Abstract:
This application provides an in-vehicle communications system used in a vehicle. The in-vehicle communications system includes a control device, a plurality of gateway devices, and a plurality of communication endpoints. Each gateway device is communicatively coupled to the control device, and each gateway device is communicatively coupled to at least two other gateway devices. Each gateway device is further communicatively coupled to at least one communication endpoint. A gateway device or a controller is configured to: when receiving communication data of end-to-end communication, route the communication data by using a first communication link indicated by a local routing policy, and if the first communication link is abnormal, route a part or all of the communication data by using a second communication link. The system may be used in the field of assisted driving and self-driving.
Abstract:
Embodiments of the present invention disclose a method and an apparatus for retrieving transmission opportunity control in reverse direction grant. The method includes: obtaining, by a reverse direction responder (RD responder), a TXOP control from a reverse direction initiator (RD initiator); enabling, by the RD responder, a multi-user multiple-input multiple-output (MU-MIMO) mode; sending, by the RD responder, a frame to a plurality of stations concurrently in a TXOP period, the plurality of stations comprise the RD initiator; wherein the frame carries information that only requires the RD initiator to send back only a single acknowledgement in the TXOP period to return the TXOP control.
Abstract:
Embodiments of the present invention provide a network offload method and apparatus, where the method includes: receiving, by a first network controller, network state information of a terminal, where there is at least one terminal, the network state information is state information of the terminal on at least one corresponding access network, and the first network controller is a network controller of a first access network; generating, by the first network controller, an offload policy for the terminal according to the network state information; and sending, by the first network controller, the offload policy to the terminal; and/or sending the offload policy to an access device of the at least one access network, so that a network-side device or the terminal performs offload according to the offload policy and the network side can implement control on terminal offloading.
Abstract:
Embodiments of the present invention disclose a method and an apparatus for retrieving transmit opportunity control in reverse direction grant, so that a conflict occurring between a case where an RD Initiator continues sending another frame to an RD Responder after retrieving TXOP control and a case where a terminal other than the RD Initiator sends a block acknowledgement to the RD Responder can be avoided. The method provided in the embodiments of the present invention includes: when an RD Initiator fails to correctly demodulate a frame sent by an RD Responder, retrieving, by the RD Initiator, TXOP control by using a PIFS if it is impossible for the RD Responder to enable an MU-MIMO mode, and retrieving, by the RD Initiator, the TXOP control by using a duration if it is possible for the RD Responder to enable the MU-MIMO mode, where the duration is longer than the PIFS.
Abstract:
When an access point notifies a user equipment of a communications network supported by the access point, the access point also notifies the user equipment of priority information of the access point, so that the user equipment can select an access point that an operator expects the UE to select, to be connected to the communications network, thereby avoiding inconsistency between an access point, which is randomly selected by the user equipment to be connected to a communications network, and an access point that a communications network operator expects the UE to select.
Abstract:
A line coding method includes generating and sending a target code block, where the target code block includes an indicator bit and a payload, the indicator bit includes a first value, a second value, a third value, or a fourth value, the first value is used to indicate that the payload includes the first segment of a data frame, the second value is used to indicate that the payload includes an intermediate segment of the data frame, the third value indicates that the payload includes the last segment of the data frame, and the fourth value is used to indicate that the payload includes non-data information.
Abstract:
A communication link initialization method includes that a master node sends a first information frame to a slave node. The first information frame includes first synchronization information. The slave node implements synchronization with the master node based on the first synchronization information. The slave node sends a second information frame to the master node. The second information frame includes second synchronization information. The master node implements synchronization with the slave node based on the second synchronization information. The master node sends a third information frame to the slave node. The third information frame is used to indicate a first training information frame. The slave node trains a link between the master node and the slave node based on the third information frame. The slave node sends a fourth information frame to the master node.
Abstract:
A resource configuration method which may be applied to self-driving or the field of self driving, and in particular, relates to short-range communication in a cockpit domain includes: determining a first time-frequency resource used by at least one second apparatus; determining a target time-frequency resource used by the at least one second apparatus; and sending first information, where the first information is used to indicate at least one of a first time domain resource offset and a first frequency domain resource offset, the first time domain resource offset is an offset from the first time-frequency resource to the target time-frequency resource in time domain, and/or the first frequency domain resource offset is an offset from the first time-frequency resource to the target time-frequency resource in frequency domain. Embodiments of this application can implement quick configuration of time-frequency resources, and improve resource configuration efficiency.
Abstract:
A data transmission method includes generating a first code block, where the first code block includes a first load and a first redundancy code, the first load includes N second code blocks, the first redundancy code is used to perform error correction on the first load, an ith second code block includes a second load and a second redundancy code, the second redundancy code is used to perform error detection on the second load in the ith second code block, a value of i is an integer ranging from 1 to N, and N is an integer greater than or equal to 1; and sending the first code block to a receive end.
Abstract:
A vehicle temperature control system includes an in-vehicle control unit temperature control flow path, a battery temperature control flow path, a heat exchange unit configured to provide temperature control fluid for the in-vehicle control unit temperature control flow path and the battery temperature control flow path, and a control valve unit configured to control the in-vehicle control unit temperature control flow path and the battery temperature control flow path to be connected in parallel or series.