WO2025236299A1 - 信息传输方法及装置、存储介质 - Google Patents

信息传输方法及装置、存储介质

Info

Publication number
WO2025236299A1
WO2025236299A1 PCT/CN2024/094063 CN2024094063W WO2025236299A1 WO 2025236299 A1 WO2025236299 A1 WO 2025236299A1 CN 2024094063 W CN2024094063 W CN 2024094063W WO 2025236299 A1 WO2025236299 A1 WO 2025236299A1
Authority
WO
WIPO (PCT)
Prior art keywords
resource
time unit
terminal
type
transmission mode
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
PCT/CN2024/094063
Other languages
English (en)
French (fr)
Inventor
王磊
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Beijing Xiaomi Mobile Software Co Ltd
Original Assignee
Beijing Xiaomi Mobile Software Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Beijing Xiaomi Mobile Software Co Ltd filed Critical Beijing Xiaomi Mobile Software Co Ltd
Priority to PCT/CN2024/094063 priority Critical patent/WO2025236299A1/zh
Priority to CN202480034470.1A priority patent/CN121368916A/zh
Publication of WO2025236299A1 publication Critical patent/WO2025236299A1/zh
Pending legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0446Resources in time domain, e.g. slots or frames

Definitions

  • This disclosure relates to the field of communications, and in particular to information transmission methods and apparatus, and storage media.
  • an Uplink subband (UL subband) is introduced.
  • the terminal can be configured to transmit uplink information on the UL subband in the SBFD time unit, and the uplink frequency domain resources occupied are within the frequency domain resources occupied by the UL subband.
  • embodiments of this disclosure provide an information transmission method and apparatus, and a storage medium.
  • an information transmission method is provided, the method being executed by a terminal, the method comprising:
  • a first transmission mode is determined, which is used to indicate whether a first time unit can be used to transmit uplink information; wherein, the first time unit includes multiple types of sub-time units;
  • the first resource is determined
  • the uplink information is sent to the network device.
  • an information transmission method is provided, the method being executed by a network device, the method comprising:
  • a first transmission mode is determined, which is used to indicate whether a first time unit can be used to transmit uplink information; wherein, the first time unit includes multiple types of sub-time units;
  • the first resource is determined
  • the uplink information sent by the receiving terminal is received.
  • a terminal comprising:
  • the processing module is configured to determine a first transmission mode, which is used to indicate whether a first time unit can be used to transmit uplink information; wherein, the first time unit includes multiple types of sub-time units;
  • the processing module is also configured to determine the first resource based on the first transmission method
  • the sending module is configured to send the uplink information to the network device on the first resource.
  • a network device comprising:
  • the processing module is configured to determine a first transmission mode, which is used to indicate whether a first time unit can be used to transmit uplink information; wherein, the first time unit includes multiple types of sub-time units;
  • the processing module is also configured to determine the first resource based on the first transmission method
  • the receiving module is configured to receive the uplink information sent by the terminal on the first resource.
  • a terminal comprising:
  • One or more processors are One or more processors;
  • the processor is used to execute the information transmission method described in any one of the first aspects.
  • a network device comprising:
  • One or more processors are One or more processors;
  • the processor is used to execute the information transmission method described in any one of the second aspects.
  • a communication system comprising:
  • a terminal the terminal being configured to implement the information transmission method described in any one of the first aspects
  • a network device configured to implement the information transmission method described in any one of the second aspects.
  • a storage medium stores instructions that, when executed on a communication device, cause the communication device to perform an information transmission method as described in any one of the first or second aspects.
  • a computer program product including a computer program that, when executed by a processor, is used to implement the information transmission method described in any one of the first or second aspects.
  • the terminal can determine a first transmission mode, which can be used to indicate whether a first time unit can be used to transmit uplink information.
  • the first time unit includes multiple types of sub-time units.
  • the terminal ...
  • the first resource can be determined based on the first transmission mode, and the uplink information can be sent to the network device on the first resource. This clarifies the behavior of the terminal on the first time unit, which simultaneously includes multiple types of sub-times, improving the availability and reliability of SBFD.
  • Figure 1 is an exemplary schematic diagram of the architecture of a communication system provided according to an embodiment of the present disclosure.
  • Figure 2A is an exemplary interactive schematic diagram of an information transmission method provided according to an embodiment of the present disclosure.
  • Figure 2B is an exemplary interactive schematic diagram of an information transmission method provided according to an embodiment of the present disclosure.
  • Figure 2C is an exemplary schematic diagram of SBFD sub-time units and non-SBFD sub-time units provided according to embodiments of the present disclosure.
  • Figure 3A is an exemplary interactive schematic diagram of an information transmission method provided according to an embodiment of the present disclosure.
  • Figure 3B is an exemplary interactive schematic diagram of an information transmission method provided according to an embodiment of the present disclosure.
  • Figure 4A is an exemplary schematic diagram of a time-division duplex configuration provided according to an embodiment of the present disclosure.
  • Figure 4B is an exemplary relationship diagram of downlink BWP and uplink subband within an SBFD time unit provided according to an embodiment of the present disclosure.
  • Figure 5A is an exemplary block diagram of a terminal provided according to an embodiment of the present disclosure.
  • Figure 5B is an exemplary block diagram of a network device provided according to an embodiment of the present disclosure.
  • Figure 6A is an exemplary interactive schematic diagram of a communication device provided according to an embodiment of the present disclosure.
  • Figure 6B is an exemplary interactive schematic diagram of a chip provided according to an embodiment of the present disclosure.
  • embodiments of this disclosure propose an information transmission method, which is executed by a terminal.
  • the method includes: determining a first transmission mode, wherein the first transmission mode is used to indicate whether a first time unit can be used to transmit uplink information; wherein the first time unit includes multiple types of sub-time units; determining a first resource based on the first transmission mode; and sending the uplink information to a network device on the first resource.
  • the above embodiments clarify the behavior of the terminal in the first time unit that simultaneously includes multiple types of sub-time, thereby improving the availability and reliability of SBFD.
  • the method further includes: not expecting to send the uplink information to the network device on the first time unit.
  • determining the first transmission mode includes: determining the first transmission mode based on a predefined mode, wherein the first transmission mode is used to indicate that the first time unit cannot be used to transmit the uplink information.
  • the terminal can determine the first transmission method based on the first indication information sent by the network device, which is simple to implement and highly available.
  • determining the first transmission mode includes any one of the following: the second resource is located within the range of the first resource, the first transmission mode is determined, and the first transmission mode is used to indicate that the first time unit can be used to transmit the uplink information; the second resource is located outside the first frequency domain range, the first transmission mode is determined.
  • the first transmission mode is used to indicate that the first time unit cannot be used to transmit the uplink information; wherein, the first resource range is the resource range configured by the network device for the terminal on the first type of sub-time unit.
  • the terminal can determine the first transmission method in the above manner, which improves the reliability of the terminal behavior.
  • determining the first resource based on the first transmission mode includes: the first transmission mode being used to indicate that the first time unit can be used to transmit the uplink information, and determining the first resource based on a first type of resource set; wherein, the first type of resource set is a resource set configured by the network device for the terminal on the first type of sub-time unit.
  • the terminal can determine the first resource in the above manner, which is simple to implement and highly available.
  • determining the first resource based on the first transmission mode includes: the first transmission mode being used to indicate that the first time unit cannot be used to transmit the uplink information; determining a second time unit; wherein the second time unit includes a type of sub-time unit; determining a second type; wherein the second type is the type of sub-time unit included in the second time unit; determining a second set of resources; wherein the second set of resources is the set of resources configured by the network device for the terminal on the second type of sub-time unit; and determining the first resource based on the second set of resources.
  • the terminal can skip the first time unit and determine the first resource in the second time unit, which is simple to implement and has high availability.
  • the method further includes: receiving second indication information sent by the network device; wherein the second indication information is used to indicate a third type, the third type being the type of sub-time unit for transmitting the uplink information.
  • the terminal can determine the first transmission method based on the second indication information sent by the network device, which has high availability.
  • determining the first transmission mode includes: determining the first transmission mode based on the second indication information, wherein the first transmission mode is used to indicate that the first time unit can be used to transmit the uplink information.
  • the terminal can determine the first transmission mode to indicate that the first time unit is available for transmitting the uplink information. This improves the availability of SBFD.
  • determining the first resource based on the first transmission method includes: determining a third type of resource set; wherein the third type of resource set is a resource set configured by the network device for the terminal on the third type of sub-time unit; and determining the first resource based on the third type of resource set.
  • the terminal can determine the first resource in the above manner, which is simple to implement and highly available.
  • embodiments of this disclosure propose an information transmission method, which is executed by a network device.
  • the method includes: determining a first transmission mode, wherein the first transmission mode is used to indicate whether a first time unit can be used to transmit uplink information; wherein the first time unit includes multiple types of sub-time units; determining a first resource based on the first transmission mode; and receiving the uplink information sent by a terminal on the first resource.
  • the method further includes: not expecting to receive the uplink information sent by the terminal on the first time unit.
  • determining the first transmission mode includes: determining the first transmission mode based on a predefined mode, wherein the first transmission mode is used to indicate that the first time unit cannot be used to transmit the uplink information.
  • the first transmission mode is used to indicate that the first time unit can be used to transmit the uplink information, and the second resource is located within the first frequency domain range; or the first transmission mode is used to indicate that the first time unit cannot be used to transmit the uplink information, and the second resource is located outside the first frequency domain range; wherein, the first resource range is the resource range configured by the network device for the terminal on the first type of sub-time unit.
  • determining the first resource based on the first transmission method includes:
  • the first transmission mode is used to indicate that the first time unit can be used to transmit the uplink information, and to determine the first resource based on the first type of resource set; wherein, the first type of resource set is the resource set configured by the network device for the terminal on the first type of sub-time unit.
  • determining the first resource based on the first transmission mode includes: the first transmission mode being used to indicate that the first time unit cannot be used to transmit the uplink information; determining a second time unit; wherein the second time unit includes a type of sub-time unit; determining a second type; wherein the second type is the type of sub-time unit included in the second time unit; determining a second set of resources; wherein the second type...
  • the resource set is the set of resources that the network device configures for the terminal on the second type of sub-time unit; the first resource is determined based on the second type of resource set.
  • the method further includes: sending second indication information to the terminal; wherein the second indication information is used to indicate a third type, the third type being the type of sub-time unit for transmitting the uplink information.
  • determining the first transmission mode includes: determining the first transmission mode, and the first transmission mode is used to indicate that the first time unit can be used to transmit the uplink information.
  • determining the first resource based on the first transmission method includes: determining the first resource based on a third type of resource set; wherein the third type of resource set is a resource set configured by the network device for the terminal on the third type of sub-time unit.
  • embodiments of this disclosure provide a terminal, comprising: a processing module configured to determine a first transmission mode, the first transmission mode being used to indicate whether a first time unit is available for transmitting uplink information; wherein the first time unit includes multiple types of sub-time units; the processing module is further configured to determine a first resource based on the first transmission mode; and a sending module configured to send the uplink information to a network device on the first resource.
  • embodiments of this disclosure provide a network device, comprising: a processing module configured to determine a first transmission mode, the first transmission mode being used to indicate whether a first time unit is available for transmitting uplink information; wherein the first time unit includes multiple types of sub-time units; the processing module is further configured to determine a first resource based on the first transmission mode; and a receiving module configured to receive the uplink information sent by a terminal on the first resource.
  • embodiments of this disclosure provide a terminal comprising: one or more processors; wherein the processors are configured to execute the information transmission method described in any one of the first aspects.
  • embodiments of this disclosure provide a network device comprising: one or more processors; wherein the processors are configured to perform the information transmission method described in any one of the second aspects.
  • embodiments of this disclosure provide a communication system comprising: a terminal configured to implement the information transmission method described in any one of the first aspects; and a network device configured to implement the information transmission method described in any one of the second aspects.
  • embodiments of this disclosure provide a storage medium storing instructions that, when executed on a communication device, cause the communication device to perform the information transmission method as described in either the first or second aspect.
  • embodiments of this disclosure provide a computer program product, including a computer program that, when executed by a processor, is used to implement the information transmission method described in any one of the first or second aspects.
  • This disclosure provides an information transmission method and apparatus, and a storage medium.
  • the terms “information transmission method” and “information processing method,” “communication method,” etc. can be used interchangeably; the terms “information transmission apparatus” and “information processing apparatus,” “communication apparatus,” etc., can be used interchangeably; and the terms “information processing system,” “communication system,” etc., can be used interchangeably.
  • each step in a particular embodiment can be implemented as an independent embodiment, and the steps can be arbitrarily combined.
  • a solution after removing some steps in a particular embodiment can also be implemented as an independent embodiment, and the order of the steps in a particular embodiment can be arbitrarily interchanged.
  • the optional implementation methods in a particular embodiment can be arbitrarily combined; moreover, the embodiments can be arbitrarily combined, for example, some or all steps of different embodiments can be arbitrarily combined, and a particular embodiment can be arbitrarily combined with the optional implementation methods of other embodiments.
  • multiple refers to two or more.
  • the terms “at least one of”, “one or more”, “a plurality of”, “multiple”, etc., may be used interchangeably.
  • the description format, such as “responding to one condition A, responding to another condition B,” may include the following technical solutions depending on the situation: in some embodiments, A (execute A regardless of B); in some embodiments, B (execute B regardless of A); in some embodiments, execution is selected from A and B (A and B are selectively executed); in some embodiments, both A and B are executed. The same applies when there are more branches such as A, B, and C.
  • the notation "A or B” may include the following technical solutions, depending on the situation: in some embodiments, A (execution of A regardless of B); in some embodiments, B (execution of B regardless of A); in some embodiments, execution is selected from A and B (A and B are selectively executed). The same applies when there are more branches such as A, B, C, etc.
  • the descriptive object is a "field,” the ordinal numbers preceding "field” in “first field” and “second field” do not restrict the position or order of the "fields.” "First” and “second” do not restrict whether the "fields” they modify are in the same message, nor do they restrict the order of "first field” and “second field.”
  • the descriptive object is a "level,” the ordinal numbers preceding "level” in “first level” and “second level” do not restrict the priority between “levels.”
  • the number of descriptive objects is not limited by ordinal numbers and can be one or more. For example, in “first device,” the number of "devices" can be one or more.
  • the objects modified by different prefixes can be the same or different.
  • first device and second device can be the same device or different devices, and their types can be the same or different.
  • first information and second information can be the same information or different information, and their content can be the same or different.
  • “including A,” “containing A,” “for indicating A,” and “carrying A” can be interpreted as directly carrying A or indirectly indicating A.
  • the apparatus and device may be interpreted as physical or virtual, and their names are not limited to those described in the embodiments. In some cases, they may also be understood as “equipment”, “device”, “circuit”, “network element”, “node”, “function”, “unit”, “section”, “system”, “network”, “entity”, “body”, etc.
  • network can be interpreted as devices included in the network, such as access network devices, core network devices, etc.
  • access network device may also be referred to as “radio access network device (RAN device),” “base station (BS),” “radio base station,” or “fixed station.” In some embodiments, it may also be understood as “node,” “access point,” “transmission point (TP),” “reception point (RP),” or “transmit and/or receive point.” Terms such as “transmission/reception point (TRP)", “panel”, “antenna panel”, “antenna array”, “cell”, “macro cell”, “small cell”, “femto cell”, “pico cell”, “sector”, “cell group”, “serving cell”, “carrier”, “component carrier”, and “bandwidth part (BWP)” are also used.
  • RAN device radio access network device
  • BS base station
  • RP radio base station
  • BWP bandwidth width part
  • the acquisition of data, information, etc. may comply with the laws and regulations of the country where the location is situated.
  • data, information, etc. may be obtained with the user's consent.
  • each element, each row, or each column in the table of this disclosure can be implemented as an independent embodiment, and any combination of any element, any row, or any column can also be implemented as an independent embodiment.
  • Figure 1 is a schematic diagram of the architecture of a communication system according to an embodiment of the present disclosure.
  • the communication system 100 includes a terminal 101 and a network device 102.
  • terminal 101 includes, for example, at least one of the following: mobile phone, wearable device, Internet of Things device, car with communication function, smart car, tablet computer, computer with wireless transceiver function, virtual reality (VR) terminal device, augmented reality (AR) terminal device, wireless terminal device in industrial control, wireless terminal device in self-driving, wireless terminal device in remote medical surgery, wireless terminal device in smart grid, wireless terminal device in transportation safety, wireless terminal device in smart city, and wireless terminal device in smart home, but is not limited thereto.
  • VR virtual reality
  • AR augmented reality
  • network device 102 may include, but is not limited to, at least one of access network device 102-1 and core network device 102-2.
  • the access network device 102-1 described above is, for example, a node or device that connects a terminal to a wireless network.
  • the access network device may include, in a 5G communication system, an evolved Node B (eNB), a next-generation eNB (ng-eNB), a next-generation Node B (gNB), a node B (NB), a home node B (HNB), a home evolved node B (HeNB), and a wireless backhaul device.
  • eNB evolved Node B
  • ng-eNB next-generation Node B
  • gNB next-generation Node B
  • NB node B
  • HNB home node B
  • HeNB home evolved node B
  • the device is at least one of, but not limited to, a radio network controller (RNC), a base station controller (BSC), a base transceiver station (BTS), a base band unit (BBU), a mobile switching center, a base station in a 6G communication system, an open RAN, a cloud RAN, a base station in other communication systems, and an access node in a Wi-Fi system.
  • RNC radio network controller
  • BSC base station controller
  • BTS base transceiver station
  • BBU base band unit
  • the access network device 102-1 described above may be composed of a central unit (CU) and a distributed unit (DU).
  • the CU may also be called a control unit.
  • the protocol layer of the access network device can be separated. Some of the protocol layer functions are centrally controlled by the CU, while the remaining part or all of the protocol layer functions are distributed in the DU, which is centrally controlled by the CU. However, this is not the only possibility.
  • the core network device 102-2 described above can be a single device, including one or more network elements, or it can be multiple devices or a group of devices.
  • Network elements can be virtual or physical.
  • the core network includes, for example, at least one of the following: Evolved Packet Core (EPC), 5G Core Network (5GCN), and Next Generation Core (NGC).
  • EPC Evolved Packet Core
  • 5GCN 5G Core Network
  • NGC Next Generation Core
  • the technical solutions of this disclosure can be applied to the Open RAN architecture.
  • the interfaces between or within access network devices involved in the embodiments of this disclosure can be transformed into internal interfaces of Open RAN.
  • the processes and information interactions between these internal interfaces can be implemented by software or programs.
  • terminal 101 is connected to core network device 102-2 via access network device 102-1.
