WO2023197263A1 - Procédés d'attribution de ressources, appareil, dispositif de communication et support de stockage - Google Patents

Procédés d'attribution de ressources, appareil, dispositif de communication et support de stockage Download PDF

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Publication number
WO2023197263A1
WO2023197263A1 PCT/CN2022/086896 CN2022086896W WO2023197263A1 WO 2023197263 A1 WO2023197263 A1 WO 2023197263A1 CN 2022086896 W CN2022086896 W CN 2022086896W WO 2023197263 A1 WO2023197263 A1 WO 2023197263A1
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Prior art keywords
resource allocation
allocation granularity
granularity
maximum transmission
transmission bandwidth
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PCT/CN2022/086896
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English (en)
Chinese (zh)
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牟勤
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北京小米移动软件有限公司
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Application filed by 北京小米移动软件有限公司 filed Critical 北京小米移动软件有限公司
Priority to PCT/CN2022/086896 priority Critical patent/WO2023197263A1/fr
Priority to CN202280001212.4A priority patent/CN117242866A/zh
Publication of WO2023197263A1 publication Critical patent/WO2023197263A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation

Definitions

  • the present disclosure relates to but is not limited to the field of wireless communication technology, and in particular, to a resource allocation method, device, communication equipment and storage medium.
  • NB-IoT narrow band Internet of things
  • MTC Machine Type Communication
  • a new type of user equipment (User Equipment, UE) is introduced for medium and high-speed applications; this new type of UE can be a reduced capability (Reduced capability, RedCap) UE.
  • RedCap Reduced capability
  • the applicable bandwidth of RedCap has been further reduced, that is, further enhanced. For example, the applicable bandwidth has been reduced from 20MHz to 5MHz.
  • the maximum resource that can be allocated by the UE can be the same size as the partial bandwidth (BWP, Bandwidth Part) allocated to the UE.
  • BWP Bandwidth Part
  • the resource allocation of the repented UE will bring great restrictions and waste of resources.
  • Embodiments of the present disclosure provide a resource allocation method, device, communication device, and storage medium.
  • a resource allocation method executed by a UE, including:
  • the resource allocation granularity is the minimum allocation unit for resource allocation for the UE; wherein the first information includes at least one of the following: bandwidth capability information of the UE and configuration indicating the resource allocation granularity. information.
  • a resource allocation method is provided, which is executed by a network device, including:
  • Send configuration information where the configuration information is used for the UE to determine the resource allocation granularity, where the resource allocation granularity is the minimum allocation unit for resource allocation for the UE.
  • a resource allocation device which is applied to a UE and includes:
  • the first processing module is configured to determine the resource allocation granularity based on the first information, where the resource allocation granularity is the minimum allocation unit for resource allocation for the UE; wherein the first information includes at least one of the following: bandwidth capability information of the UE and configuration information indicating resource allocation granularity.
  • a resource allocation apparatus wherein, applied to network equipment, it includes:
  • the second sending module is configured to send configuration information, where the configuration information is used for the UE to determine the resource allocation granularity, where the resource allocation granularity is the minimum allocation unit for resource allocation for the UE.
  • a communication device includes:
  • Memory used to store instructions executable by the processor
  • the processor is configured to implement the resource allocation method of any embodiment of the present disclosure when running executable instructions.
  • a computer storage medium stores a computer executable program.
  • the executable program is executed by a processor, the resource allocation method of any embodiment of the present disclosure is implemented.
  • the resource allocation granularity may be determined by the UE based on the first information, where the resource allocation granularity is the minimum allocation unit for resource allocation for the UE; wherein the first information includes at least one of the following: the bandwidth of the UE Capability information and configuration information indicating resource allocation granularity; in this way, a suitable resource allocation granularity can be configured for the UE and the resource allocation granularity can be flexibly allocated to the UE.
  • the UE determines the resource allocation granularity based on the UE's bandwidth capability information
  • the maximum transmission bandwidth of the UE included in the bandwidth capability information is smaller than the BWP allocated to the UE.
  • the resource allocation granularity determined by the UE is relative to the resource allocation granularity determined by the UE.
  • the resource allocation granularity determined by the allocated BWP can be smaller. On the one hand, this reduces the waste of resources caused by allocating a relatively large allocation granularity to the maximum transmission bandwidth of a relatively small UE; on the other hand, because a relatively small resource allocation granularity can be determined, it can also improve the efficiency of the UE.
  • the flexibility of resource allocation for data channels enables more RBG combinations for resource allocation to UEs.
  • the resource allocation granularity suitable for the UE can be directly determined based on instructions from the network device, etc., and the flexibility of the UE's resource allocation granularity can also be improved, thereby improving the UE's ability to use the resource allocation granularity. Flexibility in resource allocation for data channels.
  • Figure 1 is a schematic structural diagram of a wireless communication system according to an exemplary embodiment.
  • Figure 2 is a flow chart of a resource allocation method according to an exemplary embodiment.
  • Figure 3 is a flow chart of a resource allocation method according to an exemplary embodiment.
  • Figure 4 is a flow chart of a resource allocation method according to an exemplary embodiment.
  • Figure 5 is a flow chart of a resource allocation method according to an exemplary embodiment.
  • Figure 6 is a flow chart of a resource allocation method according to an exemplary embodiment.
  • Figure 7 is a flow chart of a resource allocation method according to an exemplary embodiment.
  • Figure 8 is a block diagram of a resource allocation device according to an exemplary embodiment.
  • Figure 9 is a block diagram of a resource allocation device according to an exemplary embodiment.
  • Figure 10 is a block diagram of a UE according to an exemplary embodiment.
  • Figure 11 is a block diagram of a base station according to an exemplary embodiment.
  • first, second, third, etc. may be used to describe various information in the embodiments of the present disclosure, the information should not be limited to these terms. These terms are only used to distinguish information of the same type from each other.
  • first information may also be called second information, and similarly, the second information may also be called first information.
  • word “if” as used herein may be interpreted as "when” or "when” or "in response to determining.”
  • FIG. 1 shows a schematic structural diagram of a wireless communication system provided by an embodiment of the present disclosure.
  • the wireless communication system is a communication system based on cellular mobile communication technology.
  • the wireless communication system may include several user equipments 110 and several base stations 120.
  • user equipment 110 may be a device that provides voice and/or data connectivity to a user.
  • the user equipment 110 may communicate with one or more core networks via a Radio Access Network (RAN).
  • RAN Radio Access Network
  • the user equipment 110 may be an Internet of Things user equipment, such as a sensor device, a mobile phone (or a "cellular" phone) ) and computers with IoT user equipment, which may be, for example, fixed, portable, pocket-sized, handheld, computer-built-in, or vehicle-mounted devices.
  • the user equipment 110 may also be equipment of an unmanned aerial vehicle.
