Abstract:
An electronic device includes a display unit configured to display a plurality images, an eye tracking sensor configured to detect a eye-focused area on the display unit, a reflective layer, a reflective control layer configured to change a regional reflectivity of the reflective layer, and a processor configured to receive the eye-focused area on the display unit from the eye tracking sensor, and determine a focus image within the eye-focused area and an unfocused image out of the eye-focused area, and cause the reflective control layer to reflect the unfocused image. In some embodiment, the processor is configured to cause the reflective control layer not to reflect the focused image.
Abstract:
An electronic device comprising: a memory; a display unit; a communication unit; and at least one processor operatively coupled to the memory, the display unit, and the communication unit, configured to: output a light pattern by using one or more pixels that are part of the display unit; receive, via the communication unit, one or more signals that are transmitted by a wearable device in response to the light pattern; identify a screen display area corresponding to the wearable device based on respective positions of the one or more pixels and the one or more signals.
Abstract:
An electronic device is provided. The electronic device includes a user interface configured to receive a first direction input, a second direction input, a third direction input, and a fourth direction input, the first direction input used to move the electronic device horizontally in a left direction, the second direction input used to move the electronic device horizontally in a right direction, the third direction input used to move the electronic device vertically in an upper direction, and the fourth direction input used to move the electronic device vertically in a lower direction, a wireless communication circuit configured to establish a wireless communication channel with an unmanned aerial vehicle (UAV) including a camera, and a processor configured to control the UAV based on the directional inputs.
Abstract:
An electronic device is provided. The electronic device includes a user interface configured to receive a first direction input, a second direction input, a third direction input, and a fourth direction input, the first direction input used to move the electronic device horizontally in a left direction, the second direction input used to move the electronic device horizontally in a right direction, the third direction input used to move the electronic device vertically in an upper direction, and the fourth direction input used to move the electronic device vertically in a lower direction, a wireless communication circuit configured to establish a wireless communication channel with an unmanned aerial vehicle (UAV) including a camera, and a processor configured to control the UAV based on the directional inputs.
Abstract:
An electronic device is disclosed and includes a display, a wireless communication circuit configured to transmit or receive data, a processor, and a memory electrically connected with the processor. The memory stores instructions, which when executed, enable the processor to display a first video portion corresponding to a reference heading direction of an unmanned aerial vehicle (UAV) of a video captured by the UAV, display a second video portion corresponding to a virtual heading direction of the video in response to a first input, and in response to a second input, generate a first control signal to cause the UAV to move with respect to the virtual heading direction, and transmit the generated first control signal through the wireless communication circuit to the UAV.
Abstract:
An electronic device includes a display unit configured to display a plurality images, an eye tracking sensor configured to detect a eye-focused area on the display unit, a reflective layer, a reflective control layer configured to change a regional reflectivity of the reflective layer, and a processor configured to receive the eye-focused area on the display unit from the eye tracking sensor, and determine a focus image within the eye-focused area and an unfocused image out of the eye-focused area, and cause the reflective control layer to reflect the unfocused image. In some embodiment, the processor is configured to cause the reflective control layer not to reflect the focused image.
Abstract:
A semiconductor device includes a MIM capacitor on a substrate. The MIM capacitor includes a dielectric region and first and second electrodes on opposite sides of the dielectric region. At least one of the first and second electrodes, e.g., an upper electrode, includes an oxygen diffusion blocking material, e.g., oxygen atoms, at a concentration that decreases in a direction away from the dielectric region. The at least one of the first and second electrodes may include a first layer having a first concentration of the oxygen diffusion blocking material and a second layer on the first layer and having a second concentration of the oxygen diffusion blocking material less than the first concentration. The at least one of the first and second electrodes may further include a third layer on the second layer and having a concentration of the oxygen diffusion blocking material less than the second concentration.
Abstract:
An electronic device is disclosed and includes a display, a wireless communication circuit configured to transmit or receive data, a processor, and a memory electrically connected with the processor. The memory stores instructions, which when executed, enable the processor to display a first video portion corresponding to a reference heading direction of an unmanned aerial vehicle (UAV) of a video captured by the UAV, display a second video portion corresponding to a virtual heading direction of the video in response to a first input, and in response to a second input, generate a first control signal to cause the UAV to move with respect to the virtual heading direction, and transmit the generated first control signal through the wireless communication circuit to the UAV.
Abstract:
A semiconductor device includes a MIM capacitor on a substrate. The MIM capacitor includes a dielectric region and first and second electrodes on opposite sides of the dielectric region. At least one of the first and second electrodes, e.g., an upper electrode, includes an oxygen diffusion blocking material, e.g., oxygen atoms, at a concentration that decreases in a direction away from the dielectric region. The at least one of the first and second electrodes may include a first layer having a first concentration of the oxygen diffusion blocking material and a second layer on the first layer and having a second concentration of the oxygen diffusion blocking material less than the first concentration. The at least one of the first and second electrodes may further include a third layer on the second layer and having a concentration of the oxygen diffusion blocking material less than the second concentration.