WO2023011322A1 - 调度方法、装置、相关设备及存储介质 - Google Patents

调度方法、装置、相关设备及存储介质 Download PDF

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Publication number
WO2023011322A1
WO2023011322A1 PCT/CN2022/108727 CN2022108727W WO2023011322A1 WO 2023011322 A1 WO2023011322 A1 WO 2023011322A1 CN 2022108727 W CN2022108727 W CN 2022108727W WO 2023011322 A1 WO2023011322 A1 WO 2023011322A1
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Prior art keywords
pdcch
rnti
sps
pdsch
scrambled
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PCT/CN2022/108727
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English (en)
French (fr)
Inventor
王飞
杨拓
王大鹏
李男
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中国移动通信有限公司研究院
中国移动通信集团有限公司
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Publication of WO2023011322A1 publication Critical patent/WO2023011322A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/30Connection release

Definitions

  • the present application relates to the field of wireless communication, and in particular to a scheduling method, device, related equipment and storage medium.
  • a user equipment may receive multiple multicast services, that is, a UE may be configured with multiple temporary mobile group identities (TMGI).
  • TMGI temporary mobile group identities
  • a corresponding G-RNTI is configured for multicast transmission.
  • SPS multicast semi-persistent scheduling
  • SPS configuration multiple multicast SPS configurations
  • serving cell English can be expressed as serving cell
  • embodiments of the present application provide a scheduling method, device, related equipment, and storage medium.
  • An embodiment of the present application provides a scheduling method applied to a terminal, including:
  • the terminal is configured with multiple group configuration scheduling radio network temporary identifiers (G-CS-RNTI) and multiple SPS configurations;
  • G-CS-RNTI group configuration scheduling radio network temporary identifiers
  • SPS configurations multiple SPS configurations
  • the first PDCCH is scrambled by using the first G-CS-RNTI, and the first G-CS-RNTI is the multiple G-CS-RNTI One of the RNTIs, the first PDCCH is used to activate one of the multiple SPS configurations;
  • the first PDSCH uses the first G-CS-RNTI to perform scrambling.
  • the method also includes:
  • the second PDCCH After receiving the first PDCCH sent by the network side, receive the second PDCCH sent by the network side, the second PDCCH is scrambled by using the second G-CS-RNTI, and the second G-CS-RNTI is One of the multiple G-CS-RNTIs, the second PDCCH is used to activate one of the multiple SPS configurations; the second PDCCH is used to activate the SPS configuration index and the first PDCCH uses Same as the active SPS configuration index;
  • the SPS configuration activated by the second PDCCH is used to transmit the second PDSCH; the second PDSCH is scrambled by using the second G-CS-RNTI.
  • the second G-CS-RNTI is different from the first G-CS-RNTI; the second PDCCH is also used to indicate deactivation of the activated SPS configuration of the first PDCCH; the first The PDCCH is the last PDCCH of the second PDCCH.
  • the second G-CS-RNTI is different from the first G-CS-RNTI; before receiving the second PDCCH, the PDCCH for releasing the first PDSCH is not received; the first A PDCCH is the last PDCCH of the second PDCCH.
  • the second G-CS-RNTI is the same as the first G-CS-RNTI.
  • the method also includes:
  • the method also includes:
  • Receive a fourth PDCCH sent by the network side where the fourth PDCCH is used to indicate deactivation of the SPS configuration activated by the first PDCCH, and the PDCCH is scrambled by using the first G-CS-RNTI.
  • the method also includes:
  • the fifth PDCCH is scrambled using the configured scheduling radio network temporary identifier (CS-RNTI), and the fifth PDCCH is scrambled with
  • CS-RNTI configured scheduling radio network temporary identifier
  • the SPS configuration index for activation is the same as the SPS configuration index for activation of the first PDCCH;
  • the SPS configuration activated by the fifth PDCCH is used to transmit the third PDSCH; the third PDSCH is scrambled by using CS-RNTI.
  • the method also includes:
  • the sixth PDCCH When the sixth PDCCH is detected on the first time slot where the activated SPS configuration is located, use the indication of the sixth PDCCH on the first time slot to perform PDSCH reception; the sixth PDCCH adopts the group wireless network temporary
  • the G-RNTI is identified for scrambling, and the G-RNTI is associated with the G-CS-RNTI originally used for the SPS PDSCH transmission that should be performed in the first time slot.
  • the embodiment of the present application also provides a scheduling method applied to network devices, including:
  • the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations;
  • the first PDCCH is scrambled using the first G-CS-RNTI, and the first G-CS -RNTI is one of the multiple G-CS-RNTIs, and the first PDCCH is used to activate one of the multiple SPS configurations;
  • the SPS configuration activated by the first PDCCH is used to transmit the first PDSCH; the first PDSCH is scrambled by using the first G-CS-RNTI.
  • the method also includes:
  • the second PDCCH is scrambled by using a second G-CS-RNTI, and the second G-CS-RNTI is the multiple One of the G-CS-RNTI, the second PDCCH is used to activate one of the multiple SPS configurations; the second PDCCH is used to activate the SPS configuration index and the first PDCCH is used to activate the SPS The configuration index is the same;
  • the SPS configuration activated by the second PDCCH is used to transmit the second PDSCH; the second PDSCH is scrambled by using the second G-CS-RNTI.
  • the second G-CS-RNTI is different from the first G-CS-RNTI; the second PDCCH is also used to indicate deactivation of the activated SPS configuration of the first PDCCH; the first The PDCCH is the last PDCCH of the second PDCCH.
  • the second G-CS-RNTI is different from the first G-CS-RNTI; before sending the second PDCCH, the PDCCH for releasing the first PDSCH is not sent; the first A PDCCH is the last PDCCH of the second PDCCH.
  • the second G-CS-RNTI is the same as the first G-CS-RNTI.
  • the method also includes:
  • the method also includes:
  • Sending a fourth PDCCH to the terminal where the fourth PDCCH is used to indicate deactivation of the SPS configuration activated by the first PDCCH, and the PDCCH is scrambled by using the first G-CS-RNTI.
  • the method also includes:
  • the fifth PDCCH is scrambled using CS-RNTI, and the fifth PDCCH is used for the activated SPS configuration index and the first PDCCH
  • the SPS configuration index used for activation is the same;
  • the SPS configuration activated by the fifth PDCCH is used to transmit the third PDSCH; the third PDSCH is scrambled by using CS-RNTI.
  • the method also includes:
  • the sixth PDCCH is sent in the first time slot where the activated SPS configuration is located, and the sixth PDCCH is scrambled by using G-RNTI, which is the same as the SPS PDSCH transmission that should have been performed in the first time slot.
  • G-RNTI which is the same as the SPS PDSCH transmission that should have been performed in the first time slot.
  • the G-CS-RNTI used is associated;
  • the embodiment of the present application also provides a scheduling device, which is set on the terminal and includes:
  • the receiving unit is configured to receive the first PDCCH sent by the network side, the first PDCCH is scrambled by using the first G-CS-RNTI, and the first G-CS-RNTI is one of the multiple G-CS-RNTIs One, the first PDCCH is used to activate one of multiple SPS configurations; the terminal is configured with the multiple G-CS-RNTIs and the multiple SPS configurations;
  • the first transmission unit is configured to use the SPS configuration activated by the first PDCCH to perform first PDSCH transmission; the first PDSCH is scrambled by using the first G-CS-RNTI.
  • the embodiment of the present application also provides a scheduling device, which is set on a network device and includes:
  • a sending unit configured to send a first PDCCH to a terminal; the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations; the first PDCCH is scrambled using the first G-CS-RNTI, the The first G-CS-RNTI is one of the multiple G-CS-RNTIs, and the first PDCCH is used to activate one of the multiple SPS configurations;
  • the second transmission unit is configured to use the SPS configuration activated by the first PDCCH to transmit the first PDSCH; the first PDSCH is scrambled by using the first G-CS-RNTI.
  • the embodiment of the present application also provides a terminal, including: a first processor and a first communication interface; wherein,
  • the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations;
  • the first communication interface is configured to receive the first PDCCH sent by the network side, the first PDCCH is scrambled by using the first G-CS-RNTI, and the first G-CS-RNTI is the plurality of G - one of the CS-RNTIs, the first PDCCH is used to activate one of the plurality of SPS configurations;
  • the first processor is configured to use the SPS configuration activated by the first PDCCH to perform first PDSCH transmission through the first communication interface; the first PDSCH is scrambled by using the first G-CS-RNTI .
  • the embodiment of the present application also provides a network device, including: a second processor and a second communication interface; wherein,
  • the second communication interface is configured to send a first PDCCH to the terminal;
  • the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations;
  • the first PDCCH is added using the first G-CS-RNTI interference, the first G-CS-RNTI is one of the multiple G-CS-RNTIs, and the first PDCCH is used to activate one of the multiple SPS configurations;
  • the second processor is configured to use the SPS configuration activated by the first PDCCH to perform first PDSCH transmission through the second communication interface; the first PDSCH is scrambled by using the first G-CS-RNTI .
  • An embodiment of the present application also provides a terminal, including: a first processor and a first memory configured to store a computer program that can run on the processor,
  • the first processor is configured to execute the steps of any method on the terminal side when running the computer program.
  • An embodiment of the present application also provides a network device, including: a second processor and a second memory configured to store a computer program that can run on the processor,
  • the second processor is configured to execute the steps of any method on the network device side when running the computer program.
  • the embodiment of the present application also provides a storage medium on which a computer program is stored, and when the computer program is executed by a processor, the steps of any method on the terminal side are realized, or the steps of any method on the network device side are realized.
  • the network equipment sends the first PDCCH to the terminal; the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations; the first PDCCH The first G-CS-RNTI is used for scrambling, the first G-CS-RNTI is one of the multiple G-CS-RNTIs, and the first PDCCH is used to activate the multiple SPS configurations One of the above; the network device and the terminal use the SPS configuration activated by the first PDCCH to perform the first PDSCH transmission; the first PDSCH uses the first G-CS-RNTI for scrambling, and the network side uses the terminal configuration Multiple G-CS-RNTI scrambled SPS activates PDCCH to flexibly activate one or more multicast SPS configurations, so as to realize flexible multicast transmission of SPS scheduling.
  • FIG. 1 is a schematic flow diagram of a scheduling method according to an embodiment of the present application
  • FIG. 2 is a schematic flow diagram of a second scheduling method in an embodiment of the present application.
  • FIG. 3 is a schematic flow diagram of a third scheduling method according to an embodiment of the present application.
  • FIG. 4 is a schematic structural diagram of a dispatching device according to an embodiment of the present application.
  • FIG. 5 is a schematic structural diagram of another scheduling device according to an embodiment of the present application.
  • FIG. 6 is a schematic structural diagram of a terminal according to an embodiment of the present application.
  • FIG. 7 is a schematic structural diagram of a network device according to an embodiment of the present application.
  • FIG. 8 is a schematic structural diagram of a scheduling system according to an embodiment of the present application.
  • one multicast service (possibly corresponding to one TMGI configuration) corresponds to one G-RNTI; at the same time, one user may support one or more multicast services, that is, one user may support one or more G-RNTIs.
  • SPS group common PDSCH (English can be expressed as SPS group-common PDSCH)
  • SPS configuration also supports at least the use of group common (group-common) PDCCH (cyclic redundancy check (CRC) using G-CS-RNTI scrambling) to activate/deactivate SPS group-common PDSCH (scrambled with G-CS-RNTI).