  • the user equipment 110 may also be a vehicle-mounted device, for example, it may be an on-board computer with a wireless communication function, or a wireless user equipment connected to an external on-board computer.
  • the user equipment 110 may also be a roadside device, for example, it may be a street light, a signal light or other roadside device with a wireless communication function.
  • the base station 120 may be a network-side device in a wireless communication system.
  • the wireless communication system can be the 4th generation mobile communication technology (the 4th generation mobile communication, 4G) system, also known as the Long Term Evolution (LTE) system; or the wireless communication system can also be a 5G system, Also called new air interface system or 5G NR system.
  • the wireless communication system may also be a next-generation system of the 5G system.
  • the access network in the 5G system can be called the New Generation-Radio Access Network (NG-RAN).
  • NG-RAN New Generation-Radio Access Network
  • the base station 120 may be an evolved base station (eNB) used in the 4G system.
  • the base station 120 may also be a base station (gNB) that adopts a centralized distributed architecture in the 5G system.
  • eNB evolved base station
  • gNB base station
  • the base station 120 adopts a centralized distributed architecture it usually includes a centralized unit (central unit, CU) and at least two distributed units (distributed units, DU).
  • the centralized unit is equipped with a protocol stack including the Packet Data Convergence Protocol (PDCP) layer, the Radio Link Control protocol (Radio Link Control, RLC) layer, and the Media Access Control (Medium Access Control, MAC) layer;
  • PDCP Packet Data Convergence Protocol
  • RLC Radio Link Control
  • MAC Media Access Control
  • the distribution unit is provided with a physical (Physical, PHY) layer protocol stack, and the embodiment of the present disclosure does not limit the specific implementation of the base station 120.
  • a wireless connection may be established between the base station 120 and the user equipment 110 through a wireless air interface.
  • the wireless air interface is a wireless air interface based on the fourth generation mobile communication network technology (4G) standard; or the wireless air interface is a wireless air interface based on the fifth generation mobile communication network technology (5G) standard, such as
  • the wireless air interface is a new air interface; alternatively, the wireless air interface may also be a wireless air interface based on the next generation mobile communication network technology standard of 5G.
  • an E2E (End to End, end-to-end) connection can also be established between user equipments 110 .
  • vehicle-to-vehicle (V2V) communication vehicle-to-roadside equipment (vehicle to Infrastructure, V2I) communication and vehicle-to-person (vehicle to pedestrian, V2P) communication in vehicle networking communication (vehicle to everything, V2X) Wait for the scene.
  • V2V vehicle-to-vehicle
  • V2I vehicle-to-roadside equipment
  • V2P vehicle-to-person communication in vehicle networking communication
  • V2X vehicle networking communication
  • the above user equipment can be considered as the terminal equipment of the following embodiments.
  • the above-mentioned wireless communication system may also include a network management device 130.
  • the network management device 130 may be a core network device in a wireless communication system.
  • the network management device 130 may be a mobility management entity (Mobility Management Entity) in an evolved packet core network (Evolved Packet Core, EPC). MME).
  • the network management device can also be other core network devices, such as serving gateway (Serving GateWay, SGW), public data network gateway (Public Data Network GateWay, PGW), policy and charging rules functional unit (Policy and Charging Rules) Function, PCRF) or Home Subscriber Server (HSS), etc.
  • serving gateway Serving GateWay, SGW
  • public data network gateway Public Data Network GateWay, PGW
  • Policy and Charging Rules Policy and Charging Rules
  • PCRF Policy and Charging Rules
  • HSS Home Subscriber Server
  • the embodiments of the present disclosure enumerate multiple implementations to clearly describe the technical solutions of the embodiments of the present disclosure.
  • the multiple embodiments provided in the embodiments of the present disclosure can be executed alone or in combination with the methods of other embodiments in the embodiments of the present disclosure. They can also be executed alone or in combination. It is then executed together with some methods in other related technologies; the embodiments of the present disclosure do not limit this.
  • two resource allocation methods are supported in the new air interface: type 0 resource allocation method and type 1 resource allocation method.
  • Type0 resource allocation method It is a non-continuous allocation method of frequency domain resources, which is relatively flexible: a bitmap is used to indicate the frequency domain resources allocated to the UE, 1 means allocated, 0 means not allocated. Each bit represents a resource block group (RBG, Resource Block Group), and the size of the RBG is related to two factors. Please refer to Table 1. One is the size of the current BWP, and the other is whether the parameter rbg-Size is Configuration 1 (Configuration 1) or Configuration 2 (Configuration 2). The index of RBG is counted from the low frequency (low frequency) of BWP to the high frequency (high frequency) in the frequency domain.
  • RBG Resource Block Group
  • Type1 resource allocation method It is a method of continuous allocation of frequency domain resources.
  • the resource indication value (RIV, Resource Indication Value) is used to inform the UE of the starting position of the allocated RB RB_start and how many consecutive RBs are allocated, that is, L_RB .
  • the RIV is obtained by jointly encoding S and L to indicate resource allocation.
  • each element in the above-mentioned Table 1 and each table (such as Table 2 to Table 7) in subsequent embodiments exists independently. These elements are exemplarily listed in the same table, but they are not Represents that all elements in the table must exist simultaneously as shown in the table. The value of each element in each table does not depend on the value of any other element in each table. Therefore, those skilled in the art can understand that the value of each element in each table is an independent embodiment.
  • an embodiment of the present disclosure provides a resource allocation method, which is executed by a UE, including:
  • Step S21 Determine the resource allocation granularity based on the first information, where the resource allocation granularity is the minimum allocation unit for resource allocation for the UE; wherein the first information includes at least one of the following: the bandwidth capability information of the UE and the indicated resource allocation granularity. Related configuration information.
  • the first information includes predetermined information.
  • the predetermined information includes: bandwidth capability information and/or configuration information of the UE.
  • the UE may be various mobile terminals or fixed terminals.
  • the UE may be, but is not limited to, a mobile phone, a computer, a server, a wearable device, a game control platform or a multimedia device, etc.
  • the UE can be a RedCap UE or a 5G NR-lite UE, etc.
  • the resource allocation granularity may be: a minimum allocation unit for resource allocation supported by the UE for a data channel or a transmission channel.
  • the resource allocation granularity may include a predetermined number of resource blocks (RB).
  • the predetermined number is an integer greater than 0.
  • the predetermined number of RBs may be a Resource Block Group (RBG).
  • RBG Resource Block Group
  • the bandwidth capability information at least includes the maximum transmission bandwidth supported by the UE.
  • the bandwidth capability information at least includes the maximum transmission bandwidth supported by the UE for data channel transmission.
