  • the terminal device may also be referred to as a terminal, user equipment (UE), mobile station, mobile terminal, etc.
  • the terminal device may be a mobile phone, a tablet computer, a computer with wireless transceiver function, a virtual reality terminal, an augmented reality terminal, a wireless terminal in industrial control, or a wireless terminal in a mobile phone.
  • the present invention relates to wireless terminals, wireless terminals in unmanned driving, wireless terminals in remote surgery, wireless terminals in transportation safety, wireless terminals in smart cities, wireless terminals in smart homes, etc.
  • the embodiments of the present invention do not limit the device form adopted by the terminal.
  • the first node sends data to the second node, and the second node receives the data sent by the first node.
  • the first node can be called a transmitting end.
  • the second node can be called a receiving end.
  • the second node sends data to the first node, and the first node can be called a receiving end. Accordingly, the second node can be called a transmitting end.
  • Figure 1 is only an exemplary framework diagram. The number of devices or nodes included in Figure 1 and the names of each device are not restricted. In addition to the functional nodes shown in Figure 1, the communication system may also include other nodes or devices (such as core network devices).
  • the present disclosure provides a configuration method, which is applied to a first node and includes the following steps:
  • the configuration information includes at least one of the following: information of the first capability; activation time configuration information corresponding to the first capability; information of the first function; information of the second function; first indication information; and first trigger condition information.
  • the first function is a function that needs to be activated by the second node
  • the second function is a function that needs to be deactivated by the second node
  • the first indication information is used to instruct the second node to report the second capability
  • the first trigger condition information is used to trigger the second node to report the second capability.
  • the first node can send configuration information to the second node.
  • the first capability may be understood as a capability that needs to be supported by the second node.
  • the information of the first capability may include at least one of the following: information of capabilities that the second node needs to support; information of minimum capabilities that the second node needs to support; information of minimum capabilities configured for the second node; information of maximum capabilities that the second node needs to support, etc.
  • the first capability includes at least one of: a computing capability of the second node, a number of computing units of the second node, a storage capability of the second node, a number of storage units of the second node.
  • the first capability may be a computing capability, and the computing capability supported by the second node, i.e., the first capability, may be measured by the number of computing units. For example, the more computing units there are, the higher the first capability is.
  • the first capability may be a storage capability, and the storage capability (i.e., the first capability) supported by the second node may be measured by the number of storage units. For example, the more storage units there are, the higher the first capability is.
  • the above-mentioned computing unit and/or storage unit is determined based on one of the following: predefined, defined by the first node, defined by the second node, and defined by negotiation between the first node and the second node.
  • the information of the first capability includes at least one of the following: information of capabilities that need to be supported by the second node; information of capabilities that need to be supported by the second node when the second node activates the first function.
  • the first capability information may be information about the minimum capability that the second node needs to support, information about the maximum capability, or other possible capability values.
  • the first capability information may also be information about the maximum capability, information about the minimum capability, or other possible capability values that the second node needs to support when the second node activates the first function.
  • the first capability information includes information about the minimum computing power that the second node needs to support, that is, the minimum number of computing units that the second node needs to support, which can be expressed as N Min .
  • the activation time configuration information corresponding to the first capability includes at least one of the following: an activation start time, an activation end time, and an activation time period.
  • the activation time may also be referred to as the enabling time, which refers to at least one of the starting time, the end time, or the enabling time period during which the first capability can be used or is allowed to be used.
  • the configuration information further includes at least one of the following:
  • the activation time configuration information corresponding to the second function may include at least one of activation start time information, activation end time information, activation time period information, enablement start time information, enablement end time information or enablement time period information.
  • the deactivation time configuration information corresponding to the above-mentioned second function may include at least one of the deactivation start time information, deactivation end time information, deactivation time period information, disabling start time information, disabling end time information or disabling time period information corresponding to the second function.
  • the above functions include at least one of the following: business type, application scenario, and message processing method. That is, the above first function may include at least one of the business type, application scenario, and message processing method, and the above second function may also include at least one of the business type, application scenario, and message processing method.
  • the service type may include at least one of the service types such as voice service, data service, message service, location service, Internet of Things service, multimedia service, news and weather forecast and other public service services.
  • the application scenario may include at least one of the application scenarios such as mobile communication, Internet of Things, industrial automation, intelligent transportation, public service, etc.
  • the message processing method includes at least one of the generation method, the sending method, the receiving method, the information carrying method, the content of the information carrying, and the transmission configuration. It should be understood that the descriptions related to the above service types, application scenarios, and message processing methods are only examples, and the first function or the second function may also include other possible contents, which are not limited by the present disclosure.
  • the above transmission configuration may include relevant configurations during message transmission.
  • the transmission configuration set includes at least one transmission configuration.
  • a transmission configuration includes at least the following configuration information: time domain resources and/or frequency domain resources. It should be understood that the transmission configuration may also be referred to as a transmission configuration or a resource configuration, etc., and the present disclosure does not limit this.
  • the sending mode and/or receiving mode in the message processing mode has a corresponding relationship with the transmission configuration.
  • One transmission configuration corresponds to one sending mode and/or receiving mode, and the configuration information in the transmission configuration is understood as the configuration information required to support the sending mode and/or receiving mode.
  • the transmission configuration also includes at least one of the following configuration information: reference signal resources, discrete Fourier transformation (DFT) vectors, signal multiplexing mode, first node spatial filter, first node code, first node code codeword, first node antenna port, first node antenna weight vector, first node antenna weight matrix, second node spatial filter, second node code, second node code codeword, second node antenna port, second node antenna weight vector, second node antenna weight matrix, angle of departure (AOD), zenith angle of departure (ZOD), angle of arrival (AOA), zenith angle of arrival (ZOA), vector or vector index constructed by at least one angle of AOA, AOD, ZOD, or ZOA, and codeword in the codebook.
  • DFT discrete Fourier transformation
  • the reference signal resources include at least one of the time domain resources, frequency domain resources, code domain resources and port information of the reference signal.
  • the reference signal includes a sounding reference signal (SRS).
  • the signal multiplexing mode includes At least one of the following: space division multiplexing, time division multiplexing, and frequency division multiplexing.
  • the transmission configuration may also include at least one of the following configuration information: transmit beam, transmit beam group, transmit beam index information, transmit beam group index, transmit beam pair, transmit beam number information, transmit beam direction information, receive beam, receive beam group, receive beam index information, receive beam group index, receive beam pair, receive beam index information, receive beam number information, or receive beam direction information.
  • the transmission configuration may further include at least one of the following configuration information: a spatial filter, a spatial reception parameter, or a spatial transmission parameter.
  • the spatial filter may include at least one of the following: a DFT vector, a precoding vector, a DFT matrix, a precoding matrix, a vector consisting of a linear combination of multiple DFTs, or a vector consisting of a linear combination of multiple precoding vectors.
  • the content included in the above transmission configuration is only an example. With the change of actual needs and the evolution of network architecture, the transmission configuration may also include other possible content, and the present disclosure does not limit this.
  • the first indication information is used to instruct the second node to report the second capability.
  • the second capability may be used to indicate the capability of the second node.
  • the information of the second capability includes at least one of the following:
  • Information about the capabilities possessed by the second node itself information about the capabilities supported by the second node itself; information about the capabilities configured for the second node; information about the minimum capabilities possessed by the second node itself; information about the minimum capabilities supported by the second node itself; information about the minimum capabilities configured for the second node; information about the maximum capabilities possessed by the second node itself; information about the maximum capabilities configured for the second node.
  • the first trigger condition information is used to trigger the second node to report the second capability. That is, under the condition that the first trigger condition is met, the second node can send the second capability to the first node.
  • the first trigger condition information includes at least one of the following: the second capability is less than the first threshold; the second node cannot activate part or all of the first function; the second capability is less than the first capability; the second node does not support part or all of the first function; the capability information that the second node needs to support in order to activate the first function exceeds the capability limit of the second node; the difference between the capability information supported by the second node and the capability information that needs to be supported by the second node is less than the second threshold.
  • the configuration information includes: information about the minimum capability that the second node needs to support (first information), activation time configuration information corresponding to the minimum capability that the second node needs to support, information about the first function, and first trigger condition information.
  • the first information may be the minimum capability information N Min that the second node UE 1 needs to support.
  • the maximum computing capability supported by UE 1 itself that is, the maximum number of computing units, may be expressed as N(UE 1) Max .
  • the first trigger condition information in this example includes N(UE 1) Max -N Min ⁇ Delta2 (second threshold). Delta2 may be configured by default or configured by the base station or by UE 1.
  • UE 1 sends information about the capabilities (i.e., the second capabilities) supported by UE 1 to the first node.
  • UE 1 may also send feedback information to the first node, such as the following first information, and the first information carries information about the capabilities supported by UE 1.
  • the first node may send configuration information to the second node and may also receive feedback information sent by the second node regarding the configuration information.
  • the feedback information received by the first node may include the following first information, second information, third information or other information.
  • the method may further include S1021:
  • the first information includes at least one of the following: confirmation information of receiving the configuration information; and second indication information.
  • the first information can be understood as feedback information regarding the above configuration information sent by the second node to the first node. That is, after receiving the configuration information sent by the first node, the second node can send the first information to the first node if it determines that the current situation meets the triggering condition of the first information (that is, the second triggering condition described below), and accordingly, the first node receives the first information.
  • the second indication information is used to indicate at least one of the following: the second node does not support the first capability; the second node cannot provide the first capability; the second node cannot activate part or all of the first function; the second node does not support part or all of the first function.
  • the first information can be feedback information about the configuration information sent by the second node to the first node when the second node cannot support the capability (i.e., the first capability) indicated by the first node and required to be supported by the second node, so as to inform the first node that the capability of the second node cannot meet the capability requirement. That is, when the second trigger condition is met, the second node determines that its own capability cannot support the capability indicated by the first node and required to be supported by the second node, and thus, the second node sends the first information to the first node.
  • the capability i.e., the first capability
  • the first information may further include a reason why the second node does not support the first capability.
  • the trigger condition for sending the first information can be called the second trigger condition
  • the second trigger condition includes at least one of the following: the second capability is less than a third threshold; the second capability is less than the first capability; the second node cannot activate part or all of the first function; the second node does not support part or all of the first function; the capability that the second node needs to support in order to activate the first function exceeds the capability limit of the second node.
  • the third threshold may be a reference threshold of the capability determined based on the first capability.
  • the second node may determine that the second node's own capability (ie, the second capability) cannot meet the capability that the second node needs to support.
  • the second capacity is less than the first capacity, including at least one of the following: the computing capacity supported by the second node is less than the computing capacity required to be supported by the second node; the storage capacity supported by the second node is less than the storage capacity required to be supported by the second node.
  • the computing power supported by the second node is less than the computing power required to be supported by the second node, including one of the following: the number of computing units of the second node is less than the number of computing units required to be provided by the second node; the number of computing units of the second node is less than the sum of the number of computing units required to be provided by the second node and a first preset value.
  • the number of computing units that the second node needs to provide is determined according to the minimum number of computing units required for each function that the second node needs to support.
  • the configuration information includes: information about the minimum capability that the second node needs to support (first capability), activation time configuration information corresponding to the minimum capability that the second node needs to support, and information about the first function.
  • the information on the minimum capability that the second node UE 1 needs to support includes the minimum value of the number of operations that the second node needs to support, such as N Min .
  • the first function ie, the function that needs to be activated by the second node
  • function A the function that needs to be activated by the second node
  • N Min > N (UE 1) Max
  • N (UE 1) Max is the highest capability supported by the second node itself, that is, an example of the second capability.
  • the second capability is less than the first capability and satisfies the second trigger condition, indicating that the capability of the second node cannot support the capability indicated by the first node and required to be supported by the second node.
  • UE 1 can send the first information to the first node.
  • the second capability is less than the first capability and also satisfies the above-mentioned first trigger condition, so that UE 1 can also report the second capability (that is, N (UE 1) Max ) to the first node.
  • the first information may include confirmation information of receiving the configuration information and second indication information, and the second indication information is used to indicate at least one of the following: UE 1 does not support the first capability (that is, N Min ); UE 1 cannot provide the first capability (that is, N Min ); UE 1 cannot activate all or part of function A and function B; UE 1 does not support all or part of function A and function B. For example, UE 1 cannot enable function A and function B within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support" in the configuration information.
  • N Min + Delta1>N(UE 1) Max , N(UE 1) Max is the highest capability supported by the second node itself, that is, an example of the second capability, and the sum of N Min and Delta1 can be the third threshold.
  • the second capability is less than the third threshold, and the second trigger condition is met, indicating that the capability of the second node cannot support the capability indicated by the first node and required to be supported by the second node.
  • UE 1 can send a request to the first node.
  • the node sends the first information.
  • the first trigger condition is also met, so that UE 1 can also report the second capability (ie, N(UE 1) Max ) to the first node.
  • the first information may include confirmation information of receiving the configuration information and second indication information
  • the second indication information is used to indicate at least one of the following: UE 1 does not support the first capability (i.e., N Min ); UE 1 cannot provide the first capability (i.e., N Min ); UE 1 cannot activate all or part of function A and function B; UE 1 does not support all or part of function A and function B.
  • UE 1 cannot enable function A and function B within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support" in the configuration information.
  • Delta 1 may adopt a default configuration or be configured by the first node or by UE 1.
  • N Min N (UE 1) Max
  • the first information further includes the reason why the second node does not support the first capability.
  • UE 1 may send the first information to the first node.
  • the first information may include confirmation information of receiving the configuration information and second indication information, and the second indication information is used to indicate that UE 1 cannot enable function A and function B within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support” in the configuration information, and that the maximum computing capacity of UE 1 is insufficient to support the computing capacity required by function A and function B.
  • the configuration information includes: information on the minimum capability that the second node needs to support for function A and information on the minimum capability that the second node needs to support for function B (first information), activation time configuration information corresponding to the minimum capability that the second node needs to support, and information on function A and function B.
  • the information on the minimum capabilities that the second node UE 1 needs to support includes the minimum number of operations that the second node needs to support function A, such as N(A) Min , and the minimum number of operations that the second node needs to support function B, such as N(B) Min .
  • the first function i.e., the function that needs to be activated by the second node
  • N(A) Min +N(B) Min >N(UE 1) Max , N(UE 1) Max is the highest capability supported by the second node itself, that is, an example of the second capability.
  • the second capability is less than the first capability, and the second trigger condition is met, indicating that the capability of the second node cannot support the capability indicated by the first node and required to be supported by the second node.
  • UE 1 can send the first information to the first node.
  • the above-mentioned first trigger condition is also met, so UE 1 can also report the second capability (that is, N(UE 1) Max ) to the first node.
  • the first information may include confirmation information of receiving the configuration information and second indication information, and the second indication information is used to indicate at least one of the following: UE 1 does not support the first capability (that is, N(A) Min and N(B) Min ); UE 1 cannot provide the first capability (that is, N(A) Min and N(B) Min ); UE 1 cannot activate all or part of function A and function B; UE 1 does not support all or part of function A and function B. For example, UE 1 cannot enable function A and function B within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support" in the configuration information.
  • N(A) Min +N(B) Min >N(UE 1) Max and the first information also includes the reason why the second node does not support the first capability.
  • UE 1 may send the first information to the first node.
