WO2024060235A1 - 资源配置方法及装置 - Google Patents

资源配置方法及装置 Download PDF

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Publication number
WO2024060235A1
WO2024060235A1 PCT/CN2022/121044 CN2022121044W WO2024060235A1 WO 2024060235 A1 WO2024060235 A1 WO 2024060235A1 CN 2022121044 W CN2022121044 W CN 2022121044W WO 2024060235 A1 WO2024060235 A1 WO 2024060235A1
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WO
WIPO (PCT)
Prior art keywords
information
subband
time unit
indication information
resource
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PCT/CN2022/121044
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English (en)
French (fr)
Inventor
王磊
Original Assignee
北京小米移动软件有限公司
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Publication date
Application filed by 北京小米移动软件有限公司 filed Critical 北京小米移动软件有限公司
Priority to PCT/CN2022/121044 priority Critical patent/WO2024060235A1/zh
Publication of WO2024060235A1 publication Critical patent/WO2024060235A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • 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

  • the present disclosure relates to the field of communications, and in particular, to resource configuration methods and devices.
  • the Release-18 (Rel-18) full-duplex enhancement project will study the full-duplex solution, specifically, the network side can receive and send data simultaneously in one time slot.
  • the base station side needs to configure the uplink (UL) subband on the downlink (DL) symbol for the terminal or the base station configures the DL subband on the UL symbol for the terminal.
  • Time Division Duplexing (TDD) terminals have the following requirements:
  • the terminal can only receive data on the DL symbol but cannot send data
  • the terminal can only send data but cannot receive data on the UL symbol
  • the terminal can send or receive on a semi-static (semi-static) flexible symbol according to the configuration of the base station or the dynamic scheduling of the base station;
  • the terminal can only receive or send data based on the dynamic instructions of the base station on the dynamic flexible symbol.
  • TDD UL-DL configuration a semi-static time division duplex configuration
  • SFI Slot Format Indication
  • a cell is configured with one carrier, that is, the TDD UL-DL configuration and SFI act on all bandwidth parts (Bandwidth Part, BWP) within a carrier configured by the base station.
  • BWP Bandwidth Part
  • embodiments of the present disclosure provide a resource configuration method and device.
  • a resource configuration method is provided, and the method is executed by a base station, including:
  • a resource configuration method is provided, and the method is executed by a terminal, including:
  • Receive indication information sent by the base station wherein the indication information is used to determine second resource information after adjusting the first resource information occupied by the first subband, and the first subband is always located at a specified location in the time domain. Within the time unit, the transmission direction of information on the first subband is different from the transmission direction on the specified time unit;
  • the second resource information is determined.
  • a resource configuration device is provided, and the device is applied to a base station and includes:
  • the first determining module is configured to adjust the first resource information occupied by the first subband, and determine the adjusted second resource information occupied by the first subband; wherein the first subband is The domain is always located within the designated time unit, and the transmission direction of the information on the first subband is different from the transmission direction on the designated time unit;
  • the sending module is configured to send indication information to the terminal; wherein the indication information is used to determine the second resource information.
  • a resource configuration device is provided, and the device is applied to a terminal and includes:
  • the receiving module is configured to receive indication information sent by the base station; wherein the indication information is used to determine the second resource information after adjusting the first resource information occupied by the first subband, and the first subband is in The time domain is always located within the designated time unit, and the transmission direction of the information on the first subband is different from the transmission direction on the designated time unit;
  • the second determining module is configured to determine the second resource information based on the indication information.
  • a resource configuration device including:
  • Memory used to store instructions executable by the processor
  • the processor is configured to execute any one of the resource configuration methods described above on the base station side.
  • a resource configuration device including:
  • Memory used to store instructions executable by the processor
  • the processor is configured to execute any one of the resource configuration methods described above on the terminal side.
  • the base station can dynamically adjust the first resource information occupied by the first subband, determine the adjusted second resource information occupied by the first subband, and send indication information to the terminal.
  • the terminal side can Based on the indication information, the second resource information occupied by the adjusted first subband is determined.
  • the first subband is always located within a designated time unit in the time domain, and the transmission direction of information on the first subband is different from the transmission direction on the designated time unit.
  • the present disclosure can dynamically adjust the resource information occupied by the first subband configured on the network side, thereby improving the flexibility of network side scheduling during full-duplex communication, improving the system performance of full-duplex communication, and achieving high availability.
  • Fig. 1 is a schematic flow chart of a resource configuration method according to an exemplary embodiment.
  • Figure 2 is a schematic flowchart of another resource configuration method according to an exemplary embodiment.
  • Fig. 3 is a schematic flow chart of another resource configuration method according to an exemplary embodiment.
  • Figure 4 is a schematic flowchart of another resource configuration method according to an exemplary embodiment.
  • Figure 5 is a schematic flowchart of another resource configuration method according to an exemplary embodiment.
  • Figure 6 is a schematic flowchart of another resource configuration method according to an exemplary embodiment.
  • Figure 7 is a schematic flowchart of another resource configuration method according to an exemplary embodiment.
  • Figure 8 is a schematic flowchart of another resource configuration method according to an exemplary embodiment.
  • Fig. 9 is a schematic flow chart of another resource configuration method according to an exemplary embodiment.
  • Figure 10 is a schematic flowchart of another resource configuration method according to an exemplary embodiment.
  • Figure 11 is a block diagram of a resource configuration device according to an exemplary embodiment.
  • Figure 12 is a block diagram of another resource configuration device according to an exemplary embodiment.
  • Figure 13 is a schematic structural diagram of a resource configuration device according to an exemplary embodiment of the present disclosure.
  • Figure 14 is a schematic structural diagram of another resource configuration device according to an exemplary embodiment of the present disclosure.
  • first, second, third, etc. may be used in this disclosure to describe various information, the information should not be limited to these terms. These terms are only used to distinguish information of the same type from each other.
  • first information may also be called second information, and similarly, the second information may also be called first information.
  • word “if” as used herein may be interpreted as "when” or “when” or “in response to determining.”
  • the base station side has previously configured or instructed the first subroutine for the terminal through a semi-static configuration method, such as a TDD UL-DL configuration configuration method, or a dynamic scheduling method, such as an SFI dynamic indication method.
  • a semi-static configuration method such as a TDD UL-DL configuration configuration method
  • a dynamic scheduling method such as an SFI dynamic indication method.
  • the first subband is always located within a designated time unit in the time domain, and the transmission direction of information on the first subband is different from the transmission direction of the information on the designated time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be a Seamless Bidirectional Forwarding Detection (SBFD) time unit, wherein the SBFD time unit is a time unit on which information transmission with different transmission directions may be performed.
  • SBFD Seamless Bidirectional Forwarding Detection
  • the SBFD time unit is configured by the base station as an uplink time unit, the terminal can perform downlink reception on the SBFD time unit, and the base station can perform downlink transmission on the SBFD time unit.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit may be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the resource configuration method provided by this disclosure is first introduced from the base station side.
  • Figure 1 is a flow chart of a resource configuration method according to an embodiment, which can be executed by a base station. The method can include the following steps:
  • step 101 first resource information occupied by a first sub-band is adjusted to determine second resource information occupied by the first sub-band after the adjustment.
  • the first subband before or after the adjustment of the resource information occupied by the first subband, the first subband is always located within the specified time unit in the time domain, and the information on the first subband is The transmission direction is different from the transmission direction at the specified time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband based on at least one of the network side's service load, interference, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • step 102 indication information is sent to the terminal; wherein the indication information is used to determine the second resource information.
  • the indication information is the adjusted second resource information, that is, the indication information is the second resource information.
  • the base station side may pre-configure one or more index values available for the first subband and resource information corresponding to each index value for the terminal.
  • the base station can configure one or more index values available for the first subband and the resource information corresponding to each index value through Radio Resource Control (RRC) signaling.
  • RRC Radio Resource Control
  • the type of the index value may be a resource configuration index value
  • the resource information corresponding to each resource configuration index value may be as shown in Table 1, for example:
  • Resource configuration index value Resource information #0 Time domain resource #0, frequency domain resource #0 #1 Time domain resource #1, frequency domain resource #1 #2 Time domain resource #2, frequency domain resource #2 #3 Time domain resource #3, frequency domain resource #3 ... ...
  • the indication information sent by the base station side may be the resource configuration index value used by the adjusted first subband.
  • the base station Just send the adjusted resource configuration index value used by the first subband to the terminal.
  • the relationship between the bit value of the indication information sent by the base station and the indicated resource configuration index value is as shown in Table 2, for example.
  • Bit value indicating information The indicated resource configuration index value 00 #0 01 #1 10 #2 11 #3 ... ...
  • the type of the index value may be a subband index value, and resource information corresponding to each subband index value is shown in Table 3:
  • the base station can configure one or more available subband index values for the terminal through RRC signaling, as well as the resource configuration information corresponding to each subband index value.
  • the base station may send indication information to the terminal, where the indication information is used to indicate the adjusted activated subband index value.
  • the length of the indication information may be log 2 (N) bits, where N refers to the total number of available subband index values.
  • the relationship between the bit value of the indication information sent by the base station and the indicated resource configuration index value is as shown in Table 4, for example.
  • the indication information may also indicate other contents, so that the terminal side determines the second resource information occupied by the adjusted first subband based on the indication information. This disclosure does not limit this. .
  • the resource information occupied by the first subband configured on the network side can be dynamically adjusted, which improves the flexibility of network-side scheduling during full-duplex communication, improves the system performance of full-duplex communication, and has high availability.
  • Figure 2 is a flow chart of a resource configuration method according to an embodiment, which can be executed by a base station.
  • the method can include the following steps:
  • step 201 the first resource information occupied by the first subband is adjusted, and the adjusted second resource information occupied by the first subband is determined.
  • the first subband before or after the adjustment of the resource information occupied by the first subband, the first subband is always located within the specified time unit in the time domain, and the information on the first subband is The transmission direction is different from the transmission direction at the specified time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including an uplink subband, or a flexible time unit including an uplink subband, or an uplink time unit including a downlink subband, or a flexible time unit including a downlink subband, and the present disclosure does not limit this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband based on at least one of the network side's service load, interference, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • step 202 indication information is sent to the terminal through scheduling information; wherein the indication information is used to determine the second resource information.
  • the base station may send the indication information to the terminal through uplink grant (UL grant) information.
  • UL grant uplink grant
  • the base station may send the indication information to the terminal through uplink grant information used to schedule a Physical Uplink Shared Channel (PUSCH).
  • PUSCH Physical Uplink Shared Channel
  • the base station can send the indication information to the terminal through downlink configuration (DL assignment) information.
  • DL assignment downlink configuration
  • the base station sends the indication information to the terminal through downlink configuration information used to schedule a Physical Downlink Shared Channel (PDSCH).
  • PDSCH Physical Downlink Shared Channel
  • the indication information is the adjusted second resource information, that is, the indication information is the second resource information.
  • the base station side may pre-configure one or more index values available for the first subband for the terminal, as well as resource information corresponding to each index value.
  • the base station may configure one or more index values available for the first subband and resource information corresponding to each index value through RRC signaling.
  • the type of the index value is a resource configuration index value
  • the resource information corresponding to each resource configuration index value is shown in the above Table 1. Accordingly, the indication information sent by the base station can be the resource configuration index value used by the adjusted first subband.
  • the specific implementation method has been introduced in the above embodiment and will not be repeated here.
  • the type of the index value is a subband index value
  • the resource information corresponding to each subband index value is, for example, as shown in Table 3 above.
  • the indication information sent by the base station side may be the subband index value activated after adjustment.
  • the specific implementation has been introduced in the above embodiment and will not be repeated here.
  • the base station may send the indication information to the terminal through scheduling information, so that the terminal determines the second resource information occupied by the adjusted first subband based on the indication information.
  • the present disclosure can dynamically adjust the resource information occupied by the first subband configured on the network side, improves the flexibility of network side scheduling during full-duplex communication, improves the system performance of full-duplex communication, and has high availability.
  • FIG. 3 is a flow chart of a resource configuration method according to an embodiment, which may be executed by a base station. The method may include the following steps:
  • step 301 first resource information occupied by a first sub-band is adjusted, and second resource information occupied by the first sub-band after the adjustment is determined.
  • the first subband before or after adjusting the resource information occupied by the first subband, the first subband is always located within a specified time unit in the time domain, and a transmission direction of information on the first subband is different from a transmission direction on the specified time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband based on at least one of the network side's service load, interference, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • step 302 indication information is sent to the terminal through group common downlink control information DCI; wherein the indication information is used to determine the second resource information.
  • the base station may send the indication information to the terminal through group common downlink control information (group common DCI).
  • group common DCI group common downlink control information
  • the group public DCI adopts the first format and can be scrambled by a Radio Network Temporary Identity (RNTI) corresponding to the specified time unit.
  • RNTI Radio Network Temporary Identity
  • the first format is a dedicated DCI format for transmitting the indication information, that is, the first format may be different from the DCI format agreed upon in the existing protocol, and a corresponding DCI format may be separately defined for transmitting the indication information.
  • the base station sends the indication information to the terminal by adopting the group common DCI in the first format.
