Abstract:
The present disclosure relates to a pre-5th-Generation (5G) or 5G communication system to be provided for supporting higher data rates Beyond 4th-Generation (4G) communication system such as Long Term Evolution (LTE). Embodiments herein disclose a method of handling BWP configurations for a RACH procedure in a wireless network. The method includes configuring, by a BS, a BWP configuration comprising RACH resource for each BWP in a set of BWPs for the RACH procedure. Further, the method includes indicating, by the BS, the RACH resource for each of the BWPs in the set of BWPs to a UE in the wireless network.
Abstract:
The present disclosure relates to a pre-5th-Generation (5G) or 5G communication system to be provided for supporting higher data rates beyond 4th-generation (4G) communication system such as long term evolution (LTE). A method for managing a resource in a wireless communication system is provided. The method includes allocating, by a base station, the resource for a data transmission from a user equipment (UE) in a two-step frequency-domain assignment process as a) indicating at least one bandwidth part, and b) indicating at least one resource block (RB) within the at least one bandwidth part. The proposed method can be used to avoid wastage of the radio resources by optimal resource allocation. The method supports a high data rate and enables power savings via dynamic configurations of the resource allocation. The method can be used to schedule uplink transmissions based on service and physical layer numerology requirements. The method can be used to activate and deactivate and provide a configuration sharing between multiple scheduling request resources in an effective manner. The method can be used to numerology blockage issue which hinders scheduling of urgent services.
Abstract:
A method and a system for signaling and processing control information in a cloud cell environment are provided. According to an embodiment, in a cloud cell, a master Base Station (BS) coordinates with other BSs to determine resources available for use on communication links between a mobile station in the cloud cell and one or all the BSs during a scheduling interval. Based on the resources available, the master BS allocates cumulative resources associated with the BSs to the mobile station for the scheduling interval. Then, the master BS transmits resource allocation control information indicating the allocated cumulative resources to the mobile station over a communication link between the master BS and the mobile station. Upon receiving the resource allocation control information, the mobile station decodes the information and receives data packets from each of the BSs during the scheduling interval according to the decoded resource allocation control information.
Abstract:
A method for controlling a cell state corresponding to whether to transmit a signal, on a subframe basis by an evolved Node B (eNB) in a wireless communication system is provided. The method includes determining a cell state of at least one subframe included in each of an N-th frame and an (N−1)-th frame, and at the start of the N-th frame, transmitting to a user equipment (UE), information about cell states of all subframes belonging to the N-th frame and information about cell states of all subframes belonging to the (N−1)-th frame.
Abstract:
Methods and apparatuses are provided for a terminal in a wireless communication system supporting dual connectivity of a first base station and a second base station is provided. A radio link failure (RLF) associated with at least one cell of the second base station is detected. A failure message is transmitted to the first base station upon detecting the RLF.
Abstract:
A method for communicating Downlink Control Information (DCI) in an asymmetric multicarrier communication network environment, the method comprising: determining a carrier type corresponding to DCI to be transmitted to a mobile station from a plurality of carrier types, encoding the DCI in a DCI format, wherein the DCI format comprises a set of fields corresponding to the determined carrier type, and transmitting the DCI encoded in the DCI format to the mobile station through a downlink control channel on a primary carrier, wherein the DCI format comprises a carrier index field indicating type of the fields in the DCI format encoding the DCI and the carrier type corresponding to the encoded DCI.
Abstract:
The present disclosure relates to a 5G communication system or a 6G communication system for supporting higher data rates beyond a 4G communication system such as long term evolution (LTE). A method implemented in a network entity for event handling in a service-based communication architecture is provided. The method includes receiving at least one request from one or more subscriber network functions for subscribing to one or more services available at the network entity, wherein the one or more services are created by one or more publisher network functions, creating, for the one or more subscriber network functions, a subscription of the one or more services based on the received request, receiving, upon creating the subscription to the one or more services, one or more event messages from the one or more publisher network functions, wherein the one or more event messages represent an occurrence of an event associated with the one or more services, transmitting, upon receiving the one or more event messages, one or more event notifications to the one or more subscriber network functions, wherein the one or more event notifications notify the one or more subscriber network functions about the occurrence of the event associated with the one or more services.
Abstract:
The present disclosure relates to a 5G communication system or a 6G communication system for supporting higher data rates beyond a 4G communication system such as long term evolution (LTE). A method for handling segmentation in a converged layer 2 (L2) communication network is provided. The method includes assigning, by a converged L2 of a transmitter, a L2 sequence number (SN) to a protocol data unit (PDU). The L2 SN includes at least one of a last segment indication (LSI) indicating a presence of a last service data units (SDU) of the complete PDU, a length indicator exist (LIE) indicating a presence of a length indicator (LI) after a L2 header, or a SI indicating a segmentation status or stage of the complete PDU, receiving, by a medium access control (MAC) layer of the transmitter, a grant opportunity or a transmission opportunity for transferring the PDU available at the converged L2, and sending the PDU to a lower layer of the transmitter for transmission to a receiver with or without segmentation based on the grant or a transmission opportunity.
Abstract:
The disclosure relates to a 5th generation (5G) or 6th generation (6G) communication system for supporting a higher data transmission rate. A method and a network entity for dynamic spectrum sharing (DSS) between long term evolution (LTE) cell and new radio (NR) cell in a wireless network are provided. The method includes determining a plurality of DSS parameter, determining a resource split between at least one bearer of a plurality of bearers of the LTE cell and at least one bearer of a plurality of bearers of the NR cell based on the plurality of DSS parameters, determining optimal key performance indicator (KPI) parameters for an overlapped LTE cell and NR cell combination based the resource split, and applying optimal tuning parameters on the overlapped LTE cell and NR cell combination in the wireless network based on the optimal KPI parameters.
Abstract:
Embodiments herein provide a method for managing HARQ procedure for multiple numerologies multiplexing in a wireless communication network. The method includes transmitting, by a User Equipment (UE), capability parameters of the UE to a Base Station (BS). Further, the method includes receiving, by the UE, a plurality of HARQ configuration parameters corresponding to the capability parameters of the UE from the BS, and perfuming, by the UE, one of an individual HARQ process and a shared HARQ process based on the plurality of HARQ configuration parameters received from the BS.