  • the first information may include confirmation information of receiving the configuration information and second indication information, and the second indication information is used to indicate that UE 1 cannot enable function A and function B within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support" in the configuration information, and that the maximum computing capacity of UE 1 is insufficient to support the computing capacity required by function A and function B.
  • the storage capacity supported by the second node is less than the storage capacity required to be supported by the second node, including one of the following: the number of storage units of the second node is less than the number of storage units required to be provided by the second node; the number of storage units of the second node is less than the sum of the number of storage units required to be provided by the second node and a second preset value.
  • the number of storage units required to be provided by the second node is determined according to the minimum number of storage units required for each function supported by the second node.
  • the method may further include S1022:
  • S1022. Receive second information sent by the second node.
  • the second information includes at least one of the following: confirmation information of receiving the configuration information; and third indication information.
  • the third indication information is used to indicate at least one of the following: the second node can support the first capability; the second node can provide the first capability; the second node can activate part or all of the first function; the second node can support part or all of the first function.
  • the first information can be feedback information about the configuration information sent by the second node to the first node when the second node can support the capability (i.e., the first capability) indicated by the first node and required to be supported by the second node, so as to inform the first node that the capability of the second node can meet the capability requirement. That is, when the third trigger condition is met, the second node determines that its own capability can support the capability indicated by the first node and required to be supported by the second node, and thus, the second node sends the second information to the first node.
  • the capability i.e., the first capability
  • the trigger condition for sending the second information can be called the third trigger condition, and the third trigger condition includes at least one of the following: the second capability is greater than or equal to the third threshold; the second capability is greater than or equal to the first capability; the second node can activate the first function; the second node can support the first function; the capability that the second node needs to support in order to activate the first function is less than the capability limit of the second node.
  • the third threshold may be a reference threshold of the capability determined based on the first capability.
  • the second node may determine that the second node's own capability (ie, the second capability) can meet the capability that the second node needs to support.
  • the second capability is greater than or equal to the first capability, including at least one of the following: the computing capability supported by the second node is greater than or equal to the computing capability required to be supported by the second node; the storage capability supported by the second node is greater than or equal to the storage capability required to be supported by the second node.
  • the computing power supported by the second node is greater than or equal to the computing power required to be supported by the second node, including one of the following: the number of computing units of the second node is greater than or equal to the number of computing units required to be provided by the second node; the number of computing units of the second node is greater than or equal to the sum of the number of computing units required to be provided by the second node and a first preset value.
  • the configuration information includes: information about the minimum capability that the second node needs to support (first capability), activation time configuration information corresponding to the minimum capability that the second node needs to support, and information about the first function.
  • the information on the minimum capability that the second node UE 1 needs to support includes the minimum value of the number of operations that the second node needs to support (eg, N Min ).
  • the first function ie, the function that needs to be activated by the second node
  • function A the function that needs to be activated by the second node
  • N Min ⁇ N (UE 1) Max , N (UE 1) Max is the highest capability supported by the second node itself, that is, an example of the second capability.
  • the second capability is greater than or equal to the first capability, and the third trigger condition is met, indicating that the capability of the second node can support the capability indicated by the first node and required to be supported by the second node.
  • UE 1 can send the second information to the first node.
  • the second information may include confirmation information of receiving the configuration information and third indication information, and the third indication information is used to indicate at least one of the following: UE 1 can support the first capability (that is, N Min ); UE 1 can provide the first capability (that is, N Min ); UE 1 can activate all or part of function A and function B; UE 1 can support all or part of function A and function B. For example, UE 1 can enable function A and function B within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support" in the configuration information.
  • N Min +Delta1 ⁇ N(UE 1) Max , N(UE 1) Max is the highest capability supported by the second node itself, that is, an example of the second capability.
  • the sum of N Min and Delta1 can be the third threshold.
  • the second capability is greater than or equal to the third threshold, and the third trigger condition is met, indicating that the capability of the second node can support the capability indicated by the first node and that needs to be supported by the second node.
  • UE 1 can send second information to the first node.
  • the second information may include confirmation information of receiving the configuration information and third indication information
  • the third indication information is used to indicate at least one of the following: UE 1 can support the first capability (i.e., N Min ); UE 1 can provide the first capability (i.e., N Min ); UE 1 can activate all or part of function A and function B; UE 1 can support all or part of function A and function B.
  • UE 1 can enable function A and function B within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support" in the configuration information.
  • Delta 1 can adopt the default configuration or be configured by the first node or by UE 1.
  • the configuration information includes: information on the minimum capability that the second node needs to support for function A and information on the minimum capability that the second node needs to support for function B (first information), activation time configuration information corresponding to the minimum capability that the second node needs to support, and information on function A and function B.
  • the information on the minimum capabilities that the second node UE 1 needs to support includes the minimum number of operations that the second node needs to support function A, such as N(A) Min , and the minimum number of operations that the second node needs to support function B (such as N(B) Min ).
  • the first function i.e., the function that needs to be activated by the second node
  • N(A) Min +N(B) Min ⁇ N(UE 1) Max is the highest capability supported by the second node itself, i.e., an example of the second capability.
  • the second capability is greater than or equal to the first capability, and the third trigger condition is satisfied, indicating that the capability of the second node can support the capability indicated by the first node and required to be supported by the second node, and at this time, UE 1 can send the second information to the first node.
  • the second information may include confirmation information of receiving the configuration information and third indication information, and the third indication information is used to indicate at least one of the following: UE 1 can support the first capability (that is, N(A) Min and N(B) Min ); UE 1 can provide the first capability (that is, N(A) Min and N(B) Min ); UE 1 can activate all or part of function A and function B; UE 1 can support all or part of function A and function B. For example, UE 1 can enable function A and function B within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support" in the configuration information.
  • N(A) Min +N(B) Min +Delta1 ⁇ N(UE 1) Max is the highest capability supported by the second node itself, which is an example of the second capability.
  • the sum of N(A) Min +N(B) Min and Delta1 can be the third threshold.
  • the second capability is greater than or equal to the third threshold, and the third trigger condition is met, indicating that the capability of the second node can support the capability indicated by the first node and that needs to be supported by the second node.
  • UE 1 can send second information to the first node.
  • the second information may include confirmation information of receiving the configuration information and third indication information
  • the third indication information is used to indicate at least one of the following: UE 1 can support the first capability (that is, N(A) Min and N(B) Min ); UE 1 can provide the first capability (that is, N(A) Min and N(B) Min ); UE 1 can activate all or part of function A and function B; UE 1 can support all or part of function A and function B.
  • UE 1 can enable function A and function B within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support" in the configuration information.
  • Delta 1 can adopt the default configuration or be configured by the first node or by UE 1.
  • the configuration information includes: information about the minimum capability that the second node needs to support (first information), activation time configuration information corresponding to the minimum capability that the second node needs to support, and information about the first function.
  • the third trigger condition includes that the second node can support part of the first function.
  • the first function (i.e., the function that needs to be activated by the second node) includes function A, function B, function C, and function D.
  • the information of the minimum capability that the second node UE 1 needs to support includes: the minimum number of computing units required to support function A, for example, the value is N(A) Min ; the minimum number of computing units required to support function B, for example, the value is N(B) Min ; the minimum number of computing units required to support function C, for example, the value is N(C) Min ; the minimum number of computing units required to support function D, for example, the value is N(D) Min .
  • N(A) Min +N(B) Min +N(C) Min +N(D) Min >N(UE 1) Max
  • N(A) Min +N(B) Min +N(C) Min ⁇ N(UE 1) Max is the highest capability supported by the second node itself, that is, an example of the second capability.
  • the second node can support part of the first function (that is, function A, function B and function C), and the third trigger condition is met.
  • UE 1 can send the second information to the first node.
  • the second information may include confirmation information of receiving the configuration information and third indication information, and the third indication information is used to indicate that UE 1 can enable function A, function B and function C within the time indicated by "activation time configuration information corresponding to the minimum capability that UE 1 needs to support" in the configuration information.
  • N(E) Min is the minimum number of computing units required for function E, and function E can implement all or part of function D.
  • the second node can support part of the first function (that is, function A, function B and function C), and the third trigger condition is met.
  • UE1 can send the second information to the first node.
  • the second information may include confirmation information of receiving the configuration information and third indication information, and the third indication information is used to indicate that UE 1 can enable function A, function B and function C within the time indicated by "activation time configuration information corresponding to the minimum capability that UE1 needs to support" in the configuration information.
  • function information of function E may also be sent to the first node.
  • “Function information of function E” includes at least one of the following: the minimum number of computing units required to support function E, and the function implemented by function E.
  • the method may further include S1023:
  • the third information includes at least one of the following: confirmation information of the configuration information; activation time configuration information corresponding to the capability information supported by the second node and required to be supported by the second node; information on the activated function updated by the second node; information on the deactivated function updated by the second node.
  • the trigger condition for sending the third information can be called the fourth trigger condition, and the fourth trigger condition includes one of the following: the second capability is less than the first capability; within the activation time configured by the activation time configuration information corresponding to the first capability, the second node cannot provide the capability to meet the first capability.
  • the configuration information includes: information about the minimum capability that the second node needs to support (first information), activation time configuration information corresponding to the minimum capability that the second node needs to support, and information about the first function.
  • the first function (i.e., the function that needs to be activated by the second node) includes function A, function B, function C, and function D.
  • the information of the minimum capability that the second node UE 1 needs to support includes: the minimum number of computing units required to support function A, for example, the value is N(A) Min ; the minimum number of computing units required to support function B, for example, the value is N(B) Min ; the minimum number of computing units required to support function C, for example, the value is N(C) Min ; the minimum number of computing units required to support function D, for example, the value is N(D) Min .
  • N(UE 1) Max is the highest capability supported by the second node itself, which is an example of the second capability.
  • other functions need to occupy a certain amount of computing power.
  • the number of computing units that function E needs to occupy is at least N(E) Min , which makes it impossible to simultaneously support function A, function B, function C and function D within the time. That is, the fourth trigger condition mentioned above is met.
  • UE 1 can send the third information to the first node.
  • UE 1 selects a new time to enable function A, function B, function C and function D, and then sends response information of the first configuration information (that is, the third information) to the first node.
  • UE 1 selects a new time to enable function A, function B, function C and function D.
  • UE 1 sends response information of the first configuration information (that is, the third information) to the base station to confirm that UE 1 has successfully received the configuration information.
  • the third information may include: confirmation information of the configuration information, and activation time configuration information corresponding to function A, function B, function C and function D, or called enabling time configuration information.
  • the first node may also feedback new configuration information to UE 1, where the new configuration information includes new capability information that needs to be supported by UE1, determined based on the activation time configuration information corresponding to function A, function B, function C and function D in the third information.
  • the configuration information includes: information about the minimum capability that the second node needs to support (first information), activation time configuration information corresponding to the minimum capability that the second node needs to support, information about the first function, and the above-mentioned first trigger condition.
  • the first function (i.e., the function that needs to be activated by the second node) includes function A, function B, function C, and function D.
  • the information of the minimum capability that the second node UE 1 needs to support includes: the minimum number of computing units required to support function A, for example, the value is N(A) Min ; the minimum number of computing units required to support function B, for example, the value is N(B) Min ; the minimum number of computing units required to support function C, for example, the value is N(C) Min ; the minimum number of computing units required to support function D, for example, the value is N(D) Min .
  • the first information is the minimum number of computing units that UE 1 needs to support, for example, N Min .
  • the second capability is the highest capability supported by the second node itself (for example, N(UE1) Max ).
  • the first trigger condition includes N(UE1) Max -N(A) Min -N(B) Min -N(C) Min -N(D) Min ⁇ Delta2 (ie, the second threshold) Delta2 may adopt a default configuration or be configured by the base station or by UE1.
  • UE 1 receives the configuration information, and when N(UE1) Max -N(A) Min -N(B) Min -N(C) Min -N(D) Min ⁇ Delta2, the first trigger condition is met.
  • UE 1 can send capability information supported by itself to the first node.
  • UE 1 can send third information to the first node, and the third information includes: confirmation information of the configuration information, UE 1's own capability information, UE1 deactivation/disabled function information, and function information that needs to be deactivated/disabled by the receiving end.
  • the above-mentioned fourth trigger condition and the first trigger condition are met, and UE 1 can send third information to the first node, and the third information includes: confirmation information of the configuration information, UE 1's own capability information, and indication information of function D.
  • the configuration information sent by the first node can be determined based on the actual device requirements, service type, and wireless channel environment, so that adaptive wireless resource allocation can be performed based on the actual application scenario to provide a reasonable wireless resource allocation solution. This can improve the efficiency of the terminal's computing power, achieve efficient terminal wireless resource allocation, and improve the spectrum efficiency of the wireless communication system.
  • the present disclosure also provides another configuration method, which is applied to a receiving device. As shown in FIG6 , the method includes the following steps:
  • S201 Receive configuration information sent by a first node.
  • the configuration information includes at least one of the following: information of the first capability; activation time configuration information corresponding to the first capability; information of the first function; information of the second function; first indication information; and first trigger condition information.
  • the first function is a function that needs to be activated by the second node
  • the second function is a function that needs to be deactivated by the second node
  • the first indication information is used to instruct the second node to report the second capability
  • the first trigger condition information is used to trigger the second node to report the second capability.
  • the first node can send configuration information to the second node.
  • the second node receives the configuration information.
  • the first capability includes at least one of: a computing capability of the second node, a number of computing units of the second node, a storage capability of the second node, a number of storage units of the second node.
  • the computing unit and/or the storage unit is determined based on one of the following: predefined, defined by the first node, defined by the second node, or defined by negotiation between the first node and the second node.
  • the function includes at least one of the following: business type, application scenario, and message processing method.
  • the message processing method includes at least one of the following: generation method, sending method, receiving method, information carrying method, information carrying content, and transmission configuration.
  • the first capability information includes at least one of the following:
  • the second capability information includes at least one of the following:
  • the activation time configuration information includes at least one of the following: an activation start time, an activation end time, and an activation time period.
  • the configuration information further includes at least one of the following:
  • the deactivation time configuration information includes at least one of the following: a deactivation start time, a deactivation end time, and a deactivation time period.
  • the first trigger condition information includes at least one of the following:
  • the second capability is less than the first threshold
  • the second node cannot activate part or all of the first function
  • the second ability is less than the first ability
  • the second node does not support part or all of the first function
  • the difference between the capability information supported by the second node and the capability information required to be supported by the second node is smaller than a second threshold.
  • the first information includes at least one of the following:
  • the second indication information is used to indicate at least one of the following:
  • the second node does not support the first capability
  • the second node cannot provide the first capability
  • the second node cannot activate part or all of the first function
  • the second node does not support part or all of the first function.
  • the trigger condition for sending the first information is a second trigger condition
  • the second trigger condition includes at least one of the following:
  • the second capability is less than a third threshold
  • the second ability is less than the first ability
  • the second node cannot activate part or all of the first function
  • the second node does not support part or all of the first function
  • the capability that the second node needs to support in order to activate the first function exceeds the capability limit of the second node.
  • the second capability is less than the first capability and includes at least one of the following:
  • the computing capacity supported by the second node is less than the computing capacity required to be supported by the second node
  • the storage capacity supported by the second node is less than the storage capacity required to be supported by the second node.