  • the group common DCI of the first format when used to transmit the indication information, the group common DCI may be scrambled using the RNTI corresponding to the specified time unit, such as SBFD-RNTI, so that the terminal side determines that the group common DCI is the group common DCI for transmitting the indication information based on the SBFD-RNTI.
  • the group common DCI can reuse a second format, and the second format can be an existing DCI format in the protocol, such as DCI format (format) 0_2.
  • the group common DCI used to transmit the indication information can also multiplex other DCI formats in the protocol, and this disclosure does not limit this.
  • the terminal can report the hybrid automatic repeat request confirmation (Hybrid Automatic Repeat reQuest) of the group common DCI to the base station. -Acknowledge, HARQ-ACK) result.
  • Hybrid Automatic Repeat reQuest Hybrid Automatic Repeat reQuest
  • the base station determines whether the terminal has received the group of public DCI based on the HARQ-ACK result. If the terminal does not successfully receive the group of public DCI, the base station can send the group of public DCI carrying the indication information to the terminal again by retransmission.
  • the indication information is the adjusted second resource information, that is, the indication information is the second resource information.
  • the base station side may pre-configure one or more index values available for the first subband for the terminal, as well as resource information corresponding to each index value.
  • the base station may configure one or more index values available for the first subband and resource information corresponding to each index value through RRC signaling.
  • the base station side may pre-configure one or more index values available for the first subband for the terminal, as well as resource information corresponding to each index value.
  • the base station may configure one or more index values available for the first subband and resource information corresponding to each index value through RRC signaling.
  • the base station may send the indication information to the terminal through the group common downlink control information, so that the terminal determines the second resource information occupied by the adjusted first subband based on the indication information.
  • the present disclosure can dynamically adjust the resource information occupied by the first subband configured on the network side, improves the flexibility of network side scheduling during full-duplex communication, improves the system performance of full-duplex communication, and has high availability.
  • Figure 4 is a flow chart of a resource configuration method according to an embodiment, which can be executed by a base station.
  • the method can include the following steps:
  • step 401 the first resource information occupied by the first subband is adjusted, and the adjusted second resource information occupied by the first subband is determined.
  • the first subband before or after adjusting the resource information occupied by the first subband, the first subband is always located within a specified time unit in the time domain, and a transmission direction of information on the first subband is different from a transmission direction on the specified time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband based on at least one of the network side's service load, interference, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • step 402 indication information is sent to the terminal through the media access control unit MAC CE; wherein the indication information is used to determine the second resource information.
  • the base station may send the indication information to the terminal through a Media Access Control Element (MAC CE).
  • MAC CE Media Access Control Element
  • the indication information is the adjusted second resource information, that is, the indication information is the second resource information.
  • the base station side may pre-configure one or more index values available for the first subband for the terminal, as well as resource information corresponding to each index value.
  • the base station may configure one or more index values available for the first subband and resource information corresponding to each index value through RRC signaling.
  • the type of the index value is a resource configuration index value
  • the resource information corresponding to each resource configuration index value is, for example, as shown in Table 1 above.
  • the indication information sent by the base station may be the resource configuration index value used by the adjusted first subband.
  • the type of the index value is a subband index value
  • the resource information corresponding to each subband index value is, for example, as shown in Table 3 above.
  • the indication information sent by the base station side may be the adjusted activated subband index value.
  • the specific implementation manner has been introduced in the above embodiment and will not be described again here.
  • the base station may send the indication information to the terminal through the MAC CE, so that the terminal determines the second resource information occupied by the adjusted first subband based on the indication information.
  • the present disclosure can dynamically adjust the resource information occupied by the first subband configured on the network side, improves the flexibility of network side scheduling during full-duplex communication, improves the system performance of full-duplex communication, and has high availability.
  • Figure 5 is a flow chart of a resource configuration method according to an embodiment, which can be executed by a base station.
  • the method can include the following steps:
  • step 501 first resource information occupied by a first sub-band is adjusted, and second resource information occupied by the first sub-band after the adjustment is determined.
  • the first subband before or after the adjustment of the resource information occupied by the first subband, the first subband is always located within the specified time unit in the time domain, and the information on the first subband is The transmission direction is different from the transmission direction at the specified time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband based on at least one of the network side's service load, interference, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • step 502 indication information is sent to the terminal; wherein the indication information is used to determine the second resource information.
  • the base station can send indication information to the terminal through scheduling information.
  • the specific implementation method is similar to step 202 and will not be described again here.
  • the base station can send indication information to the terminal through the group common DCI.
  • the specific implementation method is similar to step 302 and will not be described again here.
  • the base station can send indication information to the terminal through MAC CE.
  • the specific implementation method is similar to step 402 and will not be described again here.
  • step 503 a starting validity time unit of the second resource information is determined.
  • the second resource information after the base station sends the indication information for determining the second resource information to the terminal, the second resource information cannot take effect immediately and needs to wait for the terminal side to receive, parse, and determine the specific information content of the second resource information before it can take effect.
  • the base station side needs to determine a starting validity time unit of the second resource information, so that starting from the starting validity time unit, the resources corresponding to the second resource information are used to transmit information with the terminal.
  • the starting effective time unit may be the first time unit associated with the indication information.
  • the first time unit may be any of the following: a time unit with uplink authorization indicated by the uplink authorization information used to send the indication information; a time unit used to confirm the HARQ-ACK result of the hybrid automatic repeat request of the PDSCH The time unit of Send the indication information; a time unit used to carry the HARQ-ACK result of the MAC CE; wherein the MAC CE is used to send the indication information.
  • the first time unit may be the first time unit with uplink authorization indicated by the uplink authorization information used to send the indication information.
  • the starting effective time unit may be a second time unit located after the first time unit and separated from the first associated time unit by a preset time unit number.
  • the number of preset time units may be a positive integer, which is not limited in this disclosure.
  • the starting effective time unit is slot #m1.
  • the first time unit is slot#m2 used to carry the hybrid automatic repeat request confirmation HARQ-ACK result of the PDSCH, and the starting effective time unit is slot#m2.
  • the first time unit is slot #m3 used to carry the HARQ-ACK result of the group's common DCI, and the preset number of time units is 2, then the starting effective time unit is slot #(m2+3).
  • the first time unit is slot #m4 used to carry the HARQ-ACK result of MAC CE
  • the second time unit is located after the first time unit and is spaced 2 times from the first associated time unit. slot, you can determine that the starting effective time unit is slot#(m4+3).
  • step 504 starting from the initial validity time unit, use the resource corresponding to the second resource information to transmit at least one of a reference signal and a control channel with the terminal.
  • the base station may use the resources corresponding to the second resource information to transmit information with the terminal starting from the initial validity time unit.
  • the information here includes but is not limited to reference signals and control channels. at least one of them.
  • the reference signal includes but is not limited to the cell reference signal (cell-specific reference signal), the channel state information reference signal (Channel State Information-Reference Signal CSI-RS), etc.
  • Control channels include but are not limited to Physical Uplink Control Channel (PUSCH), Physical Downlink Control Channel (Physical Downlink Control Channel, PDCCH), etc.
  • the base station can send the indication information to the terminal so that the terminal can determine the second resource information occupied by the adjusted first sub-band based on the indication information. Further, the base station can determine the starting effective time unit of the second resource information, and use the resources corresponding to the second resource information to transmit at least one of the reference signal and the control channel with the terminal starting from the starting effective time unit.
  • the present disclosure can dynamically adjust the resource information occupied by the first sub-band configured on the network side, improve the flexibility of the network side scheduling during full-duplex communication, improve the system performance of full-duplex communication, and have high availability.
  • FIG. 6 is a flow chart of a resource configuration method according to an embodiment, which can be executed by a terminal. The method can include the following steps:
  • step 601 receive indication information sent by the base station.
  • the indication information is used to determine the second resource information after adjusting the first resource information occupied by the first subband.
  • the first subband before or after the adjustment of the resource information occupied by the first subband, the first subband is always located within the specified time unit in the time domain, and the information on the first subband is The transmission direction is different from the transmission direction at the specified time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband according to at least one of the network side's service load situation, interference situation, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • the terminal may receive the indication information sent by the network side.
  • step 602 the second resource information is determined based on the indication information.
  • the terminal can determine the second resource information occupied by the adjusted first subband based on the instruction information issued by the network side.
  • the second resource information includes but is not limited to time domain resource information and frequency domain resources. at least one item of information. That is, the terminal can determine at least one of the time domain resource information and frequency domain resource information occupied by the adjusted first subband based on the indication information issued by the network side.
  • the indication information is the adjusted second resource information, that is, the indication information is the second resource information.
  • the terminal directly determines the second resource information occupied by the adjusted first subband based on the indication information.
  • the base station side may pre-configure one or more index values available for the first subband for the terminal, as well as resource information corresponding to each index value.
  • the base station may configure one or more index values available for the first subband and resource information corresponding to each index value through RRC signaling.
  • the type of the index value is a resource configuration index value
  • the resource information corresponding to each resource configuration index value is shown in Table 1, for example.
  • the indication information sent by the base station side may be the resource configuration index value used by the adjusted first subband.
  • the terminal side may determine the second resource information occupied by the adjusted first subband based on Table 1 and the indication information.
  • the resource configuration index value corresponding to the first resource configuration used by the first subband before adjustment is #1
  • the resource configuration index value used by the first subband after adjustment is #0
  • the base station will use the adjusted first resource configuration index value.
  • the resource configuration index value used by the subband can be sent to the terminal.
  • the terminal side can determine the second resource information occupied by the adjusted first subband based on Table 1 and the indication information, that is, the resource configuration index value #
  • the time domain resource #0 and frequency domain resource #0 corresponding to 0 are used as the second resource information.
  • the type of the index value is a subband index value
  • the resource information corresponding to each subband index value is as shown in Table 3.
  • the base station can configure one or more available subband index values for the terminal through RRC signaling, as well as the resource configuration information corresponding to each subband index value.
  • the base station may send indication information to the terminal through scheduling information, where the indication information is used to indicate the subband index value activated after adjustment.
  • the terminal determines the second resource information occupied by the first subband after adjustment based on Table 3 and the indication information sent by the base station side.
  • the base station sends indication information to the terminal through scheduling information, and the index value of the adjusted activated subband indicated by the indication information is #3, then the terminal determines the second resource configuration occupied by the adjusted first subband based on Table 3.
  • the information includes time domain resource #3 and frequency domain resource #3.
  • the indication information may also indicate other contents, so that the terminal side determines the second resource information occupied by the adjusted first subband based on the indication information. This disclosure does not limit this. .
  • Figure 7 is a flow chart of a resource configuration method according to an embodiment, which can be executed by a terminal. The method can include the following steps:
  • step 701 receive indication information sent by the base station through scheduling information.
  • the indication information is used to determine the second resource information after adjusting the first resource information occupied by the first subband.
  • the first subband before or after the adjustment of the resource information occupied by the first subband, the first subband is always located within the specified time unit in the time domain, and the information on the first subband is The transmission direction is different from the transmission direction at the specified time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband based on at least one of the network side's service load, interference, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • the terminal may receive the indication information sent by the base station through uplink authorization information.
  • the terminal may receive the indication information sent by the base station through the uplink grant information used to schedule the physical uplink shared channel.
  • the terminal may receive the indication information sent by the base station through downlink configuration information.
  • the terminal may receive the indication information sent by the base station through downlink configuration information for scheduling PDSCH.
  • step 702 the second resource information is determined based on the indication information.
  • the terminal may determine the second resource information occupied by the adjusted first subband based on the instruction information issued by the network side, including but not limited to determining the adjusted second resource information occupied by the first subband. At least one of time domain resource information and frequency domain resource information.
  • the indication information is the adjusted second resource information, that is, the indication information is the second resource information.
  • the terminal directly determines the second resource information occupied by the adjusted first subband based on the indication information.
  • the base station side may pre-configure one or more index values available for the first subband for the terminal, as well as resource information corresponding to each index value.
  • the base station may configure one or more index values available for the first subband and resource information corresponding to each index value through RRC signaling.
  • the type of the index value is a resource configuration index value
  • the resource information corresponding to each resource configuration index value is as shown in Table 1.
  • the indication information sent by the base station side may be the resource configuration index value used by the adjusted first subband.
  • the terminal side may determine the second resource information occupied by the adjusted first subband based on Table 1 and the indication information.
  • the type of the index value is a subband index value
  • the resource information corresponding to each subband index value is as shown in Table 3.
  • the base station can configure one or more available subband index values for the terminal through RRC signaling, as well as the resource configuration information corresponding to each subband index value.
  • the base station may send indication information to the terminal through scheduling information, where the indication information is used to indicate the subband index value activated after adjustment.
  • the terminal determines the second resource information occupied by the first subband after adjustment based on Table 3 and the indication information sent by the base station side.
  • the indication information may also indicate other contents, so that the terminal side determines the second resource information occupied by the adjusted first subband based on the indication information. This disclosure does not limit this. .
  • the purpose of dynamically adjusting the resource information occupied by the first subband configured on the network side is achieved, the flexibility of network-side scheduling during full-duplex communication is improved, and the system performance of full-duplex communication is improved. , high availability.
