Communication methods, communication apparatus and communication system
Through the information interaction between the RF unit and the distribution unit, the flexible allocation of RF unit resources is realized, the problem of low resource utilization is solved, and the resource utilization efficiency and configuration efficiency are improved.
Patent Information
- Application Number
- PCT/CN2025/070339
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-01-17
- Filing Date
- 2025-01-03
- Publication Date
- 2025-07-24
AI Technical Summary
In the prior art, the resource utilization rate of radio frequency units is low and resources cannot be effectively allocated, resulting in waste of resources and insufficient utilization.
Through the information interaction between the RF unit and the distribution unit, the resources owned by the RF unit are flexibly configured. The distribution unit requests resource configuration according to its own needs. The RF unit determines whether to configure the remaining resources based on the resource collection situation to realize dynamic allocation of resources.
The utilization rate of RF unit resources is improved, the ineffective utilization of resources is avoided, the resource needs of different distribution units are met, and the efficiency of resource allocation is improved.
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Figure CN2025070339_24072025_PF_FP_ABST
Abstract
Description
Communication method, communication device and communication system
[0001] This application claims priority to the Chinese patent application filed with the State Intellectual Property Office of China on January 17, 2024, with application number 202410071590.0 and application name “A communication method, communication device and communication system”, the entire contents of which are incorporated by reference into this application. Technical Field
[0002] The present application relates to the field of communication technology, and more specifically, to a communication method, a communication device, and a communication system. Background Art
[0003] In some scenarios, a communication system may include at least one radio unit (RU) and multiple distributed units (DUs). For example, if a single RU is shared by multiple DUs, the RU's resources can be allocated to multiple DUs, or in other words, multiple DUs can share the RU's resources. However, improving the utilization of RU resources is a pressing technical issue. Summary of the Invention
[0004] The present application provides a communication method, a communication device, and a communication system that can support improving the utilization of resources owned by RU.
[0005] In a first aspect, a communication method is provided, comprising: receiving first information from a first distribution unit, the first information requesting a first resource; and sending second information to the first distribution unit in response to the first information, the second information being determined based on resource allocation in a resource set owned by a radio frequency unit and the first resource, the resource set being capable of being used by the radio frequency unit to serve at least two distribution units, the at least two distribution units including the first distribution unit.
[0006] The execution entity of the solution described in the first aspect may be a radio frequency unit, a module within the radio frequency unit (such as a chip system), or a logical node, logic module, or software that implements all or part of the radio frequency unit's functions, without limitation. For ease of description, the following description uses the radio frequency unit as an example.
[0007] The RF unit and the first distribution unit can exchange first information and second information. Based on the information exchanged between the two regarding resource configuration, the RF unit can flexibly configure the resources owned by the RF unit, thereby enabling more adequate configuration of the resources owned by the RF unit. For example, when there are remaining resources in the resource set owned by the RF unit, the first distribution unit can request the RF unit to configure some or all of the remaining resources. The RF unit can determine whether the remaining resources owned by the RF unit can be configured based on the request of the first distribution unit. In this way, the utilization rate of the resources owned by the RF unit can be effectively improved.
[0008] Compared to configuring the resources owned by the RF unit in a static configuration manner (for example, the RF unit pre-configures resources for the distribution unit, regardless of whether there are remaining resources in the resources owned by the RF unit, and regardless of whether the distribution unit has an actual need to utilize the resources), the embodiment of the present application can support the effective configuration of the resources owned by the RF unit through a solution in which the distribution unit requests the RF unit to configure resources.
[0009] For example, it can prevent the radio frequency unit from being unable to utilize the remaining resources in the resource set; for another example, when the distribution unit does not have the actual need to utilize the pre-configured resources, this will cause the resources to be in an invalid utilization state. When the distribution unit can request the radio frequency unit to configure resources according to its own needs, this can effectively improve resource utilization.
[0010] In summary, the embodiments of the present application can support effective configuration of resources owned by the radio frequency unit, thereby supporting improved utilization of the resources owned by the radio frequency unit.
[0011] In the first aspect, the method further includes: sending third information to the second distribution unit, where the third information indicates that the allocated additional resources corresponding to the second distribution unit in the resource set have changed.
[0012] In this way, the second distribution unit can determine that the amount of additional resources that have been successfully applied for has changed based on the third information, and can timely adjust the utilization method of the additional resources. For example, the second distribution unit can provide users with appropriate services based on the adjusted additional resources.
[0013] In the first aspect, the method further includes: sending fourth information, where the fourth information indicates resource allocation status in the resource set.
[0014] The radio frequency unit can send fourth information to the first distribution unit and / or the second distribution unit. The first distribution unit and / or the second distribution unit can determine whether to continue to apply to the radio frequency unit for resource configuration based on the resource allocation status in the resource set indicated by the fourth information. In this way, it can further support improving the utilization rate of the resources owned by the radio frequency unit.
[0015] In a second aspect, a communication method is provided, including: sending first information to a radio frequency unit, the first information requesting a first resource; receiving second information from the radio frequency unit, the second information being determined based on the resource allocation situation in a resource set owned by the radio frequency unit and the first resource, the resource set being capable of being used by the radio frequency unit to serve at least two distributed units, the at least two distributed units including the first distributed unit, and the second information being a response to the first information.
[0016] The implementation entity of the solution described in the second aspect may be a distribution unit, a module within the first distribution unit (such as a chip system), or a logical node, logic module, or software that implements all or part of the functions of the first distribution unit, without limitation. For ease of description, the following description uses the first distribution unit as an example.
[0017] The RF unit and the first distribution unit can exchange first information and second information. Based on the information exchanged between the two regarding resource configuration, the RF unit can flexibly configure the resources owned by the RF unit, thereby enabling more adequate configuration of the resources owned by the RF unit. For example, when there are remaining resources in the resource set owned by the RF unit, the first distribution unit can request the RF unit to configure some or all of the remaining resources. The RF unit can determine whether the remaining resources owned by the RF unit can be configured based on the request of the first distribution unit. In this way, the utilization rate of the resources owned by the RF unit can be effectively improved.
[0018] Compared to configuring the resources owned by the RF unit in a static configuration manner (for example, the RF unit pre-configures resources for the distribution unit, regardless of whether there are remaining resources in the resources owned by the RF unit, and regardless of whether the distribution unit has an actual need to utilize the resources), the embodiment of the present application can support the effective configuration of the resources owned by the RF unit through a solution in which the distribution unit requests the RF unit to configure resources.
[0019] For example, it can prevent the radio frequency unit from being unable to utilize the remaining resources in the resource set; for another example, when the distribution unit does not have the actual need to utilize the pre-configured resources, this will cause the resources to be in an invalid utilization state. When the distribution unit can request the radio frequency unit to configure resources according to its own needs, this can effectively improve resource utilization.
[0020] In summary, the embodiments of the present application can support effective configuration of resources owned by the radio frequency unit, thereby supporting improved utilization of the resources owned by the radio frequency unit.
[0021] In the second aspect, the method further includes: receiving fourth information from the radio frequency unit, where the fourth information indicates resource allocation status in the resource set.
[0022] The first distribution unit may determine whether to continue applying to the radio frequency unit for resource configuration according to the resource allocation status in the resource set indicated by the fourth information. This may further support improving the utilization rate of the resources owned by the radio frequency unit.
[0023] In combination with the scheme described in any aspect of the first aspect and the second aspect, the first information indicates that the attribute of the first resource is a basic resource or an additional resource. The basic resource is a resource used to provide services within the coverage area of the cell, and the additional resource is a resource used to improve the user service experience.
[0024] By distinguishing between basic resources and additional resources, the RF unit can meet the resource needs of different distributed units. For example, the RF unit can meet the needs of some distributed units to provide basic communications; for example, the RF unit can meet the needs of some distributed units to improve user services, and so on.
[0025] By indicating the attributes of the first resource, the RF unit can determine whether to configure the first resource based on the attributes of the first resource. For example, the configuration priority of basic resources is higher than the configuration priority of additional resources. When the attribute of the first resource is a basic resource, the RF unit prioritizes the configuration of the basic resource. For another example, when the attribute of the first resource is an additional resource, the RF unit does not prioritize the configuration of the additional resource. In this way, the RF unit can ensure that the probability of successful resource configuration of the distributed unit applying for basic resources is higher than the probability of successful resource configuration of the distributed unit applying for additional resources.
[0026] In combination with the scheme described in any aspect of the first aspect and the second aspect, the second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, including: the second information is determined based on the attributes of the first resource, the first resource and the resource allocation situation in the resource set.
[0027] In this way, the radio frequency unit can determine whether the first resource can be configured according to the attribute of the first resource, the first resource and the resource allocation status in the resource set, thereby supporting improved utilization of the resources owned by the radio frequency unit.
[0028] In combination with the scheme described in any aspect of the first aspect and the second aspect, the second information is determined based on the attributes of the first resource, the first resource and the resource allocation in the resource set, including: the second information is determined based on the attributes of the first resource, the first resource and the unallocated resources in the resource set.
[0029] When the radio frequency unit determines whether to configure the first resource according to the unallocated resources in the resource set, this does not change the configuration of the allocated resources in the resource set owned by the radio frequency unit.
[0030] In combination with the scheme described in any aspect of the first aspect and the second aspect, the second information is determined based on the attributes of the first resource, the first resource, and the resource allocation in the resource set, including: the second information is determined based on the attributes of the first resource, the first resource, the unallocated resources in the resource set, and the allocated additional resources in the resource set.
