WO2021089044A1 - 数据处理方法、通信节点及计算机可读存储介质 - Google Patents
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- H04—ELECTRIC COMMUNICATION TECHNIQUE
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- H04W72/231—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the layers above the physical layer, e.g. RRC or MAC-CE signalling
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Definitions
- This application relates to a wireless communication network, for example, to a data processing method, a communication node, and a computer-readable storage medium.
- the New Radio Access Technology (NR) system supports the configuration of semi-static transmission for terminal devices.
- Semi-static transmission needs to be activated by activating Downlink Control Information (DCI) (a specific dedicated DCI whose design is different from the DCI for scheduling data) before it can be used.
- DCI Downlink Control Information
- This application provides a data processing method, a communication node, and a computer-readable storage medium, which can associate control information with semi-static transmission, and improve transmission efficiency and stability.
- the embodiment of the present application provides a data processing method, including:
- the first communication node sends first control information to the second communication node, the first control information is used to activate or deactivate at least one semi-static transmission, the first control information is associated with the first semi-static transmission, and the at least one semi-static transmission includes the first semi-static transmission.
- Half static transmission is used to activate or deactivate at least one semi-static transmission.
- the embodiment of the present application provides a data processing method, including:
- the second communication node receives the first control information sent by the first communication node, the first control information is used to activate or deactivate at least one semi-static transmission, the first control information is associated with the first semi-static transmission, and the at least one semi-static transmission includes The first half is static transmission.
- the embodiment of the present application provides a data processing method, including:
- the first communication node configures and sends second control information to the second communication node
- the second control information includes: information used to indicate that the status of the secondary cell serving the second communication node has changed; the second control information also includes at least one of the following information: used to indicate that the second control information is not used
- the hybrid automatic repeat request of the second control information-confirmation information HARQ-ACK resource information determine the interval between the second control information time slot and the second control information HARQ-ACK time slot Timing information, information that determines the interval timing from the sub-slot of the second control information to the sub-slot of the HARQ-ACK of the second control information, and determines the HARQ-ACK of the second control information in the dynamic HARQ-ACK codebook
- the position information, the HARQ-ACK priority information of the second control information determines the position of the HARQ-ACK of the second control information in the semi-static HARQ-ACK codebook.
- the embodiment of the present application provides a data processing method, including:
- the second communication node receives the second control information sent by the first communication node
- the second control information includes: information used to indicate that the status of the secondary cell serving the second communication node has changed; the second control information also includes at least one of the following information: used to indicate that the second control information is not used
- the hybrid automatic repeat request-acknowledgement information HARQ-ACK resource information of the second control information determine the interval from the time slot where the second control information is located to the time slot where the HARQ-ACK of the second control information is located Timing information, information that determines the interval timing from the sub-slot of the second control information to the sub-slot of the HARQ-ACK of the second control information, and determines the HARQ-ACK of the second control information in the dynamic HARQ-ACK codebook
- the position information, the HARQ-ACK priority information of the second control information determines the position of the HARQ-ACK of the second control information in the semi-static HARQ-ACK codebook.
- An embodiment of the present application provides a communication node, including: a processor, configured to implement the method of any one of the foregoing embodiments when a computer program is executed.
- the embodiment of the present application also provides a computer-readable storage medium storing a computer program, and the computer program is executed by a processor to implement the method of any of the foregoing embodiments.
- FIG. 1 is a schematic flowchart of a data processing method provided by an embodiment
- FIG. 2 is a schematic flowchart of another data processing method provided by an embodiment
- FIG. 3 is a schematic flowchart of yet another data processing method provided by an embodiment
- FIG. 4 is a schematic flowchart of yet another data processing method provided by an embodiment
- FIG. 5 is a schematic structural diagram of a data processing device provided by an embodiment
- FIG. 6 is a schematic structural diagram of another data processing device provided by an embodiment
- FIG. 7 is a schematic structural diagram of yet another data processing device provided by an embodiment
- FIG. 8 is a schematic structural diagram of still another data processing device provided by an embodiment
- FIG. 9 is a schematic structural diagram of a UE provided by an embodiment
- FIG. 10 is a schematic structural diagram of a base station provided by an embodiment.
- semi-static transmission is supported for terminal equipment.
- Semi-static transmission needs to be activated by activating DCI (a specific dedicated DCI whose design is different from that of scheduling data) before it can be used.
- DCI a specific dedicated DCI whose design is different from that of scheduling data
- the semi-static transmission data can be received at the (period) position of the semi-static transmission, and one semi-static release control signaling is supported to release at least two activated semi-static transmissions at the same time.
- the semi-static transmission here can be the semi-static transmission of downlink data (also known as the semi-persistent scheduling physical downlink shared channel (Semi-Persistent Scheduling Physical Downlink Shared Channel, SPS PDSCH)), or the semi-static transmission of uplink data (also known as Configured Granted Physical Uplink Shared Channel (CG PUSCH).
- downlink data also known as the semi-persistent scheduling physical downlink shared channel (Semi-Persistent Scheduling Physical Downlink Shared Channel, SPS PDSCH)
- uplink data also known as Configured Granted Physical Uplink Shared Channel (CG PUSCH).
- CG PUSCH Configured Granted Physical Uplink Shared Channel
- an activated DCI can activate a semi-static transmission.
- the NR system also supports at least two different priority transmissions, such as high priority transmission and low priority transmission.
- For a semi-static transmission it is supported to configure a semi-static transmission for the terminal device through Radio Resource Control (RRC) signaling.
- RRC Radio Resource Control
- the RRC signaling is used to clearly indicate the priority of the semi-static transmission, that is, high priority or low. priority.
- the NR system also supports two different priority hybrid automatic repeat request-acknowledgement (Hybrid Automatic Repeat request-Acknowledgement, HARQ-ACK) codebook transmission, such as high priority HARQ-ACK codebook transmission and low priority
- Hybrid Automatic Repeat request-Acknowledgement Hybrid Automatic Repeat request-Acknowledgement, HARQ-ACK codebook transmission
- high priority HARQ-ACK codebook transmission high priority HARQ-ACK codebook transmission
- low priority For HARQ-ACK codebook transmission at different priority levels, the required reliability and time delay for HARQ-ACK transmission at different priority levels are different.
- One activated DCI can activate at least two semi-static transmissions at the same time, especially when the semi-static transmission is configured with priority by RRC signaling, what rules should be followed to activate at least two semi-static transmissions at the same time?
- a deactivated DCI used to deactivate an activated semi-static transmission, it is a specific DCI, and its design is different from the DCI of scheduling data
- simultaneously deactivates at least two activated semi-static transmissions Then how is the HARQ-ACK corresponding to this deactivated DCI fed back in the HARQ-ACK codebook (for example, when the HARQ-ACK codebook is a semi-static codebook, and when the HARQ-ACK codebook is a dynamic codebook)?
- the embodiments of the present application provide a mobile communication network (including but not limited to the fifth-generation mobile communication network (5th-Generation, 5G)).
- the network architecture of the network may include network-side devices (for example, one or more types of Base Station, Transmission Node, Access Point (AP, Access Point), Relay, Node B (Node B, NB), Terrestrial Radio Access (UTRA, Universal Terrestrial Radio Access), Evolved Terrestrial Radio Access (EUTRA, Evolved) Universal Terrestrial Radio Access, etc.) and terminal equipment (User Equipment (UE), user equipment data card, relay, mobile equipment, etc.).
- a data processing method, a communication node, and a computer-readable storage medium that can run on the aforementioned network architecture are provided, which can associate control information with semi-static transmission, and improve transmission efficiency and stability.
- Fig. 1 shows a schematic flowchart of a data processing method provided in an embodiment. As shown in Fig. 1, the method provided in this embodiment is applicable to a first communication node, and the method includes the following steps.
- the first communication node sends first control information to the second communication node, where the first control information is used to activate or deactivate at least one semi-static transmission, the first control information is associated with the first semi-static transmission, and at least one semi-static transmission Including the first semi-static transmission.
- the HARQ-ACK of the first control information is in the semi-static HARQ-ACK code
- the location in this text is associated with the physical downlink shared channel (Physical Downlink Shared Channel, PDSCH) of the first semi-static transmission;
- the index of the first semi-static transmission is the smallest among all deactivated semi-static transmission indexes; or, the index of the first semi-static transmission is the largest among all deactivated semi-static transmission indexes; or, the first semi-static transmission index
- the transmission is indicated by an indication information carried by the first control information, where the indication information is PDSCH time domain resource allocation information corresponding to at least two semi-static transmissions that are deactivated, or at least two semi-static transmissions that are deactivated
- the index value is the order index value after ascending or descending order.
- the first control information is used to deactivate semi-static transmission 1, semi-static transmission 2, and semi-static transmission 3.
- the index of semi-static transmission 1 is 1, the index of semi-static transmission 2 is 2, and the index of semi-static transmission 3 is 3.
- the first semi-static transmission may be semi-static transmission 1 with the smallest index, or semi-static transmission 3 with the largest index, and the first semi-static transmission may also be indicated by an indication information carried in the first control information.
- the HARQ-ACK of the first control information is in the semi-static HARQ-ACK code.
- the position in this book is associated with the PDSCH of the first semi-static transmission;
- the first semi-static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions; or, the first semi-static transmission is the semi-static transmission with the lowest priority among all the deactivated semi-static transmissions; or,
- the first half of the static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the smallest among all the indexes of the highest priority deactivated semi-static transmissions; or
- Half of the static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the largest among all the indexes of the highest priority deactivated semi-static transmission; or, the first The semi-static transmission is the semi-static transmission with the lowest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the smallest among all the indexes of the highest-priority deactivated semi-static transmission; or, the first half The static
- the first communication node configures the index value of the high-priority semi-static transmission to be smaller than the index value of the low-priority semi-static transmission, or, A communication node configures the index value of the high-priority semi-static transmission to be greater than the index value of the low-priority semi-static transmission.
- the HARQ-ACK priority of the first control information is confirmed in one of the following ways:
- the first control information carries priority indication information, it will be confirmed according to the priority indication information carried in the first control information; otherwise, if at least two semi-static transmissions that have been deactivated are configured with priority by RRC signaling, it will be confirmed according to the priority indication information carried in the first control information. In the at least two semi-static transmissions that are deactivated, the high priority of the priority configured by RRC signaling is confirmed; otherwise, the HARQ-ACK of the first control information is confirmed as the low priority; or,
- At least two semi-static transmissions that have been deactivated are configured with priority by RRC signaling, they are confirmed according to the higher priority among the priorities configured by RRC signaling in the at least two semi-static transmissions that have been deactivated; otherwise, The HARQ-ACK of the first control information is confirmed as low priority;
- the priority indication information carried in the first control information is valid and is suitable for At least two semi-static transmissions; or,
- the priority indication information carried in the first control information is invalid and does not apply to at least two semi-static transmissions. Transmission; or,
- the first control information is used to activate at least two semi-static transmissions, and there are semi-static transmissions that are not configured with priority by RRC signaling in the at least two semi-static transmissions, semi-static transmissions that are not configured with priority by RRC signaling are present.
- the priority of is confirmed according to the priority indication information carried in the first control information; or,
- the priority indicated by the priority indication information carried in the first control information is allowed follow or modify the priority of at least two semi-static transmitted RRC signaling configurations.
- a semi-static transmission when the first control information is used to activate a semi-static transmission, and a semi-static transmission is configured with priority by RRC signaling, if the first control information does not carry priority indication information, then a semi-static transmission The priority of is confirmed according to the priority configured by RRC signaling; or,
- the priority of a semi-static transmission is as high as Priority confirmation or confirmation according to low priority; or,
- the priority of a semi-static transmission is configured by RRC signaling
- the priority of a semi-static transmission is in accordance with the first control
- the priority in the information indicates the confirmation of the information
- the priority of a semi-static transmission is in accordance with the first control
- the priority in the information indicates the confirmation of the information
- the priority of a semi-static transmission is in accordance with the first control
- the priority indication information carried in the information and the priority configured by the RRC signaling are confirmed whichever is higher or lower.
- a semi-static transmission has a priority configured by RRC signaling
- a semi-static transmission has a priority configured by RRC signaling
- the priority of a semi-static transmission is as high as Priority confirmation or confirmation according to low priority; or,
- the priority of a semi-static transmission is configured by RRC signaling
- the priority of a semi-static transmission is according to the first Confirmation of priority indication information carried in control information
- the priority of a semi-static transmission is not configured by RRC signaling
- the priority of a semi-static transmission is according to the first Confirmation of priority indication information carried in control information
- the first control information When the first control information is used to deactivate a semi-static transmission and the priority of a semi-static transmission is configured by RRC signaling, if the first control information carries priority indication information, the priority of a semi-static transmission is according to the first The priority indication information carried in the control information and the priority configured by the RRC signaling, whichever is higher or lower, is confirmed.
- FIG. 2 shows a schematic flowchart of another data processing method provided by an embodiment. As shown in FIG. 2, the method provided in this embodiment is applicable to the second communication node, and the method includes the following steps.
- the second communication node receives first control information sent by the first communication node, where the first control information is used to activate or deactivate at least one semi-static transmission, and the first control information is associated with the first semi-static transmission, and at least one semi-static transmission is associated with the first control information.
- the transmission includes the first semi-static transmission.