  • Figure 8 is a flow chart of a resource configuration method according to an embodiment, which can be executed by a terminal. The method can include the following steps:
  • step 801 receive indication information sent by the base station through group common downlink control information DCI.
  • the indication information is used to determine the second resource information after adjusting the first resource information occupied by the first subband.
  • the first subband before or after adjusting the resource information occupied by the first subband, the first subband is always located within a specified time unit in the time domain, and a transmission direction of information on the first subband is different from a transmission direction on the specified time unit.
  • the information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband based on at least one of the network side's service load, interference, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • the terminal may receive the indication information sent by the base station through the group common DCI.
  • the group common DCI may be in the first format and may be scrambled by the RNTI corresponding to the designated time unit.
  • the first format is a dedicated DCI format used to transmit the indication information, that is, the first format may be different from the DCI format agreed in the existing protocol, and the corresponding DCI format may be separately defined in order to transmit the indication information.
  • the base station sends the indication information to the terminal by using the group common DCI in the first format.
  • the group common DCI in the first format when used to transmit the indication information, the group common DCI may be scrambled using the RNTI corresponding to the designated time unit, such as SBFD-RNTI. So that the terminal side determines that the group of common DCIs is the group of common DCIs used to transmit indication information based on the SBFD-RNTI.
  • the group common DCI may multiplex a second format, and the second format may be an existing DCI format in the protocol, such as DCI format 0_2.
  • the group common DCI used to transmit the indication information can also multiplex other DCI formats in the protocol, which is not limited in this disclosure.
  • the terminal after receiving the indication information sent through the group common DCI, the terminal reports the HARQ-ACK result of the group common DCI to the base station.
  • the base station determines whether the terminal successfully receives the group of public DCI based on the HARQ-ACK result. If the terminal fails to successfully receive the group of public DCI, the base station can retransmit the group of public DCI carrying the indication information to the terminal.
  • step 802 the second resource information is determined based on the indication information.
  • the terminal may determine the second resource information occupied by the adjusted first subband based on the instruction information issued by the network side, including but not limited to determining the adjusted second resource information occupied by the first subband. At least one of time domain resource information and frequency domain resource information.
  • the indication information is the adjusted second resource information, that is, the indication information is the second resource information.
  • the terminal directly determines the second resource information occupied by the adjusted first subband based on the indication information.
  • the base station side may pre-configure one or more index values available for the first subband for the terminal, as well as resource information corresponding to each index value.
  • the base station may configure one or more index values available for the first subband and resource information corresponding to each index value through RRC signaling.
  • the type of the index value is a resource configuration index value
  • the resource information corresponding to each resource configuration index value is shown in Table 1, for example.
  • the indication information sent by the base station side may be the resource configuration index value used by the adjusted first subband.
  • the terminal side may determine the second resource information occupied by the adjusted first subband based on Table 1 and the indication information.
  • the type of the index value is a subband index value
  • the resource information corresponding to each subband index value is as shown in Table 3.
  • the base station can configure one or more available subband index values for the terminal through RRC signaling, as well as the resource configuration information corresponding to each subband index value.
  • the base station may send indication information to the terminal through scheduling information, where the indication information is used to indicate the adjusted activated subband index value.
  • the terminal determines the adjusted second resource information occupied by the first subband based on Table 3 and the indication information sent by the base station.
  • the indication information may also indicate other contents, so that the terminal side can determine the second resource information occupied by the first subband after adjustment based on the indication information.
  • the present disclosure does not limit this.
  • the purpose of dynamically adjusting the resource information occupied by the first subband configured on the network side is achieved, the flexibility of network side scheduling during full-duplex communication is improved, the system performance of full-duplex communication is improved, and the availability is high.
  • Figure 9 is a flow chart of a resource configuration method according to an embodiment, which can be executed by a terminal.
  • the method can include the following steps:
  • step 901 receive the indication information sent by the base station through the MAC CE.
  • the indication information is used to determine the second resource information after adjusting the first resource information occupied by the first subband.
  • the first subband before or after the adjustment of the resource information occupied by the first subband, the first subband is always located within the specified time unit in the time domain, and the information on the first subband is The transmission direction is different from the transmission direction at the specified time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband based on at least one of the network side's service load, interference, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • the base station may send the indication information to the terminal through MAC CE.
  • step 902 the second resource information is determined based on the indication information.
  • the terminal can determine the second resource information occupied by the adjusted first subband based on the indication information sent by the network side, including but not limited to determining at least one of the time domain resource information and frequency domain resource information occupied by the adjusted first subband.
  • the indication information is the adjusted second resource information, that is, the indication information is the second resource information.
  • the terminal directly determines the second resource information occupied by the adjusted first subband based on the indication information.
  • the base station side may pre-configure one or more index values available for the first subband for the terminal, as well as resource information corresponding to each index value.
  • the base station may configure one or more index values available for the first subband and resource information corresponding to each index value through RRC signaling.
  • the type of the index value is a resource configuration index value
  • the resource information corresponding to each resource configuration index value is shown in Table 1, for example.
  • the indication information sent by the base station side may be the resource configuration index value used by the adjusted first subband.
  • the terminal side may determine the second resource information occupied by the adjusted first subband based on Table 1 and the indication information.
  • the type of the index value is a subband index value
  • the resource information corresponding to each subband index value is as shown in Table 3.
  • the base station can configure one or more available subband index values for the terminal through RRC signaling, as well as the resource configuration information corresponding to each subband index value.
  • the base station may send indication information to the terminal through scheduling information, where the indication information is used to indicate the adjusted activated subband index value.
  • the terminal determines the adjusted second resource information occupied by the first subband based on Table 3 and the indication information sent by the base station.
  • the indication information may also indicate other contents, so that the terminal side determines the second resource information occupied by the adjusted first subband based on the indication information. This disclosure does not limit this. .
  • the purpose of dynamically adjusting the resource information occupied by the first subband configured on the network side is achieved, the flexibility of network-side scheduling during full-duplex communication is improved, and the system performance of full-duplex communication is improved. , high availability.
  • Figure 10 is a flow chart of a resource configuration method according to an embodiment, which can be executed by a terminal.
  • the method can include the following steps:
  • step 1001 indication information sent by a base station is received.
  • the indication information is used to determine the second resource information after adjusting the first resource information occupied by the first subband.
  • the first subband before or after adjusting the resource information occupied by the first subband, the first subband is always located within a specified time unit in the time domain, and a transmission direction of information on the first subband is different from a transmission direction on the specified time unit.
  • information includes but is not limited to signaling, signals, data, etc.
  • the designated time unit may be an SBFD time unit.
  • the SBFD time unit is a time unit in which information transmission with different transmission directions can be performed.
  • the SBFD time unit may be a downlink time unit including the uplink subband, or a flexible time unit including the uplink subband, or an uplink time unit including the downlink subband, or a flexible time unit including the downlink subband.
  • the present disclosure There is no limit to this.
  • the specified time unit can be in units of slot, symbol, span, etc., and this disclosure does not limit this.
  • a span includes multiple consecutive symbols.
  • the first subband may be a downlink subband on an uplink time unit or a flexible time unit, or the first subband may be an uplink subband on a downlink time unit or a flexible time unit.
  • the present disclosure applies This is not a limitation.
  • the base station can dynamically adjust the first resource information occupied by the first subband based on at least one of the network side's service load, interference, and terminal service type, and determine the adjusted Second resource information occupied by the first subband.
  • the first resource information includes but is not limited to at least one of time domain resource information and frequency domain resource information.
  • the second resource information includes, but is not limited to, at least one of time domain resource information and frequency domain resource information.
  • the terminal can receive indication information sent by the base station through scheduling information.
  • the specific implementation is similar to step 602 and will not be described again here.
  • the terminal may receive indication information sent by the base station through the group common DCI.
  • the specific implementation is similar to step 702 and will not be described again here.
  • the terminal can receive the indication information sent by the base station through the MAC CE.
  • the specific implementation manner is similar to step 802 and will not be described again here.
  • step 1002 the second resource information is determined based on the indication information.
  • step 1003 a starting validity time unit of the second resource information is determined.
  • the second resource information after the base station sends the instruction information for determining the second resource information to the terminal, the second resource information cannot take effect immediately and needs to wait for the terminal side to receive, parse, and determine the specific information of the second resource information. content will take effect.
  • the terminal side needs to determine the initial validity time unit of the second resource information, so that it can subsequently transmit information with the base station using the resources corresponding to the second resource information starting from the initial validity time unit.
  • the starting effective time unit may be the first time unit associated with the indication information.
  • the first time unit may be any of the following: a time unit with uplink authorization indicated by the uplink authorization information for sending the indication information; a time unit used to carry the hybrid automatic repeat request confirmation HARQ-ACK result of the PDSCH The time unit of Send the indication information; a time unit used to carry the HARQ-ACK result of the MAC CE; wherein the MAC CE is used to send the indication information.
  • the first time unit may be the first time unit with uplink authorization indicated by the uplink authorization information used to send the indication information.
  • the starting effective time unit may be a second time unit located after the first time unit and separated from the first associated time unit by a preset time unit number.
  • the number of preset time units may be a positive integer, which is not limited in this disclosure.
  • step 1004 starting from the initial validity time unit, use the resource corresponding to the second resource information to transmit at least one of a reference signal and a control channel with the base station.
  • the terminal may use the resources corresponding to the second resource information to transmit information with the base station starting from the initial validity time unit.
  • the information here includes but is not limited to reference signals and control channels. at least one of them.
  • RS includes but is not limited to cell reference signal, CSI-RS, etc.
  • Control channels include but are not limited to USCH, PDCCH, etc.
  • the base station may send the indication information to the terminal, so that the terminal determines the second resource information occupied by the adjusted first subband based on the indication information. Further, the terminal may determine a starting validity time unit of the second resource information, and, starting from the starting validity time unit, use the resources corresponding to the second resource information to transmit the reference signal and the control channel with the base station. at least one of.
  • the present disclosure can dynamically adjust the resource information occupied by the first subband configured on the network side, improves the flexibility of network side scheduling during full-duplex communication, improves the system performance of full-duplex communication, and has high availability.
  • Embodiment 1 assumes that the terminal is a Rel-18 or later version terminal with half-duplex capability or full-duplex capability. This disclosure does not make any limitations. It is assumed that the base station side performs full-duplex operation on the semi-static DL symbols of the TDD frequency band or the DL symbols indicated by the SFI, that is, it schedules downlink data and uplink data at the same time. It should be noted that the base station side can also perform full-duplex operation on the semi-static UL symbols in the TDD frequency band or the UL symbols indicated by the SFI, that is, scheduling downlink data and uplink data at the same time.
  • the semi-static flexible symbol is determined by the time division duplex public configuration (tdd-UL-DL-ConfigurationCommon) sent by the base station or by the tdd-UL-DL-ConfigurationCommon and the time division duplex dedicated configuration (tdd-UL-DL-ConfigurationDedicated) .
  • the time slot structure configured by the base station through TDD UL-DL configuration is DDDFU, that is, during the TDD configuration period, the first three slots are DL slots, the fourth slot is flexible slot, and the fifth slot is is the UL slot.
  • this embodiment method can also be directly applied to other TDD UL DL time slot structures, and the present disclosure does not limit this.
  • the base station side uses dynamic signaling to dynamically adjust the resource information of the first subband in the designated time unit, such as the SBFD slot.
  • the base station indicates the second resource information occupied by the first subband in the adjusted SBFD slot by the following method:
  • the base station carries indication information through scheduling information so that the terminal can determine the second resource information occupied by the first subband in the SBFD slot.
  • the scheduling information may be uplink authorization information or row configuration information.
  • the uplink grant information is used to schedule PUSCH, and the downlink configuration information is used to schedule PDSCH.
  • the base station and the terminal use the resources corresponding to the second resource information to transmit at least one of the reference signal and the control channel on the first subband.
  • the indication information is the second resource information.
  • the base station configures the resource information corresponding to each resource configuration index value through RRC signaling, for example, as shown in Table 1. Or configure the resource information corresponding to each subband index value through RRC signaling, for example, as shown in Table 3.
  • the indication information is used to indicate the adjusted resource configuration index value used by the first subband; or the indication information is used to indicate the adjusted activated subband index value.
  • the base station indicates the first subband in the SBFD slot through dynamic signaling, such as scheduling information, and the first subband is the UL subband.
  • the base station indicates the second resource information occupied by the UL subband in the adjusted SBFD slot through the N bit indication information carried in the UL grant of the scheduled PUSCH or the DL assignment of the scheduled PDSCH.
  • the second resource information may include frequency domain resources, or time domain resources, or time and frequency domain resources, and this embodiment does not impose any limitations.
  • the starting validity time unit of the second configuration information of the uplink subband is the slot indicated by the UL grant.
  • the starting effective time unit of the subband indication is the slot where the HARQ-ACK result of the PDSCH scheduled by the DL assignment is located.
  • the base station configures Table 1 or Table 3 through RRC signaling, for example, configures M available index values of the uplink subband, and the type of the index value can be a resource configuration index value.
