Abstract:
Embodiments herein may relate to transmission, in a first physical channel transmission, of an indication of a first set of parameters related to a control channel; and transmission, in a control channel transmission using the first set of parameters, of an indication of a second set of parameters related to the control channel. Further embodiments may relate to identifying a first parameter related to interleaving REGBs of a PDCCH transmission, wherein the first parameter is selected from a first plurality of parameters; interleaving the REGBs based on the first parameter to form a CCE; and transmitting the CCE in the PDCCH transmission. Other embodiments may be described and/or claimed.
Abstract:
Provided herein are method and apparatus for numerology configuration in non-coherent joint transmission. The disclosure provides an apparatus for a user equipment (UE), comprising circuitry configured to: determine one or more numerologies defined for at least one of different codewords, different layers, and different links for a non-coherent joint transmission (NCJT) to the UE, the NCJT comprising a first transmission from a first access node and a second transmission from a second access node; and process the NCJT according to the determined one or more numerologies. Also provided is a configuration of one or more transmission schemes for at least one of different codewords, different layers, and different links for a NCJT to the UE. Some embodiments allow for uplink NCJT with one or more numerologies defined for at least one of different codewords, different layers, and different links.
Abstract:
Technology for a user equipment, operable to configure a control resource set (CORESET) is disclosed. The UE can decode a signal, received from a next generation node B (gNB), that includes a resource element group (REG) bundling size for a first CORESET. The UE can decode a signal, received from the gNB that includes a REG bundling size for a second CORESET. The UE can decode a control message contained in one or more REGs in one or more of the first CORESET or the second CORESET.
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:
Described is an apparatus of an eNB operable to generate high-frequency-band transmissions for a high frequency band including an mmWave band. The apparatus of the eNB comprises one or more processors to generate a high-frequency-band omnidirectional broadcast transmission to one or more first UEs in a served cell, and to generate a high- frequency-band beamformed unicast transmission targeting a second UE in the served cell. Also described is an apparatus of a UE operable to process high-frequency-band transmissions for a high frequency band including an mmWave band. The apparatus of the UE comprises one or more processors to process a first high-frequency-band transmission from an eNB and to process a second high-frequency-band transmission from the eNB, wherein the first transmission is under at least 3 dB of CE, and the second transmission is under less than 3 dB of CE.
Abstract:
A user equipment (UE) is capable of dynamically designing and signaling to an evolved node b (eNB) a demodulation reference signal (DMRS) pattern book defining a set of DMRS patterns associated with a downlink channel of a long term evolution (LTE) wireless network.
Abstract:
Described is an apparatus of a User Equipment (UE) operable to communicate with an Evolved Node-B (eNB) on a wireless network. The apparatus may comprise a first circuitry, a second circuitry, and a third circuitry. The first circuitry may be operable to process a configuration transmission carrying a half-tone shifting indicator. The second circuitry may be operable to select one or more subcarrier frequencies for Uplink (UL) transmission based on the half-tone shifting indicator. The third circuitry may be operable to generate a UL transmission for the one or more subcarrier frequencies. The half-tone shifting indicator may have a first value indicating application of a half-subcarrier offset, and a second value indicating no application of the half-subcarrier offset.
Abstract:
Embodiments of the present disclosure describe methods and apparatuses for physical downlink control channel (PDCCH) demodulation reference signal (DMRS) transmission and reception.
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:
Described is an apparatus of a User Equipment (UE). The apparatus may comprise a first circuitry and a second circuitry. The first circuitry may be operable to process a Downlink Control Information (DCI) received via a first UE beam, the DCI carrying an indicator for switching to a second UE beam. The second circuitry may be operable to generate a confirmation transmission for the second UE beam based on a trigger indicator. The apparatus may also comprise an interface for inputting the DCI to one or more processors of the apparatus and for outputting the confirmation transmission to a transmission circuitry.