  • group common PDCCH cyclic redundancy check (CRC) using G-CS-RNTI scrambling
  • a UE may receive multiple multicast services (for example, a multicast service corresponds to a TMGI configured by high-layer signaling), the UE may be configured with multiple TMGIs, and for each multicast service (when When a multicast service corresponds to a TMGI, a multicast service can also be regarded as a TMGI) and a corresponding G-RNTI will be configured for multicast transmission.
  • a multicast service corresponds to a TMGI configured by high-layer signaling
  • the network side uses multiple G-CS-RNTI scrambled multicast SPS activation PDCCHs configured for the terminal to flexibly activate one or more multicast SPS configurations, thereby realizing
  • the flexible multicast transmission scheduled by SPS further reduces the PDCCH overhead of multicast transmission.
  • the embodiment of the present application provides a scheduling method, which is applied to a terminal, and the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations; as shown in Figure 1, the method includes:
  • Step 101 Receive the first PDCCH sent by the network side, the first PDCCH is scrambled by using the first G-CS-RNTI, and the first G-CS-RNTI is one of the multiple G-CS-RNTIs One, the first PDCCH is used to activate one of the multiple SPS configurations;
  • Step 102 Use the SPS configuration activated by the first PDCCH to perform the first PDSCH transmission, that is, use the resources of the SPS configuration activated by the first PDCCH to perform the first PDSCH transmission; the first PDSCH uses the first G- CS-RNTI performs scrambling.
  • the terminal may be called a UE, or may be called a user or the like.
  • the terminal is configured with multiple G-CS-RNTIs, which can be understood as the terminal is configured with multiple multicast services. That is to say, in this embodiment of the application, the terminal can support multiple multicast services configured.
  • a multicast service corresponds to a TMGI configured by high-level signaling, it can be understood that the terminal can support the configured multiple TMGIs.
  • the terminal When the SPS configuration is used for multicast services, the terminal is configured with multiple SPS configurations, which can be understood as the terminal is configured with multiple multicast SPS configurations.
  • the multicast SPS configuration may also be called SPS group-common PDSCH configuration, which is not limited in this embodiment of the present application, as long as the function of the multicast SPS configuration is realized.
  • each multicast service can be configured with at most one G-RNTI and at most one G-CS-RNTI. Therefore, in practical applications, when the terminal can support multiple multicast services configured, the The terminal may have multiple G-RNTIs and multiple G-CS-RNTIs.
  • step 101 that is, when the network side (that is, the network device, specifically the base station, such as gNB) sends the multicast SPS activation downlink control information (DCI), it needs to first determine which G-CS-RNTI to use for CRC Specifically, the network side can use the G-CS-RNTI corresponding to the multicast service when determining which multicast service is configured to transmit the multicast SPS transmission according to needs.
  • the network side that is, the network device, specifically the base station, such as gNB
  • DCI multicast SPS activation downlink control information
  • the network side configures multiple G-RNTIs (respectively G-RNTI-1 ⁇ G-RNTI-N, respectively corresponding to multicast services 1 ⁇ N) and multiple G-CS-RNTIs for the terminal (respectively G-CS-RNTI-1 ⁇ G-CS-RNTI-N, respectively corresponding to multicast services 1 ⁇ N), where N is an integer greater than or equal to 2, if G-CS-RNTI-1 is used to add
  • the scrambled PDCCH activates multicast SPS scheduling for the terminal, the subsequent multicast SPS PDSCH can only be scrambled using G-CS-RNTI-1, and can only be used to transmit multicast service 1, that is, the first The PDSCH must use the first G-CS-RNTI for scrambling, and can only be used for the transmission of the multicast service corresponding to the first G-CS-RNTI.
  • any multicast SPS configuration is allowed to be flexibly used for any multicast service, that is to say , the network side can flexibly use any G-CS-RNTI scrambled multicast SPS to activate the PDCCH to activate a certain multicast SPS configuration. After activation, the network side uses the multicast SPS configuration for the multicast SPS transmission of business.
  • one SP configuration of the multiple SPS configurations can be used for the multicast transmission of any one of the multiple G-CS-RNTIs in the multicast transmission of the multiple G-CS-RNTIs.
  • the terminal after using a certain G-CS-RNTI scrambled PDCCH (which can also be understood as DCI) to activate multicast SPS scheduling for the terminal, it can be used in the subsequent process for The terminal reconfigures multicast SPS resources, that is, the network side can re-send a new downlink multicast SPS activation PDCCH scrambled by using a certain G-CS-RNTI.
  • G-CS-RNTI which can also be understood as DCI
  • the second PDCCH is scrambled by using the second G-CS-RNTI,
  • the second G-CS-RNTI is one of the multiple G-CS-RNTIs, the second PDCCH is used to activate one of the multiple SPS configurations; the second PDCCH is used to activate the
  • the SPS configuration index is the same as the SPS configuration index used for activation by the first PDCCH;
  • Use the SPS configuration activated by the second PDCCH to perform second PDSCH transmission that is, use the resources of the SPS configuration activated by the second PDCCH to perform second PDSCH transmission; the second PDSCH uses the second G-CS-RNTI Do scrambling.
  • the G-CS-RNTI used by the retransmitted activated PDCCH may be the same as or different from the G-CS-RNTI used by the previous activated PDCCH, so as to allocate new multicast SPS resources.
  • the second G-CS-RNTI may be the same as the first G-CS-RNTI.
  • the multicast service corresponding to the first G-CS-RNTI is transmitted on a new multicast SPS resource.
  • the network side configures multiple G-RNTIs (respectively G-RNTI-1 ⁇ G-RNTI-N, respectively corresponding to multicast services 1 ⁇ N) and multiple G-CS-RNTIs for the terminal (respectively G-CS-RNTI-1-G-CS-RNTI-N, respectively corresponding to multicast services 1-N), where N is an integer greater than or equal to 2.
  • G-RNTI-1 the previous activated PDCCH and the retransmitted activated PDCCH are scrambled with G-CS-RNTI-1
  • the reactivated multicast SPS transmission is still only applicable to the transmission of multicast service 1, which also means that the subsequent multicast SPS PDSCH still uses G-CS-RNTI-1 for scrambling.
  • the G-CS-RNTI used by the retransmitted activated PDCCH may be different from the G-CS-RNTI used by the previous activated PDCCH, it means that after activating a multicast SPS configuration, another G-CS-RNTI is used in the subsequent process.
  • the PDCCH scrambled by CS-RNTI reactivates the multicast SPS configuration for the terminal. At this time, it is considered that the SPS resource activated for a multicast service has been released, and the previous activation can be sent for the terminal without display
  • the PDCCH used to release multicast SPS resources scrambled by the G-CS-RNTI used by the PDCCH may be called an SPS release PDCCH (SPS release PDCCH). In this way, the PDCCH overhead of multicast transmission can be reduced.
  • the second G-CS-RNTI is different from the first G-CS-RNTI; the second PDCCH is also used to indicate deactivation of the SPS activated by the first PDCCH configuration; the first PDCCH is the last PDCCH of the second PDCCH.
  • the first PDCCH is the last PDCCH of the second PDCCH, which means that in terms of time transmission order, the first PDCCH is the last PDCCH of the second PDCCH.
  • the second PDCCH is also used to indicate deactivation of the SPS configuration activated by the first PDCCH, and it can also be understood that the second PDCCH is also used to release the first PDSCH.
  • the reactivated multicast SPS resource is only applicable to Transmit multicast service 2 instead of multicast service 1; and consider that the SPS resources activated for multicast service 1 have been released, and there is no need to explicitly send G-CS-RNTI-1 scrambling to the terminal The SPS release PDCCH.
  • the first PDCCH is the last PDCCH of the second PDCCH.
  • the PDCCH for releasing the first PDSCH is not received, that is, the PDCCH for releasing the first PDSCH is not needed, that is, the PDCCH for releasing the first PDSCH does not need to be received.
  • the process of reallocating multicast SPS resources can occur in any time slot, and subsequent multicast SPS time slots will use the reallocated multicast SPS resources.
  • the activated multicast SPS configuration can also be released by sending a PDCCH.
  • PDCCH Physical Downlink Control Channel
  • the method may further include:
  • Receive a fourth PDCCH sent by the network side where the fourth PDCCH is used to indicate deactivation of the SPS configuration activated by the first PDCCH, and the PDCCH is scrambled by using the first G-CS-RNTI.
  • the fourth PDCCH is used to indicate deactivation of the SPS configuration activated by the first PDCCH, and it can also be understood that the fourth PDCCH is used to release the first PDSCH.
  • the method may further include:
  • the network side when the network side sends the multicast SPS release PDCCH, it can only use the G-CS-RNTI used when the multicast SPS configuration was last activated.
  • the third PDCCH is used to indicate deactivation of the SPS configuration activated by the second PDCCH, and it can also be understood that the third PDCCH is used to release the second PDSCH.
  • the subsequent G-CS-RNTI used when sending the SPS release PDCCH must be used for retransmission. scrambling.
  • the terminal activates the multicast SPS configuration, it will still monitor the PDCCH used for multicast dynamic scheduling (ie, the group-common PDCCH scrambled by the G-RNTI).
  • the PDCCH used for multicast dynamic scheduling is detected on the SPS resource slot, the resource allocated by the PDCCH will replace the resource allocated by multicast SPS scheduling, that is, the priority of multicast dynamic scheduling is higher.
  • the method may also include:
  • the sixth PDCCH When the sixth PDCCH is detected on the first time slot where the activated SPS configuration is located, that is, when the sixth PDCCH is detected on the first time slot where the resource of the activated SPS configuration is located, in the first time slot Use the instruction of the sixth PDCCH to receive the PDSCH; the sixth PDCCH uses G-RNTI for scrambling, and the G-RNTI is the same as the G used for the SPS PDSCH transmission that should have been performed in the first time slot. - CS-RNTI association.
  • the PDCCH dynamically scheduled by multicast is only valid for this time slot, that is, it is valid only for the first time slot, and does not affect subsequent multicast SPS transmission time slots.
  • the network side can use the CS-RNTI scrambled PDCCH to reactivate the SPS configuration for the terminal in the subsequent process, and the subsequent SPS configuration is used for unicast services .
  • the method may also include:
  • the fifth PDCCH is scrambled by using CS-RNTI, and the fifth PDCCH is used for the activated SPS configuration index and the The SPS configuration index used for activation of the first PDCCH is the same;
  • Use the SPS configuration activated by the fifth PDCCH to perform third PDSCH transmission that is, use the resources of the SPS configuration activated by the fifth PDCCH to perform third PDSCH transmission; the third PDSCH uses CS-RNTI for scrambling.
  • the third PDSCH corresponds to a unicast service.
  • the network side When the network side reactivates the SPS configuration for the terminal, at this time it is considered that the SPS resource activated for a multicast service has been released, and the CS-RNTI scrambled SPS may be sent for the terminal without display release PDCCH, that is to say, the fifth PDCCH is also used to indicate to deactivate the SPS configuration activated by the first PDCCH, so that the PDCCH overhead of multicast transmission can be reduced.