- the hybrid automatic repeat request-confirmation information HARQ- of the first control information is associated with the first semi-static transmission physical downlink shared channel PDSCH;
- the index of the first semi-static transmission is the smallest among all deactivated semi-static transmission indexes; or, the index of the first semi-static transmission is the largest among all deactivated semi-static transmission indexes; or, the first semi-static transmission index
- the transmission is indicated by an indication information carried by the first control information, where the indication information is PDSCH time domain resource allocation information corresponding to at least two semi-static transmissions that are deactivated, or at least two semi-static transmissions that are deactivated
- the index value is the order index value after ascending or descending order.
- the first control information is used to deactivate semi-static transmission 1, semi-static transmission 2, and semi-static transmission 3.
- the index of semi-static transmission 1 is 1, the index of semi-static transmission 2 is 2, and the index of semi-static transmission 3 is 3.
- the first semi-static transmission may be semi-static transmission 1 with the smallest index, or semi-static transmission 3 with the largest index, and the first semi-static transmission may also be indicated by an indication information carried in the first control information.
- the HARQ-ACK of the first control information is in the semi-static HARQ-ACK code.
- the position in this book is associated with the PDSCH of the first semi-static transmission;
- the first semi-static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions; or, the first semi-static transmission is the semi-static transmission with the lowest priority among all the deactivated semi-static transmissions; or,
- the first half of the static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the smallest among all the indexes of the highest priority deactivated semi-static transmissions; or
- Half of the static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the largest among all the indexes of the highest priority deactivated semi-static transmission; or, the first The semi-static transmission is the semi-static transmission with the lowest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the smallest among all the indexes of the highest-priority deactivated semi-static transmission; or, the first half The static
- the index value of the high-priority semi-static transmission is smaller than the index value of the low-priority semi-static transmission, or the high-priority semi-static transmission The index value of the transmission is greater than the index value of the low-priority semi-static transmission.
- the HARQ-ACK priority of the first control information is confirmed in one of the following ways:
- the first control information carries priority indication information, it will be confirmed according to the priority indication information carried in the first control information; otherwise, if at least two semi-static transmissions that have been deactivated are configured with priority by RRC signaling, it will be confirmed according to the priority indication information carried in the first control information. In the at least two semi-static transmissions that are deactivated, the high priority of the priority configured by RRC signaling is confirmed; otherwise, the HARQ-ACK of the first control information is confirmed as the low priority; or,
- At least two semi-static transmissions that have been deactivated are configured with priority by RRC signaling, they are confirmed according to the higher priority among the priorities configured by RRC signaling in the at least two semi-static transmissions that have been deactivated; otherwise, The HARQ-ACK of the first control information is confirmed as low priority;
- the priority indication information carried in the first control information is valid and is suitable for At least two semi-static transmissions; or,
- the priority indication information carried in the first control information is invalid and does not apply to at least two semi-static transmissions. Transmission; or,
- the first control information is used to activate at least two semi-static transmissions, and there are semi-static transmissions that are not configured with priority by RRC signaling in the at least two semi-static transmissions, semi-static transmissions that are not configured with priority by RRC signaling are present.
- the priority of is confirmed according to the priority indication information carried in the first control information; or,
- the priority indicated by the priority indication information carried in the first control information is allowed follow or modify the priority of at least two semi-static transmitted RRC signaling configurations.
- a semi-static transmission when the first control information is used to activate a semi-static transmission, and a semi-static transmission is configured with priority by RRC signaling, if the first control information does not carry priority indication information, then a semi-static transmission The priority of is confirmed according to the priority configured by RRC signaling; or,
- the priority of a semi-static transmission is as high as Priority confirmation or confirmation according to low priority; or,
- the priority of a semi-static transmission is configured by RRC signaling
- the priority of a semi-static transmission is in accordance with the first control
- the priority in the information indicates the confirmation of the information
- the priority of a semi-static transmission is in accordance with the first control
- the priority in the information indicates the confirmation of the information
- the priority of a semi-static transmission is in accordance with the first control
- the priority indication information carried in the information and the priority configured by the RRC signaling are confirmed whichever is higher or lower.
- a semi-static transmission has a priority configured by RRC signaling
- a semi-static transmission has a priority configured by RRC signaling
- the priority of a semi-static transmission is as high as Priority confirmation or confirmation according to low priority; or,
- the priority of a semi-static transmission is configured by RRC signaling
- the priority of a semi-static transmission is according to the first Confirmation of priority indication information carried in control information
- the priority of a semi-static transmission is not configured by RRC signaling
- the priority of a semi-static transmission is according to the first Confirmation of priority indication information carried in control information
- the first control information When the first control information is used to deactivate a semi-static transmission and the priority of a semi-static transmission is configured by RRC signaling, if the first control information carries priority indication information, the priority of a semi-static transmission is according to the first The priority indication information carried in the control information and the priority configured by the RRC signaling, whichever is higher or lower, is confirmed.
- Some exemplary implementation manners are listed below to illustrate the data processing method provided in FIG. 1 or FIG. 2 in the embodiment of the present application.
- the following exemplary implementation manners can be executed individually or in combination with each other, which is not specifically limited in the embodiments of the present application.
- the activating DCI or deactivating DCI in the following exemplary embodiment corresponds to the above-mentioned first control information.
- the HARQ-ACK of DCI is deactivated It is associated with the PDSCH of one semi-static transmission with the smallest index or the largest index among the at least two semi-static transmissions. That is, the position of the HARQ-ACK of the deactivated DCI in the semi-static HARQ-ACK codebook is the same as the receiving position of the PDSCH of the semi-static transmission with the smallest or largest index among the at least two semi-static transmissions that are deactivated.
- deactivating DCI simultaneously deactivates 4 semi-static transmissions, and the indexes of the 4 semi-static transmissions are 1, 2, 3, and 4 in order. They respectively have the corresponding semi-static transmission PDSCH.
- the position of the HARQ-ACK of the deactivated DCI in the semi-static HARQ-ACK codebook is the same as the reception of the semi-static transmission PDSCH with index 1 (the smallest index) The location is the same.
- the position of the HARQ-ACK to deactivate the DCI in the semi-static HARQ-ACK codebook is determined according to the receiving position of the PDSCH, that is, the HARQ-ACK corresponding to the receiving position of the PDSCH (the position of the PDSCH) is in the semi-static HARQ-
- the position in the ACK codebook is used as the position of the HARQ-ACK of the deactivated DCI in the semi-static codebook.
- the PDSCH position is not actually used to transmit downlink data, and its corresponding HARQ-ACK position is actually HARQ-ACK that deactivates DCI.
- the semi-static transmission PDSCH that is not associated with the HARQ-ACK of the deactivated DCI can be used to schedule downlink data transmission.
- the deactivated DCI when the deactivated DCI is deactivated for at least two semi-static transmissions, it is only associated with one semi-static transmission PDSCH receiving position, so that the unselected semi-static transmission PDSCH can be used for scheduling downlink data. Thereby saving PDSCH resources.
- the HARQ-ACK of DCI is associated with the PDSCH of the highest or lowest priority semi-static transmission among at least two semi-static transmissions. If there are at least two semi-static transmissions with the highest or lowest priority, the one with the smallest or largest index is selected. Statically transmitted PDSCH association.
- the position of the HARQ-ACK of the deactivated DCI in the semi-static HARQ-ACK codebook is the same as the receiving position of the PDSCH of the semi-static transmission with the highest or lowest priority among the at least two semi-static transmissions that are deactivated. If there are still at least two semi-static transmissions with the highest or lowest priority, the semi-static transmission with the same receiving position as the PDSCH of the semi-static transmission with the smallest or largest index is selected among the highest or lowest semi-static transmissions.
- the receiving position of the semi-static transmission PDSCH with the highest priority is selected to be associated with the HARQ-ACK of the deactivated DCI, this can prevent the HARQ-ACK of the deactivated DCI from being discarded, for example, if the DCI is deactivated When HARQ-ACK transmission and other priority information transmissions collide in the time domain, the high-priority HARQ-ACK can be guaranteed to be transmitted.
- deactivate DCI and deactivate 4 semi-static transmissions at the same time deactivate DCI and deactivate 4 semi-static transmissions at the same time, and the indexes of the 4 semi-static transmissions are 1, 2, 3, 4, and the priority of index 1 is high, and the priority of index 2 is low.
- the priority of 3 is high, and the priority of index 4 is low.
- the position of the HARQ-ACK for deactivating DCI in the semi-static HARQ-ACK codebook is the same as the receiving position of the PDSCH with the highest priority semi-static transmission.
- index 1 and index 3 are selected, the semi-static transmission with the same receiving position of the PDSCH of the semi-static transmission of index 1 with the smallest index is selected.
- the position of the HARQ-ACK to deactivate the DCI in the semi-static HARQ-ACK codebook is determined according to the receiving position of the PDSCH, that is, the HARQ-ACK corresponding to the receiving position of the PDSCH (the position of the PDSCH) is in the semi-static HARQ-
- the position in the ACK codebook is used as the position of the HARQ-ACK of the deactivated DCI in the semi-static codebook.
- the PDSCH position is not actually used to transmit downlink data, and its corresponding HARQ-ACK position is actually HARQ-ACK that deactivates DCI.
- the HARQ-ACK that deactivates the DCI has a high priority, thereby avoiding being discarded when a transmission conflict occurs.
- the HARQ-ACK that deactivates the DCI is associated with the receiving position of a semi-static transmission PDSCH, and both adopt The rules are agreed upon to determine a semi-static transmission.
- a flexible way is provided to determine a semi-static transmission, which is specifically as follows:
- the base station carries an indication information by deactivating the DCI to indicate a semi-static transmission.
- the position of the HARQ-ACK of the deactivated DCI in the semi-static HARQ-ACK codebook is associated with the PDSCH of the semi-static transmission indicated by the deactivated DCI.
- one semi-static transmission is one of at least two semi-static transmissions deactivated by deactivated DCI.
- the base station carries an indication information to indicate a PDSCH time domain resource allocation for semi-static transmission by deactivating DCI, which can specifically include one of the following methods: Method 1, using the time domain resource allocation domain in deactivated DCI The activated semi-static transmission indicates a semi-static transmission, and the time domain resource allocation of the deactivated semi-static transmission is used; Method 2, the time domain resource allocation field in the deactivated DCI is used to indicate from the deactivated semi-static transmission A semi-static transmission, and the index of the deactivated semi-static transmission is used; Method 3, the time domain resource allocation field in the deactivated DCI is used to indicate a semi-static transmission from the deactivated semi-static transmission, and the use is deactivated
- the order index value of the semi-static transmission for example, after the index of at least two semi-static transmissions to be deactivated in ascending or descending order, the index value of the ascending or descending order is used to describe a semi-static transmission (for example, at least two After the semi-static
- the HARQ-ACK of deactivated DCI can be dynamically associated with a semi-static transmission PDSCH, so as to be suitable for dynamically scheduled PDSCH transmission.
- the base station wants to use the index The smallest semi-static transmission PDSCH is used for dynamically scheduled data transmission, but according to the first and second exemplary embodiments, the semi-static transmission PDSCH with the smallest index is associated and deactivated the HARQ-ACK of DCI, resulting in The base station cannot use the semi-static transmission PDSCH with the smallest index to transmit dynamically scheduled data, but in the third exemplary embodiment, the base station can dynamically instruct to deactivate the HARQ-ACK of the DCI to associate with another semi-static transmission PDSCH, This ensures that the base station uses the semi-static transmission PDSCH with the smallest index to transmit dynamically scheduled data.
- the above method 1 in the related technology, the PDSCH time domain resource allocation field in the deactivation of DCI is not used, so it is recommended to reuse; methods 2 and 3 have the effect of reducing signaling overhead compared to method 1, because the configuration is semi-static The total number of transmissions is less than or equal to the total time-domain resource allocation; Method 3 has a smaller signaling overhead compared to Method 2, because the number of deactivated semi-static transmissions is less than or equal to the configured number of semi-static transmissions.
- the base station and the UE agree that when the RRC signaling configures at least two semi-static transmissions for the UE, the configured index value of the high-priority semi-static transmission is smaller than that of the low-priority semi-static transmission The configured index value. In this way, it is equivalent to assigning a priority to the index when the RRC signaling configures an index for semi-static transmission, and the priority of the index corresponds to the priority of semi-static transmission.
- the indexes of the two high-priority semi-static transmissions are configured as 1 and 2, respectively, and 2
- the indexes of two low-priority semi-static transmissions are respectively configured as 3 and 4, or the indexes of two low-priority semi-static transmissions can also be 5 and 6 respectively (as long as the indexes of two high-priority semi-static transmissions are higher than The value is great).
- the base station and the UE agree that when at least two semi-static transmissions are configured for the UE, the index value configured for the high-priority semi-static transmission is greater than the index value configured for the low-priority semi-static transmission.
- the base station and the UE agree that if DCI is deactivated and at least two semi-static transmissions are deactivated at the same time, and at least two semi-static transmissions are configured with different priorities by RRC signaling, then
- the priority of HARQ-ACK to activate DCI is determined to be at least one of the following:
- the priority indicated by the priority indication information carried in the deactivated DCI (or activated DCI).
- flexible HARQ-ACK priority can be provided for deactivating DCI, regardless of whether at least two semi-static transmissions that are deactivated are priority configured by RRC.
- the deactivated DCI carries priority indication information, and if at least two semi-static transmissions that are deactivated have no priority configured by the RRC signaling, the priority indication information carried by the deactivated DCI shall prevail.