  • the following embodiments of this disclosure can be applied to the communication system 100 shown in FIG1, or to some of the main bodies, but are not limited thereto.
  • the main bodies shown in FIG1 are illustrative.
  • the communication system may include all or some of the main bodies in FIG1, or may include other main bodies outside of FIG1.
  • the number and form of each main body are arbitrary.
  • Each main body may be physical or virtual.
  • the connection relationship between the main bodies is illustrative.
  • the main bodies may not be connected or may be connected.
  • the connection can be in any way, it can be a direct connection or an indirect connection, it can be a wired connection or a wireless connection.
  • LTE Long Term Evolution
  • LTE-A LTE-Advanced
  • LTE-B LTE-Beyond
  • SUPER 3G IMT-Advanced
  • 4G 4th generation mobile communication system
  • 5G 5th generation mobile communication system
  • 5G New Radio NR
  • 6th generation mobile communication system 6G
  • Future Radio Access FAA
  • RA New-Radio Access Technology
  • LTE Long Term Evolution
  • NR New Radio
  • NX New Radio Access
  • FX Future Generation Radio Access
  • GSM Global System for Mobile Communications
  • CDMA2000 Ultra Mobile Broadband
  • UMB Ultra Mobile Broadband
  • IEEE 802.11 Wi-Fi
  • IEEE 802.16 WiMAX
  • IEEE 802.20 Ultra-Wideband
  • Bluetooth Public Land Mobile Network
  • PLMN Public Land Mobile Network
  • network devices can simultaneously receive and transmit data within a single time unit, such as a single time slot.
  • a single time unit such as a single time slot.
  • network devices such as base stations, can configure a set of time-frequency domain resources for the PUCCH using Radio Resource Control signaling (RRC signaling).
  • RRC signaling Radio Resource Control signaling
  • the base station can instruct the terminal to transmit a PUCCH on a PUCCH resource contained in the resource set corresponding to the slot, for example, through downlink control information (DCI) or RRC signaling.
  • This PUCCH resource is located within the UL portion bandwidth (BWP).
  • a full-duplex terminal For a full-duplex terminal, it can transmit uplink within the UL subband in the downlink (DL) slot.
  • DL downlink
  • network devices such as base stations
  • PUCCH configuration (PUCCH-Config).
  • the terminal determines the set of resources available for PUCCH transmission within each UL BWP through the configuration signaling described above. Furthermore, the base station can use dynamic signaling such as DCI or RRC signaling to indicate the time-frequency resource location occupied by the terminal for PUCCH transmission within the UL slot or flexible slot.
  • dynamic signaling such as DCI or RRC signaling
  • PUCCH can be transmitted within the active UL BWP, meaning that for an SBFD terminal, it can only send the PUCCH on the PUCCH resource of the UL symbol or flexible symbol, this will cause HARQ-ACK feedback information to be transmitted in a timely manner, thus limiting the latency gain of SBFD technology.
  • base station scheduling must avoid scheduling the PUCCH resources of SBFD terminals on DL slots, thereby increasing scheduling complexity.
  • the terminal cannot utilize the UL subband for repeated PUCCH transmissions, thus affecting PUCCH reliability and transmission latency.
  • This disclosure provides the following information transmission methods, apparatus, and storage media.
  • Figure 2A is an interactive schematic diagram of an information transmission method according to an embodiment of the present disclosure. As shown in Figure 2A, the present disclosure relates to an information transmission method, which includes:
  • step S2101 terminal 101 determines the first transmission mode.
  • the first transmission mode can be used to indicate whether the first time unit is available for transmitting uplink information.
  • the first time unit may be a frame, sub-frame, slot, sub-slot, etc.
  • a sub-slot may include one symbol or multiple consecutive symbols belonging to the same time slot.
  • the first time unit may include multiple types of sub-time units.
  • a sub-time unit can be a subframe, slot, sub-slot, symbol, etc.
  • the first time unit may include at least two types of sub-time units, one of which may be an SBFD sub-time unit and the other may be a non-SBFD sub-time unit.
  • an SBFD sub-time unit refers to an uplink sub-time unit, downlink sub-time unit, or flexible sub-time unit configured with a UL subband and/or a DL subband.
  • a non-SBFD sub-time unit refers to an uplink sub-time unit, downlink sub-time unit, or flexible sub-time unit that is not configured with a UL subband and/or a DL subband.
  • sub-time units can be based on slots.
  • Non-SBFD sub-time units can include slot#n, slot#(n+4).
  • SBFD sub-time units can include slot#(n+1), slot#(n+2), and slot#(n+3).
  • uplink information may include, but is not limited to, uplink control information (UCI) carried by the PUCCH.
  • UCI uplink control information
  • uplink information may also include other uplink information, such as Physical Uplink Shared Channel (PUSCH), Sounding Reference Signal (SRS), etc.
  • PUSCH Physical Uplink Shared Channel
  • SRS Sounding Reference Signal
  • the network device 102 has configured uplink time-frequency domain resources for the terminal 101 for the above-mentioned various types of sub-time units through system messages such as SIB1 or RRC signaling.
  • network device 102 configures uplink resource set #1 corresponding to SBFD sub-time unit and uplink resource set #2 corresponding to non-SBFD sub-time unit for terminal 101.
  • uplink information may refer to uplink information where network device 102 pre-configures uplink resource sets corresponding to various types of sub-time units via semi-static signaling, and then indicates specific uplink resource indexes via DCI or RRC signaling.
  • terminal 101 may determine the first transmission method based on a predefined method, such as a protocol agreement.
  • a predefined method such as a protocol agreement.
  • Specific implementation methods may include any of the following:
  • terminal 101 does not expect to send the uplink information to network device 102 in the aforementioned first time unit.
  • network device 102 can ensure that terminal 101 does not transmit uplink information in the first time unit by scheduling.
  • terminal 101 does not expect to transmit uplink information in a time slot that simultaneously includes SBFD symbols and non-SBFD symbols.
  • terminal 101 can determine that the first transmission method is used to indicate that the first time unit cannot be used to transmit the uplink information.
  • Method 2 Terminal 101 skips the first time unit.
  • terminal 101 can skip the first time unit and transmit uplink information in other time units.
  • terminal 101 can determine that the first transmission method is used to indicate that the first time unit cannot be used to transmit the uplink information.
  • terminal 101 may also determine a first transmission mode based on a predefined method, and the first transmission mode is used to indicate that a first time unit can be used to transmit the uplink information.
  • step S2102 terminal 101 determines the first resource.
  • terminal 101 determines a first resource based on a first transmission method.
  • the first transmission mode is used to indicate that the first time unit is not available for transmitting the uplink information. Accordingly, the terminal 101 may determine the first resource in the following manner:
  • Terminal 101 determines a second time unit.
  • the second time unit may include a type of sub-time unit.
  • the second time unit may include the SBFD sub-time unit.
  • the second time unit may include a non-SBFD sub-time unit.
  • terminal 101 determines the second time unit for transmitting uplink information based on the scheduling of network device 102.
  • terminal 101 can determine whether the second time unit is located before or after the first time unit based on a predefined method.
  • the uplink timing refers to the period during which terminal 101 parses downlink signaling and prepares for uplink transmission. During the uplink timing period, terminal 101 does not send uplink information or uplink signaling.
  • the second time unit will also necessarily meet the uplink timing.
  • the second time unit is located before the first time unit, it should be ensured that the second time unit meets the uplink timing agreed upon in the protocol.
  • terminal 101 can determine a second type, which can be the type of the sub-time units included in the second time unit.
  • the second time unit includes an SBFD sub-time unit
  • the second type is SBFD.
  • the second time unit includes a non-SBFD sub-time unit
  • the second type is non-SBFD.
  • terminal 101 can determine a second type of resource set.
  • This second type of resource set is the resource set configured by network device 102 for terminal 101 on the second type of sub-time unit.
  • network device 102 configures uplink resource set #1 corresponding to SBFD sub-time unit and uplink resource set #2 corresponding to non-SBFD sub-time unit for terminal 101. If the second type is SBFD, then the second type of resource set is uplink resource set #1 corresponding to SBFD sub-time unit. If the second type is non-SBFD, then the second type of resource set is uplink resource set #2 corresponding to non-SBFD sub-time unit.
  • Terminal 101 can receive index indication information sent by network device 102 via DCI or RRC signaling, and determine the first resource based on the resource index indicated by the index indication information in the second type of resource set.
  • the terminal 101 will determine the uplink resource #1 in the uplink resource set #1 as the first resource in the second time unit (which only includes the SBFD sub-time unit).
  • the first transmission mode is used to indicate that the first time unit can be used to transmit the uplink information, and the first terminal 101 can determine the first resource based on the scheduling of the network device 102 or based on a predefined method.
  • network device 102 can directly indicate the type of sub-time unit used for transmitting uplink information within the first time unit.
  • network device 102 may indicate that the sub-time unit type used for transmitting uplink information in the first time unit is SBFD, and terminal 101 determines the first resource based on the second type of resource set corresponding to the SBFD sub-time unit in the first time unit.
  • network device 102 may indicate that the sub-time unit type used for transmitting uplink information in the first time unit is non-SBFD, and terminal 101 determines the first resource based on the second type of resource set corresponding to the non-SBFD sub-time unit in the first time unit.
  • terminal 101 can determine the type of sub-time unit used for transmitting uplink information within the first time unit based on a predefined method.
  • terminal 101 can determine that the sub-time unit type used for transmitting uplink information in the first time unit is SBFD, and terminal 101 determines the first resource based on the second type of resource set corresponding to the SBFD sub-time unit in the first time unit.
  • terminal 101 can determine that the sub-time unit type used for transmitting uplink information in the first time unit is non-SBFD. In the first time unit, terminal 101 determines the first resource based on the second type of resource set corresponding to the non-SBFD sub-time unit.
  • terminal 101 can determine which type of sub-time unit has more sub-time units in the first time unit. Assuming that the number of SBFD sub-time units is more, terminal 101 determines the first resource in the first time unit based on the second type of resource set corresponding to the SBFD sub-time units.
  • step S2103 network device 102 determines the first transmission mode.
  • network device 102 may determine a first transmission mode based on a predefined method.
  • network device 102 may determine a first transmission mode based on mode 1 or mode 2 described above, and the first transmission mode is used to indicate that a first time unit cannot be used to transmit uplink information. The specific determination method will not be described in detail here.
  • step S2104 network device 102 determines the first resource.
  • network device 102 may first determine a second time unit, and then determine a second type and a second set of resources. Further, network device 102 may determine a first resource from the second set of resources and send resource indication information to terminal 101, sending the resource index of the selected first resource to terminal 101.
  • the specific method of determining the first resource is similar to the method of terminal 101 determining the first resource, and will not be described again here.
  • step S2105 terminal 101 sends the uplink information to network device 102 on the first resource.
  • network device 102 receives uplink information on a first resource.
  • the names of information, etc. are not limited to the names described in the embodiments.
  • Terms such as “information”, “message”, “signal”, “signaling”, “report”, “configuration”, “indication”, “instruction”, “command”, “channel”, “parameter”, “domain”, “field”, “symbol”, “symbol”, “codebook”, “codeword”, “codepoint”, “bit”, “data”, “program”, and “chip” can be used interchangeably.
  • “get,” “obtain,” “receive,” “transmit,” “bidirectional transmission,” and “send and/or receive” can be used interchangeably and can be interpreted as receiving from other entities, obtaining from protocols, obtaining from higher layers, obtaining through self-processing, or autonomous implementation, among other meanings.
  • terms such as “certain,” “preset,” “default,” “set,” “indicated,” “a certain,” “any,” and “first” can be used interchangeably.
  • “Certain A,” “preset A,” “default A,” “set A,” “indicated A,” “a certain A,” “any A,” and “first A” can be interpreted as A pre-defined in a protocol or the like, or as A obtained through setting, configuration, or instruction, or as specific A, a certain A, any A, or first A, but are not limited thereto.
  • the information transmission method involved in this disclosure may include at least one of steps S2101 to S2105.
  • step S2101 may be implemented as an independent embodiment
  • step S2102 may be implemented as an independent embodiment
  • step S2101+S2102 may be implemented as an independent embodiment
  • step S2103 may be implemented as an independent embodiment
  • step S2104 may be implemented as an independent embodiment
  • step S2103+S2104 may be implemented as an independent embodiment
  • steps S2101 to S2104 may be implemented as independent embodiments
  • step S2105 may be implemented as an independent embodiment
  • steps S2101 to S2105 may be implemented as independent embodiments, but are not limited thereto.
  • step S2101 is optional, and one or more of these steps may be omitted or substituted in different embodiments. For example, if terminal 101 determines the first transmission mode in another way, step S2101 may not be executed.
  • step S2102 is optional, and one or more of these steps may be omitted or substituted in different embodiments.
  • step S2102 may not be executed when the first resource is determined by another execution entity and sent to terminal 101.
  • step S2103 is optional, and one or more of these steps may be omitted or substituted in different embodiments. For example, when network device 102 determines the first transmission mode based on other methods, step S2103 may not be performed.
  • step S2104 is optional, and one or more of these steps may be omitted or substituted in different embodiments. For example, when network device 102 obtains a first resource indicated by another execution entity, step S2104 may be omitted. Do not execute.
  • step S2105 is optional, and one or more of these steps may be omitted or substituted in different embodiments. For example, when terminal 101 and network device 102 perform downlink transmission, step S2105 may not be performed.
  • steps S2101 to S2105 are optional, and one or more of these steps may be omitted or substituted in different embodiments.
  • the execution order of steps S2101 to S2105 is not limited.
  • the terminal and network device can determine the first transmission mode, i.e. whether the first time unit can be used for uplink information transmission, based on a predefined method. This clarifies the behavior of the terminal in the first time unit, which includes multiple types of sub-times, and improves the availability and reliability of SBFD.
  • Figure 2B is an interactive schematic diagram of an information transmission method according to an embodiment of the present disclosure. As shown in Figure 2B, the present disclosure relates to an information transmission method, which includes:
  • step S2201 network device 102 sends a first instruction message or a second instruction message to terminal 101.
  • the first indication information may be used to indicate the index of the second resource.
  • terminal 101 may determine the index of a second resource for transmitting uplink information based on first indication information.
  • the second indication information may be used for a third type, which is the type of sub-time unit that transmits the uplink information.
  • the third type can be either SBFD or non-SBFD.
  • the second indication information can be used to indicate SBFD, then terminal 101 determines to perform uplink transmission on the SBFD sub-time unit within the first time unit.
  • the second indication information can be used to indicate non-SBFD, then terminal 101 determines to perform uplink transmission on the non-SBFD sub-time unit within the first time unit.
  • network device 102 may send a first indication message or a second indication message to terminal 101 via, but not limited to, DCI or RRC signaling.
  • terminal 101 receives first instruction information or second instruction information.
  • step S2202 terminal 101 determines the first transmission mode.
  • the first transmission mode can be used to indicate whether the first time unit is available for transmitting uplink information.
  • terminal 101 determines a first transmission method based on first indication information. Specifically, this may include the following methods:
  • Method 3 Determine the first transmission method based on whether the second resource is within the range of the first resource.
  • terminal 101 can determine whether a second resource is within a first resource range, wherein the first resource range is the resource range configured by network device 102 for terminal 101 on a first type of sub-time unit.
  • terminal 101 can first determine whether the second resource is within the resource range corresponding to the SBFD sub-time unit, that is, the first type can be SBFD at this time.
  • the first resource range may include the time domain range corresponding to the SBFD sub-time unit and the frequency domain range occupied by the uplink sub-band.
  • the starting sub-time unit of the second resource is located within the SBFD sub-time unit, and/or whether the starting resource block (RB) of the second resource is located within the frequency domain resource range occupied by the uplink sub-band. If the starting sub-time unit is located outside the SBFD sub-time unit, and/or the starting RB of the second resource is located outside the frequency domain resource range occupied by the uplink sub-band, it can be determined that the second resource is located outside the first resource range corresponding to the SBFD sub-time unit.
  • the sub-time unit included in the second resource is located within the SBFD sub-time unit, and the RB of the second resource is located within the frequency domain resource range occupied by the uplink subband, then it can be determined that the second resource is located within the resource range corresponding to the SBFD sub-time unit. At this time, it can be determined that the first transmission mode is that the first time unit can be used to transmit uplink information.
  • the second resource is outside the resource range corresponding to the SBFD sub-time unit, it can be determined whether the second resource is within the resource range corresponding to the non-SBFD sub-time unit.
  • the first type is non-SBFD.
  • the first resource range may include the time domain range corresponding to the non-SBFD sub-time unit and the frequency domain range occupied by the uplink BWP.
  • the sub-time unit included in the second resource is located within the non-SBFD sub-time unit, and the RB of the second resource is located within the frequency domain resource range occupied by the uplink BWP, then it can be determined that the second resource is located within the resource range corresponding to the non-SBFD sub-time unit. In this case, it can be determined that the first transmission mode is that the first time unit can be used to transmit uplink information.
  • the sub-time unit included in the second resource is located outside the non-SBFD sub-time unit, and/or the RB of the second resource is located outside the frequency domain resource range occupied by the uplink BWP, then it can be determined that the second resource is located outside the resource range corresponding to the non-SBFD sub-time unit. In this case, it can be determined that the first transmission mode is that the first time unit cannot be used to transmit uplink information.
  • terminal 101 can first determine whether the second resource is located in Within the resource range corresponding to the non-SBFD sub-time unit, that is, the first type can be SBFD at this time.
  • the second resource is located within the resource range corresponding to the non-SBFD sub-time unit, then it can be determined that the first transmission mode is that the first time unit can be used to transmit uplink information.
  • the second resource is outside the resource range corresponding to the SBFD sub-time unit, it can be determined whether the second resource is within the resource range corresponding to the SBFD sub-time unit, in which case the first type is SBFD.
  • the first resource range may include the time domain range corresponding to the SBFD sub-time unit and the frequency domain range occupied by the uplink sub-band.
  • the second resource is located within the resource range corresponding to the SBFD sub-time unit, then it can be determined that the first transmission mode is that the first time unit can be used to transmit uplink information.
  • the second resource is outside the resource range corresponding to the SBFD sub-time unit, it can be determined that the first transmission mode is that the first time unit cannot be used to transmit uplink information.
  • terminal 101 determines a first transmission method based on second indication information. Specifically, this may include the following methods:
  • Method 4 Determine that the first transmission method is used to indicate that the first time unit can be used to transmit uplink information.
  • the second indication information indicates the type of sub-time unit for transmitting the uplink information.
  • the network device 102 expects the terminal 101 to transmit uplink information in the first time unit, so the first transmission mode can be directly determined to indicate that the first time unit can be used to transmit uplink information.
  • step S2203 terminal 101 determines the first resource.