  • the seventh PDCCH is scrambled using CS-RNTI; the seventh PDCCH is used to activate one of the multiple SPS configurations;
  • the SPS configuration index used for activation of the seventh PDCCH is the same as the SPS configuration index used for activation of the first PDCCH; at this time, the terminal uses the activated configuration of the seventh PDCCH to perform fourth PDSCH transmission, and the The terminal uses the configured resource activated by the seventh PDCCH to transmit the fourth PDSCH; the fourth PDSCH is scrambled by using the CS-RNTI. That is to say, the fourth PDSCH corresponds to a unicast service.
  • the SPS resources activated by the CS-RNTI have been released, that is, the SPS resources activated by the seventh PDCCH have been released, and there is no need to display the first G-CS-RNTI for sending The scrambled SPS release PDCCH, and the subsequent SPS configuration is used to transmit multicast services instead of unicast services. That is to say, in this case, the first PDCCH is also used to indicate deactivation of the activated SPS configuration of the seventh PDCCH.
  • the PDCCH scrambled by G-CS-RNTI-1 is used to reactivate the SPS configuration for the terminal in the subsequent process.
  • SPS configuration at this time, it is considered that the SPS resources activated for CS-RNTI have been released, and there is no need to explicitly send CS-RNTI-1 scrambled SPS release PDCCH to the terminal, and the subsequent SPS configuration is used for transmission Multicast traffic 1 instead of unicast traffic.
  • the first PDSCH can also be called the first SPS PDSCH
  • the second PDSCH can also be called the second SPS PDSCH
  • the name of the first PDSCH and the second PDSCH is not limited in the embodiment of the present application , as long as its function can be realized.
  • the embodiment of the present application also provides a scheduling method, which is applied to network equipment, specifically a base station, such as gNB, as shown in Figure 2, the method includes:
  • Step 201 Send the first PDCCH to the terminal; the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations; the first PDCCH is scrambled with the first G-CS-RNTI, and the first G-CS-RNTI is one of the multiple G-CS-RNTIs, and the first PDCCH is used to activate one of the multiple SPS configurations;
  • Step 202 Use the SPS configuration activated by the first PDCCH to perform the first PDSCH transmission, that is, use the resources of the SPS configuration activated by the first PDCCH to perform the first PDSCH transmission; the first PDSCH uses the first G- CS-RNTI performs scrambling.
  • the method may also include:
  • the second PDCCH is scrambled by using a second G-CS-RNTI, and the second G-CS-RNTI is the multiple One of the G-CS-RNTI, the second PDCCH is used to activate one of the multiple SPS configurations; the second PDCCH is used to activate the SPS configuration index and the first PDCCH is used to activate the SPS The configuration index is the same;
  • Use the SPS configuration source activated by the second PDCCH to perform second PDSCH transmission that is, use the resources of the SPS configuration activated by the second PDCCH to perform second PDSCH transmission; the second PDSCH uses the second G-CS- RNTI performs scrambling.
  • the network device when the second G-CS-RNTI is different from the first G-CS-RNTI; before sending the second PDCCH, the network device does not send an A PDCCH of a PDSCH, that is, the network device needs to send a PDCCH for releasing the first PDSCH; the first PDCCH is the last PDCCH of the second PDCCH.
  • the method may also include:
  • the method may also include:
  • Sending a fourth PDCCH to the terminal where the fourth PDCCH is used to indicate deactivation of the SPS configuration activated by the first PDCCH, and the PDCCH is scrambled by using the first G-CS-RNTI.
  • the method may also include:
  • the fifth PDCCH is scrambled using CS-RNTI, and the fifth PDCCH is used for the activated SPS configuration index and the first PDCCH
  • the SPS configuration index used for activation is the same;
  • Use the SPS configuration activated by the fifth PDCCH to perform third PDSCH transmission that is, use the resources of the SPS configuration activated by the fifth PDCCH to perform third PDSCH transmission; the third PDSCH uses CS-RNTI for scrambling.
  • the method may also include:
  • the sixth PDCCH is sent in the first time slot where the activated SPS configuration is located, that is, the sixth PDCCH is sent in the first time slot where the resource of the activated SPS configuration is located, and the sixth PDCCH is scrambled using G-RNTI, and the The G-RNTI is associated with the G-CS-RNTI used for the SPS PDSCH transmission that should have been performed in the first time slot;
  • Use the sixth PDCCH to send the PDSCH on the first time slot that is, use the resource indicated by the sixth PDCCH to send the PDSCH on the first time slot.
  • the embodiment of the present application also provides a scheduling method, as shown in Figure 3, the method includes:
  • Step 301 The network device sends the first PDCCH to the terminal; the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations; the first PDCCH is scrambled using the first G-CS-RNTI, and the The first G-CS-RNTI is one of the multiple G-CS-RNTIs, and the first PDCCH is used to activate one of the multiple SPS configurations;
  • Step 302 The network device and the terminal use the SPS configuration activated by the first PDCCH to transmit the first PDSCH; the first PDSCH is scrambled by using the first G-CS-RNTI.
  • the network device sends the first PDCCH to the terminal; the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations; the first PDCCH uses the first G-CS-RNTI performing scrambling, the first G-CS-RNTI is one of the multiple G-CS-RNTIs, and the first PDCCH is used to activate one of the multiple SPS configurations; the network device and The terminal uses the SPS configuration activated by the first PDCCH to transmit the first PDSCH; the first PDSCH uses the first G-CS-RNTI for scrambling, and the network side uses multiple G-CS-RNTIs configured for the terminal
  • the scrambled SPS activates PDCCH to activate one or more multicast SPS configurations, so as to realize flexible multicast transmission of SPS scheduling.
  • the embodiment of the present application also provides a scheduling device, which is set on the terminal, as shown in Figure 4, the device includes:
  • the receiving unit 401 is configured to receive the first PDCCH sent by the network side, the first PDCCH is scrambled by using the first G-CS-RNTI, and the first G-CS-RNTI is one of the multiple G-CS-RNTIs One of the first PDCCH is used to activate one of the multiple SPS configurations; the terminal is configured with the multiple G-CS-RNTIs and the multiple SPS configurations;
  • the first transmission unit 402 is configured to use the SPS configuration activated by the first PDCCH to transmit a first PDSCH; the first PDSCH is scrambled by using the first G-CS-RNTI.
  • the receiving unit 401 is further configured to receive the second PDCCH sent by the network side after receiving the first PDCCH sent by the network side, and the second PDCCH adopts the second G- The CS-RNTI performs scrambling, the second G-CS-RNTI is one of the multiple G-CS-RNTIs, and the second PDCCH is used to activate one of the multiple SPS configurations; the The SPS configuration index used for activation by the second PDCCH is the same as the SPS configuration index used by the first PDCCH for activation;
  • the first transmission unit 402 is further configured to use the SPS configuration activated by the second PDCCH to perform second PDSCH transmission; the second PDSCH is scrambled by using the second G-CS-RNTI.
  • the receiving unit 401 when the second G-CS-RNTI is different from the first G-CS-RNTI, before receiving the second PDCCH, the receiving unit 401 does not receive the The PDCCH of the first PDSCH; the first PDCCH is the last PDCCH of the second PDCCH.
  • the receiving unit 401 is further configured to receive a third PDCCH sent by the network side, the third PDCCH is used to indicate deactivation of the activated SPS configuration of the second PDCCH, and the third PDCCH adopts The second G-CS-RNTI performs scrambling.
  • the receiving unit 401 is further configured to receive a fourth PDCCH sent by the network side, the fourth PDCCH is used to indicate deactivation of the activated SPS configuration of the first PDCCH, and the PDCCH adopts the The first G-CS-RNTI performs scrambling.
  • the receiving unit 401 is further configured to receive the fifth PDCCH sent by the network side after receiving the first PDCCH sent by the network side, and the fifth PDCCH is scrambled by using CS-RNTI , the SPS configuration index used by the fifth PDCCH for activation is the same as the SPS configuration index used by the first PDCCH for activation;
  • the first transmission unit 402 is further configured to use the SPS configuration activated by the fifth PDCCH to transmit a third PDSCH; the third PDSCH is scrambled using CS-RNTI.
  • the first transmission unit 402 when the sixth PDCCH is detected on the first time slot where the activated SPS configuration is located, the first transmission unit 402 is further configured to use the sixth PDCCH on the first time slot
  • the instruction of PDCCH carries out PDSCH reception;
  • the sixth PDCCH is scrambled with the group wireless network temporary identifier G-RNTI, and the G-RNTI is the same as the G-RNTI used for the SPS PDSCH transmission that should have been carried out in the first time slot.
  • CS-RNTI association when the sixth PDCCH is detected on the first time slot where the activated SPS configuration is located.
  • the receiving unit 401 may be realized by a communication interface in the scheduling device; the first transmitting unit 402 may be realized by a processor in the scheduling device combined with a communication interface.
  • the embodiment of the present application also provides a scheduling device, which is set on the network device, as shown in Figure 5, the device includes:
  • the sending unit 501 is configured to send a first PDCCH to a terminal; the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations; the first PDCCH is scrambled using the first G-CS-RNTI, so The first G-CS-RNTI is one of the multiple G-CS-RNTIs, and the first PDCCH is used to activate one of the multiple SPS configurations;
  • the second transmission unit 502 is configured to use the SPS configuration activated by the first PDCCH to transmit the first PDSCH; the first PDSCH is scrambled by using the first G-CS-RNTI.
  • the sending unit 501 is further configured to send a second PDCCH to the terminal after sending the first PDCCH to the terminal, and the second PDCCH is performed by using the second G-CS-RNTI Scrambling, the second G-CS-RNTI is one of the multiple G-CS-RNTIs, the second PDCCH is used to activate one of the multiple SPS configurations; the second PDCCH uses The SPS configuration index for activation is the same as the SPS configuration index for activation of the first PDCCH;
  • the second transmission unit 502 is further configured to use the SPS configuration activated by the second PDCCH to perform second PDSCH transmission; the second PDSCH is scrambled by using the second G-CS-RNTI.
  • the sending unit 501 when the second G-CS-RNTI is different from the first G-CS-RNTI; before sending the second PDCCH, the sending unit 501 does not send the The PDCCH of the first PDSCH, that is, the PDCCH that the network device needs to send to release the first PDSCH; the first PDCCH is the last PDCCH of the second PDCCH.
  • the sending unit 501 is further configured to send a third PDCCH to the terminal, the third PDCCH is used to indicate deactivation of the activated SPS configuration of the second PDCCH, and the third PDCCH adopts The second G-CS-RNTI performs scrambling.
  • the sending unit 501 is further configured to send a fourth PDCCH to the terminal, the fourth PDCCH is used to indicate deactivation of the SPS configuration activated by the first PDCCH, and the PDCCH adopts the The first G-CS-RNTI performs scrambling.
  • the sending unit 501 is further configured to send a fifth PDCCH to the terminal after sending the first PDCCH to the terminal, the fifth PDCCH is scrambled by using CS-RNTI, and the fifth PDCCH is scrambled by using CS-RNTI.
  • the SPS configuration index used for activation of the five PDCCHs is the same as the SPS configuration index used for activation of the first PDCCH;
  • the second transmission unit 502 is further configured to use the SPS configuration activated by the fifth PDCCH to transmit a third PDSCH; the third PDSCH is scrambled using CS-RNTI.
