Abstract:
A method for receiving a multimedia broadcast multicast service (MBMS) by a user equipment (UE) in a wireless communication system, the method comprising acquiring, by the UE, a predetermined system information block (SIB) from a base station (BS); and upon acquiring the predetermined SIB, transmitting an MBMS interest indication message by the UE to the BS. The predetermined SIB includes information related to MBMS service continuity. Whether the transmitting of the MBMS interest indication message is allowed is provided to the UE through the predetermined SIB.
Abstract:
A method for receiving a multimedia broadcast multicast service (MBMS) by a user equipment (UE) in a wireless communication system, the method comprising acquiring, by the UE, a predetermined system information block (SIB) from a base station (BS); and upon acquiring the predetermined SIB, transmitting an MBMS interest indication message by the UE to the BS. The predetermined SIB includes information related to MBMS service continuity. Whether the transmitting of the MBMS interest indication message is allowed is provided to the UE through the predetermined SIB.
Abstract:
A method of processing a Long Term Evolution (LTE) Multimedia Broadcast Multicast Service (MBMS) message by a network in a wireless communication system, the method including transmitting a system information block (SIB) including information on a Multimedia Broadcast multicast service Single Frequency Network (MBSFN) area list through a broadcast control channel (BCCH) to a user equipment (UE); transmitting a first LTE MBMS message including information on one or more services through a multicast control channel (MCCH) to the UE; and receiving a second LTE MBMS message indicating a specific area corresponding to an area of the MBSFN area list and a specific service from the UE in response to the first LTE MBMS message, the UE wishing to receive the specific service of the one or more services or being interested to receive the specific service of the one or more services.
Abstract:
Disclosed are a method and device for uplink transmission and reception in a wireless communication system. A method by which a terminal performs uplink transmission, according to one embodiment of the present disclosure, comprises the steps of: receiving, from a base station, configuration information related to a semi-static HARQ-ACK codebook for a PDSCH; receiving, from the base station, at least one DCI including a DAI field; and transmitting, to the base station, HARQ-ACK information for a first PDSCH on the basis of only the first PDSCH satisfying a specific condition among a plurality of PDSCHs being received from the base station, wherein, on the basis of the DAI field, included in the at least one DCI associated with the plurality of PDSCHs, indicating a specific value, the semi-static HARQ-ACK codebook including the HARQ-ACK information for each of the plurality of PDSCHs may be transmitted to the base station.
Abstract:
A method performed by a user equipment (UE) in a wireless communication system according to an embodiment of the present disclosure comprises receiving configuration information related to a sounding reference signal (SRS) from a base station, receiving an RRC release message from the base station, and transmitting the SRS in an RRC_INACTIVE state to the base station. The SRS may be related to a positioning. The RRC release message may include configuration information related to the SRS for positioning in the RRC_INACTIVE state. Based on a transmission of the SRS colliding with other physical signal or other physical channel in a time domain, the transmission of the SRS may be dropped or performed in at least one symbol in which the collision occurs.
Abstract:
A method of operating a user equipment (UE) in a wireless communication system is provided. The method comprises receiving system information block 1 (SIB1) from a base station (BS), separately determining, based on the SIB1, whether an intra-slot frequency hopping (FH) is enabled and whether a time domain orthogonal cover code (OCC) is enabled, performing a random access on the BS, and transmitting, to the BS, a physical uplink control channel (PUCCH) for a hybrid automatic repeat request (HARQ) feedback of a message 4 (Msg4) or a message B (MsgB) of the random access based on whether the intra-slot frequency hopping is enabled and whether the time domain OCC is enabled.
Abstract:
A method and apparatus for transmitting and receiving a semi-persistent scheduling PDSCH in a wireless communication system is disclosed. A method according to an embodiment of the present disclosure may include receiving, from a base station, respective configuration information related to one or more SPS configurations; receiving, from the base station, respective DCI for activating the one or more SPS configurations; and receiving, from the base station, the same TB through SPS PDSCH reception in a first SPS PDSCH resource set and a second SPS PDSCH resource set for the one or more SPS configurations.
Abstract:
Disclosed are a method and device for transmitting and receiving control information in a wireless communication system. A method for a terminal to perform uplink transmission in a wireless communication system according to an embodiment disclosed herein may comprise the steps of: receiving at least one of a first unicast physical downlink shared channel (PDSCH) or a first multicast PDSCH on the basis of a first quasi co-located (QCL) reference signal (RS); receiving at least one of a second unicast PDSCH or a second multicast PDSCH on the basis of a second QCL RS; and transmitting hybrid automatic repeat request (HARQ)-ACK information through one or more physical uplink control channels (PUCCHs).
Abstract:
A method and apparatus for service data adaptation protocol (SDAP) configuration for a destination in sidelink communication is provided. A wireless device establishes a service data adaptation protocol (SDAP) entity based on a SDAP configuration per destination of a sidelink communication. This can be achieved by the wireless device receiving a configuration of one or more sidelink radio bearers (SLRBs), which includes an SDAP configuration for each of the one or more SLRBs. Each SDAP configuration, in turn, includes a list of Quality of Service Flow Identities (QFIs) for a corresponding destination, from among one or more destinations, to be mapped to a corresponding SLRB. One or more transmitting SDAP entities can then be established for each of the one or more destinations.
Abstract:
A terminal according to the present disclosure may perform detection of paging DCI at a corresponding paging occasion on the basis that at least one of a plurality of conditions configured in the terminal is satisfied as a result of monitoring a specific signal related to whether detection of the paging DCI is required for the terminal, and the plurality of conditions may include a first condition for performing detection of the paging DCI in a state in which the specific signal is detected, and at least one second condition for performing detection of the paging DCI even in a state in which the specific signal is not detected.