  • the maximum transmission bandwidth of the UE is smaller than the partial bandwidth (BWP) allocated to the UE. Since the maximum transmission bandwidth of the UE is smaller than the BWP allocated to the UE, the resource allocation granularity in this embodiment of the present disclosure is smaller than the traditional resource allocation granularity determined based on the BWP allocated to the UE. For example, for the traditional BWP allocated to the UE (if the BWP includes 73 to 144), the determined resource allocation granularity is a resource allocation granularity including 8 RBs; if the maximum transmission bandwidth of the UE includes 37 to 72 RBs, Then the resource allocation granularity determined according to the maximum transmission bandwidth of the UE may be a resource allocation granularity including 4 RBs.
  • step S21 includes one of the following:
  • the resource allocation granularity is determined based on the bandwidth capability information of the UE and the configuration information indicating the resource allocation granularity.
  • Embodiments of the present disclosure provide a resource allocation method, executed by UE, including at least one of the following:
  • the resource allocation granularity is determined based on the bandwidth capability information of the UE and the configuration information indicating the resource allocation granularity.
  • determining the resource allocation granularity based on the bandwidth capability information of the UE includes: determining the resource allocation granularity based on the maximum transmission bandwidth of the UE.
  • determining the resource allocation granularity based on the UE's bandwidth capability information and configuration information indicating the resource allocation granularity includes: determining the resource allocation granularity based on the maximum transmission bandwidth of the UE and configuration information indicating the resource allocation granularity.
  • the configuration information includes at least one of the following:
  • Configuration information indicating the granularity of resource allocation
  • Configuration information indicating the resource allocation granularity configuration method.
  • the resource allocation granularity may be determined by the UE based on the first information, where the resource allocation granularity is the minimum allocation unit for resource allocation for the UE; wherein the first information includes at least one of the following: the bandwidth of the UE Capability information and configuration information indicating resource allocation granularity; in this way, a suitable resource allocation granularity can be configured for the UE and the resource allocation granularity can be flexibly allocated to the UE.
  • the UE determines the resource allocation granularity based on the UE's bandwidth capability information
  • the maximum transmission bandwidth of the UE included in the bandwidth capability information is smaller than the BWP allocated to the UE.
  • the resource allocation granularity determined by the UE is relative to the resource allocation granularity determined by the UE.
  • the resource allocation granularity determined by the allocated BWP can be smaller, which on the one hand reduces the waste of resources caused by allocating a relatively large allocation granularity to the maximum transmission bandwidth of a relatively small UE; on the other hand, because it can be determined Compared with the smaller resource allocation granularity, the flexibility of resource allocation for data channels for the UE can also be improved, so that the resource allocation for the UE has more combinations of RBGs.
  • the resource allocation granularity suitable for the UE can be directly determined based on instructions from the network device, etc., and the flexibility of the UE's resource allocation granularity can also be improved, thereby improving the UE's ability to use the resource allocation granularity. Flexibility in resource allocation for data channels.
  • Embodiments of the present disclosure provide a resource allocation method, which is executed by a UE, including: determining the resource allocation granularity based on the maximum transmission bandwidth of the UE.
  • determining the resource allocation granularity based on the maximum transmission bandwidth of the UE includes: determining the resource allocation granularity based on the maximum transmission bandwidth of the UE and a first mapping relationship; wherein the first mapping relationship includes: where the maximum transmission bandwidth is located Mapping relationship between candidate frequency range and resource allocation granularity.
  • the candidate frequency range may be predefined; the candidate frequency range may be a predetermined frequency range; the first candidate frequency range and the second candidate frequency range may be: the first predetermined frequency range and the second candidate frequency range, respectively. 2. Predetermined frequency range.
  • the candidate frequency range may be a partial bandwidth (BWP), for example, one candidate frequency range may be a BWP range including 1 to 36 RBs.
  • the first mapping relationship includes: at least one predefined candidate frequency range and a resource allocation granularity corresponding to the candidate frequency range.
  • the size of the maximum transmission bandwidth of the UE is positively correlated with the size of the resource allocation granularity.
  • an embodiment of the present disclosure provides a resource allocation method, which is executed by a UE, including:
  • Step S31 Determine the resource allocation granularity based on the maximum transmission bandwidth of the UE and the first mapping relationship.
  • the first mapping relationship includes: the mapping relationship between the candidate frequency range where the maximum transmission bandwidth is located and the resource allocation granularity.
  • the maximum transmission bandwidth may be the maximum transmission bandwidth in the above embodiments; the resource allocation granularity may be the resource allocation granularity in step S21.
  • the candidate frequency range may be one or more.
  • the plurality may be two or more.
  • the first mapping relationship includes: N candidate frequency ranges and the resource allocation granularity corresponding to each candidate frequency range; where N is an integer greater than 0;
  • Determining the resource allocation granularity based on the maximum transmission bandwidth of the UE and the first mapping relationship includes: based on the candidate frequency range where the maximum transmission bandwidth of the UE is located, determining the resource allocation granularity corresponding to the candidate frequency range to be the resource allocation granularity of the UE.
  • the first mapping relationship at least includes: a first candidate frequency range and a first resource allocation granularity corresponding to the first candidate frequency range, and a second candidate frequency range and a second resource allocation corresponding to the second candidate frequency range.
  • Granularity wherein the first resource allocation granularity includes a first predetermined number of RBs; the second resource allocation granularity includes a second predetermined number of RBs; wherein the maximum value of the first candidate frequency range is less than or equal to the minimum value of the second frequency range;
  • the first predetermined quantity is less than the second predetermined quantity;
  • the resource allocation granularity is determined based on the maximum transmission bandwidth of the UE and the first mapping relationship, including one of the following:
  • the resource allocation granularity is determined to be the second resource allocation granularity.
  • the first candidate frequency range may be the first BWP
  • the second candidate frequency range may be the second BWP
  • the first candidate frequency range includes 1 to 36 RBs, and the second candidate frequency range includes 37 to 72 RBs; the first predetermined number is 2, and the second predetermined number is 4; the first candidate frequency range corresponds to
  • the first resource allocation granularity is a resource allocation granularity including 2 RBs; the second resource allocation granularity corresponding to the second candidate frequency range is a resource allocation granularity including 4 RBs.
  • the resource allocation granularity is the first resource allocation granularity including 2 RBs; if the maximum transmission bandwidth of the UE is within the first candidate frequency range including 1 to 36 RBs; The transmission bandwidth is within the second candidate frequency range including 37 to 72 RBs, and the resource allocation granularity is the second resource allocation granularity including 4 RBs.
  • the resource allocation granularity is determined based on the maximum transmission bandwidth of the UE, including one of the following:
  • the maximum value of the first predetermined range is less than or equal to the minimum value of the second predetermined range; the first predetermined number is less than the second predetermined number.
  • the appropriate resource allocation granularity of the UE under different maximum transmission bandwidths can be determined according to the maximum transmission bandwidth of the UE and the first mapping relationship; in this way, compared with determining a relatively large granularity based on the BWP allocated to the UE
  • the waste of resources can be reduced, and on the other hand, the flexibility of resource allocation for the UE's data channel can be improved based on the relatively small resource allocation granularity.