- the deactivated DCI carries priority indication information, and if at least two semi-static transmissions that are deactivated are configured with priority by RRC signaling, the priority indication information carried by the deactivated DCI shall prevail.
- the deactivated DCI does not carry priority indication information
- the RRC signaling configuration in the at least two semi-static transmissions that are activated The highest (or lowest) priority of the semi-static transmission priority.
- the determination is based on the low priority (or high priority).
- the deactivated DCI carries priority indication information
- at least two semi-static transmissions that are deactivated are configured with priority by RRC signaling
- the priority carried in the deactivated DCI and the at least two semi-static transmissions The higher (or lower) priority of the priority configured by RRC shall prevail.
- the deactivated DCI when the deactivated DCI deactivates at least two semi-static transmissions at the same time, if the deactivated DCI carries priority indication information (regardless of whether the RRC signaling is configured with priority for at least two semi-static transmissions), the deactivated DCI carries The priority determines the priority of the HARQ-ACK to deactivate DCI. Otherwise, if at least two semi-static transmissions that are deactivated are configured with priority by RRC signaling, they are determined according to the priority of at least two semi-static transmissions that are deactivated. The high priority (or low priority) among the priorities configured by the RRC signaling determines the priority of the HARQ-ACK to deactivate the DCI; otherwise, the HARQ-ACK to deactivate the DCI is the low priority (or high priority).
- the deactivated at least two semi-static transmissions are configured with priority by RRC signaling (regardless of whether the priority indication information is carried in the deactivated DCI), then the deactivated at least two semi-static transmissions are RRC
- the high priority (or low priority) in the priority configured by the signaling determines the priority of the HARQ-ACK to deactivate the DCI; otherwise, the HARQ-ACK to deactivate the DCI is the low priority (or high priority).
- the priority indication carried in the deactivated DCI and the higher of the priorities configured by the RRC signaling for at least two semi-static transmissions that are deactivated (if they are both the same priority, then the same Priority shall prevail) as the priority of HARQ-ACK to deactivate DCI.
- the priority indication carried by the deactivated DCI is not carried, the priority indication carried by the deactivated DCI is considered to be a low priority.
- the semi-static transmission that has not been configured with priority by RRC signaling is considered as a low-priority semi-static transmission.
- the priority determination method of the HARQ-ACK for deactivating DCI is at least one of the following:
- Process 1 Deactivate the HARQ-ACK priority of DCI for a semi-static transmission (that is, HARQ-ACK belongs to a high or low HARQ-ACK codebook), and the semi-static transmission is configured with priority by RRC. If it is deactivated If no priority indication information is carried in the deactivated DCI, the priority configured by RRC is processed as semi-static transmission;
- Process 2 For a semi-static transmission to deactivate the HARQ-ACK priority of DCI, and the semi-static transmission is not configured with priority in RRC, if the deactivation DCI does not carry priority indication information, it will follow the low priority Level (or high priority) processing;
- Process 3 for a semi-static transmission to deactivate the HARQ-ACK priority of DCI, and the semi-static transmission is configured with priority by RRC, if the deactivated DCI carries priority indication information during deactivation, it is used in the deactivated DCI The priority indication carried shall prevail;
- Process 4 for a semi-static transmission to deactivate the HARQ-ACK priority of DCI, and the semi-static transmission is not configured with the priority of RRC, if the deactivated DCI carries priority indication information during deactivation, it is used in the deactivated DCI The priority indication carried shall prevail;
- Process 7 for a semi-static transmission to deactivate the HARQ-ACK priority of DCI, and the semi-static transmission is configured with priority by RRC, if the deactivated DCI carries priority indication information during deactivation, it is used in the deactivated DCI The higher (or lower) of the carried priority and the priority configured by the RRC shall prevail.
- the base station configures a semi-static transmission priority through high-level signaling RRC signaling, such as high priority or low priority
- RRC signaling such as high priority or low priority
- the downlink control signaling is activated (activating DCI
- the base station and the UE agree to use any of the following methods:
- Method 1 If an activated DCI activates at least two semi-static transmission priorities at the same time, and the activated at least two semi-static transmissions are configured with different priorities by RRC signaling, then activate the priority indication information carried by the DCI Is valid (at least two activated semi-static transmissions have their respective RRC signaling configuration priorities become invalid), for example, if the priority indication information is high priority, then at least two semi-static transmissions activated at this time All are determined as high priority according to the priority indication information carried by the activated DCI.
- Adopting method 1 can effectively solve the problem of requiring at least two semi-static transmission resources with the same priority during semi-static transmission. For example, a base station or UE needs 4 semi-static transmissions of the same priority to be activated, but currently 4 semi-static transmissions are configured and configured with different priorities. In this case, you can use method 1 to activate 4 semi-static transmissions at the same time. Transmission, and the priority in the priority indication information carried by the activated DCI is applied to the four activated semi-static transmissions, so as to meet the requirements of the base station or the UE.
- Method 2 reduces the number of sending activations of DCI.
- the priority determination method of the semi-static transmission is at least one of the following:
- Process b For an activated semi-static transmission and the priority is not configured by RRC, if the activated DCI does not carry priority indication information when it is activated, it will be processed according to the low priority (or high priority);
- Method 4 If an activated DCI activates at least two semi-static transmissions at the same time, these semi-static transmissions must have the same priority configured by RRC signaling, and the priority indicated by the priority indication information carried by the activated DCI is followed or modified by The priority of the active semi-static transmission.
- the HARQ-ACK with activated DCI performs feedback according to the relevant parameters in the activated DCI. For example, according to the PUCCH resource indication field in the activated DCI and the PDSCH to HARQ-ACK feedback timing domain to determine the uplink feedback position and PUCCH resource of the HARQ-ACK transmission of the activated DCI.
- the HARQ-ACK of the activated DCI is the same as the activated at least two semi-static transmissions.
- the first PDSCH of the designated semi-static transmission in the transmission is associated.
- the method for determining the designated semi-static transmission may adopt the methods in the first and second exemplary embodiments. If the semi-static transmission is configured with an index according to the fourth exemplary embodiment, the first exemplary embodiment can be used to determine a designated semi-static transmission. For the remaining semi-static transmission, the first PDSCH is sent according to the PUCCH resource configured for semi-static transmission.
- RRC signaling provides a mapping relationship for a semi-static transmission configuration priority or RRC signaling provides a mapping relationship, the mapping relationship is that the semi-static transmission corresponds to the HARQ-ACK codebook (that is, the semi-static transmission HARQ-ACK corresponds to a high-priority HARQ-ACK codebook or a low-priority HARQ-ACK codebook).
- determining the priority of the semi-static transmission is also determining the priority of the HARQ-ACK of the semi-static transmission.
- the activated DCI or deactivated DCI does not carry a priority indication, including one of the following situations: RRC signaling is not configured with the priority indication field to activate DCI or deactivate DCI, and activate DCI or deactivate DCI carries priority
- the level indication field is agreed to be invalid, and the activation or deactivation of the DCI does not include the priority indication field (for example, when using Fallback DCI (DCI 1-0 format or DCI 0-0 format) for activation or deactivation).
- FIG. 3 shows a schematic flowchart of another data processing method provided by an embodiment. As shown in FIG. 3, the method provided in this embodiment is applicable to the first communication node, and the method includes the following steps.
- the first communication node configures and sends second control information to the second communication node.
- the second control information includes: information used to indicate that the status of the secondary cell serving the second communication node has changed; the second control information also includes at least one of the following information: used to indicate that the second control information is not used
- the hybrid automatic repeat request-acknowledgement information HARQ-ACK resource information of the second control information determine the interval from the time slot where the second control information is located to the time slot where the HARQ-ACK of the second control information is located Timing information, information that determines the interval timing from the sub-slot of the second control information to the sub-slot of the HARQ-ACK of the second control information, and determines the HARQ-ACK of the second control information in the dynamic HARQ-ACK codebook
- the position information, the HARQ-ACK priority information of the second control information determines the position of the HARQ-ACK of the second control information in the semi-static HARQ-ACK codebook.
- the second control information uses the downlink control information DCI format of the downlink scheduling data to set or reinterpret part of the bit fields in the DCI format, or uses the DCI format of the uplink scheduling data to set or reinterpret part of the bits in the DCI format area.
- the second control information when the second control information uses the DCI format of the downlink scheduling data to set or reinterpret part of the bit fields in the DCI format, it includes at least one of the following definitions:
- DCI Downlink Assignment Index
- the agreed value is used to indicate the bit field in the DCI format of the downlink scheduling data as the second control information.
- the agreed value can be 0;
- One bit field does not include PUCCH resource indicator field, PDSCH to HARQ-ACK timing feedback field, DAI field, PDSCH time field Resource allocation domain and PDSCH frequency domain resource allocation domain.
- the second control information when the second control information uses the DCI format of the uplink scheduling data to set or reinterpret part of the bit fields in the DCI format, it includes at least one of the following definitions:
- One bit field in the DCI is reinterpreted as the HARQ-ACK priority for determining the second control information.
- One bit field does not include the first bit field, the second bit field, the third bit field, and the fourth bit field.
- the HARQ-ACK of the second control information is counted in the service sending the second control information. In the HARQ-ACK of the cell; or,
- the HARQ-ACK of the second control information is counted in the serving cell where the state transition is indicated by the second control information In the HARQ-ACK of the serving cell with the smallest or largest index; or,
- the HARQ-ACK of the second control information is associated with one serving cell, where one serving cell is the second control information Indicates the associated serving cell.
- the first communication node determines a PDSCH from the associated serving cell, and uses the PDSCH receiving position to determine the second control information The position of the HARQ-ACK in the semi-static HARQ-ACK codebook.
- FIG. 4 shows a schematic flowchart of another data processing method provided by an embodiment. As shown in FIG. 4, the method provided in this embodiment is applicable to the second communication node, and the method includes the following steps.
- the second communication node receives second control information sent by the first communication node.
- the second control information includes: information used to indicate that the status of the secondary cell serving the second communication node has changed; the second control information also includes at least one of the following information: used to indicate that the second control information is not used
- the hybrid automatic repeat request-acknowledgement information HARQ-ACK resource information of the second control information determine the interval from the time slot where the second control information is located to the time slot where the HARQ-ACK of the second control information is located Timing information, information that determines the interval timing from the sub-slot of the second control information to the sub-slot of the HARQ-ACK of the second control information, and determines the HARQ-ACK of the second control information in the dynamic HARQ-ACK codebook
- the position information, the HARQ-ACK priority information of the second control information determines the position of the HARQ-ACK of the second control information in the semi-static HARQ-ACK codebook.
- the second control information uses the downlink control information DCI format of the downlink scheduling data to set or reinterpret part of the bit fields in the DCI format, or uses the DCI format of the uplink scheduling data to set or reinterpret part of the bits in the DCI format area.
- the second control information when the second control information uses the DCI format of the downlink scheduling data to set or reinterpret part of the bit fields in the DCI format, it includes at least one of the following definitions:
- the agreed value is used to indicate the bit field in the DCI format of the downlink scheduling data as the second control information.
- the agreed value can be 0;
- One bit field does not include PUCCH resource indicator field, PDSCH to HARQ-ACK timing feedback field, DAI field, PDSCH time field Resource allocation domain and PDSCH frequency domain resource allocation domain.
- the second control information when the second control information uses the DCI format of the uplink scheduling data to set or reinterpret part of the bit fields in the DCI format, it includes at least one of the following definitions:
- One bit field in the DCI is reinterpreted as the HARQ-ACK priority for determining the second control information.
- One bit field does not include the first bit field, the second bit field, the third bit field, and the fourth bit field.
- the HARQ-ACK of the second control information is counted in the service sending the second control information. In the HARQ-ACK of the cell; or,
- the HARQ-ACK of the second control information is counted in the serving cell where the state transition is indicated by the second control information In the HARQ-ACK of the serving cell with the smallest or largest index; or,
- the HARQ-ACK of the second control information is associated with one serving cell, where one serving cell is the second control information Indicates the associated serving cell.
- a PDSCH reception position determined in the associated serving cell is used to determine the HARQ-ACK of the second control information.
- the position in the semi-static HARQ-ACK codebook is used to determine the HARQ-ACK of the second control information.
- the base station informs the UE whether a normal Scell is converted to a dormant Scell, or whether a dormant Scell is converted to a normal Scell.
- the approach is mainly to save energy .
- the way the base station notifies the UE includes using physical layer signaling, for example, a specially designed DCI carried in the PDCCH to notify the UE, and this special DCI (corresponding to the aforementioned second control information) does not schedule data. If this mechanism is used to notify the UE, in order to ensure reliability, you need to consider designing the corresponding HARQ-ACK feedback for this notification signaling, that is, designing the corresponding HARQ-ACK feedback for the DCI signaling used to notify the UE of Scell conversion. And the DCI has no scheduling data.
- the special DCI has a PUCCH resource indicator field and a PDSCH to HARQ-ACK timing feedback field. These two fields are used To determine the HARQ-ACK feedback location and PUCCH resource of the special DCI.
- the PDSCH to HARQ-ACK timing feedback field and the PUCCH resource indication field can also adopt a pre-appointed manner, which can reduce the overhead of special DCI.
- the HARQ-ACK of the special DCI can be guaranteed to be sent independently, but because the HARQ-ACK of the special DCI may also be combined with the semi-static HARQ-ACK codebook or the dynamic HARQ-ACK codebook for transmission. In this case, The following ways can be considered.