  • the sending unit 501 is further configured to send the sixth PDCCH in the first time slot where the activated SPS configuration is located, the sixth PDCCH is scrambled by using G-RNTI, and the G-RNTI and The G-CS-RNTI used for the SPS PDSCH transmission that should have been performed in the first time slot is associated;
  • the second transmission unit 502 is further configured to use the sixth PDCCH indication to perform PDSCH transmission on the first time slot.
  • the sending unit 501 may be implemented by a communication interface in the scheduling device; the second transmission unit 502 may be implemented by a processor in the scheduling device combined with a communication interface.
  • the scheduling device when the scheduling device provided by the above-mentioned embodiment performs scheduling, it only uses the division of the above-mentioned program modules for illustration. The internal structure of the program is divided into different program modules to complete all or part of the processing described above.
  • the scheduling device and the scheduling method embodiments provided in the above embodiments belong to the same idea, and the specific implementation process thereof is detailed in the method embodiments, and will not be repeated here.
  • the embodiment of the present application also provides a terminal, as shown in FIG. 6 , the terminal 600 includes:
  • the first communication interface 601 is capable of exchanging information with the network side;
  • the first processor 602 is connected to the first communication interface 601 to implement information interaction with the network side, and is configured to execute the method provided by one or more technical solutions on the terminal side when running the computer program;
  • the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations;
  • the first communication interface 601 is configured to receive the first PDCCH sent by the network side, the first PDCCH is scrambled by using the first G-CS-RNTI, and the first G-CS-RNTI is the plurality of One of the G-CS-RNTI, the first PDCCH is used to activate one of the multiple SPS configurations;
  • the first processor 602 is configured to use the SPS configuration activated by the first PDCCH to perform the first PDSCH transmission through the first communication interface 601; the first PDSCH is performed using the first G-CS-RNTI scrambling.
  • the first communication interface 601 is further configured to receive the second PDCCH sent by the network side after receiving the first PDCCH sent by the network side, and the second PDCCH adopts the second G-CS-RNTI performs scrambling, the second G-CS-RNTI is one of the multiple G-CS-RNTIs, and the second PDCCH is used to activate one of the multiple SPS configurations;
  • the SPS configuration index used for activation of the second PDCCH is the same as the SPS configuration index used for activation of the first PDCCH;
  • the first processor 602 is further configured to use the SPS configuration activated by the second PDCCH to perform second PDSCH transmission through the first communication interface 601; the second PDSCH uses the second G-CS-RNTI Do scrambling.
  • the first communication interface 601 when the second G-CS-RNTI is different from the first G-CS-RNTI, before receiving the second PDCCH, the first communication interface 601 does not receive The PDCCH of the first PDSCH; the first PDCCH is the last PDCCH of the second PDCCH.
  • the first communication interface 601 is further configured to receive a third PDCCH sent by the network side, the third PDCCH is used to indicate deactivation of the activated SPS configuration of the second PDCCH, and the third PDCCH The PDCCH is scrambled by using the second G-CS-RNTI.
  • the first communication interface 601 is further configured to receive a fourth PDCCH sent by the network side, the fourth PDCCH is used to indicate deactivation of the activated SPS configuration of the first PDCCH, and the PDCCH adopts The first G-CS-RNTI performs scrambling.
  • the first communication interface 601 is further configured to receive the fifth PDCCH sent by the network side after receiving the first PDCCH sent by the network side, and the fifth PDCCH is implemented using CS-RNTI Scrambling, the SPS configuration index used by the fifth PDCCH for activation is the same as the SPS configuration index used by the first PDCCH for activation;
  • the first processor 602 is further configured to use the SPS configuration activated by the fifth PDCCH to transmit a third PDSCH through the first communication interface 601; the third PDSCH is scrambled by using CS-RNTI.
  • the first processor 602 when the sixth PDCCH is detected on the first time slot where the activated SPS configuration is located, the first processor 602 is further configured to use the sixth PDCCH on the first time slot
  • the indication of the PDCCH is received by the PDSCH through the first communication interface 601; the sixth PDCCH is scrambled by using the group radio network temporary identifier G-RNTI, and the G-RNTI is the same as that which should have been performed in the first time slot
  • the G-CS-RNTI used for SPS PDSCH transmission is associated.
  • bus system 604 is configured to enable connection communication between these components.
  • bus system 604 also includes a power bus, a control bus and a status signal bus.
  • the various buses are labeled as bus system 604 in FIG. 6 .
  • the first memory 603 in the embodiment of the present application is configured to store various types of data to support the operation of the terminal 600 .
  • Examples of such data include: any computer program for operating on terminal 600 .
  • the methods disclosed in the foregoing embodiments of the present application may be applied to the first processor 602 or implemented by the first processor 602 .
  • the first processor 602 may be an integrated circuit chip, which has a signal processing capability. In the implementation process, each step of the above method may be completed by an integrated logic circuit of hardware in the first processor 602 or an instruction in the form of software.
  • the aforementioned first processor 602 may be a general-purpose processor, a digital signal processor (DSP, Digital Signal Processor), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, and the like.
  • the first processor 602 may implement or execute various methods, steps, and logic block diagrams disclosed in the embodiments of the present application.
  • a general purpose processor may be a microprocessor or any conventional processor or the like.
  • the steps of the method disclosed in the embodiments of the present application may be directly implemented by a hardware decoding processor, or implemented by a combination of hardware and software modules in the decoding processor.
  • the software module may be located in a storage medium, and the storage medium is located in the first memory 603, and the first processor 602 reads the information in the first memory 603, and completes the steps of the aforementioned method in combination with its hardware.
  • the terminal 600 may be implemented by one or more Application Specific Integrated Circuits (ASIC, Application Specific Integrated Circuit), DSP, Programmable Logic Device (PLD, Programmable Logic Device), Complex Programmable Logic Device (CPLD, Complex Programmable Logic Device), field programmable gate array (FPGA, Field-Programmable Gate Array), general-purpose processor, controller, microcontroller (MCU, Micro Controller Unit), microprocessor (Microprocessor), or other electronic components An implementation configured to perform the preceding method.
  • ASIC Application Specific Integrated Circuit
  • DSP Programmable Logic Device
  • PLD Programmable Logic Device
  • CPLD Complex Programmable Logic Device
  • FPGA Field-Programmable Gate Array
  • controller controller
  • microcontroller MCU, Micro Controller Unit
  • microprocessor Microprocessor
  • the embodiment of the present application also provides a network device.
  • the network device 700 includes:
  • the second communication interface 701 is capable of information interaction with the terminal
  • the second processor 702 is connected to the second communication interface 701 to implement information interaction with the terminal, and is configured to execute the method provided by one or more technical solutions on the network device side when running the computer program;
  • the second communication interface 701 is configured to send the first PDCCH to the terminal;
  • the terminal is configured with multiple G-CS-RNTIs and multiple SPS configurations;
  • the first PDCCH uses the first G-CS -RNTI performs scrambling, the first G-CS-RNTI is one of the multiple G-CS-RNTIs, and the first PDCCH is used to activate one of the multiple SPS configurations;
  • the second processor 702 is configured to use the SPS configuration activated by the first PDCCH to perform the first PDSCH transmission through the second communication interface 701; the first PDSCH is performed using the first G-CS-RNTI scrambling.
  • the second communication interface 701 is further configured to send a second PDCCH to the terminal after sending the first PDCCH to the terminal, and the second PDCCH adopts the second G-CS- The RNTI performs scrambling, the second G-CS-RNTI is one of the multiple G-CS-RNTIs, and the second PDCCH is used to activate one of the multiple SPS configurations; the second The SPS configuration index used by the PDCCH for activation is the same as the SPS configuration index used by the first PDCCH for activation;
  • the second processor 702 is further configured to use the SPS configuration activated by the second PDCCH to perform second PDSCH transmission through the second communication interface 701; the second PDSCH uses the second G-CS-RNTI Do scrambling.
  • the second communication interface 701 when the second G-CS-RNTI is different from the first G-CS-RNTI; before sending the second PDCCH, the second communication interface 701 does not send The PDCCH of the first PDSCH, that is, the PDCCH that the network device needs to send to release the first PDSCH; the first PDCCH is the last PDCCH of the second PDCCH.
  • the second communication interface 701 is further configured to send a third PDCCH to the terminal, the third PDCCH is used to indicate deactivation of the activated SPS configuration of the second PDCCH, and the third The PDCCH is scrambled by using the second G-CS-RNTI.
  • the second communication interface 701 is further configured to send a fourth PDCCH to the terminal, the fourth PDCCH is used to indicate deactivation of the SPS configuration activated by the first PDCCH, and the PDCCH adopts The first G-CS-RNTI performs scrambling.
  • the second communication interface 701 is further configured to send a fifth PDCCH to the terminal after sending the first PDCCH to the terminal, and the fifth PDCCH is scrambled by using CS-RNTI, so
  • the SPS configuration index used for activation of the fifth PDCCH is the same as the SPS configuration index used for activation of the first PDCCH;
  • the second processor 702 is further configured to use the SPS configuration activated by the fifth PDCCH to transmit a third PDSCH through the second communication interface 701; the third PDSCH is scrambled using CS-RNTI.
  • the second communication interface 701 is further configured to send a sixth PDCCH in the first time slot where the activated SPS configuration is located, the sixth PDCCH is scrambled by using G-RNTI, and the G-RNTI
  • the RNTI is associated with the G-CS-RNTI used for the SPS PDSCH transmission that should have been performed in the first time slot;
  • the second processor is further configured to use the sixth PDCCH on the first time slot to indicate that PDSCH transmission is performed through the second communication interface 701 .
  • bus system 704 is configured to enable connection communication between these components.
  • bus system 704 also includes a power bus, a control bus and a status signal bus.
  • the various buses are labeled as bus system 704 in FIG. 7 .
  • the second memory 703 in the embodiment of the present application is configured to store various types of data to support the operation of the network device 700 .
  • Examples of such data include: any computer programs for operating on network device 700 .
  • the methods disclosed in the foregoing embodiments of the present application may be applied to the second processor 702 or implemented by the second processor 702 .
  • the second processor 702 may be an integrated circuit chip, which has a signal processing capability. In the implementation process, each step of the above method may be completed by an integrated logic circuit of hardware in the second processor 702 or instructions in the form of software.
  • the aforementioned second processor 702 may be a general-purpose processor, DSP, or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, and the like.
  • the second processor 702 may implement or execute various methods, steps, and logic block diagrams disclosed in the embodiments of the present application.
  • a general purpose processor may be a microprocessor or any conventional processor or the like.
  • the steps of the method disclosed in the embodiments of the present application may be directly implemented by a hardware decoding processor, or implemented by a combination of hardware and software modules in the decoding processor.
  • the software module may be located in a storage medium, and the storage medium is located in the second memory 703, and the second processor 702 reads the information in the second memory 703, and completes the steps of the foregoing method in combination with its hardware.
  • the network device 700 may be implemented by one or more ASICs, DSPs, PLDs, CPLDs, FPGAs, general purpose processors, controllers, MCUs, Microprocessors, or other electronic components configured to perform the aforementioned methods.
  • the memory in this embodiment of the present application may be a volatile memory or a nonvolatile memory, and may also include both volatile and nonvolatile memories.