  • the resource allocation granularity is determined based on the maximum transmission bandwidth of the UE, including:
  • the resource allocation granularity is determined based on the maximum transmission bandwidth of the UE and the subcarrier spacing of the maximum transmission bandwidth.
  • the size of the subcarrier spacing of the UE's maximum transmission bandwidth is negatively correlated with the resource allocation granularity.
  • an embodiment of the present disclosure provides a resource allocation method, which is executed by a UE, including:
  • Step S41 Determine the resource allocation granularity based on the maximum transmission bandwidth of the UE and the subcarrier spacing of the maximum transmission bandwidth.
  • step S41 includes:
  • the second mapping relationship includes: the mapping relationship between the subcarrier spacing and the resource allocation granularity in the candidate frequency range where the maximum transmission bandwidth is located .
  • the second mapping relationship may include: at least one predefined candidate frequency range and a resource allocation granularity corresponding to the candidate frequency range.
  • Embodiments of the present disclosure provide a resource allocation method, executed by a UE, which may include: determining the resource allocation granularity based on the maximum transmission bandwidth of the UE, the subcarrier spacing, and a second mapping relationship; wherein the second mapping relationship includes: The mapping relationship between subcarrier spacing and resource allocation granularity in the candidate frequency range where the bandwidth is located.
  • the candidate frequency range may be one or more.
  • the frequency range may be a first candidate frequency range and a second candidate frequency range.
  • the subcarrier spacing can be one or more.
  • the subcarrier intervals may be a first interval and a second interval.
  • the second mapping relationship includes: resource allocation granularity corresponding to M subcarrier intervals and M subcarrier intervals respectively under N candidate frequency ranges; where N and M are both integers greater than 0;
  • Step S41 includes: in response to the maximum transmission bandwidth of the UE being within the candidate frequency range, determining the resource allocation granularity corresponding to the subcarrier interval to be the resource allocation granularity of the UE.
  • the predetermined subcarrier interval may be a single subcarrier interval or a subcarrier interval of a candidate frequency range.
  • the first interval may be 30 KHz; the obtained first interval may be an interval in the range of 25 KHz to 35 KHz.
  • the second mapping relationship at least includes: in the first candidate frequency range, the first interval corresponds to the first resource allocation sub-granularity, and/or the second interval corresponds to the second interval.
  • This step S41 includes one of the following:
  • the resource allocation granularity is determined to be the fourth resource allocation sub-granularity.
  • the first candidate frequency range includes 1 to 36 RBs
  • the second candidate frequency range includes 37 to 72 RBs
  • the first predetermined number is 2
  • the second predetermined number is 4, and the third predetermined number is 4.
  • the fourth predetermined number is 8
  • the first interval is SCS1, which can be 30KHz
  • the second interval is SCS2, which can be 15KHz.
  • the first resource allocation sub-granularity corresponding to the first interval is a resource allocation granularity including 2 RBs
  • the second resource allocation sub-granularity corresponding to the second interval is a resource allocation granularity including 4 RBs
  • the third resource allocation sub-granularity corresponding to the first interval is a resource allocation granularity including 4 RBs
  • the fourth resource allocation sub-granularity corresponding to the second interval is a resource allocation granularity including 8 RBs.
  • the resource allocation granularity is the first resource including 2 RBs. Allocation sub-granularity; or, if the sub-carrier interval is the second interval, the resource allocation granularity is the second resource allocation sub-granularity including 4 RBs; or, if the maximum transmission bandwidth of the UE is in the second candidate including 37 to 72 RBs
  • the resource allocation granularity is the third resource allocation subgranularity including 4 RBs; or, if the subcarrier interval is the second interval, the resource allocation granularity is the third resource allocation subgranularity including 8 RBs.
  • step S41 may include at least one of the following:
  • the resource allocation granularity includes a first predetermined number of RBs based on the subcarrier spacing being the first spacing
  • the resource allocation granularity includes a second predetermined number of RBs
  • the resource allocation granularity includes a third predetermined number of RBs
  • the resource allocation granularity includes a fourth predetermined number of RBs
  • the maximum value of the first candidate frequency range is less than or equal to the minimum value of the second candidate frequency range; the first interval is greater than the second interval; the first predetermined number is less than the second predetermined number; the second predetermined number is less than or equal to the third The predetermined quantity; the third predetermined quantity is less than the fourth predetermined quantity.
  • the appropriate resource allocation granularity of the UE under different maximum transmission bandwidths and different subcarrier intervals can be determined according to the maximum transmission bandwidth and subcarrier spacing of the UE; in this way, the resource allocation granularity can be flexibly determined. , thereby improving the flexibility of resource allocation for the UE's data channel.
  • the configurable resource allocation granularity is relatively small for the relatively large sub-carrier spacing of the UE's maximum transmission bandwidth; for the relatively small sub-carrier spacing of the UE's maximum transmission bandwidth, the configurable resource allocation granularity is relatively small.
  • the particle size is relatively large.
  • the method includes: receiving configuration information, wherein the configuration information includes indication information indicating a resource allocation granularity;
  • Step S21 includes: determining the resource allocation granularity based on the instruction information carried in the configuration information.
  • an embodiment of the present disclosure provides a resource allocation method, which is executed by a UE, including:
  • Step S51 Receive configuration information, where the configuration information includes indication information indicating a resource allocation granularity
  • Step S52 Determine the resource allocation granularity based on the instruction information carried in the configuration information.
  • receiving the configuration information in step S51 may be: receiving configuration information sent by the network device.
  • the network device may be, but is not limited to, an access network device or a core network device.
  • the access network equipment may be various types of base stations; for example, it may be a 2G base station, a 3G base station, a 4G base station, a 5G base station or other evolved base stations.
  • the core network equipment may be, but is not limited to, various entities or network element functions of the core network.
  • the core network device sends the configuration information to the base station, and the base station forwards the configuration information to the UE.
  • receiving configuration information may include: receiving configuration information sent by a network device based on high-level signaling.
  • the high-level signaling may be, but is not limited to, one of Radio Resource Control (Radio Resource Control, RRC) signaling and Media Access Control (Medium Access Control, MAC) signaling.
  • RRC Radio Resource Control
  • MAC Media Access Control
  • receiving configuration information may include: receiving configuration information sent by physical layer signaling.
  • the physical layer signaling may be downlink control information (Downlink Control Information, DCI).
  • DCI Downlink Control Information
  • the UE receives the configuration information. If the indication information included in the configuration information indicates that the resource allocation granularity is to include 2 RBs; then the UE determines that the resource allocation granularity of the UE is to include 2 RBs based on the indication information. .
