Abstract:
A method of changing a profile by using an identification module and an electronic device for implementing the same are provided. The electronic device may enable a profile stored in an embedded identification module to receive a wireless communication network service corresponding to the enabled profile. The method includes identifying a network selected by a user, determining whether a profile, which can use the network, is included in the identification module in accordance with the identified network, downloading the profile corresponding to the network and enabling the downloaded profile when the profile is not included in the identification module, enabling the profile when the profile is included in the identification module, and making a connection to the network based on the enabled profile.
Abstract:
A method for communication using a fingerprint input is provided. The method includes detecting a fingerprint information input, changing a communication mode according to the fingerprint information input, detecting a peripheral electronic device operating in a fingerprint mode, if the changed communication mode is the fingerprint mode, and communicating with the detected peripheral electronic device.
Abstract:
The disclosure relates to a 5th generation (5G) or 6th generation (6G) communication system for supporting higher data transmission rates, and discloses a method for transmitting a sounding reference signal (SRS) in a wireless communication system are provided. The method includes receiving configuration information including a first configuration for SRS resource sets, identifying, based on the first configuration, that a usage of the SRS resource sets is configured to antenna switching, and transmitting the SRS, based on x antennas among y reception antennas of an electronic device, wherein y is a natural number of 6 or larger, x is a natural number of y or smaller, and the number of the SRS resource sets associated with the SRS transmission may be determined based on whether capability information about the electronic device associated with the resource type of the SRS is reported in the time domain.
Abstract:
The present disclosure relates to a 5G or 6G communication system for supporting a higher data transmission rate. The present disclosure relates to a method performed by a base station in a wireless communication system and, particularly, to a method and a device for performing same, the method comprising the steps of: identifying a frequency band; determining a size of a subcarrier spacing (SCS) to be used on the frequency band if a size of the frequency band is smaller than a preconfigured bandwidth size; generating a synchronization signal block (SSB) on the basis of the determined size of the SCS; and transmitting the SSB on the frequency band.
Abstract:
The present disclosure relates to a 5G or pre-5G communication system for supporting higher data transfer rates than that of a beyond 4G communication system such as LTE. A control method of a terminal in a wireless communication system, according to an embodiment of the present invention, may comprise the steps of: receiving radio resource control signaling (RRC signaling) for a signal measured by a terminal; identifying a transmission interval of a signal measured by the terminal, on the basis of the received RRC signaling; identifying first information for forming a predetermined beam; and determining whether to change the first information for forming a beam to second information for forming a beam, on the basis of the identified transmission interval.
Abstract:
The present disclosure relates to a 5G or 6G communication system for supporting a higher data transmission rate. In addition, the present disclosure relates to a method carried out by a base station of a wireless communication system, and a device for carrying out same, the method comprising the steps of: determining whether a frequency band operated by a base station uses a bandwidth that is narrower than a preset bandwidth; if a bandwidth that is narrower than the preset bandwidth is used, determining a subcarrier spacing (SCS) that is narrower than a preset SCS; generating a synchronization signal block (SSB) using the determined SCS; and transmitting the SSB, wherein the determined SCS is smaller than 15 kHz.
Abstract:
The present disclosure relates to a 5G or 6G communication system for supporting a higher data transmission rate. According to the present disclosure, a method performed by a terminal in a communication system comprises: receiving semi persistent scheduling (SPS) configuration information from a base station; monitoring an SPS activation signal; confirming an SPS configuration corresponding to the SPS activation signal on the basis of the SPS configuration information, based on the SPS activation signal being sensed; receiving a physical downlink shared channel (PDSCH) from the base station on the basis of the SPS configuration; descrambling a PDSCH on the basis of a group-common configured scheduling radio network temporary identifier (CS-RNTI) based on the SPS configuration being a group-common SPS configuration; and descrambling the PDSCH on the basis of a terminal-specific CS-RNTI based on the SPS configuration being a terminal-specific SPS configuration.
Abstract:
The present disclosure relates to a 5G or 6G communication system for supporting a higher data transmission rate. A method for, according to the present disclosure, may comprise the steps of: receiving, from a base station, configuration information associated with at least one first SPS; receiving, from the base station, an SPS activation signal indicating activation of a second SPS from among the at least one first SPS; identifying, on the basis of configuration information associated with the second SPS, and the SPS activation signal, whether or not, from among at least one PDSCH reception occurrence associated with the second SPS, a first PDSCH reception occurrence includes a plurality of slots; if the first PDSCH reception occurrence includes the plurality of slots, determining one of the plurality of slots as a reference slot; and determining an HARQ process ID on the basis of information regarding the determined reference slot.
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). Inter-cell coordinated transmission through a multi-transmission reception point (multi-TRP) in a wireless or communication system is described. A terminal receives configuration information related to a multi-TRP, checks whether inter-cell multi-TRP transmission is configured on the basis of the configuration information, based on the inter-cell multi-TRP transmission being configured, checks a control resource set (CORESET) for the multi-TRP on the basis of the configuration information, receives downlink control information (DCI) for the multi-TRP through the CORESET, and receives data from the multi-TRP on the basis of the DCI.
Abstract:
An electronic device, according to various embodiments of the present invention, is disclosed, comprising: an antenna array including a plurality of antenna elements disposed at intervals of a first distance; and a communication circuit electrically connected with the antenna array, wherein the communication circuit is configured to: supply power to a first antenna element and a second antenna element spaced apart from the first antenna element by a second distance among the plurality of antenna elements; form a beam comprising a main lobe and a grating lobe having a predetermined angle with the main lobe, by using the first antenna element and the second antenna element; and sense an RF signal incident from the outside by using the formed beam. Various other embodiments inferred from the present specification are also possible.