Abstract:
A communication device for a vehicular radio communications includes one or more processors configured to identify a plurality of vehicular communication devices that form a cluster of cooperating vehicular communication devices, determine channel resource allocations for the plurality of vehicular communication devices that includes channel resources allocated for a first vehicular radio communication technology and channel resources allocated for a second vehicular radio communication technology, and transmit the channel resource allocation to the plurality of vehicular communication devices.
Abstract:
A communication device can include a processor configured to receive, on a radio channel, an uplink radio transmission in a first waveform format from a terminal device that instructs the communication device to forward the uplink radio transmission to a network access node, and transmit, on the radio channel, the uplink radio transmission to the network access node with a preamble in a second waveform format to protect the uplink radio transmission from collisions.
Abstract:
A communication device can include a processor configured to receive, on a radio channel, an uplink radio transmission in a first waveform format from a terminal device that instructs the communication device to forward the uplink radio transmission to a network access node, and transmit, on the radio channel, the uplink radio transmission to the network access node with a preamble in a second waveform format to protect the uplink radio transmission from collisions.
Abstract:
A system and a method for controlling communication between a network and a terminal device, the method including: selecting a plurality of network access nodes based on each network access node being associated with a distinguishing transmission feature transmission feature; allocating a digital bit pattern to each distinguishing transmission feature; modifying a transmission to the terminal device based on the digital bit pattern; transmitting the transmission to the terminal device; receiving the transmission at the terminal device; identifying the distinguishing transmission feature from the transmission; and processing the transmission based on the digital bit pattern allocated to the distinguishing transmission feature.
Abstract:
A method in a base station for selecting a waveform format used by a mobile device for an uplink communication with the base station is provided. The method includes receiving in¬ formation from the mobile device about at least two different waveform formats supported by the mobile device for uplink communication according to a transmission standard. Fur¬ ther, the method includes selecting one of the at least two different waveform formats for uplink communication by the mobile device. The method additionally includes transmitting information about the selected waveform format for uplink communication to the mobile device.
Abstract:
An apparatus of a wireless device has a storage element to store data from a first data stream and a second data stream and a processing component operatively coupled to the storage element. The processing component selects a first set of data from the first data stream to be transmitted and determines one or more subcarriers of a plurality of available subcarriers to transmit at a first power level to represent the first set of data. The processing component also selects a second set of data from the second data stream and encodes the second set of data at a second power level on a set of remaining subcarriers that are not to be transmitted at the first power level. The processing component may then generate a symbol to be transmitted comprising the plurality of subcarriers.
Abstract:
P95627PCT43 ABSTRACT OF THE DISCLOSURE The disclosure relates to a beamforming device (300), comprising: a baseband circuit (301) configured to provide a control signal (310) and a data signal (311); and a transceiver circuit (302) configured to: convert the control signal (310) to a first frequency (f1) of a first radio carrier (314), form a first transmission beam (110) having a first beam width (112) based on the converted control signal (310), convert the data signal (311) to a second frequency (f2) of a second radio carrier (315), and form a second transmission beam (111) having a second beam width (113) based on the converted data signal (311), wherein the first frequency (f1) is lowerthan the second frequency (f2) and the first beam width (112) is broader than the second beam width (113). (Fig. 3)
Abstract:
A communication device is provided that includes a baseband circuit and a transmitter configured to transmit a first signal and a projected signal. The baseband circuit is configured to determine the projected signal based on an estimated signal state information such that an energy of a shaped projected signal is smaller than an energy of a shaped signal. The estimated signal state information is an estimate of a signal state information based on the first signal and a received signal that is received by a receiver of the second communication device. The shaped projected signal is the projected signal received by the receiver of the second communication device and filtered by a filter of the second communication device. The shaped signal is the received signal filtered by the filter of the second communication device.
Abstract:
A base station may generate first configuration information to configure a first user equipment ("UE") to operate using a first bandwidth within a wideband carrier of a cell, generate second configuration information to configure a second UE to operate using a second bandwidth within the wideband carrier of the cell, and cause transmission of the first and second configuration information to the first and second UEs, respectively. The base station may configure the first and second UEs based upon capabilities received from each UE, respectively.
Abstract:
Techniques for communication in networks with multiple networks, radio access technologies or the like can support backward and forward capability for LTE user equipments (UEs) and Next Generation (NG) UEs for coexistence. Transmission can provide resource allocations by re-configuring reserved resources. An uplink (UL) transmission can be generated based on the DL transmission or the re-configuration of the reserved resources being processed. Based on the DL transmission received an always-on signal can be configured according to a re-configuration of the reserved resources for LTE UE and advanced transmission schemes or new features can be added for new radio (NR) UEs without disruption to the legacy UE devices.