  • the length of the UL subband indication carried by the base station in the UL grant or DL assignment is log2(M) bits.
  • the relationship between the bit value of the indication information sent by the base station and the indicated resource configuration index value is as shown in Table 2.
  • M refers to the total number of available resource configuration index values.
  • the length of the UL subband indication carried by the base station in the UL grant or DL assignment is log2(N) bits., where N refers to the total number of available subband index values.
  • N refers to the total number of available subband index values.
  • the relationship between the bit value of the indication information sent by the base station and the indicated subband index value can be shown in Table 4, for example.
  • Embodiment 2 assumes that the terminal is a Rel-18 or subsequent version terminal with half-duplex capability or full-duplex capability.
  • This patent does not make any limitations. It is assumed that the base station side performs full-duplex operation on the semi-static DL symbols of the TDD frequency band or the DL symbols indicated by the SFI, that is, it schedules downlink data and uplink data at the same time. It should be noted that the base station side can also perform full-duplex operation on the semi-static UL symbols in the TDD frequency band or the UL symbols indicated by the SFI, that is, scheduling downlink data and uplink data at the same time.
  • 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 time slot structure configured by the base station through TDD UL-DL configuration is DDDFU, that is, during the TDD configuration period, the first three slots are DL slots, the fourth slot is flexible slot, and the fifth slot is is the UL slot.
  • this embodiment method can also be directly applied to other TDD UL DL time slot structures, and the present disclosure does not limit this.
  • the base station side uses dynamic signaling to dynamically adjust the resource information of the first subband in the designated time unit, such as the SBFD slot.
  • the base station indicates the second resource information occupied by the first subband in the adjusted SBFD slot through the following method:
  • the base station carries indication information through group common DCI so that the terminal can determine the second resource information occupied by the first subband in the SBFD slot.
  • the group common DCI is a newly introduced DCI format and is encrypted by SBFD-RNTI.
  • the group common DCI is a DCI format defined in the current protocol, such as DCI format 2-0, which is not limited by this disclosure.
  • the terminal feeds back the HARQ-ACK result for the group common DCI to ensure the reliability of the transmission of the indication information.
  • the base station indicates the first subband in the SBFD slot through the UL subband indication carried in DCI format 2_0, and the first subband is the UL subband.
  • the second resource information may include frequency domain resources, or time domain resources, or time and frequency domain resources, and this embodiment does not impose any limitations.
  • the starting validity time unit of the second configuration information of the uplink subband may be the common DCI used for the bearer group The time unit of the HARQ-ACK result; wherein the group of common DCIs is used to send the indication information.
  • the base station configures Table 1 or Table 3 through RRC signaling, for example, M available index values of the uplink subband are configured, and the type of the index value can be a resource configuration index value.
  • the length of the UL subband indication carried by the base station in the UL grant or DL assignment is log2(M) bits.
  • the relationship between the bit value of the indication information sent by the base station and the indicated resource configuration index value is shown in Table 2.
  • M refers to the total number of available resource configuration index values.
  • the length of the UL subband indication carried by the base station in the UL grant or DL assignment is log2(N) bits.
  • N refers to the total number of available subband index values.
  • the relationship between the bit value of the indication information sent by the base station and the indicated subband index value may be as shown in Table 4, for example.
  • Embodiment 3 assumes that the terminal is a Rel-18 or later version terminal with half-duplex capability or full-duplex capability.
  • This patent does not make any limitations. It is assumed that the base station side performs full-duplex operation on the semi-static DL symbols of the TDD frequency band or the DL symbols indicated by the SFI, that is, it schedules downlink data and uplink data at the same time. It should be noted that the base station side can also perform full-duplex operation on the semi-static UL symbols in the TDD frequency band or the UL symbols indicated by the SFI, that is, scheduling downlink data and uplink data at the same time.
  • 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 time slot structure configured by the base station through TDD UL-DL configuration is DDDFU, that is, during the TDD configuration period, the first three slots are DL slots, the fourth slot is flexible slot, and the fifth slot is is the UL slot.
  • this embodiment method can also be directly applied to other TDD UL DL time slot structures.
  • the base station side dynamically adjusts the subband configuration in the SBFD slot through dynamic signaling.
  • the base station indicates the second resource information occupied by the first subband in the adjusted SBFD slot through the following method:
  • the base station carries indication information through MAC CE so that the terminal can determine the second resource information occupied by the first subband in the SBFD slot.
  • the starting validity time unit of the second configuration information of the uplink subband is the second time unit after the first time unit where the HARQ-ACK result of the MAC CE is located, for example, the third slot after the first time unit.
  • the MAC CE can directly carry the second resource information.
  • the MAC CE may carry indication information, the indication information being used to indicate the adjusted resource configuration index value used by the first subband, or the indication information being used to indicate the adjusted activated subband index value.
  • the base station can dynamically adjust the first resource information occupied by the first subband, determine the adjusted second resource information occupied by the first subband, and send indication information to the terminal.
  • the terminal side can based on the Indication information is used to determine the second resource information occupied by the adjusted first subband.
  • the first subband is always located within a designated time unit in the time domain, and the transmission direction of information on the first subband is different from the transmission direction on the designated time unit.
  • the present disclosure can dynamically adjust the resource information occupied by the first subband configured on the network side, thereby improving the flexibility of network side scheduling during full-duplex communication, improving the system performance of full-duplex communication, and achieving high availability.
  • the present disclosure also provides an application function implementation device embodiment.
  • Figure 11 is a block diagram of a resource configuration device according to an exemplary embodiment.
  • the device is applied to a base station and includes:
  • the first determination module 1101 is configured to adjust the first resource information occupied by the first subband, and determine the adjusted second resource information occupied by the first subband; wherein the first subband is The time domain is always located within the designated time unit, and the transmission direction of the information on the first subband is different from the transmission direction on the designated time unit;
  • the sending module 1102 is configured to send indication information to the terminal; wherein the indication information is used to determine the second resource information.
  • Figure 12 is a block diagram of a resource configuration device according to an exemplary embodiment.
  • the device is applied to a terminal and includes:
  • the receiving module 1201 is configured to receive indication information sent by the base station; wherein the indication information is used to determine the second resource information after adjusting the first resource information occupied by the first subband. It is always located within the designated time unit in the time domain, and the transmission direction of the information on the first subband is different from the transmission direction on the designated time unit;
  • the second determination module 1202 is configured to determine the second resource information based on the indication information.
  • the device embodiment since it basically corresponds to the method embodiment, please refer to the partial description of the method embodiment for relevant details.
  • the device embodiments described above are only illustrative.
  • the units described above as separate components may or may not be physically separated.
  • the components shown as units may or may not be physical units, that is, they may be located in a place, or can be distributed across multiple network units. Some or all of the modules may be selected according to actual conditions to achieve the purpose of the disclosed solution. Persons of ordinary skill in the art can understand and implement the method without any creative effort.
  • a resource configuration device including:
  • Memory used to store instructions executable by the processor
  • the processor is configured to execute any one of the above resource configuration methods on the base station side.
  • FIG. 13 is a schematic diagram of a resource configuration device 1300 according to an exemplary embodiment.
  • the device 1300 may be provided as a base station.
  • the device 1300 includes a processing component 1322, a wireless transmission/reception component 1324, an antenna component 1326, and a signal processing part specific to a wireless interface, and the processing component 1322 may further include at least one processor.
  • One of the processors in the processing component 1322 may be configured to perform any of the above resource configuration methods.
  • a resource configuration device including:
  • Memory used to store instructions executable by the processor
  • the processor is configured to execute any one of the above resource configuration methods on the terminal side.
  • Figure 14 is a block diagram of a resource configuration device 1400 according to an exemplary embodiment.
  • the device 1400 may be a mobile phone, a tablet computer, an e-book reader, a multimedia playback device, a wearable device, a vehicle-mounted user equipment, an iPad, a smart TV and other terminals.
  • device 1400 may include one or more of the following components: processing component 1402, memory 1404, power supply component 1406, multimedia component 1408, audio component 1410, input/output (I/O) interface 1412, sensor component 1416, and Communication component 1418.
  • the processing component 1402 generally controls the overall operation of the device 1400, such as operations associated with display, phone calls, random access to data, camera operations, and recording operations.
  • the processing component 1402 may include one or more processors 1420 to execute instructions to complete all or part of the steps of the resource configuration method described above.
  • the processing component 1402 may include one or more modules to facilitate the interaction between the processing component 1402 and other components.
  • the processing component 1402 may include a multimedia module to facilitate the interaction between the multimedia component 1408 and the processing component 1402.
  • the processing component 1402 may read executable instructions from a memory to implement the steps of a resource configuration method provided in the above embodiments.
  • Memory 1404 is configured to store various types of data to support operations at device 1400 . Examples of such data include instructions for any application or method operating on device 1400, contact data, phonebook data, messages, pictures, videos, etc.
  • Memory 1404 may be implemented by any type of volatile or non-volatile storage device, or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EEPROM), Programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic or optical disk.
  • SRAM static random access memory
  • EEPROM electrically erasable programmable read-only memory
  • EEPROM erasable programmable read-only memory
  • EPROM Programmable read-only memory
  • PROM programmable read-only memory
  • ROM read-only memory
  • magnetic memory flash memory
  • flash memory magnetic or optical disk.
  • Power supply component 1406 provides power to various components of device 1400.
  • Power supply components 1406 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power to device 1400 .
  • the multimedia component 1408 includes a display screen that provides an output interface between the device 1400 and the user.
  • the multimedia component 1408 includes a front camera and/or a rear camera.
  • the front camera and/or the rear camera can receive external multimedia data.
  • Each front camera and rear camera can be a fixed optical lens system or have a focal length and optical zoom capability.
  • Audio component 1410 is configured to output and/or input audio signals.
  • audio component 1410 includes a microphone (MIC) configured to receive external audio signals when device 1400 is in operating modes, such as call mode, recording mode, and voice recognition mode. The received audio signals may be further stored in memory 1404 or sent via communications component 1418 .
  • audio component 1410 also includes a speaker for outputting audio signals.
  • the I/O interface 1412 provides an interface between the processing component 1402 and a peripheral interface module.
  • the peripheral interface module may be a keyboard, a click wheel, a button, etc. These buttons may include, but are not limited to: Home button, Volume buttons, Start button, and Lock button.
  • the sensor assembly 1416 includes one or more sensors for providing various aspects of the status assessment of the device 1400.
  • the sensor assembly 1416 can detect the open/closed state of the device 1400, the relative positioning of components, such as the display and keypad of the device 1400, the sensor assembly 1416 can also detect the position change of the device 1400 or a component of the device 1400, the presence or absence of user contact with the device 1400, the orientation or acceleration/deceleration of the device 1400, and the temperature change of the device 1400.
  • the sensor assembly 1416 can include a proximity sensor configured to detect the presence of a nearby object without any physical contact.
  • the sensor assembly 1416 can also include an optical sensor, such as a CMOS or CCD image sensor, for use in imaging applications.
  • the sensor assembly 1416 can also include an accelerometer, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
  • Communications component 1418 is configured to facilitate wired or wireless communications between device 1400 and other devices.
  • Device 1400 may access a wireless network based on a communication standard, such as Wi-Fi, 2G, 3G, 4G, 5G or 6G, or a combination thereof.
  • the communication component 1418 receives broadcast signals or broadcast related information from an external broadcast management system via a broadcast channel.
  • the communications component 1418 also includes a near field communications (NFC) module to facilitate short-range communications.
  • NFC near field communications
  • the NFC module can be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology and other technologies.
  • RFID radio frequency identification
  • IrDA infrared data association
  • UWB ultra-wideband
  • Bluetooth Bluetooth
  • apparatus 1400 may be configured by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable Gate array (FPGA), controller, microcontroller, microprocessor or other electronic components are implemented and used to execute any of the above resource configuration methods on the terminal side.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGA field programmable Gate array
  • controller microcontroller, microprocessor or other electronic components
  • a non-transitory machine-readable storage medium including instructions such as a memory 1404 including instructions, which can be executed by the processor 1420 of the device 1400 to complete the above resource configuration method is also provided.
  • the non-transitory computer-readable storage medium may be ROM, random access memory (RAM), CD-ROM, magnetic tape, floppy disk, optical data storage device, etc.