  • the terminal 101 may determine the first resource in the following manner:
  • network device 102 sends a first indication message, and terminal 101 determines the second resource indicated by the first indication message as the first resource.
  • network device 102 sends a second indication message indicating a third type, namely the sub-time unit type for uplink information transmission by terminal 101.
  • Terminal 101 can determine a third type of resource set, which is the resource set configured by the network device for the terminal on the sub-time unit of the third type.
  • a first resource can be determined based on the third type of resource set.
  • network device 102 indicates a resource index via DCI or RRC signaling, and terminal 101 determines the first resource in the third type of resource set based on the resource index.
  • the terminal 101 when the first transmission mode is used to indicate that the first time unit is not available for transmitting uplink information, the terminal 101 can first determine the second time unit, then determine the second type, and determine the second type of resource set. Based on the second type of resource set, the first resource is determined.
  • step S2204 network device 102 determines the first transmission mode.
  • network device 102 may first determine a first transmission mode. If the first transmission mode is a first time unit that can be used to transmit uplink information, then a first indication information is sent to terminal 101, and the second resource indicated by the first indication information is within the range of the first resource.
  • the first transmission mode is that the first time unit cannot be used to transmit uplink information
  • a first indication message is sent to the terminal 101, and the second resource indicated by the first indication message is outside the range of the first resource.
  • step S2204 can be performed before step S2201.
  • network device 102 may determine a first transmission mode, which is used to indicate that a first time unit can be used to transmit uplink information. Further, network device 102 may determine a third type, namely, a sub-time unit type for transmitting uplink information within the first time unit. Further, network device 102 sends second indication information to terminal 101, the second indication information indicating the third type.
  • step S2204 can be performed before step S2201.
  • step S2205 network device 102 determines the first resource.
  • network device 102 determines that the first transmission mode is used to indicate that the first time unit can be used to transmit uplink information, and directly determines the second resource as the first resource.
  • step S2201 can be executed after step S2205, that is, after network device 102 determines the second resource, it sends the first indication information to terminal 101.
  • network device 102 determines that the first transmission mode is used to indicate that the first time unit cannot be used to transmit uplink information, and sends a first indication message to terminal 101. Network device 102 can then determine the first resource in the second time unit. The method for determining the second time unit and the first resource will not be described in detail here. In this case, the execution order of steps S2201 and S2205 is not limited.
  • network device 102 determines that the first transmission mode is used to indicate that the first time unit is available for transmitting uplink information, and sends second indication information to terminal 101, the second indication information being used to indicate the third type.
  • step S2201 the execution order of step S2205 is not limited.
  • network device 102 determines a first resource in a third type of resource set, which is a resource set configured by the network device for the terminal on the third type of sub-time unit. Furthermore, network device 102 indicates a resource index to terminal 101 via DCI or RRC signaling, so that terminal 101 determines the first resource in the third type of resource set based on the resource index.
  • step S2206 terminal 101 sends the uplink information to network device 102 on the first resource.
  • steps S2201 to S2206 are optional, and one or more of these steps may be omitted or substituted in different embodiments.
  • the execution order of steps S2201 to S2206 is not limited.
  • the terminal can determine the first transmission mode, i.e. whether the first time unit can be used for uplink information transmission, based on the indication information sent by the network device. This clarifies the terminal's behavior in the first time unit, which includes multiple types of sub-times, and improves the availability and reliability of SBFD.
  • Figure 3A is an interactive schematic diagram of an information transmission method according to an embodiment of the present disclosure. As shown in Figure 3A, the present disclosure relates to an information transmission method, which can be executed by a terminal 101, and the method includes:
  • Step S3101 Determine the first transmission method.
  • step S3101 can be found in optional implementations of step S2101 in FIG2A and other related parts in the embodiments involved in FIG2A, which will not be repeated here.
  • step S3101 can be found in optional implementations of step S2202 in FIG2B and other related parts in the embodiments involved in FIG2B, which will not be repeated here.
  • Step S3102 Determine the first resource.
  • step S3102 can be found in optional implementations of step S2102 in FIG2A and other related parts in the embodiments involved in FIG2A, which will not be repeated here.
  • step S3102 can be found in optional implementations of step S2203 in FIG2B and other related parts in the embodiments involved in FIG2B, which will not be repeated here.
  • Step S3103 Send uplink information.
  • terminal 101 sends uplink information to network device 102.
  • step S3103 can be found in optional implementations of step S2105 in FIG2A and other related parts in the embodiments involved in FIG2A, which will not be repeated here.
  • step S3103 can be found in optional implementations of step S2206 in FIG2B and other related parts in the embodiments involved in FIG2B, which will not be repeated here.
  • steps S3101 to S3103 are optional, and one or more of these steps may be omitted or substituted in different embodiments.
  • the execution order of steps S3101 to S3103 is not limited.
  • the terminal can determine whether the first time unit can be used for uplink information transmission, clarify the terminal's behavior on the first time unit that includes multiple types of sub-times, and improve the availability and reliability of SBFD.
  • Figure 3B is an interactive schematic diagram of an information transmission method according to an embodiment of the present disclosure. As shown in Figure 3B, the present disclosure relates to an information transmission method, which can be executed by a network device 102, and the method includes:
  • Step S3201 Determine the first transmission method.
  • step S3201 can be found in optional implementations of step S2103 in FIG2A and other related parts in the embodiments involved in FIG2A, which will not be repeated here.
  • step S3201 can be found in optional implementations of step S2204 in FIG2B and other related parts in the embodiments involved in FIG2B, which will not be repeated here.
  • Step S3202 Determine the first resource.
  • step S3202 can be found in optional implementations of step S2104 in FIG2A and other related parts in the embodiments involved in FIG2A, which will not be repeated here.
  • step S3202 can be found in optional implementations of step S2205 in FIG2B and other related parts in the embodiments involved in FIG2B, which will not be repeated here.
  • Step S3203 Obtain uplink information.
  • network device 102 may obtain the uplink information from terminal 101, but is not limited thereto, and may also receive uplink information sent by other entities.
  • network device 102 acquires uplink information determined according to predefined rules.
  • network device 102 processes the information to obtain the uplink information.
  • step S3203 is omitted, and the network device 102 autonomously implements the function indicated by the uplink information, or the network... Network device 102 obtains uplink information based on predefined rules or protocol agreements, or the above functions are set to default.
  • step S3203 can be found in optional implementations of step S2105 in FIG2A and other related parts in the embodiments involved in FIG2A, which will not be repeated here.
  • step S3203 can be found in optional implementations of step S2206 in FIG2B and other related parts in the embodiments involved in FIG2B, which will not be repeated here.
  • steps S3201 to S3203 are optional, and one or more of these steps may be omitted or substituted in different embodiments.
  • the execution order of steps S3201 to S3203 is not limited.
  • the network device can determine whether the first time unit can be used for uplink information transmission, thereby improving scheduling reliability and the availability and reliability of SBFD.
  • the unit of the first time unit is slot
  • the unit of the sub-time unit is symbol
  • the uplink information is UCI carried by PUCCH as an example for illustration.
  • the PUCCH resource can be determined if the slot for transmitting the PUCCH contains both SBFD and non-SBFD symbols.
  • a network device such as a base station, configures PUCCH resources for the terminal for SBFD symbols and PUCCH resources for non-SBFD symbols, respectively.
  • the terminal can determine how to transmit the PUCCH based on instructions from the base station or a predefined method.
  • the base station configures PUCCH resources for the terminal separately for SBFD symbols and for non-SBFD symbols.
  • the terminal determines how to transmit the PUCCH within the slot based on instructions from the base station or a predefined method.
  • the slot actually used for transmitting the UCI can be an SBFD slot or a non-SBFD slot; this patent does not impose any restrictions.
  • Method 2 The terminal determines the PUCCH resource based on the PUCCH resource indicated by the base station, that is, the starting symbol index and the starting RB index of the PUCCH resource.
  • the PUCCH resource indicated by the PUCCH resource identifier (ID) indicated by the base station is entirely within the UL subband range, then the PUCCH resource is selected from the PUCCH resource set corresponding to the SBFD symbol; if the PUCCH resource indicated by the PUCCH resource ID indicated by the base station is not entirely within the UL subband range, but is within the non-SBFD symbol, then the PUCCH resource is selected from the PUCCH resource set corresponding to the non-SBFD symbol; if the PUCCH resource indicated by the PUCCH resource ID indicated by the base station is neither entirely within the non-SBFD symbol nor entirely within the SBFD symbol in the slot, then the slot is considered unsuitable for transmitting the PUCCH.
  • Method 3 The terminal determines, based on the instruction information, whether to send PUCCH on the SBFD symbol in this slot or on the non-SBFD symbol in this slot.
  • the indication information is configured via RRC signaling or carried via DCI.
  • the terminal determines to send PUCCH on the SBFD symbol within this slot, that is, the terminal determines the PUCCH resource in the PUCCH resource set corresponding to the SBFD symbol according to the PUCCH resource ID indicated by the base station; the terminal also determines to send PUCCH on the non-SBFD symbol within this slot, that is, the terminal determines the PUCCH resource in the PUCCH resource set corresponding to the non-SBFD symbol according to the PUCCH resource ID indicated by the base station.
  • Method 4 The terminal does not expect to transmit PUCCH in a slot that contains both SBFD symbol and non-SBFD symbol.
  • the base station configures PUCCH resources for the terminal separately for SBFD symbols and for non-SBFD symbols.
  • the base station determines how the terminal transmits the PUCCH using indication information or a predefined method.
  • Method 1 The base station receives the UCI on the nearest available slot after the current slot or on the nearest available slot before the current slot.
  • Method 2 The base station determines, based on the PUCCH resource allocated to each terminal for transmitting the UCI, whether it detects and receives PUCCH on the PUCCH resource corresponding to the SBFD symbol or on the PUCCH resource corresponding to the non-SBFD symbol.
  • Method 3 The base station instructs the terminal to send PUCCH on the SBFD symbol in this slot or on the non-SBFD symbol in this slot.
  • Method 4 The base station does not expect to receive PUCCH in a slot that simultaneously contains both SBFD and non-SBFD symbols. The detailed method is as described on the terminal side and will not be repeated here.
  • Example 1 assumes the terminal is version 19 (Release-19, Rel-19) or later, possessing half-duplex or full-duplex capabilities; this patent makes no limitation on this. It is assumed the base station performs full-duplex operation on semi-static DL symbols of Time Division Duplexing (TDD) or on DL symbols indicated by the Slot Format Indicator (SFI), i.e., simultaneously scheduling downlink and uplink data. It should be noted that the base station can also perform full-duplex operation on semi-static UL symbols in the TDD band or on UL symbols indicated by the SFI, i.e., simultaneously scheduling downlink and uplink data.
  • TDD Time Division Duplexing
  • SFI Slot Format Indicator
  • the base station can also perform full-duplex operation on semi-static UL symbols in the TDD band or on UL symbols indicated by the SFI, i.e., simultaneously scheduling downlink and uplink data.
  • the semi-static flexible symbol is determined by the time-division duplex uplink/downlink common configuration (tdd-UL-DL-ConfigurationCommon) sent by the base station, or by tdd-UL-DL-ConfigurationCommon and time-division duplex uplink/downlink dedicated configuration (tdd-UL-DL-ConfigurationDedicated).
  • tdd-UL-DL-ConfigurationCommon time-division duplex uplink/downlink dedicated configuration
  • tdd-UL-DL-ConfigurationDedicated time-division duplex uplink/downlink dedicated configuration
  • the base station configures either a UL subband or a DL subband for the terminal.
  • the terminal can only perform uplink transmission; within the DL subband, the terminal can only perform downlink reception.
  • the base station performs data channel scheduling or indicates reference signals within the UL subband or DL subband.
  • the terminal can also perform full-duplex operation on semi-static flexible symbol or dynamic flexible symbol, and this patent does not impose any restrictions.
  • the time slot structure configured by the base station through TDD UL-DL configuration is DDDFU, that is, within the TDD configuration period, the first 4 slots are DL slots, and the last slot is a flexible slot.
  • the method of this embodiment can also be directly applied to other TDD UL DL time slot structures.
  • the full-duplex terminal can transmit uplink within the SBFD slot.
  • the SBFD slot is configured with either a UL subband or a DL subband; in this embodiment, it is assumed that the SBFD slot is a DL slot configured with a UL subband.
  • the relationship between the active DL BWP and the UL subband within the SBFD slot is shown in Figure 4B.
  • the resources occupied by the UL subband may be entirely contained within the DL BWP, or not entirely contained within the DL BWP, or not contained at all; this embodiment does not impose any limitations.
  • the base station configures PUCCH configurations for SBFD symbols and PUCCH configurations for SBFD symbols separately for terminals supporting SBFD.
  • the PUCCH configurations provide a set of available resources for PUCCH transmission on specific symbol types.
  • the base station instructs the terminal to transmit PUCCH in a slot that simultaneously contains both SBFD and non-SBFD symbols.
  • the instruction information may be RRC signaling or DCI; this embodiment does not impose any restrictions.
  • the terminal does not transmit PUCCH in the slot that simultaneously contains both SBFD and non-SBFD symbols.
  • the terminal transmits the UCI on the nearest available slot after the current slot or on the nearest available slot before the current slot.
  • the PUCCH resource for transmitting the UCI on the preceding or following slot is determined based on the aforementioned base station indication information.
  • the slot actually used for transmitting the UCI, determined according to the method, is either an SBFD slot or a non-SBFD slot; this patent does not impose any restrictions.
  • the terminal transmits UCI on the nearest available slot preceding the slot, it must satisfy the uplink timing defined in the protocol.
  • the base station receives the PUCCH in accordance with the indicated PUCCH resource detection on the slot where the aforementioned terminal actually sends the PUCCH.
  • Example 2 assumes the terminal is a Rel-19 or later version terminal, with half-duplex or full-duplex capability; this patent does not impose any limitations. It is assumed the base station performs full-duplex operation on the semi-static DL symbol in the TDD band or on the DL symbol indicated by SFI, i.e., simultaneously scheduling downlink and uplink data. It should be noted that the base station can also perform full-duplex operation on the semi-static UL symbol in the TDD band or on the UL symbol indicated by SFI, i.e., simultaneously scheduling downlink and uplink data.
  • the semi-static flexible symbol is determined by the tdd-UL-DL-ConfigurationCommon sent by the base station or by tdd-UL-DL-ConfigurationCommon and tdd-UL-DL-ConfigurationDedicated.
  • the base station indicates the transmission direction of the terminal on the DL symbol in the following two ways:
  • the base station configures either a UL subband or a DL subband for the terminal.
  • the terminal can only perform uplink transmission; within the DL subband, the terminal can only perform downlink reception.
  • the base station performs data channel scheduling or indicates reference signals within the UL subband or DL subband.
  • the terminal can also perform full-duplex on a semi-static flexible symbol or a dynamic flexible symbol.
  • This patent does not impose any restrictions on its operation.
  • the time slot structure configured by the base station through TDD UL-DL configuration is DDDFU, that is, within the TDD configuration period, the first 4 slots are DL slots, and the last slot is a flexible slot.
  • the method of this embodiment can also be directly applied to other TDD UL DL time slot structures.
  • the full-duplex terminal can transmit uplink within the SBFD slot.
  • the SBFD slot is configured with either a UL subband or a DL subband; in this embodiment, it is assumed that the SBFD slot is a DL slot configured with a UL subband.
  • the relationship between the active DL BWP and the UL subband within the SBFD slot is shown in Figure 4B.
  • the resources occupied by the UL subband may be entirely contained within the DL BWP, or not entirely contained within the DL BWP, or not contained at all; this embodiment does not impose any limitations.
  • the base station configures PUCCH configurations for SBFD symbols and PUCCH configurations for SBFD symbols separately for terminals supporting SBFD.
  • the PUCCH configurations provide a set of available resources for PUCCH transmission on specific symbol types.
  • the base station instructs the terminal to transmit PUCCH in a slot that simultaneously contains both SBFD and non-SBFD symbols.
  • the instruction information may be RRC signaling or DCI; this embodiment does not impose any restrictions.
  • the terminal determines whether it can transmit PUCCH within the slot based on the time-frequency resources occupied by the PUCCH resource indicated by the base station. Specifically, if the PUCCH resource indicated by the PUCCH resource ID indicated by the base station is entirely within the UL subband range, then a PUCCH resource is selected from the PUCCH resource set corresponding to the SBFD symbol; if the PUCCH resource indicated by the PUCCH resource ID indicated by the base station is not entirely within the UL subband range, but is within the non-SBFD symbol, then a PUCCH resource is selected from the PUCCH resource set corresponding to the non-SBFD symbol; if the PUCCH resource indicated by the PUCCH resource ID indicated by the base station is neither entirely within the non-SBFD symbol nor entirely within the SBFD symbol within the slot, then the slot is considered unsuitable for transmitting the PUCCH.
  • the base station receives the PUCCH in accordance with the indicated PUCCH resource detection on the slot where the aforementioned terminal actually sends the PUCCH.
  • Example 3 assumes the terminal is a Rel-19 or later version terminal, with half-duplex or full-duplex capability; this patent does not impose any limitations. It is assumed the base station performs full-duplex operation on the semi-static DL symbol in the TDD band or the DL symbol indicated by SFI, i.e., simultaneously scheduling downlink and uplink data. It should be noted that the base station can also perform full-duplex operation on the semi-static UL symbol in the TDD band or the UL symbol indicated by SFI, i.e., simultaneously scheduling downlink and uplink data.
  • the semi-static flexible symbol is determined by the tdd-UL-DL-ConfigurationCommon sent by the base station or by tdd-UL-DL-ConfigurationCommon and tdd-UL-DL-ConfigurationDedicated.
  • the base station indicates the transmission direction of the terminal on the DL symbol in the following two ways:
  • the base station configures either a UL subband or a DL subband for the terminal.
  • the terminal can only perform uplink transmission; within the DL subband, the terminal can only perform downlink reception.
  • the base station performs data channel scheduling or indicates reference signals within the UL subband or DL subband.
  • the terminal can also perform full-duplex operation on semi-static flexible symbol or dynamic flexible symbol, and this patent does not impose any restrictions.
  • the time slot structure configured by the base station through TDD UL-DL configuration is DDDFU, that is, within the TDD configuration period, the first 4 slots are DL slots, and the last slot is a flexible slot.
  • the method of this embodiment can also be directly applied to other TDD UL DL time slot structures.
  • the full-duplex terminal can transmit uplink within the SBFD slot.
  • the SBFD slot is configured with either a UL subband or a DL subband; in this embodiment, it is assumed that the SBFD slot is a DL slot configured with a UL subband.
  • the relationship between the active DL BWP and the UL subband within the SBFD slot is shown in Figure 4B.
