Abstract:
A wearing member of a wearable electronic device may have a housing, the wearing member may have a holder body fixed to the housing of the wearable electronic device, the holder body defining a guide recess, a holder member including a fixing portion that protrudes at least partially from a surface of the holder body, a portion of the holder member being engaged in a recess of a side surface of the housing of the wearable electronic device such that the holder member is secured to the holder body, and a rotation member that is pivotably coupled to the holder body, the rotation member including a first portion that includes a guide protrusion that engages the guide recess and a second portion that is couplable to a wearable strap.
Abstract:
A circuit chip including a substrate, first and second channel active regions on the substrate, and extending in a first direction, the second channel active regions spaced apart from the first channel regions in a second direction intersecting the first direction, first and second gate electrodes intersecting the second channel active regions, third and fourth gate electrodes intersecting the first channel active regions, and a contact electrode between the first, second, third, and fourth gate electrodes. The contact electrode including a stem section in a vertical direction, and first and second branch sections extending from the stem section and contacting a respective source/drain region on the first and second channel active regions, the first gate electrode and the third gate electrode overlapping in the second direction, and including edge portions having widths decreasing as the first gate electrode and the third gate electrode extend toward facing ends thereof.
Abstract:
The present disclosure relates to a communication technique for converging IoT technology with a 5G communication system for supporting a higher data transfer rate beyond a 4G system, and a system therefor. The present disclosure can be applied to intelligent services (e.g., smart homes, smart buildings, smart cities, smart or connected cars, health care, digital education, retail business, and services associated with security and safety) on the basis of 5G communication technology and IoT-related technology. A method for determining signal reception quality in a mobile communication system according to another embodiment of the present specification comprises the steps of: acquiring measurement information related to a received signal; acquiring map information corresponding to a region where the signal is received; and determining signal reception quality at a predicted reception point on the basis of the measurement information and the map information.
Abstract:
A scheduling method and an apparatus are provided for use in a Device-to-Device (D2D) communication system. A scheduling method of a node in a wireless communication system according to the present disclosure includes acquiring a first data rate on a first link in consideration of interference occurring when a second link is established, acquiring a second data rate on the first link without consideration of the second link, acquiring, when the second link is established, a third data rate on the second link, and determining whether to establish the second link in consideration of the first data rate, second data rate, and third data rate.