Abstract

本公开提供一种资源配置方法及装置,其中,所述资源配置方法包括:对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息;其中,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;向所述终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。本公开可以对网络侧配置的第一子带所占用的资源信息进行动态调整,从而提高全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。

Description

资源配置方法及装置 技术领域
本公开涉及通信领域,尤其涉及资源配置方法及装置。
背景技术
版本18(Release-18,Rel-18)全双工(duplex)增强(enhancement)项目将对全双工方案进行研究,具体地,网络侧能够在一个时隙(slot)内同时进行数据的接收和发送。为了实现全双工操作,基站侧需要为终端在下行(Down Link,DL)符号(symbol)上配置上行(UpLink,UL)子带(subband)或者基站为终端在UL symbol上配置DL subband。
目前,对于时分双工(Time Division Duplexing,TDD)终端具有如下要求:
终端在DL symbol上只能接收数据而不能发送数据;
终端在UL symbol上只能发送数据而不能接收数据;
终端在半静态(semi-static)灵活(flexible)symbol上可根据基站的配置或者基站的动态调度进行发送或者接收;
终端在dynamic flexible symbol上只能根据基站的动态指示进行数据的接收或者发送。
无论是半静态的时分双工配置(TDD UL-DL configuration)还是动态的时隙格式指示符(Slot Format Indication,SFI)指示,均是小区(cell)级别的指示。一般情况下,一个小区配置一个载波(carrier),也即所述TDD UL-DL configuration和SFI作用到基站配置的一个carrier内的所有带宽部分(Bandwidth Part,BWP)上。
由于无法动态调整已配置的子带的资源信息,限制了全双工通信时网络侧调度的灵活性和性能。
发明内容
为克服相关技术中存在的问题,本公开实施例提供一种资源配置方法及装置。
根据本公开实施例的第一方面,提供一种资源配置方法,所述方法由基站执行,包括:
对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息;其中,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;
向终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
根据本公开实施例的第二方面,提供一种资源配置方法,所述方法由终端执行,包括:
接收基站发送的指示信息;其中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;
基于所述指示信息,确定所述第二资源信息。
根据本公开实施例的第三方面,提供一种资源配置装置,所述装置应用于基站,包括:
第一确定模块,被配置为对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息;其中,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向 不同;
发送模块,被配置为向终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
根据本公开实施例的第四方面,提供一种资源配置装置,所述装置应用于终端,包括:
接收模块,被配置为接收基站发送的指示信息;其中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;
第二确定模块,被配置为基于所述指示信息,确定所述第二资源信息。
根据本公开实施例的第五方面,提供一种资源配置装置,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,所述处理器被配置为用于执行上述基站侧任一项所述的资源配置方法。
根据本公开实施例的第六方面,提供一种资源配置装置,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,所述处理器被配置为用于执行上述终端侧任一项所述的资源配置方法。
本公开的实施例提供的技术方案可以包括以下有益效果:
在本公开实施例中,基站可以对第一子带所占用的第一资源信息进行动态调整,确定调整后第一子带所占用的第二资源信息,并向终端发送指示信息,终端侧可以基于该指示信息,来确定调整后第一子带所占用的第二资源信息。其中,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。本公开可以对网络侧配置的第一子带所占用的资源信息进行动态调整,从而提高全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
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是根据一示例性实施例示出的一种资源配置方法流程示意图。
图2是根据一示例性实施例示出的另一种资源配置方法流程示意图。
图3是根据一示例性实施例示出的另一种资源配置方法流程示意图。
图4是根据一示例性实施例示出的另一种资源配置方法流程示意图。
图5是根据一示例性实施例示出的另一种资源配置方法流程示意图。
图6是根据一示例性实施例示出的另一种资源配置方法流程示意图。
图7是根据一示例性实施例示出的另一种资源配置方法流程示意图。
图8是根据一示例性实施例示出的另一种资源配置方法流程示意图。
图9是根据一示例性实施例示出的另一种资源配置方法流程示意图。
图10是根据一示例性实施例示出的另一种资源配置方法流程示意图。
图11是根据一示例性实施例示出的一种资源配置装置框图。
图12是根据一示例性实施例示出的另一种资源配置装置框图。
图13是本公开根据一示例性实施例示出的一种资源配置装置的一结构示意图。
图14是本公开根据一示例性实施例示出的另一种资源配置装置的一结构示意图。
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。
在本公开使用的术语是仅仅出于描述特定实施例的目的,而非旨在限制本公开。在本公开和所附权利要求书中所使用的单数形式的“一种”、“所述”和“该”也旨在包括多数形式,除非上下文清楚地表示其他含义。还应当理解,本文中使用的术语“和/或”是指并包含至少一个相关联的列出项目的任何或所有可能组合。
应当理解,尽管在本公开可能采用术语第一、第二、第三等来描述各种信息,但这些信息不应限于这些术语。这些术语仅用来将同一类型的信息彼此区分开。例如,在不脱离本公开范围的情况下,第一信息也可以被称为第二信息,类似地,第二信息也可以被称为第一信息。取决于语境,如在此所使用的词语“如果”可以被解释成为“在……时”或“当……时”或“响应于确定”。
需要说明的是,本公开中,基站侧预先已经通过半静态配置方式,例如通过TDD UL-DL configuration配置方式,或动态调度方式,例如SFI动态指示的方式,为终端配置或指示了第一子带所占用的第一资源信息。其中,第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
在本公开实施例中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为无缝双向转发检测(Seamless Bidirectional Forwarding Detection,SBFD)时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
例如该SBFD时间单元被基站配置为上行时间单元,终端在该SBFD时间单元上可以进行下行接收,基站在该SBFD时间单元上可以进行下行发送。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、符号(symbol)、持续时长(span)等为单位,本公开对此不作限定。其中,一个span包括多个连续的symbol。
下面先从基站侧介绍一下本公开提供的资源配置方法。
本公开实施例提供了一种资源配置方法,参照图1所示,图1是根据一实施例示出的一种资源配置方法流程图,可以由基站执行,该方法可以包括以下步骤:
在步骤101中,对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中, 一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带,或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在步骤102中,向所述终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
在一个可能的实现方式中,该指示信息就是调整后的第二资源信息,即指示信息为所述第二资源信息。
在另一个可能的实现方式中,基站侧可以预先为终端配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
可选地,基站可以通过无线资源控制(Radio Resource Control,RRC)信令配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
示例性地,在本公开实施例中,该索引值的类型可以为资源配置索引值,每个资源配置索引值所对应的资源信息可以例如表1所示:
表1
资源配置索引值 资源信息
#0 时域资源#0、频域资源#0
#1 时域资源#1、频域资源#1
#2 时域资源#2、频域资源#2
#3 时域资源#3、频域资源#3
…… ……
基站侧发送的指示信息可以为调整后的第一子带所使用的所述资源配置索引值。
例如,调整前第一子带所使用的第一资源配置对应的资源配置索引值为#1,调整后第一子带所使用的第二资源配置对应的资源配置索引值为#0,则基站将调整后的第一子带所使用的所述资源配置索引值发送给终端即可。
需要说明的是,指示信息的长度可以为log 2(M)比特,其中,M是指可用的资源配置索引值的总数目。例如,M为4,则基站发送的指示信息用于指示调整后的第一子带所使用的所述资源配置索引值时,该指示信息占用log 24=2比特。
基站发送的指示信息的比特值对应指示的资源配置索引值的关系例如表2所示。
表2
指示信息的比特值 所指示的资源配置索引值
00 #0
01 #1
10 #2
11 #3
…… ……
示例性地,该索引值的类型可以为子带索引值,每个子带索引值所对应的资源信息例如表3所示:
表3
子带索引值 子带所占用的资源信息
subband#0 时域资源#0、频域资源#0
subband#1 时域资源#1、频域资源#1
subband#2 时域资源#2、频域资源#2
subband#3 时域资源#3、频域资源#3
…… ……
即基站可以通过RRC信令为终端配置可用的一个或多个子带索引值,以及与每个子带索引值对应的资源配置信息。
进一步地,基站可以向终端发送指示信息,指示信息用于指示调整后被激活的子带索引值。
当然,指示信息的长度可以为log 2(N)比特,其中,N是指可用的子带索引值的总数目。
基站发送的指示信息的比特值对应指示的资源配置索引值的关系例如表4所示。
表4
指示信息的比特值 子带索引值
00 subband#0
01 subband#1
10 subband#2
11 subband#3
…… ……
以上仅为示例性说明,实际应用中,指示信息还可以指示其他内容,从而让终端侧基于指示信息,确定调整后所述第一子带所占用的第二资源信息,本公开对此不作限定。
上述实施例中,可以对网络侧配置的第一子带所占用的资源信息进行动态调整,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
在一些可选实施例中,参照图2所示,图2是根据一实施例示出的一种资源配置方法流程图,可以由基站执行,该方法可以包括以下步骤:
在步骤201中,对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中,一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带,或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源 信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在步骤202中,通过调度信息向所述终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
在一个可能的实现方式中,基站可以通过上行授权(UL grant)信息,向所述终端发送所述指示信息。
在一个可能的实现方式中,基站可以通过用于调度物理上行共享信道(Physical Uplink Shared Channel,PUSCH)的上行授权信息,向所述终端发送所述指示信息。
在一个可能的实现方式中,基站可以通过下行配置(DL assignment)信息,向所述终端发送所述指示信息。
在一个可能的实现方式中,基站通过用于调度物理下行共享信道(Physical Downlink Shared Channel,PDSCH)的下行配置信息,向所述终端发送所述指示信息。
在一个可能的实现方式中,该指示信息就是调整后的第二资源信息,即指示信息为所述第二资源信息。
在另一个可能的实现方式中,基站侧可以预先为终端配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
可选地,基站可以通过RRC信令配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
示例性地,索引值的类型为资源配置索引值,每个资源配置索引值所对应的资源信息例如上述表1所示。相应地,基站发送的指示信息可以为调整后的第一子带所使用的所述资源配置索引值。具体实现方式已经在上述实施例中进行了介绍,此处不再赘述。
示例性地,索引值的类型为子带索引值,每个子带索引值所对应的资源信息例如上述表3所示。
相应地,基站侧发送的指示信息可以为调整后被激活的子带索引值。具体实现方式已经在上述实施例中进行了介绍,此处不再赘述。
上述实施例中,基站可以通过调度信息向终端发送该指示信息,以便终端基于指示信息,确定调整后第一子带所占用的第二资源信息。本公开可以对网络侧配置的第一子带所占用的资源信息进行动态调整,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
在一些可选实施例中,参照图3所示,图3是根据一实施例示出的一种资源配置方法流程图,可以由基站执行,该方法可以包括以下步骤:
在步骤301中,对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中,一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带, 或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在步骤302中,通过组公共下行控制信息DCI,向所述终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
在本公开实施例中,基站可以通过组公共下行控制信息(group common DCI)向终端发送所述指示信息。
在一个可能的实现方式中,组公共DCI采用第一格式,且可以通过与所述指定时间单元对应的无线网络临时标识(Radio Network Temporary Identity,RNTI)进行加扰。
其中,第一格式为用于传输该指示信息的专用DCI格式,即第一格式可以不同于现有协议约定的DCI格式,可以为了传输该指示信息单独定义对应的DCI格式。基站通过采用第一格式的组公共DCI向终端发送该指示信息。
另外,采用第一格式的组公共DCI传输指示信息时,该组公共DCI可以采用与所述指定时间单元对应的RNTI,例如SBFD-RNTI进行加扰。以便终端侧基于SBFD-RNTI,确定该组公共DCI是用于传输指示信息的组公共DCI。
在另一个可能的实现方式中,组公共DCI可以复用第二格式,第二格式可以是协议中已有的DCI格式,例如DCI格式(format)0_2。
当然,用于传输所述指示信息的组公共DCI还可以复用协议中的其他DCI格式,本公开对此不作限定。