  • the resource allocation granularity of the UE can be determined based on the configuration of the network device; in this way, the flexibility and adaptability of the resource allocation granularity of the UE can also be improved, thereby improving the efficiency of resource allocation for the data channel of the UE. flexibility.
  • the method includes: sending the maximum transmission bandwidth of the UE;
  • Receiving configuration information in step S51 includes: receiving configuration information determined based on the maximum transmission bandwidth.
  • Embodiments of the present disclosure provide a resource allocation method, executed by UE, including:
  • the maximum transmission bandwidth of the sending UE is the maximum transmission bandwidth of the sending UE
  • sending the maximum transmission bandwidth of the UE includes: sending the maximum transmission bandwidth of the UE to the network device.
  • the maximum transmission bandwidth of the UE is used for the network device to select a resource allocation granularity from the first set; determine the indication information included in the configuration information based on the resource allocation granularity; wherein the first set includes at least one Resource allocation granularity.
  • the UE sends the maximum transmission bandwidth of the UE to the network device.
  • the network device may also store a first mapping relationship; the network device may select a resource corresponding to the maximum transmission bandwidth of the UE from N types of resource allocation granularities based on the first mapping relationship and the maximum transmission bandwidth of the UE. Allocation granularity.
  • the maximum transmission bandwidth of the UE can be sent through the UE, so that the network device can select an appropriate resource allocation granularity corresponding to the maximum transmission bandwidth of the UE and send it to the UE; in this way, appropriate resources can be configured for the UE. Allocation granularity.
  • the method includes: receiving configuration information, wherein the configuration information includes indication information indicating at least one resource allocation granularity configuration manner;
  • Step S21 includes: determining the resource allocation granularity based on the maximum transmission bandwidth and indication information of the UE.
  • an embodiment of the present disclosure provides a resource allocation method, which is executed by a UE, including:
  • Step S61 Receive configuration information, where the configuration information includes indication information indicating at least one resource allocation granularity configuration mode;
  • Step S62 Determine the resource allocation granularity based on the maximum transmission bandwidth and indication information of the UE.
  • step S62 includes:
  • the resource allocation granularity is determined based on the maximum transmission bandwidth of the UE, the indication information and the third mapping relationship; the third mapping relationship includes: the mapping relationship between the indication information and the resource allocation granularity in the candidate frequency range where the maximum transmission bandwidth is located.
  • the third mapping relationship may include: at least one predefined candidate frequency range and a resource allocation granularity corresponding to the candidate frequency range.
  • Embodiments of the present disclosure provide a resource allocation method, executed by a UE, including: determining the resource allocation granularity based on the maximum transmission bandwidth of the UE, indication information and a third mapping relationship; wherein the third mapping relationship includes: where the maximum transmission bandwidth is located In the candidate frequency range, the mapping relationship between the indication information and the resource allocation granularity.
  • the maximum transmission bandwidth is the maximum transmission bandwidth in the above embodiments; the resource allocation granularity and configuration information are respectively the resource allocation granularity and configuration information in step S21.
  • an indication information may indicate a resource allocation granularity configuration method.
  • the third mapping relationship includes: resource allocation granularity corresponding to L indication information and L indication information respectively under N candidate frequency ranges; wherein, N and L are both integers greater than 0;
  • Determining the resource allocation granularity based on the UE's maximum transmission bandwidth, indication information and the third mapping relationship includes: in response to the UE's maximum transmission bandwidth being within the candidate frequency range, determining the UE's resources based on the resource allocation granularity configuration method indicated by the indication information. Allocation granularity.
  • the configuration information includes at least one of the following:
  • the first indication information is used to indicate that the resource allocation granularity is the first configuration mode
  • the second indication information is used to indicate that the resource allocation granularity is the second configuration mode
  • the resource allocation granularity including one of the following:
  • the resource allocation granularity is determined based on the candidate frequency range where the maximum transmission bandwidth of the UE is located, the second configuration method, and the third mapping relationship.
  • the resource allocation granularity is determined based on the maximum transmission bandwidth and indication information of the UE, including one of the following:
  • the resource allocation granularity corresponding to the maximum transmission bandwidth of the UE within each candidate frequency range is determined.
  • the configuration information sent by the network device to the UE includes first indication information and second indication information; wherein the first indication information is used to indicate that the resource allocation granularity is the first configuration mode, and the second indication information is used to indicate that the resource allocation granularity is the first configuration mode. Indicates that the resource allocation granularity is the second configuration mode.
  • the first configuration method includes: for the first candidate frequency range, for example, for the frequency range including 1 to 36 RBs, the resource allocation granularity is to include 2 RBs; for the second candidate frequency range, for example, for the frequency range including 37 to 72 RBs, The frequency range of RBs.
  • the resource allocation granularity includes 4 RBs.
  • the second configuration method includes: for the first candidate frequency range, for example, for the frequency range including 1 to 36 RBs, the resource allocation granularity is to include 4 RBs; for the second candidate frequency range, for example, for the frequency range including 37 to 72 RBs, The frequency range of RBs.
  • the resource allocation granularity includes 8 RBs.
  • the resource allocation granularity includes 2 RBs; if it is based on the second configuration mode, the resource allocation granularity includes 4 RBs; if the maximum transmission bandwidth of the UE is within the second predetermined range including 37 to 72 RBs: if it is based on the first configuration mode, the resource allocation granularity includes 4 RBs; if it is based on the first configuration mode In the second configuration mode, the resource allocation granularity includes 8 RBs.
  • the resource allocation granularity can be jointly determined based on the maximum transmission bandwidth of the UE and the configuration method of the resource allocation granularity; in this way, the UE can be configured with an appropriate resource allocation granularity, and resource allocation due to relatively high configuration can be reduced.
  • the following resource allocation method is executed by a network device, which is similar to the above description of the resource allocation method executed by a UE; and, for technical details not disclosed in the embodiment of the resource allocation method executed by the network device, please Referring to the description of an example of a resource allocation method performed by the UE, a detailed description is not provided here.
  • an embodiment of the present disclosure provides a resource allocation method, which is executed by a network device, including:
  • Step S71 Send configuration information, where the configuration information is used for the UE to determine the resource allocation granularity, where the resource allocation granularity is the minimum allocation unit for resource allocation for the UE.
  • the configuration information is the configuration information in step S21; the resource allocation granularity is the resource allocation granularity in step S21; and the maximum transmission bandwidth is the maximum transmission bandwidth in the above embodiments.
  • the configuration information includes indication information indicating a resource allocation granularity.
  • Embodiments of the present disclosure provide a resource allocation method, which is executed by a network device, including:
  • the first set determines one resource allocation granularity; wherein the first set includes: at least one resource allocation granularity.
  • the first set may be a predetermined set.