[0031] When the radio frequency unit determines whether to configure the first resource based on the unallocated resources in the resource set and the allocated additional resources in the resource set, the radio frequency unit may reclaim part or all of the additional resources from the allocated additional resources, thereby giving priority to the configuration of the basic resources.
[0032] In combination with the solution described in any aspect of the first aspect and the second aspect, the first information indicates that the attribute of the first resource is a basic resource, the first resource is less than or equal to the unallocated resources in the resource set, and the second information is used to configure the first resource.
[0033] When the first resource is less than or equal to unallocated resources in the resource set, the radio frequency unit may support configuring the first resource.
[0034] In combination with the solution described in any aspect of the first aspect and the second aspect, the first information indicates that the attribute of the first resource is a basic resource, the first resource is greater than the unallocated resources in the resource set, and the second information is used to indicate a request failure.
[0035] When the first resource is larger than unallocated resources in the resource set, the radio frequency unit does not support configuration of the first resource.
[0036] In combination with the scheme described in any aspect of the first aspect and the second aspect, the first information indicates that the attribute of the first resource is an additional resource, the first resource is less than or equal to the unallocated resources in the resource set, and the second information is used to configure the first resource.
[0037] When the first resource is less than or equal to the unallocated resources in the resource set, the radio frequency unit may support configuring the first resource.
[0038] In combination with the solutions described in any of the first and second aspects, the first information indicates that the attribute of the first resource is an additional resource, the first resource is greater than the unallocated resources in the resource set, and the second information is used to indicate a request failure.
[0039] When the first resource is larger than unallocated resources in the resource set, the radio frequency unit does not support configuration of the first resource.
[0040] In combination with the scheme described in any aspect of the first aspect and the second aspect, the first information indicates that the attribute of the first resource is a basic resource, the first resource is greater than the unallocated resources in the resource set, the sum of the unallocated resources in the resource set and the allocated additional resources in the resource set is greater than or equal to the first resource, and the second information is used to configure the first resource; the allocated additional resources in the resource set are used to serve the second distribution unit.
[0041] In this way, the radio frequency unit can prioritize the configuration of basic resources.
[0042] In combination with the solution described in any aspect of the first aspect and the second aspect, the first resource includes at least one of the following: power resources, transmission resources, or bandwidth resources.
[0043] In this way, the embodiment of the present application can support the RF unit to flexibly configure one or more of its power resources, transmission resources or bandwidth resources.
[0044] In combination with the solution described in any aspect of the first aspect and the second aspect, the first resource is a resource with carrier granularity.
[0045] The first distribution unit can apply for resources for each carrier from the radio frequency unit at a carrier granularity. After the first distribution unit successfully applies for resources, it does not need to configure resources for each carrier, which can effectively reduce the resource configuration overhead of the first distribution unit.
[0046] According to a third aspect, a communication method is provided, including: a first distribution unit sends first information to a radio frequency unit, the first information requests a first resource; the radio frequency unit sends second information to the first distribution unit, the second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, and the resource set can be used by the radio frequency unit to serve at least two distribution units, and the at least two distribution units include the first distribution unit.
[0047] The above-mentioned first distribution unit and radio frequency unit can also be used to execute the methods described in the first aspect and the second aspect respectively.
[0048] In a fourth aspect, a communication system is provided, including: a first distribution unit and a radio frequency unit: the first distribution unit is used to send first information to the radio frequency unit, the first information is used to request a first resource; the radio frequency unit is used to receive the first information, and is also used to send second information to the first distribution unit, the second information is determined based on the resource allocation situation and the first resource in the resource set owned by the radio frequency unit, the resource set can be used by the radio frequency unit to serve at least two distribution units, the at least two distribution units include the first distribution unit, and the second information is used to respond to the first information; the first distribution unit is also used to receive the second information.
[0049] The above-mentioned first distribution unit and radio frequency unit can also be used to execute the methods described in the first aspect and the second aspect respectively.
[0050] In a fifth aspect, a communication device is provided. The communication device may be a radio frequency unit, or may be a device or module for performing the functions of a radio frequency unit.
[0051] In one possible implementation, the communication device may include a module or unit corresponding to each of the methods / operations / steps / actions described in the first aspect. The module or unit may be a hardware circuit, software, or a combination of hardware circuit and software.
[0052] In a sixth aspect, a communication device is provided. The communication device may be a first distribution unit, or may be a device or module for executing the functions of the first distribution unit.
[0053] In one possible implementation, the communication device may include a module or unit corresponding to each of the methods / operations / steps / actions described in the second aspect. The module or unit may be a hardware circuit, software, or a combination of hardware circuit and software.
[0054] In the seventh aspect, a communication device is provided, which includes: an interface unit for receiving first information from a first distribution unit, the first information requesting a first resource; the interface unit is also used to send second information to the first distribution unit, the second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, the resource set can be used by the radio frequency unit to serve at least two distribution units, the at least two distribution units including the first distribution unit, and the second information is used to respond to the first information.
[0055] The above-mentioned communication device can also be used to execute the solution described in the method described in the first aspect and any possible manner of the first aspect, which will not be repeated here.
[0056] In an eighth aspect, a communication device is provided, which includes: an interface unit for sending first information to a radio frequency unit, the first information requesting a first resource; the interface unit is also used to receive second information from the radio frequency unit, the second information is determined based on the first resource and the resource allocation in the resource set owned by the radio frequency unit, the at least two distribution units include a first distribution unit, and the second information is used to respond to the first information.
[0057] The above-mentioned communication device can also be used to execute the solution described in the method described in the aforementioned second aspect and any possible manner of the second aspect, which will not be repeated here.
[0058] In the ninth aspect, a communication device is provided, comprising a processor, wherein the processor is used to, by executing a computer program or instruction, or by a logic circuit, enable the communication device to execute the method described in the first aspect and any possible manner of the first aspect; or, enable the communication device to execute the method described in the second aspect and any possible manner of the second aspect; or, enable the communication device to execute the method described in the third aspect and any possible manner of the third aspect.
[0059] In a possible implementation, the communication device further includes a memory for storing the computer program or instruction.
[0060] In a possible implementation, the communication device further includes a communication interface, which is used to input and / or output signals.
[0061] In the tenth aspect, a communication device is provided, comprising a logic circuit and an input / output interface, the input / output interface being used to input and / or output signals, the logic circuit being used to execute the method described in the first aspect and any possible manner of the first aspect; or, the logic circuit being used to execute the method described in the second aspect and any possible manner of the second aspect; or, the logic circuit being used to execute the method described in the third aspect and any possible manner of the third aspect.
[0062] In the eleventh aspect, a computer-readable storage medium is provided, on which a computer program or instruction is stored. When the computer program or the instruction is run on a computer, the method described in the first aspect and any possible manner of the first aspect is executed; or, the method described in the second aspect and any possible manner of the second aspect is executed; or, the method described in the third aspect and any possible manner of the third aspect is executed.
[0063] In the twelfth aspect, a computer program product is provided, comprising instructions, which, when executed on a computer, cause the method described in the first aspect and any possible manner of the first aspect to be executed; or, cause the method described in the second aspect and any possible manner of the second aspect to be executed; or, cause the method described in the third aspect and any possible manner of the third aspect to be executed.
[0064] In the thirteenth aspect, a chip system is provided, which is connected to a memory and is used to read and execute a software program stored in the memory to execute the method described in the first aspect and any possible manner in the first aspect; or, to execute the method described in the second aspect and any possible manner in the second aspect; or, to execute the method described in the third aspect and any possible manner in the third aspect.
[0065] In the fourteenth aspect, a chip system is provided, which includes: a communication interface for communicating with other devices; a processor for enabling a communication device equipped with the chip system to execute the method described in the first aspect and any possible manner in the first aspect; or, for enabling a communication device equipped with the chip system to execute the method described in the second aspect and any possible manner in the second aspect; or, for enabling a communication device equipped with the chip system to execute the method described in the third aspect and any possible manner in the first three aspects.
[0066] In the fifteenth aspect, a chip system is provided, which includes a processor, a memory and an input / output port, wherein the memory is used to store a computer program; the processor is used to execute the computer program stored in the memory, so that the processor executes the method described in the first aspect and any possible manner in the first aspect; or, so that the processor executes the method described in the second aspect and any possible manner in the second aspect; or, so that the processor executes the method described in the third aspect and any possible manner in the third aspect.
[0067] In the sixteenth aspect, a chip system is provided, which is applied to an electronic device, and the chip system includes one or more processors, and the processor is used to call computer instructions so that the electronic device executes the method described in the first aspect and any possible manner in the first aspect; or, the processor is used to call computer instructions so that the electronic device executes the method described in the second aspect and any possible manner in the second aspect; or, the processor is used to call computer instructions so that the electronic device executes the method described in the third aspect and any possible manner in the third aspect.
[0068] The description of the advantageous effects of any of the third to sixteenth aspects etc. may refer to the description of the advantageous effects of the first and second aspects. BRIEF DESCRIPTION OF THE DRAWINGS
[0069] FIG1 is a schematic diagram of a communication architecture applicable to an embodiment of the present application.
[0070] FIG2 is a schematic diagram of an interaction flow of a communication method according to an embodiment of the present application.
[0071] FIG3 is a schematic diagram of an interaction flow of another communication method according to an embodiment of the present application.
