Abstract:
A device may include a processor configured to extract semantic information from received data, generate one or more data elements based on the extracted semantic information for an instance of time, generate metadata associated with the generated one or more data elements, schedule a transmission of the one or more data elements and the metadata according to a scheduling configuration, and encode scheduling information indicating the scheduling configuration for the transmission.
Abstract:
A communication device for a vehicle to communicate features about the vehicle's environment includes one or more processors configured to receive a communication from another device, wherein the communication includes a global reference coordinate system for an area covered by the other device and a number of allowed transmissions to be sent from the vehicle; transform stored data about the vehicle's environment based on the global reference coordinate system; divide the transformed stored data into a plurality of subsets of data; and select one or more subsets of data from the plurality of subsets for transmission according to the number of allowed transmissions.
Abstract:
A controller is provided. The controller comprises a processor configured to determine multiple power saving modes based on a power saving model of a network communicative road sensing system and on a power saving target assigned to the road sensing system; the multiple power saving modes comprising a first power saving mode for a first power consuming subsystem of the road sensing system and a second power saving mode for a second power consuming subsystem of the road sensing system; generate a recommendation for the road sensing system to operate in accordance with the multiple power saving modes.
Abstract:
Disclosed herein is a roadside unit with a radio frontend port configured to receive a first signal representing a radiofrequency transmission according to a first radio communication protocol, to receive a second signal representing a radiofrequency transmission according to a second radio communication protocol. A first processing subsystem configured to execute a first baseband process of the first radio communication protocol on the first signal and to generate a first output signal as an output of the first baseband process. A second processing subsystem configured to execute a baseband process of the second radio communication protocol on the second signal and to generate a second output signal as an output of the second baseband process. The first processing subsystem is a first software containerization or a first machine virtualization of the processor, wherein the second processing subsystem is a second software containerization or a second machine virtualization of the processor.
Abstract:
Disclosed embodiments include technologies for improving safety mechanisms in computer assisted and/or automated driving (CA/AD) vehicles for protecting vulnerable road users (VRUs). Embodiments include VRU clustering mechanisms, VRU profile awareness mechanisms for ITS-Ss, and VRU Maneuver Coordination Mechanisms for Collision Risk Analysis and Collision Avoidance. Other embodiments are described and/or claimed.
Abstract:
Methods and apparatuses for communicating in a wireless network include receiving full and differential System Information Blocks (SIBs) and updating a parameter that has changed based on the differential SIB. Further apparatuses include control circuitry to generate a first SIB and second SIB, the second SIB indicating information that has changed. Further, a method includes generating a full SIB and generating a differential SIB based on updated parameters.
Abstract:
The present disclosure is related to Intelligent Transport Systems (ITS), and in particular, to Vulnerable Road User (VRU) basic services (VBS) of a VRU ITS Station (ITS-S). Implementations of how the VBS is arranged within the facilities layer of an ITS-S, different conditions for VRU Awareness Message (VAM) dissemination, and format and coding rules of the VAM generation.
Abstract:
The present disclosure is related to Intelligent Transport Systems (ITS), and in particular, to service dissemination basic services (SDBS) and/or collective perception service (CPS) of an ITS Station (ITS-S). Implementations of how the SDBS and/or CPS is arranged within the facilities layer of an ITS-S, different conditions for service dissemination messages (SDMs) and/or collective perception message (CPM) dissemination, and format and coding rules of the SDM/CPS generation are provided.
Abstract:
The present disclosure is related to Intelligent Transport Systems (ITS), and in particular, to Vulnerable Road User (VRU) basic services (VBS) of a VRU ITS Station (ITS-S). Different arrangements and configurations of the VBS within the facilities layer of an ITS-S are described. Also described are different rules and/or conditions for VRU Awareness Message (VAM) formats, VAM generation and coding, and VAM dissemination.
Abstract:
The present disclosure is related to Intelligent Transport Systems (ITS), and in particular, to service dissemination basic services (SDBS) and/or collective perception service (CPS) of an ITS Station (ITS-S). Implementations of how the SDBS and/or CPS is arranged within the facilities layer of an ITS-S, different conditions for service dissemination messages (SDMs) and/or collective perception message (CPM) dissemination, and format and coding rules of the SDM/CPS generation are provided.