  • the first set of network device configurations includes N resource allocation granularities, where N is an integer greater than 0; for example, the first set of network device configurations includes: resource allocation granularities including 2 RBs, including 4 RBs. The resource allocation granularity and the resource allocation granularity including 6 RBs.
  • the network device can select a resource allocation granularity from the first set, for example, select a resource allocation granularity that includes 2 RBs; then the network device can send configuration information to the UE, and the configuration information includes an indication that the resource allocation granularity includes 2 Instruction information of each RB. In this way, when the UE receives the configuration information, it can determine that the resource allocation granularity of the UE includes 2 RBs based on the indication information included in the configuration information.
  • the network device can select one resource allocation granularity from a plurality of preconfigured resource allocation granularities, and send the indication information indicating the one resource allocation granularity to the UE; in this way, the UE can be configured based on This indication information directly determines the resource allocation granularity of the UE.
  • the method includes: receiving bandwidth capability information, wherein the bandwidth capability information includes: a maximum transmission bandwidth of the UE;
  • Determining a resource allocation granularity from the first set includes: based on the maximum transmission bandwidth, determining a resource allocation granularity from the first set that matches the maximum transmission bandwidth.
  • Embodiments of the present disclosure provide a resource allocation method, which is executed by a network device, including:
  • Receive bandwidth capability information includes: the maximum transmission bandwidth of the UE;
  • a resource allocation granularity matching the maximum transmission bandwidth is determined from the first set.
  • the first set of network device configurations includes N resource allocation granularities, where N is an integer greater than 0; for example, the first set of network device configurations includes: resource allocation granularities including 2 RBs, including 4 RBs. The resource allocation granularity and the resource allocation granularity including 6 RBs. If the network device receives the maximum transmission resource of the UE sent by the UE, for example, the maximum transmission resource is 32 RBs; then the network device can select the resource allocation granularity that matches the maximum transmission resource from the first set based on the maximum transmission resource to include Resource allocation granularity of 2 RBs.
  • the network device may send configuration information to the UE, where the configuration information includes indication information indicating that the resource allocation granularity includes 2 RBs.
  • the configuration information includes indication information indicating that the resource allocation granularity includes 2 RBs.
  • the network device can determine a suitable resource allocation granularity for the UE based on the maximum transmission bandwidth of the UE sent by the UE, and send the indication information indicating the resource allocation granularity to the UE; this can make The UE determines the appropriate resource allocation granularity for the UE based on the indication information.
  • the configuration information includes indication information indicating at least one resource allocation granularity configuration manner; wherein the indication information and the maximum transmission bandwidth are used for the UE to determine the resource allocation granularity.
  • the configuration information sent by the network device to the UE includes first indication information, where the first indication information is used to indicate that the resource allocation granularity is the first configuration mode.
  • the first configuration method includes: for the first candidate frequency range, for example, for the frequency range including 1 to 36 RBs, the resource allocation granularity is to include 2 RBs; for the second candidate frequency range, for example, for the frequency range including 37 to 72 RBs, The frequency range of RBs.
  • the resource allocation granularity includes 4 RBs. In this way, when the UE receives the configuration information including the first indication information, the resource allocation granularity of the UE can be determined based on the candidate frequency range to which the maximum transmission bandwidth of the UE belongs and the first configuration mode.
  • the configuration information sent by the network device to the UE includes first indication information and second indication information; wherein the first indication information is used to indicate that the resource allocation granularity is the first configuration mode, and the second indication information is used to indicate that the resource allocation granularity is the first configuration mode. Indicates that the resource allocation granularity is the second configuration mode.
  • the first configuration method includes: for the first candidate frequency range, for example, for the frequency range including 1 to 36 RBs, the resource allocation granularity is to include 2 RBs; for the second candidate frequency range, for example, for the frequency range including 37 to 72 RBs, The frequency range of RBs.
  • the resource allocation granularity includes 4 RBs.
  • the second configuration method includes: for the first candidate frequency range, for example, for the frequency range including 1 to 36 RBs, the resource allocation granularity is to include 4 RBs; for the second candidate frequency range, for example, for the frequency range including 37 to 72 RBs, The frequency range of RBs.
  • the resource allocation granularity includes 8 RBs.
  • the configuration information including the indication information indicating at least one resource allocation granularity can be sent to the UE through the network device, so that the UE can determine the UE based on the indication information and the maximum transmission bandwidth of the UE.
  • Embodiments of the present disclosure provide a resource allocation method, which is executed by communication equipment.
  • the communication equipment includes: UE and network equipment; the resource allocation method includes the following steps:
  • Step S81a If the UE determines that the UE is a first type UE, determine the resource allocation granularity according to the bandwidth capability information of the UE;
  • the bandwidth capability information includes: the maximum transmission bandwidth of the UE; the maximum transmission bandwidth of the UE may be the transceiver bandwidth of the UE.
  • the radio frequency (RF) processing bandwidth supported by the first type UE is different from the baseband processing bandwidth.
  • RedCap UE supports 20MHz processing bandwidth on the RF side and 5MHz processing bandwidth on the baseband side for data or control channel transmission.
  • the RF processing bandwidth may be the BWP allocated to the UE; the baseband processing bandwidth may be the maximum transmission bandwidth of the UE or the transceiver bandwidth of the UE.
  • Table 5 provides a way to determine the resource allocation granularity based on the UE's transceiver bandwidth (ie, the maximum transmission bandwidth); the resource allocation granularity of this method is suitable for the type0 resource allocation method.
  • the corresponding resource allocation granularity is a resource allocation granularity that includes 2 RBs; for a transceiver bandwidth that includes 37 to 72 RBs, the corresponding resource allocation granularity is The resource allocation granularity includes 4 RBs.
  • UE transceiver bandwidth (RB) Resource allocation granularity (RB) 1–36 2 37–72 4
  • Step S81b If the UE determines that the UE is a first type UE, determine the resource allocation granularity based on the UE's bandwidth capability information and subcarrier spacing;
  • the subcarrier spacing is the subcarrier spacing of the UE's transceiving bandwidth (that is, the maximum transmission bandwidth).
  • a method of determining resource allocation granularity based on the UE's transceiver bandwidth and the subcarrier spacing of the transceiver bandwidth is provided; as shown in Table 6: For a transceiver bandwidth including 1 to 36 RBs: If the subcarrier spacing is For the first interval (SCS1), the corresponding resource allocation granularity is a resource allocation granularity including 2 RBs; if the subcarrier interval is the second interval (SCS2), the corresponding resource allocation granularity is a resource allocation granularity including 4 RBs; for Transmitting and receiving bandwidth of 37 to 72 RBs: If the subcarrier spacing is the first spacing (SCS1), the corresponding resource allocation granularity is a resource allocation granularity including 4 RBs; if the subcarrier spacing is the second spacing (SCS2), the corresponding resource allocation granularity is The granularity is the resource allocation granularity including 8 RBs.