[0072] FIG4 is a schematic diagram of an interaction flow of another communication method according to an embodiment of the present application.
[0073] FIG5 is a schematic diagram of an interaction flow of yet another communication method according to an embodiment of the present application.
[0074] FIG6 is a schematic block diagram of a communication device according to an embodiment of the present application.
[0075] FIG7 is a schematic block diagram of another communication device according to an embodiment of the present application. DETAILED DESCRIPTION
[0076] The technical solution in this application will be described below with reference to the accompanying drawings.
[0077] In order to facilitate understanding of the embodiments of the present application, the following points are first explained.
[0078] 1. Unless otherwise specified, “at least two or more” means two or more.
[0079] 2. Unless otherwise specified or there is no logical conflict, the terms and / or descriptions between different embodiments of this application are consistent and can be referenced by each other. The technical features in different embodiments can be combined to form new embodiments based on their internal logical relationships.
[0080] 3. The various numerical numbers involved in this application are only used for the convenience of description and are not used to limit the scope of protection of this application. The size of the serial numbers involved in this application does not mean the order of execution. The order of execution of each process should be determined by its function and internal logic. For example, the terms "first", "second", "third", "fourth" and other various terminology labels (if any) in the specification and claims and drawings of this application are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. Among them, the data used in this way can be interchangeable where appropriate, so that the embodiments described here can be implemented in an order other than what is illustrated or described here.
[0081] At the same time, any embodiment or design described in this application as "exemplary" or "for example" should not be interpreted as being more preferred or more advantageous than other embodiments or designs. Specifically, the use of words such as "exemplary" or "for example" is intended to present the relevant concepts in a concrete manner to facilitate understanding.
[0082] 4. The terms "comprise" and "have" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product or apparatus that includes a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such process, method, product or apparatus.
[0083] 5. In this application, "used to indicate" can be understood as "enabling," and "enabling" can include direct enabling and indirect enabling. When describing that certain information is used to enable A, it can include that the information directly enables A or indirectly enables A, and does not necessarily mean that the information contains A.
[0084] The information enabled by the information is called information to be enabled. In the specific implementation process, there are many ways to enable the enabled information, such as but not limited to, directly enabling the information to be enabled, such as the information to be enabled itself or the index of the information to be enabled. The information to be enabled can also be indirectly enabled by enabling other information, wherein there is an association between the other information and the information to be enabled. It is also possible to enable only a part of the information to be enabled, while the other parts of the information to be enabled are known or agreed in advance. For example, it is also possible to enable specific information with the help of the arrangement order of each piece of information agreed in advance (such as specified in the protocol), thereby reducing the enabling overhead to a certain extent. At the same time, it is also possible to identify the common parts of each piece of information and enable them uniformly to reduce the enabling overhead caused by enabling the same information separately.
[0085] 6. In this application, "pre-configuration" may include pre-definition, such as protocol definition. "Pre-definition" may be implemented by pre-storing corresponding codes, tables, or other methods that can be used to indicate relevant information in a device (e.g., including each network element). This application does not limit the specific implementation method.
[0086] 7. "Storage" or "saving" as used in this application may refer to storage in one or more memories. The one or more memories may be provided separately or integrated into an encoder or decoder, a processor, or a communication device. The one or more memories may also be provided in part separately and in part integrated into a decoder, processor, or communication device. The type of memory may be any form of storage medium and is not limited thereto.
[0087] 8. The “protocol” referred to in this application may refer to a standard protocol in the field of communications, such as the fourth generation (4G) th generation, 4G) network, fifth generation (5 th generation, 5G) network protocol, NR protocol, 5.5G network protocol, sixth generation (6 th generation, 6G) network protocols and related protocols used in future communication systems, which are not limited in this application.
[0088] 9. The arrows or boxes indicated by dotted lines in the schematic diagrams in the accompanying drawings of this application specification represent optional steps or optional modules.
[0089] 10. Unless otherwise specified, “ / ” indicates that the objects associated with each other are in an “or” relationship. For example, A / B can mean A or B. “And / or” in this application is only a description of the association relationship between the associated objects, indicating that there can be three relationships. For example, A and / or B can mean: A exists alone, A and B exist at the same time, and B exists alone. A and B can be singular or plural.
[0090] First, a communication system applicable to the embodiment of the present application is described.
[0091] The technical solutions provided in this application can be applied to various communication systems, such as 5G or NR systems, long term evolution (LTE) systems, LTE frequency division duplex (FDD) systems, LTE time division duplex (TDD) systems, wireless local area networks (WLAN) systems, satellite communication systems, future communication systems, such as 6G mobile communication systems, or integrated systems of multiple systems. The technical solutions provided in this application can also be applied to device-to-device (D2D) communication, vehicle-to-everything (V2X) communication, machine-to-machine (M2M) communication, machine type communication (MTC), and Internet of Things (IoT) communication systems or other communication systems.
[0092] A device in a communication system can send signals to or receive signals from another device. The signals may include information, signaling, or data. A device may also be replaced by an entity, network entity, communication device, communication module, node, or communication node. The embodiments of this application are described using a device as an example.
[0093] The network device in the embodiments of the present application may be a device for communicating with a terminal device, and may also be referred to as an access network device or a radio access network device. For example, the network device may be a base station. The network device in the embodiments of the present application may refer to a radio access network (RAN) node (or device) that connects a terminal device to a wireless network. A base station may broadly cover various names as follows, or replace the following names, such as: NodeB, evolved NodeB (eNB), next generation NodeB (gNB), relay station, access point, transmitting and receiving point (TRP), transmitting point (TP), master station, secondary station, multi-standard radio (motor slide retainer, MSR) node, home base station, network controller, access node, wireless node, access point (AP), transmission node, transceiver node, baseband unit (BBU), remote radio unit (RRU), active antenna unit (AAU), remote radio head (RRH), central unit (CU), distributed unit (DU), radio unit (RU), positioning node, etc. A base station may be a macro base station, a micro base station, a relay node, a donor node, or the like, or a combination thereof.
[0094] The base station may also refer to a communication module, modem or chip used to be set in the aforementioned equipment or device. The base station may also be a mobile switching center and a device that performs the base station function in D2D, V2X, and M2M communications, a network side device in a 6G network, a device that performs the base station function in future communication systems, etc. The base station can support networks with the same or different access technologies. Optionally, the RAN node may also be a server, a wearable device, a vehicle or an on-board device, etc. For example, the access network device in the V2X technology may be a road side unit (RSU). The embodiments of the present application do not limit the specific technology and specific device form adopted by the network equipment.
[0095] Base stations can be fixed or mobile. For example, a helicopter or drone can be configured to act as a mobile base station, and one or more cells can move based on the location of the mobile base station. In other examples, a helicopter or drone can be configured to act as a device that communicates with another base station.
[0096] In some deployments, the network devices mentioned in the embodiments of the present application may include a CU, a DU, or both a CU and a DU, or a control plane CU node (central unit-control plane (CU-CP)), a user plane CU node (central unit-user plane (CU-UP)), and a DU node. For example, the network devices may include a gNB-CU-CP, a gNB-CU-UP, and a gNB-DU.
[0097] In some deployments, multiple RAN nodes collaborate to assist terminals in achieving wireless access, with different RAN nodes implementing portions of the base station's functionality. For example, a RAN node can be a CU, DU, CU-CP, CU-UP, or RU. The CU and DU can be separate or included in the same network element, such as the BBU. The RU can be included in a radio frequency device or radio unit, such as an RRU, AAU, or RRH.
[0098] The RAN node may support one or more types of fronthaul interfaces, with different fronthaul interfaces corresponding to DUs and RUs with different functions. If the fronthaul interface between the DU and the RU is a common public radio interface (CPRI), the DU is configured to implement one or more baseband functions, and the RU is configured to implement one or more radio frequency functions. If the fronthaul interface between the DU and the RU is another type of interface, relative to the CPRI, some of the downlink and / or uplink baseband functions, such as precoding, digital beamforming (BF), or one or more of inverse fast Fourier transform (IFFT) / cyclic prefix (CP) for downlink, are moved from the DU to the RU for implementation; and for uplink, one or more of digital beamforming (BF), or fast Fourier transform (FFT) / cyclic prefix (CP) removal, are moved from the DU to the RU for implementation.
[0099] In one possible design, the processing unit for implementing baseband functions in the BBU is called a baseband high layer (BBH) unit, and the processing unit for implementing baseband functions in the RRU / AAU / RRH is called a baseband low layer (BBL) unit.
[0100] In different systems, CU (or CU-CP and CU-UP), DU or RU may also have different names, but those skilled in the art can understand their meanings. For example, in the ORAN system, CU may also be called O-CU (Open CU), DU may also be called O-DU, CU-CP may also be called O-CU-CP, CU-UP may also be called O-CU-UP, and RU may also be called O-RU. Any unit of CU (or CU-CP, CU-UP), DU and RU in this application can be implemented by a software module, a hardware module, or a combination of a software module and a hardware module.
[0101] In the embodiments of the present application, the device for implementing the functions of the network device can be a network device; it can also be a device that can support the network device to implement the functions, such as a chip system, a hardware circuit, a software module, or a hardware circuit and a software module. The device can be installed in the network device or used in conjunction with the network device. In the embodiments of the present application, only the device for implementing the functions of the network device is used as an example to illustrate, and does not constitute a limitation on the solutions of the embodiments of the present application.