在一个可能的实现方式中,为了确保指示信息传输的可靠性,终端在接收到通过组公共DCI发送的指示信息后,可以向基站上报组公共DCI的混合自动重传请求确认(Hybrid Automatic Repeat reQuest-Acknowledge,HARQ-ACK)结果。
基站基于该HARQ-ACK结果确定终端是否接收到该组公共DCI,如果终端未成功接收该组公共DCI,基站可以通过重传的方式再次向终端发送携带指示信息的组公共DCI。
在一个可能的实现方式中,该指示信息就是调整后的第二资源信息,即指示信息为所述第二资源信息。
在另一个可能的实现方式中基站侧可以预先为终端配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
可选地,基站可以通过RRC信令配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
基站侧可以预先为终端配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
可选地,基站可以通过RRC信令配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
上述实施例中,基站可以通过组公共下行控制信息向终端发送该指示信息,以便终端基于指示信息,确定调整后第一子带所占用的第二资源信息。本公开可以对网络侧配置的第一子带所占用的资源信息进行动态调整,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
在一些可选实施例中,参照图4所示,图4是根据一实施例示出的一种资源配置方法流程图,可以由基站执行,该方法可以包括以下步骤:
在步骤401中,对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中,一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带,或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在步骤402中,通过媒体访问控制单元MAC CE,向所述终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
在本公开实施例中,基站可以通过媒体访问控制单元(Media Access Control Element,MAC CE)向终端发送所述指示信息。
在一个可能的实现方式中,该指示信息就是调整后的第二资源信息,即指示信息为所述第二资源信息。
在另一个可能的实现方式中,基站侧可以预先为终端配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
可选地,基站可以通过RRC信令配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
示例性地,索引值的类型为资源配置索引值,每个资源配置索引值所对应的资源信息例如上述表1所示。相应地,基站发送的指示信息可以为调整后的第一子带所使用的所述资源配置索引值。具体实现方式已经在上述实施例中进行了介绍,此处不再赘述。
示例性地,索引值的类型为子带索引值,每个子带索引值所对应的资源信息例如上述表3所示。
相应地,基站侧发送的指示信息可以为调整后被激活的子带索引值。具体实现方式已经在上述实施例中进行了介绍,此处不再赘述。
上述实施例中,基站可以通过MAC CE向终端发送该指示信息,以便终端基于指示信息,确定调整后第一子带所占用的第二资源信息。本公开可以对网络侧配置的第一子带所占用的资源信息进行动态调整,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
在一些可选实施例中,参照图5所示,图5是根据一实施例示出的一种资源配置方法流程图,可以由基站执行,该方法可以包括以下步骤:
在步骤501中,对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中,一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带,或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在步骤502中,向所述终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
在一个可能的实现方式中,基站可以通过调度信息向终端发送指示信息。具体实现方式与步骤202类似,在此不再赘述。
在另一个可能的实现方式中,基站可以通过组公共DCI向终端发送指示信息。具体实现方式与步骤302类似,在此不再赘述。
在另一个可能的实现方式中,基站可以通过MAC CE向终端发送指示信息。具体实现方式与步骤402类似,在此不再赘述。
在步骤503中,确定所述第二资源信息的起始生效时间单元。
在本公开实施例中,基站下发用于确定第二资源信息的指示信息给终端后,第二资源信息不能立即生效,需要等待终端侧接收、解析、并确定第二资源信息的具体信息内容后才能生效。
因此,基站侧需要确定所述第二资源信息的一个起始生效时间单元,以便从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述终端传输信息。
在一个可能的实现方式中,起始生效时间单元可以为与所述指示信息相关联的第一时间单元。
具体地,第一时间单元可以为以下任一项:用于发送所述指示信息的上行授权信息所指示的具备上行授权的时间单元;用于承载PDSCH的混合自动重传请求确认HARQ-ACK结果的时间单元;其中,所述PDSCH是用于发送所述指示信息的下行配置信息所调度的PDSCH;用于承载组公共DCI的HARQ-ACK结果的时间单元;其中,所述组公共DCI用于发送所述指示信息;用于承载MAC CE的HARQ-ACK结果的时间单元;其中,所述MAC CE用于发送所述指示信息。
其中,第一时间单元可以为用于发送所述指示信息的上行授权信息所指示的具备上行授权的首个时间单元。
在另一个可能的实现方式中,起始生效时间单元可以为位于所述第一时间单元之后、且与所述第一关联时间单元间隔预设时间单元数目的第二时间单元。其中,预设时间单元数目可以为正整数,本公开对此不作限定。
例如,第一时间单元为用于发送所述指示信息的上行授权信息所指示的具备上行授权的slot#m1,则起始生效时间单元为slot#m1。
再例如,第一时间单元为用于承载PDSCH的混合自动重传请求确认HARQ-ACK结果的slot#m2,则起始生效时间单元为slot#m2。
再例如,第一时间单元为用于承载组公共DCI的HARQ-ACK结果的slot#m3,预设时间单元数目为2,则起始生效时间单元为slot#(m2+3)。
再例如,假设第一时间单位为用于承载MAC CE的HARQ-ACK结果的slot#m4,第二时间单元是位于所述第一时间单元之后、且与所述第一关联时间单元间隔2个slot的slot,则可以确定起始生效时间单元是slot#(m4+3)。
以上仅为示例性说明,起始生效时间单元也可以采用其他方式确定,本公开对此不作限定。
在步骤504中,从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述终端传输参考信号和控制信道中的至少一项。
在本公开实施例中,基站可以从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述终端传输信息,这里的信息包括但不限于参考信号和控制信道中的至少一项。
其中,参考信号(Reference Signal,RS)包括但不限于小区参考信号(cell-specific reference signal)、信道状态信息参考信号(Channel State Information-Reference Signal CSI-RS)等。控制信道包括但不限于物理上行控制信道(Physical Uplink Control Channel,PUSCH)、物理下行控制信道(Physical Downlink Control Channel,PDCCH)等。
上述实施例中,基站可以向终端发送该指示信息,以便终端基于指示信息,确定调整后第一子带所占用的第二资源信息。进一步地,基站可以确定第二资源信息的起始生效时间单元,从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述终端传输参考信号和控制信道中的至少一项。本公开可以对网络侧配置的第一子带所占用的资源信息进行动态调整,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
下面再从终端侧介绍一下本公开提供的资源配置方法。
本公开实施例提供了一种资源配置方法,参照图6所示,图6是根据一实施例示出的一种资源配置方法流程图,可以由终端执行,该方法可以包括以下步骤:
在步骤601中,接收基站发送的指示信息。
在本公开实施例中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中, 一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带,或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在本公开实施例中,终端可以接收网络侧下发的该指示信息。
在步骤602中,基于所述指示信息,确定所述第二资源信息。
在本公开实施例中,终端可以基于网络侧下发的该指示信息,确定调整后第一子带所占用的第二资源信息,第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。即终端可以基于网络侧下发的该指示信息,确定调整后所述第一子带所占用的时域资源信息和频域资源信息中的至少一项。
在一个可能的实现方式中,该指示信息就是调整后的第二资源信息,即指示信息为所述第二资源信息。终端直接基于该指示信息,确定调整后的第一子带所占用的第二资源信息。
在另一个可能的实现方式中,基站侧可以预先为终端配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
可选地,基站可以通过RRC信令配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
示例性地,在本公开实施例中,该索引值的类型为资源配置索引值,每个资源配置索引值所对应的资源信息例如表1所示。
基站侧发送的指示信息可以为调整后的第一子带所使用的所述资源配置索引值。终端侧可以基于表1和指示信息确定调整后的第一子带所占用的所述第二资源信息。
例如,调整前第一子带所使用的第一资源配置对应的资源配置索引值为#1,调整后第一子带所使用的资源配置索引值为#0,则基站将调整后的第一子带所使用的所述资源配置索引值发送给终端即可,终端侧可以基于表1和指示信息确定调整后的第一子带所占用的所述第二资源信息,即将资源配置索引值#0所对应的时域资源#0、频域资源#0作为第二资源信息。
示例性地,该索引值的类型为子带索引值,每个子带索引值所对应的资源信息例如表3所示。
即基站可以通过RRC信令为终端配置可用的一个或多个子带索引值,以及与每个子带索引值对应的资源配置信息。
进一步地,基站可以通过调度信息向终端发送指示信息,指示信息用于指示调整后被激活的子带索引值。终端基于表3和基站侧发送的指示信息,确定调整后所述第一子带所占用的第二资源信息。
例如,基站通过调度信息向终端发送指示信息,该指示信息指示的调整后被激活的子带索引值为#3,则终端基于表3确定调整后的第一子带所占用的第二资源配置信息包括时域资源#3、频域资源#3。
以上仅为示例性说明,实际应用中,指示信息还可以指示其他内容,从而让终端侧基于指示信息,确定调整后所述第一子带所占用的第二资源信息,本公开对此不作限定。
上述实施例中,实现了对网络侧配置的第一子带所占用的资源信息进行动态调整 的目的,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。在一些可选实施例中,参照图7所示,图7是根据一实施例示出的一种资源配置方法流程图,可以由终端执行,该方法可以包括以下步骤:
在步骤701中,接收基站通过调度信息发送的指示信息。
在本公开实施例中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中,一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带,或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在一个可能的实现方式中,终端可以接收基站通过上行授权信息发送的所述指示信息。
在一个可能的实现方式中,终端可以接收基站通过用于调度物理上行共享信道的上行授权信息发送的所述指示信息。
在一个可能的实现方式中,终端可以接收基站通过下行配置信息,发送的所述指示信息。
在一个可能的实现方式中,终端可以接收基站通过用于调度PDSCH的下行配置信息发送的所述指示信息。
在步骤702中,基于所述指示信息,确定所述第二资源信息。
在本公开实施例中,终端可以基于网络侧下发的该指示信息,确定调整后第一子带所占用的第二资源信息,包括但不限于确定调整后所述第一子带所占用的时域资源信息和频域资源信息中的至少一项。
在一个可能的实现方式中,该指示信息就是调整后的第二资源信息,即指示信息为所述第二资源信息。终端直接基于该指示信息,确定调整后的第一子带所占用的第二资源信息。
在另一个可能的实现方式中,基站侧可以预先为终端配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
可选地,基站可以通过RRC信令配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
示例性地,在本公开实施例中,该索引值的类型为资源配置索引值,每个资源配 置索引值所对应的资源信息例如表1所示。
基站侧发送的指示信息可以为调整后的第一子带所使用的所述资源配置索引值。终端侧可以基于表1和指示信息确定调整后的第一子带所占用的所述第二资源信息。
示例性地,该索引值的类型为子带索引值,每个子带索引值所对应的资源信息例如表3所示。
即基站可以通过RRC信令为终端配置可用的一个或多个子带索引值,以及与每个子带索引值对应的资源配置信息。
进一步地,基站可以通过调度信息向终端发送指示信息,指示信息用于指示调整后被激活的子带索引值。终端基于表3和基站侧发送的指示信息,确定调整后所述第一子带所占用的第二资源信息。
以上仅为示例性说明,实际应用中,指示信息还可以指示其他内容,从而让终端侧基于指示信息,确定调整后所述第一子带所占用的第二资源信息,本公开对此不作限定。
上述实施例中,实现了对网络侧配置的第一子带所占用的资源信息进行动态调整的目的,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
在一些可选实施例中,参照图8所示,图8是根据一实施例示出的一种资源配置方法流程图,可以由终端执行,该方法可以包括以下步骤:
在步骤801中,接收基站通过组公共下行控制信息DCI发送的指示信息。
在本公开实施例中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中,一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带,或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在一个可能的实现方式中,终端可以接收基站通过组公共DCI发送的所述指示信息。
在一个示例中,组公共DCI可以采用第一格式,且可以通过与所述指定时间单元对应的RNTI进行加扰。其中,第一格式为用于传输该指示信息的专用DCI格式,即第一格式可以不同于现有协议约定的DCI格式,为了传输该指示信息可以单独定义对 应的DCI格式。基站通过采用第一格式的组公共DCI向终端发送该指示信息。
另外,采用第一格式的组公共DCI传输指示信息时,该组公共DCI可以采用与所述指定时间单元对应的RNTI,例如SBFD-RNTI进行加扰。以便终端侧基于SBFD-RNTI,确定该组公共DCI是用于传输指示信息的组公共DCI。
在另一个示例中,组公共DCI可以复用第二格式,第二格式可以是协议中已有的DCI格式,例如DCI格式(format)0_2。
当然,用于传输所述指示信息的组公共DCI还可以复用协议中的其他DCI格式,本公开对此不作限定。
在一个可能的实现方式中,为了确保指示信息传输的可靠性,终端在接收到通过组公共DCI发送的指示信息后,向基站上报组公共DCI的HARQ-ACK结果。