  • the first interval is the first interval (SCS
  • Step S82 If the UE determines that the UE is a first type UE, determine the resource allocation granularity according to the configuration information;
  • the network device selects a resource allocation granularity from the first set and sends indication information indicating the resource allocation granularity to the UE; wherein the first set includes at least one Resource allocation granularity: Based on the indication information, the UE determines that the resource allocation granularity of the UE is the resource allocation granularity indicated by the indication information.
  • Step S83 If the UE determines that the UE is a first type UE, determine the resource allocation granularity according to the bandwidth capability information and configuration information of the UE.
  • the network device sends configuration information to the UE, where the configuration information includes first indication information and second indication information, where the first indication information is used to indicate that the resource allocation granularity is the first configuration mode, and The second indication information is used to indicate that the resource allocation granularity is the second configuration mode.
  • the first configuration method includes: for a transceiver bandwidth of 1 to 36 RBs, the resource allocation granularity is a resource allocation granularity including 2 RBs; for a transceiver bandwidth of 36 to 72, the resource allocation granularity is a resource allocation granularity including 2 RBs; Resource allocation granularity of 4 RBs.
  • the second configuration method includes: for the transceiver bandwidth of 1 to 36 RBs, the resource allocation granularity is a resource allocation granularity including 4 RBs; for the transceiver bandwidth of 36 to 72, the resource allocation granularity is a resource allocation granularity including 8 RBs. .
  • the UE can determine the resource allocation granularity of the UE based on the first configuration method or the second configuration method of the UE's transceiver bandwidth and resource allocation granularity.
  • an embodiment of the present disclosure provides a resource allocation device, which is applied to UE and includes:
  • the first processing module 51 is configured to determine the resource allocation granularity based on the first information, where the resource allocation granularity is the minimum allocation unit for resource allocation for the UE; wherein the first information includes at least one of the following: the bandwidth capability of the UE Information and configuration information indicating resource allocation granularity.
  • the bandwidth capability information at least includes the maximum transmission bandwidth supported by the UE.
  • Embodiments of the present disclosure provide a resource allocation device, applied to a UE, including: a first processing module 51 configured to determine the resource allocation granularity based on the maximum transmission bandwidth of the UE and a first mapping relationship; wherein the first mapping relationship includes : The mapping relationship between the candidate frequency range where the maximum transmission bandwidth is located and the resource allocation granularity.
  • Embodiments of the present disclosure provide a resource allocation device, applied to a UE, including: a first processing module 51 configured to determine the resource allocation granularity based on the maximum transmission bandwidth of the UE and the subcarrier spacing of the maximum transmission bandwidth.
  • Embodiments of the present disclosure provide a resource allocation device, applied to UE, including: a first processing module 51 configured to determine the resource allocation granularity based on the maximum transmission bandwidth, subcarrier spacing and a second mapping relationship; wherein, the second mapping The relationship includes: the mapping relationship between subcarrier spacing and resource allocation granularity in the candidate frequency range where the maximum transmission bandwidth is located.
  • Embodiments of the present disclosure provide a resource allocation device, applied to UE, including:
  • the receiving module is configured to receive configuration information, where the configuration information includes indication information indicating a resource allocation granularity;
  • the first processing module 51 is configured to determine the resource allocation granularity based on the indication information carried in the configuration information.
  • Embodiments of the present disclosure provide a resource allocation device, applied to UE, including:
  • the sending module is configured to send the maximum transmission bandwidth of the UE
  • the receiving module is configured to receive configuration information determined based on the maximum transmission bandwidth.
  • Embodiments of the present disclosure provide a resource allocation device, which is applied to a UE and includes:
  • the receiving module is configured to receive configuration information, wherein the configuration information includes indication information indicating at least one resource allocation granularity configuration mode;
  • the first processing module 51 is configured to determine the resource allocation granularity based on the maximum transmission bandwidth and indication information of the UE.
  • Embodiments of the present disclosure provide a resource allocation device, applied to UE, including: a first processing module 51 configured to determine the resource allocation granularity based on the maximum transmission bandwidth, indication information and a third mapping relationship; wherein, the third mapping relationship Including: the mapping relationship between indication information and resource allocation granularity in the candidate frequency range where the maximum transmission bandwidth is located.
  • an embodiment of the present disclosure provides a resource allocation device, which is applied to network equipment and includes:
  • the second sending module 61 is configured to send configuration information, where the configuration information is used for the UE to determine the resource allocation granularity, where the resource allocation granularity is the minimum allocation unit for resource allocation for the UE.
  • the configuration information includes indication information indicating a resource allocation granularity.
  • Embodiments of the present disclosure provide a resource allocation device, applied to network equipment, including: a second processing module configured to determine a resource allocation granularity from a first set; wherein the first set includes: at least one Resource allocation granularity.
  • Embodiments of the present disclosure provide a resource allocation device, applied to network equipment, including:
  • the receiving module is configured to receive bandwidth capability information, where the bandwidth capability information includes: the maximum transmission bandwidth of the UE;
  • the second processing module is configured to determine a resource allocation granularity matching the maximum transmission bandwidth from the first set based on the maximum transmission bandwidth.
  • the configuration information includes indication information indicating at least one resource allocation granularity configuration manner; wherein the indication information and the maximum transmission bandwidth are used for the UE to determine the resource allocation granularity.
  • An embodiment of the present disclosure provides a communication device, including:
  • Memory used to store instructions executable by the processor
  • the processor is configured to implement the resource allocation method of any embodiment of the present disclosure when running executable instructions.
  • the communication device may include but is not limited to at least one: a network device or a UE.
  • the network device may be a core network device or a base station.
  • the processor may include various types of storage media, which are non-transitory computer storage media that can continue to memorize the information stored thereon after the user equipment is powered off.
  • the processor may be connected to the memory through a bus or the like, and be used to read the executable program stored on the memory, for example, at least one of the methods shown in FIGS. 2 to 7 .
  • An embodiment of the present disclosure also provides a computer storage medium.
  • the computer storage medium stores a computer executable program.
  • the executable program is executed by a processor, the resource allocation method of any embodiment of the present disclosure is implemented. For example, at least one of the methods shown in FIGS. 2 to 7 .
  • Figure 10 is a block diagram of a user equipment 800 according to an exemplary embodiment.
  • user device 800 may be a mobile phone, computer, digital broadcast user device, messaging device, game console, tablet device, medical device, fitness device, personal digital assistant, etc.
  • user equipment 800 may include one or more of the following components: a processing component 802 , a memory 804 , a power supply component 806 , a multimedia component 808 , an audio component 810 , an input/output (I/O) interface 812 , and a sensor component 814 , and communication component 816.
  • a processing component 802 may include one or more of the following components: a processing component 802 , a memory 804 , a power supply component 806 , a multimedia component 808 , an audio component 810 , an input/output (I/O) interface 812 , and a sensor component 814 , and communication component 816.