[0102] Network equipment can be deployed on land, including indoors or outdoors, handheld or vehicle-mounted; it can also be deployed on the water; and it can also be deployed in the air on aircraft, balloons and satellites.
[0103] It should be noted that the embodiments of the present application do not limit the scenarios in which the network device is located. In addition, the network device can be a hardware device, or a software function running on dedicated hardware, or a software function running on general-purpose hardware, such as a virtualization function instantiated on a platform (e.g., a cloud platform), or an entity including dedicated or general-purpose hardware devices and software functions. The present application does not limit the specific form of the network device.
[0104] The following describes the communication architecture of an embodiment of the present application in conjunction with Figure 1.
[0105] Figure 1 is a schematic diagram of a communication architecture applicable to an embodiment of the present application. As shown in Figure 1, the communication architecture includes: a RU and multiple DUs (e.g., DU1, DU2, ..., and DUn). An information exchange channel exists between the RU and each DU.
[0106] In the communication architecture shown in Figure 1, an RU can be shared by multiple DUs or managed by the RU. For example, the resources owned by the RU (without limiting the attributes or types of the resources, for example, one or more of power resources, bandwidth resources, or transmission resources, etc.) can be allocated to multiple DUs, or multiple DUs can share the resources owned by the RU. However, because resources are currently allocated to multiple DUs in a fixed manner, for example, the RU fixedly allocates resources to each DU without considering whether the DU needs more resources or whether there are surplus resources among the resources owned by the RU, this may result in low utilization of the resources owned by the RU, or in other words, the resources owned by the RU are not being utilized in an efficient manner.
[0107] It should be noted that the communication architecture shown in Figure 1 is described only as an example and is not intended to be a final limitation. In addition, the technical solution provided in this application can be applied to communication systems that are evolved from the communication architecture shown in Figure 1, for example, including but not limited to: open random access network (O-RAN), without limitation to this.
[0108] In view of this, the present application provides a communication method, a communication device, and a communication system, which can support improving the utilization rate of resources owned by a radio frequency unit.
[0109] The communication method according to the embodiment of the present application is described below with reference to the accompanying drawings.
[0110] For ease of understanding and explanation, the following description uses the interaction between the RF unit and the first distributed unit as an example to describe the communication method of the embodiment of the present application. However, this does not limit the execution subject of the communication method of the embodiment of the present application. For example, the RF unit can be replaced with a component configured in the RF unit (such as a circuit, chip, or chip system), and the first distributed unit can be replaced with a component configured in the first distributed unit (such as a circuit, chip, or chip system), and so on.
[0111] FIG2 is an interactive flow chart of a communication method according to an embodiment of the present application. As shown in FIG2 , the method includes:
[0112] S201: A first distribution unit sends first information to a radio frequency unit.
[0113] Correspondingly, the radio frequency unit receives the first information.
[0114] The first information is used by the first distributed unit to request (also understood as requesting configuration) a first resource from the radio frequency unit. The first resource belongs to a resource set owned by the radio frequency unit. The resource set can be used by the radio frequency unit to serve at least two distributed units. Alternatively, the radio frequency unit can allocate or configure resources in the resource set. Alternatively, at least two distributed units can share the resource set owned by the radio frequency unit. The at least two distributed units include the first distributed unit.
[0115] In one possible implementation, the first information may further indicate an attribute of the first resource. The attribute of the first resource (which may also be replaced by other terms, such as type or category) includes a basic resource or an additional resource (wherein the additional resource may be referred to as a non-basic resource, or may be replaced by an extended resource or other resource name).
[0116] In the embodiment of the present application, basic resources are resources configured based on the coverage and planning of the cell, or in other words, basic resources are resources obtained by manual planning based on static information such as the cell's coverage radius and cell bandwidth, and can be used on all downlink physical channels including common channels. Optionally, the above-mentioned basic resources can also be understood as resources used to provide services (or basic services) within the coverage area of the cell.
[0117] Illustratively, the distributed unit may use basic resources to provide basic communication functions within the coverage area of the cell. For example, the basic communication functions may include voice services, SMS services, or some non-delay-sensitive services. The basic resources may include power resources of the cell, or communication resources between the distributed unit and the radio frequency unit.
[0118] In the embodiments of the present application, additional resources are resources used to improve the user service experience. For example, additional resources can be resources calculated based on dynamically changing scenarios such as cell load and VIP (very important person) personnel support, and can be used on user-level downlink physical channels to improve user throughput.
[0119] For example, the distribution unit can use additional resources to improve the user service experience, for example, the delay of the communication service based on basic resources is 5 seconds, and the delay of the communication service based on additional resources is 1 second, etc. The additional resources may include cell power resources, etc.
[0120] By distinguishing between basic resources and additional resources, the RF unit can meet the needs of different distributed units. For example, it can meet the needs of some distributed units that only provide basic communication functions; for example, it can meet the needs of some distributed units that want to improve the user service experience, etc.
[0121] For example, the first information includes one or more bits, and different values of the one or more bits are used to indicate different attributes of the first resource. Exemplarily, the first information includes one bit, and the bit value is 0 or 1, where 0 can be used to indicate that the attribute of the first resource is a basic resource, and 1 can be used to indicate that the attribute of the first resource is an additional resource.
[0122] By indicating the attributes of the first resource, the RF can determine whether to configure the first resource required by the first distributed unit based on the attributes of the first resource. For example, the configuration priority of basic resources is higher than the configuration priority of additional resources. In other words, the RF prioritizes allocating resources to the requested basic resources. Alternatively, when the attributes of the first resource are basic resources, the RF prioritizes ensuring the configuration of basic resources.
[0123] In one possible implementation, the first resource may be one or more of power resources, bandwidth resources, or transmission resources.
[0124] Exemplarily, the first resource is a power resource. Then S201 can be understood as: the first distribution unit requests the radio frequency unit to configure the first power resource.
[0125] Exemplarily, the first resource is a bandwidth resource. Then S201 can be understood as: the first distribution unit requests the radio frequency unit to configure the first bandwidth resource.
[0126] Exemplarily, the first resource is a transmission resource (eg, a frequency domain resource and / or a time domain resource, etc.). Then S201 can be understood as: the first distribution unit requests the radio frequency unit to configure the first transmission resource.
[0127] Exemplarily, the first resource is a power resource and a bandwidth resource. Then S201 can be understood as: the first distribution unit requests the radio frequency unit to configure the first power resource and the first bandwidth resource.
[0128] Exemplarily, the first resource is a power resource and a transmission resource. Then S201 can be understood as: the first distribution unit requests the radio frequency unit to configure the first power resource and the first transmission resource.
[0129] For example, the first resource may be a bandwidth resource and a transmission resource. Then S201 may be understood as: the first distribution unit requests the radio frequency unit to configure the first bandwidth resource and the first transmission resource.
[0130] Exemplarily, the first resource is a power resource, a bandwidth resource, and a transmission resource. Then S201 can be understood as: the first distribution unit requests the radio frequency unit to configure the first power resource, the first bandwidth resource, and the first transmission resource.
[0131] For ease of description, the specific type of the first resource will not be distinguished below.
[0132] In this way, the embodiment of the present application can support the RF unit to flexibly configure one or more of its power resources, transmission resources or bandwidth resources.
[0133] S202: The radio frequency unit sends second information to the first distribution unit.
[0134] Correspondingly, the first distribution unit receives the second information.
[0135] The second information is used to respond to the first information. The second information is determined according to the first resource and resource allocation in the resource set.
[0136] The resource allocation status in the above resource set can be understood as the status of allocated resources in the resource set and / or the status of unallocated resources in the resource set, wherein allocated resources and unallocated resources are relative.
[0137] In the embodiment of the present application, the radio frequency unit may determine the second information in the following ways:
[0138] Scenario #1:
[0139] The radio frequency unit determines whether to configure the first resource according to the first resource and unallocated resources in the resource set.
[0140] The following description is made by taking the total amount of resources in the resource set (taking power resources as an example) as 100W (watts), and the unallocated resources as 20W (allocated resources as 80W) as an example.
[0141] Example #1-1:
[0142] The first distribution unit requests to allocate 30W of first resources. Since the unallocated resources in the resource set are less than the first resources, the radio frequency unit does not support or allow the request of the first distribution unit, or in other words, the radio frequency unit does not allocate 30W of resources to the first distribution unit.
[0143] Example #1-2:
[0144] The first distribution unit requests to configure 15W of first resources. Since the unallocated resources in the resource set are more than the first resources, the radio frequency unit supports the request of the first distribution unit, or in other words, the radio frequency unit configures 15W of first resources to the first distribution unit.
[0145] In summary, when the RF unit determines to allocate the first resource to the first distribution unit based on the size relationship between the first resource and the unallocated resources in the resource set, the second information indicates that it agrees to allocate the first resource, or the second information is understood as configuration information of the first resource. When the RF unit determines that it cannot allocate the first resource to the first distribution unit, the second information indicates that it does not agree to allocate the first resource.
[0146] Scenario #2:
[0147] The radio frequency unit is determined according to the attribute of the first resource, the first resource, and resource allocation in the resource set.
[0148] In the embodiment of the present application, the resources in the resource set can be divided into two categories: basic resources and additional resources. The resource allocation status in the resource set can include the allocation status of basic resources (e.g., allocated basic resources and unallocated basic resources) and the allocation status of additional resources (e.g., allocated additional resources and unallocated additional resources).