  • the non-volatile memory can be read-only memory (ROM, Read Only Memory), programmable read-only memory (PROM, Programmable Read-Only Memory), erasable programmable read-only memory (EPROM, Erasable Programmable Read-Only Memory) Only Memory), Electrically Erasable Programmable Read-Only Memory (EEPROM, Electrically Erasable Programmable Read-Only Memory), Magnetic Random Access Memory (FRAM, ferromagnetic random access memory), Flash Memory (Flash Memory), Magnetic Surface Memory , CD, or CD-ROM (Compact Disc Read-Only Memory); magnetic surface storage can be disk storage or tape storage.
  • the volatile memory may be random access memory (RAM, Random Access Memory), which is used as an external cache.
  • RAM random access memory
  • RAM Random Access Memory
  • many forms of RAM are available, such as Static Random Access Memory (SRAM, Static Random Access Memory), Synchronous Static Random Access Memory (SSRAM, Synchronous Static Random Access Memory), Dynamic Random Access Memory Memory (DRAM, Dynamic Random Access Memory), synchronous dynamic random access memory (SDRAM, Synchronous Dynamic Random Access Memory), double data rate synchronous dynamic random access memory (DDRSDRAM, Double Data Rate Synchronous Dynamic Random Access Memory), enhanced Synchronous Dynamic Random Access Memory (ESDRAM, Enhanced Synchronous Dynamic Random Access Memory), Synchronous Link Dynamic Random Access Memory (SLDRAM, SyncLink Dynamic Random Access Memory), Direct Memory Bus Random Access Memory (DRRAM, Direct Rambus Random Access Memory ).
  • SRAM Static Random Access Memory
  • SSRAM Synchronous Static Random Access Memory
  • DRAM Dynamic Random Access Memory
  • SDRAM Synchronous Dynamic Random Access Memory
  • the embodiment of the present application further provides a scheduling system, as shown in FIG. 8 , the system includes: a terminal 801 and a network device 802 .
  • the embodiment of the present application also provides a storage medium, that is, a computer storage medium, specifically a computer-readable storage medium, for example, including a first memory 603 storing a computer program, and the above-mentioned computer program can be used by the terminal 600
  • the first processor 602 is executed to complete the steps described in the aforementioned terminal-side method, and another example includes a second memory 703 storing computer programs.
  • the above-mentioned computer program can be executed by the second processor 702 of the network device 700 to complete the aforementioned network device method steps.
  • the computer-readable storage medium can be memories such as FRAM, ROM, PROM, EPROM, EEPROM, Flash Memory, magnetic surface memory, optical disc, or CD-ROM.

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Abstract

本申请公开了一种调度方法、装置、终端、网络设备及存储介质。其中,方法包括:终端被配置了多个组配置调度无线网络临时标识(G-CS-RNTI)和多个半静态调度配置(SPS configuration);所述接收网络侧发送的第一物理下行控制信道(PDCCH),所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;利用所述第一PDCCH激活的SPS configuration进行第一物理下行共享信道(PDSCH)传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。

Description

调度方法、装置、相关设备及存储介质
相关申请的交叉引用
本申请基于申请号为202110893330.8、申请日为2021年08月04日的中国专利申请提出,并要求该中国专利申请的优先权,该中国专利申请的全部内容在此引入本申请作为参考。
技术领域
本申请涉及无线通信领域,尤其涉及一种调度方法、装置、相关设备及存储介质。
背景技术
一个用户设备(UE)可能接收多个多播业务,也就是说,一个UE有可能被配置了多个临时移动群组标识(TMGI)。通常,针对每个多播业务会配置一个相应的G-RNTI用于多播传输。由于新空口(NR)系统中,需要支持多播的半静态调度(SPS)传输,而且支持为UE的一个服务小区(英文可以表达为serving cell)配置多个多播的SPS配置(SPS configuration),在这种情况下,当为一个UE配置了多个多播的SPS configuration,且为所述UE配置了多个多播业务,如何实现多播的半静态调度SPS传输,目前尚无有效解决方案。
发明内容
为解决相关技术问题,本申请实施例提供一种调度方法、装置、相关设备及存储介质。
本申请实施例的技术方案是这样实现的:
本申请实施例提供一种调度方法,应用于终端,包括:
所述终端被配置了多个组配置调度无线网络临时标识(G-CS-RNTI)和多个SPS configuration;
接收网络侧发送的第一物理下行控制信道(PDCCH),所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
利用所述第一PDCCH激活的SPS configuration进行第一物理下行共享 信道(PDSCH)传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
上述方案中,所述方法还包括:
接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第二PDCCH,所述第二PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
利用所述第二PDCCH激活的SPS configuration进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
上述方案中,所述第二G-CS-RNTI与所述第一G-CS-RNTI不同;所述第二PDCCH还用于指示去激活所述第一PDCCH激活的SPS configuration;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
上述方案中,所述第二G-CS-RNTI与所述第一G-CS-RNTI不同;在接收所述第二PDCCH之前,不接收用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
上述方案中,所述第二G-CS-RNTI与所述第一G-CS-RNTI相同。
上述方案中,所述方法还包括:
接收网络侧发送的第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
上述方案中,所述方法还包括:
接收网络侧发送的第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,所述PDCCH采用所述第一G-CS-RNTI进行加扰。
上述方案中,所述方法还包括:
接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第五PDCCH,所述第五PDCCH采用配置调度无线网络临时标识(CS-RNTI)进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
利用所述第五PDCCH激活的SPS configuration进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
上述方案中,所述方法还包括:
当在激活的SPS configuration所在的第一时隙上检测到第六PDCCH时,在所述第一时隙上利用所述第六PDCCH的指示进行PDSCH接收;所述第六PDCCH采用组无线网络临时标识G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相 关联。
本申请实施例还提供一种调度方法,应用于网络设备,包括:
向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
上述方案中,所述方法还包括:
向所述终端发送第一PDCCH后,向所述终端发送第二PDCCH,所述第二PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
利用所述第二PDCCH激活的SPS configuration进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
上述方案中,所述第二G-CS-RNTI与所述第一G-CS-RNTI不同;所述第二PDCCH还用于指示去激活所述第一PDCCH激活的SPS configuration;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
上述方案中,所述第二G-CS-RNTI与所述第一G-CS-RNTI不同;在发送所述第二PDCCH之前,不发送用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
上述方案中,所述第二G-CS-RNTI与所述第一G-CS-RNTI相同。
上述方案中,所述方法还包括:
向所述终端发送第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
上述方案中,所述方法还包括:
向所述终端发送第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,所述PDCCH采用所述第一G-CS-RNTI进行加扰。
上述方案中,所述方法还包括:
向所述终端发送第一PDCCH后,向所述终端发送第五PDCCH,所述第五PDCCH采用CS-RNTI进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
利用所述第五PDCCH激活的SPS configuration进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
上述方案中,所述方法还包括:
在激活的SPS configuration所在的第一时隙发送第六PDCCH,所述第六PDCCH采用G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相关联;
在所述第一时隙上利用所述第六PDCCH指示进行PDSCH发送。
本申请实施例还提供一种调度装置,设置在终端上,包括:
接收单元,配置为接收网络侧发送的第一PDCCH,所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是多个G-CS-RNTI中的一个,所述第一PDCCH用于激活多个SPS configuration中的一个;所述终端被配置了所述多个G-CS-RNTI和所述多个SPS configuration;
第一传输单元,配置为利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
本申请实施例还提供一种调度装置,设置在网络设备上,包括:
发送单元,配置为向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
第二传输单元,配置为利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
本申请实施例还提供一种终端,包括:第一处理器及第一通信接口;其中,
所述终端被配置了多个G-CS-RNTI和多个SPS configuration;
所述第一通信接口,配置为接收网络侧发送的第一PDCCH,所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
所述第一处理器,配置为利用所述第一PDCCH激活的SPS configuration通过所述第一通信接口进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
本申请实施例还提供一种网络设备,包括:第二处理器及第二通信接口;其中,
所述第二通信接口,配置为向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
所述第二处理器,配置为利用所述第一PDCCH激活的SPS configuration通过所述第二通信接口进行第一PDSCH传输;所述第一 PDSCH使用所述第一G-CS-RNTI进行加扰。
本申请实施例还提供一种终端,包括:第一处理器和配置为存储能够在处理器上运行的计算机程序的第一存储器,
其中,所述第一处理器配置为运行所述计算机程序时,执行上述终端侧任一方法的步骤。
本申请实施例还提供一种网络设备,包括:第二处理器和配置为存储能够在处理器上运行的计算机程序的第二存储器,
其中,所述第二处理器配置为运行所述计算机程序时,执行上述网络设备侧任一方法的步骤。
本申请实施例还提供一种存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现上述终端侧任一方法的步骤,或者实现上述网络设备侧任一方法的步骤。
本申请实施例提供的调度方法、装置、相关设备及存储介质,网络设备向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;所述网络设备和终端利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰,网络侧使用为终端配置的多个G-CS-RNTI加扰的SPS激活PDCCH来灵活激活某一个或多个多播SPS configuration,从而实现SPS调度的灵活多播传输。
附图说明
图1为本申请实施例一种调度的方法流程示意图;
图2为本申请实施例第二种调度的方法流程示意图;
图3为本申请实施例第三种调度的方法流程示意图;
图4为本申请实施例一种调度装置结构示意图;
图5为本申请实施例另一种调度装置结构示意图;
图6为本申请实施例终端结构示意图;
图7为本申请实施例网络设备结构示意图;
图8为本申请实施例调度系统结构示意图。
具体实施方式
下面结合附图及实施例对本申请再作进一步详细的描述。
相关技术中,一个多播业务(可能对应一个TMGI配置)对应一个G-RNTI;同时,对于一个用户,可能支持一个或多个多播业务,即一个用户可能支持一个或多个G-RNTI。
另一方面,在NR系统中,对于多播的SPS传输(也可以称为SPS组公共PDSCH(英文可以表达为SPS group-common PDSCH)),支持为UE的一个服务小区配置多个多播的SPS configuration(也可以称为SPS group-common PDSCH configuration),还至少支持使用组公共(group-common)PDCCH(循环冗余校验(CRC)采用G-CS-RNTI加扰)激活/去激活SPS group-common PDSCH(采用G-CS-RNTI加扰)。
在上述情况下,当一个UE可能接收多个多播业务(比如一个多播业务对应一个高层信令配置的TMGI)时,该UE可能被配置了多个TMGI,针对每个多播业务(当一个多播业务对应一个TMGI时,一个多播业务也可以认为是一个TMGI)会配置一个相应的G-RNTI,以用于多播传输。然而,由于NR系统中,需要支持多播的SPS传输,而且支持为UE的一个服务小区配置多个多播的SPS configuration,所以在这种情况下,面临的问题是:如果为一个UE配置了多个多播的SPS configuration,并且该UE也被配置了多个多播业务(可以理解为配置了多个TMGI),那么多个多播SPS configuration和多个多播业务之间如何对应呢?