  • the resources occupied by the UL subband may be entirely contained within the DL BWP, or not entirely contained within the DL BWP, or not contained at all; this embodiment does not impose any limitations.
  • the base station configures PUCCH configurations for SBFD symbols and PUCCH configurations for SBFD symbols separately for terminals supporting SBFD.
  • the PUCCH configurations provide a set of available resources for PUCCH transmission on specific symbol types.
  • the base station instructs the terminal to transmit PUCCH in a slot that simultaneously contains both SBFD and non-SBFD symbols.
  • the instruction information may be RRC signaling or DCI; this embodiment does not impose any restrictions.
  • the terminal receives indication information from the base station and determines whether to send PUCCH on the SBFD symbol within this slot or on the non-SBFD symbol within this slot. Specifically, if the terminal determines to send PUCCH on the SBFD symbol within this slot, that is, the terminal determines the PUCCH resource in the PUCCH resource set corresponding to the SBFD symbol based on the PUCCH resource ID indicated by the base station; if the terminal determines to send PUCCH on the non-SBFD symbol within this slot, ... That is, the terminal determines the PUCCH resource in the PUCCH resource set corresponding to the non-SBFD symbol based on the PUCCH resource ID indicated by the base station.
  • the PUCCH indication information sent by the base station is configured through RRC signaling or carried through DCI, and this patent does not impose any limitations.
  • the base station receives the PUCCH in accordance with the indicated PUCCH resource detection on the slot where the aforementioned terminal actually sends the PUCCH.
  • Example 4 as described in Examples 1-3, in this example, the terminal does not expect to transmit PUCCH in a slot that simultaneously contains both SBFD and non-SBFD symbols. Accordingly, the base station should avoid instructing the terminal to transmit PUCCH in a slot that simultaneously contains both SBFD and non-SBFD symbols.
  • the terminal will delay the PUCCH transmission in that slot to the next available slot, and the base station will also detect and receive PUCCH in the slot where the PUCCH is actually transmitted.
  • This disclosure also proposes an apparatus for implementing any of the above methods.
  • an apparatus is proposed that includes units or modules for implementing the steps performed by each node (e.g., a terminal, a network device) in any of the above methods.
  • the division of units or modules in the above device is only a logical functional division. In actual implementation, they can be fully or partially integrated into a single physical entity, or they can be physically separated.
  • the units or modules in the device can be implemented by a processor calling software: for example, the device includes a processor connected to a memory containing instructions. The processor calls the instructions stored in the memory to implement any of the above methods or to implement the functions of the units or modules in the above device.
  • the processor can be, for example, a general-purpose processor, such as a Central Processing Unit (CPU) or a microprocessor, and the memory can be internal or external to the device.
  • the units or modules in the device can be implemented in the form of hardware circuits.
  • the functionality of some or all of the units or modules can be achieved through the design of these hardware circuits, which can be understood as one or more processors.
  • the hardware circuit is an application-specific integrated circuit (ASIC).
  • ASIC application-specific integrated circuit
  • the functionality of some or all of the units or modules is achieved through the design of the logical relationships between the components within the circuit.
  • the hardware circuit can be implemented using a programmable logic device (PLD). Taking a field-programmable gate array (FPGA) as an example, it can include a large number of logic gates. The connection relationships between the logic gates are configured through configuration files, thereby achieving the functionality of some or all of the units or modules. All units or modules of the above device can be implemented entirely through processor-called software, entirely through hardware circuits, or partially through processor-called software with the remaining parts implemented through hardware circuits.
  • PLD programmable logic device
  • the processor is a circuit with signal processing capabilities.
  • the processor can be a circuit with instruction read and execute capabilities, such as a Central Processing Unit (CPU), a microprocessor, a graphics processing unit (GPU) (which can be understood as a microprocessor), or a digital signal processor (DSP).
  • the processor can implement certain functions through the logical relationships of hardware circuits. The logical relationships of the aforementioned hardware circuits are fixed or reconfigurable.
  • the processor is a hardware circuit implemented using an application-specific integrated circuit (ASIC) or a programmable logic device (PLD), such as an FPGA.
  • ASIC application-specific integrated circuit
  • PLD programmable logic device
  • the process of the processor loading a configuration document and configuring the hardware circuit can be understood as the process of the processor loading instructions to implement the functions of some or all of the above units or modules.
  • it can also be hardware circuits designed for artificial intelligence, which can be understood as ASICs, such as Neural Network Processing Unit (NPU), Tensor Processing Unit (TPU), Deep Learning Processing Unit (DPU), etc.
  • ASICs such as Neural Network Processing Unit (NPU), Tensor Processing Unit (TPU), Deep Learning Processing Unit (DPU), etc.
  • Figure 5A is a schematic diagram of the structure of the terminal proposed in an embodiment of this disclosure.
  • the terminal 5100 may include: a processing module 5101 and a sending module 5102.
  • the processing module 5101 is configured to determine a first transmission mode, which is used to indicate whether a first time unit can be used to transmit uplink information; wherein the first time unit includes multiple types of sub-time units.
  • the processing module 5101 is further configured to determine a first resource based on the first transmission method.
  • the sending module 5102 is configured to send the uplink information to the network device on the first resource.
  • the processing module 5101 is used to execute at least one of the other steps executed by the terminal 5100 in any of the above methods (e.g., steps S2101, S2102, S2202, S2203, but not limited thereto), which will not be described in detail here.
  • the transceiver module 5102 is used to perform at least one of the communication steps such as sending and/or receiving performed by the terminal 5100 in any of the above methods (e.g., step S2105, step S2201, step S2206, but not limited thereto), which will not be described in detail here.
  • FIG. 5B is a schematic diagram of the network device proposed in an embodiment of this disclosure.
  • the network device 5200 may include: a processing module 5201 and a transceiver module 5202.
  • the processing module 5201 is configured to determine a first transmission mode, which is used to indicate whether a first time unit can be used to transmit uplink information; wherein the first time unit includes multiple types of sub-time units.
  • the processing module 5201 is further configured to determine a first resource based on the first transmission method.
  • the transceiver module 5202 is configured to receive the uplink information sent by the terminal on the first resource.
  • the processing module 5201 is used to execute at least one of the other steps (e.g., steps S2103, S2104, S2204, and S2205, but not limited thereto) executed by the network device 5200 in any of the above methods, which will not be described in detail here.
  • the transceiver module 5202 is used to perform at least one of the communication steps such as sending and/or receiving performed by the network device 5200 in any of the above methods (e.g., steps S2105, S2201, and S2206, but not limited thereto), which will not be described in detail here.
  • the transceiver module may include a transmitting module and/or a receiving module, which may be separate or integrated.
  • the transceiver module may be interchangeable with a transceiver.
  • the processing module may be a single module or may include multiple sub-modules.
  • the multiple sub-modules may each perform all or part of the steps required by the processing module.
  • the processing module may be interchangeable with a processor.
  • Figure 6A is a schematic diagram of the structure of the communication device 6100 proposed in an embodiment of this disclosure.
  • the communication device 6100 can be a network device, a chip, chip system, or processor that supports the network device in implementing any of the above methods, or a terminal, or a chip, chip system, or processor that supports the terminal in implementing any of the above methods.
  • the communication device 6100 can be used to implement the methods described in the above method embodiments; for details, please refer to the descriptions in the above method embodiments.
  • the communication device 6100 includes one or more processors 6101.
  • the processor 6101 can be a general-purpose processor or a dedicated processor, such as a baseband processor or a central processing unit (CPU).
  • the baseband processor can be used to process communication protocols and communication data, while the CPU can be used to control communication devices (e.g., base stations, baseband chips, terminal devices, terminal device chips, DUs or CUs, etc.), execute programs, and process program data.
  • the communication device 6100 can be used to execute any of the above methods.
  • one or more processors 6101 can be used to invoke instructions to cause the communication device 6100 to execute any of the above methods.
  • the communication device 6100 further includes one or more transceivers 6102.
  • the transceivers 6102 perform at least one of the communication steps such as sending and/or receiving in the above method (e.g., steps S2105, S2201, and S2206, but not limited thereto), and the processor 6101 performs at least one of other steps (e.g., steps S2101, S2102, S2103, S2104, S2202, S2203, S2204, and S2205, but not limited thereto).
  • the transceivers may include a receiver and/or a transmitter, which may be separate or integrated together.
  • transceiver transceiver unit, transceiver, transceiver circuit, interface circuit, and interface
