Abstract:
The present invention relates to an electronic device for controlling an unmanned aerial vehicle and a control method therefor. The electronic device for controlling an unmanned aerial vehicle according to the present invention comprises: a first sensor for sensing a first direction; a second sensor for sensing a second direction opposite to the first direction; and a processor electrically connected to the first sensor and the second sensor, wherein the processor may be configured to: determine whether the unmanned aerial vehicle is located in a first environment on the basis of at least one sensing data obtained by the first sensor; control sensing operations of the first sensor and the second sensor according to the determination result; and control motion of the unmanned aerial vehicle on the basis of at least one sensing data obtained by the first sensor and the second sensor.
Abstract:
A semiconductor memory device may include a plurality of data input/output DQ pads and a plurality of first and second memory cell arrays. Each path of a first set of data paths from each of the plurality of first memory cell arrays to a corresponding DQ pad is physically shorter than each path of a second set of data paths from each of the plurality of second memory cell arrays to the corresponding DQ pad. Each of the plurality of first memory cell arrays is a designated first-speed access cell array and each of the plurality of second memory cell arrays is a designated second-speed access cell array, the second-speed being slower than the first-speed. A size of the each of the plurality of first memory cell arrays is smaller than a size of the each of the plurality of second memory cell arrays.
Abstract:
An electronic device is provided. The electronic device includes a front cover forming a front surface, a rear cover forming a rear surface, a sidewall at least partially enclosing a space formed between the front cover and the rear cover and at least partially formed of a conductive member, a display disposed in the space and including a screen region exposed through the front cover, a non-conductive structure disposed in adjacent to the sidewall or in contact with the sidewall in the space and including a first surface facing the front cover and a second surface facing the rear cover, a first antenna pattern overlapping the non-conductive structure and fed with electricity, a second antenna pattern overlapping the non-conductive structure and disposed adjacent to the first antenna pattern to form electromagnetic-field coupling with the first antenna pattern, and an integrated circuit chip feeding electricity to the first antenna pattern