[0149] In an embodiment of the present application, the proportion of basic resources in the resource set may be greater than or equal to the proportion of additional resources in the resource set. For example, the radio frequency unit may use most of the resources in the resource set as basic resources. When the total amount of resources in the resource set can meet the needs of multiple distribution units for basic resources, when there are still some resources left in the resource set (such as unallocated resources), the radio frequency unit may use these resources as additional resources and configure them to some or all of the multiple distribution units. In other words, the importance of configuring basic resources is higher than the importance of configuring additional resources. In addition, any of the above-mentioned types of resources can be configured in a flexible configuration manner. For example, the radio frequency unit can be configured according to the request of the distribution unit.
[0150] For further description of Scenario #2, please refer to the description of Scenario #2a and Scenario #2b.
[0151] Scenario #2a:
[0152] The radio frequency unit determines the second information according to the attribute of the first resource, the first resource, and unallocated resources in the resource set.
[0153] The following description is based on an example in which the total amount of resources in the resource set is 1 million, the unallocated resources are 200,000 (and the allocated resources (without limiting the attributes of the resources) are 800,000).
[0154] Example #2a-1:
[0155] The first distribution unit requests to be allocated 30W of first resources (basic resources). Since the unallocated resources in the resource set are less than the first resources, the radio frequency unit does not support the request of the first distribution unit, or in other words, the radio frequency unit does not allocate 30W of basic resources to the first distribution unit.
[0156] Example #2a-2:
[0157] The first distribution unit requests to be configured with 10W of first resources (basic resources). Since the unallocated resources in the resource set are more than the first resources, the radio frequency unit supports or allows the request of the first distribution unit, or in other words, the radio frequency unit configures 10W of basic resources to the first distribution unit.
[0158] Example #2a-3:
[0159] The first distribution unit requests to configure 30W of first resources (additional resources). Since the unallocated resources in the resource set are less than the first resources, the radio frequency unit does not support the request of the first distribution unit, or in other words, the radio frequency unit does not configure 30W of additional resources to the first distribution unit.
[0160] Example #2a-4:
[0161] The first distribution unit requests to configure 10W of first resources (additional resources). Since the unallocated resources in the resource set are more than the first resources, the radio frequency unit supports the request of the first distribution unit, or in other words, the radio frequency unit configures 10W of additional resources to the first distribution unit.
[0162] In a possible implementation, when the attribute of the first resource is an additional resource, the radio frequency unit may further determine whether the first resource can be configured according to a threshold of a proportion of unallocated resources in the resource set.
[0163] For example, when the proportion of unallocated resources in a resource set is lower than a threshold (e.g., 5%), if a first distributed unit requests additional resources from a radio frequency unit, and the additional resources requested by the first distributed unit are less than the unallocated resources in the resource set, the radio frequency unit determines not to allocate the additional resources to the first distributed unit. In this way, resource allocation can be provided to other distributed units that want to apply for basic resources.
[0164] When the radio frequency unit determines whether to configure the first resource according to the unallocated resources in the resource set, this does not change the configuration of the allocated resources in the resource set owned by the radio frequency unit.
[0165] Scenario #2b:
[0166] The radio frequency unit determines the second information according to the attribute of the first resource, the first resource, unallocated resources in the resource set, and allocated additional resources in the resource set.
[0167] The following description uses an example where the total amount of resources in a resource set is 1 million, the unallocated resources are 200,000, the allocated basic resources are 600,000, and the allocated additional resources are 200,000.
[0168] In an embodiment of the present application, the allocated additional resources in the resource set can be reconfigured, or in other words, when the RF unit determines that a first resource whose attribute is a basic resource can be allocated to the first distribution unit, the RF unit can reclaim some or all of the allocated additional resources for use by the first distribution unit. For example, the RF unit has allocated 20W of additional resources to the second distribution unit. When the first distribution unit requests the RF unit to allocate 30W of basic resources, and the unallocated resources (e.g., 15W) in the resource set are less than the first resources, the RF unit can reclaim some of the resources from the allocated 20W of additional resources for use by the first distribution unit.
[0169] Example #2b-1:
[0170] The first distribution unit requests to configure 30W of basic resources. Since the unallocated resources in the resource set are smaller than the first resources, the radio frequency unit can reclaim some resources from the allocated additional resources for use by the first distribution unit.
[0171] In this way, the radio frequency unit can prioritize the configuration of basic resources.
[0172] Example #2b-2:
[0173] The first distribution unit requests to be configured with 20W of basic resources. Since the unallocated resources in the resource set are equal to the first resources, the radio frequency unit can allocate the unallocated resources to the first distribution unit.
[0174] Example #2b-3:
[0175] The first distribution unit requests to configure 30W of additional resources. Since the unallocated resources in the resource set are smaller than the first resources, the radio frequency unit may not configure the 30W of additional resources to the first distribution unit.
[0176] In one possible implementation, when the attribute of the first resource is an additional resource, the radio frequency unit may determine whether to configure the first resource according to a threshold of a proportion of the additional resources in the resource set.
[0177] For example, a first distributed unit requests 10W of additional resources. The percentage of additional resources in this resource set is subject to a threshold, such as 20%, and the total amount of additional resources that can be allocated in this resource set is 20W. Since the allocated additional resources in this resource set are 20W, reaching the upper limit, the radio frequency unit may not allocate 10W of additional resources to the first distributed unit. This allows resource allocation to be provided to other distributed units that wish to request basic resources.
[0178] In summary, the RF unit and the first distribution unit can exchange the first information and the second information. Based on the information exchanged between the two regarding resource configuration, the RF unit can flexibly configure the resources owned by the RF unit, thereby enabling more adequate configuration of the resources owned by the RF unit. For example, when there are remaining resources in the resource set owned by the RF unit, the first distribution unit requests the RF unit to configure some or all of the remaining resources. The RF unit determines whether the remaining resources can be configured based on the request of the first distribution unit. In this way, the utilization rate of the resources owned by the RF unit can be effectively improved.
[0179] Compared to configuring the resources owned by the RF unit in a static configuration manner (for example, the RF unit pre-configures resources for the distribution unit, regardless of whether there are remaining resources in the resources owned by the RF unit, and regardless of whether the distribution unit has an actual need to utilize the resources), the embodiment of the present application can support the effective configuration of the resources owned by the RF unit through a solution in which the distribution unit requests the RF unit to configure resources.
[0180] For example, it can prevent the radio frequency unit from being unable to utilize the remaining resources in the resource set; for another example, when the distribution unit does not have the actual need to utilize the pre-configured resources, this will cause the resources to be in an invalid utilization state. When the distribution unit can request the radio frequency unit to configure resources according to its own needs, this can effectively improve resource utilization.
[0181] In summary, the embodiments of the present application can support effective configuration of resources owned by the radio frequency unit, thereby supporting improved utilization of the resources owned by the radio frequency unit.
[0182] The method shown in FIG2 is further described below in conjunction with FIG3 to FIG5. The contents shown in FIG3 to FIG5 can be understood as examples of how the radio frequency unit in FIG2 determines the second information.
[0183] It should be noted that the contents shown in Figures 3 to 5 are described using the example of the first information indicating the attributes of the first resource. When the first information is not used to indicate the attributes of the first resource, the radio frequency unit can also refer to the contents shown in Figures 3 to 5 to determine how to configure the second information, and this is not limited to this.
[0184] FIG3 is a schematic diagram of an interaction flow of another communication method according to an embodiment of the present application. As shown in FIG3 , the method includes:
[0185] S301. The second distribution unit sends information #31 to the radio frequency unit.
[0186] Correspondingly, the radio frequency unit receives information #31. Information #31 is used by the second distribution unit to request resource #31 from the radio frequency unit. The attribute of resource #31 is basic resource.
[0187] S302. The radio frequency unit sends a response message #31 to the second distributed unit.
[0188] Correspondingly, the second distribution unit receives the response information #31. The response information #31 is used for the response information #31.
[0189] For ease of description, the following description takes the case where the response information #31 is used to indicate that the radio frequency unit agrees to configure resource #31 as an example, but the application scenario where the response information #31 is used to indicate that the radio frequency unit does not agree to configure resource #31 is not limited.
[0190] For ease of description, the following description is made by taking the total amount of resources in the resource set as 1 million (unassigned) as an example.
[0191] The second distribution unit requests the radio frequency unit to allocate resource #31. The value of resource #31 is 40W, which is less than 100W. Therefore, the radio frequency unit agrees to allocate resource #31 to the second distribution unit. Accordingly, the total amount of unallocated resources in the resource set is 60W.
[0192] S303: The first distribution unit sends information #32 (which may be the aforementioned first information) to the radio frequency unit.
[0193] Correspondingly, the radio frequency unit receives information #32. Information #32 is used by the first distribution unit to request resource #32 from the radio frequency unit, and the attribute of resource #32 is a basic resource.
[0194] S304. The radio frequency unit sends a response message #32 (which may be the aforementioned second message) to the first distributed unit.
[0195] Accordingly, the first distribution unit receives the response information #32. The response information #32 is used for the response information #32.
[0196] When the second distribution unit successfully applies for resource #31 from the radio frequency unit, the total amount of unallocated resources in the resource set will be reduced. When the radio frequency unit receives information #32 from the first distribution unit, the radio frequency unit can determine whether to agree or support the configuration of resource #32 based on resource #32 and the unallocated resources in the resource set.
[0197] For example, the value of resource #32 is 30W, which is less than 60W. Therefore, the radio frequency unit may agree to allocate resource #32 to the first distribution unit. Accordingly, the total amount of unallocated resources in the resource set is 30W.