- the special DCI is further provided with a downlink authorization index (DAI) field.
- DAI downlink authorization index
- This DAI field is used to determine the position of the HARQ-ACK of the special DCI in the dynamic HARQ-ACK codebook. This method can solve the problem of the position of the HARQ-ACK of the special DAI in the dynamic HARQ-ACK codebook when the HARQ-ACK of the special DCI is combined with the dynamic HARQ-ACK codebook for transmission.
- the special DCI further carries a PDSCH resource allocation information, and the PDSCH is not used for data transmission, that is, the PDSCH resource location is used To determine the position of the HARQ-ACK of the special DCI in the semi-static HARQ-ACK codebook.
- the PDSCH resource allocation information here may be only the PDSCH time domain resource allocation, and does not include the PDSCH frequency domain resource allocation.
- the HARQ-ACK of the special DCI is associated with the serving cell that sends the special DCI (here the serving cell can also be described as a carrier), that is, when there are multiple carriers, the HARQ-ACK statistics of the special DCI are calculated on the carrier that sends the special DCI.
- HARQ-ACK It can also be that the HARQ-ACK of the special DCI is associated with the secondary cell (Scell) indicated by the special DCI that needs to be transitioned. If the special DCI indicates the transition status of at least two Scells at the same time, the Scell with the smallest or largest index is selected for association (or The special DCI indicates a serving cell, and the HARQ-ACK of the special DCI is associated with the indicated serving cell).
- the special DCI is sent in the serving cell 1, but it is used to instruct Scell2 and Scell3 to perform state transition.
- the HARQ-ACK of the special DCI is associated with Scell2 (assuming the smallest index).
- the HARQ-ACK of a special DCI After the HARQ-ACK of a special DCI is associated with a serving cell, it is only determined that the HARQ-ACK of the special DCI is counted in the HARQ-ACK of that carrier. It is also necessary to determine a PDSCH receiving position from the serving cell to determine the special DCI The position of the HARQ-ACK in the semi-static HARQ-ACK codebook.
- the PUCCH resource indicator field is added to the special DCI
- the PDSCH is added to the HARQ-ACK timing feedback field.
- These two fields are used to determine the HARQ-ACK feedback position and PUCCH of the special DCI. Resources.
- the PDSCH to HARQ-ACK timing feedback field and the PUCCH resource indication field can also adopt a pre-appointed manner, which can reduce the overhead of special DCI.
- the above two fields can also be implemented by reinterpreting other parameters in the DCI for scheduling uplink data, because the DCI for scheduling uplink data no longer schedules uplink data, so a large number of other fields can be used for reinterpretation.
- the HARQ-ACK of the special DCI can be guaranteed to be sent independently, but because the HARQ-ACK of the special DCI may also be combined with the semi-static HARQ-ACK codebook or the dynamic HARQ-ACK codebook for transmission. In this case, The following ways can be considered.
- the special DCI further adds a count downlink authorization index (Counter-DAI) field.
- This counted downlink grant index field is used to determine the position of the HARQ-ACK of the special DCI in the dynamic HARQ-ACK codebook.
- This method can solve the problem of the position of the HARQ-ACK of the special DAI in the dynamic HARQ-ACK codebook when the HARQ-ACK of the special DCI is combined with the dynamic HARQ-ACK codebook for transmission.
- the special DCI adds another PDSCH resource allocation information, and the PDSCH is not used for data transmission, that is, the PDSCH resource location is It is used to determine the position of the HARQ-ACK of the special DCI in the semi-static HARQ-ACK codebook.
- the PDSCH resource allocation information here may be only the PDSCH time domain resource allocation, and does not include the PDSCH frequency domain resource allocation.
- the HARQ-ACK of the special DCI is associated with the serving cell that sends the special DCI (here, the serving cell can also be described as a carrier), that is, when there are multiple carriers, the HARQ-ACK of the special DCI is counted in In the HARQ-ACK of the carrier that sends the special DCI. It can also be that the HARQ-ACK of the special DCI is associated with the secondary cell (Scell) indicated by the special DCI that needs to be transitioned.
- Scell secondary cell
- the special DCI indicates the transition status of at least two Scells at the same time, the Scell with the smallest or largest index is selected for association (or The special DCI indicates a serving cell, and the HARQ-ACK of the special DCI is associated with the indicated serving cell). That is, in the case of multi-carrier, the special DCI is sent in the serving cell 1, but it is used to instruct Scell2 and Scell3 to perform state transition. At this time, the HARQ-ACK of the special DCI is associated with Scell2 (assuming the smallest index).
- the HARQ-ACK of a special DCI After the HARQ-ACK of a special DCI is associated with a serving cell, it is only determined that the HARQ-ACK of the special DCI is counted in the HARQ-ACK of that carrier. It is also necessary to determine a PDSCH receiving position from the serving cell to determine the special DCI The position of the HARQ-ACK in the semi-static HARQ-ACK codebook.
- the special DCI carries PUSCH resource allocation, and the HARQ-ACK of the special DCI is transmitted in the PUSCH resource. That is, the base station sends a special DCI to the UE, and carries a PUSCH resource allocation, and the UE transmits the HARQ-ACK of the special DCI in the PUSCH resource.
- the HARQ-ACK of the special DCI here may be in the form of a media access control (Media Access Control, MAC) layer control unit.
- a priority indication field can be added to the special DCI.
- the priority indication The field is used to indicate the priority corresponding to the HARQ-ACK of the special DCI. Or, reinterpret a certain bit field in the DCI other than the bit fields described in the above manners 10 to 17 as a priority bit field describing the HARQ-ACK of the special DCI.
- the HARQ-ACK of the special DCI and the semi-static HARQ-ACK codebook (or dynamic HARQ-ACK codebook) are combined, they can be combined into codebooks of different priorities according to priority.
- a scheduling-free repetitive transmission Transport Block Repetition for Uplink Transmission with a Configured Grant
- Transport Block TB
- slot-based repetition means that multiple time slots are used to repeatedly transmit TB. It is sent only once in a time slot, and the TB has the same time domain resource allocation in each time slot.
- the scheduling-free transmission type Type1 is configured by RRC; the scheduling-free transmission type Type2 is configured by activating the DCI.
- time domain allocation table of Release 16 is determined according to the following method:
- Method 1 Configure a TDRA table for the scheduling-free transmission type 1 through RRC signaling, and the TDRA table is different from the table used by the scheduling-free transmission type 2.
- the TDRA table adopted by the scheduling-free transmission type Type1 does not include an indication of the number of repetitions
- the table adopted by the scheduling-free transmission type Type2 includes an indication of the number of repetitions.
- the TDRA table used by the scheduling-free transmission type Type1 independently indicates the start symbol S of the time domain resource and the number of time domain duration symbols L of the time domain resource of the data, and S+L may be greater than 14. Integer.
- the scheduling-free transmission type Type2 uses a dynamically scheduled TDRA table.
- K2 refers to the time domain offset (slot offset), which is the length of time between the terminal receiving the DCI and sending the PUSCH.
- S refers to the start symbol of the time domain resource of the PUSCH, L is the number of time domain duration symbols of the time domain resource of the PUSCH, and S+L may be an integer greater than 14.
- Table 1 A TDRA information table
- the terminal uses the newly defined TDRA table to determine the time domain allocation resources.
- the newly defined table may be as shown in Table 2, and a column of Number of Repetition is added to Table 1 to indicate the number of repetitions.
- Table 2 Another TDRA information table
- Method 2 For Release 16 PUSCH, there are multiple TDRA tables. For example, there are different TDRA tables according to different DCI formats; for example, the table configured for DCI format 0_1 is TDRAforDCIformat 0_1 and the table configured for DCI format 0_2 is TDRAforDCIformat 0_2.
- RRC signaling instructions when the network side instructs to adopt the PUSCH transmission type of Release 15, the terminal uses the legacy TDRA form. When the network side indicates to use the PUSCH transmission type of Release 16, it chooses to use the form TDRAforDCIformat 0_1 or the form TDRAforDCIformat 0_2 according to the RRC signaling.
- the content of the RRC signaling is the form TDRAforDCIformat 0_1. If the RRC signaling is not configured, the form TDRAforDCIformat 0_2 is used by default.
- the content of the RRC signaling is the form TDRAforDCIformat 0_2. If the RRC signaling is not configured, the form TDRAforDCIformat 0_1 is used by default.
- RRC signaling indicates two logical values.
- the terminal uses the TDRA table corresponding to TDRAforDCIformat 0_2; when the indication is the second logical value, the terminal uses the TDRA table corresponding to TDRAforDCIformat 0_1.
- RRC signaling indicates three logical values.
- the terminal uses the form legacy TDRA; when the indication is the fourth logical value, the terminal uses the form TDRAforDCIformat 0_2; when the indication is the fifth logical value, the terminal Use the form TDRAforDCIformat 0_1.
- the content of the first RRC signaling is the table legacy TDRA, and the second RRC signaling indicates two logical values. If the first RRC signaling is not configured and the second RRC signaling indicates a sixth logical value, the terminal uses the table TDRAforDCIformat 0_2. Or if the first RRC signaling is not configured and the second RRC signaling indicates the seventh logical value, the terminal uses the table TDRAforDCIformat 0_1.
- the content of the third RRC signaling is the table TDRAforDCIformat 0_1, and the fourth RRC signaling indicates two logical values. If the third RRC signaling is not configured and the fourth RRC signaling indicates an eighth logical value, the terminal uses the table TDRAforDCIformat 0_2. Or if the third RRC signaling is not configured and the fourth RRC signaling indicates a ninth logical value, the terminal uses the legacy TDRA table.
- the content of the fifth RRC signaling is a table TDRAforDCIformat 0_2, and the sixth RRC signaling indicates two logical values. If the fifth RRC signaling is not configured and the sixth RRC signaling indicates a tenth logical value, the terminal uses the table TDRAforDCIformat 0_1. Or if the fifth RRC signaling is not configured and the sixth RRC signaling indicates the eleventh logical value, the terminal uses the legacy TDRA table.
- the table TDRAforDCIformat 0_2 and the table TDRAforDCIformat 0_1 mentioned in A, B, C, and D may include a column indicating the number of repetitions, or they may not include a column indicating the number of repetitions.
- repeated transmission information can also be carried on physical layer channels such as PDSCH and PDCCH.
- FIG. 5 shows a schematic structural diagram of a data processing device provided by an embodiment.
- the data processing device may be configured in a first communication node.
- the data processing device includes: a sending module 10.
- FIG. 5 shows a schematic structural diagram of a data processing device provided by an embodiment.
- the data processing device may be configured in a first communication node.
- the data processing device includes: a sending module 10.
- FIG. 5 shows a schematic structural diagram of a data processing device provided by an embodiment.
- the data processing device may be configured in a first communication node.
- the data processing device includes: a sending module 10.
- FIG. 10 shows a sending module 10.
- the sending module 10 is configured to send first control information to a second communication node, the first control information is used to activate or deactivate at least one semi-static transmission, the first control information is associated with the first semi-static transmission, and at least one semi-static transmission Including the first semi-static transmission.
- the data processing device provided in this embodiment can implement the data processing method of the foregoing embodiment.
- the implementation principles and technical effects of the data processing device provided in this embodiment are similar to those in the foregoing embodiment, and will not be repeated here.
- the hybrid automatic repeat request-confirmation information HARQ- of the first control information is associated with the first semi-static transmission physical downlink shared channel PDSCH;
- the index of the first half of the static transmission is the smallest among all the indexes of the deactivated semi-static transmission; or,
- the index of the first half of the static transmission is the largest among all the indexes of the deactivated semi-static transmission; or,
- the first half of static transmission is indicated by an indication information carried by the first control information, where the indication information is PDSCH time domain resource allocation information corresponding to at least two semi-static transmissions that are deactivated, or at least two deactivated
- the index values of a semi-static transmission are sequentially indexed in ascending or descending order.
- the HARQ-ACK of the first control information is in the semi-static HARQ-ACK code.
- the position in this book is associated with the PDSCH of the first semi-static transmission; among them,
- the first half of the static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions; or,
- the first half of the static transmission is the semi-static transmission with the lowest priority among all deactivated semi-static transmissions; or,
- the first half of the static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the smallest among all the indexes of the highest priority deactivated semi-static transmissions; or,
- the first half of the static transmission is the highest priority semi-static transmission among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the largest among all the indexes of the highest priority deactivated semi-static transmissions; or,
- the first half of the static transmission is the semi-static transmission with the lowest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the smallest among all the indexes of the highest priority deactivated semi-static transmissions; or,
- the first half static transmission is the semi-static transmission with the lowest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the largest among all the indexes of the highest priority deactivated semi-static transmission.
- the first communication node configures the index value of the high-priority semi-static transmission to be smaller than the index value of the low-priority semi-static transmission, or, A communication node configures the index value of the high-priority semi-static transmission to be greater than the index value of the low-priority semi-static transmission.