基于此,在本申请的各种实施例中,网络侧使用为终端配置的多个G-CS-RNTI加扰的多播SPS激活PDCCH来灵活激活某一个或多个多播SPS configuration,从而实现SPS调度的灵活多播传输,进一步降低多播传输的PDCCH开销。
本申请实施例提供了一种调度方法,应用于终端,所述终端被配置了多个G-CS-RNTI和多个SPS configuration;如图1所示,该方法包括:
步骤101:接收网络侧发送的第一PDCCH,所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
步骤102:利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输,即利用所述第一PDCCH激活的SPS configuration的资源进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
其中,实际应用时,所述终端可以称为UE,也可以称为用户等。
所述终端被配置了多个G-CS-RNTI,可以理解为所述终端被配置了多个多播业务。也就是说,在本申请实施例中,所述终端可以支持被配置多个多播业务,当一个多播业务对应一个高层信令配置的TMGI时,可以被理解为所述终端可以支持被配置了多个TMGI。
当SPS configuration用于多播业务时,所述终端被配置了多个SPS configuration,可以理解为所述终端被配置了多个多播的SPS configuration。这里,多播的SPS configuration也可以称为SPS group-common PDSCH configuration,本申请实施例对此不作限定,只要实现多播的SPS configuration的功能即可。
在本申请实施例中,每个多播业务可以配置最多一个G-RNTI和最多一 个G-CS-RNTI,因此,实际应用时,当所述终端可以支持被配置多个多播业务时,所述终端可能有多个G-RNTI和多个G-CS-RNTI。
因此,在执行步骤101之前,即网络侧(即网络设备,具体为基站,比如gNB)在发送多播SPS激活下行控制信息(DCI)的时候,需要先确定使用哪个G-CS-RNTI进行CRC的加扰;具体地,网络侧可以根据需要,确定把这个多播的SPS传输配置用于传输哪个多播业务时,就用哪个多播业务相应的G-CS-RNTI。
示例性地,假设网络侧为所述终端配置了多个G-RNTI(分别为G-RNTI-1~G-RNTI-N,分别对应多播业务1~N)和多个G-CS-RNTI(分别为G-CS-RNTI-1~G-CS-RNTI-N,分别对应多播业务1~N),其中,N为大于或等于2的整数,如果使用G-CS-RNTI-1加扰的PDCCH为所述终端激活多播SPS调度,则后续的多播SPS PDSCH也只能使用G-CS-RNTI-1加扰,并且只能用于传输多播业务1,即所述第一PDSCH必须使用所述第一G-CS-RNTI进行加扰,且只能用于所述第一G-CS-RNTI对应的多播业务的传输。
当为所述终端配置了多个多播的SPS configuration,且所述终端也被配置了多个多播业务时,允许任何一个多播的SPS configuration灵活用于任何一个多播业务,也就是说,网络侧可以灵活使用任何一个G-CS-RNTI加扰的多播SPS激活PDCCH用于激活某一个多播的SPS configuration,激活后,网络侧使用该多播的SPS configuration用于针对该多播业务的SPS传输。
也就是说,所述多个SPS configuration的一个SP configuration能够用于所述多个G-CS-RNTI的多播传输中的任一个G-CS-RNTI的多播传输。
实际应用时,在本申请实施例中,在使用某个G-CS-RNTI加扰的PDCCH(也可以理解为DCI)为所述终端激活了多播SPS调度后,可以在之后的过程中为所述终端重新配置多播SPS资源,也就是说,网络侧可以重新下发一个新的使用某个G-CS-RNTI加扰的下行多播SPS激活PDCCH。
基于此,在一实施例中,在接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第二PDCCH,所述第二PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
利用所述第二PDCCH激活的SPS configuration进行第二PDSCH传输,即利用所述第二PDCCH激活的SPS configuration的资源进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
其中,实际应用时,上述重新发送的激活PDCCH使用的G-CS-RNTI可以与之前的激活PDCCH使用的G-CS-RNTI相同或者不同,以便分配新的多播SPS资源。
也就是说,在一实施例中,所述第二G-CS-RNTI可以与所述第一G-CS-RNTI相同。在这种情况下,所述第一G-CS-RNTI对应的多播业务在新的多播SPS资源传输。
示例性地,假设网络侧为所述终端配置了多个G-RNTI(分别为G-RNTI-1~G-RNTI-N,分别对应多播业务1~N)和多个G-CS-RNTI(分别为G-CS-RNTI-1~G-CS-RNTI-N,分别对应多播业务1~N),其中,N为大于或等于2的整数。假设之前的激活PDCCH和重新发送的激活PDCCH都使用G-CS-RNTI-1加扰,说明重新激活后的多播SPS传输依然只适用于传输多播业务1,也意味着后续的多播SPS PDSCH依然使用G-CS-RNTI-1进行加扰。
当上述重新发送的激活PDCCH使用的G-CS-RNTI可以与之前的激活PDCCH使用的G-CS-RNTI不同时,说明在激活一个多播SPS configuration后,在之后的过程中使用另一个G-CS-RNTI加扰的PDCCH为所述终端重新激活该多播SPS configuration,此时认为之前为一个多播业务激活的SPS资源已经被释放掉,可以不需要显示地为所述终端发送之前的激活PDCCH使用的G-CS-RNTI加扰的用于释放多播SPS资源的PDCCH,可以称为SPS释放PDCCH(SPS release PDCCH),如此,能够降低多播传输的PDCCH开销。
基于此,在另一实施例中,所述第二G-CS-RNTI与所述第一G-CS-RNTI不同;所述第二PDCCH还用于指示去激活所述第一PDCCH激活的SPS configuration;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
这里,所述第一PDCCH是所述第二PDCCH的上一次PDCCH,是指在时间的发送顺序上,所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
所述第二PDCCH还用于指示去激活所述第一PDCCH激活的SPS configuration,也可以理解为所述第二PDCCH还用于释放所述第一PDSCH。
示例性地,如果之前的激活PDCCH使用的是G-CS-RNTI-1,而重新发送的激活PDCCH使用的是G-CS-RNTI-2,则说明重新激活后的多播SPS资源只适用于传输多播业务2,而不用于传输多播业务1;且认为为多播业务1激活的SPS资源已经被释放掉,而且不需要显示的向所述终端发送G-CS-RNTI-1加扰的SPS release PDCCH。
也就是说,当所述第二G-CS-RNTI与所述第一G-CS-RNTI不同时,在接收所述第二PDCCH之前,不接收用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
其中,所述不接收用于释放所述第一PDSCH的PDCCH,即不需要用于释放所述第一PDSCH的PDCCH,即不需要接收所述第一PDSCH的释放PDCCH。
实际应用时,重新分配多播SPS资源的过程可以发生在任意时隙,后 续的多播SPS时隙将使用重新分配的多播SPS资源。
为了实现半持续调度的多播传输,当一个多播SPS configuration被激活后,即当一个多播SPS资源被激活后,也可以通过发送PDCCH方式释放被激活的多播SPS configuration。同时,要使得网络侧和终端对PDCCH的理解保持一致。
基于此,在一实施例中,当利用所述第一PDCCH激活对应的SPS configuration后,该方法还可以包括:
接收网络侧发送的第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,所述PDCCH采用所述第一G-CS-RNTI进行加扰。
其中,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,也可以理解为所述第四PDCCH用于释放所述第一PDSCH。
在一实施例中,当利用所述第二PDCCH激活对应的SPS configuration后,该方法还可以包括:
接收网络侧发送的第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
也就是说,网络侧在发送多播的SPS release PDCCH时,只能使用最近一次激活该多播SPS configuration时使用的G-CS-RNTI。
其中,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,也可以理解为所述第三PDCCH用于释放所述第二PDSCH。
另外,如果重新发送的激活PDCCH使用的G-CS-RNTI与之前的激活PDCCH使用的G-CS-RNTI不同,后续在发送SPS release PDCCH的时候要用重新发送时使用的G-CS-RNTI进行加扰。
实际应用时,所述终端激活了多播的SPS configuration后,仍然会监听用于多播动态调度的PDCCH(即G-RNTI加扰的group-common PDCCH)。当在SPS资源时隙上检测到用于多播动态调度的PDCCH时,该PDCCH分配的资源会取代多播SPS调度分配的资源,即多播动态调度的优先级更高。
基于此,在一实施例中,该方法还可以包括:
当在激活的SPS configuration所在的第一时隙上检测到第六PDCCH时,即当当在激活的SPS configuration的资源所在的第一时隙上检测到第六PDCCH时,在所述第一时隙上利用所述第六PDCCH的指示进行PDSCH接收;所述第六PDCCH采用G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相关联。
需要说明的是:多播动态调度的PDCCH只对该时隙有效,即只在第一时隙上有效,并不影响后续的多播SPS传输时隙。
当所述终端激活了多播的SPS configuration后,所述网络侧可以在之后的过程中使用CS-RNTI加扰的PDCCH为所述终端重新激活该SPS  configuration,后续该SPS configuration用于单播业务。
基于此,在一实施例中,该方法还可以包括:
接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第五PDCCH,所述第五PDCCH采用CS-RNTI进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
利用所述第五PDCCH激活的SPS configuration进行第三PDSCH传输,即利用所述第五PDCCH激活的SPS configuration的资源进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
其中,所述第三PDSCH对应单播业务。
当所述网络侧为所述终端重新激活该SPS configuration时,此时认为为一个多播业务激活的SPS资源已经被释放掉,可以不需要显示地为所述终端发送CS-RNTI加扰的SPS release PDCCH,也就是说,所述第五PDCCH还用于指示去激活所述第一PDCCH激活的SPS configuration,如此,能够降低多播传输的PDCCH开销。
实际应用时,在使用CS-RNTI加扰的PDCCH为所述终端激活了某一个SPS configuration后,可以在之后的过程中使用一个G-CS-RNTI加扰的PDCCH为UE重新激活该SPS configuration,即在接收所述第一PDCCH之前,接收网络侧发送的第七PDCCH,所述第七PDCCH采用CS-RNTI进行加扰;所述第七PDCCH用于激活所述多个SPS configuration中的一个;所述第七PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;此时,所述终端利用所述第七PDCCH激活的configuration进行第四PDSCH传输,所述终端利用所述第七PDCCH激活的configuration的资源进行第四PDSCH传输;所述第四PDSCH使用所述CS-RNTI进行加扰。也就是说,所述第四PDSCH对应单播业务。
在这种情况下,认为CS-RNTI激活的SPS资源已经被释放掉,即所述第七PDCCH激活的SPS资源已经被释放掉,而且不需要显示的为所述发送第一G-CS-RNTI加扰的SPS release PDCCH,后续该SPS配置则用于传输多播业务而不是单播业务。也就是说,在这种情况下,所述第一PDCCH还用于指示去激活所述第七PDCCH激活的SPS configuration。
示例性地,假设在使用C-RNTI加扰的PDCCH为所述终端激活了某一个SPS configuration后,在之后的过程中使用G-CS-RNTI-1加扰的PDCCH为所述终端重新激活该SPS configuration,此时,认为为CS-RNTI激活的SPS资源已经被释放掉,而且不需要显示地向所述终端发送CS-RNTI-1加扰的SPS release PDCCH,后续该SPS配置则用于传输多播业务1而不是单播业务。
在本申请实施例中,第一PDSCH还可以称为第一SPS PDSCH,相应地,第二PDSCH还可以称为第二SPS PDSCH,本申请实施例对第一PDSCH 和第二PDSCH的名称不作限定,只要能够实现其功能即可。
相应地,本申请实施例还提供了一种调度方法,应用于网络设备,具体为基站,比如gNB,如图2所示,该方法包括:
步骤201:向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
步骤202:利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输,即利用所述第一PDCCH激活的SPS configuration的资源进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
其中,在一实施例中,该方法还可以包括:
向所述终端发送第一PDCCH后,向所述终端发送第二PDCCH,所述第二PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
利用所述第二PDCCH激活的SPS configuration源进行第二PDSCH传输,即利用所述第二PDCCH激活的SPS configuration的资源进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
在一实施例中,当所述第二G-CS-RNTI与所述第一G-CS-RNTI不同时;在发送所述第二PDCCH之前,所述网络设备不发送用于释放所述第一PDSCH的PDCCH,即所述网络设备需要发送用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
在一实施例中,该方法还可以包括:
向所述终端发送第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
在一实施例中,该方法还可以包括:
向所述终端发送第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,所述PDCCH采用所述第一G-CS-RNTI进行加扰。
在一实施例中,该方法还可以包括:
向所述终端发送第一PDCCH后,向所述终端发送第五PDCCH,所述第五PDCCH采用CS-RNTI进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