[0198] In summary, the RF unit can flexibly configure the resources owned by the RF unit based on the information interaction between the two regarding resource configuration, and thus can more fully configure the resources owned by the RF unit. For example, when there are remaining resources in the resource set owned by the RF unit, the RF unit can determine whether to configure the remaining resources based on the request of the first distribution unit. In this way, this can effectively improve the utilization rate of the resources owned by the RF unit. In the scheme shown in Figure 3, after the second RF unit successfully applies for resources from the RF unit (taking basic resources as an example), the RF unit can determine whether to support the configuration of resources for the first distribution unit based on the unallocated resources in the resource set. For details, please refer to the description of scenario #1.
[0199] In addition, Figure 3 describes the example of the first distribution unit requesting the radio frequency unit to configure basic resources. When the first unit requests the radio frequency unit to configure additional resources, the radio frequency unit can determine whether to configure additional resources for the first distribution unit based on the content shown in Figure 3.
[0200] FIG4 is a schematic diagram of an interaction flow of another communication method according to an embodiment of the present application. As shown in FIG4 , the method includes:
[0201] S401. The second distribution unit sends information #41 to the radio frequency unit.
[0202] Correspondingly, the radio frequency unit receives information #41. Information #41 is used to request resource #41, and the attribute of resource #41 is a basic resource.
[0203] For a detailed description, please refer to the description of S301 and will not be repeated here.
[0204] S402. The radio frequency unit sends a response message #41 to the second distributed unit.
[0205] Correspondingly, the second distribution unit receives the response information #41. The response information #41 is used for the response information #41.
[0206] For ease of description, the following description takes the case where the response information #41 is used to indicate that the radio frequency unit agrees to configure resource #41 as an example, but the application scenario where the response information #41 is used to indicate that the radio frequency unit does not agree to configure resource #41 is not limited.
[0207] For ease of description, the following description is made by taking the total amount of resources in the resource set as 1 million (unassigned) as an example.
[0208] The second distribution unit requests the radio frequency unit to allocate resource #41. The value of resource #41 is 40W, which is less than 100W. Therefore, the radio frequency unit agrees to allocate resource #41 to the second distribution unit. Accordingly, the total amount of unallocated resources in the resource set is 60W.
[0209] S403. The first distribution unit sends information #42 to the radio frequency unit.
[0210] Correspondingly, the radio frequency unit receives information #42. Information #42 is used to request resource #42, and the attribute of resource #42 is a basic resource.
[0211] S404. The radio frequency unit sends a response message #42 to the first distributed unit.
[0212] Accordingly, the first distribution unit receives the response information #42. The response information #42 is used for the response information #42.
[0213] For example, the first distribution unit requests the radio frequency unit to allocate resource #42. The value of resource #42 is 30W, which is less than 60W. Therefore, the radio frequency unit can agree to allocate resource #42 to the first distribution unit. Accordingly, the total amount of unallocated resources in the resource set is 30W.
[0214] S405. The first distribution unit sends information #43 (which may be the aforementioned first information) to the radio frequency unit.
[0215] Correspondingly, the radio frequency unit receives information #43, wherein information #43 is used to request resource #43, and the attribute of resource #43 is additional resource.
[0216] S406. The radio frequency unit sends a response message #43 (which may be the aforementioned second message) to the first distributed unit.
[0217] Accordingly, the first distribution unit receives the response information #43. The response information #43 is used for the response information #43.
[0218] For example, the first distribution unit requests the radio frequency unit to allocate resource #43. The value of resource #43 is 10W, which is less than 30W. Therefore, the radio frequency unit can agree to allocate resource #43 to the first distribution unit. Accordingly, the total amount of unallocated resources in the resource set is 20W.
[0219] After the second distribution unit and the first distribution unit successfully request resource #41 and resource #42 from the radio frequency unit, respectively, the total amount of unallocated resources in the resource set decreases. After the radio frequency unit receives information #43 from the first distribution unit, the radio frequency unit can determine whether to agree or support the configuration or allocation of resource #43 based on resource #43 and the unallocated resources in the resource set.
[0220] For a detailed description of how the radio frequency unit determines the second information, please refer to the description of S202 and will not be repeated here.
[0221] In summary, the RF unit can flexibly configure its resources based on the information exchange between the two regarding resource configuration, thereby enabling more comprehensive resource configuration. For example, when there are remaining resources in the resource set owned by the RF unit, the first distribution unit requests the RF unit to configure some or all of the remaining resources. The RF unit then determines whether the remaining resources can be configured based on the request from the first distribution unit. This effectively improves the utilization rate of the RF unit's resources.
[0222] In the scheme shown in Figure 4, after the first RF unit successfully applies for basic resources from the RF unit, when the first RF unit continues to apply to the RF unit for configuration of additional resources, the RF unit can determine whether to support configuration of resources for the first distributed unit based on the unallocated resources in the resource set. For details, please refer to the description of scenario #1.
[0223] Figures 3 and 4 illustrate an example in which a radio unit determines whether to allocate a first resource (e.g., resource #32 in Figure 3 and resource #43 in Figure 4 ) for a first distributed unit based on unallocated resources in a resource set. The following description, combined with Figure 5 , illustrates a scenario in which a radio unit determines whether to allocate a first resource for a first distributed unit based on allocated additional resources and unallocated resources in a resource set. For ease of description, the following description uses the example of a first distributed unit requesting allocation of basic resources.
[0224] FIG5 is a schematic diagram of an interaction flow of another communication method according to an embodiment of the present application. As shown in FIG5 , the method includes:
[0225] S501. The second distribution unit sends information #51 to the radio frequency unit.
[0226] Correspondingly, the radio frequency unit receives information #51. Information #51 is used to request resource #51, and the attribute of resource #51 is a basic resource.
[0227] S502. The radio frequency unit sends a response message #51 to the second distributed unit.
[0228] Correspondingly, the second distribution unit receives the response information #51. The response information #51 is used for the response information #51.
[0229] For ease of description, the following description takes the case where the response information #51 is used to indicate that the radio frequency unit agrees to configure resource #51 as an example, but the application scenario where the response information #51 is used to indicate that the radio frequency unit does not agree to configure resource #51 is not limited.
[0230] For ease of description, the following description is made by taking the total amount of resources in the resource set as 1 million (unassigned) as an example.
[0231] The second distribution unit requests the radio frequency unit to allocate resource #51. The value of resource #51 is 40W, which is less than 100W. Therefore, the radio frequency unit agrees to allocate resource #51 to the second distribution unit. Accordingly, the total amount of unallocated resources in the resource set is 60W.
[0232] S503. The second distribution unit sends information #52 to the radio frequency unit.
[0233] Correspondingly, the radio frequency unit receives information #52, wherein information #52 is used by the second distribution unit to request resource #52 from the radio frequency unit, and the attribute of resource #52 is additional resource.
[0234] S504. The radio frequency unit sends a response message #52 to the second distributed unit.
[0235] Correspondingly, the second distribution unit receives the response information #52. The response information #52 is used for the response information #52.
[0236] The second distribution unit requests the radio frequency unit to allocate resource #52. The value of resource #52 is 35W, which is less than 60W. Therefore, the radio frequency unit agrees to allocate resource #52 to the second distribution unit. Accordingly, the total amount of unallocated resources in the resource set is 25W.
[0237] S505. The first distribution unit sends information #53 (which may be the aforementioned first information) to the radio frequency unit.
[0238] Correspondingly, the radio frequency unit receives information #53, wherein information #53 is used to request resource #53, and the attribute of resource #53 is a basic resource.
[0239] S506: The radio frequency unit sends response information #53 to the first distributed unit. Response information #53 is used to respond to information #53.
[0240] Correspondingly, the first distribution unit receives response information #53.
[0241] The first distribution unit requests resource #53 from the radio unit. The value of resource #53 is 45W, which is greater than 25W but less than 35W + 25W. Therefore, the radio unit can reclaim 20W of the 35W allocated to the second distribution unit and, combined with the unallocated 25W, allocate resource #53 to the second distribution unit. Consequently, the total amount of unallocated resources in the resource set is 0W.
[0242] After the second distribution unit successfully requests resource #51 and resource #52 from the RF, the total amount of unallocated resources in the resource set decreases. After the RF receives information #53 from the first distribution unit, it can determine whether to support the configuration of resource #53 based on resource #53, unallocated resources, and allocated additional resources. For a detailed description, see the description of scenario #2b in S202. In summary, the RF can flexibly configure its resources based on the information exchange between the two regarding resource configuration, thereby enabling more comprehensive resource configuration.
[0243] Optionally, the method may further include:
[0244] S507: The radio frequency unit sends information #54 (which can be understood as third information) to the second distribution unit. The information #54 indicates that the allocated additional resources corresponding to the second distribution unit in the resource set have changed.
[0245] Accordingly, the second distribution unit receives information #54.
[0246] After the radio frequency unit reclaims some of the additional resources allocated to the second distributed unit, it can send information #54 to the second distributed unit indicating a change in the allocated additional resources in the resource set. Based on this information, the second distributed unit can determine that the originally allocated 35W of additional resources has been changed to 15W of resources. Accordingly, the second distributed unit can adjust its own utilization of the additional resources.
[0247] In this way, the second distribution unit can determine that the amount of additional resources that have been successfully applied for has changed based on the third information, and can timely adjust the utilization method of the additional resources. For example, the second distribution unit can provide users with appropriate services based on the adjusted additional resources.