- the HARQ-ACK priority of the first control information is confirmed in one of the following ways:
- the first control information carries priority indication information, it will be confirmed according to the priority indication information carried in the first control information; otherwise, if at least two semi-static transmissions that have been deactivated are configured with priority by RRC signaling, it will be confirmed according to the priority indication information carried in the first control information. In the at least two semi-static transmissions that are deactivated, the high priority of the priority configured by RRC signaling is confirmed; otherwise, the HARQ-ACK of the first control information is confirmed as the low priority; or,
- At least two semi-static transmissions that have been deactivated are configured with priority by RRC signaling, they are confirmed according to the higher priority among the priorities configured by RRC signaling in the at least two semi-static transmissions that have been deactivated; otherwise, The HARQ-ACK of the first control information is confirmed as low priority;
- the priority indication information carried in the first control information is valid and is suitable for At least two semi-static transmissions; or,
- the priority indication information carried in the first control information is invalid and does not apply to at least two semi-static transmissions. Transmission; or,
- the first control information is used to activate at least two semi-static transmissions, and there are semi-static transmissions that are not configured with priority by RRC signaling in the at least two semi-static transmissions, semi-static transmissions that are not configured with priority by RRC signaling are present.
- the priority of is confirmed according to the priority indication information carried in the first control information; or,
- the priority indicated by the priority indication information carried in the first control information is allowed follow or modify the priority of at least two semi-static transmitted RRC signaling configurations.
- a semi-static transmission when the first control information is used to activate a semi-static transmission, and a semi-static transmission is configured with priority by RRC signaling, if the first control information does not carry priority indication information, then a semi-static transmission The priority of is confirmed according to the priority configured by RRC signaling; or,
- the priority of a semi-static transmission is as high as Priority confirmation or confirmation according to low priority; or,
- the priority of a semi-static transmission is configured by RRC signaling
- the priority of a semi-static transmission is in accordance with the first control
- the priority in the information indicates the confirmation of the information
- the priority of a semi-static transmission is in accordance with the first control
- the priority in the information indicates the confirmation of the information
- the priority of a semi-static transmission is in accordance with the first control
- the priority indication information carried in the information and the priority configured by the RRC signaling are confirmed whichever is higher or lower.
- a semi-static transmission has a priority configured by RRC signaling
- a semi-static transmission has a priority configured by RRC signaling
- the priority of a semi-static transmission is as high as Priority confirmation or confirmation according to low priority; or,
- the priority of a semi-static transmission is configured by RRC signaling
- the priority of a semi-static transmission is according to the first Confirmation of priority indication information carried in control information
- the priority of a semi-static transmission is not configured by RRC signaling
- the priority of a semi-static transmission is according to the first Confirmation of priority indication information carried in control information
- the first control information When the first control information is used to deactivate a semi-static transmission and the priority of a semi-static transmission is configured by RRC signaling, if the first control information carries priority indication information, the priority of a semi-static transmission is according to the first The priority indication information carried in the control information and the priority configured by the RRC signaling, whichever is higher or lower, is confirmed.
- FIG. 6 shows a schematic structural diagram of another data processing device provided by an embodiment.
- the data processing device may be configured in a second communication node. As shown in FIG. 6, it includes: a receiving module 20.
- the receiving module 20 is configured to receive first control information sent by the first communication node, the first control information is used to activate or deactivate at least one semi-static transmission, the first control information is associated with the first semi-static transmission, and at least one semi-static transmission The transmission includes the first semi-static transmission.
- the data processing device provided in this embodiment can implement the data processing method of the foregoing embodiment.
- the implementation principles and technical effects of the data processing device provided in this embodiment are similar to those in the foregoing embodiment, and will not be repeated here.
- the hybrid automatic repeat request-confirmation information HARQ- of the first control information is associated with the first semi-static transmission physical downlink shared channel PDSCH;
- the index of the first half of the static transmission is the smallest among all the indexes of the deactivated semi-static transmission; or,
- the index of the first half of the static transmission is the largest among all the indexes of the deactivated semi-static transmission; or,
- the first half of static transmission is indicated by an indication information carried by the first control information, where the indication information is PDSCH time domain resource allocation information corresponding to at least two semi-static transmissions that are deactivated, or at least two deactivated
- the index values of a semi-static transmission are sequentially indexed in ascending or descending order.
- the HARQ-ACK of the first control information is in the semi-static HARQ-ACK code.
- the position in this book is associated with the PDSCH of the first semi-static transmission; among them,
- the first half of the static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions; or,
- the first half of the static transmission is the semi-static transmission with the lowest priority among all deactivated semi-static transmissions; or,
- the first half of the static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the smallest among all the indexes of the highest priority deactivated semi-static transmissions; or,
- the first half of the static transmission is the semi-static transmission with the highest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the largest among all the indexes of the highest priority deactivated semi-static transmission; or,
- the first half of the static transmission is the semi-static transmission with the lowest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the smallest among all the indexes of the highest priority deactivated semi-static transmissions; or,
- the first half static transmission is the semi-static transmission with the lowest priority among all deactivated semi-static transmissions, and the index of the first semi-static transmission is the largest among all the indexes of the highest priority deactivated semi-static transmission.
- the index value of the high-priority semi-static transmission is smaller than the index value of the low-priority semi-static transmission, or the high-priority semi-static transmission The index value of the transmission is greater than the index value of the low-priority semi-static transmission.
- the HARQ-ACK priority of the first control information is confirmed in one of the following ways:
- the first control information carries priority indication information, it will be confirmed according to the priority indication information carried in the first control information; otherwise, if at least two semi-static transmissions that have been deactivated are configured with priority by RRC signaling, it will be confirmed according to the priority indication information carried in the first control information. In the at least two semi-static transmissions that are deactivated, the high priority of the priority configured by RRC signaling is confirmed; otherwise, the HARQ-ACK of the first control information is confirmed as the low priority; or,
- At least two semi-static transmissions that have been deactivated are configured with priority by RRC signaling, they are confirmed according to the higher priority among the priorities configured by RRC signaling in the at least two semi-static transmissions that have been deactivated; otherwise, The HARQ-ACK of the first control information is confirmed as low priority;
- the priority indication information carried in the first control information is valid and is suitable for At least two semi-static transmissions; or,
- the priority indication information carried in the first control information is invalid and does not apply to at least two semi-static transmissions. Transmission; or,
- the first control information is used to activate at least two semi-static transmissions, and there are semi-static transmissions that are not configured with priority by RRC signaling in the at least two semi-static transmissions, semi-static transmissions that are not configured with priority by RRC signaling are present.
- the priority of is confirmed according to the priority indication information carried in the first control information; or,
- the priority indicated by the priority indication information carried in the first control information is allowed follow or modify the priority of at least two semi-static transmitted RRC signaling configurations.
- a semi-static transmission when the first control information is used to activate a semi-static transmission, and a semi-static transmission is configured with priority by RRC signaling, if the first control information does not carry priority indication information, then a semi-static transmission The priority of is confirmed according to the priority configured by RRC signaling; or,
- the priority of a semi-static transmission is as high as Priority confirmation or confirmation according to low priority; or,
- the priority of a semi-static transmission is configured by RRC signaling
- the priority of a semi-static transmission is in accordance with the first control
- the priority in the information indicates the confirmation of the information
- the priority of a semi-static transmission is in accordance with the first control
- the priority in the information indicates the confirmation of the information
- the priority of a semi-static transmission is in accordance with the first control
- the priority indication information carried in the information and the priority configured by the RRC signaling are confirmed whichever is higher or lower.
- a semi-static transmission has a priority configured by RRC signaling
- a semi-static transmission has a priority configured by RRC signaling
- the priority of a semi-static transmission is as high as Priority confirmation or confirmation according to low priority; or,
- the priority of a semi-static transmission is configured by RRC signaling
- the priority of a semi-static transmission is according to the first Confirmation of priority indication information carried in control information
- the priority of a semi-static transmission is not configured by RRC signaling
- the priority of a semi-static transmission is according to the first Confirmation of priority indication information carried in control information
- the first control information When the first control information is used to deactivate a semi-static transmission and the priority of a semi-static transmission is configured by RRC signaling, if the first control information carries priority indication information, the priority of a semi-static transmission is according to the first The priority indication information carried in the control information and the priority configured by the RRC signaling, whichever is higher or lower, is confirmed.
- FIG. 7 shows a schematic structural diagram of another data processing device provided by an embodiment.
- the data processing device may be configured in a first communication node. As shown in FIG. 7, it includes a processing module 30 and a sending module 31.
- the processing module 30 is configured to configure the second control information
- the sending module 31 is configured to send second control information to the second communication node
- the second control information includes: information used to indicate that the status of the secondary cell serving the second communication node has changed; the second control information also includes at least one of the following information: used to indicate that the second control information is not used
- the hybrid automatic repeat request-acknowledgement information HARQ-ACK resource information of the second control information determine the interval from the time slot where the second control information is located to the time slot where the HARQ-ACK of the second control information is located Timing information, information that determines the interval timing from the sub-slot of the second control information to the sub-slot of the HARQ-ACK of the second control information, and determines the HARQ-ACK of the second control information in the dynamic HARQ-ACK codebook
- the position information, the HARQ-ACK priority information of the second control information determines the position of the HARQ-ACK of the second control information in the semi-static HARQ-ACK codebook.
- the data processing device provided in this embodiment can implement the data processing method of the foregoing embodiment.
- the implementation principles and technical effects of the data processing device provided in this embodiment are similar to those in the foregoing embodiment, and will not be repeated here.
- the second control information uses the downlink control information DCI format of the downlink scheduling data to set or reinterpret part of the bit fields in the DCI format, or uses the DCI format of the uplink scheduling data to set or reinterpret part of the bits in the DCI format area.
- the second control information when the second control information uses the DCI format of the downlink scheduling data to set or reinterpret part of the bit fields in the DCI format, it includes at least one of the following definitions:
- One bit field does not include PUCCH resource indicator field, PDSCH to HARQ-ACK timing feedback field, DAI field, PDSCH time field Resource allocation domain and PDSCH frequency domain resource allocation domain.
- the second control information when the second control information uses the DCI format of the uplink scheduling data to set or reinterpret part of the bit fields in the DCI format, it includes at least one of the following definitions:
- One bit field in the DCI is reinterpreted as the HARQ-ACK priority for determining the second control information.
- One bit field does not include the first bit field, the second bit field, the third bit field, and the fourth bit field.
- the HARQ-ACK of the second control information is counted in the service sending the second control information. In the HARQ-ACK of the cell; or,
- the HARQ-ACK of the second control information is counted in the serving cell where the state transition is indicated by the second control information In the HARQ-ACK of the serving cell with the smallest or largest index; or,
- the HARQ-ACK of the second control information is associated with one serving cell, where one serving cell is the second control information Indicates the associated serving cell.
- the processing module 30 determines a PDSCH from the associated serving cell, and uses the PDSCH receiving position to determine the location of the second control information. The position of HARQ-ACK in the semi-static HARQ-ACK codebook.
- FIG. 8 shows a schematic structural diagram of still another data processing device provided by an embodiment.
- the data processing device may be configured in a second communication node. As shown in FIG. 8, it includes a receiving module 40.
- the receiving module 40 is configured to receive the second control information sent by the first communication node
- the second control information includes: information used to indicate that the status of the secondary cell serving the second communication node has changed; the second control information also includes at least one of the following information: used to indicate that the second control information is not used
- the hybrid automatic repeat request-acknowledgement information HARQ-ACK resource information of the second control information determine the interval from the time slot where the second control information is located to the time slot where the HARQ-ACK of the second control information is located Timing information, information that determines the interval timing from the sub-slot of the second control information to the sub-slot of the HARQ-ACK of the second control information, and determines the HARQ-ACK of the second control information in the dynamic HARQ-ACK codebook
- the position information, the HARQ-ACK priority information of the second control information determines the position of the HARQ-ACK of the second control information in the semi-static HARQ-ACK codebook.
- the data processing device provided in this embodiment can implement the data processing method of the foregoing embodiment.
- the implementation principles and technical effects of the data processing device provided in this embodiment are similar to those in the foregoing embodiment, and will not be repeated here.
- the second control information uses the downlink control information DCI format of the downlink scheduling data to set or reinterpret part of the bit fields in the DCI format, or uses the DCI format of the uplink scheduling data to set or reinterpret part of the bits in the DCI format area.
- the second control information when the second control information uses the DCI format of the downlink scheduling data to set or reinterpret part of the bit fields in the DCI format, it includes at least one of the following definitions:
- One bit field does not include PUCCH resource indicator field, PDSCH to HARQ-ACK timing feedback field, DAI field, PDSCH time field Resource allocation domain and PDSCH frequency domain resource allocation domain.
- the second control information when the second control information uses the DCI format of the uplink scheduling data to set or reinterpret part of the bit fields in the DCI format, it includes at least one of the following definitions:
- One bit field in the DCI is reinterpreted as the HARQ-ACK priority for determining the second control information.
- One bit field does not include the first bit field, the second bit field, the third bit field, and the fourth bit field.
- the HARQ-ACK of the second control information is counted in the service sending the second control information. In the HARQ-ACK of the cell; or,
- the HARQ-ACK of the second control information is counted in the serving cell where the state transition is indicated by the second control information In the HARQ-ACK of the serving cell with the smallest or largest index; or,
- the HARQ-ACK of the second control information is associated with one serving cell, where one serving cell is the second control information Indicates the associated serving cell.
- a PDSCH reception position determined in the associated serving cell is used to determine the HARQ-ACK of the second control information.
- the position in the semi-static HARQ-ACK codebook is used to determine the HARQ-ACK of the second control information.
- An embodiment of the present application further provides a communication node, including a processor, which is configured to implement a method as provided in any embodiment of the present application when a computer program is executed.
