Abstract:
A display device includes a first communication unit connected to one or more peripheral devices, a second communication unit that communicates with a remote controller, and a processor. If the processor is initialized in response to a power-on instruction through the second communication unit, the processor verifies whether a first peripheral device, which is selected as a source device that provides at least one source of video and audio signals, among the one or more peripheral devices is powered on within a first threshold time. If the first peripheral device is not powered on within the first threshold time, the processor transmits a power-on request for allowing the remote controller to power on the first peripheral device, to the remote controller through the second communication unit.
Abstract:
An electronic device includes a communication circuit to communicate with at least one wearable device, and at least one processor electrically connected with the communication circuit. The at least one processor is configured to obtain position information on a position on which the at least one wearable device is placed on a user's body, and to transmit a control signal to the at least one wearable device through the communication circuit such that, when an output of a haptic pattern specified based on a function is requested, the at least one wearable device outputs a haptic feedback corresponding to the position information and the specified haptic pattern.
Abstract:
An electronic device includes a display, a memory, and a processor, and the processor displays, on the display, a folder icon that includes execution icons of a plurality of applications and, in response to a first user input selecting the folder icon, displays a user interface for collectively controlling notifications for the plurality of applications.
Abstract:
An electronic device is provided. The electronic device includes a housing and a first coil disposed in the housing and wound around a space formed inside. The housing includes a front cover and a rear cover. The rear cover includes a hole located in a first region of the rear cover that corresponds to the space of the first coil, a first slit that extends from an edge of the rear cover to the hole, and a second slit spaced apart from the first slit and extending from the edge. One end of the second slit is located in a second region of the rear cover that corresponds to the first coil. In addition, various other embodiments recognized through the present specification are possible.
Abstract:
An electronic device includes a touch sensitive display, and a processor electrically connected with the touch sensitive display. The processor is configured to sense a first touch and a second touch on the touch sensitive display, to display a first region expanding with respect to a location at which the first touch is made, on the touch sensitive display, to display a second region expanding with respect to a location at which the second touch is made, on the touch sensitive display, and to display a specified screen in the touch sensitive display if a sum of an area of the first region and an area of the second region exceeds a specified value.
Abstract:
A nonvolatile memory device includes an upper insulating layer. A first substrate is on the upper insulating layer. An upper interlayer insulating layer is on the first substrate. A plurality of word lines is stacked on the first substrate in a first direction and extends through a partial portion of the upper interlayer insulating layer. A lower interlayer insulating layer is on the upper interlayer insulating layer. A second substrate is on the lower interlayer insulating layer. A lower insulating layer is on the second substrate. A dummy pattern is composed of dummy material. The dummy pattern is disposed in a trench formed in at least one of the first and second substrates. The trench is formed on at least one of a surface where the upper insulating layer meets the first substrate, and a surface where the lower insulating layer meets the second substrate.
Abstract:
Disclosed is an electronic device including: a communication interface; at least one first vibration device; and a processor, wherein the processor is configured to determine vibration information including a first time for vibrating the at least one first vibration device and a second time for vibrating at least one second vibration device included in an external device to which the electronic device is mounted, based at least partially on information included in content to be outputted by the electronic device, transmit, through the communication interface, at least part of the vibration information to the external device such that the external device vibrates the at least one second vibration device based at least partially on the second time, and control the at least one first vibration device to vibrate based at least partially on the first time while the content is outputted.
Abstract:
A method and a device for rendering are provided. An image can be generated by cone tracing which is beam tracing using a cone having a thickness. The thickness of the cone can be adjusted such that a hole is not generated in the image.
Abstract:
A method and apparatus of converting a two-dimensional (2D) image to a three-dimensional (3D) image based on visual attention are provided. A visual attention map including visual attention information, which is information about a significance of an object in a 2D image, may be generated. Parallax information including information about a left eye image and a right eye image of the 2D image may be generated based on the visual attention map. A 3D image may be generated using the parallax information.
Abstract:
Provided is a microfluidic apparatus including: a microfluidic structure for providing spaces for receiving a fluid and for forming channels, through which the fluid flows; and valves for controlling the flow of fluid through the channels in the microfluidic apparatus. The microfluidic structure includes: a sample chamber; a sample separation unit receiving the sample from the sample chamber and separating a supernatant from the sample by using a centrifugal force; a testing unit receiving the supernatant from the sample separation unit for detecting a specimen from the supernatant using an antigen-antibody reaction, and a quality control chamber for identifying reliability of the test.