Abstract:
A method and apparatus are disclosed from the perspective of a communication device. In one embodiment, the method includes the device being configured with a plurality of resource pools by a base station for a cell. The method further includes the device receiving a grant from the base station, wherein the grant indicates a resource associated with a resource pool of the plurality of resource pools through a resource pool index in the grant. The method also includes the device using the resource to perform a transmission on a device-to-device interface.
Abstract:
A method and apparatus are disclosed from the perspective of a UE (User Equipment). In one embodiment, the method includes the UE being configured with a first cell. The method further includes the UE being configured with a second cell. The method includes the UE changing active downlink BWP (Bandwidth Part) of the first cell from a first downlink BWP to a second downlink BWP, wherein a first occasion in the first cell is prior to finishing the change of active downlink BWP of the first cell, and a second occasion in the second cell is prior to finishing the change of active downlink BWP of the first cell. In addition, the method includes the UE transmitting an uplink signal in a slot on the first cell after the change of active downlink BWP, wherein the uplink signal comprises HARQ-ACK (Hybrid Automatic Repeat Request Acknowledgment) associated with the second occasion and not associated with the first occasion.
Abstract:
A method and apparatus are disclosed from the perspective of a UE capable of performing UE beamforming. In one embodiment, the method includes the UE receiving a control signaling on a first set of UE beam(s). In addition, the method includes the UE receiving a data transmission scheduled by the control signaling on a second set of UE beam(s), wherein the UE receives the data transmission with a time delay after receiving the control signaling.
Abstract:
Facilitation detection of control channels with different transmission time intervals (TTIs) in wireless communications systems is described herein. In one example, a computer-implemented method comprises: monitoring, by a mobile device comprising a processor, a first control channel in the beginning of a first TTI; and receiving, by the mobile device, a first downlink control information (DCI) on the first control channel in the first TTI, wherein information of the first DCI indicates a pattern of a second TTI associated with a second control channel, and wherein the second control channel occurs later than the first control channel and the second TTI is shorter than the first TTI. The computer-implemented method can also comprise determining, by the mobile device, whether to monitor the second control channel of the second TTI based on the information of the first DCI.
Abstract:
A method and apparatus are disclosed from the perspective of a first network node served by a second network node. In one embodiment, the method includes the first network node performs a transmission to the second network node with a timing advance, wherein the timing advance is set to transmission delay between the first network node and the second network node or is set to the transmission delay with a timing reduction.
Abstract:
A method and apparatus are disclosed from the perspective of a User Equipment (UE). In one embodiment, the method includes the UE receiving a DL (Downlink) transmission in a TTI (Transmission Time Interval) in one serving cell. The method also includes the UE generating at least two feedback bits associated to separate layers of the DL transmission. Furthermore, the method includes the UE performing bundling across the at least two feedback bits if the separate layers of the DL transmission are transmitted from a same TRP (Transmission/Reception Point). In addition, the method includes the UE not performing bundling across the at least two feedback bits if the separate layers of the DL transmission are transmitted from separate TRPs.
Abstract:
A method and apparatus are disclosed from the perspective of a UE. In one embodiment, the method includes transmitting a power related information corresponding to a specific UE beam and/or a specific UE beam combination of multiple UE beams to a base station. In one embodiment, the method further includes receiving an indication from the base station about the power related information of which UE beam and/or UE beam combination is to be reported.
Abstract:
Uplink transmission in shorted transmission time intervals is provided herein. A method can comprise receiving, by a device comprising a processor, a first downlink control information related to scheduling a first uplink data transmission via a first transmission time interval. The method can also comprise receiving, by the device, a second downlink control information related to scheduling a second uplink data transmission via a second transmission time interval, wherein the second uplink data transmission overlaps at least a symbol with the first uplink data transmission. The method can also transmitting, by the device, the first uplink data transmission or the second uplink data transmission based on prioritization determined based on a first length of the first transmission time interval and a second length of the second transmission time interval.
Abstract:
Methods and apparatuses are disclosed for improving resource control and device to device (D2D) transmission in a wireless communication system. In one method, a device receives a configuration including at least a first contention-based resource pool and a second contention-based resource pool, wherein the first contention-based resource pool includes resources for multiplexing D2D transmission(s) and Downlink (DL) transmission(s) in power domain, and the second contention-based resource pool does not include the resources for multiplexing D2D transmission(s) and DL transmission(s) in power domain. The device also receives at least one threshold value related to a power. The device then selects the first contention-based resource pool or the second contention-based resource pool for D2D transmission based on at least the threshold value.
Abstract:
Methods and apparatuses for handling discontinuous reception and partial sensing for sidelink communication to reduce potential latency due to additional sensing, and to improve resource utilization efficiency. A first device can perform sidelink communication to at least a second device, or a second device in a sidelink resource pool, and trigger to perform resource selection for a sidelink data at a timing. The first device can perform sensing for a first contiguous sensing duration before a sidelink on-duration active time of the second device, determine or select a first sidelink resource from a set of sidelink resources, derive or determine the set of sidelink resources based on at least a sensing result in the first contiguous sensing duration, and perform a first sidelink transmission on the first sidelink resource for transmitting the sidelink data to the second device.