  • the computing capacity supported by the second node is less than the computing capacity required to be supported by the second node, including one of the following:
  • the number of computing units of the second node is less than the number of computing units required to be provided by the second node
  • the number of the computing units of the second node is less than the sum of the number of computing units required to be provided by the second node and the first preset value.
  • the number of computing units that the second node needs to provide is determined according to the minimum number of computing units required for each function that the second node needs to support.
  • the storage capacity supported by the second node is less than the storage capacity required to be supported by the second node, including one of the following:
  • the number of storage units of the second node is less than the sum of the number of storage units required to be provided by the second node and a second preset value.
  • the number of storage units required to be provided by the second node is determined according to the minimum number of storage units required for each function supported by the second node.
  • the second node may also send second information to the first node.
  • the second information includes at least one of the following: confirmation information of receiving the configuration information; and third indication information.
  • the third indication information is used to indicate at least one of the following:
  • the second node is capable of supporting the first capability
  • the second node is capable of providing the first capability
  • the second node can activate part or all of the first function
  • the second node can support part or all of the first function.
  • the trigger condition for sending the second information is a third trigger condition
  • the third trigger condition includes at least one of the following:
  • the second capability is greater than or equal to a third threshold
  • the second ability is greater than or equal to the first ability
  • the second node is capable of activating the first function
  • the second node is capable of supporting the first function
  • the capability that the second node needs to support in order to activate the first function is less than the capability limit of the second node.
  • the third information includes at least one of the following: confirmation information of the configuration information; activation time configuration information corresponding to the capability information supported by the second node and required to be supported by the second node; information on the activated function updated by the second node; information on the deactivated function updated by the second node.
  • the trigger condition for sending the third information is a fourth trigger condition
  • the fourth trigger condition includes one of the following: the second capability is less than the first capability; within the activation time configured by the activation time configuration information corresponding to the first capability, the second node cannot provide a capability that meets the first capability.
  • each node such as a device or equipment, includes a hardware structure and/or software module corresponding to the execution of each function in order to realize the above functions.
  • the present invention can be implemented in the form of hardware or a combination of hardware and computer software. Whether a function is executed in the form of hardware or computer software driving hardware depends on the specific application and design constraints of the technical solution. Professional and technical personnel can use different methods to implement the described functions for each specific application, but such implementation should not be considered to exceed the scope of the present invention.
  • the embodiments of the present disclosure may divide the functional modules of the communication device according to the above method embodiments.
  • each functional module may be divided corresponding to each function, or two or more functions may be integrated into one functional module.
  • the above integrated modules may be implemented in the form of hardware or software. It should be noted that the division of modules in the embodiments of the present disclosure is schematic and is only a logical function division. There may be other division methods in actual implementation. The following is an example of dividing each module corresponding to each function.
  • the functional module is used as an example for explanation.
  • FIG7 is a schematic diagram showing the composition of a communication device provided in an embodiment of the present disclosure.
  • the communication device 70 includes a sending module 701.
  • the communication device 70 may also include a receiving module 702.
  • the sending module 701 is used to send configuration information.
  • the configuration information includes at least one of the following: information about the first capability; activation time configuration information corresponding to the first capability; information about the first function, the first function is a function that needs to be activated by the second node; information about the second function, the second function is a function that needs to be deactivated by the second node; first indication information, the first indication information is used to instruct the second node to report the second capability; first trigger condition information, the first trigger condition information is used to trigger the second node to report the second capability.
  • the first capability includes at least one of: a computing capability of the second node, a number of computing units of the second node, a storage capability of the second node, a number of storage units of the second node.
  • the computing unit and/or the storage unit is determined based on one of the following: predefined, defined by the first node, defined by the second node, or defined by negotiation between the first node and the second node.
  • the function includes at least one of the following: business type, application scenario, and message processing method.
  • the message processing method includes at least one of the following: generation method, sending method, receiving method, information carrying method, information carrying content, and transmission configuration.
  • the information of the first capability includes at least one of the following: information of capabilities that need to be supported by the second node; information of capabilities that need to be supported by the second node when the second node activates the first function.
  • the information on the second capability includes at least one of the following: information on capabilities possessed by the second node itself; information on capabilities supported by the second node itself; information on capabilities configured for the second node; information on the minimum capabilities possessed by the second node itself; information on the minimum capabilities supported by the second node itself; information on the minimum capabilities configured for the second node; information on the maximum capabilities possessed by the second node itself; information on the maximum capabilities configured for the second node.
  • the activation time configuration information includes at least one of the following: an activation start time, an activation end time, and an activation time period.
  • the configuration information also includes at least one of the following: information on capabilities corresponding to the first function that need to be supported by the second node; activation time configuration information corresponding to the first function; information on capabilities corresponding to the second function that need to be supported by the second node; activation time configuration information corresponding to the second function; and deactivation time configuration information corresponding to the second function.
  • the deactivation time configuration information includes at least one of the following: a deactivation start time, a deactivation end time, and a deactivation time period.
  • the first trigger condition information includes at least one of the following: the second capability is less than the first threshold; the second node cannot activate part or all of the first function; the second capability is less than the first capability; the second node does not support part or all of the first function; the capability information that the second node needs to support in order to activate the first function exceeds the capability limit of the second node; the difference between the capability information supported by the second node and the capability information that needs to be supported by the second node is less than the second threshold.
  • the receiving module 702 is used to receive first information sent by the second node; the first information includes at least one of the following: confirmation information of receiving the configuration information; second indication information.
  • the second indication information is used to indicate at least one of the following: the second node does not support the first capability; the second node cannot provide the first capability; the second node cannot activate part or all of the first function; the second node does not support part or all of the first function.
  • the trigger condition for sending the first information is the second trigger condition
  • the second trigger condition includes at least one of the following: the second capability is less than a third threshold; the second capability is less than the first capability; the second node cannot activate part or all of the first function; the second node does not support part or all of the first function; the capability that the second node needs to support in order to activate the first function exceeds the capability limit of the second node.
  • the second capability is less than the first capability, including at least one of the following: the computing capability supported by the second node is less than the computing capability required by the second node.
  • the computing capacity supported by the node; the storage capacity supported by the second node is less than the storage capacity required to be supported by the second node.
  • the computing power supported by the second node is less than the computing power required to be supported by the second node, including one of the following: the number of computing units of the second node is less than the number of computing units required to be provided by the second node; the number of computing units of the second node is less than the sum of the number of computing units required to be provided by the second node and a first preset value.
  • the storage capacity supported by the second node is less than the storage capacity required to be supported by the second node, including one of the following: the number of storage units of the second node is less than the number of storage units required to be provided by the second node; the number of storage units of the second node is less than the sum of the number of storage units required to be provided by the second node and a second preset value.
  • the number of storage units required to be provided by the second node is determined according to the minimum number of storage units required for each function supported by the second node.
  • the receiving module 702 is further used to receive second information sent by the second node; the second information includes at least one of the following: confirmation information of receiving the configuration information; and third indication information.
  • the third indication information is used to indicate at least one of the following: the second node can support the first capability; the second node can provide the first capability; the second node can activate part or all of the first function; the second node can support part or all of the first function.
  • the trigger condition for sending the second information is a third trigger condition
  • the third trigger condition includes at least one of the following: the second capability is greater than or equal to a third threshold; the second capability is greater than or equal to the first capability; the second node can activate the first function; the second node can support the first function; the capability that the second node needs to support in order to activate the first function is less than the capability limit of the second node.
  • the receiving module 702 is further configured to receive third information sent by the second node.
  • the third information includes at least one of the following: confirmation information of the configuration information; activation time configuration information corresponding to the capability information supported by the second node and required to be supported by the second node; information on activated functions updated by the second node; information on deactivated functions updated by the second node.
  • the trigger condition for sending the third information is a fourth trigger condition
  • the fourth trigger condition includes one of the following: the second capability is less than the first capability; within the activation time configured by the activation time configuration information corresponding to the first capability, the second node cannot provide a capability that meets the first capability.
  • FIG8 is a schematic diagram of the composition of a communication device provided in an embodiment of the present disclosure.
  • the communication device 80 includes a receiving module 801.
  • the communication device 80 may also include a sending module 802.
  • the receiving module 801 is configured to receive configuration information sent by the first node.
  • the configuration information includes at least one of the following: information about a first capability; activation time configuration information corresponding to the first capability; information about a first function, where the first function is a function that needs to be activated by the second node; information about a second function, where the second function is a function that needs to be deactivated by the second node; first indication information, where the first indication information is used to instruct the second node to report the second capability; and first trigger condition information, where the first trigger condition information is used to trigger the second node to report the second capability.
  • the first capability includes at least one of: a computing capability of the second node, a number of computing units of the second node, a storage capability of the second node, a number of storage units of the second node.
  • the computing unit and/or the storage unit is determined based on one of the following: predefined, defined by the first node, defined by the second node, or defined by negotiation between the first node and the second node.
  • the function includes at least one of the following: business type, application scenario, and message processing method.
  • the message processing method includes at least one of the following: generation method, sending method, receiving method, information carrying method, information carrying content, and transmission configuration.
  • the information of the first capability includes at least one of the following: information of capabilities that need to be supported by the second node; information of capabilities that need to be supported by the second node when the second node activates the first function.
  • the information on the second capability includes at least one of the following: information on capabilities possessed by the second node itself; information on capabilities supported by the second node itself; information on capabilities configured for the second node; information on the minimum capabilities possessed by the second node itself; information on the minimum capabilities supported by the second node itself; information on the minimum capabilities configured for the second node; information on the maximum capabilities possessed by the second node itself; information on the maximum capabilities configured for the second node.
  • the activation time configuration information includes at least one of the following: an activation start time, an activation end time, and an activation time period.
  • the configuration information also includes at least one of the following: information on capabilities corresponding to the first function that need to be supported by the second node; activation time configuration information corresponding to the first function; information on capabilities corresponding to the second function that need to be supported by the second node; activation time configuration information corresponding to the second function; and deactivation time configuration information corresponding to the second function.
  • the deactivation time configuration information includes at least one of the following: a deactivation start time, a deactivation end time, and a deactivation time period.
  • the first trigger condition information includes at least one of the following: the second capability is less than the first threshold; the second node cannot activate part or all of the first function; the second capability is less than the first capability; the second node does not support part or all of the first function; the capability information that the second node needs to support in order to activate the first function exceeds the capability limit of the second node; the difference between the capability information supported by the second node and the capability information that needs to be supported by the second node is less than the second threshold.
  • the sending module 802 is configured to send first information to the first node.
  • the first information includes at least one of the following: confirmation information of receiving the configuration information; second indication information; the second indication information is used to indicate at least one of the following: the second node does not support the first capability; the second node cannot provide the first capability; the second node cannot activate part or all of the first function; the second node does not support part or all of the first function.
  • the trigger condition for sending the first information is the second trigger condition
  • the second trigger condition includes at least one of the following: the second capability is less than a third threshold; the second capability is less than the first capability; the second node cannot activate part or all of the first function; the second node does not support part or all of the first function; the capability that the second node needs to support in order to activate the first function exceeds the capability limit of the second node.
  • the second capacity is less than the first capacity, including at least one of the following: the computing capacity supported by the second node is less than the computing capacity required to be supported by the second node; the storage capacity supported by the second node is less than the storage capacity required to be supported by the second node.
  • the computing power supported by the second node is less than the computing power required to be supported by the second node, including one of the following: the number of computing units of the second node is less than the number of computing units required to be provided by the second node; the number of computing units of the second node is less than the sum of the number of computing units required to be provided by the second node and a first preset value.
  • the storage capacity supported by the second node is less than the storage capacity required to be supported by the second node, including one of the following: the number of storage units of the second node is less than the number of storage units required to be provided by the second node; the number of storage units of the second node is less than the sum of the number of storage units required to be provided by the second node and a second preset value.
  • the number of storage units required to be provided by the second node is determined according to the minimum number of storage units required for each function supported by the second node.
  • the sending module 802 is further configured to send second information to the first node.
  • the second information includes at least one of the following: confirmation information of receiving the configuration information; third indication information.
  • the third indication information is used to indicate at least one of the following: the second node can support the first capability; the second node can provide the first capability; the second node can activate part or all of the first function; the second node can support part or all of the first function.
  • the trigger condition for sending the second information is a third trigger condition
  • the third trigger condition includes at least one of the following: The second capability is greater than or equal to the third threshold; the second capability is greater than or equal to the first capability; the second node can activate the first function; the second node can support the first function; the capability that the second node needs to support in order to activate the first function is less than the capability limit of the second node.
  • the sending module 802 is further configured to send third information to the first node.
  • the third information includes at least one of the following: confirmation information of the configuration information; activation time configuration information corresponding to the capability information supported by the second node and required to be supported by the second node; information on activated functions updated by the second node; information on deactivated functions updated by the second node.
  • the trigger condition for sending the third information is a fourth trigger condition
  • the fourth trigger condition includes one of the following: the second capability is less than the first capability; within the activation time configured by the activation time configuration information corresponding to the first capability, the second node cannot provide a capability that meets the first capability.
  • modules in FIG. 7 or FIG. 8 may also be referred to as units, for example, the processing module may be referred to as a processing unit.
  • the names of the modules may not be the names shown in the figure, for example, the sending module or the receiving module may also be referred to as a communication module.
  • FIG. 7 or FIG. 8 are implemented in the form of software function modules and sold or used as independent products, they can be stored in a computer-readable storage medium.
  • the technical solution of the embodiment of the present disclosure is essentially or the part that contributes to the prior art or all or part of the technical solution can be embodied in the form of a software product.
  • the computer software product is stored in a storage medium, including several instructions to enable a computer device (which can be a personal computer, server, or network device, etc.) or a processor (processor) to perform all or part of the steps of the various embodiments of the present disclosure.
  • the storage medium for storing computer software products includes: U disk, mobile hard disk, read-only memory (ROM), random access memory (RAM), disk or optical disk, etc.
  • the embodiment of the present disclosure provides a schematic diagram of the structure of a communication device.
  • the communication device 90 includes: a processor 902, a communication interface 903 and a bus 904.
  • the communication device 90 may also include a memory 901.
  • the communication interface 903 is used to connect with other devices through a communication network.
  • the communication network can be Ethernet, wireless access network, wireless local area network (WLAN), etc.
  • the memory 901 may be a read-only memory (ROM) or other types of static storage devices that can store static information and instructions, a random access memory (RAM) or other types of dynamic storage devices that can store information and instructions, or an electrically erasable programmable read-only memory (EEPROM), a disk storage medium or other magnetic storage device, or any other medium that can be used to carry or store desired program codes in the form of instructions or data structures and can be accessed by a computer, but is not limited thereto.
  • ROM read-only memory
  • RAM random access memory
  • EEPROM electrically erasable programmable read-only memory
  • disk storage medium or other magnetic storage device or any other medium that can be used to carry or store desired program codes in the form of instructions or data structures and can be accessed by a computer, but is not limited thereto.
  • the memory 901 may exist independently of the processor 902, and the memory 901 may be connected to the processor 902 via a bus 904 to store instructions or program codes.
  • the processor 902 calls and executes the instructions or program codes stored in the memory 901, the method provided by the embodiment of the present disclosure can be implemented.
  • the memory 901 may also be integrated with the processor 902 .
  • the bus 904 may be an extended industry standard architecture (EISA) bus, etc.
  • the bus 904 may be divided into an address bus, a data bus, a control bus, etc.
  • FIG9 only uses one thick line, but does not mean that there is only one bus or one type of bus.