- the communication node may be the first communication node provided in any embodiment of the application, or may be the second power-on node provided in any embodiment of the application, which is not specifically limited in this application.
- the following embodiment provides a schematic structural diagram in which the communication node is a UE and a base station.
- FIG. 9 shows a schematic structural diagram of a UE provided by an embodiment.
- the UE can be implemented in various forms.
- the UE in this application can include, but is not limited to, mobile phones, smart phones, notebook computers, and digital broadcast receivers. , Personal Digital Assistant (PDA), Tablet PC (Portable Device, PAD), Portable Media Player (PMP), navigation device, vehicle terminal equipment, vehicle display terminal, vehicle electronic rearview mirror, etc.
- Mobile terminal equipment such as digital television (television, TV), desktop computer, etc.
- the UE 50 may include a wireless communication unit 51, an audio/video (Audio/Video, A/V) input unit 52, a user input unit 53, a sensing unit 54, an output unit 55, a memory 56, and an interface unit. 57.
- FIG. 9 shows a UE including various components, but it should be understood that it is not required to implement all of the illustrated components, and more or fewer components may be implemented instead.
- the wireless communication unit 51 allows radio communication between the UE 50 and the base station or network.
- the A/V input unit 52 is configured to receive audio or video signals.
- the user input unit 53 may generate key input data according to commands input by the user to control various operations of the UE 50.
- the sensing unit 54 detects the current state of the UE 50, the location of the UE 50, the presence or absence of the user's touch input to the UE 50, the orientation of the UE 50, the acceleration or deceleration movement and direction of the UE 50, and so on, and generates a signal for controlling the UE. Command or signal for 50 operations.
- the interface unit 57 is used as an interface through which at least one external device can connect to the UE 50.
- the output unit 55 is configured to provide output signals in a visual, audio, and/or tactile manner.
- the memory 56 may store software programs for processing and control operations executed by the processor 58, etc., or may temporarily store data that has been output or will be output.
- the memory 56 may include at least one type of storage medium.
- the UE 50 may cooperate with a network storage device that performs the storage function of the memory 56 through a network connection.
- the processor 58 generally controls the overall operation of the UE 50.
- the power supply unit 59 receives external power or internal power under the control of the processor 58 and provides appropriate power required to operate various elements and components.
- the processor 58 executes at least one functional application and data processing by running a program stored in the memory 56, for example, to implement the method provided in the embodiment of the present application.
- FIG. 10 shows a schematic structural diagram of a base station provided by an embodiment.
- the base station includes a processor 60, a memory 61, and a communication interface 62; the number of processors 60 in the base station may be one or more
- a processor 60 is taken as an example; the processor 60, the memory 61, and the communication interface 62 in the base station may be connected by a bus or other methods.
- the connection by a bus is taken as an example.
- the bus represents one or more of several types of bus structures, including a memory bus or a memory controller, a peripheral bus, a graphics acceleration port, a processor, or a local bus using any bus structure among multiple bus structures.
- the memory 61 can be configured to store software programs, computer-executable programs, and modules, such as program instructions/modules corresponding to the methods in the embodiments of the present application.
- the processor 60 executes at least one functional application and data processing of the base station by running the software programs, instructions, and modules stored in the memory 61, that is, realizes the above-mentioned data processing method.
- the memory 61 may include a program storage area and a data storage area.
- the program storage area may store an operating system and an application program required by at least one function; the data storage area may store data created according to the use of the terminal, and the like.
- the memory 61 may include a high-speed random access memory, and may also include a non-volatile memory, such as at least one magnetic disk storage device, a flash memory device, or other non-volatile solid-state storage devices.
- the memory 61 may include a memory remotely provided with respect to the processor 60, and these remote memories may be connected to the base station through a network. Examples of the aforementioned networks include, but are not limited to, the Internet, corporate intranets, networks, mobile communication networks, and combinations thereof.
- the communication interface 62 can be configured to receive and send data.
- the embodiments of the present application also provide a computer-readable storage medium, and the computer-readable storage medium stores a computer program, and the computer program implements the method provided in any embodiment of the present application when the computer program is executed by a processor.
- the computer storage media in the embodiments of the present application may adopt any combination of one or more computer-readable media.
- the computer-readable medium may be a computer-readable signal medium or a computer-readable storage medium.
- the computer-readable storage medium may be, for example, but not limited to, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, device, or device, or a combination of any of the above.
- Computer-readable storage media include (non-exhaustive list): electrical connections with one or more wires, portable computer disks, hard disks, random access memory (RAM), read-only memory (Read-Only Memory) , ROM), electrically erasable, programmable Read-Only Memory (EPROM), flash memory, optical fiber, compact Disc Read-Only Memory (CD-ROM), optical storage Components, magnetic storage devices, or any suitable combination of the above.
- a computer-readable storage medium may be any tangible medium that contains or stores a program, and the program may be used by or in combination with an instruction execution system, apparatus, or device.
- the computer-readable signal medium may include a data signal propagated in baseband or as a part of a carrier wave, and the computer-readable program code is carried in the data signal. This propagated data signal can take many forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination of the foregoing.
- the computer-readable signal medium may also be any computer-readable medium other than the computer-readable storage medium.
- the computer-readable medium may send, propagate, or transmit the program for use by or in combination with the instruction execution system, apparatus, or device .
- the program code contained on the computer-readable medium can be transmitted by any suitable medium, including but not limited to wireless, wire, optical cable, radio frequency (RF), etc., or any suitable combination of the foregoing.
- suitable medium including but not limited to wireless, wire, optical cable, radio frequency (RF), etc., or any suitable combination of the foregoing.
- the computer program code used to perform the operations of the present disclosure can be written in one or more programming languages or a combination of multiple programming languages.
- the programming languages include object-oriented programming languages-such as Java, Smalltalk, C++, Ruby, Go, also includes conventional procedural programming languages-such as "C" language or similar programming languages.
- the program code can be executed entirely on the user's computer, partly on the user's computer, executed as an independent software package, partly on the user's computer and partly executed on a remote computer, or entirely executed on the remote computer or server.
- the remote computer can be connected to the user's computer through any kind of network-including a network (Local Area Network, LAN) or a wide area network (Wide Area Network, WAN)-or, it can be connected to an external computer (for example, use an Internet service provider to connect via the Internet).
- a network Local Area Network, LAN
- WAN Wide Area Network
- user terminal encompasses any suitable type of wireless user equipment, such as a mobile phone, a portable data processing device, a portable web browser, or a vehicle-mounted mobile station.
- the various embodiments of the present application can be implemented in hardware or dedicated circuits, software, logic or any combination thereof.
- some aspects may be implemented in hardware, while other aspects may be implemented in firmware or software that may be executed by a controller, microprocessor, or other computing device, although the present application is not limited thereto.
- Computer program instructions can be assembly instructions, Instruction Set Architecture (ISA) instructions, machine instructions, machine-related instructions, microcode, firmware instructions, state setting data, or written in any combination of one or more programming languages Source code or object code.
- ISA Instruction Set Architecture
- the block diagram of any logic flow in the drawings of the present application may represent program steps, or may represent interconnected logic circuits, modules, and functions, or may represent a combination of program steps and logic circuits, modules, and functions.