[0248] In the solutions shown in Figures 2 to 5, the RF may further transmit fourth information to the first distribution unit and / or the second distribution unit. The fourth information may indicate resource allocation status within the resource set. The first distribution unit and / or the second distribution unit may determine whether to continue requesting resource allocation from the RF based on the resource allocation status within the resource set indicated by the fourth information, thereby further improving resource utilization of the RF.
[0249] In addition, the embodiments of the present application do not limit the timing when the radio frequency unit sends the fourth information to the first distribution unit and / or the second distribution unit. For example, the radio frequency unit may send the fourth information to the first distribution unit and / or the second distribution unit before the first distribution unit and / or the second distribution unit sends information for requesting resources, or the radio frequency unit may send the fourth information to the first distribution unit and / or the second distribution unit after the first distribution unit and / or the second distribution unit successfully applies for resources, and so on.
[0250] In the embodiment of the present application, by establishing an interactive process for resource configuration between the RF unit and the distribution unit, the RF unit can flexibly and efficiently configure its resources, thereby supporting improved utilization of the resources owned by the RF unit.
[0251] In the above description, the first resource may be a resource at the distribution unit granularity. For example, if a distribution unit needs to maintain multiple carriers, the distribution unit may apply for a total resource from the radio frequency unit. Once the application is successful, the distribution unit may allocate the resource internally.
[0252] In the above description, the first resource may also be a resource at a carrier granularity. For example, if the first distribution unit needs to maintain multiple carriers, the first distribution unit can request resources for each carrier from the radio frequency unit at a carrier granularity. Once the first distribution unit successfully requests resources, it no longer needs to allocate resources for each carrier, effectively reducing its resource allocation overhead.
[0253] It should be noted that the information terms in the methods shown in FIG. 2 to FIG. 5 are merely examples and can be replaced with other term names without limitation.
[0254] In one possible implementation, the first information may be carried in a Network Configuration Protocol (NETCONF) edit-config remote procedure call (RPC) message, or the first information may be a NETCONF edit-config RPC, without limitation. NETCONF provides a set of protocols for communication between network management and network devices. Network management uses the NETCONF protocol to distribute, modify, and delete configurations of remote devices. RPC is used to implement communication between clients and servers.
[0255] In another possible implementation, the fourth information may be carried in a NETCONF supervision-notification PRC, or the fourth information may be a NETCONF supervision-notification PRC, which is not limited.
[0256] It should be noted that the methods shown in Figures 2 to 5 are described using the interactive process of resource configuration between the radio frequency unit and the first distributed unit as an example. The names of the terms appearing in the above content are all used as examples and are not intended to be final limitations.
[0257] Finally, the device embodiment of the embodiment of the present application is introduced.
[0258] To implement the various functions of the method provided herein, the first device and the second device may each include hardware structures and / or software modules, and implement the aforementioned functions in the form of hardware structures, software modules, or a combination of hardware structures and software modules. Whether a particular one of the aforementioned functions is implemented in the form of hardware structures, software modules, or a combination of hardware structures and software modules depends on the specific application and design constraints of the technical solution.
[0259] Figure 6 is a schematic block diagram of a communication device according to an embodiment of the present application. The communication device includes a processor 610 and a communication interface 620, which may be interconnected via a bus 630. The communication device may be a radio frequency unit or a first distribution unit.
[0260] Optionally, the communication device may further include a memory 640. The memory 640 includes, but is not limited to, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM), or portable read-only memory (CD-ROM), and is used for related instructions and data.
[0261] The processor 610 may be one or more central processing units (CPUs). In the case where the processor 610 is a CPU, the CPU may be a single-core CPU or a multi-core CPU.
[0262] When the communication device is a first distribution unit, illustratively, the processor 610 is configured to perform the following operations: sending first information; receiving second information, etc.
[0263] When the communication device is a radio frequency unit, illustratively, the processor 610 is configured to perform the following operations: receive first information; send second information, and so on.
[0264] The above contents are described as examples only. The communication device is a radio frequency unit or a first distributed unit, which is responsible for executing the methods or steps related to the radio frequency unit or the first distributed unit in the above method embodiments.
[0265] The above description is merely exemplary. For details, please refer to the contents of the above method embodiments. The implementation of each operation in FIG6 may also correspond to the corresponding description of the method embodiments shown in FIG2 to FIG5.
[0266] Figure 7 is a schematic block diagram of another communication device according to an embodiment of the present application. The communication device may be a first distribution unit or a radio frequency unit, or a chip or module in the first distribution unit or radio frequency unit, for implementing the method according to the above embodiment.
[0267] The communication device includes an interface unit 710. The interface unit 710 may include a transmitting unit and a receiving unit. The transmitting unit is configured to execute a transmitting operation of the communication device, and the receiving unit is configured to execute a receiving operation of the communication device. For ease of description, the present embodiment combines the transmitting unit and the receiving unit into a single interface unit. This is described here as a unified description and will not be repeated later.
[0268] When the communication device is a first distribution unit, illustratively, the interface unit 710 is used to send first information and receive second information, etc.
[0269] Optionally, the communication device may further include a processing unit 720, which is configured to execute the content of the first distribution unit involving processing, coordination, etc. For example, the processing unit 720 is configured to use the first resource, etc.
[0270] When the communication device is a radio frequency unit, illustratively, the interface unit 710 is configured to receive first information and send second information, etc.
[0271] Optionally, the communication device may further include a processing unit 720, which is configured to execute the contents of the steps involving processing, coordination, etc. of the radio frequency unit. For example, the processing unit 720 is configured to determine whether to configure the first resource, etc.
[0272] The above contents are described as examples only. The communication device is a first distribution unit or a radio frequency unit, which is responsible for executing the methods or steps related to the first distribution unit or the radio frequency unit in the above method embodiments.
[0273] Optionally, the communication device further includes a storage unit 730, which is used to store a program or code for executing the aforementioned method.
[0274] The device embodiments shown in Figures 6 and 7 are used to implement the contents described in Figures 2 to 5. The specific execution steps and methods of the devices shown in Figures 6 and 7 can refer to the contents described in the above method embodiments.
[0275] The above description of the communication device is only used as an example. The communication device can be used to execute the method described in the above embodiment. For specific content, please refer to the description of the above method embodiment, which will not be repeated here.
[0276] The present application also provides a chip, including a processor, for calling and executing instructions stored in a memory from the memory, so that a communication device equipped with the chip executes the methods in the above examples.
[0277] The present application also provides another chip, comprising: an input interface, an output interface, and a processor, wherein the input interface, the output interface, and the processor are connected via an internal connection path, and the processor is configured to execute code in a memory. When the code is executed, the processor is configured to execute the methods in the above examples. Optionally, the chip also includes a memory, which is configured to store computer programs or code.
[0278] The present application also provides a processor for coupling with a memory, and for executing the methods and functions involving a network device or a terminal device in any of the above embodiments.
[0279] In another embodiment of the present application, a computer program product including instructions is provided. When the computer program product is run on a computer, the method of the above embodiment is implemented.
[0280] The present application also provides a computer program. When the computer program is executed in a computer, the method of the aforementioned embodiment is implemented.
[0281] In another embodiment of the present application, a computer-readable storage medium is provided, which stores a computer program. When the computer program is executed by a computer, the method described in the above embodiment is implemented.
[0282] Those skilled in the art will appreciate that the units and algorithm steps of each example described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are performed in hardware or software 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 beyond the scope of this application.
[0283] Those skilled in the art will clearly understand that, for the convenience and brevity of description, the specific working processes of the systems, devices and units described above can refer to the corresponding processes in the aforementioned method embodiments and will not be repeated here.
[0284] In the several embodiments provided in this application, the disclosed systems, devices, and methods can be implemented in other ways. For example, the device embodiments described above are merely schematic. For example, the division of units is merely a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.
[0285] Units described as separate components may or may not be physically separate, and components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple network units. Some or all of these units may be selected to achieve the purpose of this embodiment according to actual needs.
[0286] In addition, each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit.
[0287] If the function is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the embodiment of the present application, or the part that contributes to the prior art, or the 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 and includes several instructions for enabling a computer device (which can be a personal computer, server, or network device, etc.) to execute all or part of the steps of the various embodiments of the present application. The aforementioned storage medium includes various media that can store program codes, such as a USB flash drive, a mobile hard disk, a ROM, a RAM, a magnetic disk, or an optical disk.
[0288] The above is only a specific implementation of the embodiment of the present application, but the scope of protection of the embodiment of the present application is not limited to this. Any person skilled in the art can easily think of changes or substitutions within the technical scope disclosed in the embodiment of the present application, and they should be included in the scope of protection of the embodiment of the present application. Therefore, the scope of protection of the embodiment of the present application should be based on the scope of protection of the claims.
Claims
1. A communication method, characterized in that, The method is applied to a radio frequency unit and includes: Receiving first information from a first distribution unit, where the first information requests a first resource; In response to the first information, sending second information to the first distribution unit, where the second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, and the resource set can be used by the radio frequency unit to serve at least two distribution units, and the at least two distribution units include the first distribution unit.
2. The method according to claim 1, wherein The first information indicates that the attribute of the first resource is a basic resource or an additional resource. The basic resource is a resource used to provide services within the cell coverage, and the additional resource is a resource used to enhance the user service experience.