基站基于该HARQ-ACK结果确定终端是否成功接收到该组公共DCI,如果终端未成功接收该组公共DCI,基站可以通过重传的方式再次向终端发送携带指示信息的组公共DCI。
在步骤802中,基于所述指示信息,确定所述第二资源信息。
在本公开实施例中,终端可以基于网络侧下发的该指示信息,确定调整后第一子带所占用的第二资源信息,包括但不限于确定调整后所述第一子带所占用的时域资源信息和频域资源信息中的至少一项。
在一个可能的实现方式中,该指示信息就是调整后的第二资源信息,即指示信息为所述第二资源信息。终端直接基于该指示信息,确定调整后的第一子带所占用的第二资源信息。
在另一个可能的实现方式中,基站侧可以预先为终端配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
可选地,基站可以通过RRC信令配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
示例性地,在本公开实施例中,该索引值的类型为资源配置索引值,每个资源配置索引值所对应的资源信息例如表1所示。
基站侧发送的指示信息可以为调整后的第一子带所使用的所述资源配置索引值。终端侧可以基于表1和指示信息确定调整后的第一子带所占用的所述第二资源信息。
示例性地,该索引值的类型为子带索引值,每个子带索引值所对应的资源信息例如表3所示。
即基站可以通过RRC信令为终端配置可用的一个或多个子带索引值,以及与每个子带索引值对应的资源配置信息。
进一步地,基站可以通过调度信息向终端发送指示信息,指示信息用于指示调整后被激活的子带索引值。终端基于表3和基站侧发送的指示信息,确定调整后所述第一子带所占用的第二资源信息。
以上仅为示例性说明,实际应用中,指示信息还可以指示其他内容,从而让终端侧基于指示信息,确定调整后所述第一子带所占用的第二资源信息,本公开对此不作限定。
上述实施例中,实现了对网络侧配置的第一子带所占用的资源信息进行动态调整的目的,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
在一些可选实施例中,参照图9所示,图9是根据一实施例示出的一种资源配置方法流程图,可以由终端执行,该方法可以包括以下步骤:
在步骤901中,接收基站通过MAC CE发送的指示信息。
在本公开实施例中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中,一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带,或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在本公开实施例中,基站可以通过MAC CE向终端发送所述指示信息。
在步骤902中,基于所述指示信息,确定所述第二资源信息。
在本公开实施例中,终端可以基于网络侧下发的该指示信息,确定调整后第一子带所占用的第二资源信息,包括但不限于确定调整后所述第一子带所占用的时域资源信息和频域资源信息中的至少一项。
在一个可能的实现方式中,该指示信息就是调整后的第二资源信息,即指示信息为所述第二资源信息。终端直接基于该指示信息,确定调整后的第一子带所占用的第二资源信息。
在另一个可能的实现方式中,基站侧可以预先为终端配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
可选地,基站可以通过RRC信令配置第一子带可用的一个或多个索引值,以及每个所述索引值所对应的资源信息。
示例性地,在本公开实施例中,该索引值的类型为资源配置索引值,每个资源配置索引值所对应的资源信息例如表1所示。
基站侧发送的指示信息可以为调整后的第一子带所使用的所述资源配置索引值。终端侧可以基于表1和指示信息确定调整后的第一子带所占用的所述第二资源信息。
示例性地,该索引值的类型为子带索引值,每个子带索引值所对应的资源信息例如表3所示。
即基站可以通过RRC信令为终端配置可用的一个或多个子带索引值,以及与每个子带索引值对应的资源配置信息。
进一步地,基站可以通过调度信息向终端发送指示信息,指示信息用于指示调整后被激活的子带索引值。终端基于表3和基站侧发送的指示信息,确定调整后所述第一子带所占用的第二资源信息。
以上仅为示例性说明,实际应用中,指示信息还可以指示其他内容,从而让终端侧基于指示信息,确定调整后所述第一子带所占用的第二资源信息,本公开对此不作限定。
上述实施例中,实现了对网络侧配置的第一子带所占用的资源信息进行动态调整的目的,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
在一些可选实施例中,参照图10所示,图10是根据一实施例示出的一种资源配置方法流程图,可以由终端执行,该方法可以包括以下步骤:
在步骤1001中,接收基站发送的指示信息。
在本公开实施例中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息。
在本公开实施例中,对第一子带所占用的资源信息进行调整前或调整后,该第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。
其中,信息包括但不限于信令、信号、数据等。
在本公开实施例中,指定时间单元可以为SBFD时间单元。其中,SBFD时间单元是可以在该时间单元上进行传输方向不同的信息传输。
示例性地,SBFD时间单元可以是包含上行子带的下行时间单元,或者包含上行子带的灵活时间单元,或者包含下行子带的上行时间单元,或者包含下行子带的灵活时间单元,本公开对此不作限定。
指定时间单元可以以slot、symbol、span等为单位,本公开对此不作限定。其中,一个span包括多个连续的symbol。
在本公开实施例中,第一子带可以是上行时间单元或灵活时间单元上的下行子带,或者,第一子带可以是下行时间单元或灵活时间单元上的上行子带,本公开对此不作限定。
在一个可能的实现方式中,基站可以根据网络侧的业务负载情况、干扰情况、终端的业务类型中的至少一项,对第一子带所占用的第一资源信息进行动态调整,确定调整后所述第一子带所占用的第二资源信息。
在一个可能的实现方式中,第一资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
第二资源信息包括但不限于时域资源信息和频域资源信息中的至少一项。
在一个可能的实现方式中,终端可以接收基站通过调度信息发送的指示信息。具体实现方式与步骤602类似,在此不再赘述。
在另一个可能的实现方式中,终端可以接收基站通过组公共DCI发送的指示信息。具体实现方式与步骤702类似,在此不再赘述。
在另一个可能的实现方式中,终端可以接收基站通过MAC CE发送的指示信息。具体实现方式与步骤802类似,在此不再赘述。
在步骤1002中,基于所述指示信息,确定所述第二资源信息。
确定方式已经在上述实施例中进行了介绍,此次不再赘述。
在步骤1003中,确定所述第二资源信息的起始生效时间单元。
在一个可能的实现方式中,基站下发用于确定第二资源信息的指示信息给终端后,第二资源信息不能立即生效,需要等待终端侧接收、解析、并确定第二资源信息的具体信息内容后才能生效。
因此,终端侧需要确定所述第二资源信息的起始生效时间单元,以便后续从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述基站传输信息。
在一个可能的实现方式中,起始生效时间单元可以为与所述指示信息相关联的第一时间单元。
具体地,第一时间单元可以为以下任一项:用于发送所述指示信息的上行授权信息所指示的具备上行授权的时间单元;用于承载PDSCH的混合自动重传请求确认 HARQ-ACK结果的时间单元;其中,所述PDSCH是用于发送所述指示信息的下行配置信息所调度的PDSCH;用于承载组公共DCI的HARQ-ACK结果的时间单元;其中,所述组公共DCI用于发送所述指示信息;用于承载MAC CE的HARQ-ACK结果的时间单元;其中,所述MAC CE用于发送所述指示信息。
其中,第一时间单元可以为用于发送所述指示信息的上行授权信息所指示的具备上行授权的首个时间单元。
在另一个可能的实现方式中,起始生效时间单元可以为位于所述第一时间单元之后、且与所述第一关联时间单元间隔预设时间单元数目的第二时间单元。其中,预设时间单元数目可以为正整数,本公开对此不作限定。
在步骤1004中,从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述基站传输参考信号和控制信道中的至少一项。
在本公开实施例中,终端可以从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述基站传输信息,这里的信息包括但不限于参考信号和控制信道中的至少一项。其中,RS包括但不限于小区参考信号、CSI-RS等。控制信道包括但不限于USCH、PDCCH等。
上述实施例中,基站可以向终端发送该指示信息,以便终端基于指示信息,确定调整后第一子带所占用的第二资源信息。进一步地,终端可以确定第二资源信息的起始生效时间单元,从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述基站传输参考信号和控制信道中的至少一项。本公开可以对网络侧配置的第一子带所占用的资源信息进行动态调整,提高了全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
下面针对本公开提供的资源配置方法进一步举例说明如下。
实施例1,假设终端为Rel-18及后续版本终端,具有半双工能力或者具有全双工能力,本公开不做任何限定。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通过基站发送的时分双工公共配置(tdd-UL-DL-ConfigurationCommon)或者通过tdd-UL-DL-ConfigurationCommon以及时分双工专用配置(tdd-UL-DL-ConfigurationDedicated)确定。
在本实施例中,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3个slot为DL slot,第4个slot为flexible slot,第5个slot为UL 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,本公开对此不作限定。
考虑到网络侧的业务负载、干扰状况、终端的业务类型等要求,基站侧通过动态信令对指定时间单元,例如SBFD slot中的第一子带的资源信息进行动态的调整。
在本实施例中,基站通过如下方法指示调整后SBFD slot中的第一子带所占用的第二资源信息:
基站通过调度信息携带指示信息,以便终端确定在SBFD slot中第一子带所占用的第二资源信息。
其中,所述调度信息可以为上行授权信息或者行配置信息。
进一步地,上行授权信息用于调度PUSCH,下行配置信息用于调度PDSCH。
在本公开实施例中,基站与终端使用所述第二资源信息所对应的资源,在第一子带上传输参考信号和控制信道中的至少一项。
在一个示例中,所述指示信息为所述第二资源信息。
在另一个示例中,基站通过RRC信令(signaling)配置每个资源配置索引值所对 应的资源信息,例如表1所示。或者通过RRC信令配置每个子带索引值所对应的资源信息,例如表3所示。
所述指示信息用于指示调整后的所述第一子带所使用的资源配置索引值;或者所述指示信息用于指示调整后被激活的子带索引值。
在本实施例中,以基站通过动态信令,例如调度信息指示SBFD slot中的第一子带,第一子带为UL subband为例。基站通过调度PUSCH的UL grant或者调度PDSCH的DL assignment中携带的N bit的指示信息,指示调整后SBFD slot中UL subband所占用的第二资源信息。所述第二资源信息可以包括频域资源,或者时域资源,或者时频域资源,本实施例不做任何限制。
当基站通过UL grant中的上行子带指示(UL subband indication)指示SBFD slot中的UL subband时,所述上行子带的第二配置信息的起始生效时间单元为UL grant指示的slot。
当基站通过DL assignment中的UL subband indication指示SBFD slot中的UL subband时,所述subband indication的起始生效时间单元为所述DL assignment调度的PDSCH的HARQ-ACK结果所在的slot。
进一步地,基站通过RRC signaling配置表1或表3,例如配置了上行子带的M个可用的索引值,该索引值的类型可以为资源配置索引值。基站在UL grant或者DL assignment中携带的UL subband indication长度为log2(M)bits.基站发送的指示信息的比特值对应指示的资源配置索引值的关系例如表2所示。M是指可用的资源配置索引值的总数目。
或者基站在UL grant或者DL assignment中携带的UL subband indication长度为log2(N)bits.,N是指可用的子带索引值的总数目。基站发送的指示信息的比特值对应指示的子带索引值的关系可以例如表4所示。
实施例2,假设终端为Rel-18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,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3个slot为DL slot,第4个slot为flexible slot,第5个slot为UL 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,本公开对此不作限定。
考虑到网络侧的业务负载、干扰状况、终端的业务类型等要求,基站侧通过动态信令对指定时间单元,例如SBFD slot中的第一子带的资源信息进行动态的调整。
在本实施例中,基站通过如下方法指示调整后SBFD slot中的第一子带所占用的第二资源信息:
基站通过group common DCI携带指示信息,以便终端确定SBFD slot中第一子带所占用的第二资源信息。
其中,所述group common DCI为新引入的DCI format并通过SBFD-RNTI加扰。
或者,所述group common DCI为当前协议中已定义的DCI format,例如DCI format 2-0,本公开对此不在限定。
进一步地,终端反馈针对所述group common DCI的HARQ-ACK结果,以保证指示信息传输的可靠性。
在本实施例中,以基站通过DCI format 2_0中携带的UL subband indication指示 SBFD slot中的第一子带,第一子带为UL subband为例。所述第二资源信息可以包括频域资源,或者时域资源,或者时频域资源,本实施例不做任何限制。
当基站通过DCI format 2_0中的上行子带指示(UL subband indication)指示SBFD slot中的UL subband时,所述上行子带的第二配置信息的起始生效时间单元可以为用于承载组公共DCI的HARQ-ACK结果的时间单元;其中,所述组公共DCI用于发送所述指示信息。
进一步地,基站通过RRC signaling配置表1或表3,例如配置了上行子带的M个可用的索引值,该索引值的类型可以为资源配置索引值。基站在UL grant或者DL assignment中携带的UL subband indication长度为log2(M)bits.基站发送的指示信息的比特值对应指示的资源配置索引值的关系例如表2所示。M是指可用的资源配置索引值的总数目。
或者基站在UL grant或者DL assignment中携带的UL subband indication长度为log2(N)bits.,N是指可用的子带索引值的总数目。基站发送的指示信息的比特值对应指示的子带索引值的关系可以例如表4所示。
实施例3,假设终端为Rel-18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,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3个slot为DL slot,第4个slot为flexible slot,第5个slot为UL 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。
考虑到网络侧的业务负载、干扰状况、终端的业务类型等要求,基站侧通过动态信令对SBFD slot中的subband配置进行动态的调整。
在本实施例中,基站通过如下方法指示调整后SBFD slot中的第一子带所占用的第二资源信息:
基站通过MAC CE携带指示信息,以便终端确定SBFD slot中第一子带所占用的第二资源信息。