利用所述第五PDCCH激活的SPS configuration进行第三PDSCH传输,即利用所述第五PDCCH激活的SPS configuration的资源进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
在一实施例中,该方法还可以包括:
在激活的SPS configuration所在的第一时隙发送第六PDCCH,即在激活的SPS configuration的资源所在的第一时隙发送第六PDCCH,所述第六PDCCH采用G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相关联;
在所述第一时隙上利用所述第六PDCCH指示进行PDSCH发送,即在所述第一时隙上利用所述第六PDCCH指示的资源进行PDSCH发送。
本申请实施例还提供了一种调度方法,如图3所示,该方法包括:
步骤301:网络设备向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
步骤302:所述网络设备和终端利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
这里,需要说明的是:所述终端和网络设备的具体处理过程已在上文详述,这里不再赘述。
本申请实施例提供的调度方法,网络设备向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;所述网络设备和终端利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰,网络侧使用为终端配置的多个G-CS-RNTI加扰的SPS激活PDCCH来激活某一个或多个多播SPS configuration,从而实现SPS调度的灵活多播传输。
为了实现本申请实施例的方法,本申请实施例还提供了一种调度装置,设置在终端上,如图4所示,该装置包括:
接收单元401,配置为接收网络侧发送的第一PDCCH,所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是多个G-CS-RNTI中的一个,所述第一PDCCH用于激活多个SPS configuration中的一个;所述终端被配置了所述多个G-CS-RNTI和所述多个SPS configuration;
第一传输单元402,配置为利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
其中,在一实施例中,所述接收单元401,还配置为接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第二PDCCH,所述第二 PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
所述第一传输单元402,还配置为利用所述第二PDCCH激活的SPS configuration进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
在一实施例中,当所述第二G-CS-RNTI与所述第一G-CS-RNTI不同时,在接收所述第二PDCCH之前,所述接收单元401不接收用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
在一实施例中,所述接收单元401,还配置为接收网络侧发送的第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
在一实施例中,所述接收单元401,还配置为接收网络侧发送的第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,所述PDCCH采用所述第一G-CS-RNTI进行加扰。
在一实施例中,所述接收单元401,还配置为接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第五PDCCH,所述第五PDCCH采用CS-RNTI进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
所述第一传输单元402,还配置为利用所述第五PDCCH激活的SPS configuration进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
在一实施例中,当在激活的SPS configuration所在的第一时隙上检测到第六PDCCH时,所述第一传输单元402,还配置为在所述第一时隙上利用所述第六PDCCH的指示进行PDSCH接收;所述第六PDCCH采用组无线网络临时标识G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相关联。
实际应用时,所述接收单元401可由调度装置中的通信接口实现;所述第一传输单元402可由调度装置中的处理器结合通信接口实现。
为了实现本申请实施例网络设备侧的方法,本申请实施例还提供了一种调度装置,设置在网络设备上,如图5所示,该装置包括:
发送单元501,配置为向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
第二传输单元502,配置为利用所述第一PDCCH激活的SPS  configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
其中,在一实施例中,所述发送单元501,还配置为向所述终端发送第一PDCCH后,向所述终端发送第二PDCCH,所述第二PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
所述第二传输单元502,还配置为利用所述第二PDCCH激活的SPS configuration进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
在一实施例中,当所述第二G-CS-RNTI与所述第一G-CS-RNTI不同时;在发送所述第二PDCCH之前,所述发送单元501不发送用于释放所述第一PDSCH的PDCCH,即所述网络设备需要发送用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
在一实施例中,所述发送单元501,还配置为向所述终端发送第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
在一实施例中,所述发送单元501,还配置为向所述终端发送第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,所述PDCCH采用所述第一G-CS-RNTI进行加扰。
在一实施例中,所述发送单元501,还配置为向所述终端发送第一PDCCH后,向所述终端发送第五PDCCH,所述第五PDCCH采用CS-RNTI进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
所述第二传输单元502,还配置为利用所述第五PDCCH激活的SPS configuration进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
在一实施例中,所述发送单元501,还配置为在激活的SPS configuration所在的第一时隙发送第六PDCCH,所述第六PDCCH采用G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相关联;
所述第二传输单元502,还配置为在所述第一时隙上利用所述第六PDCCH指示进行PDSCH发送。
实际应用时,所述发送单元501可由调度装置中的通信接口实现;所述第二传输单元502可由调度装置中的处理器结合通信接口实现。
需要说明的是:上述实施例提供的调度装置在进行调度时,仅以上述各程序模块的划分进行举例说明,实际应用中,可以根据需要而将上述处 理分配由不同的程序模块完成,即将装置的内部结构划分成不同的程序模块,以完成以上描述的全部或者部分处理。另外,上述实施例提供的调度装置与调度方法实施例属于同一构思,其具体实现过程详见方法实施例,这里不再赘述。
基于上述程序模块的硬件实现,且为了实现本申请实施例终端侧的方法,本申请实施例还提供了一种终端,如图6所示,该终端600包括:
第一通信接口601,能够与网络侧进行信息交互;
第一处理器602,与所述第一通信接口601连接,以实现与网络侧进行信息交互,配置为运行计算机程序时,执行上述终端侧一个或多个技术方案提供的方法;
第一存储器603,所述计算机程序存储在第一存储器603上。
具体地,所述终端被配置了多个G-CS-RNTI和多个SPS configuration;
所述第一通信接口601,配置为接收网络侧发送的第一PDCCH,所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
所述第一处理器602,配置为利用所述第一PDCCH激活的SPS configuration通过所述第一通信接口601进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
其中,在一实施例中,所述第一通信接口601,还配置为接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第二PDCCH,所述第二PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
所述第一处理器602,还配置为利用所述第二PDCCH激活的SPS configuration通过所述第一通信接口601进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
在一实施例中,当所述第二G-CS-RNTI与所述第一G-CS-RNTI不同时,在接收所述第二PDCCH之前,所述第一通信接口601不接收用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
在一实施例中,所述第一通信接口601,还配置为接收网络侧发送的第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
在一实施例中,所述第一通信接口601,还配置为接收网络侧发送的第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,所述PDCCH采用所述第一G-CS-RNTI进行加扰。
在一实施例中,所述第一通信接口601,还配置为接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第五PDCCH,所述第五PDCCH采用CS-RNTI进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
所述第一处理器602,还配置为利用所述第五PDCCH激活的SPS configuration通过所述第一通信接口601进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
在一实施例中,当在激活的SPS configuration所在的第一时隙上检测到第六PDCCH时,所述第一处理器602,还配置为在所述第一时隙上利用所述第六PDCCH的指示通过所述第一通信接口601进行PDSCH接收;所述第六PDCCH采用组无线网络临时标识G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相关联。
需要说明的是:所述第一处理器602及第一通信接口601的具体处理过程可参照上述方法理解。
当然,实际应用时,终端600中的各个组件通过总线系统604耦合在一起。可理解,总线系统604配置为实现这些组件之间的连接通信。总线系统604除包括数据总线之外,还包括电源总线、控制总线和状态信号总线。但是为了清楚说明起见,在图6中将各种总线都标为总线系统604。
本申请实施例中的第一存储器603配置为存储各种类型的数据以支持终端600的操作。这些数据的示例包括:用于在终端600上操作的任何计算机程序。
上述本申请实施例揭示的方法可以应用于所述第一处理器602中,或者由所述第一处理器602实现。所述第一处理器602可能是一种集成电路芯片,具有信号的处理能力。在实现过程中,上述方法的各步骤可以通过所述第一处理器602中的硬件的集成逻辑电路或者软件形式的指令完成。上述的所述第一处理器602可以是通用处理器、数字信号处理器(DSP,Digital Signal Processor),或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件等。所述第一处理器602可以实现或者执行本申请实施例中的公开的各方法、步骤及逻辑框图。通用处理器可以是微处理器或者任何常规的处理器等。结合本申请实施例所公开的方法的步骤,可以直接体现为硬件译码处理器执行完成,或者用译码处理器中的硬件及软件模块组合执行完成。软件模块可以位于存储介质中,该存储介质位于第一存储器603,所述第一处理器602读取第一存储器603中的信息,结合其硬件完成前述方法的步骤。
在示例性实施例中,终端600可以被一个或多个应用专用集成电路(ASIC,Application Specific Integrated Circuit)、DSP、可编程逻辑器件(PLD,Programmable Logic Device)、复杂可编程逻辑器件(CPLD,Complex  Programmable Logic Device)、现场可编程门阵列(FPGA,Field-Programmable Gate Array)、通用处理器、控制器、微控制器(MCU,Micro Controller Unit)、微处理器(Microprocessor)、或者其他电子元件实现,配置为执行前述方法。
基于上述程序模块的硬件实现,且为了实现本申请实施例网络设备侧的方法,本申请实施例还提供了一种网络设备,如图7所述,该网络设备700包括:
第二通信接口701,能够与终端进行信息交互;
第二处理器702,与所述第二通信接口701连接,以实现与终端进行信息交互,配置为运行计算机程序时,执行上述网络设备侧一个或多个技术方案提供的方法;
第二存储器703,所述计算机程序存储在第二存储器703上。
具体地,所述第二通信接口701,配置为向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
所述第二处理器702,配置为利用所述第一PDCCH激活的SPS configuration通过所述第二通信接口701进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
其中,在一实施例中,所述第二通信接口701,还配置为向所述终端发送第一PDCCH后,向所述终端发送第二PDCCH,所述第二PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
所述第二处理器702,还配置为利用所述第二PDCCH激活的SPS configuration通过所述第二通信接口701进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
在一实施例中,当所述第二G-CS-RNTI与所述第一G-CS-RNTI不同时;在发送所述第二PDCCH之前,所述第二通信接口701不发送用于释放所述第一PDSCH的PDCCH,即所述网络设备需要发送用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
在一实施例中,所述第二通信接口701,还配置为向所述终端发送第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
在一实施例中,所述第二通信接口701,还配置为向所述终端发送第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS  configuration,所述PDCCH采用所述第一G-CS-RNTI进行加扰。
在一实施例中,所述第二通信接口701,还配置为向所述终端发送第一PDCCH后,向所述终端发送第五PDCCH,所述第五PDCCH采用CS-RNTI进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