  • the disclosed embodiment also provides a computer-readable storage medium. All or part of the processes in the above method embodiments can be completed by computer instructions to instruct the relevant hardware, and the program can be stored in the above computer-readable storage medium. When the program is executed, it can include the processes of the above method embodiments.
  • the computer-readable storage medium can be the memory or memory of any of the above embodiments.
  • the above computer-readable storage medium can also be an external storage device of the above device or apparatus, such as a plug-in hard disk, a smart memory card (smart media card, SMC), a secure digital (secure digital, SD) card, a flash card (flash card), etc. equipped on the above device or apparatus.
  • the above computer-readable storage medium can also include both the internal storage unit of the above device or apparatus and an external storage device.
  • the above computer-readable storage medium is used to store the above computer program and other programs and data required by the above device or apparatus.
  • the above computer-readable storage medium can also be used to temporarily store data that has been output or is to be output.
  • An embodiment of the present disclosure further provides a computer program product, which includes a computer program.
  • the computer program product When the computer program product is run on a computer, the computer is enabled to execute any one of the methods provided in the above embodiments.

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Abstract

提供一种配置方法、通信装置及存储介质。该配置方法包括:发送配置信息;配置信息包括以下至少之一:第一能力的信息;第一能力对应的激活时间配置信息;第一功能的信息,第一功能为需要第二节点激活的功能;第二功能的信息,第二功能为需要第二节点去激活的功能;第一指示信息,第一指示信息用于指示第二节点上报第二能力;第一触发条件信息,第一触发条件信息用于触发第二节点上报第二能力。

Description

配置方法、通信装置及存储介质
本公开要求于2023年11月28日提交的、申请号为202311625470.2的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本公开涉及通信技术领域,尤其涉及一种配置方法、通信装置及存储介质。
背景技术
无线通信系统广泛应用于人们的日常生活与生产。例如无线通信系统应用于视频传输、语音传输、定位、工业领域的机器与机器的通信,设备到设备的通信以及车联网中的车辆与其它设备的通信。而更多更广泛的应用,也对无线通信技术的传输可靠性、容量、传输速率等提出了越来越高的要求,同时也推动了无线通信领域的快速发展。
发明内容
第一方面,本公开实施例提供一种配置方法,该配置方法包括:
发送配置信息;
配置信息包括以下至少之一:第一能力的信息;第一能力对应的激活时间配置信息;第一功能的信息,第一功能为需要第二节点激活的功能;第二功能的信息,第二功能为需要第二节点去激活的功能;第一指示信息,第一指示信息用于指示第二节点上报第二能力;第一触发条件信息,第一触发条件信息用于触发第二节点上报第二能力。
第二方面,本公开实施例提供另一种配置方法,该配置方法包括:
接收第一节点发送的配置信息;
所述配置信息包括以下至少之一:第一能力的信息;所述第一能力对应的激活时间配置信息;第一功能的信息,所述第一功能为需要第二节点激活的功能;第二功能的信息,所述第二功能为需要所述第二节点去激活的功能;第一指示信息,所述第一指示信息用于指示所述第二节点上报第二能力;第一触发条件信息,所述第一触发条件信息用于触发所述第二节点上报第二能力。
第三方面,本公开实施例提供一种通信装置。该通信装置包括:
发送模块,用于发送配置信息。配置信息包括以下至少之一:第一能力的信息;第一能力对应的激活时间配置信息;第一功能的信息,第一功能为需要第二节点激活的功能;第二功能的信息,第二功能为需要第二节点去激活的功能;第一指示信息,第一指示信息用于指示第二节点上报第二能力;第一触发条件信息,第一触发条件信息用于触发第二节点上报第二能力。
第四方面,本公开实施例提供另一种通信装置。该通信装置包括:
接收模块,用于接收配置信息;
配置信息包括以下至少之一:第一能力的信息;第一能力对应的激活时间配置信息;第一功能的信息,第一功能为需要第二节点激活的功能;第二功能的信息,第二功能为需要第二节点去激活的功能;第一指示信息,第一指示信息用于指示第二节点上报第二能力;第一触发条件信息,第一触发条件信息用于触发第二节点上报第二能力。
第五方面,本公开实施例还提供一种通信装置。该通信装置包括:存储器和处理器;存储器和处理器耦合;存储器用于存储处理器可执行的指令;处理器执行指令时执行如第一方面或第二方面提供的任一方法。
第六方面,本公开提供一种包含计算机指令的计算机程序产品,当该计算机指令在计算机上运行时,使 得计算机执行上述第一方面或第二方面中所提供的任一方法。
附图说明
图1为根据一些实施例的一种通信系统的架构示意图。
图2为根据一些实施例的一种配置方法的流程示意图。
图3为根据一些实施例的另一种配置方法的流程示意图。
图4为根据一些实施例的又一种配置方法的流程示意图。
图5为根据一些实施例的又一种配置方法的流程示意图。
图6为根据一些实施例的又一种配置方法的流程示意图。
图7为根据一些实施例的一种通信装置的组成示意图。
图8为根据一些实施例的另一种通信装置的组成示意图。
图9为根据一些实施例的一种通信装置的结构示意图。
具体实施方式
下面将结合本公开实施例中的附图,对本公开实施例中的技术方案进行清楚、完整地描述。显然,所描述的实施例仅仅是本公开一部分实施例,而不是全部的实施例。基于本公开中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本公开保护的范围。
在本公开的描述中,除非另有说明,“/”表示“或”的意思,例如,A/B可以表示A或B。本文中的“和/或”仅仅是一种描述关联对象的关联关系,表示可以存在三种关系,例如,A和/或B,可以表示:仅A、仅B以及A和B。此外,“至少一个”是指一个或多个,“多个”是指两个或两个以上。“第一”、“第二”等表述并不对数量和执行次序进行限定,并且“第一”、“第二”等表述也并不限定一定不同。
需要说明的是,本公开中,“示例性地”或者“例如”等表述用于表示作例子、例证或说明。本公开中被描述为“示例性地”或者“例如”等的任何实施例或设计方案不应被解释为比其他实施例或设计方案更优选或更具优势。确切而言,使用“示例性地”或者“例如”等表述旨在以详细方式呈现相关概念。
无线通信系统广泛应用于人们的日常生活与生产。第五代移动通信系统(5th generation mobile communication system,5G)应用于智能手机、物联网、工业互联网等领域。5G新空口(new radio,NR)的大规模应用加速促进经济社会向数字化、网络化、智能化转型,推动网络跨入万物互联新时代。并且,快速涌现的智慧城市、智慧交通、智慧工业生产等方面的应用需求,使得网络设备能力差异化、网络功能多样化、网络管控智能化的发展趋势持续增强,进一步推动了万物智联的第六代移动通信系统(6th generation mobile communication system,6G)的到来。以智慧城市、智慧交通、智能家居为代表的6G典型应用场景中存在着大量能力高度差异化的智能自动化设备,对极低时延、极高可靠性、超大带宽、海量接入等方面的通信需求越发严苛,智能自动化类型的应用对感知能力也提出了高精度、高分辨率等要求。一方面,数目激增的无线通信、感知设备使得业务需求的无止境增长与无线资源和算力有限的矛盾愈发突出。另一方面,6G愿景的实现需要借助对环境感知信息的获取、信息交互与共享、智能信息处理、到控制信息(包括对通信网络的控制信息及应用执行设备的控制指令)逐层分发的闭环信息流处理。也即,目前已经难以满足不断涌现的应用需求。
目前,人工智能(artificial intelligence,AI)技术可以广泛应用于无线通信系统。AI技术是计算机科学的一个分支,具有自我学习的设备、组件、功能模块等,其以深度学习、强化学习、分布式学习等为代表。AI技术在通信网络优化、智能感知以及控制应用等多个领域产生了广泛且深刻的影响,且大大提升了通信-感知-计算领域深度融合的可能。
算力(Computing Power)在AI技术领域中扮演着至关重要的角色,它可以提高模型的准确性和性能,加速数据处理和分析,优化模型配置,提升模型效果和效率,从而推动人工智能技术的发展和应用。算力是指是计算机设备或计算模型进行数据处理和计算的能力。在人工智能、机器学习、高性能计算等应用领域,算力是实现复杂计算和数据处理的关键因素之一。从处理对象来看,算力处理对象主要为数据,数据包括文本、音频、视频等各种形式的数据。从承载终端来看,算力服务的实现主要通过服务器、个人电脑(personal computer,PC)、手机等终端实现。
对于训练深度学习模型,由于训练深度神经网络需要大量的计算资源来处理大规模的数据集和复杂的模型结构,提高算力可以加快训练速度,从而提高模型的准确性和性能。对于加速数据处理和分析,人工智能应用通常需要处理大规模的数据集(包括图像、文本、语音等),提高算力可以加速数据的处理和分析,以提取有用的特征和模式,从而支持更高级别的人工智能任务(如图像识别、自然语言处理和语音识别等)。对于优化模型配置,提高算力可以支持对模型的超参数进行优化搜索,以找到最佳的配置,此外,提高算力还可以用于模型架构搜索和自动化的机器学习流程,以提高模型的效果和效率。并且,提高算力还可以提升模型效果和效率,例如,算力的提升可以使得更加复杂的模型得以实现,例如大规模的语言模型和图像生成模型,这些模型需要大量的计算资源才能训练和生成高质量的结果。
从而,如何进行无线资源的分配,例如在高效的终端无线资源分配方案中如何合理的分配终端的算力,是目前亟待解决的技术问题。
有鉴于此,本公开提供了一种配置方法,该配置方法包括发送配置信息,该配置信息包括以下至少之一:第一能力的信息;第一能力对应的激活时间配置信息;第一功能的信息,第一功能为需要第二节点激活的功能;第二功能的信息,第二功能为需要第二节点去激活的功能;第一指示信息,第一指示信息用于指示第二节点上报第二能力;第一触发条件信息,第一触发条件信息用于触发第二节点上报第二能力。并且,第一能力可以理解为需要第二节点支持的能力。如此,配置信息可以基于根据实际终端需求、业务类型以及无线信道环境确定,从而可以基于实际应用情形进行自适应的无线资源分配,提高终端的算力的使用效率,进而实现高效的终端无线资源分配,提高系统的频谱效率。
本公开的实施例提供的方法可以应用于各种通信系统。例如该通信系统可以为长期演进(long term evolution,LTE)系统、5G通信系统、Wi-Fi系统、第三代合作伙伴计划(3rd generation partnership project,3GPP)相关的通信系统、未来演进的通信系统(如:第六代(6G)通信系统等)、或多种系统融合的系统等,不予限制。下面以图1所示通信系统100为例,对本公开实施例提供的方法进行描述。图1仅为示意图,并不构成对本公开提供的技术方案的适用场景的限定。
图1为本公开实施例提供的一种通信系统的架构示意图。如图1所示,通信系统100可以包括一个或多个第一节点11和一个或多个第二节点12。第二节点12可以与一个或多个第一节点11通信连接。
在一些实施例中,第一节点11可以为网络设备,第二节点12可以为终端设备。网络设备可以用于实现终端设备的资源调度、无线资源管理、无线接入控制等功能。例如,可以是演进型基站(evolution nodeB,eNB)、下一代基站(generation nodeB,gNB)、收发点(transmission receive point,TRP)、传输点(transmission point,TP)以及某种其它接入节点。根据所提供的服务覆盖区域的大小,基站又可分为用于提供宏蜂窝(Macro cell)的宏基站、用于提供微蜂窝(Pico cell)的微基站和用于提供毫微微蜂窝(Femto cell)的毫微微基站。随着无线通信技术的不断演进,未来的基站也可以采用其他的名称。
终端设备也可以称为终端、用户设备(user equipment,UE)、移动台、移动终端等。示例性地,终端设备可以是手机、平板电脑、带无线收发功能的电脑、虚拟现实终端、增强现实终端、工业控制中的无线终 端、无人驾驶中的无线终端、远程手术中的无线终端、运输安全中的无线终端、智慧城市中的无线终端、智慧家庭中的无线终端等。本公开的实施例对终端所采用的设备形态不做限定。
在一些实施例中,在通信过程中,第一节点向第二节点发送数据,第二节点接收到第一节点发送的数据。从而,第一节点即可称为发送端。相应地,第二节点即可称为接收端。或者,第二节点向第一节点发送数据,第一节点即可称为接收端。相应地,第二节点即可称为发送端。
需要说明的是,图1仅为示例性框架图,图1中包括的设备或节点的数量,各个设备的名称不受限制,且除图1所示功能节点外,通信系统还可以包括其他节点或设备(如核心网设备)。
本公开的实施例描述的系统架构以及业务场景是为了更加清楚的说明本公开实施例的技术方案,并不构成对于本公开的实施例提供的技术方案的限定,本领域普通技术人员可知,随着网络架构的演变和新业务场景的出现,本公开的实施例提供的技术方案对于类似的技术问题,同样适用。
下面结合说明书附图,对本公开提供的实施例进行介绍。
如图2所示,本公开提供一种配置方法,该方法应用于第一节点,该方法包括以下步骤:
S101、发送配置信息。
配置信息包括以下至少之一:第一能力的信息;第一能力对应的激活时间配置信息;第一功能的信息;第二功能的信息;第一指示信息;第一触发条件信息。