  • a processing component 802 may include one or more of the following components: a processing component 802 , a memory 804 , a power supply component 806 , a multimedia component 808 , an audio component 810 , an input/output (I/O) interface 812 , and a sensor component 814 , and communication component 8
  • Processing component 802 generally controls the overall operations of user device 800, such as operations associated with display, phone calls, data communications, camera operations, and recording operations.
  • the processing component 802 may include one or more processors 820 to execute instructions to complete all or part of the steps of the above method.
  • processing component 802 may include one or more modules that facilitate interaction between processing component 802 and other components.
  • processing component 802 may include a multimedia module to facilitate interaction between multimedia component 808 and processing component 802.
  • Memory 804 is configured to store various types of data to support operations at user device 800 . Examples of such data include instructions for any application or method operating on user device 800, contact data, phonebook data, messages, pictures, videos, etc.
  • Memory 804 may be implemented by any type of volatile or non-volatile storage device, or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EEPROM), Programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic or optical disk.
  • SRAM static random access memory
  • EEPROM electrically erasable programmable read-only memory
  • EEPROM erasable programmable read-only memory
  • EPROM Programmable read-only memory
  • PROM programmable read-only memory
  • ROM read-only memory
  • magnetic memory flash memory, magnetic or optical disk.
  • Power supply component 806 provides power to various components of user equipment 800.
  • Power supply components 806 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power to user device 800 .
  • Multimedia component 808 includes a screen that provides an output interface between the user device 800 and the user.
  • the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen may be implemented as a touch screen to receive input signals from the user.
  • the touch panel includes one or more touch sensors to sense touches, swipes, and gestures on the touch panel. The touch sensor may not only sense the boundary of a touch or slide action, but also detect the duration and pressure associated with the touch or slide action.
  • multimedia component 808 includes a front-facing camera and/or a rear-facing camera.
  • the front camera and/or the rear camera may receive external multimedia data.
  • Each front-facing camera and rear-facing camera can be a fixed optical lens system or have a focal length and optical zoom capabilities.
  • Audio component 810 is configured to output and/or input audio signals.
  • audio component 810 includes a microphone (MIC) configured to receive external audio signals when user device 800 is in operating modes, such as call mode, recording mode, and voice recognition mode. The received audio signal may be further stored in memory 804 or sent via communication component 816 .
  • audio component 810 also includes a speaker for outputting audio signals.
  • the I/O interface 812 provides an interface between the processing component 802 and a peripheral interface module, which may be a keyboard, a click wheel, a button, etc. These buttons may include, but are not limited to: Home button, Volume buttons, Start button, and Lock button.
  • Sensor component 814 includes one or more sensors that provide various aspects of status assessment for user device 800 .
  • the sensor component 814 can detect the open/closed state of the device 800, the relative positioning of components, such as the display and keypad of the user device 800, the sensor component 814 can also detect the user device 800 or a component of the user device 800. position changes, the presence or absence of user contact with user device 800 , user device 800 orientation or acceleration/deceleration and temperature changes of user device 800 .
  • Sensor assembly 814 may include a proximity sensor configured to detect the presence of nearby objects without any physical contact.
  • Sensor assembly 814 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications.
  • the sensor component 814 may also include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
  • Communication component 816 is configured to facilitate wired or wireless communication between user device 800 and other devices.
  • User equipment 800 may access a wireless network based on a communication standard, such as WiFi, 4G or 5G, or a combination thereof.
  • the communication component 816 receives broadcast signals or broadcast related information from an external broadcast management system via a broadcast channel.
  • the communications component 816 also includes a near field communications (NFC) module to facilitate short-range communications.
  • NFC near field communications
  • the NFC module can be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology and other technologies.
  • RFID radio frequency identification
  • IrDA infrared data association
  • UWB ultra-wideband
  • Bluetooth Bluetooth
  • user equipment 800 may be configured by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable A programmable gate array (FPGA), controller, microcontroller, microprocessor or other electronic component implementation is used to perform the above method.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGA field programmable A programmable gate array
  • controller microcontroller, microprocessor or other electronic component implementation is used to perform the above method.
  • a non-transitory computer-readable storage medium including instructions such as a memory 804 including instructions, which can be executed by the processor 820 of the user device 800 to complete the above method is also provided.
  • the non-transitory computer-readable storage medium may be ROM, random access memory (RAM), CD-ROM, magnetic tape, floppy disk, optical data storage device, etc.
  • an embodiment of the present disclosure shows the structure of a base station.
  • the base station 900 may be provided as a network side device.
  • base station 900 includes a processing component 922, which further includes one or more processors, and memory resources represented by memory 932 for storing instructions, such as application programs, executable by processing component 922.
  • the application program stored in memory 932 may include one or more modules, each corresponding to a set of instructions.
  • the processing component 922 is configured to execute instructions to perform any of the foregoing methods applied to the base station.
  • Base station 900 may also include a power supply component 926 configured to perform power management of base station 900, a wired or wireless network interface 950 configured to connect base station 900 to a network, and an input/output (I/O) interface 958.
  • Base station 900 may operate based on an operating system stored in memory 932, such as Windows ServerTM, Mac OS XTM, UnixTM, LinuxTM, FreeBSDTM or the like.

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Abstract

Les modes de réalisation de la présente divulgation concernent des procédés d'attribution de ressources, un appareil, un dispositif de communication et un support de stockage. Un procédé d'attribution de ressources consiste à : sur la base de premières informations, déterminer une granularité d'attribution de ressources, la granularité d'attribution de ressources étant une unité d'attribution minimale pour effectuer une attribution de ressources pour un UE, et les premières informations comprenant au moins l'un des éléments suivants : des informations de capacité de bande passante de l'UE et des informations de configuration relatives à l'indication de la granularité d'attribution de ressources.
PCT/CN2022/086896 2022-04-14 2022-04-14 Procédés d'attribution de ressources, appareil, dispositif de communication et support de stockage WO2023197263A1 (fr)

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CN202280001212.4A CN117242866A (zh) 2022-04-14 2022-04-14 一种资源分配方法、装置、通信设备及存储介质

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WO2022027695A1 (fr) * 2020-08-07 2022-02-10 华为技术有限公司 Procédé de transmission d'informations, et appareil de communication

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CN110663281A (zh) * 2017-05-03 2020-01-07 Lg电子株式会社 用于在无线通信系统中为基站终端分配资源的方法以及使用所述方法的通信设备
CN108811132A (zh) * 2017-05-05 2018-11-13 华为技术有限公司 一种资源指示的方法、设备及系统
WO2022027695A1 (fr) * 2020-08-07 2022-02-10 华为技术有限公司 Procédé de transmission d'informations, et appareil de communication

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