3. The method according to claim 2, wherein The second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, and includes: The second information is determined based on the attribute of the first resource, the first resource, and the resource allocation situation in the resource set.
4. The method according to claim 3, characterized in that, The second information is determined based on the attribute of the first resource, the first resource, and the resource allocation situation in the resource set, and includes: The second information is determined based on the attribute of the first resource, the first resource, and the unallocated resources in the resource set.
5. The method according to claim 3, wherein The second information is determined based on the attribute of the first resource, the first resource, and the resource allocation situation in the resource set, and includes: The second information is determined based on the attribute of the first resource, the first resource, the unallocated resources in the resource set, and the allocated additional resources in the resource set.
6. The method according to claim 5, wherein: The first information indicates that the attribute of the first resource is a basic resource, the first resource is greater than the unallocated resources in the resource set, and the sum of the unallocated resources in the resource set and the allocated additional resources in the resource set is greater than or equal to the first resource. The second information is used to configure the first resource; The allocated additional resources in the resource set are used to serve a second distribution unit, and the at least two distribution units further include the second distribution unit.
7. The method according to claim 6, wherein The method further includes: Sending third information to the second distribution unit, where the third information indicates that the allocated additional resources corresponding to the second distribution unit in the resource set have changed.
8. The method according to any one of claims 1 to 7, characterized in that, The method further includes: Sending fourth information, where the fourth information indicates the resource allocation situation in the resource set.
9. The method according to any one of claims 1 to 8, characterized in that The first resource includes at least one of the following: Power resource, transmission resource, or bandwidth resource.
10. The method according to any one of claims 1 to 9, characterized in that, The first resource is a resource with carrier granularity.
11. A communication method, characterized in that, The method is applied to a first distribution unit and includes: Sending first information to a radio frequency unit, where the first information requests a first resource; Receive second information from the radio frequency unit, where the second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, the resource set can be used by the radio frequency unit to serve at least two distributed units, the at least two distributed units include the first distributed unit, and the second information is a response to the first information.
12. The method according to claim 11, wherein The first information further indicates that the attribute of the first resource is a basic resource or an additional resource, the basic resource is a resource used to provide services within the cell coverage, and the additional resource is a resource used to enhance the user service experience.
13. The method according to claim 12, characterized in that The second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, and includes: The second information is determined based on the attribute of the first resource, the first resource, and the resource allocation situation in the resource set.
14. The method according to claim 13, wherein The second information is determined based on the attribute of the first resource, the first resource, and the resource allocation situation in the resource set, and includes: The second information is determined based on the attribute of the first resource, the first resource, and the unallocated resources in the resource set.
15. The method according to claim 13, wherein The second information is determined based on the attribute of the first resource, the first resource, and the resource set, and includes: The second information is determined based on the attribute of the first resource, the first resource, the unallocated resources in the resource set, and the allocated additional resources in the resource set.
16. The method according to claim 15, wherein: The first information indicates that the attribute of the first resource is a basic resource, the first resource is greater than the unallocated resources in the resource set, the sum of the unallocated resources in the resource set and the allocated additional resources in the resource set is greater than or equal to the first resource, and the second information is used to configure the first resource; The allocated additional resources in the resource set are used to serve a second distributed unit, and the at least two distributed units further include the second distributed unit.
17. The method according to any one of claims 11 to 16, characterized in that, The method further includes: Receive fourth information from the radio frequency unit, where the fourth information indicates the resource allocation situation in the resource set.
18. The method according to any one of claims 11 to 17, characterized in that, The first resource includes at least one of the following: Power resource, transmission resource, or bandwidth resource.
19. The method according to any one of claims 11 to 18, characterized in that The first resource is a resource with carrier granularity.
20. A communication method, characterized in that, Includes: The first distributed unit sends first information to the radio frequency unit, and the first information requests the first resource; The radio frequency unit sends second information to the first distributed unit, where the second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, the resource set can be used by the radio frequency unit to serve at least two distributed units, and the at least two distributed units include the first distributed unit.
21. A communication system, characterized in that, Includes: The first distributed unit and the radio frequency unit, The radio frequency unit is used to execute the method according to any one of claims 1 to 10, The first distributed unit is used to execute the method according to any one of 11 to 19.
22. A communication device, characterized in that, comprising a unit for performing the method according to any one of claims 1 to 10, or comprising a unit for performing the method according to any one of claims 11 to 19.
23. A computer-readable storage medium, characterized in that, A computer program or instruction is stored on the computer-readable storage medium, and when the computer program or the instruction runs on a computer, causing the method according to any one of claims 1 to 10 to be performed; or, causing the method according to any one of claims 11 to 19 to be performed.
24. A computer program product, characterized in that, comprising instructions which, when run on a computer, cause the method according to any one of claims 1 to 10 to be performed; or, cause the method according to any one of claims 11 to 19 to be performed.
25. A chip system, characterized in that, The chip system includes a processor, a memory, and an input / output port. The memory is used for storing a computer program; the processor is used for executing the computer program stored in the memory, so that the processor executes the method according to any one of claims 1 to 10; or, so that the processor executes the method according to any one of claims 11 to 19.
26. A communication device, characterized in that, comprising: an interface unit for: receiving first information from a first distribution unit, the first information requesting a first resource; in response to the first information, sending second information to the first distribution unit, the second information being determined according to the resource allocation situation in the resource set owned by the communication device and the first resource, and the resource set can be used by the communication device to serve at least two distribution units, and the at least two distribution units include the first distribution unit.
27. The device according to claim 26, characterized in that, The first information indicates that the attribute of the first resource is a basic resource or an additional resource. The basic resource is a resource for providing services within the cell coverage area, and the additional resource is a resource for enhancing the user service experience.
28. The device according to claim 27, wherein, The second information is determined according to the resource allocation situation in the resource set owned by the communication device and the first resource, and includes: The second information is determined according to the attribute of the first resource, the first resource, and the resource allocation situation in the resource set.
29. The device according to claim 28, characterized in that, The second information is determined according to the attribute of the first resource, the first resource, and the resource allocation situation in the resource set, and includes: The second information is determined according to the attribute of the first resource, the first resource, and the unallocated resources in the resource set.
30. The device according to claim 28, characterized in that, The second information is determined according to the attribute of the first resource, the first resource, and the resource allocation situation in the resource set, and includes: The second information is determined according to the attribute of the first resource, the first resource, the unallocated resources in the resource set, and the allocated additional resources in the resource set.
31. The device according to claim 30, characterized in that, The first information indicates that the attribute of the first resource is a basic resource, the first resource is greater than the unallocated resources in the resource set, the sum of the unallocated resources and the allocated additional resources in the resource set is greater than or equal to the first resource, and the second information is used to configure the first resource; the allocated additional resources in the resource set are used to serve the second distribution unit, and the at least two distribution units further include the second distribution unit.
32. The device according to claim 31, characterized in that, The interface unit is further configured to send third information to the second distribution unit, where the third information indicates that the allocated additional resources corresponding to the second distribution unit in the resource set have changed.
33. The device according to any one of claims 26 to 32, characterized in that, The interface unit is further configured to send fourth information, where the fourth information indicates the resource allocation situation in the resource set.
34. The device according to any one of claims 26 to 33, characterized in that The first resource includes at least one of the following: Power resource, transmission resource, or bandwidth resource.
35. The device according to any one of claims 26 to 34, characterized in that The first resource is a resource at the carrier granularity.
36. A communication device, characterized in that, Including: An interface unit, configured to: Send first information to the radio frequency unit, where the first information requests a first resource; Receive second information from the radio frequency unit, where the second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, the resource set can be used by the radio frequency unit to serve at least two distribution units, the at least two distribution units include the communication device, and the second information is a response to the first information.
37. The device according to claim 36, characterized in that, The first information further indicates that the attribute of the first resource is a basic resource or an additional resource, the basic resource is a resource used to provide services within the cell coverage, and the additional resource is a resource used to enhance the user service experience.
38. The device according to claim 36, characterized in that, The second information is determined based on the resource allocation situation in the resource set owned by the radio frequency unit and the first resource, including: The second information is determined based on the attribute of the first resource, the first resource, and the resource allocation situation in the resource set.
39. The device according to claim 38, characterized in that, The second information is determined based on the attribute of the first resource, the first resource, and the resource allocation situation in the resource set, including: The second information is determined based on the attribute of the first resource, the first resource, and the unallocated resources in the resource set.
40. The device according to claim 38, characterized in that, The second information is determined based on the attribute of the first resource, the first resource, and the resource set, including: The second information is determined based on the attribute of the first resource, the first resource, the unallocated resources in the resource set, and the allocated additional resources in the resource set.
41. The device according to claim 40, wherein, The first information indicates that the attribute of the first resource is a basic resource, the first resource is greater than the unallocated resources in the resource set, the sum of the unallocated resources and the allocated additional resources in the resource set is greater than or equal to the first resource, and the second information is used to configure the first resource; the allocated additional resources in the resource set are used to serve the second distribution unit, and the at least two distribution units further include the second distribution unit.
42. The apparatus according to any one of claims 36 to 41, characterized in that, The interface unit is further configured to receive fourth information from the radio frequency unit, where the fourth information indicates the resource allocation situation in the resource set.
43. The device according to any one of claims 36 to 42, characterized in that, The first resource includes at least one of the following: Power resource, transmission resource, or bandwidth resource.
44. The device according to any one of claims 36 to 43, characterized in that, The first resource is a resource with a carrier granularity.
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