  • terms such as transmitter, transmitting unit, transmitter, and transmitting circuit can be used interchangeably
  • terms such as receiver, receiving unit, receiver, and receiving circuit can be used interchangeably.
  • the communication device 6100 further includes one or more memories 6102 for storing data.
  • the memories 6102 may be located outside the communication device 6100.
  • the communication device 6100 may include one or more interface circuits 6104.
  • the interface circuits 6104 are connected to the memories 6102 and can be used to receive data from the memories 6102 or other devices, and to send data to the memories 6102 or other devices.
  • the interface circuits 6104 can read data stored in the memories 6102 and send the data to the processor 6101.
  • the communication device 6100 described in the above embodiments may be a network device, but the scope of the communication device 6100 described in this disclosure is not limited thereto, and the structure of the communication device 6100 may not be limited by FIG. 6A.
  • the communication device may be a standalone device or a part of a larger device.
  • the communication device may be: (1) a standalone integrated circuit IC, or chip, or chip system or subsystem; (2) a collection of one or more ICs, optionally, the IC collection may also include storage components for storing data and programs; (3) an ASIC, such as a modem; (4) a module that can be embedded in other devices; (5) a receiver, terminal device, smart terminal device, cellular phone, wireless device, handheld device, mobile unit, vehicle device, network device, cloud device, artificial intelligence device, etc.; (6) others, etc.
  • Figure 6B is a schematic diagram of the structure of chip 6200 according to an embodiment of this disclosure.
  • the communication device 6100 can be a chip or a chip system, please refer to the schematic diagram of chip 6200 shown in Figure 6B, but it is not limited thereto.
  • Chip 6200 includes one or more processors 6201. Chip 6200 is used to perform any of the methods described above.
  • chip 6200 further includes one or more interface circuits 6202.
  • interface circuits 6202. terms such as interface circuit, interface, and transceiver pin can be used interchangeably.
  • chip 6200 further includes one or more storage devices for storing data. Memory 6203.
  • all or part of memory 6203 may be located outside of chip 6200.
  • interface circuitry 6202 is connected to memory 6203.
  • Interface circuitry 6202 can be used to receive data from memory 6203 or other devices, and interface circuitry 6202 can be used to send data to memory 6203 or other devices.
  • interface circuitry 6202 can read data stored in memory 6203 and send that data to processor 6201.
  • the interface circuit 6202 performs at least one of the communication steps such as sending and/or receiving in the above method (e.g., steps S2105, S2201, and S2206, but not limited thereto).
  • the interface circuit 6202 performing the communication steps such as sending and/or receiving in the above method refers, for example, to the interface circuit 6202 performing data interaction between the processor 6201, the chip 6200, the memory 6203, or the transceiver device.
  • the processor 6201 performs at least one of other steps (e.g., steps S2101, S2102, S2103, S2104, S2202, S2203, S2204, and S2205, but not limited thereto).
  • modules and/or devices described in the various embodiments can be combined or separated arbitrarily as needed.
  • some or all steps can also be performed collaboratively by multiple modules and/or devices, which is not limited here.
  • the storage medium is an electronic storage medium.
  • the storage medium is a computer-readable storage medium, but not limited thereto; it may also be a storage medium readable by other devices.
  • the storage medium may be a non-transitory storage medium, but not limited thereto; it may also be a temporary storage medium.
  • This disclosure also provides a program product that, when executed by the communication device 6100, causes the communication device 6100 to perform any of the above methods.
  • the program product is a computer program product.
  • This disclosure also proposes a computer program that, when run on a computer, causes the computer to perform any of the above methods.

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Abstract

本公开提供一种信息传输方法及装置、存储介质,其中,所述方法包括:确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;基于所述第一传输方式,确定第一资源;在所述第一资源上,向网络设备发送所述上行信息。本公开可以明确终端在同时包括多种类型的子时间的第一时间单元上的行为,提高了SBFD的可用性和可靠性。

Description

信息传输方法及装置、存储介质 技术领域
本公开涉及通信领域,尤其涉及信息传输方法及装置、存储介质。
背景技术
在子带全双工(SubBand Full Duplex,SBFD)通信场景下,引入了上行子带(UpLink subband,UL subband),终端可以被配置为在SBFD时间单元上基于UL subband上传输上行信息,且所占用的上行频域资源位于UL subband所占用的频域资源范围内。
发明内容
为了提高SBFD的可用性和可靠性,本公开实施例提供一种信息传输方法及装置、存储介质。
根据本公开实施例的第一方面,提供一种信息传输方法,所述方法由终端执行,所述方法包括:
确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;
基于所述第一传输方式,确定第一资源;
在所述第一资源上,向网络设备发送所述上行信息。
根据本公开实施例的第二方面,提供一种信息传输方法,所述方法由网络设备执行,所述方法包括:
确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;
基于所述第一传输方式,确定第一资源;
在所述第一资源上,接收终端发送的所述上行信息。
根据本公开实施例的第三方面,提供一种终端,包括:
处理模块,被配置为确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;
所述处理模块还被配置为基于所述第一传输方式,确定第一资源;
发送模块,被配置为在所述第一资源上,向网络设备发送所述上行信息。
根据本公开实施例的第四方面,提供一种网络设备,包括:
处理模块,被配置为确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;
所述处理模块还被配置为基于所述第一传输方式,确定第一资源;
接收模块,被配置为在所述第一资源上,接收终端发送的所述上行信息。
根据本公开实施例的第五方面,提供一种终端,包括:
一个或多个处理器;
其中,所述处理器用于执行第一方面中任一项所述的信息传输方法。
根据本公开实施例的第六方面,提供一种网络设备,包括:
一个或多个处理器;
其中,所述处理器用于执行第二方面中任一项所述的信息传输方法。
根据本公开实施例的第七方面,提供一种通信系统,包括:
终端,所述终端被配置为实现第一方面中任一项所述的信息传输方法;
网络设备,所述网络设备被配置为实现第二方面中任一项所述的信息传输方法。
根据本公开实施例的第八方面,提供一种存储介质,所述存储介质存储有指令,当所述指令在通信设备上运行时,使得所述通信设备执行如第一方面或第二方面中任一项所述的信息传输方法。
根据本公开实施例的第九方面,提供一种计算机程序产品,包括计算机程序,该计算机程序被处理器执行时用于实现第一方面或第二方面中任一项所述的信息传输方法。
在本公开实施例中,终端可以确定第一传输方式,该第一传输方式可以用于指示第一时间单元是否可以用于传输上行信息,第一时间单元内包括了多种类型的子时间单元。进一步地,终端 可以基于第一传输方式确定第一资源,并在第一资源上,向网络设备发送该上行信息。明确了终端在同时包括多种类型的子时间的第一时间单元上的行为,提高了SBFD的可用性和可靠性。
应当理解的是,以上的一般描述和后文的细节描述仅是示例性和解释性的,并不能限制本公开。
附图说明
此处的附图被并入说明书中并构成本说明书的一部分,示出了符合本发明的实施例,并与说明书一起用于解释本发明的原理。
图1是根据本公开实施例提供的通信系统的架构的一个示例性示意图。
图2A是根据本公开实施例提供的信息传输方法的一个示例性交互示意图。
图2B是根据本公开实施例提供的信息传输方法的一个示例性交互示意图。
图2C是根据本公开实施例提供的SBFD子时间单元和non-SBFD子时间单元的一个示例性示意图。
图3A是根据本公开实施例提供的信息传输方法的一个示例性交互示意图。
图3B是根据本公开实施例提供的信息传输方法的一个示例性交互示意图。
图4A是根据本公开实施例提供的时分双工配置的一个示例性示意图。
图4B是根据本公开实施例提供的在SBFD时间单元内下行BWP和上行子带的一个示例性关系示意图。
图5A是根据本公开实施例提供的终端的一个示例性框图。
图5B是根据本公开实施例提供的网络设备的一个示例性框图。
图6A是根据本公开实施例提供的通信设备的一个示例性交互示意图。
图6B是根据本公开实施例提供的芯片的一个示例性交互示意图。
具体实施方式
这里将详细地对示例性实施例进行说明,其示例表示在附图中。下面的描述涉及附图时,除非另有表示,不同附图中的相同数字表示相同或相似的要素。以下示例性实施例中所描述的实施方式并不代表与本发明相一致的所有实施方式。相反,它们仅是与如所附权利要求书中所详述的、本发明的一些方面相一致的装置和方法的例子。
本公开实施例提出了一种信息传输方法及装置、存储介质。
第一方面,本公开实施例提出了一种信息传输方法,所述方法由终端执行,所述方法包括:确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;基于所述第一传输方式,确定第一资源;在所述第一资源上,向网络设备发送所述上行信息。
上述实施例中,明确了终端在同时包括多种类型的子时间的第一时间单元上的行为,提高了SBFD的可用性和可靠性。
结合第一方面的一些实施例,在一些实施例中,所述方法还包括:不期待在所述第一时间单元上向所述网络设备发送所述上行信息。
上述实施例中,终端不期待在第一时间单元上向所述网络设备发送所述上行信息。提高了SBFD的可用性和可靠性。
结合第一方面的一些实施例,在一些实施例中,所述确定第一传输方式,包括:基于预定义方式,确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息。
上述实施例中,终端可以基于预定义方式,确定第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息。从而降低网络设备调度复杂度,可用性高。
结合第一方面的一些实施例,在一些实施例中,所述方法还包括:接收所述网络设备发送的第一指示信息,所述第一指示信息用于指示第二资源的索引。
上述实施例中,终端可以基于网络设备发送的第一指示信息,以便确定第一传输方式,实现简便,可用性高。
结合第一方面的一些实施例,在一些实施例中,所述确定第一传输方式,包括以下任一项:所述第二资源位于第一资源范围内,确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息;所述第二资源位于第一频域范围之外,确定所述第一传 输方式,且所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息;其中,所述第一资源范围是所述网络设备为所述终端在第一类型的子时间单元上配置的资源范围。
上述实施例中,终端可以采用上述方式确定第一传输方式,提高了终端行为的可靠性。
结合第一方面的一些实施例,在一些实施例中,所述基于所述第一传输方式,确定第一资源,包括:所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息,基于第一类资源集合,确定所述第一资源;其中,所述第一类资源集合是所述网络设备为所述终端在所述第一类型的子时间单元上配置的资源集合。
上述实施例中,终端可以采用上述方式确定第一资源,实现简便,可用性高。
结合第一方面的一些实施例,在一些实施例中,所述基于所述第一传输方式,确定第一资源,包括:所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息,确定第二时间单元;其中,所述第二时间单元内包括一种类型的子时间单元;确定第二类型;其中,所述第二类型是所述第二时间单元所包括的子时间单元的类型;确定第二类资源集合;其中,所述第二类资源集合是所述网络设备为所述终端在所述第二类型的子时间单元上配置的资源集合;基于所述第二类资源集合,确定所述第一资源。
上述实施例中,终端可以跳过第一时间单元,在第二时间单元上确定第一资源,实现简便,可用性高。
结合第一方面的一些实施例,在一些实施例中,所述方法还包括:接收所述网络设备发送的第二指示信息;其中,所述第二指示信息用于指示第三类型,所述第三类型是传输所述上行信息的子时间单元的类型。
上述实施例中,终端可以基于网络设备发送的第二指示信息,确定第一传输方式,可用性高。
结合第一方面的一些实施例,在一些实施例中,所述确定第一传输方式,包括:基于所述第二指示信息,确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息。
上述实施例中,终端可以确定第一传输方式用于指示所述第一时间单元可用于传输所述上行信息。提高了SBFD的可用性。
结合第一方面的一些实施例,在一些实施例中,所述基于所述第一传输方式,确定第一资源,包括:确定第三类资源集合;其中,所述第三类资源集合是所述网络设备为所述终端在所述第三类型的子时间单元上配置的资源集合;基于所述第三类资源集合,确定所述第一资源。
上述实施例中,终端可以采用上述方式确定第一资源,实现简便,可用性高。
第二方面,本公开实施例提出了一种信息传输方法,所述方法由网络设备执行,所述方法包括:确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;基于所述第一传输方式,确定第一资源;在所述第一资源上,接收终端发送的所述上行信息。
结合第二方面的一些实施例,在一些实施例中,所述方法还包括:不期待在所述第一时间单元上接收所述终端发送的所述上行信息。
结合第二方面的一些实施例,在一些实施例中,所述确定第一传输方式,包括:基于预定义方式,确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息。
结合第二方面的一些实施例,在一些实施例中,所述方法还包括:向所述终端发送第一指示信息,所述第一指示信息用于指示第二资源的索引。
结合第二方面的一些实施例,在一些实施例中,所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息,所述第二资源位于第一频域范围内;或所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息,所述第二资源位于第一频域范围之外;其中,所述第一资源范围是所述网络设备为所述终端在第一类型的子时间单元上配置的资源范围。
结合第二方面的一些实施例,在一些实施例中,所述基于所述第一传输方式,确定第一资源,包括:
所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息,基于第一类资源集合,确定所述第一资源;其中,所述第一类资源集合是所述网络设备为所述终端在所述第一类型的子时间单元上配置的资源集合。
结合第二方面的一些实施例,在一些实施例中,所述基于所述第一传输方式,确定第一资源,包括:所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息,确定第二时间单元;其中,所述第二时间单元内包括一种类型的子时间单元;确定第二类型;其中,所述第二类型是所述第二时间单元所包括的子时间单元的类型;确定第二类资源集合;其中,所述第二类 资源集合是所述网络设备为所述终端在所述第二类型的子时间单元上配置的资源集合;基于所述第二类资源集合,确定所述第一资源。
结合第二方面的一些实施例,在一些实施例中,所述方法还包括:向所述终端发送第二指示信息;其中,所述第二指示信息用于指示第三类型,所述第三类型是传输所述上行信息的子时间单元的类型。
结合第二方面的一些实施例,在一些实施例中,所述确定第一传输方式,包括:确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息。
结合第二方面的一些实施例,在一些实施例中,所述基于所述第一传输方式,确定第一资源,包括:基于第三类资源集合,确定所述第一资源;其中,所述第三类资源集合是所述网络设备为所述终端在所述第三类型的子时间单元上配置的资源集合。
第三方面,本公开实施例提出了一种终端,包括:处理模块,被配置为确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;所述处理模块还被配置为基于所述第一传输方式,确定第一资源;发送模块,被配置为在所述第一资源上,向网络设备发送所述上行信息。
第四方面,本公开实施例提出了一种网络设备,包括:处理模块,被配置为确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;所述处理模块还被配置为基于所述第一传输方式,确定第一资源;接收模块,被配置为在所述第一资源上,接收终端发送的所述上行信息。
第五方面,本公开实施例提出了一种终端,包括:一个或多个处理器;其中,所述处理器用于执行第一方面中任一项所述的信息传输方法。
第六方面,本公开实施例提出了一种网络设备,包括:一个或多个处理器;其中,所述处理器用于执行第二方面中任一项所述的信息传输方法。
第七方面,本公开实施例提出了一种通信系统,包括:终端,所述终端被配置为实现第一方面中任一项所述的信息传输方法;网络设备,所述网络设备被配置为实现第二方面中任一项所述的信息传输方法。
第八方面,本公开实施例提出了一种存储介质,所述存储介质存储有指令,当所述指令在通信设备上运行时,使得所述通信设备执行如第一方面或第二方面任一项所述的信息传输方法。
第九方面,本公开实施例提出了一种计算机程序产品,包括计算机程序,该计算机程序被处理器执行时用于实现第一方面或第二方面中任一项所述的信息传输方法。
可以理解地,上述终端、网络设备、通信系统、存储介质、计算机程序均用于执行本公开实施例所提出的方法。因此,其所能达到的有益效果可以参考对应方法中的有益效果,此处不再赘述。
本公开实施例提出了信息传输方法及装置、存储介质。在一些实施例中,信息传输方法与信息处理方法、通信方法等术语可以相互替换,信息传输装置与信息处理装置、通信装置等术语可以相互替换,信息处理系统、通信系统等术语可以相互替换。
本公开实施例并非穷举,仅为部分实施例的示意,不作为对本公开保护范围的具体限制。在不矛盾的情况下,某一实施例中的每个步骤均可以作为独立实施例来实施,且各步骤之间可以任意组合,例如,在某一实施例中去除部分步骤后的方案也可以作为独立实施例来实施,且在某一实施例中各步骤的顺序可以任意交换,另外,某一实施例中的可选实现方式可以任意组合;此外,各实施例之间可以任意组合,例如,不同实施例的部分或全部步骤可以任意组合,某一实施例可以与其他实施例的可选实现方式任意组合。