上述第一功能为需要第二节点激活的功能,第二功能为需要第二节点去激活的功能,第一指示信息用于指示第二节点上报第二能力,第一触发条件信息用于触发第二节点上报第二能力。示例性地,第一节点可以向第二节点发送配置信息。
以下对各项配置信息进行详细说明。
(1)第一能力的信息
第一能力可以理解为需要第二节点支持的能力。
在一些实施例中,第一能力的信息可以包括以下至少之一:需要第二节点支持的能力的信息;需要第二节点支持的最低能力的信息;为第二节点配置的最低能力的信息;需要第二节点支持的最高能力的信息等。
在一些实施例中,第一能力包括以下至少之一:第二节点的运算能力、第二节点的运算单元的数量、第二节点的存储能力、第二节点的存储单元的数量。
示例性地,第一能力可以为运算能力,并且可以通过运算单元的数量来衡量第二节点支持的运算能力也即第一能力的高低。例如,运算单元的数量越多,第一能力越高。或者,第一能力可以为存储能力,并且可以通过存储单元的数量来衡量第二节点支持的存储能力(也即第一能力)的高低。例如,存储单元的数量越多,第一能力越高。
在一些实施例中,上述运算单元和/或存储单元基于以下之一确定:预定义、由第一节点定义、由第二节点定义、由第一节点和第二节点协商定义。
在一些实施例中,第一能力的信息,包括以下至少之一:需要第二节点支持的能力的信息;第二节点激活第一功能时,需要第二节点支持的能力的信息。
示例性地,第一能力的信息可以为需要第二节点支持的最低能力的信息、最高能力的信息或其他可能的能力取值的信息。第一能力的信息还可以为第二节点激活第一功能时,需要第二节点支持的最高能力的信息、最低能力的信息或其他可能的能力取值的信息。例如,以运算能力为例,第一能力信息包括需要第二节点支持的最低运算能力的信息,即需要第二节点支持的运算单元数量的最小值,可以表示为NMin
(2)第一能力对应的激活时间配置信息
在一些实施例中,上述第一能力对应的激活时间配置信息包括以下至少之一:激活起始时间、激活截止时间、激活时间段。
示例性地,上述激活时间还可以称为使能时间,是指第一能力对应的可以使用或被允许使用的起始时间、截止时间或使能时间段中的至少一项。
在一些实施例中,配置信息还包括以下至少之一:
第一功能对应的需要第二节点支持的能力的信息;
第一功能对应的激活时间配置信息;
第二功能对应的需要第二节点支持的能力的信息;
第二功能对应的激活时间配置信息;
第二功能对应的去激活时间配置信息。
在一些实施例中,上述第二功能对应的激活时间配置信息可以包括激活起始时间信息、激活截止时间信息、激活时间段信息、使能起始时间信息、使能截止时间信息或者使能时间段信息中的至少一项。
在一些实施例中,上述第二功能对应的去激活时间配置信息可以包括第二功能对应的去激活起始时间信息、去激活截止时间信息、去激活时间段信息、不使能起始时间信息、不使能截止时间信息或者不使能时间段信息中的至少一项。
(3)第一功能的信息、第二功能的信息
在一些实施例中,上述功能包括以下至少之一:业务类型、应用场景、消息的处理方式。也即上述第一功能可以包括业务类型、应用场景、消息的处理方式中的至少之一,上述第二功能也可以包括业务类型、应用场景、消息的处理方式中的至少之一。
示例性地,业务类型可以包括语音业务、数据业务、消息业务、位置业务、物联网业务、多媒体业务、新闻和天气预报等公共服务业务等业务类型中的至少之一。应用场景可以包括移动通信、物联网、工业自动化、智能交通、公共服务等应用场景中的至少之一。消息的处理方式包括生成方式、发送方式、接收方式、承载信息的方式、承载信息的内容、传输配置中的至少之一。应理解,上述业务类型、应用场景、消息的处理方式相关的描述仅为示例,第一功能或第二功能还可以包括其他可能的内容,本公开对此不作限制。
上述传输配置可以包括消息传输过程中的相关配置。在一些实施例中,传输配置集合中包括至少一种传输配置。一种传输配置中至少包括以下配置信息:时域资源和/或频域资源。应理解,传输配置还可以称为发送配置或资源配置等,本公开对此不作限制。
在一些实施例中,消息的处理方式中的发送方式和/或接收方式与传输配置具有对应关系。一种传输配置对应一种发送方式和/或接收方式,传输配置中的配置信息理解为用于支持发送方式和/或接收方式所需要的配置信息。
在一些实施例中,传输配置还包括以下至少一项配置信息:参考信号资源、离散傅里叶变化(discrete Fourier transformation,DFT)矢量、信号复用方式、第一节点空间滤波器、第一节点编码、第一节点编码的码字、第一节点天线端口、第一节点天线权重矢量、第一节点天线权重矩阵、第二节点空间滤波器、第二节点编码、第二节点编码的码字、第二节点天线端口、第二节点天线权重矢量、第二节点天线权重矩阵、离开角(angle of departure,AOD)、离开天顶角(zenith angle of departure,ZOD)、到达角(angle of arrival,AOA)、到达天顶角(zenith angle of arrival,ZOA)、由AOA,AOD,ZOD,或ZOA至少一个角度构造的向量或者向量索引,以及码本中的码字。参考信号资源包括参考信号的时域资源、频域资源、码域资源和端口信息中的至少一项。参考信号包括探测参考信号(sounding reference signal,SRS)。信号复用方式包括 以下至少一项:空分复用、时分复用,以及频分复用。
在一些实施例中,传输配置还可以包括以下至少一项配置信息:发送波束、发送波束组、发送波束索引信息、发送波束组索引、发送波束对、发送波束编号信息、发送波束方向信息、接收波束、接收波束组、接收波束索引信息、接收波束组索引、接收波束对、接收波束索引信息、接收波束编号信息、或者接收波束方向信息。
在一些实施例中,传输配置还可以包括以下至少一项配置信息:空间滤波器、空间接收参数,或者空间发送参数。空间滤波器可以包括以下至少之一:DFT矢量、预编码矢量、DFT矩阵、预编码矩阵、多个DFT线性组合构成的矢量,或者多个预编码矢量线性组合构成的矢量。
应理解,上述传输配置所包括的内容仅为示例,随着实际需求的改变以及网络架构的演变,传输配置还可以包括其他可能的内容,本公开对此不作限制。
(4)第一指示信息
第一指示信息用于指示第二节点上报第二能力。
在一些实施例中,第二能力可以用于指示第二节点的自身能力。一些实施例中,第二能力的信息包括以下至少之一:
第二节点自身具备的能力的信息;第二节点自身支持的能力的信息;为第二节点配置的能力的信息;第二节点自身具备的最低能力的信息;第二节点自身支持的最低能力的信息;为第二节点配置的最低能力的信息;第二节点自身具备的最高能力的信息;第二节点自身支持的最高能力的信息;为第二节点配置的最高能力的信息。
(5)第一触发条件信息
第一触发条件信息用于触发第二节点上报第二能力。也即,在满足第一触发条件的条件下,第二节点可以向第一节点发送第二能力。
在一些实施例中,第一触发条件信息包括以下至少一项:第二能力小于第一阈值;第二节点不能激活部分或者全部第一功能;第二能力小于第一能力;第二节点不支持部分或者全部的第一功能;第二节点为了激活第一功能需要支持的能力信息超过第二节点的能力限制;第二节点支持的能力信息与需要第二节点支持的能力信息之间的差值小于第二阈值。
示例性地,配置信息包括:第二节点需要支持的最低能力的信息(第一信息)、第二节点需要支持的最低能力对应的激活时间配置信息、第一功能的信息以及第一触发条件信息。
第一信息可以为需要第二节点UE 1支持的最低能力信息NMin。UE 1自身支持的最大运算能力,即运算单元数量的最大值可以表示为N(UE 1)Max。并且,本示例中的第一触发条件信息包括N(UE 1)Max-NMin≤Delta2(第二阈值)。Delta2可以采用默认配置或者由基站配置或者由UE 1配置。
在满足N(UE 1)Max-NMin≤Delta2的情况下,UE 1向第一节点发送该UE 1自身支持的能力(也即第二能力)的信息。在一种示例中,UE 1还可以向第一节点发送反馈信息,例如下述第一信息,并且在该第一信息中携带UE 1自身支持的能力的信息。
在一些实施例中,第一节点在向第二节点发送配置信息,还可以接收到第二节点关于该配置信息发送的反馈信息。示例性地,第一节点接收到的反馈信息可以包括以下第一信息、第二信息、第三信息或其他信息。
在一种实现方式中,如图3所示,该方法还可以包括S1021:
S1021、接收第二节点发送的第一信息。
在一些实施例中,上述第一信息包括以下至少一项:接收到配置信息的确认信息;第二指示信息。
示例性地,第一信息可以理解为第二节点向第一节点发送的对于上述配置信息的反馈信息。也即,在接收到第一节点发送的配置信息之后,第二节点确定当前情形满足第一信息的触发条件(也即下述第二触发条件)的情况下,可以向第一节点发送第一信息,相应地,第一节点接收到该第一信息。
在一些实施例中,第二指示信息用于指示以下至少之一:第二节点不支持第一能力;第二节点不能提供第一能力;第二节点不能激活部分或者全部的第一功能;第二节点不支持部分或者全部的第一功能。
可以理解的是,第一信息可以为在第二节点不能支持第一节点指示的、需要该第二节点支持的能力(也即第一能力)的情形下,第二节点向第一节点发送的关于该配置信息的反馈信息,以告知第一节点第二节点的能力无法满足该能来需求。也即,在满足第二触发条件的情况下,第二节点确定自身的能力无法支持第一节点指示的、需要该第二节点支持的能力,从而,第二节点向第一节点发送第一信息。
在一些实施例中,第一信息还可以包括第二节点不支持第一能力的原因。
在一些实施例中,第一信息的发送触发条件可以称为第二触发条件,第二触发条件包括以下至少之一:第二能力小于第三阈值;第二能力小于第一能力;第二节点不能激活部分或者全部的第一功能;第二节点不支持部分或者全部的第一功能;第二节点为了激活第一功能需要支持的能力超过第二节点的能力的限制。
第三阈值可以为基于第一能力确定的能力的参考阈值,在第二能力小于第三阈值的情况下,第二节点可以确定第二节点的自身能力(也即第二能力)无法满足需要该第二节点支持的能力。
在一些实施例中,第二能力小于第一能力,包括以下至少一项:第二节点支持的运算能力小于需要第二节点支持的运算能力;第二节点支持的存储能力小于需要第二节点支持的存储能力。
在一种示例中,第二节点支持的运算能力小于需要第二节点支持的运算能力,包括以下之一:第二节点的运算单元的数量小于需要第二节点提供的运算单元的数量;第二节点的运算单元的数量小于需要第二节点提供的运算单元的数量与第一预设值之和。
在一些实施例中,需要第二节点提供的运算单元的数量根据需要第二节点支持的各个功能所需要的运算单元的数量的最小值确定。
示例1、配置信息包括:第二节点需要支持的最低能力的信息(第一能力)、第二节点需要支持的最低能力对应的激活时间配置信息以及第一功能的信息。
第二节点UE 1需要支持的最低能力的信息包括第二节点需要支持的运算数量的最小值,例如NMin,第一功能(也即需要第二节点激活的功能)包括功能A和功能B。
在一种情形下,NMin>N(UE 1)Max,N(UE 1)Max为第二节点自身支持的最高能力,也即第二能力的一种示例。此时,第二能力小于第一能力,满足第二触发条件,说明第二节点的能力无法支持第一节点指示的、需要该第二节点支持的能力,此时,UE 1可以向第一节点发送第一信息。并且,第二能力小于第一能力,还满足上述第一触发条件,从而UE 1还可以向第一节点上报第二能力(也即N(UE 1)Max)。
该第一信息可以包括接收到配置信息的确认信息以及第二指示信息,该第二指示信息用于指示以下至少之一:UE 1不支持第一能力(也即NMin);UE 1不能提供第一能力(也即NMin);UE 1不能激活功能A和功能B中的全部或部分;UE 1不支持功能A和功能B中的全部或部分。例如,UE 1不能在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A和功能B。
在另一种情形下,NMin+Delta1>N(UE 1)Max,N(UE 1)Max为第二节点自身支持的最高能力,也即第二能力的一种示例,NMin与Delta1之和的值可以为第三阈值,此时,第二能力小于第三阈值,满足第二触发条件,说明第二节点的能力无法支持第一节点指示的、需要该第二节点支持的能力,此时,UE 1可以向第一 节点发送第一信息。并且,还满足上述第一触发条件,从而UE 1还可以向第一节点上报第二能力(也即N(UE 1)Max)。
同样地,该第一信息可以包括接收到配置信息的确认信息以及第二指示信息,该第二指示信息用于指示以下至少之一:UE 1不支持第一能力(也即NMin);UE 1不能提供第一能力(也即NMin);UE 1不能激活功能A和功能B中的全部或部分;UE 1不支持功能A和功能B中的全部或部分。例如,UE 1不能在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A和功能B。Delta1可以采用默认配置或者由第一节点配置或者由UE 1配置。
在又一种情形中,NMin>N(UE 1)Max,且第一信息还包括第二节点不支持第一能力的原因。示例性地,UE 1可以向第一节点发送第一信息。该第一信息可以包括接收到配置信息的确认信息以及第二指示信息,该第二指示信息用于指示UE 1不能在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A和功能B,以及UE 1的最大运算能力不足以支持功能A和功能B所需的运算能力。
示例2、配置信息包括:第二节点需要支持功能A的最低能力的信息以及支持功能B的最低能力的信息(第一信息)、第二节点需要支持的最低能力对应的激活时间配置信息以及功能A和功能B的信息。
第二节点UE 1需要支持的最低能力的信息包括第二节点需要支持功能A的运算数量的最小值例如N(A)Min,以及第二节点需要支持功能B的运算数量的最小值例如N(B)Min,第一功能(也即需要第二节点激活的功能)包括功能A和功能B。
在一种情形下,N(A)Min+N(B)Min>N(UE 1)Max,N(UE 1)Max为第二节点自身支持的最高能力,也即第二能力的一种示例。此时,第二能力小于第一能力,满足第二触发条件,说明第二节点的能力无法支持第一节点指示的、需要该第二节点支持的能力,此时,UE 1可以向第一节点发送第一信息。并且,还满足上述第一触发条件,从而UE 1还可以向第一节点上报第二能力(也即N(UE 1)Max)。
该第一信息可以包括接收到配置信息的确认信息以及第二指示信息,该第二指示信息用于指示以下至少之一:UE 1不支持第一能力(也即N(A)Min和N(B)Min);UE 1不能提供第一能力(也即N(A)Min和N(B)Min);UE 1不能激活功能A和功能B中的全部或部分;UE 1不支持功能A和功能B中的全部或部分。例如,UE 1不能在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A和功能B。
在另一种情形下,N(A)Min+N(B)Min>N(UE 1)Max,且第一信息还包括第二节点不支持第一能力的原因。示例性地,UE 1可以向第一节点发送第一信息。该第一信息可以包括接收到配置信息的确认信息以及第二指示信息,该第二指示信息用于指示UE 1不能在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A和功能B,以及UE 1的最大运算能力不足以支持功能A和功能B所需的运算能力。
在另一种示例中,第二节点支持的存储能力小于需要第二节点支持的存储能力,包括以下之一:第二节点的存储单元的数量小于需要第二节点提供的存储单元的数量;第二节点的存储单元的数量小于需要第二节点提供的存储单元的数量与第二预设值之和。
在一些实施例中,需要第二节点提供的存储单元的数量根据需要第二节点支持的各个功能所需要的存储单元的数量的最小值确定。