上行子带的第二配置信息的起始生效时间单元为所述MAC CE的HARQ-ACK结果所在的第一时间单元之后的第二时间单元,例如第一时间单元之后的第3个slot。
MAC CE中可以直接携带第二资源信息。或者,MAC CE可以携带指示信息,指示信息用于指示调整后的所述第一子带所使用的资源配置索引值,或者所述指示信息用于指示调整后被激活的子带索引值。具体实现方式已经在上述实施例中进行了介绍,此处不再赘述。
上述实施例中,基站可以对第一子带所占用的第一资源信息进行动态调整,确定调整后第一子带所占用的第二资源信息,并向终端发送指示信息,终端侧可以基于该指示信息,来确定调整后第一子带所占用的第二资源信息。其中,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同。本公开可以对网络侧配置的第一子带所占用的资源信息进行动态调整,从而提高全双工通信时网络侧调度的灵活性,提高了全双工通信的系统性能,可用性高。
与前述应用功能实现方法实施例相对应,本公开还提供了应用功能实现装置的实施例。
参照图11,图11是根据一示例性实施例示出的一种资源配置装置框图,所述装置应用于基站,包括:
第一确定模块1101,被配置为对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息;其中,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;
发送模块1102,被配置为向所述终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
参照图12,图12是根据一示例性实施例示出的一种资源配置装置框图,所述装置应用于终端,包括:
接收模块1201,被配置为接收基站发送的指示信息;其中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;
第二确定模块1202,被配置为基于所述指示信息,确定所述第二资源信息。
对于装置实施例而言,由于其基本对应于方法实施例,所以相关之处参见方法实施例的部分说明即可。以上所描述的装置实施例仅仅是示意性的,其中上述作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为单元显示的部件可以是或者也可以不是物理单元,即可以位于一个地方,或者也可以分布到多个网络单元上。可以根据实际的选择其中的部分或者全部模块来实现本公开方案的目的。本领域普通技术人员在不付出创造性劳动的情况下,即可以理解并实施。
相应地,本公开还提供了一种资源配置装置,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,所述处理器被配置为用于执行上述基站侧任一所述的资源配置方法。
如图13所示,图13是根据一示例性实施例示出的一种资源配置装置1300的一结构示意图。装置1300可以被提供为基站。参照图13,装置1300包括处理组件1322、无线发射/接收组件1324、天线组件1326、以及无线接口特有的信号处理部分,处理组件1322可进一步包括至少一个处理器。
处理组件1322中的其中一个处理器可以被配置为用于执行上述任一所述的资源配置方法。
相应地,本公开还提供了一种资源配置装置,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,所述处理器被配置为用于执行上述终端侧任一所述的资源配置方法。
图14是根据一示例性实施例示出的一种资源配置装置1400的框图。例如装置1400可以是手机、平板电脑、电子书阅读器、多媒体播放设备、可穿戴设备、车载用户设备、ipad、智能电视等终端。
参照图14,装置1400可以包括以下一个或多个组件:处理组件1402,存储器1404,电源组件1406,多媒体组件1408,音频组件1410,输入/输出(I/O)接口1412,传感器组件1416,以及通信组件1418。
处理组件1402通常控制装置1400的整体操作,诸如与显示,电话呼叫,数据随机接入,相机操作和记录操作相关联的操作。处理组件1402可以包括一个或多个处理器1420来执行指令,以完成上述的资源配置方法的全部或部分步骤。此外,处理组件1402可以包括一个或多个模块,便于处理组件1402和其他组件之间的交互。例如,处理组件1402可以包括多媒体模块,以方便多媒体组件1408和处理组件1402之间的 交互。又如,处理组件1402可以从存储器读取可执行指令,以实现上述各实施例提供的一种资源配置方法的步骤。
存储器1404被配置为存储各种类型的数据以支持在装置1400的操作。这些数据的示例包括用于在装置1400上操作的任何应用程序或方法的指令,联系人数据,电话簿数据,消息,图片,视频等。存储器1404可以由任何类型的易失性或非易失性存储设备或者它们的组合实现,如静态随机存取存储器(SRAM),电可擦除可编程只读存储器(EEPROM),可擦除可编程只读存储器(EPROM),可编程只读存储器(PROM),只读存储器(ROM),磁存储器,快闪存储器,磁盘或光盘。
电源组件1406为装置1400的各种组件提供电力。电源组件1406可以包括电源管理系统,一个或多个电源,及其他与为装置1400生成、管理和分配电力相关联的组件。
多媒体组件1408包括在所述装置1400和用户之间的提供一个输出接口的显示屏。在一些实施例中,多媒体组件1408包括一个前置摄像头和/或后置摄像头。当装置1400处于操作模式,如拍摄模式或视频模式时,前置摄像头和/或后置摄像头可以接收外部的多媒体数据。每个前置摄像头和后置摄像头可以是一个固定的光学透镜系统或具有焦距和光学变焦能力。
音频组件1410被配置为输出和/或输入音频信号。例如,音频组件1410包括一个麦克风(MIC),当装置1400处于操作模式,如呼叫模式、记录模式和语音识别模式时,麦克风被配置为接收外部音频信号。所接收的音频信号可以被进一步存储在存储器1404或经由通信组件1418发送。在一些实施例中,音频组件1410还包括一个扬声器,用于输出音频信号。
I/O接口1412为处理组件1402和外围接口模块之间提供接口,上述外围接口模块可以是键盘,点击轮,按钮等。这些按钮可包括但不限于:主页按钮、音量按钮、启动按钮和锁定按钮。
传感器组件1416包括一个或多个传感器,用于为装置1400提供各个方面的状态评估。例如,传感器组件1416可以检测到装置1400的打开/关闭状态,组件的相对定位,例如所述组件为装置1400的显示器和小键盘,传感器组件1416还可以检测装置1400或装置1400一个组件的位置改变,用户与装置1400接触的存在或不存在,装置1400方位或加速/减速和装置1400的温度变化。传感器组件1416可以包括接近传感器,被配置用来在没有任何的物理接触时检测附近物体的存在。传感器组件1416还可以包括光传感器,如CMOS或CCD图像传感器,用于在成像应用中使用。在一些实施例中,该传感器组件1416还可以包括加速度传感器,陀螺仪传感器,磁传感器,压力传感器或温度传感器。
通信组件1418被配置为便于装置1400和其他设备之间有线或无线方式的通信。装置1400可以接入基于通信标准的无线网络,如Wi-Fi,2G,3G,4G,5G或6G,或它们的组合。在一个示例性实施例中,通信组件1418经由广播信道接收来自外部广播管理系统的广播信号或广播相关信息。在一个示例性实施例中,所述通信组件1418还包括近场通信(NFC)模块,以促进短程通信。例如,在NFC模块可基于射频识别(RFID)技术,红外数据协会(IrDA)技术,超宽带(UWB)技术,蓝牙(BT)技术和其他技术来实现。
在示例性实施例中,装置1400可以被一个或多个应用专用集成电路(ASIC)、数字信号处理器(DSP)、数字信号处理设备(DSPD)、可编程逻辑器件(PLD)、现场可编程门阵列(FPGA)、控制器、微控制器、微处理器或其他电子元件实现,用于执行上述终端侧任一所述的资源配置方法。
在示例性实施例中,还提供了一种包括指令的非临时性机器可读存储介质,例如包括指令的存储器1404,上述指令可由装置1400的处理器1420执行以完成上述资源配置方法。例如,所述非临时性计算机可读存储介质可以是ROM、随机存取存储器 (RAM)、CD-ROM、磁带、软盘和光数据存储设备等。
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 (31)

  1. 一种资源配置方法,其特征在于,所述方法由基站执行,包括:
    对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息;其中,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;
    向终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
  2. 根据权利要求1所述的方法,其特征在于,所述向所述终端发送指示信息,包括:
    通过调度信息向所述终端发送所述指示信息。
  3. 根据权利要求2所述的方法,其特征在于,所述通过调度信息向所述终端发送所述指示信息,包括:
    通过上行授权信息,向所述终端发送所述指示信息;或者
    通过下行配置信息,向所述终端发送所述指示信息。
  4. 根据权利要求3所述的方法,其特征在于,所述上行授权信息用于调度物理上行共享信道PUSCH;和/或
    所述下行配置信息用于调度物理下行共享信道PDSCH。
  5. 根据权利要求1所述的方法,其特征在于,所述向所述终端发送指示信息,包括:
    通过组公共下行控制信息DCI,向所述终端发送所述指示信息。
  6. 根据权利要求5所述的方法,其特征在于,所述组公共DCI采用第一格式,且通过与所述指定时间单元对应的无线网络临时标识RNTI进行加扰;其中,所述第一格式是用于传输所述指示信息的DCI格式;或者
    所述组公共DCI复用第二格式。
  7. 根据权利要求1所述的方法,其特征在于,所述向所述终端发送指示信息,包括:
    通过媒体访问控制单元MAC CE,向所述终端发送所述指示信息。
  8. 根据权利要求1-7任一项所述的方法,其特征在于,所述指示信息为所述第二资源信息。
  9. 根据权利要求1-7任一项所述的方法,其特征在于,所述方法还包括:
    通过无线资源控制RRC信令向所述终端发送所述第一子带可用的索引值,以及每个所述索引值所对应的资源信息。
  10. 根据权利要求9所述的方法,其特征在于,所述指示信息用于指示调整后的所述第一子带所使用的资源配置索引值;或者
    所述指示信息用于指示调整后被激活的子带索引值。
  11. 根据权利要求1-7任一项所述的方法,其特征在于,所述方法还包括:
    确定所述第二资源信息的起始生效时间单元;
    从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述终端传输参考信号和控制信道中的至少一项。
  12. 根据权利要求11所述的方法,其特征在于,所述起始生效时间单元为:
    与所述指示信息相关联的第一时间单元;或者
    位于所述第一时间单元之后、且与所述第一关联时间单元间隔预设时间单元数目的第二时间单元。
  13. 根据权利要求11所述的方法,其特征在于,所述第一时间单元为以下任一项:
    用于发送所述指示信息的上行授权信息所指示的具备上行授权的时间单元;
    用于承载PDSCH的混合自动重传请求确认HARQ-ACK结果的时间单元;其中, 所述PDSCH是用于发送所述指示信息的下行配置信息所调度的PDSCH;
    用于承载组公共DCI的HARQ-ACK结果的时间单元;其中,所述组公共DCI用于发送所述指示信息;
    用于承载MAC CE的HARQ-ACK结果的时间单元;其中,所述MAC CE用于发送所述指示信息。
  14. 一种资源配置方法,其特征在于,所述方法由终端执行,包括:
    接收基站发送的指示信息;其中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;
    基于所述指示信息,确定所述第二资源信息。
  15. 根据权利要求14所述的方法,其特征在于,所述接收基站发送的指示信息,包括:
    接收所述基站通过调度信息发送的所述指示信息。
  16. 根据权利要求15所述的方法,其特征在于,所述接收所述基站通过调度信息发送的所述指示信息,包括:
    接收所述基站通过上行授权信息发送的所述指示信息;或者
    接收所述基站通过下行配置信息发送的所述指示信息。
  17. 根据权利要求16所述的方法,其特征在于,所述上行授权信息用于调度物理上行共享信道PUSCH;和/或
    所述下行配置信息用于调度物理下行共享信道PDSCH。
  18. 根据权利要求14所述的方法,其特征在于,所述接收基站发送的指示信息,包括:
    接收所述基站通过组公共下行控制信息DCI发送的所述指示信息。
  19. 根据权利要求18所述的方法,其特征在于,所述组公共DCI采用第一格式,且通过与所述指定时间单元对应的无线网络临时标识RNTI进行加扰;其中,所述第一格式是用于传输所述指示信息的DCI格式;或者
    所述组公共DCI复用第二格式。
  20. 根据权利要求18所述的方法,其特征在于,所述方法还包括:
    向所述基站发送所述组公共DCI的混合自动重传请求确认HARQ-ACK结果。
  21. 根据权利要求14所述的方法,其特征在于,所述接收基站发送的指示信息,包括:
    接收所述基站通过媒体访问控制单元MAC CE发送的所述指示信息。
  22. 根据权利要求14-21任一项所述的方法,其特征在于,所述指示信息为所述第二资源信息。
  23. 根据权利要求14-21任一项所述的方法,其特征在于,所述方法还包括:
    接收所述基站通过无线资源控制RRC信令发送的所述第一子带可用的索引值,以及每个所述索引值所对应的资源信息。
  24. 根据权利要求23所述的方法,其特征在于,所述指示信息用于指示调整后的所述第一子带所使用的资源配置索引值;或者
    所述指示信息用于指示调整后被激活的子带索引值。
  25. 根据权利要求14-21任一项所述的方法,其特征在于,所述方法还包括:
    确定所述第二资源信息的起始生效时间单元;
    从所述起始生效时间单元开始,使用所述第二资源信息所对应的资源,与所述基站传输参考信号和控制信道中的至少一项。
  26. 根据权利要求25所述的方法,其特征在于,所述起始生效时间单元为:
    与所述指示信息相关联的第一时间单元;或者
    位于所述第一时间单元之后、且与所述第一关联时间单元间隔预设时间单元数目的第二时间单元。
  27. 根据权利要求26所述的方法,其特征在于,所述第一时间单元为以下任一项:
    用于发送所述指示信息的上行授权信息所指示的具备上行授权的时间单元;
    用于承载PDSCH的HARQ-ACK结果的时间单元;其中,所述PDSCH是用于发送所述指示信息的下行配置信息所调度的PDSCH;
    用于承载组公共DCI的HARQ-ACK结果的时间单元;其中,所述组公共DCI用于发送所述指示信息;
    用于承载MAC CE的HARQ-ACK结果的时间单元;其中,所述MAC CE用于发送所述指示信息。
  28. 一种资源配置装置,其特征在于,所述装置应用于基站,包括:
    第一确定模块,被配置为对第一子带所占用的第一资源信息进行调整,确定调整后所述第一子带所占用的第二资源信息;其中,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;
    发送模块,被配置为向终端发送指示信息;其中,所述指示信息用于确定所述第二资源信息。
  29. 一种资源配置装置,其特征在于,所述装置应用于终端,包括:
    接收模块,被配置为接收基站发送的指示信息;其中,所述指示信息用于确定对第一子带所占用的第一资源信息进行调整后的第二资源信息,所述第一子带在时域上始终位于指定时间单元内,信息在所述第一子带上的传输方向与在所述指定时间单元上的传输方向不同;
    第二确定模块,被配置为基于所述指示信息,确定所述第二资源信息。
  30. 一种资源配置装置,其特征在于,包括:
    处理器;
    用于存储处理器可执行指令的存储器;
    其中,所述处理器被配置为用于执行上述权利要求1-13任一项所述的资源配置方法。
  31. 一种资源配置装置,其特征在于,包括:
    处理器;
    用于存储处理器可执行指令的存储器;
    其中,所述处理器被配置为用于执行上述权利要求14-27任一项所述的资源配置方法。
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