在各本公开实施例中,如果没有特殊说明以及逻辑冲突,各实施例之间的术语和/或描述具有一致性,且可以互相引用,不同实施例中的技术特征根据其内在的逻辑关系可以组合形成新的实施例。
本公开实施例中所使用的术语只是为了描述特定实施例的目的,而并非作为对本公开的限制。
在本公开实施例中,除非另有说明,以单数形式表示的元素,如“一个”、“一种”、“该”、“上述”、“”、“前述”、“这一”等,可以表示“一个且只有一个”,也可以表示“一个或多个”、“至少一个”等。例如,在翻译中使用如英语中的“a”、“an”、“the”等冠词(article)的情况下,冠词之后的名词可以理解为单数表达形式,也可以理解为复数表达形式。
在本公开实施例中,“多个”是指两个或两个以上。
在一些实施例中,“至少一者(至少一项、至少一个)(at least one of)”、“一个或多个(one or more)”、“多个(a plurality of)”、“多个(multiple)等术语可以相互替换。
在一些实施例中,“A、B中的至少一者”、“A和/或B”、“在一情况下A,在另一情况下B”、 “响应于一情况A,响应于另一情况B”等记载方式,根据情况可以包括以下技术方案:在一些实施例中A(与B无关地执行A);在一些实施例中B(与A无关地执行B);在一些实施例中从A和B中选择执行(A和B被选择性执行);在一些实施例中A和B(A和B都被执行)。当有A、B、C等更多分支时也类似上述。
在一些实施例中,“A或B”等记载方式,根据情况可以包括以下技术方案:在一些实施例中A(与B无关地执行A);在一些实施例中B(与A无关地执行B);在一些实施例中从A和B中选择执行(A和B被选择性执行)。当有A、B、C等更多分支时也类似上述。
本公开实施例中的“第一”、“第二”等前缀词,仅仅为了区分不同的描述对象,不对描述对象的位置、顺序、优先级、数量或内容等构成限制,对描述对象的陈述参见权利要求或实施例中上下文的描述,不应因为使用前缀词而构成多余的限制。例如,描述对象为“字段”,则“第一字段”和“第二字段”中“字段”之前的序数词并不限制“字段”之间的位置或顺序,“第一”和“第二”并不限制其修饰的“字段”是否在同一个消息中,也不限制“第一字段”和“第二字段”的先后顺序。再如,描述对象为“等级”,则“第一等级”和“第二等级”中“等级”之前的序数词并不限制“等级”之间的优先级。再如,描述对象的数量并不受序数词的限制,可以是一个或者多个,以“第一装置”为例,其中“装置”的数量可以是一个或者多个。此外,不同前缀词修饰的对象可以相同或不同,例如,描述对象为“装置”,则“第一装置”和“第二装置”可以是相同的装置或者不同的装置,其类型可以相同或不同;再如,描述对象为“信息”,则“第一信息”和“第二信息”可以是相同的信息或者不同的信息,其内容可以相同或不同。
在一些实施例中,“包括A”、“包含A”、“用于指示A”、“携带A”,可以解释为直接携带A,也可以解释为间接指示A。
在一些实施例中,装置和设备可以解释为实体的、也可以解释为虚拟的,其名称不限定于实施例中所记载的名称,在一些情况下也可以被理解为“设备(equipment)”、“设备(device)”、“电路”、“网元”、“节点”、“功能”、“单元”、“部件(section)”、“系统”、“网络”、“实体”、“主体”等。
在一些实施例中,“网络”可以解释为网络中包含的装置,例如,接入网设备、核心网设备等。
在一些实施例中,“接入网设备(access network device,AN device)”也可以被称为“无线接入网设备(radio access network device,RAN device)”、“基站(base station,BS)”、“无线基站(radio base station)”、“固定台(fixed station)”,在一些实施例中也可以被理解为“节点(node)”、“接入点(access point)”、“发送点(transmission point,TP)”、“接收点(reception point,RP)”、“发送和/或接收点(transmission/reception point,TRP)”、“面板(panel)”、“天线面板(antenna panel)”、“天线阵列(antenna array)”、“小区(cell)”、“宏小区(macro cell)”、“小型小区(small cell)”、“毫微微小区(femto cell)”、“微微小区(pico cell)”、“扇区(sector)”、“小区组(cell group)”、“服务小区”、“载波(carrier)”、“分量载波(component carrier)”、“带宽部分(bandwidth part,BWP)”等。
在一些实施例中,获取数据、信息等可以遵照所在地国家的法律法规。
在一些实施例中,可以在得到用户同意后获取数据、信息等。
此外,本公开实施例的表格中的每一元素、每一行、或每一列均可以作为独立实施例来实施,任意元素、任意行、任意列的组合也可以作为独立实施例来实施。
图1是根据本公开实施例示出的通信系统的架构示意图。
如图1所示,通信系统100包括终端101、网络设备102。
在一些实施例中,终端101例如包括手机(mobile phone)、可穿戴设备、物联网设备、具备通信功能的汽车、智能汽车、平板电脑(Pad)、带无线收发功能的电脑、虚拟现实(virtual reality,VR)终端设备、增强现实(augmented reality,AR)终端设备、工业控制(industrial control)中的无线终端设备、无人驾驶(self-driving)中的无线终端设备、远程手术(remote medical surgery)中的无线终端设备、智能电网(smart grid)中的无线终端设备、运输安全(transportation safety)中的无线终端设备、智慧城市(smart city)中的无线终端设备、智慧家庭(smart home)中的无线终端设备中的至少一者,但不限于此。
在一些实施例中,网络设备102可以包括但不限于接入网设备102-1、核心网设备102-2中的至少一个。
在一些实施例中,上述接入网设备102-1例如是将终端接入到无线网络的节点或设备,接入网设备可以包括5G通信系统中的演进节点B(evolved NodeB,eNB)、下一代演进节点B(next generation eNB,ng-eNB)、下一代节点B(next generation NodeB,gNB)、节点B(node B,NB)、家庭节点B(home node B,HNB)、家庭演进节点B(home evolved nodeB,HeNB)、无线回传设 备、无线网络控制器(radio network controller,RNC)、基站控制器(base station controller,BSC)、基站收发台(base transceiver station,BTS)、基带单元(base band unit,BBU)、移动交换中心、6G通信系统中的基站、开放型基站(Open RAN)、云基站(Cloud RAN)、其他通信系统中的基站、Wi-Fi系统中的接入节点中的至少一者,但不限于此。
在一些实施例中,上述接入网设备102-1可以由集中单元(central unit,CU)与分布式单元(distributed unit,DU)组成的,其中,CU也可以称为控制单元(control unit),采用CU-DU的结构可以将接入网设备的协议层拆分开,部分协议层的功能放在CU集中控制,剩下部分或全部协议层的功能分布在DU中,由CU集中控制DU,但不限于此。
在一些实施例中,上述核心网设备102-2可以是一个设备,包括一个或多个网元等,也可以是多个设备或设备群。网元可以是虚拟的,也可以是实体的。核心网例如包括演进分组核心(Evolved Packet Core,EPC)、5G核心网络(5G Core Network,5GCN)、下一代核心(Next Generation Core,NGC)中的至少一者。
在一些实施例中,本公开的技术方案可适用于Open RAN架构,此时,本公开实施例所涉及的接入网设备间或者接入网设备内的接口可变为Open RAN的内部接口,这些内部接口之间的流程和信息交互可以通过软件或者程序实现。
在一些实施例中,终端101通过接入网设备102-1与核心网设备102-2连接。
可以理解的是,本公开实施例描述的通信系统是为了更加清楚的说明本公开实施例的技术方案,并不构成对于本公开实施例提出的技术方案的限定,本领域普通技术人员可知,随着系统架构的演变和新业务场景的出现,本公开实施例提出的技术方案对于类似的技术问题同样适用。
下述本公开实施例可以应用于图1所示的通信系统100、或部分主体,但不限于此。图1所示的各主体是例示,通信系统可以包括图1中的全部或部分主体,也可以包括图1以外的其他主体,各主体数量和形态为任意,各主体可以是实体的也可以是虚拟的,各主体之间的连接关系是例示,各主体之间可以不连接也可以连接,其连接可以是任意方式,可以是直接连接也可以是间接连接,可以是有线连接也可以是无线连接。
本公开各实施例可以应用于长期演进(Long Term Evolution,LTE)、LTE-Advanced(LTE-A)、LTE-Beyond(LTE-B)、SUPER 3G、IMT-Advanced、第四代移动通信系统(4th generation mobile communication system,4G)、第五代移动通信系统(5th generation mobile communication system,5G)、5G新空口(new radio,NR)、第六代移动通信系统(6th generation mobile communication system,6G)、未来无线接入(Future Radio Access,FRA)、新无线接入技术(New-Radio Access Technology,RAT)、新无线(New Radio,NR)、新无线接入(New radio access,NX)、未来一代无线接入(Future generation radio access,FX)、Global System for Mobile communications(GSM(注册商标))、CDMA2000、超移动宽带(Ultra Mobile Broadband,UMB)、IEEE 802.11(Wi-Fi(注册商标))、IEEE 802.16(WiMAX(注册商标))、IEEE 802.20、超宽带(Ultra-WideBand,UWB)、蓝牙(Bluetooth(注册商标))、陆上公用移动通信网(Public Land Mobile Network,PLMN)网络、利用其他通信方法的系统、基于它们而扩展的下一代系统等。此外,也可以将多个系统组合(例如,LTE或者LTE-A与5G的组合等)应用。
在SBFD场景中,网络设备能够在一个时间单元,例如一个时隙(slot)内同时进行数据的接收和发送。以物理上行控制信道(Physical Uplink Control Channel,PUCCH)为例,网络设备例如基站,可以通过无线资源控制信令(Radio Resource Control signaling,RRC signaling)为PUCCH配置时频域资源集合。
进一步地,基站可以通过例如下行控制信息(Downlink Control Information,DCI)或者RRC signaling,指示终端在该slot所对应的资源集合所包含地一个PUCCH资源(resource)上发送PUCCH。该PUCCH resource位于UL部分带宽(Bandwidth Part,BWP)内。
对于全双工(duplex)的终端,其可在下行(DownLink,DL)slot内的UL subband内进行上行发送。
但是目前,基站不期待终端在DL slot内发送PUCCH,因此终端只能在UL slot内发送PUCCH。从而限制了SBFD技术在降低时延以及可靠性方面的增益,并且对于网络的调度灵活性也带来了一定的限制。
另一方面,不同类型的slot或者符号(symbol)上可用的上行资源不同。一种可能的方法是在不同的符号类型上配置的PUCCH资源集合不同。当slot内既包含SBFD symbol,又包含非子带全双工(non-SubBand Full Duplex,non-SBFD)symbol时,需要明确该slot是否可以用于传输PUCCH,以及在哪种类型的符号所对应的PUCCH resource配置中选择相应的PUCCH resource。
在一些实施例中,网络设备例如基站可以通过系统消息,例如系统信息块1 (SystemInformationBlock1,SIB1)或者终端专属的RRC信令,为终端配置可用的PUCCH资源。具体的,可通过如下两个参数进行配置,终端根据配置确定在网络设备指示的slot上激活上行带宽部分(active UL BWP)内用于传输PUCCH的物理资源:
参数1,PUCCH公共配置(PUCCH-ConfigCommon);
参数2,PUCCH配置(PUCCH-Config)。
终端通过如上配置信令,确定在每个UL BWP内可用于PUCCH传输的资源集合。进一步地,基站可以通过动态信令例如DCI,或者RRC signaling,指示终端其PUCCH在UL slot或者flexible slot内传输所占的时频资源位置。
考虑到PUCCH可以在active UL BWP内进行传输。也即对于SBFD终端而言,其只能在UL symbol或者flexible symbol上的PUCCH resource上发送所述PUCCH。进而,会造成HARQ-ACK反馈信息不能及时传输,从而限制了SBFD技术在时延上的增益。且基站调度时必须避免将SBFD终端的PUCCH资源调度在DL slot上,从而增加了调度的复杂度。
终端无法利用UL subband进行PUCCH的重复传输,从而影响了PUCCH的可靠性和传输时延
另一方面,当前技术仅考虑了同意的PUCCH资源配置和指示情况,也即不考虑不同slot上的可用上行资源数量不同。对于全双工技术而言,终端可在DL slot上执行上行传输,此时仅UL subband内的资源可用于上行。由于UL subband的大小通常与UL BWP的大小不同,因此需要考虑当PUCCH传输跨越不同的时域资源类型时,如何为PUCCH分配频域资源。
本公开提供了以下信息传输方法及装置、存储介质。
图2A是根据本公开实施例示出的信息传输方法的交互示意图。如图2A所示,本公开实施例涉及信息传输方法,上述方法包括:
步骤S2101,终端101确定第一传输方式。
在一些实施例中,第一传输方式可以用于指示第一时间单元是否可用于传输上行信息。
在一些实施例中,第一时间单元可以以帧(frame)、子帧(sub-frame)、时隙(slot)、子时隙(sub-slot)等为单位。
其中,一个子时隙中可以包括一个符号或包括属于同一个时隙的多个连续符号。
在一些实施例中,第一时间单元可以包括多种类型的子时间单元。
在一些实施例中,子时间单元可以为子帧、slot、sub-slot、符号等为单位。
在一些实施例中,第一时间单元内可以包括至少两类子时间单元,其中一类可以是SBFD子时间单元,另一类可以是non-SBFD子时间单元。
在一个示例中,SBFD子时间单元是指配置了UL subband和/或DL subband的上行子时间单元、下行子时间单元或灵活(flexible)子时间单元。
在一些实施例中,non-SBFD子时间单元是指未配置UL subband和/或DL subband的上行子时间单元、下行子时间单元或灵活(flexible)子时间单元。
例如图2C中,子时间单元可以以slot为单位,non-SBFD子时间单元可以包括slot#n,slot#(n+4)。SBFD子时间单元可以包括slot#(n+1),slot#(n+2),slot#(n+3)。
以上仅为示例性说明,本公开对子时间单元类型的划分不作限定。
在一些实施例中,上行信息可以包括但不限于PUCCH所承载的上行控制信息(Uplink Control Information,UCI)。
在一些实施例中,上行信息也可以包括其他上行信息,例如物理上行共享信道(PUSCH,Physical Uplink Shared Channel)、信道探测参考信号(Sounding Reference Signal,SRS)等。
在一些实施例中,需要说明的是,网络设备102已经为终端101通过系统消息例如SIB1或RRC信令配置了针对上述多种类型的子时间单元的上行时频域资源。
例如,网络设备102为终端101配置了SBFD子时间单元对应的上行资源集合#1,以及non-SBFD子时间单元对应的上行资源集合#2。
在一些实施例中,上行信息可以指网络设备102预先通过半静态信令配置多种类型的子时间单元分别对应的上行资源集合,进而通过DCI或RRC信令指示具体上行资源索引的上行信息。
在一些实施例中,终端101可以基于预定义方式,例如协议约定确定第一传输方式,具体实现方式可以包括以下任一项:
方式1,终端101不期待在上述第一时间单元上向所述网络设备102发送所述上行信息。
在一个示例中,可以由网络设备102通过调度确保终端101不会在第一时间单元上传输上行信息。
例如,终端101不期待在同时包括SBFD符号和non-SBFD符号的时隙内传输上行信息。
基于上述方式1,终端101可以确定第一传输方式用于指示第一时间单元不可用于传输所述上行信息。
方式2,终端101跳过该第一时间单元。
在一个示例中,终端101可以跳过该第一时间单元,在其他的时间单元上传输上行信息。
基于上述方式2,终端101可以确定第一传输方式用于指示第一时间单元不可用于传输所述上行信息。
上述方式1和方式2中,考虑到网络设备102在第一时间单元内的调度较为复杂,可以基于预定义方式确定第一时间单元不可用于传输所述上行信息。
在一些实施例中,为了提高SBFD的可用性,降低信息传输时延,终端101也可以基于预定义方式,确定第一传输方式,且第一传输方式用于指示第一时间单元可用于传输所述上行信息。
步骤S2102,终端101确定第一资源。
在一些实施例中,终端101基于第一传输方式,确定第一资源。
在一些实施例中,第一传输方式用于指示第一时间单元不可用于传输所述上行信息,相应地,终端101可以采用以下方式确定第一资源:
终端101确定第二时间单元。其中,第二时间单元可以包括一种类型的子时间单元。
例如,第二时间单元可以包括SBFD子时间单元。
再例如,第二时间单元可以包括non-SBFD子时间单元。
针对上述方式1,终端101基于网络设备102的调度确定传输上行信息的第二时间单元。
针对上述方式2,终端101可以基于预定义方式,确定第二时间单元位于第一时间单元之前或位于第一时间单元之后。
其中,如果第二时间单元位于第一时间单元之前,需要满足协议约定的上行定时(timing),其中,上行timing是指终端101解析下行信令并为上行传输做准备的时段。在上行timing的时段内,终端101不发送上行信息或上行信令。
可以理解的是,如果第二时间单元位于第一时间单元之后,由于第一时间单元已经满足协议约定的上行timing了,第二时间单元也必然满足上行timing。
如果第二时间单元位于第一时间单元之前,应确保第二时间单元满足协议约定的上行timing。
进一步地,终端101可以确定第二类型,这里的第二类型可以是第二时间单元所包括的子时间单元的类型。
例如,第二时间单元包括SBFD子时间单元,则第二类型为SBFD,再例如,第二时间单元包括non-SBFD子时间单元,则第二类型为non-SBFD。
进一步地,终端101可以确定第二类资源集合。其中,第二类资源集合是所述网络设备102为所述终端101在所述第二类型的子时间单元上配置的资源集合。
假设网络设备102为终端101配置了SBFD子时间单元对应的上行资源集合#1,以及non SBFD子时间单元对应的上行资源集合#2,如果第二类型为SBFD,则第二类资源集合就是SBFD子时间单元对应的上行资源集合#1,如果第二类型为non-SBFD,则第二类资源集合就是non-SBFD子时间单元对应的上行资源集合#2。
终端101可以接收网络设备102通过DCI或RRC信令发送的索引指示信息,在第二类资源集合中,基于该索引指示信息指示的资源索引确定第一资源。
例如,第二类资源集合为SBFD子时间单元对应的上行资源集合#1,网络设备102通过DCI指示的资源索引为1,则终端101在第二时间单元上(只包括SBFD子时间单元)将上行资源集合#1中的上行资源#1确定为第一资源。
在一些实施例中,第一传输方式用于指示第一时间单元可用于传输所述上行信息,第一终端101可以基于网络设备102的调度或基于预定义方式确定第一资源。
在一个示例中,网络设备102可以直接指示第一时间单元内用于传输上行信息的子时间单元类型。
例如,为了提高SBFD的可用性,网络设备102可以指示第一时间单元内用于传输上行信息的子时间单元类型为SBFD,终端101在第一时间单元上,基于SBFD子时间单元对应的第二类资源集合,确定第一资源。
再例如,为了降低调度复杂性,网络设备102可以指示第一时间单元内用于传输上行信息的子时间单元类型为non-SBFD,终端101在第一时间单元上,基于non-SBFD子时间单元对应的第二类资源集合,确定第一资源。
在一个示例中,终端101可以基于预定义方式,确定第一时间单元内用于传输上行信息的子时间单元类型。
例如,为了提高SBFD的可用性,终端101可以确定第一时间单元内用于传输上行信息的子时间单元类型为SBFD,终端101在第一时间单元上,基于SBFD子时间单元对应的第二类资源集合,确定第一资源。
再例如,为了降低调度复杂性,终端101可以确定第一时间单元内用于传输上行信息的子时间单元类型为non-SBFD,终端101在第一时间单元上,基于non-SBFD子时间单元对应的第二类资源集合,确定第一资源。
再例如,为了降低传输时延,提高传输效率,终端101可以确定第一时间单元内哪种类型的子时间单元的数目更多,假设SBFD子时间单元的数目更多,终端101在第一时间单元上,基于SBFD子时间单元对应的第二类资源集合,确定第一资源。
以上仅为示例性说明,本公开对终端101确定第一资源的方式不作限定。
步骤S2103,网络设备102确定第一传输方式。
在一些实施例中,网络设备102可以基于预定义方式,确定第一传输方式。
在一些实施例中,网络设备102可以基于上述方式1或方式2,确定第一传输方式,且第一传输方式用于指示第一时间单元不可用于传输上行信息。具体确定方式在此不再赘述。
步骤S2104,网络设备102确定第一资源。
在一些实施例中,网络设备102可以先确定第二时间单元,进而确定第二类型以及第二类资源集合。进一步地,网络设备102可以在第二类资源集合中确定第一资源,并向终端101发送资源指示信息,将所选择的第一资源的资源索引发送给终端101。具体确定第一资源的方式与终端101确定第一资源的方式类似,在此不再赘述。
步骤S2105,终端101在所述第一资源上,向网络设备102发送所述上行信息。
在一些实施例中,网络设备102在第一资源上接收上行信息。
在一些实施例中,信息等的名称不限定于实施例中所记载的名称,“信息(information)”、“消息(message)”、“信号(signal)”、“信令(signaling)”、“报告(report)”、“配置(configuration)”、“指示(indication)”、“指令(instruction)”、“命令(command)”、“信道”、“参数(parameter)”、“域”、“字段”、“符号(symbol)”、“码元(symbol)”、“码本(codebook)”、“码字(codeword)”、“码点(codepoint)”、“比特(bit)”、“数据(data)”、“程序(program)”、“码片(chip)”等术语可以相互替换。
在一些实施例中,“发送”、“发射”、“上报”、“下发”、“传输”、“双向传输”、“发送和/或接收”等术语可以相互替换。
在一些实施例中,“获取”、“获得”、“得到”、“接收”、“传输”、“双向传输”、“发送和/或接收”可以相互替换,其可以解释为从其他主体接收,从协议中获取,从高层获取,自身处理得到、自主实现等多种含义。
在一些实施例中,“特定(certain)”、“预定(preseted)”、“预设”、“设定”、“指示(indicated)”、“某一”、“任意”、“第一”等术语可以相互替换,“特定A”、“预定A”、“预设A”、“设定A”、“指示A”、“某一A”、“任意A”、“第一A”可以解释为在协议等中预先规定的A,也可以解释为通过设定、配置、或指示等得到的A,也可以解释为特定A、某一A、任意A、或第一A等,但不限于此。
在一些实施例中,本公开实施例所涉及的信息传输方法可以包括步骤S2101~步骤S2105中的至少一者。例如,步骤S2101可以作为独立实施例来实施,步骤S2102可以作为独立实施例来实施,步骤S2101+S2102可以作为独立实施例来实施,步骤S2103可以作为独立实施例来实施,步骤S2104可以作为独立实施例来实施,步骤S2103+S2104可以作为独立实施例来实施,步骤S2101~步骤S2104可以作为独立实施例来实施,步骤S2105可以作为独立实施例来实施,步骤S2101~步骤S2105可以作为独立实施例来实施,但不限于此。