在另一种实现方式中,如图4所示,该方法还可以包括S1022:
S1022、接收第二节点发送的第二信息。
第二信息包括以下至少一项:接收到配置信息的确认信息;第三指示信息。
在一些实施例中,第三指示信息用于指示以下至少之一:第二节点能够支持第一能力;第二节点能够提供第一能力;第二节点能够激活部分或者全部的第一功能;第二节点能够支持部分或者全部的第一功能。
可以理解的是,第一信息可以为在第二节点能够支持第一节点指示的、需要该第二节点支持的能力(也即第一能力)的情形下,第二节点向第一节点发送的关于该配置信息的反馈信息,以告知第一节点第二节点的能力能够满足该能力需求。也即,在满足第三触发条件的情况下,第二节点确定自身的能力能够支持第一节点指示的、需要该第二节点支持的能力,从而,第二节点向第一节点发送第二信息。
在一些实施例中,第二信息的发送触发条件可以称为第三触发条件,第三触发条件包括以下至少一项:第二能力大于或等于第三阈值;第二能力大于或等于第一能力;第二节点能够激活第一功能;第二节点能够支持第一功能;第二节点为了激活第一功能需要支持的能力小于第二节点的能力的限制。
第三阈值可以为基于第一能力确定的能力的参考阈值,在第二能力大于或等于第三阈值的情况下,第二节点可以确定第二节点的自身能力(也即第二能力)能够满足需要该第二节点支持的能力。
在一些实施例中,第二能力大于或等于第一能力,包括以下至少一项:第二节点支持的运算能力大于或等于需要第二节点支持的运算能力;第二节点支持的存储能力大于或等于需要第二节点支持的存储能力。
在一种示例中,第二节点支持的运算能力大于或等于需要第二节点支持的运算能力,包括以下之一:第二节点的运算单元的数量大于或等于需要第二节点提供的运算单元的数量;第二节点的运算单元的数量大于或等于需要第二节点提供的运算单元的数量与第一预设值之和。
示例3、配置信息包括:第二节点需要支持的最低能力的信息(第一能力)、第二节点需要支持的最低能力对应的激活时间配置信息以及第一功能的信息。
第二节点UE 1需要支持的最低能力的信息包括第二节点需要支持的运算数量的最小值(例如NMin),第一功能(也即需要第二节点激活的功能)包括功能A和功能B。
在一种情形下,NMin≤N(UE 1)Max,N(UE 1)Max为第二节点自身支持的最高能力,也即第二能力的一种示例。此时,第二能力大于或等于第一能力,满足第三触发条件,说明第二节点的能力能够支持第一节点指示的、需要该第二节点支持的能力,此时,UE 1可以向第一节点发送第二信息。
该第二信息可以包括接收到配置信息的确认信息以及第三指示信息,该第三指示信息用于指示以下至少之一:UE 1能够支持第一能力(也即NMin);UE 1能够提供第一能力(也即NMin);UE 1能够激活功能A和功能B中的全部或部分;UE 1能够支持功能A和功能B中的全部或部分。例如,UE 1能够在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A和功能B。
在另一种情形下,NMin+Delta1≤N(UE 1)Max,N(UE 1)Max为第二节点自身支持的最高能力,也即第二能力的一种示例,NMin与Delta1之和的值可以为第三阈值,此时,第二能力大于或等于第三阈值,满足第三触发条件,说明第二节点的能力能够支持第一节点指示的、需要该第二节点支持的能力,此时,UE 1可以向第一节点发送第二信息。
同样地,该第二信息可以包括接收到配置信息的确认信息以及第三指示信息,该第三指示信息用于指示以下至少之一:UE 1能够支持第一能力(也即NMin);UE 1能够提供第一能力(也即NMin);UE 1能够激活功能A和功能B中的全部或部分;UE 1能够支持功能A和功能B中的全部或部分。例如,UE 1能够能在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A和功能B。Delta1可以采用默认配置或者由第一节点配置或者由UE 1配置。
示例4、配置信息包括:第二节点需要支持功能A的最低能力的信息以及支持功能B的最低能力的信息(第一信息)、第二节点需要支持的最低能力对应的激活时间配置信息以及功能A和功能B的信息。
第二节点UE 1需要支持的最低能力的信息包括第二节点需要支持功能A的运算数量的最小值例如N(A)Min,以及第二节点需要支持功能B的运算数量的最小值(例如N(B)Min),第一功能(也即需要第二节点激活的功能)包括功能A和功能B。
在一种情形下,N(A)Min+N(B)Min≤N(UE 1)Max,N(UE 1)Max为第二节点自身支持的最高能力,也即第二能力的一种示例。此时,第二能力大于或等于第一能力,满足第三触发条件,说明第二节点的能力能够支持第一节点指示的、需要该第二节点支持的能力,此时,UE 1可以向第一节点发送第二信息。
该第二信息可以包括接收到配置信息的确认信息以及第三指示信息,该第三指示信息用于指示以下至少之一:UE 1能够支持第一能力(也即N(A)Min和N(B)Min);UE 1能够提供第一能力(也即N(A)Min和N(B)Min);UE 1能够激活功能A和功能B中的全部或部分;UE 1能够支持功能A和功能B中的全部或部分。例如,UE 1能够在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A和功能B。
在另一种情形下,N(A)Min+N(B)Min+Delta1≤N(UE 1)Max,N(UE 1)Max为第二节点自身支持的最高能力,也即第二能力的一种示例,N(A)Min+N(B)Min与Delta1之和的值可以为第三阈值,此时,第二能力大于或等于第三阈值,满足第三触发条件,说明第二节点的能力能够支持第一节点指示的、需要该第二节点支持的能力,此时,UE 1可以向第一节点发送第二信息。
同样地,该第二信息可以包括接收到配置信息的确认信息以及第三指示信息,该第三指示信息用于指示以下至少之一:UE 1能够支持第一能力(也即N(A)Min和N(B)Min);UE 1能够提供第一能力(也即N(A)Min和N(B)Min);UE 1能够激活功能A和功能B中的全部或部分;UE 1能够支持功能A和功能B中的全部或部分。例如,UE 1能够能在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A和功能B。Delta1可以采用默认配置或者由第一节点配置或者由UE 1配置。
示例5、配置信息包括:第二节点需要支持的最低能力的信息(第一信息)、第二节点需要支持的最低能力对应的激活时间配置信息以及第一功能的信息。并且,第三触发条件包括第二节点能够支持部分的第一功能。
第一功能(也即需要第二节点激活的功能)包括功能A、功能B、功能C以及功能D。第二节点UE 1需要支持的最低能力的信息包括:支持功能A需要的运算单元数量的最小值,例如,取值为N(A)Min;支持功能B需要的运算单元数量的最小值,例如,取值为N(B)Min;支持功能C需要的运算单元数量的最小值,例如,取值为N(C)Min;支持功能D需要的运算单元数量的最小值,例如,取值为N(D)Min
在一种情形下,N(A)Min+N(B)Min+N(C)Min+N(D)Min>N(UE 1)Max,且N(A)Min+N(B)Min+N(C)Min≤N(UE 1)Max。N(UE 1)Max为第二节点自身支持的最高能力,也即第二能力的一种示例。此时,第二节点能够支持部分的第一功能(也即功能A、功能B以及功能C),满足第三触发条件,此时,UE 1可以向第一节点发送第二信息。
该第二信息可以包括接收到配置信息的确认信息以及第三指示信息,该第三指示信息用于指示UE 1能够在配置信息中“UE 1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A、功能B以及功能C。
在另一种情形中,N(A)Min+N(B)Min+N(C)Min+N(D)Min>N(UE1)Max,且N(A)Min+N(B)Min+N(C)Min+N(E)Min≤N(UE1)Max。N(E)Min为功能E需要的运算单元数量的最小值,并且功能E可以实现功能D的全部或者部分功能。此时,第二节点能够支持部分的第一功能(也即功能A、功能B以及功能C),满足第三触发条件,此时,UE1可以向第一节点发送第二信息。
该第二信息可以包括收到配置信息的确认信息以及第三指示信息,该第三指示信息用于指示UE 1能够在配置信息中“UE1需要支持的最低能力对应的激活时间配置信息”指示的时间内使能功能A、功能B以及功能C。
在一种实施例中,还可以向第一节点发送功能E的功能信息。“功能E的功能信息”包括以下至少之一:支持功能E需要的运算单元数量的最小值、功能E实现的功能。
在又一种实现方式中,如图5所示,该方法还可以包括S1023:
S1023、接收第二节点发送的第三信息。
第三信息包括以下至少一项:对配置信息的确认信息;第二节点支持的、且需要第二节点支持的能力信息对应的激活时间配置信息;第二节点更新的激活的功能的信息;第二节点更新的去激活的功能的信息。
在一些实施例中,第三信息发送的触发条件可以称为第四触发条件,第四触发条件包括以下之一:第二能力小于第一能力;在第一能力对应的激活时间配置信息所配置的激活时间内,第二节点不能提供满足第一能力的能力。
示例6、配置信息包括:第二节点需要支持的最低能力的信息(第一信息)、第二节点需要支持的最低能力对应的激活时间配置信息以及第一功能的信息。
第一功能(也即需要第二节点激活的功能)包括功能A、功能B、功能C以及功能D。第二节点UE 1需要支持的最低能力的信息包括:支持功能A需要的运算单元数量的最小值,例如,取值为N(A)Min;支持功能B需要的运算单元数量的最小值,例如,取值为N(B)Min;支持功能C需要的运算单元数量的最小值,例如,取值为N(C)Min;支持功能D需要的运算单元数量的最小值,例如,取值为N(D)Min
在一种情形下,N(A)Min+N(B)Min+N(C)Min≤N(UE 1)Max。N(UE 1)Max为第二节点自身支持的最高能力,也即第二能力的一种示例。但是,此时“UE 1需要支持所述能力对应的使能时间配置信息”指示的时间内有其他功能需要占用一定的运算能力,例如功能E需要占用的运算单元数量至少为N(E)Min,这样导致在所述时间内无法同时支持功能A、功能B、功能C和功能D。也即,满足上述第四触发条件。
从而,UE 1可以向第一节点发送第三信息。示例性地,UE 1选择一个新的时间用于使能功能A、功能B、功能C和功能D,再向第一节点发送所述第一配置信息的响应信息(也即第三信息)。示例性地,UE 1选择一个新的时间用于使能功能A、功能B、功能C和功能D。则UE 1向基站发送所述第一配置信息的响应信息(也即第三信息),确认UE 1成功接收到配置信息。该第三信息可以包括:对配置信息的确认信息,以及功能A、功能B、功能C以及功能D对应的激活时间配置信息或称为使能时间配置信息。
进一步地,第一节点在接收到UE 1发送的第三信息之后,还可以向UE 1反馈新的配置信息,新的配置信息包括基于该第三信息中的功能A、功能B、功能C以及功能D对应的激活时间配置信息确定的新的需要UE1支持的能力信息。
示例7、配置信息包括:第二节点需要支持的最低能力的信息(第一信息)、第二节点需要支持的最低能力对应的激活时间配置信息、第一功能的信息以及上述第一触发条件。
第一功能(也即需要第二节点激活的功能)包括功能A、功能B、功能C以及功能D。第二节点UE 1需要支持的最低能力的信息包括:支持功能A需要的运算单元数量的最小值,例如,取值为N(A)Min;支持功能B需要的运算单元数量的最小值,例如,取值为N(B)Min;支持功能C需要的运算单元数量的最小值,例如,取值为N(C)Min;支持功能D需要的运算单元数量的最小值,例如,取值为N(D)Min
第一信息为UE 1需要支持的运算单元数量的最小值,例如为NMin。第二能力为第二节点自身支持的最高能力(例如为N(UE1)Max)。并且第一触发条件包括N(UE1)Max-N(A)Min-N(B)Min-N(C)Min-N(D)Min≤Delta2 (即第二阈值)。Delta2可以采用默认配置或者由基站配置或者由UE1配置。
UE 1接收到该配置信息,在N(UE1)Max-N(A)Min-N(B)Min-N(C)Min-N(D)Min≤Delta2的情况下,满足第一触发条件。UE 1可以向第一节点发送自身支持的能力信息。UE 1可以向第一节点发送第三信息,该第三信息中包括:对配置信息的确认信息、UE 1自身能力信息、UE1去激活/不使能的功能信息、以及需要接收端去激活/不使能的功能信息。
例如,在N(UE1)Max-N(A)Min-N(B)Min-N(C)Min-N(D)Min≤Delta2,且N(UE1)Max-N(A)Min-N(B)Min-N(C)Min≥Delta2的情况下,满足上述第四触发条件和第一触发条件,UE 1可以向第一节点发送第三信息,该第三信息包括:对配置信息的确认信息、UE 1自身能力信息以及功能D的指示信息。
基于本公开提供的技术方案,第一节点发送的配置信息可以基于根据实际设备的需求、业务类型以及无线信道环境确定,从而可以基于实际应用情形进行自适应的无线资源分配,以提供合理的无线资源分配方案。从而可以提高终端的算力的使用效率,实现高效的终端无线资源分配,提高无线通信系统的频谱效率。
在一些实施例中,本公开还提供另一种配置方法,该方法应用于接收端设备,如图6所示,该方法包括以下步骤:
S201、接收第一节点发送的配置信息。
配置信息包括以下至少之一:第一能力的信息;第一能力对应的激活时间配置信息;第一功能的信息;第二功能的信息;第一指示信息;第一触发条件信息。
上述第一功能为需要第二节点激活的功能,第二功能为需要第二节点去激活的功能,第一指示信息用于指示第二节点上报第二能力,第一触发条件信息用于触发第二节点上报第二能力。示例性地,第一节点可以向第二节点发送配置信息。相应地,第二节点接收到该配置信息。
在一些实施例中,第一能力包括以下至少之一:第二节点的运算能力、第二节点的运算单元的数量、第二节点的存储能力、第二节点的存储单元的数量。
在一些实施例中,运算单元和/或存储单元基于以下之一确定:预定义、由第一节点定义、由第二节点定义、由第一节点和第二节点协商定义。
在一些实施例中,功能包括以下至少之一:业务类型、应用场景、消息的处理方式。
在一些实施例中,消息的处理方式包括以下至少之一:生成方式、发送方式、接收方式、承载信息的方式、承载信息的内容、传输配置。
在一些实施例中,第一能力的信息,包括以下至少之一:
需要第二节点支持的能力的信息;
第二节点激活第一功能时,需要第二节点支持的能力的信息。
在一些实施例中,第二能力的信息,包括以下至少之一:
第二节点自身具备的能力的信息;
第二节点自身支持的能力的信息;
为第二节点配置的能力的信息;
第二节点自身具备的最低能力的信息;
第二节点自身支持的最低能力的信息;
为第二节点配置的最低能力的信息;
第二节点自身具备的最高能力的信息;
第二节点自身支持的最高能力的信息;
为第二节点配置的最高能力的信息。
在一些实施例中,激活时间配置信息包括以下至少之一:激活起始时间、激活截止时间、激活时间段。
在一些实施例中,配置信息还包括以下至少之一:
第一功能对应的需要第二节点支持的能力的信息;
第一功能对应的激活时间配置信息;
第二功能对应的需要第二节点支持的能力的信息;
第二功能对应的激活时间配置信息;
第二功能对应的去激活时间配置信息。
在一些实施例中,去激活时间配置信息包括以下至少一项:去激活起始时间、去激活截止时间、去激活时间段。
在一些实施例中,第一触发条件信息包括以下至少一项:
第二能力小于第一阈值;
第二节点不能激活部分或者全部第一功能;
第二能力小于第一能力;
第二节点不支持部分或者全部的第一功能;
第二节点为了激活第一功能需要支持的能力信息超过第二节点的能力限制;
第二节点支持的能力信息与需要第二节点支持的能力信息之间的差值小于第二阈值。