- the computer program can be stored on the memory.
- the memory can be of any type suitable for the local technical environment and can be implemented using any suitable data storage technology, such as but not limited to read only memory (ROM), random access memory (RAM), optical storage devices and systems (digital multi-function optical discs) (Digital Video Disc, DVD) or CD disc) and so on.
- Computer-readable media may include non-transitory storage media.
- the data processor can be any type suitable for the local technical environment, such as but not limited to general-purpose computers, special-purpose computers, microprocessors, digital signal processors (Digital Signal Processors, DSP), application specific integrated circuits (ASICs) ), programmable logic devices (Field-Programmable Gate Array, FPGA) and processors based on multi-core processor architecture.
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Abstract
Description
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Claims (30)
- 一种数据处理方法,包括:第一通信节点向第二通信节点发送第一控制信息,所述第一控制信息用于激活或者去激活至少一个半静态传输,所述第一控制信息与第一半静态传输关联,所述至少一个半静态传输包括所述第一半静态传输。
- 根据权利要求1所述的方法,其中,当在所述第一控制信息用于去激活至少两个半静态传输,所述至少两个半静态传输具有相同的优先级,则所述第一控制信息的混合自动重传请求-确认信息HARQ-ACK在半静态HARQ-ACK码本中的位置与所述第一半静态传输的物理下行共享信道PDSCH关联;其中,所述第一半静态传输的索引在所有去激活的半静态传输的索引中最小;或者,所述第一半静态传输的索引在所有去激活的半静态传输的索引中最大;或者,所述第一半静态传输是所述第一控制信息携带的一个指示信息指示的,其中,所述指示信息为被去激活的至少两个半静态传输对应的PDSCH时域资源分配信息,或者,所述指示信息为被去激活的至少两个半静态传输的索引值被升序或降序后的顺序索引值。
- 根据权利要求1所述的方法,其中,当在所述第一控制信息用于去激活至少两个半静态传输,所述至少两个半静态传输具有不同的优先级,则所述第一控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置与所述第一半静态传输的PDSCH关联;其中,所述第一半静态传输为所有去激活的半静态传输中优先级最高的半静态传输;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最低的半静态传输;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最高的半静态传输、且所述第一半静态传输的索引在所有最高优先级的去激活的半静态传输的索引中最小;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最高的半静态传输、且所述第一半静态传输的索引在所有最高优先级的去激活的半静态传输的索引中最大;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最低的半静态传输、且所述第一半静态传输的索引在所有最低优先级的去激活的半静态传输的 索引中最小;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最低的半静态传输、且所述第一半静态传输的索引在所有最低优先级的去激活的半静态传输的索引中最大。
- 根据权利要求1所述的方法,其中,在至少两个半静态传输具有不同的优先级的情况下,所述第一通信节点配置高优先级的半静态传输的索引值小于低优先级的半静态传输的索引值,或者,所述第一通信节点配置高优先级的半静态传输的索引值大于低优先级的半静态传输的索引值。
- 根据权利要求1所述的方法,其中,在所述第一控制信息用于去激活至少两个半静态传输的情况下,所述第一控制信息的HARQ-ACK的优先级按照下面方式之一确认:根据所述第一控制信息携带的优先级指示信息确认;或者,根据被去激活的所述至少两个半静态传输中无线资源控制RRC信令配置的最高优先级的半静态传输的优先级确认;或者,根据所述第一控制信息携带的优先级指示信息和被去激活的所述至少两个半静态传输被RRC信令配置的优先级中的较高者的优先级确认,其中,在所述第一控制信息中未携带优先级指示信息的情况下,认为所述第一控制信息携带的优先级指示信息为低优先级;或者,在所述第一控制信息携带有优先级指示信息的情况下,按照所述第一控制信息携带的优先级指示信息确认;在所述第一控制信息未携带优先级指示信息的情况下,在被去激活的所述至少两个半静态传输被RRC信令配置了优先级的情况下,按照被去激活的所述至少两个半静态传输中被RRC信令配置的优先级中的高优先级确认;在被去激活的所述至少两个半静态传输未被RRC信令配置优先级的情况下,所述第一控制信息的HARQ-ACK被确认为低优先级;或者,在被去激活的所述至少两个半静态传输被RRC信令配置了优先级的情况下,按照被去激活的所述至少两个半静态传输中被RRC信令配置的优先级中的高优先级确认;在被去激活的所述至少两个半静态传输未被RRC信令配置优先级的情况下,所述第一控制信息的HARQ-ACK被确认为低优先级;其中,在一个半静态传输未被RRC信令配置优先级的情况下,确认所述半静态传输被RRC信令配置为低优先级。
- 根据权利要求1所述的方法,其中,当在所述第一控制信息用于激活至少两个半静态传输,所述至少两个半静 态传输具有不同的优先级,则所述第一控制信息携带的优先级指示信息是有效的,适用于所述至少两个半静态传输;或者,当在所述第一控制信息用于激活至少两个半静态传输,所述至少两个半静态传输具有不同的优先级,则所述第一控制信息携带的优先级指示信息是无效的,不适用于所述至少两个半静态传输;或者,当在所述第一控制信息用于激活至少两个半静态传输,所述至少两个半静态传输中存在未被RRC信令配置优先级的半静态传输,则所述未被RRC信令配置优先级的半静态传输的优先级根据所述第一控制信息携带的优先级指示信息确认;或者,当在所述第一控制信息用于激活至少两个半静态传输,要求所述至少两个半静态传输具有相同的RRC信令配置的优先级,则所述第一控制信息携带的优先级指示信息指示的优先级允许跟随或修改所述至少两个半静态传输的RRC信令配置的优先级。
- 根据权利要求1所述的方法,其中,当在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级,则在所述第一控制信息未携带优先级指示信息的情况下,所述一个半静态传输的优先级按照RRC信令配置的优先级确认;或者,当在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输未被RRC信令配置优先级,则在所述第一控制信息未携带优先级指示信息的情况下,所述一个半静态传输的优先级按照高的优先级确认或按照低的优先级确认;或者,当在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级,则在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息确认;或者,当在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输未被RRC信令配置优先级,则在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息确认;或者,当在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级,则在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息和RRC信令配置的优先级中较高者或较低者确认。
- 根据权利要求1所述的方法,其中,当在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级,则在所述第一控制信息未携带优先级指示信息的情况下,所述一个半静态传输的优先级按照RRC信令配置的优先级确认;或者,当在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输未被RRC信令配置优先级,则在所述第一控制信息未携带优先级指示信息的情况下,所述一个半静态传输的优先级按照高的优先级确认或按照低的优先级确认;或者,当在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级,则在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息确认;或者,当在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输未被RRC信令配置优先级,则在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息确认;或者,当在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级,则在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息和RRC信令配置的优先级中较高者或较低者确认。
- 一种数据处理方法,包括:第二通信节点接收第一通信节点发送的第一控制信息,所述第一控制信息用于激活或者去激活至少一个半静态传输,所述第一控制信息与第一半静态传输关联,所述至少一个半静态传输包括所述第一半静态传输。
- 根据权利要求9所述的方法,其中,当在所述第一控制信息用于去激活至少两个半静态传输,所述至少两个半静态传输具有相同的优先级,则所述第一控制信息的混合自动重传请求-确认信息HARQ-ACK在半静态HARQ-ACK码本中的位置与所述第一半静态传输的物理下行共享信道PDSCH关联;其中,所述第一半静态传输的索引在所有去激活的半静态传输的索引中最小;或者,所述第一半静态传输的索引在所有去激活的半静态传输的索引中最大;或者,所述第一半静态传输是所述第一控制信息携带的一个指示信息指示的,其中,所述指示信息为被去激活的至少两个半静态传输对应的PDSCH时域资源分配信息,或者,所述指示信息为被去激活的至少两个半静态传输的索引值被升序或降序后的顺序索引值。
- 根据权利要求9所述的方法,其中,当在所述第一控制信息用于去激活至少两个半静态传输,所述至少两个半静态传输具有不同的优先级,则所述第一控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置与所述第一半静态传输的PDSCH关联;其中,所述第一半静态传输为所有去激活的半静态传输中优先级最高的半静态传输;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最低的半静态传输;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最高的半静态传输、且所述第一半静态传输的索引在所有最高优先级的去激活的半静态传输的索引中最小;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最高的半静态传输、且所述第一半静态传输的索引在所有最高优先级的去激活的半静态传输的索引中最大;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最低的半静态传输、且所述第一半静态传输的索引在所有最低优先级的去激活的半静态传输的索引中最小;或者,所述第一半静态传输为所有去激活的半静态传输中优先级最低的半静态传输、且所述第一半静态传输的索引在所有最低优先级的去激活的半静态传输的索引中最大。
- 根据权利要求9所述的方法,其中,在至少两个半静态传输具有不同的优先级的情况下,高优先级的半静态传输的索引值小于低优先级的半静态传输的索引值,或者,高优先级的半静态传输的索引值大于低优先级的半静态传输的索引值。
- 根据权利要求9所述的方法,其中,在所述第一控制信息用于去激活至少两个半静态传输的情况下,所述第一控制信息的HARQ-ACK的优先级按照下面方式之一确认:根据所述第一控制信息携带的优先级指示信息确认;或者,根据被去激活的所述至少两个半静态传输中无线资源控制RRC信令配置的最高优先级的半静态传输的优先级确认;或者,根据所述第一控制信息携带的优先级指示信息和被去激活的所述至少两个半静态传输被RRC信令配置的优先级中的较高者的优先级确认,其中,在所述第一控制信息中未携带优先级指示信息的情况下,认为所述第一控制信息携带的优先级指示信息为低优先级;或者,在所述第一控制信息携带有优先级指示信息的情况下,按照所述第一控制信息携带的优先级指示信息确认;在所述第一控制信息未携带优先级指示信息的情况下,在被去激活的所述至少两个半静态传输被RRC信令配置了优先级的情况下,按照被去激活的所述至少两个半静态传输中被RRC信令配置的优先级中的高优先级确认;在被去激活的所述至少两个半静态传输未被RRC信令配置优先级的情况下,所述第一控制信息的HARQ-ACK被确认为低优先级;或者,在被去激活的所述至少两个半静态传输被RRC信令配置了优先级的情况下,按照被去激活的所述至少两个半静态传输中被RRC信令配置的优先级中的高优先级确认;在被去激活的所述至少两个半静态传输未被RRC信令配置优先级的情况下,所述第一控制信息的HARQ-ACK被确认为低优先级;其中,在一个半静态传输未被RRC信令配置优先级的情况下,确认所述半静态传输被RRC信令配置为低优先级。
- 根据权利要求9所述的方法,其中,在所述第一控制信息用于激活至少两个半静态传输,且所述至少两个半静态传输具有不同的优先级的情况下,所述第一控制信息携带的优先级指示信息是有效的,适用于所述至少两个半静态传输;或者,在所述第一控制信息用于激活至少两个半静态传输,且所述至少两个半静态传输具有不同的优先级的情况下,所述第一控制信息携带的优先级指示信息是无效的,不适用于所述至少两个半静态传输;或者,在所述第一控制信息用于激活至少两个半静态传输,且所述至少两个半静态传输中存在未被RRC信令配置优先级的半静态传输的情况下,所述未被RRC信令配置优先级的半静态传输的优先级根据所述第一控制信息携带的优先级指示信息确认;或者,在所述第一控制信息用于激活至少两个半静态传输,且要求所述至少两个半静态传输具有相同的RRC信令配置的优先级的情况下,所述第一控制信息携带的优先级指示信息指示的优先级允许跟随或修改所述至少两个半静态传输的RRC信令配置的优先级。
- 根据权利要求9所述的方法,其中,在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级的情况下,在所述第一控制信息未携带优先级指示信息的情况下,所述一个半静态传输的优先级按照RRC信令配置的优先级确认;或者,在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输未被RRC信令配置优先级的情况下,在所述第一控制信息未携带优先级指示信息的情况下,所述一个半静态传输的优先级按照高的优先级确认或按照低的优先级确认;或者,在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级的情况下,在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息确认;或者,在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输未被RRC信令配置优先级的情况下,在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息确认;或者,在所述第一控制信息用于激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级的情况下,在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息和RRC信令配置的优先级中较高者或较低者确认。
- 根据权利要求9所述的方法,其中,在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级的情况下,在所述第一控制信息未携带优先级指示信息的情况下,所述一个半静态传输的优先级按照RRC信令配置的优先级确认;或者,在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输未被RRC信令配置优先级的情况下,在所述第一控制信息未携带优先级指示信息的情况下,所述一个半静态传输的优先级按照高的优先级确认或按照低的优先级确认;或者,在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级的情况下,在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指 示信息确认;或者,在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输未被RRC信令配置优先级的情况下,在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息确认;或者,在所述第一控制信息用于去激活一个半静态传输,所述一个半静态传输被RRC信令配置了优先级的情况下,在所述第一控制信息携带优先级指示信息的情况下,所述一个半静态传输的优先级按照所述第一控制信息携带的优先级指示信息和RRC信令配置的优先级中较高者或较低者确认。
- 一种数据处理方法,包括:第一通信节点配置并向第二通信节点发送第二控制信息;其中,所述第二控制信息包括:用于指示为所述第二通信节点服务的辅小区的状态发生转换的信息;所述第二控制信息还包括下述信息中的至少之一:用于指示所述第二控制信息不用于调度用户数据的信息,确定所述第二控制信息的混合自动重传请求-确认信息HARQ-ACK资源的信息,确定所述第二控制信息所在时隙到所述第二控制信息的HARQ-ACK所在时隙的间隔定时的信息,确定所述第二控制信息所在子时隙到所述第二控制信息的HARQ-ACK所在子时隙的间隔定时的信息,确定所述第二控制信息的HARQ-ACK在动态HARQ-ACK码本中的位置的信息,所述第二控制信息的HARQ-ACK的优先级信息,确定所述第二控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置的信息。
- 根据权利要求17所述的方法,其中,所述第二控制信息利用下行调度数据的下行控制信息DCI格式设置或重解释所述DCI格式中的部分比特域,或者,所述第二控制信息利用上行调度数据的DCI格式设置或重解释所述DCI格式中的部分比特域。
- 根据权利要求18所述的方法,其中,在所述第二控制信息利用下行调度数据的DCI格式设置或重解释所述DCI格式中的部分比特域的情况下,包括下述定义中的至少之一:将所述DCI中的物理上行控制信道PUCCH资源指示域重用;将所述DCI中的物理下行共享信道PDSCH到HARQ-ACK定时反馈域重解释为所述第二控制信息所在时隙到所述第二控制信息的HARQ-ACK所在时隙的间隔定时;将所述DCI中的PDSCH到HARQ-ACK定时反馈域重解释为所述第二控制 信息所在子时隙到所述第二控制信息的HARQ-ACK所在子时隙的间隔定时;将所述DCI中的下行授权索引DAI域重解释为用于确定所述第二控制信息的HARQ-ACK在动态HARQ-ACK码本中的位置;将所述DCI中的PDSCH时域资源分配域重解释为用于确定所述第二控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置;将所述DCI中的PDSCH频域资源分配域设置为约定值,所述约定值用于表示所述下行调度数据的DCI格式中的比特域用做所述第二控制信息;将所述DCI中的一个比特域重解释为用于确定所述第二控制信息的HARQ-ACK的优先级,所述一个比特域不包括所述PUCCH资源指示域、所述PDSCH到HARQ-ACK定时反馈域、所述DAI域、所述PDSCH时域资源分配域和所述PDSCH频域资源分配域。
- 根据权利要求18所述的方法,其中,在所述第二控制信息利用上行调度数据的DCI格式设置或重解释所述DCI格式中的部分比特域的情况下,包括下述定义中的至少之一:将所述DCI中的第一比特域重解释为PUCCH资源指示域;将所述DCI中的第二比特域重解释为所述第二控制信息所在时隙到所述第二控制信息的HARQ-ACK所在时隙的间隔定时;将所述DCI中的第二比特域重解释为所述第二控制信息所在子时隙到所述第二控制信息的HARQ-ACK所在子时隙的间隔定时;将所述DCI中的第三比特域重解释为计数的DAI域,用于确定所述第二控制信息的HARQ-ACK在动态HARQ-ACK码本中的位置;将所述DCI中的第四比特域重解释为一个PDSCH时域资源分配域,用于确定所述第二控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置;将所述DCI中的PUSCH时频资源分配域重解释为用于分配所述第二控制信息的HARQ-ACK的时频资源域;将所述DCI中的一个比特域重解释为用于确定所述第二控制信息的HARQ-ACK的优先级,所述一个比特域不包括所述第一比特域、所述第二比特域、所述第三比特域、所述第四比特域和所述PUSCH时频资源分配域。
