Abstract:
According to various embodiments of the disclosure, an electronic device may include: a camera sensor, a display panel including a first area corresponding to an area in which the camera sensor is disposed, and a second area different from the first area, and a display driver IC (DDI) configured to drive the display panel, wherein the DDI is configured to: obtain at least one of a luminance value or a gradation value of a first image output to the first area, determine whether to control the first image output to the first area, based on at least one of the luminance value or the gradation value of the first image, and control the first image output to the first area in response to the determination, wherein the first image is controlled such that, based on at least one of the luminance value of the first image or the gradation value of the first image, a plurality of pixels disposed in the first area are powered off, or a third image different from the first image is output to the first area.
Abstract:
The disclosure relates to an artificial intelligence (AI) system, which imitates functions of the human brain, such as recognition and determination, using a machine learning algorithm such as deep learning, and an application thereof. A computing device includes: a memory storing one or more instructions; and a processor configured to execute the one or more instructions stored in the memory to execute the one or more instructions to: using at least one neural network, infer user-preferred item candidates and user tastes based on user information; and select and provide an item suited to the user tastes from among the user-preferred item candidates.
Abstract:
An electronic device is provided. The electronic device includes a display for outputting a screen and a processor operatively connected to the display. The processor is configured to receive a user input associated with movement of a screen output on the display, detect a screen movement speed corresponding to the user input associated with the screen movement, determine an amount of screen tilt compensation corresponding to the screen movement based on the screen movement speed, when the screen movement speed is included in a first interval, and keep the amount of screen tilt compensation based on the screen movement speed constant, when the screen movement speed is included in a second interval faster than the first interval.
Abstract:
Inventive aspects include An HBM+ system, comprising a host including at least one of a CPU, a GPU, an ASIC, or an FPGA; and an HBM+ stack including a plurality of HBM modules arranged one atop another, and a logic die disposed beneath the plurality of HBM modules. The logic die is configured to offload processing operations from the host. A system architecture is disclosed that provides specific compute capabilities in the logic die of high bandwidth memory along with the supporting hardware and software architectures, logic die microarchitecture, and memory interface signaling options. Various new methods are provided for using in-memory processing abilities of the logic die beneath an HBM memory stack. In addition, various new signaling protocols are disclosed to use an HBM interface. The logic die microarchitecture and supporting system framework are also described.
Abstract:
A semiconductor memory device is provided which includes a memory cell array including magnetic memory cells arranged in a matrix form of rows and columns and connected with bit lines and a source line; and a temperature sensing unit configured to generate a temperature sensing signal by sensing a temperature of the memory cell array. A memory controller, constituting a memory system together with the semiconductor memory device, may control read and write operations of the semiconductor memory device differently according to the temperature sensing signal of the temperature sensing unit.
Abstract:
An electronic device according to an embodiment may include a display; a first camera and a second camera mounted at different positions with respect to a screen of the display; a sensor; and a processor operatively connected to the sensor, the plurality of cameras, and the display, wherein the processor may be configured to acquire state information according to a change in state of the display based on a detection signal of the sensor, to control the first camera and the second camera to acquire a first image from the first camera in real time and a second image from the second camera in real time, to generate a third image by synthesizing the first image and the second image based on the state information, and to display at least a portion of the third image as a preview image on the display in real time.
Abstract:
The 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). A transformer is provided. The transformer includes a first primary inductor, a second primary inductor, and a secondary inductor. The secondary inductor may be disposed between the first primary inductor and the second primary inductor. The secondary inductor may be disposed spaced apart from the first primary inductor and the second primary inductor.
Abstract:
An electronic device is provided. The electronic device includes a flexible display in which a region exposed to an outside is reduced as the flexible display is drawn into the electronic device and the region exposed to the outside is expanded as the flexible display is drawn out of the electronic device, a camera module including an image sensor, at least one sensor, and at least one processor, wherein the at least one processor is configured to acquire an image through the image sensor, identify a region of the flexible display exposed to the outside, through the at least one sensor, determine, within the image, an image part corresponding to the identified region of the flexible display, determine, within the determined image part, a region for performing at least one function related to the image, and perform the at least one function, based on the determined region.
Abstract:
A semiconductor memory device may include a memory cell, a bit line connected to the memory cell, a bit line data latch circuit configured to sense-amplify data stored in the memory cell connected to the bit line and to store write data in the memory cell via the bit line; an input/output driver configured to output read data on the bit line to an external device or to drive the write data provided from the external device; and a selection unit configured to select whether the read data and the write data are communicated between the input/output driver and the memory cell with or without use of the bit line data latch circuit.