在一些实施例中,步骤S2101是可选的,在不同实施例中可以对这些步骤中的一个或多个步骤进行省略或替代。例如,终端101采用其他方式确定第一传输方式时,步骤S2101可以不执行。
在一些实施例中,步骤S2102是可选的,在不同实施例中可以对这些步骤中的一个或多个步骤进行省略或替代。例如,由其他执行主体确定第一资源并发送给终端101时,步骤S2102可以不执行。
在一些实施例中,步骤S2103是可选的,在不同实施例中可以对这些步骤中的一个或多个步骤进行省略或替代。例如,网络设备102基于其他方式确定第一传输方式时,步骤S2103可以不执行。
在一些实施例中,步骤S2104是可选的,在不同实施例中可以对这些步骤中的一个或多个步骤进行省略或替代。例如,网络设备102获取其他执行主体指示的第一资源时,步骤S2104可以 不执行。
在一些实施例中,步骤S2105是可选的,在不同实施例中可以对这些步骤中的一个或多个步骤进行省略或替代。例如,终端101与网络设备102执行下行传输时,步骤S2105可以不执行。
在一些实施例中,步骤S2101至S2105是可选的,在不同实施例中可以对这些步骤中的一个或多个步骤进行省略或替代。
在一些实施例中,步骤S2101至S2105的执行顺序不作限定。
上述实施例中,终端和网络设备可以基于预定义方式,确定第一传输方式,即第一时间单元是否可用于上行信息传输,明确了终端在同时包括多种类型的子时间的第一时间单元上的行为,提高了SBFD的可用性和可靠性。
图2B是根据本公开实施例示出的信息传输方法的交互示意图。如图2B所示,本公开实施例涉及信息传输方法,上述方法包括:
步骤S2201,网络设备102向终端101发送第一指示信息或第二指示信息。
在一些实施例中,第一指示信息可以用于指示第二资源的索引。
在一个示例中,终端101可以基于第一指示信息,确定传输上行信息的第二资源的索引。
在一些实施例中,第二指示信息可以用于第三类型,所述第三类型是传输所述上行信息的子时间单元的类型。
在一个示例中,第三类型可以为SBFD或non-SBFD。
在一个示例中,第二指示信息可以用于指示SBFD,则终端101确定在第一时间单元内的SBFD子时间单元上进行上行传输。
在一个示例中,第二指示信息可以用于指示non-SBFD,则终端101确定在第一时间单元内的non-SBFD子时间单元上进行上行传输。
在一些实施例中,网络设备102可以通过但不限于DCI或RRC信令向终端101发送第一指示信息或第二指示信息。
在一些实施例中,终端101接收第一指示信息或第二指示信息。
步骤S2202,终端101确定第一传输方式。
在一些实施例中,第一传输方式可以用于指示第一时间单元是否可用于传输上行信息。
在一些实施例中,终端101基于第一指示信息,确定第一传输方式。具体可以包括以下方式:
方式3,基于第二资源是否位于第一资源范围内,确定第一传输方式。
在一个示例中,终端101可以确定第二资源是否位于第一资源范围内,其中,第一资源范围是网络设备102为所述终端101在第一类型的子时间单元上配置的资源范围。
示例性地,为了提高SBFD的可用性,终端101可以先判断第二资源是否位于SBFD子时间单元对应的资源范围内,即此时第一类型可以为SBFD。
示例性地,第一资源范围可以包括SBFD子时间单元所对应的时域范围,以及上行子带所占用的频域范围。
示例性地,为了提高确定第一传输方式的效率,可以判断第二资源的起始子时间单元是否位于SBFD子时间单元内,和/或,第二资源的起始资源块(Resource Block,RB)是否位于上行子带所占用的频域资源范围内,如果起始子时间单元位于SBFD子时间单元之外,和/或,第二资源的起始RB位于上行子带所占用的频域资源范围之外,则可以确定该第二资源位于SBFD子时间单元对应的第一资源范围之外。
如果第二资源所包括的子时间单元位于SBFD子时间单元内,且,第二资源的RB位于上行子带所占用的频域资源范围内,则可以确定第二资源位于SBFD子时间单元对应的资源范围内,此时可以确定第一传输方式为第一时间单元可用于传输上行信息。
进一步地,如果第二资源位于SBFD子时间单元对应的资源范围之外,则可以判断第二资源是否位于non-SBFD子时间单元对应的资源范围内,此时第一类型为non-SBFD。
示例性地,此时第一资源范围可以包括non-SBFD子时间单元所对应的时域范围,以及上行BWP所占用的频域范围。
如果第二资源所包括的子时间单元位于non-SBFD子时间单元内,且,第二资源的RB位于上行BWP所占用的频域资源范围内,则可以确定第二资源位于non-SBFD子时间单元对应的资源范围内,此时可以确定第一传输方式为第一时间单元可用于传输上行信息。
如果第二资源所包括的子时间单元位于non-SBFD子时间单元之外,和/或,第二资源的RB位于上行BWP所占用的频域资源范围之外,则可以确定第二资源位于non-SBFD子时间单元对应的资源范围之外,此时可以确定第一传输方式为第一时间单元不可用于传输上行信息。
示例性地,为了降低网络设备102的调度复杂度,终端101可以先判断第二资源是否位于 non-SBFD子时间单元对应的资源范围内,即此时第一类型可以为SBFD。
如果第二资源位于non-SBFD子时间单元对应的资源范围内,此时可以确定第一传输方式为第一时间单元可用于传输上行信息。
进一步地,如果第二资源位于SBFD子时间单元对应的资源范围之外,则可以判断第二资源是否位于SBFD子时间单元对应的资源范围内,此时第一类型为SBFD。
示例性地,此时第一资源范围可以包括SBFD子时间单元所对应的时域范围,以及上行子带所占用的频域范围。
如果第二资源位于SBFD子时间单元对应的资源范围内,此时可以确定第一传输方式为第一时间单元可用于传输上行信息。
如果第二资源位于SBFD子时间单元对应的资源范围之外,此时可以确定第一传输方式为第一时间单元不可用于传输上行信息。
示例性地,也可以确定第一时间单元中哪种类型子时间单元的数目更多,可以优先判断第二资源是否位于该类型子时间单元对应的资源范围内。具体判断方式在此不再赘述。
在一些实施例中,终端101基于第二指示信息,确定第一传输方式。具体可以包括以下方式:
方式4,确定所述第一传输方式用于指示第一时间单元可用于传输上行信息。
在一个示例中,第二指示信息指示的是传输所述上行信息的子时间单元的类型,显然,网络设备102是期望终端101在第一时间单元上传输上行信息的,因此可以直接确定第一传输方式用于指示第一时间单元可用于传输上行信息。
步骤S2203,终端101确定第一资源。
在一些实施例中,第一传输方式用于指示第一时间单元可用于传输上行信息的情况下,终端101可以采用以下方式确定第一资源:
在一个示例中,网络设备102发送了第一指示信息,终端101将第一指示信息所指示的第二资源确定为第一资源。
在一个示例中,网络设备102发送了第二指示信息,第二指示信息指示的是第三类型,即终端101传输上行信息的子时间单元类型。终端101可以确定第三类资源集合,该第三类资源集合是所述网络设备为所述终端在所述第三类型的子时间单元上配置的资源集合。进一步地,可以基于第三类资源集合,确定第一资源。例如,网络设备102通过DCI或RRC信令指示了资源索引,终端101在第三类资源集合中基于资源索引确定第一资源。
在一些实施例中,第一传输方式用于指示第一时间单元不可用于传输上行信息的情况下,终端101可以先确定第二时间单元,进而确定第二类型,并确定第二类资源集合,基于该第二类资源集合,确定第一资源,具体实现方式已经在前述实施例进行了介绍,此处不再赘述。
步骤S2204,网络设备102确定第一传输方式。
在一些实施例中,网络设备102可以先确定第一传输方式,如果第一传输方式为第一时间单元可用于传输上行信息,则向终端101发送了第一指示信息,且第一指示信息所指示的第二资源位于第一资源范围内。
如果第一传输方式为第一时间单元不可用于传输上行信息,则向终端101发送了第一指示信息,且第一指示信息所指示的第二资源位于第一资源范围之外。
此时,步骤S2204可以在步骤S2201之前执行。
在一些实施例中,网络设备102可以确定第一传输方式,且所述第一传输方式用于指示第一时间单元可用于传输上行信息。进一步地,网络设备102可以确定第三类型,即第一时间单元内传输上行信息的子时间单元类型。进一步地,网络设备102向终端101发送了第二指示信息,第二指示信息指示第三类型。
此时,步骤S2204可以在步骤S2201之前执行。
步骤S2205,网络设备102确定第一资源。
在一些实施例中,网络设备102确定所述第一传输方式用于指示第一时间单元可用于传输上行信息,且直接将第二资源确定为第一资源。此时步骤S2201可以在步骤S2205之后执行,即网络设备102确定了第二资源后,向终端101发送第一指示信息。
在一些实施例中,网络设备102确定所述第一传输方式用于指示第一时间单元不可用于传输上行信息,且向终端101发送了第一指示信息,网络设备102可以在第二时间单元上确定第一资源。确定第二时间单元以及第一资源的方式在此不再赘述。此时步骤S2201与步骤S2205的执行顺序不作限定。
在一些实施例中,网络设备102确定所述第一传输方式用于指示第一时间单元可用于传输上行信息,且向终端101发送了第二指示信息,第二指示信息用于指示该第三类型。此时步骤S2201 与步骤S2205的执行顺序不作限定。
进一步地,网络设备102在第三类资源集合中确定第一资源,该第三类资源集合是所述网络设备为所述终端在所述第三类型的子时间单元上配置的资源集合。进一步地,网络设备102通过DCI或RRC信令向终端101指示了资源索引,以便终端101在第三类资源集合中基于资源索引确定第一资源。
步骤S2206,终端101在所述第一资源上,向网络设备102发送所述上行信息。
在一些实施例中,步骤S2201至S2206是可选的,在不同实施例中可以对这些步骤中的一个或多个步骤进行省略或替代。
在一些实施例中,步骤S2201至S2206的执行顺序不作限定。
上述实施例中,终端可以基于网络设备发送的指示信息,确定第一传输方式,即第一时间单元是否可用于上行信息传输,明确了终端在同时包括多种类型的子时间的第一时间单元上的行为,提高了SBFD的可用性和可靠性。
图3A是根据本公开实施例示出的信息传输方法的交互示意图。如图3A所示,本公开实施例涉及信息传输方法,该方法可以由终端101执行,上述方法包括:
步骤S3101,确定第一传输方式。
在一些实施例中,步骤S3101的可选实现方式可以参见图2A的步骤S2101的可选实现方式、及图2A所涉及的实施例中其他关联部分,此处不再赘述。
在一些实施例中,步骤S3101的可选实现方式可以参见图2B的步骤S2202的可选实现方式、及图2B所涉及的实施例中其他关联部分,此处不再赘述。
步骤S3102,确定第一资源。
在一些实施例中,步骤S3102的可选实现方式可以参见图2A的步骤S2102的可选实现方式、及图2A所涉及的实施例中其他关联部分,此处不再赘述。
在一些实施例中,步骤S3102的可选实现方式可以参见图2B的步骤S2203的可选实现方式、及图2B所涉及的实施例中其他关联部分,此处不再赘述。
步骤S3103,发送上行信息。
在一些实施例中,终端101向网络设备102发送上行信息。
在一些实施例中,步骤S3103的可选实现方式可以参见图2A的步骤S2105的可选实现方式、及图2A所涉及的实施例中其他关联部分,此处不再赘述。
在一些实施例中,步骤S3103的可选实现方式可以参见图2B的步骤S2206的可选实现方式、及图2B所涉及的实施例中其他关联部分,此处不再赘述。
在一些实施例中,步骤S3101至S3103是可选的,在不同实施例中可以对这些步骤中的一个或多个步骤进行省略或替代。
在一些实施例中,步骤S3101至S3103的执行顺序不作限定。
上述实施例中,终端可以确定第一时间单元是否可用于上行信息传输,明确了终端在同时包括多种类型的子时间的第一时间单元上的行为,提高了SBFD的可用性和可靠性。
图3B是根据本公开实施例示出的信息传输方法的交互示意图。如图3B是所示,本公开实施例涉及信息传输方法,该方法可以由网络设备102执行,上述方法包括:
步骤S3201,确定第一传输方式。
在一些实施例中,步骤S3201的可选实现方式可以参见图2A的步骤S2103的可选实现方式、及图2A所涉及的实施例中其他关联部分,此处不再赘述。
在一些实施例中,步骤S3201的可选实现方式可以参见图2B的步骤S2204的可选实现方式、及图2B所涉及的实施例中其他关联部分,此处不再赘述。
步骤S3202,确定第一资源。
在一些实施例中,步骤S3202的可选实现方式可以参见图2A的步骤S2104的可选实现方式、及图2A所涉及的实施例中其他关联部分,此处不再赘述。
在一些实施例中,步骤S3202的可选实现方式可以参见图2B的步骤S2205的可选实现方式、及图2B所涉及的实施例中其他关联部分,此处不再赘述。
步骤S3203,获取上行信息。
在一些实施例中,网络设备102可以从终端101处获取该上行信息,但不限于此,也可以接收由其他主体发送的上行信息。
在一些实施例中,网络设备102获取按照预定义规则确定的上行信息。
在一些实施例中,网络设备102进行处理从而得到该上行信息。
在一些实施例中,步骤S3203被省略,网络设备102自主实现上行信息所指示的功能,或网 络设备102基于预定义规则或协议约定,获取上行信息,或上述功能为缺省或默认。
在一些实施例中,步骤S3203的可选实现方式可以参见图2A的步骤S2105的可选实现方式、及图2A所涉及的实施例中其他关联部分,此处不再赘述。
在一些实施例中,步骤S3203的可选实现方式可以参见图2B的步骤S2206的可选实现方式、及图2B所涉及的实施例中其他关联部分,此处不再赘述。
在一些实施例中,步骤S3201至S3203是可选的,在不同实施例中可以对这些步骤中的一个或多个步骤进行省略或替代。
在一些实施例中,步骤S3201至S3203的执行顺序不作限定。
上述实施例中,网络设备可以确定第一时间单元是否可用于上行信息传输,从而提高调度可靠性,且提高了SBFD的可用性和可靠性。
下面对上述过程进一步举例说明如下。
本公开实施例中,以第一时间单元的单位为slot,子时间单元的单位为符号,上行信息为PUCCH承载的UCI为例进行说明。
当网络设备为全双工终端分别提供针对于SBFD symbol的PUCCH配置以及针对于non-SBFD symbol的PUCCH配置时,如果传输PUCCH的slot内既包含SBFD symbol又包含non-SBFD symbol时,可以确定PUCCH resource。
在本公开实施例中,网络设备例如基站为终端分别配置了针对SBFD symbol的PUCCH资源以及针对non-SBFD symbol的PUCCH资源。在同时包含SBFD symbol和non-SBFD symbol的slot内,终端可以根据基站的指示信息或者预定义的方法,确定如何传输PUCCH。
终端侧:
基站为终端分别配置了针对SBFD symbol的PUCCH资源以及针对non-SBFD symbol的PUCCH资源。在同时包含SBFD symbol和non-SBFD symbol的slot内,终端根据基站的指示信息或者预定义的方法,确定如何在所述slot内传输PUCCH。
方法1,终端跳过该slot,并在该slot之后最近的可用slot上传输所述UCI或者在该slot之前最近的可用slot上传输所述UCI。
实际用于传输所述UCI的slot为SBFD slot或者为non-SBFD slot,本专利不做限制。
当终端在所述slot之前最近的可用slot上传输所述UCI时,必须满足协议中定义的上行timing。
方法2,终端根据基站指示的PUCCH resource确定,也即PUCCH resource的起始符号索引(starting symbol index)以及起始RB索引(starting RB index)进行判断。
如果基站指示的PUCCH resource标识(ID)指示的PUCCH resource完全位于UL subband范围内,则在SBFD symbol对应的PUCCH resource set内选取PUCCH resource;如果基站指示的PUCCH resource ID指示的PUCCH resource不能完全位于UL subband范围内,但是能够位于non-SBFD symbol内,则在non-SBFD symbol对应的PUCCH resource set内选取PUCCH resource;如果基站指示的PUCCH resource ID指示的PUCCH resource在所述slot内既不能完全位于non-SBFD symbol上也不能完全位于SBFD symbol上,则认为所述slot不能用于传输所述PUCCH。
方法3,终端根据指示信息,确定在此slot内的SBFD symbol上发送PUCCH或者在此slot内的non-SBFD symbol上发送PUCCH。
所述指示信息通过RRC signaling进行配置,或者通过DCI携带。
终端确定在此slot内的SBFD symbol上发送PUCCH,也即终端根据基站指示的PUCCH resource ID在SBFD symbol对应的PUCCH resource set内确定PUCCH resource;终端确定在此slot内的non-SBFD symbol上发送PUCCH,也即终端根据基站指示的PUCCH resource ID在non-SBFD symbol对应的PUCCH resource set内确定PUCCH resource。
方法4,终端不期待在同时包含了SBFD symbol和non-SBFD symbol的slot内传输PUCCH。
基站侧:
基站为终端分别配置了针对SBFD symbol的PUCCH资源以及针对non-SBFD symbol的PUCCH资源。在同时包含SBFD symbol和non-SBFD symbol的slot内,基站通过指示信息或者预定义的方法,确定终端如何传输PUCCH。
方法1,基站在该slot之后最近的可用slot上接收所述UCI或者在该slot之前最近的可用slot上接收所述UCI。
详细方法如终端侧所述,在此不再赘述。
方法2,基站根据分配个终端的用于传输所述UCI的PUCCH resource判断其在SBFD symbol对应的PUCCH resource上检测接收PUCCH,或者在non-SBFD symbol对应的PUCCH resource上检测接收PUCCH。
详细方法如终端侧所述,在此不再赘述。
方法3,基站指示所述终端在此slot内的SBFD symbol上发送PUCCH或者在此slot内的non-SBFD symbol上发送PUCCH。
详细方法如终端侧所述,在此不再赘述。
方法4,基站不期待在同时包含了SBFD symbol和non-SBFD symbol的slot内接收PUCCH。详细方法如终端侧所述,在此不再赘述。
实施例1,假设终端为版本19(Release-19,Rel-19)及后续版本终端,具有半双工能力或者具有全双工能力,本专利不做任何限定。假设基站侧在时分双工(Time Division Duplexing,TDD)的半静态(semi-static)DL符号上,或者时隙格式指示符(Slot Format Indicator,SFI)指示的DL符号上执行全双工操作,也即同时进行调度下行数据和上行数据。需要注意的是,基站侧亦可在TDD频段的semi-static UL符号上或者SFI指示的UL符号上执行全双工操作,也即同时进行调度下行数据和上行数据。所述semi-static flexible symbol通过基站发送的时分上个上下行公共配置(tdd-UL-DL-ConfigurationCommon),或者通过tdd-UL-DL-ConfigurationCommon以及时分双工上下行专用配置(tdd-UL-DL-ConfigurationDedicated)确定。在本实施例中,基站通过如下两种方式指示终端在所述DL符号上的传输方向:
基站为所述终端配置UL subband或者DL subband。在所述UL subband内,终端只能进行上行发送;在所述DL subband内,终端只能进行下行接收。基站在所述UL subband或者DL subband内进行数据信道的调度或者参考信号的指示。
当然,所述终端亦可在semi-static flexible symbol或者dynamic flexible symbol上执行全双工操作,本专利不做任何限制。
在本实施例中,例如图4A所示,假设基站通过TDD UL-DL configuration配置的时隙结构为DDDFU,也即在TDD配置周期内,前4个slot为DL slot,最后1个slot为flexible slot。当然,该实施例方法亦可直接应用于其他的TDD UL DL时隙结构。
在本实施例中,假设全双工终端可在SBFD slot内发送上行。所述SBFD slot为配置了UL subband或者DL subband,在本实施例中假设所述SBFD slot为配置了UL subband的DL slot。在所述SBFD slot中,active DL BWP和UL subband的关系如图4B所示,也UL subband所占的资源可完全包含在DL BWP内,或者不完全包含在DL BWP内,或者完全不包含在DL BWP内,本实施例不做任何限定。
在本实施例中,假设基站为支持SBFD的终端配置了分别针对于SBFD symbol的PUCCH配置以及针对SBFD symbol的PUCCH配置。所述PUCCH配置提供了特定符号类型上PUCCH传输的可用resource集合。
在本实施例中,假设基站指示终端在同时包含SBFD symbol和non-SBFD symbol的slot内传输PUCCH。所述指示信息为RRC signaling或者为DCI,本实施例不做任何限制。
在本实施例中,终端不在所述同时包含SBFD symbol和non-SBFD symbol的slot内传输PUCCH。所述终端在该slot之后最近的可用slot上传输所述UCI或者在该slot之前最近的可用slot上传输UCI。在之前或者之后slot上传输UCI的PUCCH resource根据前述基站指示信息确定。根据所述方法确定的,实际用于传输所述UCI的slot为SBFD slot或者为non-SBFD slot,本专利不做任何限制。
进一步地,当所述终端在所述slot之前最近的可用slot上传输UCI时,必须满足协议中定义的上行timing。
对应地,基站在前述终端实际发送PUCCH的slot上按照指示的PUCCH资源检测接收所述PUCCH。
实施例2,假设终端为Rel-19及后续版本终端,具有半双工能力或者具有全双工能力,本专利不做任何限定。假设基站侧在TDD频段的semi-static DL符号上或者SFI指示的DL符号上执行全双工操作,也即同时进行调度下行数据和上行数据。需要注意的是,基站侧亦可在TDD频段的semi-static UL符号上或者SFI指示的UL符号上执行全双工操作,也即同时进行调度下行数据和上行数据。所述semi-static flexible symbol通过基站发送的tdd-UL-DL-ConfigurationCommon或者通过tdd-UL-DL-ConfigurationCommon以及tdd-UL-DL-ConfigurationDedicated确定。在本实施例中,基站通过如下两种方式指示终端在所述DL符号上的传输方向:
基站为所述终端配置UL subband或者DL subband。在所述UL subband内,终端只能进行上行发送;在所述DL subband内,终端只能进行下行接收。基站在所述UL subband或者DL subband内进行数据信道的调度或者参考信号的指示。
当然,所述终端亦可在semi-static flexible symbol或者dynamic flexible symbol上执行全双工 操作,本专利不做任何限制。
在本实施例中,例如图4A所示,假设基站通过TDD UL-DL configuration配置的时隙结构为DDDFU,也即在TDD配置周期内,前4个slot为DL slot,最后1个slot为flexible slot。当然,该实施例方法亦可直接应用于其他的TDD UL DL时隙结构。
在本实施例中,假设全双工终端可在SBFD slot内发送上行。所述SBFD slot为配置了UL subband或者DL subband,在本实施例中假设所述SBFD slot为配置了UL subband的DL slot。在所述SBFD slot中,active DL BWP和UL subband的关系如图4B所示,也UL subband所占的资源可完全包含在DL BWP内,或者不完全包含在DL BWP内,或者完全不包含在DL BWP内,本实施例不做任何限定。
在本实施例中,假设基站为支持SBFD的终端配置了分别针对于SBFD symbol的PUCCH配置以及针对SBFD symbol的PUCCH配置。所述PUCCH配置提供了特定符号类型上PUCCH传输的可用resource集合。
在本实施例中,假设基站指示终端在同时包含SBFD symbol和non-SBFD symbol的slot内传输PUCCH。所述指示信息为RRC signaling或者为DCI,本实施例不做任何限制。