在一种实现方式中,第二节点还可以向第一节点发送第一信息。
第一信息包括以下至少一项:
收到配置信息的确认信息;
第二指示信息;
第二指示信息用于指示以下至少之一:
第二节点不支持第一能力;
第二节点不能提供第一能力;
第二节点不能激活部分或者全部的第一功能;
第二节点不支持部分或者全部的第一功能。
在一些实施例中,第一信息的发送触发条件为第二触发条件,第二触发条件包括以下至少之一:
第二能力小于第三阈值;
第二能力小于第一能力;
第二节点不能激活部分或者全部的第一功能;
第二节点不支持部分或者全部的第一功能;
第二节点为了激活第一功能需要支持的能力超过第二节点的能力的限制。
在一些实施例中,第二能力小于第一能力,包括以下至少一项:
第二节点支持的运算能力小于需要第二节点支持的运算能力;
第二节点支持的存储能力小于需要第二节点支持的存储能力。
在一些实施例中,第二节点支持的运算能力小于需要第二节点支持的运算能力,包括以下之一:
第二节点的运算单元的数量小于需要第二节点提供的运算单元的数量;
第二节点的运算单元的数量小于需要第二节点提供的运算单元的数量与第一预设值之和。
在一些实施例中,需要第二节点提供的运算单元的数量根据需要第二节点支持的各个功能所需要的运算单元的数量的最小值确定。
在一些实施例中,第二节点支持的存储能力小于需要第二节点支持的存储能力,包括以下之一:
第二节点的存储单元的数量小于需要第二节点提供的存储单元的数量;
第二节点的存储单元的数量小于需要第二节点提供的存储单元的数量与第二预设值之和。
在一些实施例中,需要第二节点提供的存储单元的数量根据需要第二节点支持的各个功能所需要的存储单元的数量的最小值确定。
在另一种实现方式中,第二节点还可以向第一节点发送第二信息。
第二信息包括以下至少一项:收到配置信息的确认信息;第三指示信息。
第三指示信息用于指示以下至少之一:
第二节点能够支持第一能力;
第二节点能够提供第一能力;
第二节点能够激活部分或者全部的第一功能;
第二节点能够支持部分或者全部的第一功能。
在一些实施例中,第二信息的发送触发条件为第三触发条件,第三触发条件包括以下至少一项:
第二能力大于或等于第三阈值;
第二能力大于或等于第一能力;
第二节点能够激活第一功能;
第二节点能够支持第一功能;
第二节点为了激活第一功能需要支持的能力小于第二节点的能力的限制。
在又一种实现方式中,第二节点还可以向第一节点发送第三信息。
第三信息包括以下至少一项:对配置信息的确认信息;第二节点支持的、且需要第二节点支持的能力信息对应的激活时间配置信息;第二节点更新的激活的功能的信息;第二节点更新的去激活的功能的信息。
在一些实施例中,第三信息发送的触发条件为第四触发条件,第四触发条件包括以下之一:第二能力小于第一能力;在第一能力对应的激活时间配置信息所配置的激活时间内,第二节点不能提供满足第一能力的能力。
此外,关于S201的详细描述还可以参照上述图2至图5所示实施例的相关描述,此处不再赘述。
上述主要从各个节点之间交互的角度对本公开提供的方案进行了介绍。可以理解的是,各个节点,例如装置或设备为了实现上述功能,其包含了执行各个功能相应的硬件结构和/或软件模块。本领域技术人员应该很容易意识到,结合本文中所公开的实施例描述的各示例的算法步骤,本发明能够以硬件或硬件和计算机软件的结合形式来实现。某个功能究竟以硬件还是计算机软件驱动硬件的方式来执行,取决于技术方案的特定应用和设计约束条件。专业技术人员可以对每个特定的应用来使用不同方法来实现所描述的功能,但是这种实现不应认为超出本发明的范围。
本公开实施例可以根据上述方法实施例对通信装置进行功能模块的划分,例如,可以对应每一个功能划分每一个功能模块,也可以将两个或两个以上的功能集成在一个功能模块中。上述集成的模块既可以采用硬件的形式实现,也可以采用软件的形式实现。需要说明的是,本公开实施例中对模块的划分是示意性的,仅仅为一种逻辑功能划分,实际实现时可以有另外的划分方式。下面以采用对应每一个功能划分每一个 功能模块为例进行说明。
图7所示为本公开实施例提供的一种通信装置的组成示意图。如图7所示,该通信装置70包括发送模块701。在一些实施例中,通信装置70还可以包括接收模块702。
在一些实施例中,发送模块701用于发送配置信息。配置信息包括以下至少之一:第一能力的信息;第一能力对应的激活时间配置信息;第一功能的信息,第一功能为需要第二节点激活的功能;第二功能的信息,第二功能为需要第二节点去激活的功能;第一指示信息,第一指示信息用于指示第二节点上报第二能力;第一触发条件信息,第一触发条件信息用于触发第二节点上报第二能力。
在一些实施例中,第一能力包括以下至少之一:第二节点的运算能力、第二节点的运算单元的数量、第二节点的存储能力、第二节点的存储单元的数量。
在一些实施例中,运算单元和/或存储单元基于以下之一确定:预定义、由第一节点定义、由第二节点定义、由第一节点和第二节点协商定义。
在一些实施例中,功能包括以下至少之一:业务类型、应用场景、消息的处理方式。
在一些实施例中,消息的处理方式包括以下至少之一:生成方式、发送方式、接收方式、承载信息的方式、承载信息的内容、传输配置。
在一些实施例中,第一能力的信息,包括以下至少之一:需要第二节点支持的能力的信息;第二节点激活第一功能时,需要第二节点支持的能力的信息。
在一些实施例中,第二能力的信息,包括以下至少之一:第二节点自身具备的能力的信息;第二节点自身支持的能力的信息;为第二节点配置的能力的信息;第二节点自身具备的最低能力的信息;第二节点自身支持的最低能力的信息;为第二节点配置的最低能力的信息;第二节点自身具备的最高能力的信息;第二节点自身支持的最高能力的信息;为第二节点配置的最高能力的信息。
在一些实施例中,激活时间配置信息包括以下至少之一:激活起始时间、激活截止时间、激活时间段。
在一些实施例中,配置信息还包括以下至少之一:第一功能对应的需要第二节点支持的能力的信息;第一功能对应的激活时间配置信息;第二功能对应的需要第二节点支持的能力的信息;第二功能对应的激活时间配置信息;第二功能对应的去激活时间配置信息。
在一些实施例中,去激活时间配置信息包括以下至少一项:去激活起始时间、去激活截止时间、去激活时间段。
在一些实施例中,第一触发条件信息包括以下至少一项:第二能力小于第一阈值;第二节点不能激活部分或者全部第一功能;第二能力小于第一能力;第二节点不支持部分或者全部的第一功能;第二节点为了激活第一功能需要支持的能力信息超过第二节点的能力限制;第二节点支持的能力信息与需要第二节点支持的能力信息之间的差值小于第二阈值。
在一些实施例中,接收模块702,用于接收第二节点发送的第一信息;第一信息包括以下至少一项:收到配置信息的确认信息;第二指示信息。
第二指示信息用于指示以下至少之一:第二节点不支持第一能力;第二节点不能提供第一能力;第二节点不能激活部分或者全部的第一功能;第二节点不支持部分或者全部的第一功能。
在一些实施例中,第一信息的发送触发条件为第二触发条件,第二触发条件包括以下至少之一:第二能力小于第三阈值;第二能力小于第一能力;第二节点不能激活部分或者全部的第一功能;第二节点不支持部分或者全部的第一功能;第二节点为了激活第一功能需要支持的能力超过第二节点的能力的限制。
在一些实施例中,第二能力小于第一能力,包括以下至少一项:第二节点支持的运算能力小于需要第二 节点支持的运算能力;第二节点支持的存储能力小于需要第二节点支持的存储能力。
在一些实施例中,第二节点支持的运算能力小于需要第二节点支持的运算能力,包括以下之一:第二节点的运算单元的数量小于需要第二节点提供的运算单元的数量;第二节点的运算单元的数量小于需要第二节点提供的运算单元的数量与第一预设值之和。
在一些实施例中,第二节点支持的存储能力小于需要第二节点支持的存储能力,包括以下之一:第二节点的存储单元的数量小于需要第二节点提供的存储单元的数量;第二节点的存储单元的数量小于需要第二节点提供的存储单元的数量与第二预设值之和。
在一些实施例中,需要第二节点提供的存储单元的数量根据需要第二节点支持的各个功能所需要的存储单元的数量的最小值确定。
在一些实施例中,接收模块702,还用于接收第二节点发送的第二信息;第二信息包括以下至少一项:收到配置信息的确认信息;第三指示信息。
第三指示信息用于指示以下至少之一:第二节点能够支持第一能力;第二节点能够提供第一能力;第二节点能够激活部分或者全部的第一功能;第二节点能够支持部分或者全部的第一功能。
在一些实施例中,第二信息的发送触发条件为第三触发条件,第三触发条件包括以下至少一项:第二能力大于或等于第三阈值;第二能力大于或等于第一能力;第二节点能够激活第一功能;第二节点能够支持第一功能;第二节点为了激活第一功能需要支持的能力小于第二节点的能力的限制。
在一些实施例中,接收模块702,还用于接收第二节点发送的第三信息。
第三信息包括以下至少一项:对配置信息的确认信息;第二节点支持的、且需要第二节点支持的能力信息对应的激活时间配置信息;第二节点更新的激活的功能的信息;第二节点更新的去激活的功能的信息。
在一些实施例中,第三信息发送的触发条件为第四触发条件,第四触发条件包括以下之一:第二能力小于第一能力;在第一能力对应的激活时间配置信息所配置的激活时间内,第二节点不能提供满足第一能力的能力。
有关上述发送模块701以及接收模块702更详细的描述、以及各技术特征更详细的描述,以及有益效果的描述等,均可以参考上述相应的方法实施例部分,此处不再赘述。
图8为本公开实施例提供的一种通信装置的组成示意图。如图8所示,该通信装置80包括接收模块801。在一些实施例中,通信装置80还可以包括发送模块802。
接收模块801,用于接收第一节点发送的配置信息。
配置信息包括以下至少之一:第一能力的信息;第一能力对应的激活时间配置信息;第一功能的信息,第一功能为需要第二节点激活的功能;第二功能的信息,第二功能为需要第二节点去激活的功能;第一指示信息,第一指示信息用于指示第二节点上报第二能力;第一触发条件信息,第一触发条件信息用于触发第二节点上报第二能力。
在一些实施例中,第一能力包括以下至少之一:第二节点的运算能力、第二节点的运算单元的数量、第二节点的存储能力、第二节点的存储单元的数量。
在一些实施例中,运算单元和/或存储单元基于以下之一确定:预定义、由第一节点定义、由第二节点定义、由第一节点和第二节点协商定义。
在一些实施例中,功能包括以下至少之一:业务类型、应用场景、消息的处理方式。
在一些实施例中,消息的处理方式包括以下至少之一:生成方式、发送方式、接收方式、承载信息的方式、承载信息的内容、传输配置。
在一些实施例中,第一能力的信息,包括以下至少之一:需要第二节点支持的能力的信息;第二节点激活第一功能时,需要第二节点支持的能力的信息。
在一些实施例中,第二能力的信息,包括以下至少之一:第二节点自身具备的能力的信息;第二节点自身支持的能力的信息;为第二节点配置的能力的信息;第二节点自身具备的最低能力的信息;第二节点自身支持的最低能力的信息;为第二节点配置的最低能力的信息;第二节点自身具备的最高能力的信息;第二节点自身支持的最高能力的信息;为第二节点配置的最高能力的信息。
在一些实施例中,激活时间配置信息包括以下至少之一:激活起始时间、激活截止时间、激活时间段。
在一些实施例中,配置信息还包括以下至少之一:第一功能对应的需要第二节点支持的能力的信息;第一功能对应的激活时间配置信息;第二功能对应的需要第二节点支持的能力的信息;第二功能对应的激活时间配置信息;第二功能对应的去激活时间配置信息。
在一些实施例中,去激活时间配置信息包括以下至少一项:去激活起始时间、去激活截止时间、去激活时间段。
在一些实施例中,第一触发条件信息包括以下至少一项:第二能力小于第一阈值;第二节点不能激活部分或者全部第一功能;第二能力小于第一能力;第二节点不支持部分或者全部的第一功能;第二节点为了激活第一功能需要支持的能力信息超过第二节点的能力限制;第二节点支持的能力信息与需要第二节点支持的能力信息之间的差值小于第二阈值。
在一种可能的实现方式中,发送模块802用于向第一节点发送第一信息。
第一信息包括以下至少一项:收到配置信息的确认信息;第二指示信息;第二指示信息用于指示以下至少之一:第二节点不支持第一能力;第二节点不能提供第一能力;第二节点不能激活部分或者全部的第一功能;第二节点不支持部分或者全部的第一功能。
在一些实施例中,第一信息的发送触发条件为第二触发条件,第二触发条件包括以下至少之一:第二能力小于第三阈值;第二能力小于第一能力;第二节点不能激活部分或者全部的第一功能;第二节点不支持部分或者全部的第一功能;第二节点为了激活第一功能需要支持的能力超过第二节点的能力的限制。
在一些实施例中,第二能力小于第一能力,包括以下至少一项:第二节点支持的运算能力小于需要第二节点支持的运算能力;第二节点支持的存储能力小于需要第二节点支持的存储能力。
在一些实施例中,第二节点支持的运算能力小于需要第二节点支持的运算能力,包括以下之一:第二节点的运算单元的数量小于需要第二节点提供的运算单元的数量;第二节点的运算单元的数量小于需要第二节点提供的运算单元的数量与第一预设值之和。
在一些实施例中,第二节点支持的存储能力小于需要第二节点支持的存储能力,包括以下之一:第二节点的存储单元的数量小于需要第二节点提供的存储单元的数量;第二节点的存储单元的数量小于需要第二节点提供的存储单元的数量与第二预设值之和。
在一些实施例中,需要第二节点提供的存储单元的数量根据需要第二节点支持的各个功能所需要的存储单元的数量的最小值确定。
在另一种实现方式中,发送模块802,还用于向第一节点发送第二信息。
第二信息包括以下至少一项:收到配置信息的确认信息;第三指示信息。第三指示信息用于指示以下至少之一:第二节点能够支持第一能力;第二节点能够提供第一能力;第二节点能够激活部分或者全部的第一功能;第二节点能够支持部分或者全部的第一功能。
在一些实施例中,第二信息的发送触发条件为第三触发条件,第三触发条件包括以下至少一项:第二能 力大于或等于第三阈值;第二能力大于或等于第一能力;第二节点能够激活第一功能;第二节点能够支持第一功能;第二节点为了激活第一功能需要支持的能力小于第二节点的能力的限制。
在又一种实现方式中,发送模块802,还用于向第一节点发送第三信息。
第三信息包括以下至少一项:对配置信息的确认信息;第二节点支持的、且需要第二节点支持的能力信息对应的激活时间配置信息;第二节点更新的激活的功能的信息;第二节点更新的去激活的功能的信息。
在一些实施例中,第三信息发送的触发条件为第四触发条件,第四触发条件包括以下之一:第二能力小于第一能力;在第一能力对应的激活时间配置信息所配置的激活时间内,第二节点不能提供满足第一能力的能力。
有关上述接收模块801以及发送模块802更详细的描述、以及各技术特征更详细的描述,以及有益效果的描述等,均可以参考上述相应的方法实施例部分,此处不再赘述。
需要说明的是,图7或图8中的模块也可以称为单元,例如,处理模块可以称为处理单元。另外,在图7或图8所示的实施例中,各个模块的名称也可以不是图中所示的名称,例如,发送模块或接收模块也可以称为通信模块。
图7或图8中的各个单元如果以软件功能模块的形式实现并作为独立的产品销售或使用时,可以存储在一个计算机可读取存储介质中。基于这样的理解,本公开实施例的技术方案本质上或者说对现有技术做出贡献的部分或者该技术方案的全部或部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)或处理器(processor)执行本公开各个实施例方法的全部或部分步骤。存储计算机软件产品的存储介质包括:U盘、移动硬盘、只读存储器(read-only memory,ROM)、随机存取存储器(random access memory,RAM)、磁碟或者光盘等各种可以存储程序代码的介质。
在采用硬件的形式实现上述集成的模块的功能的情况下,本公开实施例提供一种通信装置的结构示意图。如图9所示,该通信装置90包括:处理器902、通信接口903以及总线904。在一些实施例中,通信装置90还可以包括存储器901。