- 根据权利要求17所述的方法,其中,在所述第二控制信息用于指示至少两个为所述第二通信节点服务的辅小区的状态发生转换的情况下,所述第二控制信息的HARQ-ACK被统计在发送所述第二控制信息的服务小区的HARQ-ACK中;或者,在所述第二控制信息用于指示至少两个为所述第二通信节点服务的辅小区的状态发生转换的情况下,所述第二控制信息的HARQ-ACK被统计在被所述第二控制信息指示的发生状态转换的服务小区中索引最小或最大的服务小区的HARQ-ACK中;或者,在所述第二控制信息用于指示至少两个为所述第二通信节点服务的辅小区的状态发生转换的情况下,所述第二控制信息的HARQ-ACK与一个服务小区关联,其中,所述一个服务小区是所述第二控制信息中指示关联的服务小区。
- 根据权利要求21所述的方法,其中,在所述第二控制信息的HARQ-ACK与半静态HARQ-ACK码本结合的情况下,所述第一通信节点从关联的服务小区中确定一个PDSCH,并利用所述PDSCH的接收位置确定所述第二控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置。
- 一种数据处理方法,包括:第二通信节点接收第一通信节点发送的第二控制信息;其中,所述第二控制信息包括:用于指示为所述第二通信节点服务的辅小区的状态发生转换的信息;所述第二控制信息还包括下述信息中的至少之一:用于指示所述第二控制信息不用于调度用户数据的信息,确定所述第二控制信息的混合自动重传请求-确认信息HARQ-ACK资源的信息,确定所述第二控制信息所在时隙到所述第二控制信息的HARQ-ACK所在时隙的间隔定时的信息,确定所述第二控制信息所在子时隙到所述第二控制信息的HARQ-ACK所在子时隙的间隔定时的信息,确定所述第二控制信息的HARQ-ACK在动态HARQ-ACK码本中的位置的信息,所述第二控制信息的HARQ-ACK的优先级信息,确定所述第二控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置的信息。
- 根据权利要求23所述的方法,其中,所述第二控制信息利用下行调度数据的下行控制信息DCI格式设置或重解释所述DCI格式中的部分比特域,或者,所述第二控制信息利用上行调度数据的DCI格式设置或重解释所述DCI格式中的部分比特域。
- 根据权利要求24所述的方法,其中,在所述第二控制信息利用下行调度数据的DCI格式设置或重解释所述DCI格式中的部分比特域的情况下,包括下述定义中的至少之一:将所述DCI中的物理上行控制信道PUCCH资源指示域重用;将所述DCI中的物理下行共享信道PDSCH到HARQ-ACK定时反馈域重解 释为所述第二控制信息所在时隙到所述第二控制信息的HARQ-ACK所在时隙的间隔定时;将所述DCI中的PDSCH到HARQ-ACK定时反馈域重解释为所述第二控制信息所在子时隙到所述第二控制信息的HARQ-ACK所在子时隙的间隔定时;将所述DCI中的下行授权索引DAI域重解释为用于确定所述第二控制信息的HARQ-ACK在动态HARQ-ACK码本中的位置;将所述DCI中的PDSCH时域资源分配域重解释为用于确定所述第二控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置;将所述DCI中的PDSCH频域资源分配域设置为约定值,所述约定值用于表示所述下行调度数据的DCI格式中的比特域用做所述第二控制信息;将所述DCI中的一个比特域重解释为用于确定所述第二控制信息的HARQ-ACK的优先级,所述一个比特域不包括所述PUCCH资源指示域、所述PDSCH到HARQ-ACK定时反馈域、所述DAI域、所述PDSCH时域资源分配域和所述PDSCH频域资源分配域。
- 根据权利要求24所述的方法,其中,在所述第二控制信息利用上行调度数据的DCI格式设置或重解释所述DCI格式中的部分比特域的情况下,包括下述定义中的至少之一:将所述DCI中的第一比特域重解释为PUCCH资源指示域;将所述DCI中的第二比特域重解释为所述第二控制信息所在时隙到所述第二控制信息的HARQ-ACK所在时隙的间隔定时;将所述DCI中的第二比特域重解释为所述第二控制信息所在子时隙到所述第二控制信息的HARQ-ACK所在子时隙的间隔定时;将所述DCI中的第三比特域重解释为计数的DAI域,用于确定所述第二控制信息的HARQ-ACK在动态HARQ-ACK码本中的位置;将所述DCI中的第四比特域重解释为一个PDSCH时域资源分配域,用于确定所述第二控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置;将所述DCI中的PUSCH时频资源分配域重解释为用于分配所述第二控制信息的HARQ-ACK的时频资源域;将所述DCI中的一个比特域重解释为用于确定所述第二控制信息的HARQ-ACK的优先级,所述一个比特域不包括所述第一比特域、所述第二比特域、所述第三比特域、所述第四比特域和所述PUSCH时频资源分配域。
- 根据权利要求23所述的方法,其中,在所述第二控制信息用于指示至少两个为所述第二通信节点服务的辅小区的状态发生转换的情况下,所述第二控制信息的HARQ-ACK被统计在发送所述第二控制信息的服务小区的HARQ-ACK中;或者,在所述第二控制信息用于指示至少两个为所述第二通信节点服务的辅小区的状态发生转换的情况下,所述第二控制信息的HARQ-ACK被统计在被所述第二控制信息指示的发生状态转换的服务小区中索引最小或最大的服务小区的HARQ-ACK中;或者,在所述第二控制信息用于指示至少两个为所述第二通信节点服务的辅小区的状态发生转换的情况下,所述第二控制信息的HARQ-ACK与一个服务小区关联,其中,所述一个服务小区是所述第二控制信息中指示关联的服务小区。
- 根据权利要求27所述的方法,其中,在所述第二控制信息的HARQ-ACK与半静态HARQ-ACK码本结合的情况下,关联的服务小区中确定出的一个PDSCH的接收位置用于确定所述第二控制信息的HARQ-ACK在半静态HARQ-ACK码本中的位置。
- 一种通信节点,包括:处理器,所述处理器用于在执行计算机程序时实现如权利要求1-28中任一项所述的数据处理方法。
- 一种计算机可读存储介质,存储有计算机程序,所述计算机程序被处理器执行时实现如权利要求1-28中任一项所述的数据处理方法。
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| JP2022526440A JP7607043B2 (ja) | 2019-11-08 | 2020-11-09 | データ処理方法、通信ノード、およびコンピュータ読み取り可能な記憶媒体 |
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| CN114258160B (zh) * | 2020-09-24 | 2025-03-14 | 北京紫光展锐通信技术有限公司 | 资源配置方法、网络节点及计算机可读存储介质 |
| CN114765484B (zh) * | 2021-01-15 | 2025-04-18 | 北京紫光展锐通信技术有限公司 | Harq-ack传输方法、装置、用户侧设备和存储介质 |
| BR112023023079A2 (pt) * | 2021-05-06 | 2024-01-30 | Beijing Xiaomi Mobile Software Co Ltd | Método e dispositivo de atribuição de recursos no domínio do tempo |
| WO2023272723A1 (en) * | 2021-07-02 | 2023-01-05 | Nec Corporation | Method, device and computer storage medium of communication |
| WO2024168765A1 (zh) * | 2023-02-16 | 2024-08-22 | 北京小米移动软件有限公司 | 一种通信方法、装置以及可读存储介质 |
| CN116438892B (zh) * | 2023-02-17 | 2026-04-10 | 北京小米移动软件有限公司 | 信息处理方法及装置、存储介质 |
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Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20180324773A1 (en) * | 2017-05-05 | 2018-11-08 | Samsung Electronics Co., Ltd. | Method and apparatus for receiving downlink control channel in wireless communication system |
| US20190124558A1 (en) * | 2017-10-25 | 2019-04-25 | Qualcomm Incorporated | Secondary cell activation and deactivation enhancements in new radio |
| WO2019083277A1 (en) * | 2017-10-24 | 2019-05-02 | Lg Electronics Inc. | METHOD AND APPARATUS FOR PERFORMING A RANDOM ACCESS PROCEDURE IN A WIRELESS COMMUNICATION SYSTEM |
| CN111093276A (zh) * | 2019-11-08 | 2020-05-01 | 中兴通讯股份有限公司 | 一种数据处理方法、通信节点及计算机可读存储介质 |
Family Cites Families (18)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP2166804A1 (en) * | 2008-09-17 | 2010-03-24 | Panasonic Corporation | Deactivation of semi-persistent resource allocations in a mobile communication network |
| CN102404802B (zh) * | 2010-09-16 | 2015-03-11 | 电信科学技术研究院 | 一种应答信息的传输方法、基站及用户终端 |
| CN104115540A (zh) * | 2012-03-02 | 2014-10-22 | 诺基亚(中国)投资有限公司 | 用于协同多点操作的pucch资源管理机制 |
| WO2017023146A1 (en) * | 2015-08-06 | 2017-02-09 | Innovative Technology Lab Co., Ltd. | Apparatus and method for transmitting uplink control information through a physical uplink control channel |
| WO2017161541A1 (zh) * | 2016-03-24 | 2017-09-28 | 华为技术有限公司 | 下行数据的混合式自动重传请求反馈方法以及装置 |
| CN109479267B (zh) * | 2016-08-12 | 2021-06-15 | 华为技术有限公司 | 半静态传输方法及装置 |
| CN109474371B (zh) * | 2017-09-08 | 2024-01-19 | 北京三星通信技术研究有限公司 | 一种harq-ack信息反馈方法和设备 |
| CN111247442B (zh) * | 2017-10-24 | 2022-04-26 | 三菱电机株式会社 | 异常诊断装置、异常诊断方法及异常诊断系统 |
| CN111837352A (zh) * | 2018-01-12 | 2020-10-27 | 瑞典爱立信有限公司 | 半持续csi报告的激活和去激活 |
| CN112910613B (zh) * | 2018-02-13 | 2022-05-17 | 中兴通讯股份有限公司 | 一种信息处理方法、装置、用户设备、基站和存储介质 |
| JP7197522B2 (ja) * | 2018-02-15 | 2022-12-27 | 株式会社Nttドコモ | 端末、無線通信方法、基地局及びシステム |
| US11039464B2 (en) * | 2018-02-15 | 2021-06-15 | Apple Inc. | Simultaneous HARQ-ACK feedback and uplink transmission without dynamic grant |
| KR102740279B1 (ko) * | 2019-01-11 | 2024-12-09 | 삼성전자 주식회사 | 무선 통신 시스템에서 피드백 송수신 방법 및 장치 |
| CN111726204B (zh) * | 2019-03-22 | 2023-07-28 | 北京三星通信技术研究有限公司 | 半静态调度数据的harq-ack反馈的方法、ue、基站、设备及介质 |
| KR102868523B1 (ko) | 2019-04-01 | 2025-10-13 | 삼성전자 주식회사 | 무선 통신 시스템에서 비승인 기반 데이터 전송 방법 및 장치 |
| US11509424B2 (en) * | 2019-04-01 | 2022-11-22 | Samsung Electronics Co., Ltd. | Method and apparatus for grant free based data transmission in wireless communication system |
| JP6963586B2 (ja) * | 2019-04-26 | 2021-11-10 | シャープ株式会社 | 基地局装置、端末装置、および通信方法 |
| CN114557076A (zh) * | 2019-11-07 | 2022-05-27 | 富士通株式会社 | 无线通信方法、装置和系统 |
-
2019
- 2019-11-08 CN CN202210964750.5A patent/CN115150959B/zh active Active
- 2019-11-08 CN CN201911090295.5A patent/CN111093276A/zh active Pending
-
2020
- 2020-11-06 TW TW109138918A patent/TWI849254B/zh active
- 2020-11-09 KR KR1020227018256A patent/KR20220097925A/ko active Pending
- 2020-11-09 EP EP20885949.6A patent/EP4057742A4/en active Pending
- 2020-11-09 JP JP2022526440A patent/JP7607043B2/ja active Active
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-
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- 2022-05-06 US US17/738,477 patent/US12127244B2/en active Active
-
2024
- 2024-10-21 US US18/921,713 patent/US20250048419A1/en active Pending
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20180324773A1 (en) * | 2017-05-05 | 2018-11-08 | Samsung Electronics Co., Ltd. | Method and apparatus for receiving downlink control channel in wireless communication system |
| WO2019083277A1 (en) * | 2017-10-24 | 2019-05-02 | Lg Electronics Inc. | METHOD AND APPARATUS FOR PERFORMING A RANDOM ACCESS PROCEDURE IN A WIRELESS COMMUNICATION SYSTEM |
| US20190124558A1 (en) * | 2017-10-25 | 2019-04-25 | Qualcomm Incorporated | Secondary cell activation and deactivation enhancements in new radio |
| CN111093276A (zh) * | 2019-11-08 | 2020-05-01 | 中兴通讯股份有限公司 | 一种数据处理方法、通信节点及计算机可读存储介质 |
Non-Patent Citations (5)
| Title |
|---|
| ASIA PACIFIC TELECOM: "Remaining issues on DL SPS enhancements", 3GPP DRAFT; R1-2000776, 3RD GENERATION PARTNERSHIP PROJECT (3GPP), MOBILE COMPETENCE CENTRE ; 650, ROUTE DES LUCIOLES ; F-06921 SOPHIA-ANTIPOLIS CEDEX ; FRANCE, vol. RAN WG1, no. e-Meeting; 20200224 - 20200306, 14 February 2020 (2020-02-14), Mobile Competence Centre ; 650, route des Lucioles ; F-06921 Sophia-Antipolis Cedex ; France, XP051853058 * |
| HUAWEI, HISILICON: "Low latency of SCell activation", 3GPP DRAFT; R1-1903992, 3RD GENERATION PARTNERSHIP PROJECT (3GPP), MOBILE COMPETENCE CENTRE ; 650, ROUTE DES LUCIOLES ; F-06921 SOPHIA-ANTIPOLIS CEDEX ; FRANCE, vol. RAN WG1, no. Xi’an, China; 20190408 - 20190412, 7 April 2019 (2019-04-07), Mobile Competence Centre ; 650, route des Lucioles ; F-06921 Sophia-Antipolis Cedex ; France, XP051699403 * |
| LG ELECTRONICS: "Summary#2 of 7.2.6.7 Others", 3GPP DRAFT; R1-1911554 SUMMARY2 OF 7.2.6.7 OTHERS, 3RD GENERATION PARTNERSHIP PROJECT (3GPP), MOBILE COMPETENCE CENTRE ; 650, ROUTE DES LUCIOLES ; F-06921 SOPHIA-ANTIPOLIS CEDEX ; FRANCE, vol. RAN WG1, no. Chongqing, China; 20191014 - 20191020, 22 October 2019 (2019-10-22), Mobile Competence Centre ; 650, route des Lucioles ; F-06921 Sophia-Antipolis Cedex ; France, XP051798818 * |
| See also references of EP4057742A4 |
| ZTE: "Other enhancements for Rel-16 URLLC", 3GPP DRAFT; R1-1911969, 3RD GENERATION PARTNERSHIP PROJECT (3GPP), MOBILE COMPETENCE CENTRE ; 650, ROUTE DES LUCIOLES ; F-06921 SOPHIA-ANTIPOLIS CEDEX ; FRANCE, vol. RAN WG1, no. Reno, USA; 20191118 - 20191122, 9 November 2019 (2019-11-09), Mobile Competence Centre ; 650, route des Lucioles ; F-06921 Sophia-Antipolis Cedex ; France, XP051823150 * |
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| TW202121923A (zh) | 2021-06-01 |
| EP4057742A4 (en) | 2023-11-15 |
| US12127244B2 (en) | 2024-10-22 |
| TWI849254B (zh) | 2024-07-21 |
| CN111093276A (zh) | 2020-05-01 |
| EP4057742A1 (en) | 2022-09-14 |
| JP7607043B2 (ja) | 2024-12-26 |
| JP2023500379A (ja) | 2023-01-05 |
| US20250048419A1 (en) | 2025-02-06 |
| US20220330279A1 (en) | 2022-10-13 |
| CN115150959B (zh) | 2025-03-28 |
| KR20220097925A (ko) | 2022-07-08 |
| CN115150959A (zh) | 2022-10-04 |
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