所述第二处理器702,还配置为利用所述第五PDCCH激活的SPS configuration通过所述第二通信接口701进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
在一实施例中,所述第二通信接口701,还配置为在激活的SPS configuration所在的第一时隙发送第六PDCCH,所述第六PDCCH采用G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相关联;
所述第二处理器,还配置为在所述第一时隙上利用所述第六PDCCH指示通过所述第二通信接口701进行PDSCH发送。
需要说明的是:所述第二处理器702及第二通信接口701的具体处理过程可参照上述方法理解。
当然,实际应用时,网络设备700中的各个组件通过总线系统704耦合在一起。可理解,总线系统704配置为实现这些组件之间的连接通信。总线系统704除包括数据总线之外,还包括电源总线、控制总线和状态信号总线。但是为了清楚说明起见,在图7中将各种总线都标为总线系统704。
本申请实施例中的第二存储器703配置为存储各种类型的数据以支持网络设备700操作。这些数据的示例包括:用于在网络设备700上操作的任何计算机程序。
上述本申请实施例揭示的方法可以应用于所述第二处理器702中,或者由所述第二处理器702实现。所述第二处理器702可能是一种集成电路芯片,具有信号的处理能力。在实现过程中,上述方法的各步骤可以通过所述第二处理器702中的硬件的集成逻辑电路或者软件形式的指令完成。上述的所述第二处理器702可以是通用处理器、DSP,或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件等。所述第二处理器702可以实现或者执行本申请实施例中的公开的各方法、步骤及逻辑框图。通用处理器可以是微处理器或者任何常规的处理器等。结合本申请实施例所公开的方法的步骤,可以直接体现为硬件译码处理器执行完成,或者用译码处理器中的硬件及软件模块组合执行完成。软件模块可以位于存储介质中,该存储介质位于第二存储器703,所述第二处理器702读取第二存储器703中的信息,结合其硬件完成前述方法的步骤。
在示例性实施例中,网络设备700可以被一个或多个ASIC、DSP、PLD、CPLD、FPGA、通用处理器、控制器、MCU、Microprocessor、或其他电子元件实现,配置为执行前述方法。
可以理解,本申请实施例的存储器(第一存储器603、第二存储器703)可以是易失性存储器或者非易失性存储器,也可包括易失性和非易失性存储器两者。其中,非易失性存储器可以是只读存储器(ROM,Read Only Memory)、可编程只读存储器(PROM,Programmable Read-Only Memory)、可擦除可编程只读存储器(EPROM,Erasable Programmable Read-Only Memory)、电可擦除可编程只读存储器(EEPROM,Electrically Erasable Programmable Read-Only Memory)、磁性随机存取存储器(FRAM,ferromagnetic random access memory)、快闪存储器(Flash Memory)、磁表面存储器、光盘、或只读光盘(CD-ROM,Compact Disc Read-Only Memory);磁表面存储器可以是磁盘存储器或磁带存储器。易失性存储器可以是随机存取存储器(RAM,Random Access Memory),其用作外部高速缓存。通过示例性但不是限制性说明,许多形式的RAM可用,例如静态随机存取存储器(SRAM,Static Random Access Memory)、同步静态随机存取存储器(SSRAM,Synchronous Static Random Access Memory)、动态随机存取存储器(DRAM,Dynamic Random Access Memory)、同步动态随机存取存储器(SDRAM,Synchronous Dynamic Random Access Memory)、双倍数据速率同步动态随机存取存储器(DDRSDRAM,Double Data Rate Synchronous Dynamic Random Access Memory)、增强型同步动态随机存取存储器(ESDRAM,Enhanced Synchronous Dynamic Random Access Memory)、同步连接动态随机存取存储器(SLDRAM,SyncLink Dynamic Random Access Memory)、直接内存总线随机存取存储器(DRRAM,Direct Rambus Random Access Memory)。本申请实施例描述的存储器旨在包括但不限于这些和任意其它适合类型的存储器。
为了实现本申请实施例提供的方法,本申请实施例还提供了一种调度系统,如图8所示,该系统包括:终端801及网络设备802。
这里,需要说明的是:终端801及网络设备802的具体处理过程已在上文详述,这里不再赘述。
在示例性实施例中,本申请实施例还提供了一种存储介质,即计算机存储介质,具体为计算机可读存储介质,例如包括存储计算机程序的第一存储器603,上述计算机程序可由终端600的第一处理器602执行,以完成前述终端侧方法所述步骤,再比如包括存储计算机程序的第二存储器703,上述计算机程序可由网络设备700的第二处理器702执行,以完成前述网络设备侧方法所述步骤。计算机可读存储介质可以是FRAM、ROM、PROM、EPROM、EEPROM、Flash Memory、磁表面存储器、光盘、或CD-ROM等存储器。
需要说明的是:“第一”、“第二”等是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。
另外,本申请实施例所记载的技术方案之间,在不冲突的情况下,可 以任意组合。
以上所述,仅为本申请的较佳实施例而已,并非用于限定本申请的保护范围。

Claims (25)

  1. 一种调度方法,应用于终端,包括:
    所述终端被配置了多个组配置调度无线网络临时标识G-CS-RNTI和多个半静态调度配置SPS configuration;
    接收网络侧发送的第一物理下行控制信道PDCCH,所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
    利用所述第一PDCCH激活的SPS configuration进行第一物理下行共享信道PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
  2. 根据权利要求1所述的方法,其中,所述方法还包括:
    接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第二PDCCH,所述第二PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
    利用所述第二PDCCH激活的SPS configuration进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
  3. 根据权利要求2所述的方法,其中,所述第二G-CS-RNTI与所述第一G-CS-RNTI不同;所述第二PDCCH还用于指示去激活所述第一PDCCH激活的SPS configuration;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
  4. 根据权利要求2所述的方法,其中,所述第二G-CS-RNTI与所述第一G-CS-RNTI不同;在接收所述第二PDCCH之前,不接收用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
  5. 根据权利要求2所述的方法,其中,所述第二G-CS-RNTI与所述第一G-CS-RNTI相同。
  6. 根据权利要求2所述的方法,其中,所述方法还包括:
    接收网络侧发送的第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
  7. 根据权利要1所述的方法,其中,所述方法还包括:
    接收网络侧发送的第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,所述PDCCH采用所述第一 G-CS-RNTI进行加扰。
  8. 根据权利要求1所述的方法,其中,所述方法还包括:
    接收所述网络侧发送的第一PDCCH后,接收所述网络侧发送的第五PDCCH,所述第五PDCCH采用CS-RNTI进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
    利用所述第五PDCCH激活的SPS configuration进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
  9. 根据权利要求1至8任一项所述的方法,其中,所述方法还包括:
    当在激活的SPS configuration所在的第一时隙上检测到第六PDCCH时,在所述第一时隙上利用所述第六PDCCH的指示进行PDSCH接收;所述第六PDCCH采用组无线网络临时标识G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相关联。
  10. 一种调度方法,应用于网络设备,包括:
    向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
    利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
  11. 根据权利要求10所述的方法,其中,所述方法还包括:
    向所述终端发送第一PDCCH后,向所述终端发送第二PDCCH,所述第二PDCCH采用第二G-CS-RNTI进行加扰,所述第二G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第二PDCCH用于激活所述多个SPS configuration中的一个;所述第二PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS configuration索引相同;
    利用所述第二PDCCH激活的SPS configuration进行第二PDSCH传输;所述第二PDSCH使用所述第二G-CS-RNTI进行加扰。
  12. 根据权利要求11所述的方法,其中,所述第二G-CS-RNTI与所述第一G-CS-RNTI不同;所述第二PDCCH还用于指示去激活所述第一PDCCH激活的SPS configuration;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
  13. 根据权利要求11所述的方法,其中,所述第二G-CS-RNTI与所述第一G-CS-RNTI不同;在发送所述第二PDCCH之前,不发送用于释放所述第一PDSCH的PDCCH;所述第一PDCCH是所述第二PDCCH的上一次PDCCH。
  14. 根据权利要求11所述的方法,其中,所述第二G-CS-RNTI与所 述第一G-CS-RNTI相同。
  15. 根据权利要求11所述的方法,其中,所述方法还包括:
    向所述终端发送第三PDCCH,所述第三PDCCH用于指示去激活所述第二PDCCH激活的SPS configuration,所述第三PDCCH采用第二G-CS-RNTI进行加扰。
  16. 根据权利要求10所述的方法,其中,所述方法还包括:
    向所述终端发送第四PDCCH,所述第四PDCCH用于指示去激活所述第一PDCCH激活的SPS configuration,所述PDCCH采用所述第一G-CS-RNTI进行加扰。
  17. 根据权利要求10所述的方法,其中,所述方法还包括:
    向所述终端发送第一PDCCH后,向所述终端发送第五PDCCH,所述第五PDCCH采用CS-RNTI进行加扰,所述第五PDCCH用于激活的SPS configuration索引与所述第一PDCCH用于激活的SPS配置索引相同;
    利用所述第五PDCCH激活的SPS configuration进行第三PDSCH传输;所述第三PDSCH使用CS-RNTI进行加扰。
  18. 根据权利要求10至17任一项所述的方法,其中,所述方法还包括:
    在激活的SPS configuration所在的第一时隙发送第六PDCCH,所述第六PDCCH采用G-RNTI进行加扰,所述G-RNTI与原本应在所述第一时隙进行的SPS PDSCH传输所使用的G-CS-RNTI相关联;
    在所述第一时隙上利用所述第六PDCCH指示进行PDSCH发送。
  19. 一种调度装置,设置在终端上,包括:
    接收单元,配置为接收网络侧发送的第一PDCCH,所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是多个G-CS-RNTI中的一个,所述第一PDCCH用于激活多个SPS configuration中的一个;所述终端被配置了所述多个G-CS-RNTI和所述多个SPS configuration;
    第一传输单元,配置为利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
  20. 一种调度装置,设置在网络设备上,包括:
    发送单元,配置为向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
    第二传输单元,配置为利用所述第一PDCCH激活的SPS configuration进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
  21. 一种终端,包括:第一处理器及第一通信接口;其中,
    所述终端被配置了多个G-CS-RNTI和多个SPS configuration;
    所述第一通信接口,配置为接收网络侧发送的第一PDCCH,所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
    所述第一处理器,配置为利用所述第一PDCCH激活的SPS configuration通过所述第一通信接口进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
  22. 一种网络设备,包括:第二处理器及第二通信接口;其中,
    所述第二通信接口,配置为向终端发送第一PDCCH;所述终端被配置了多个G-CS-RNTI和多个SPS configuration;所述第一PDCCH采用第一G-CS-RNTI进行加扰,所述第一G-CS-RNTI是所述多个G-CS-RNTI中的一个,所述第一PDCCH用于激活所述多个SPS configuration中的一个;
    所述第二处理器,配置为利用所述第一PDCCH激活的SPS configuration通过所述第二通信接口进行第一PDSCH传输;所述第一PDSCH使用所述第一G-CS-RNTI进行加扰。
  23. 一种终端,包括:第一处理器和配置为存储能够在处理器上运行的计算机程序的第一存储器,
    其中,所述第一处理器配置为运行所述计算机程序时,执行权利要求1至9任一项所述方法的步骤。
  24. 一种网络设备,包括:第二处理器和配置为存储能够在处理器上运行的计算机程序的第二存储器,
    其中,所述第二处理器配置为运行所述计算机程序时,执行权利要求10至18任一项所述方法的步骤。
  25. 一种存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现权利要求1至9任一项所述方法的步骤,或者实现权利要求10至18任一项所述方法的步骤。
PCT/CN2022/108727 2021-08-04 2022-07-28 调度方法、装置、相关设备及存储介质 WO2023011322A1 (zh)

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