处理器902,可以是实现或执行结合本公开内容所描述的各种示例性的逻辑方框,模块和电路。该处理器902可以是中央处理器,通用处理器,数字信号处理器,专用集成电路,现场可编程门阵列或者其他可编程逻辑器件、晶体管逻辑器件、硬件部件或者其任意组合。处理器902可以实现或执行结合本公开内容所描述的各种示例性的逻辑方框,模块和电路。所述处理器902也可以是实现计算功能的组合,例如包含一个或多个微处理器组合,DSP和微处理器的组合等。
通信接口903,用于与其他设备通过通信网络连接。该通信网络可以是以太网,无线接入网,无线局域网(wireless local area networks,WLAN)等。
存储器901,可以是只读存储器(read-only memory,ROM)或可存储静态信息和指令的其他类型的静态存储设备,随机存取存储器(random access memory,RAM)或者可存储信息和指令的其他类型的动态存储设备,也可以是电可擦可编程只读存储器(electrically erasable programmable read-only memory,EEPROM)、磁盘存储介质或者其他磁存储设备、或者能够用于携带或存储具有指令或数据结构形式的期望的程序代码并能够由计算机存取的任何其他介质,但不限于此。
作为一种实现方式,存储器901可以独立于处理器902存在,存储器901可以通过总线904与处理器902相连接,用于存储指令或者程序代码。处理器902调用并执行存储器901中存储的指令或程序代码时,能够实现本公开的实施例提供的方法。
另一种实现方式中,存储器901也可以和处理器902集成在一起。
总线904,可以是扩展工业标准结构(extended industry standard architecture,EISA)总线等。总线904可以分为地址总线、数据总线、控制总线等。为便于表示,图9中仅用一条粗线表示,但并不表示仅有一根总线或一种类型的总线。
通过以上的实施方式的描述,所属领域的技术人员可以清楚地了解到,为描述的方便和简洁,仅以上述各功能模块的划分进行举例说明,实际应用中,可以根据需要而将上述功能分配由不同的功能模块完成,即将设备或装置的内部结构划分成不同的功能模块,以完成以上描述的全部或者部分功能。
本公开实施例还提供一种计算机可读存储介质。上述方法实施例中的全部或者部分流程可以由计算机指令来指示相关的硬件完成,该程序可存储于上述计算机可读存储介质中,该程序在执行时,可包括如上述各方法实施例的流程。计算机可读存储介质可以是前述任一实施例的或内存。上述计算机可读存储介质也可以是上述设备或装置的外部存储设备,例如上述设备或装置上配备的插接式硬盘,智能存储卡(smart media card,SMC),安全数字(secure digital,SD)卡,闪存卡(flash card)等。进一步地,上述计算机可读存储介质还可以既包括上述设备或装置的内部存储单元也包括外部存储设备。上述计算机可读存储介质用于存储上述计算机程序以及上述设备或装置所需的其他程序和数据。上述计算机可读存储介质还可以用于暂时地存储已经输出或者将要输出的数据。
本公开的实施例还提供一种计算机程序产品,该计算机产品包含计算机程序,当该计算机程序产品在计算机上运行时,使得该计算机执行上述实施例中所提供的任一方法。
尽管在此结合各实施例对本公开进行了描述,然而,在实施所要求保护的本公开过程中,本领域技术人员通过查看附图、公开内容、以及所附权利要求书,可理解并实现公开实施例的其他变化。在权利要求中,“包括”(Comprising)一词不排除其他组成部分或步骤,“一”或“一个”不排除多个的情况。单个处理器或其他单元可以实现权利要求中列举的若干项功能。相互不同的从属权利要求中记载了某些措施,但这并不表示这些措施不能组合起来产生良好的效果。
尽管结合特征及其实施例对本公开进行了描述,显而易见的,在不脱离本公开的精神和范围的情况下,可对其进行各种修改和组合。相应地,本说明书和附图仅仅是所附权利要求所界定的本公开的示例性说明,且视为已覆盖本公开范围内的任意和所有修改、变化、组合或等同物。显然,本领域的技术人员可以对本公开进行各种改动和变型而不脱离本公开的精神和范围。这样,倘若本公开的这些修改和变型属于本公开权利要求及其等同技术的范围之内,则本公开也意图包含这些改动和变型在内。
以上所述,仅为本公开的具体实施方式,但本公开的保护范围并不局限于此,任何在本公开揭露的技术范围内的变化或替换,都应涵盖在本公开的保护范围之内。因此,本公开的保护范围应该以权利要求的保护范围为准。

Claims (32)

  1. 一种配置方法,其中,所述方法应用于第一节点,并且包括:
    发送配置信息;
    其中,所述配置信息包括以下至少之一:
    第一能力的信息;
    所述第一能力对应的激活时间配置信息;
    第一功能的信息,其中,所述第一功能为需要第二节点激活的功能;
    第二功能的信息,其中,所述第二功能为需要所述第二节点去激活的功能;
    第一指示信息,其中,所述第一指示信息用于指示所述第二节点上报第二能力;
    第一触发条件信息,其中,所述第一触发条件信息用于触发所述第二节点上报第二能力。
  2. 根据权利要求1所述的方法,其中,所述第一能力包括以下至少之一:所述第二节点的运算能力、所述第二节点的运算单元的数量、所述第二节点的存储能力、所述第二节点的存储单元的数量。
  3. 根据权利要求2所述的方法,其中,所述运算单元和/或所述存储单元基于以下之一确定:预定义、由所述第一节点定义、由所述第二节点定义、由所述第一节点和所述第二节点协商定义。
  4. 根据权利要求1所述的方法,其中,所述功能包括以下至少之一:业务类型、应用场景、消息的处理方式。
  5. 根据权利要求4所述的方法,其中,所述消息的处理方式包括以下至少之一:生成方式、发送方式、接收方式、承载信息的方式、承载信息的内容、传输配置。
  6. 根据权利要求1所述的方法,其中,所述第一能力的信息,包括以下至少之一:
    需要所述第二节点支持的能力的信息;
    所述第二节点激活所述第一功能时,需要所述第二节点支持的能力的信息。
  7. 根据权利要求1所述的方法,其中,所述第二能力的信息,包括以下至少之一:
    所述第二节点自身具备的能力的信息;
    所述第二节点自身支持的能力的信息;
    为所述第二节点配置的能力的信息;
    所述第二节点自身具备的最低能力的信息;
    所述第二节点自身支持的最低能力的信息;
    为所述第二节点配置的最低能力的信息;
    所述第二节点自身具备的最高能力的信息;
    所述第二节点自身支持的最高能力的信息;
    为所述第二节点配置的最高能力的信息。
  8. 根据权利要求1所述的方法,其中,所述激活时间配置信息包括以下至少之一:激活起始时间、激活截止时间、激活时间段。
  9. 根据权利要求1所述的方法,其中,所述配置信息还包括以下至少之一:
    所述第一功能对应的需要所述第二节点支持的能力的信息;
    所述第一功能对应的激活时间配置信息;
    所述第二功能对应的需要所述第二节点支持的能力的信息;
    所述第二功能对应的激活时间配置信息;
    所述第二功能对应的去激活时间配置信息。
  10. 根据权利要求9所述的方法,其中,所述去激活时间配置信息包括以下至少一项:去激活起始时间、去激活截止时间、去激活时间段。
  11. 根据权利要求1所述的方法,其中,所述第一触发条件信息包括以下至少一项:
    所述第二能力小于第一阈值;
    所述第二节点不能激活部分或者全部所述第一功能;
    所述第二能力小于所述第一能力;
    所述第二节点不支持部分或者全部的所述第一功能;
    所述第二节点为了激活所述第一功能需要支持的能力信息超过所述第二节点的能力限制;
    第二节点支持的能力信息与所述需要第二节点支持的能力信息之间的差值小于第二阈值。
  12. 根据权利要求1所述的方法,还包括:
    接收所述第二节点发送的第一信息;其中,所述第一信息包括以下至少一项:
    收到所述配置信息的确认信息;
    第二指示信息;
    其中,所述第二指示信息用于指示以下至少之一:
    所述第二节点不支持所述第一能力;
    所述第二节点不能提供所述第一能力;
    所述第二节点不能激活部分或者全部的所述第一功能;
    所述第二节点不支持部分或者全部的所述第一功能。
  13. 根据权利要求12所述的方法,其中,所述第一信息的发送触发条件为第二触发条件,所述第二触发条件包括以下至少之一:
    所述第二能力小于第三阈值;
    所述第二能力小于所述第一能力;
    所述第二节点不能激活部分或者全部的所述第一功能;
    所述第二节点不支持部分或者全部的所述第一功能;
    所述第二节点为了激活所述第一功能需要支持的能力超过所述第二节点的能力的限制。
  14. 根据权利要求13所述的方法,其中,所述第二能力小于所述第一能力,包括以下至少一项:
    所述第二节点支持的运算能力小于需要所述第二节点支持的运算能力;
    所述第二节点支持的存储能力小于需要所述第二节点支持的存储能力。
  15. 根据权利要求14所述的方法,其中,所述第二节点支持的运算能力小于需要所述第二节点支持的运算能力,包括以下之一:
    所述第二节点的运算单元的数量小于需要所述第二节点提供的运算单元的数量;
    所述第二节点的运算单元的数量小于需要所述第二节点提供的运算单元的数量与第一预设值之和。
  16. 根据权利要求14所述的方法,其中,所述第二节点支持的存储能力小于需要所述第二节点支持的存储能力,包括以下之一:
    所述第二节点的存储单元的数量小于需要所述第二节点提供的存储单元的数量;
    所述第二节点的存储单元的数量小于需要所述第二节点提供的存储单元的数量与第二预设值之和。
  17. 根据权利要求16所述的方法,其中,所述需要所述第二节点提供的存储单元的数量根据需要所述第二节点支持的各个功能所需要的存储单元的数量的最小值确定。
  18. 根据权利要求1所述的方法,还包括:
    接收所述第二节点发送的第二信息;其中,所述第二信息包括以下至少一项:
    收到所述配置信息的确认信息;
    第三指示信息;
    其中,所述第三指示信息用于指示以下至少之一:
    所述第二节点能够支持所述第一能力;
    所述第二节点能够提供所述第一能力;
    所述第二节点能够激活部分或者全部的所述第一功能;
    所述第二节点能够支持部分或者全部的所述第一功能。
  19. 根据权利要求18所述的方法,其中,所述第二信息的发送触发条件为第三触发条件,所述第三触发条件包括以下至少一项:
    所述第二能力大于或等于第三阈值;
    所述第二能力大于或等于所述第一能力;
    所述第二节点能够激活所述第一功能;
    所述第二节点能够支持所述第一功能;
    所述第二节点为了激活所述第一功能需要支持的能力小于所述第二节点的能力的限制。
  20. 根据权利要求1所述的方法,还包括:
    接收所述第二节点发送的第三信息;其中,所述第三信息包括以下至少一项:
    对所述配置信息的确认信息;
    所述第二节点支持的、且需要所述第二节点支持的能力信息对应的激活时间配置信息;
    所述第二节点更新的激活的功能的信息;
    所述第二节点更新的去激活的功能的信息。
  21. 根据权利要求20所述的方法,其中,所述第三信息发送的触发条件为第四触发条件,所述第四触发条件包括以下之一:
    所述第二能力小于所述第一能力;
    在所述第一能力对应的激活时间配置信息所配置的激活时间内,所述第二节点不能提供满足所述第一能力的能力。
  22. 一种配置方法,其中,所述方法应用于第二节点,并且包括:
    接收第一节点发送的配置信息;
    其中,所述配置信息包括以下至少之一:
    第一能力的信息;
    所述第一能力对应的激活时间配置信息;
    第一功能的信息,其中,所述第一功能为需要第二节点激活的功能;
    第二功能的信息,其中,所述第二功能为需要所述第二节点去激活的功能;
    第一指示信息,其中,所述第一指示信息用于指示所述第二节点上报第二能力;
    第一触发条件信息,其中,所述第一触发条件信息用于触发所述第二节点上报第二能力。
  23. 根据权利要求22所述的方法,其中,所述第一能力包括以下至少之一:所述第二节点的运算能力、所述第二节点的运算单元的数量、所述第二节点的存储能力、所述第二节点的存储单元的数量。
  24. 根据权利要求22所述的方法,其中,所述功能包括以下至少之一:业务类型、应用场景、消息的处理方式。
  25. 根据权利要求22所述的方法,其中,所述第一能力的信息,包括以下至少之一:
    需要所述第二节点支持的能力的信息;
    所述第二节点激活所述第一功能时,需要所述第二节点支持的能力的信息。
  26. 根据权利要求22所述的方法,其中,所述激活时间配置信息包括以下至少之一:激活起始时间、激活截止时间、激活时间段。
  27. 根据权利要求22所述的方法,其中,所述配置信息还包括以下至少之一:
    所述第一功能对应的需要所述第二节点支持的能力的信息;
    所述第一功能对应的激活时间配置信息;
    所述第二功能对应的需要所述第二节点支持的能力的信息;
    所述第二功能对应的激活时间配置信息;
    所述第二功能对应的去激活时间配置信息。
  28. 根据权利要求22所述的方法,其中,所述触发条件信息包括以下至少一项:
    所述第二能力小于第一阈值;
    所述第二节点不能激活部分或者全部所述第一功能;
    所述第二能力小于所述第一能力;
    所述第二节点不支持部分或者全部的所述第一功能;
    所述第二节点为了激活所述第一功能需要支持的能力信息超过所述第二节点的能力限制;
    第二节点支持的能力信息与所述需要第二节点支持的能力信息之间的差值小于第二阈值。
  29. 根据权利要求22所述的方法,还包括:
    向所述第一节点发送第一信息;
    其中,所述第一信息包括以下至少一项:
    收到所述配置信息的确认信息;
    第二指示信息;
    其中,所述第二指示信息用于指示以下至少之一:
    所述第二节点不支持所述第一能力;
    所述第二节点不能提供所述第一能力;
    所述第二节点不能激活部分或者全部的所述第一功能;
    所述第二节点不支持部分或者全部的所述第一功能。
  30. 根据权利要求29所述的方法,其中,
    所述第一信息的发送触发条件为第二触发条件,所述第二触发条件包括以下至少之一:
    所述第二能力小于第三阈值;
    所述第二能力小于所述第一能力;
    所述第二节点不能激活部分或者全部的所述第一功能;
    所述第二节点不支持部分或者全部的所述第一功能;
    所述第二节点为了激活所述第一功能需要支持的能力超过所述第二节点的能力的限制。
  31. 一种通信装置,包括:存储器和处理器;所述存储器和所述处理器耦合;所述存储器用于存储所述 处理器可执行的指令;所述处理器执行所述指令时执行根据权利要求1至30中任一项所述的方法。
  32. 一种计算机可读存储介质,其中,所述计算机可读存储介质上存储有计算机指令,当所述计算机指令在通信装置上运行时,使得所述通信装置执行根据权利要求1至30中任一项所述的方法。
PCT/CN2024/108210 2023-11-28 2024-07-29 配置方法、通信装置及存储介质 Pending WO2025112596A1 (zh)

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