在本实施例中,终端根据基站指示的PUCCH resource所占时频资源判断能否在所述slot内传输PUCCH。具体地,如果基站指示的PUCCH resource ID指示的PUCCH resource完全位于UL subband范围内,则在SBFD symbol对应的PUCCH resource set内选取PUCCH resource;如果基站指示的PUCCH resource ID指示的PUCCH resource不能完全位于UL subband范围内,但是能够位于non-SBFD symbol内,则在non-SBFD symbol对应的PUCCH resource set内选取PUCCH resource;如果基站指示的PUCCH resource ID指示的PUCCH resource在所述slot内既不能完全位于non-SBFD symbol上也不能完全位于SBFD symbol上,则认为所述slot不能用于传输所述PUCCH。
对应地,基站在前述终端实际发送PUCCH的slot上按照指示的PUCCH资源检测接收所述PUCCH。
实施例3,假设终端为Rel-19及后续版本终端,具有半双工能力或者具有全双工能力,本专利不做任何限定。假设基站侧在TDD频段的semi-static DL符号上或者SFI指示的DL符号上执行全双工操作,也即同时进行调度下行数据和上行数据。需要注意的是,基站侧亦可在TDD频段的semi-static UL符号上或者SFI指示的UL符号上执行全双工操作,也即同时进行调度下行数据和上行数据。所述semi-static flexible symbol通过基站发送的tdd-UL-DL-ConfigurationCommon或者通过tdd-UL-DL-ConfigurationCommon以及tdd-UL-DL-ConfigurationDedicated确定。
在本实施例中,基站通过如下两种方式指示终端在所述DL符号上的传输方向:
基站为所述终端配置UL subband或者DL subband。在所述UL subband内,终端只能进行上行发送;在所述DL subband内,终端只能进行下行接收。基站在所述UL subband或者DL subband内进行数据信道的调度或者参考信号的指示。
当然,所述终端亦可在semi-static flexible symbol或者dynamic flexible symbol上执行全双工操作,本专利不做任何限制。
在本实施例中,例如图4A所示,假设基站通过TDD UL-DL configuration配置的时隙结构为DDDFU,也即在TDD配置周期内,前4个slot为DL slot,最后1个slot为flexible slot。当然,该实施例方法亦可直接应用于其他的TDD UL DL时隙结构。
在本实施例中,假设全双工终端可在SBFD slot内发送上行。所述SBFD slot为配置了UL subband或者DL subband,在本实施例中假设所述SBFD slot为配置了UL subband的DL slot。在所述SBFD slot中,active DL BWP和UL subband的关系如图4B所示,也UL subband所占的资源可完全包含在DL BWP内,或者不完全包含在DL BWP内,或者完全不包含在DL BWP内,本实施例不做任何限定。
在本实施例中,假设基站为支持SBFD的终端配置了分别针对于SBFD symbol的PUCCH配置以及针对SBFD symbol的PUCCH配置。所述PUCCH配置提供了特定符号类型上PUCCH传输的可用resource集合。
在本实施例中,假设基站指示终端在同时包含SBFD symbol和non-SBFD symbol的slot内传输PUCCH。所述指示信息为RRC signaling或者为DCI,本实施例不做任何限制。
在本实施例中,终端接收基站的指示信息,确定在此slot内的SBFD symbol上发送PUCCH或者在此slot内的non-SBFD symbol上发送PUCCH。具体地,终端确定在此slot内的SBFD symbol上发送PUCCH,也即终端根据基站指示的PUCCH resource ID在SBFD symbol对应的PUCCH resource set内确定PUCCH resource;终端确定在此slot内的non-SBFD symbol上发送PUCCH, 也即终端根据基站指示的PUCCH resource ID在non-SBFD symbol对应的PUCCH resource set内确定PUCCH resource。
在本实施例中,所述基站发送的PUCCH指示信息通过RRC signaling进行配置,或者通过DCI携带,本专利不做任何限定。
对应地,基站在前述终端实际发送PUCCH的slot上按照指示的PUCCH资源检测接收所述PUCCH。
实施例4,如实施例1-实施例3中所述场景,在本实施例中,终端不期待同时包含了SBFD symbol和non-SBFD symbol的slot内传输PUCCH。相应地,基站应当避免指示终端在同时包含了SBFD symbol和non-SBFD symbol地slot内传输PUCCH。
如果出现网络侧指示终端在同时包含了SBFD symbol和non-SBFD symbol的slot内传输PUCCH的情况,例如periodic PUCCH,或者开启了PUCCH的repetition,则终端将所述slot内的PUCCH传输延迟至下一个可用slot,基站亦在实际发送PUCCH的slot内检测接收PUCCH。
本公开实施例还提出用于实现以上任一方法的装置,例如,提出一装置,上述装置包括用以实现以上任一方法中各节点(例如终端、网络设备)所执行的各步骤的单元或模块。
应理解以上装置中各单元或模块的划分仅是一种逻辑功能的划分,在实际实现时可以全部或部分集成到一个物理实体上,也可以物理上分开。此外,装置中的单元或模块可以以处理器调用软件的形式实现:例如装置包括处理器,处理器与存储器连接,存储器中存储有指令,处理器调用存储器中存储的指令,以实现以上任一方法或实现上述装置各单元或模块的功能,其中处理器例如为通用处理器,例如中央处理单元(Central Processing Unit,CPU)或微处理器,存储器为装置内的存储器或装置外的存储器。或者,装置中的单元或模块可以以硬件电路的形式实现,可以通过对硬件电路的设计实现部分或全部单元或模块的功能,上述硬件电路可以理解为一个或多个处理器;例如,在一种实现中,上述硬件电路为专用集成电路(application-specific integrated circuit,ASIC),通过对电路内元件逻辑关系的设计,实现以上部分或全部单元或模块的功能;再如,在另一种实现中,上述硬件电路为可以通过可编程逻辑器件(programmable logic device,PLD)实现,以现场可编程门阵列(Field Programmable Gate Array,FPGA)为例,其可以包括大量逻辑门电路,通过配置文件来配置逻辑门电路之间的连接关系,从而实现以上部分或全部单元或模块的功能。以上装置的所有单元或模块可以全部通过处理器调用软件的形式实现,或全部通过硬件电路的形式实现,或部分通过处理器调用软件的形式实现,剩余部分通过硬件电路的形式实现。
在本公开实施例中,处理器是具有信号处理能力的电路,在一种实现中,处理器可以是具有指令读取与运行能力的电路,例如中央处理单元(Central Processing Unit,CPU)、微处理器、图形处理器(graphics processing unit,GPU)(可以理解为微处理器)、或数字信号处理器(digital signal processor,DSP)等;在另一种实现中,处理器可以通过硬件电路的逻辑关系实现一定功能,上述硬件电路的逻辑关系是固定的或可以重构的,例如处理器为专用集成电路(application-specific integrated circuit,ASIC)或可编程逻辑器件(programmable logic device,PLD)实现的硬件电路,例如FPGA。在可重构的硬件电路中,处理器加载配置文档,实现硬件电路配置的过程,可以理解为处理器加载指令,以实现以上部分或全部单元或模块的功能的过程。此外,还可以是针对人工智能设计的硬件电路,其可以理解为ASIC,例如神经网络处理单元(Neural Network Processing Unit,NPU)、张量处理单元(Tensor Processing Unit,TPU)、深度学习处理单元(Deep learning Processing Unit,DPU)等。
图5A是本公开实施例提出的终端的结构示意图。如图5A所示,终端5100可以包括:处理模块5101、发送模块5102。
在一些实施例中,上述处理模块5101被配置为确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元。
在一些实施例中,上述处理模块5101还被配置为基于所述第一传输方式,确定第一资源。
在一些实施例中,上述发送模块5102被配置为在所述第一资源上,向网络设备发送所述上行信息。
在一些实施例中,上述处理模块5101用于执行以上任一方法中终端5100执行的其他步骤(例如步骤S2101、步骤S2102、步骤S2202、步骤S2203,但不限于此)中的至少一者,此处不再赘述。
在一些实施例中,上述收发模块5102用于执行以上任一方法中终端5100执行的发送和/或接收等通信步骤(例如步骤S2105、步骤S2201、步骤S2206,但不限于此)中的至少一者,此处不再赘述。
图5B是本公开实施例提出的网络设备的结构示意图。如图5B所示,网络设备5200可以包括:处理模块5201、收发模块5202。
在一些实施例中,上述处理模块5201被配置为确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元。
在一些实施例中,上述处理模块5201还被配置为基于所述第一传输方式,确定第一资源。
在一些实施例中,上述收发模块5202被配置为在所述第一资源上,接收终端发送的所述上行信息。
在一些实施例中,上述处理模块5201用于执行以上任一方法中网络设备5200执行的其他步骤(例如步骤S2103、步骤S2104、步骤S2204、步骤S2205,但不限于此)中的至少一者,此处不再赘述。
在一些实施例中,上述收发模块5202用于执行以上任一方法中网络设备5200执行的发送和/或接收等通信步骤(例如步骤S2105、步骤S2201、步骤S2206,但不限于此)中的至少一者,此处不再赘述。
在一些实施例中,收发模块可以包括发送模块和/或接收模块,发送模块和接收模块可以是分离的,也可以集成在一起。可选地,收发模块可以与收发器相互替换。
在一些实施例中,处理模块可以是一个模块,也可以包括多个子模块。可选地,上述多个子模块分别执行处理模块所需执行的全部或部分步骤。可选地,处理模块可以与处理器相互替换。
图6A是本公开实施例提出的通信设备6100的结构示意图。通信设备6100可以是网络设备,也可以是支持网络设备实现以上任一方法的芯片、芯片系统、或处理器等,还可以是终端,或者支持终端实现以上任一方法的芯片、芯片系统、或处理器等。通信设备6100可用于实现上述方法实施例中描述的方法,具体可以参见上述方法实施例中的说明。
如图6A所示,通信设备6100包括一个或多个处理器6101。处理器6101可以是通用处理器或者专用处理器等,例如可以是基带处理器或中央处理器。基带处理器可以用于对通信协议以及通信数据进行处理,中央处理器可以用于对通信装置(如,基站、基带芯片,终端设备、终端设备芯片,DU或CU等)进行控制,执行程序,处理程序的数据。可选地,通信设备6100用于执行以上任一方法。可选地,一个或多个处理器6101用于调用指令以使得通信设备6100执行以上任一方法。
在一些实施例中,通信设备6100还包括一个或多个收发器6102。在通信设备6100包括一个或多个收发器6102时,收发器6102执行上述方法中的发送和/或接收等通信步骤(例如步骤S2105、步骤S2201、步骤S2206,但不限于此)中的至少一者,处理器6101执行其他步骤(例如步骤S2101、步骤S2102、步骤S2103、步骤S2104、步骤S2202、步骤S2203、步骤S2204、步骤S2205,但不限于此)中的至少一者。在可选的实施例中,收发器可以包括接收器和/或发送器,接收器和发送器可以是分离的,也可以集成在一起。可选地,收发器、收发单元、收发机、收发电路、接口电路、接口等术语可以相互替换,发送器、发送单元、发送机、发送电路等术语可以相互替换,接收器、接收单元、接收机、接收电路等术语可以相互替换。
在一些实施例中,通信设备6100还包括用于存储数据的一个或多个存储器6102。可选地,全部或部分存储器6102也可以处于通信设备6100之外。在可选的实施例中,通信设备6100可以包括一个或多个接口电路6104。可选地,接口电路6104与存储器6102连接,接口电路6104可用于从存储器6102或其他装置接收数据,可用于向存储器6102或其他装置发送数据。例如,接口电路6104可读取存储器6102中存储的数据,并将该数据发送给处理器6101。
以上实施例描述中的通信设备6100可以是网络设备,但本公开中描述的通信设备6100的范围并不限于此,通信设备6100的结构可以不受图6A的限制。通信设备可以是独立的设备或者可以是较大设备的一部分。例如通信设备可以是:1)独立的集成电路IC,或芯片,或,芯片系统或子系统;(2)具有一个或多个IC的集合,可选地,上述IC集合也可以包括用于存储数据,程序的存储部件;(3)ASIC,例如调制解调器(Modem);(4)可嵌入在其他设备内的模块;(5)接收机、终端设备、智能终端设备、蜂窝电话、无线设备、手持机、移动单元、车载设备、网络设备、云设备、人工智能设备等等;(6)其他等等。
图6B是本公开实施例提出的芯片6200的结构示意图。对于通信设备6100可以是芯片或芯片系统的情况,可以参见图6B所示的芯片6200的结构示意图,但不限于此。
芯片6200包括一个或多个处理器6201。芯片6200用于执行以上任一方法。
在一些实施例中,芯片6200还包括一个或多个接口电路6202。可选地,接口电路、接口、收发管脚等术语可以相互替换。在一些实施例中,芯片6200还包括用于存储数据的一个或多个存 储器6203。可选地,全部或部分存储器6203可以处于芯片6200之外。可选地,接口电路6202与存储器6203连接,接口电路6202可以用于从存储器6203或其他装置接收数据,接口电路6202可用于向存储器6203或其他装置发送数据。例如,接口电路6202可读取存储器6203中存储的数据,并将该数据发送给处理器6201。
在一些实施例中,接口电路6202执行上述方法中的发送和/或接收等通信步骤(例如步骤S2105、步骤S2201、步骤S2206,但不限于此)中的至少一者。接口电路6202执行上述方法中的发送和/或接收等通信步骤例如是指:接口电路6202执行处理器6201、芯片6200、存储器6203或收发器件之间的数据交互。在一些实施例中,处理器6201执行其他步骤(例如步骤S2101、步骤S2102、步骤S2103、步骤S2104、步骤S2202、步骤S2203、步骤S2204、步骤S2205,但不限于此)中的至少一者。
虚拟装置、实体装置、芯片等各实施例中所描述的各模块和/或器件可以根据情况任意组合或者分离。可选地,部分或全部步骤也可以由多个模块和/或器件协作执行,此处不做限定。
本公开还提出存储介质,上述存储介质上存储有指令,当上述指令在通信设备6100上运行时,使得通信设备6100执行以上任一方法。可选地,上述存储介质是电子存储介质。可选地,上述存储介质是计算机可读存储介质,但不限于此,其也可以是其他装置可读的存储介质。可选地,上述存储介质可以是非暂时性(non-transitory)存储介质,但不限于此,其也可以是暂时性存储介质。
本公开还提出程序产品,上述程序产品被通信设备6100执行时,使得通信设备6100执行以上任一方法。可选地,上述程序产品是计算机程序产品。
本公开还提出计算机程序,当其在计算机上运行时,使得计算机执行以上任一方法。
本领域技术人员在考虑说明书及实践这里公开的发明后,将容易想到本公开的其它实施方案。本公开旨在涵盖本公开的任何变型、用途或者适应性变化,这些变型、用途或者适应性变化遵循本公开的一般性原理并包括本公开未公开的本技术领域中的公知常识或者惯用技术手段。说明书和实施例仅被视为示例性的,本公开的真正范围和精神由下面的权利要求指出。
应当理解的是,本公开并不局限于上面已经描述并在附图中示出的精确结构,并且可以在不脱离其范围进行各种修改和改变。本公开的范围仅由所附的权利要求来限制。

Claims (27)

  1. 一种信息传输方法,其特征在于,所述方法由终端执行,所述方法包括:
    确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;
    基于所述第一传输方式,确定第一资源;
    在所述第一资源上,向网络设备发送所述上行信息。
  2. 根据权利要求1所述的方法,其特征在于,所述方法还包括:
    不期待在所述第一时间单元上向所述网络设备发送所述上行信息。
  3. 根据权利要求1或2所述的方法,其特征在于,所述确定第一传输方式,包括:
    基于预定义方式,确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息。
  4. 根据权利要求1所述的方法,其特征在于,所述方法还包括:
    接收所述网络设备发送的第一指示信息,所述第一指示信息用于指示第二资源的索引。
  5. 根据权利要求4所述的方法,其特征在于,所述确定第一传输方式,包括以下任一项:
    所述第二资源位于第一资源范围内,确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息;
    所述第二资源位于第一频域范围之外,确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息;
    其中,所述第一资源范围是所述网络设备为所述终端在第一类型的子时间单元上配置的资源范围。
  6. 根据权利要求5所述的方法,其特征在于,所述基于所述第一传输方式,确定第一资源,包括:
    所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息,基于第一类资源集合,确定所述第一资源;其中,所述第一类资源集合是所述网络设备为所述终端在所述第一类型的子时间单元上配置的资源集合。
  7. 根据权利要求3或5-6任一项所述的方法,其特征在于,所述基于所述第一传输方式,确定第一资源,包括:
    所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息,确定第二时间单元;其中,所述第二时间单元内包括一种类型的子时间单元;
    确定第二类型;其中,所述第二类型是所述第二时间单元所包括的子时间单元的类型;
    确定第二类资源集合;其中,所述第二类资源集合是所述网络设备为所述终端在所述第二类型的子时间单元上配置的资源集合;
    基于所述第二类资源集合,确定所述第一资源。
  8. 根据权利要求1所述的方法,其特征在于,所述方法还包括:
    接收所述网络设备发送的第二指示信息;其中,所述第二指示信息用于指示第三类型,所述第三类型是传输所述上行信息的子时间单元的类型。
  9. 根据权利要求8所述的方法,其特征在于,所述确定第一传输方式,包括:
    基于所述第二指示信息,确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息。
  10. 根据权利要求8或9所述的方法,其特征在于,所述基于所述第一传输方式,确定第一资源,包括:
    确定第三类资源集合;其中,所述第三类资源集合是所述网络设备为所述终端在所述第三类型的子时间单元上配置的资源集合;
    基于所述第三类资源集合,确定所述第一资源。
  11. 一种信息传输方法,其特征在于,所述方法由网络设备执行,所述方法包括:
    确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;
    基于所述第一传输方式,确定第一资源;
    在所述第一资源上,接收终端发送的所述上行信息。
  12. 根据权利要求11所述的方法,其特征在于,所述方法还包括:
    不期待在所述第一时间单元上接收所述终端发送的所述上行信息。
  13. 根据权利要求11或12所述的方法,其特征在于,所述确定第一传输方式,包括:
    基于预定义方式,确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息。
  14. 根据权利要求11所述的方法,其特征在于,所述方法还包括:
    向所述终端发送第一指示信息,所述第一指示信息用于指示第二资源的索引。
  15. 根据权利要求14所述的方法,其特征在于,所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息,所述第二资源位于第一频域范围内;或
    所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息,所述第二资源位于第一频域范围之外;
    其中,所述第一资源范围是所述网络设备为所述终端在第一类型的子时间单元上配置的资源范围。
  16. 根据权利要求15所述的方法,其特征在于,所述基于所述第一传输方式,确定第一资源,包括:
    所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息,基于第一类资源集合,确定所述第一资源;其中,所述第一类资源集合是所述网络设备为所述终端在所述第一类型的子时间单元上配置的资源集合。
  17. 根据权利要求13或15-16任一项所述的方法,其特征在于,所述基于所述第一传输方式,确定第一资源,包括:
    所述第一传输方式用于指示所述第一时间单元不可用于传输所述上行信息,确定第二时间单元;其中,所述第二时间单元内包括一种类型的子时间单元;
    确定第二类型;其中,所述第二类型是所述第二时间单元所包括的子时间单元的类型;
    确定第二类资源集合;其中,所述第二类资源集合是所述网络设备为所述终端在所述第二类型的子时间单元上配置的资源集合;
    基于所述第二类资源集合,确定所述第一资源。
  18. 根据权利要求11所述的方法,其特征在于,所述方法还包括:
    向所述终端发送第二指示信息;其中,所述第二指示信息用于指示第三类型,所述第三类型是传输所述上行信息的子时间单元的类型。
  19. 根据权利要求18所述的方法,其特征在于,所述确定第一传输方式,包括:
    确定所述第一传输方式,且所述第一传输方式用于指示所述第一时间单元可用于传输所述上行信息。
  20. 根据权利要求18或19所述的方法,其特征在于,所述基于所述第一传输方式,确定第一资源,包括:
    基于第三类资源集合,确定所述第一资源;其中,所述第三类资源集合是所述网络设备为所述终端在所述第三类型的子时间单元上配置的资源集合。
  21. 一种终端,其特征在于,包括:
    处理模块,被配置为确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;
    所述处理模块还被配置为基于所述第一传输方式,确定第一资源;
    发送模块,被配置为在所述第一资源上,向网络设备发送所述上行信息。
  22. 一种网络设备,其特征在于,包括:
    处理模块,被配置为确定第一传输方式,所述第一传输方式用于指示第一时间单元是否可用于传输上行信息;其中,所述第一时间单元内包括多种类型的子时间单元;
    所述处理模块还被配置为基于所述第一传输方式,确定第一资源;
    接收模块,被配置为在所述第一资源上,接收终端发送的所述上行信息。
  23. 一种通信装置,其特征在于,包括:
    一个或多个处理器;
    其中,所述处理器用于执行权利要求1-10中任一项所述的信息传输方法。
  24. 一种通信装置,其特征在于,包括:
    一个或多个处理器;
    其中,所述处理器用于执行权利要求11-20中任一项所述的信息传输方法。
  25. 一种通信系统,其特征在于,包括:
    终端,所述终端被配置为实现权利要求1-10中任一项所述的信息传输方法;
    网络设备,所述网络设备被配置为实现权利要求11-20中任一项所述的信息传输方法。
  26. 一种存储介质,所述存储介质存储有指令,其特征在于,当所述指令在通信设备上运行 时,使得所述通信设备执行如权利要求1-10或11-20中任一项所述的信息传输方法。
  27. 一种计算机程序产品,包括计算机程序,其特征在于,该计算机程序被处理器执行时用于实现权利要求1-10或11-20中任一项所述的信息传输方法。
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