Abstract:
The present disclosure provides a method of performing a measurement. The method of performing a measurement may include the steps of: continuing a measurement on received signal strength indication (RSSI) for sections corresponding to the multiple of an almost blank subframe (ABS) pattern when a measurement subframe pattern representing a subframe to be measured with respect to a serving cell to which enhanced inter-cell interference coordination (eICIC) is applied is not received; averaging measurement results for the sections corresponding to the multiple of the ABS; and transmitting the average of the measurement results to the serving cell.
Abstract:
One embodiment of the present specification provides an interference-removed reception method. The interference-removed reception method may comprise the steps of: receiving, from a serving cell, interference removal support information comprising transmission power information on the any channel of a neighboring cell; estimating the channel of the serving cell; receiving data by decoding the channel of the serving cell; and removing interference by the any channel of the neighboring cell, which is comprised in the received data, by using the transmission power in the received interference removal support information.
Abstract:
One embodiment of the present specification provides a method for transmitting network support information in a serving cell in order to remove interference of a terminal. The method for transmitting the network support information comprises the steps of: enabling the serving cell to select a first terminal and a second terminal to which a multi-user multiple input multiple output (MU-MIMO) is applied; enabling the serving cell to select different codewords for a downlink data channel to the selected first and second terminals; enabling the serving cell to determine whether the first terminal can remove the interference; and transmitting, to the first terminal, the network support information for supporting the interference removal using the downlink data channel to the second terminal if the first terminal can remove the interference.
Abstract:
One embodiment of the present specification provides an interference-removed reception method. The interference-removed reception method may comprise the steps of: encoding, in a binary in a physical channel, stored information for an attacker cell which causes interference; performing a comparison between the encoded binary and a new binary in the physical channel received from the attacker cell; and if the binaries match, removing interference caused by the new binary in the physical channel received from the attacker cell by using the encoded binary, and thereby receiving a signal from a serving cell.
Abstract:
According to one embodiment of the present specification, a user terminal is provided. The user terminal can comprise: a tunable antenna capable of adjusting a band; a diplexer connected to the tunable antenna to synthesize and separate sub-carriers; one or more antenna switches connected to the diplexer to synthesize and separate low-band sub-carriers and middle-band and high-band sub-carriers; and a sub-carrier processing unit connected to the one or more antenna switches to synthesize and separate a plurality of low-band sub-carriers, a plurality of middle-band sub-carriers and a plurality of high-band sub-carriers. A low-noise amplifier can be connected to the sub-carrier processing unit in order to prevent an increase in a reception sensitivity loss and a noise index occurring on a reception path of the diplexer, the one or more antenna switches and the sub-carrier processing unit.
Abstract:
A method of reducing transmission power. The method is performed by a user equipment and includes calculating a maximum power reduction (MPR) on maximum output power for transmission with non-contiguous resource allocation in a single component carrier; and transmitting a signal based on the MPR. The MPR is determined according to the following equation: MPR=CEIL {MA, 0.5}, the CEIL being a function of rounding up by 0.5. The MA is determined according to the following equations: MA=(8.0−10.12*A) when 0
Abstract:
A method of providing information for cell measurements. A first cell configures a subframe for performing a first measurement with respect to a first cell. A first position performing the first measurement is different from a second position performing a second measurement with respect to a second cell. The method includes transmitting, from the first cell to a user equipment (UE), first pattern information indicating the first position and second pattern information indicating the second position. A first subframe corresponding to the first pattern information is included in non-Almost Blank Subframe (ABS) subframes of the first cell, and a second subframe corresponding to the second pattern information is included in ABS subframes of the first cell. The ABS subframes of the first cell are configured as a first subframe at each of 8 subframes of the first cell.
Abstract:
In order to solve the aforementioned problem, one disclosure in the present specification provides a wireless communication device. The wireless communication device may comprise: at least one transceiver; at least one processor; and at least one memory that stores an instruction and is operatively electrically connected to the at least one processor. An operation performed on the basis of an execution of the instruction by the at least one processor may comprise the steps of: receiving a network signal related to AMPR; determining uplink transmission power by applying a preset A-MPR value; and transmitting an uplink signal on the basis of the determined transmission power.
Abstract:
One disclosure of the specification provides a method performed by UE. The method comprises the steps of: receiving a synchronization signal from a network; on the basis of the UE being connected to a base station via an NTN satellite, receiving, from the network, system information related to an NTN; transmitting a RACH to the network; receiving a RA response message from the network; receiving measurement information from the network, wherein the measurement information includes information regarding a measurement point in time for measurement by the UE; determining, on the basis of orbit information of a target satellite, a measurable point in time when an elevation angle of the target satellite exceeds a threshold value; on the basis of the measurement point in time being earlier than the measurable point in time, transmitting a failure message to the network; and carrying out measurement at the measurable point in time.
Abstract:
A disclosure of this specification provides a method for radio communication, performed by user equipment (UE), comprising: establishing a dual connectivity (DC) with both a primary cell (PCell) and a primary secondary cell (PSCell); determining i) a first propagation delay of a first non-terrestrial network (NTN) satellite for the PSCell, ii) a second propagation delay of a second NTN satellite for a target cell and iii) a third propagation delay of a third NTN satellite for the PCell; transmitting, to PCell, a timing offset for the PSCell based on i) the first propagation delay, ii) the second propagation delay and iii) the third propagation delay; receiving, from the PCell, a first MG (measurement gap) for the PCell and a second MG for the PSCell, wherein the second MG configuration is based on the timing offset.