Abstract:
An electronic device is provided. The electronic device includes a housing including a first surface facing in a first direction, a second surface facing in a second direction opposite to the first direction, and a side surface enclosing a space between the first surface and the second surface, a display exposed at least partially through the first surface, a first conductive coil positioned inside the housing, positioned above the display when viewed from above the second surface, and having an axis substantially perpendicular to the first direction or the second direction, and a second conductive coil and a third conductive coil positioned inside the housing, positioned above the first conductive coil when viewed from above the second surface, and having an axis substantially horizontal to the first direction or the second direction.
Abstract:
The present invention relates to a data storage system. The present invention provides a key value-based data storage system and an operation method thereof, the data storage system comprising: computing nodes, each of which includes a substrate module, a central processing unit, a memory arranged in the substrate module, and a NAND flash storage for cache storage; and a communication interface for interconnecting the computing nodes, wherein the computing nodes support key value-based data processing.
Abstract:
In an electronic device and a method for operation of the electronic device according to various embodiments, the electronic device may comprise: a sensor module for sensing whether an external object approaches the electronic device; a communication module for cellular communication; a first antenna for the cellular communication; a short-range wireless communication module for short-range wireless communication; a second antenna for the short-range wireless communication; and a processor, wherein the processor is configured to: check by means of the sensor module whether the external object approaches so as to be within a specified range, while transmitting a cellular signal with specified power through the first antenna; output a specified signal through the second antenna at least on the basis of determining that the external object has approached so as to be within the specified range; acquire, by means of the second antenna, a signal returning after the specified signal is reflected by the external object; transmit a cellular signal having been adjusted to have lower power than the specified power, when the phase difference between the specified signal and the reflected signal falls within a specified range; and refrain from adjusting the specified power, when the phase difference falls outside the specified range. Various other embodiments are also possible.
Abstract:
The present invention relates to an interconnection fabric switching apparatus capable of dynamically allocating resources according to a workload and a method therefore, and the apparatus provided with a switching connection part according to the present invention is characterized by including: at least one computing node, a switching connection part for switch-interconnecting the computing node and the input/output node; and a controller for analyzing the workload of the computing node so as to determine whether to transfer the virtual machine of a first computing node to a second computing node, wherein the control unit controls the virtual machine of the first computing node to be transferred through the switching connection part to the second computing node.
Abstract:
A software migration method and an apparatus for migration of software running at a source node to a destination node with a migration scheme selected optimally in consideration of micro-server communication environment are provided. The software migration apparatus includes an environment monitor which monitors communication environment between a source node and a destination node constituting a micro-server and a migration policy manager which analyzes communication environment information acquired from the environment monitor and determines a migration scheme for migrating a software running at the source node to the destination node based on the analysis result.
Abstract:
The present invention relates to a data storage system. The present invention provides a key value-based data storage system and an operation method thereof, the data storage system comprising: computing nodes, each of which includes a substrate module, a central processing unit, a memory arranged in the substrate module, and a NAND flash storage for cache storage; and a communication interface for interconnecting the computing nodes, wherein the computing nodes support key value-based data processing.
Abstract:
According to an embodiment, an electronic device may include: a housing including a first surface and a second surface facing away from the first surface; a display at least partially accommodated in the housing and viewable through the first surface; a conductive layer disposed between the display and the second surface and including a first opening; a support disposed between the second surface and the conductive layer and including a conductive portion; and a wireless communication circuit electrically connected to the conductive layer, and configured to transmit and/or receive a signal through an antenna including at least a portion of the conductive layer surrounding the first opening.
Abstract:
Provided is a method and system for scheduling computing so as to meet the quality of service (QoS) expected in a system by identifying the operation characteristic of an application in real time and enabling all nodes in the system to dynamically change the schedulers thereof organically between each other. The scheduling method includes: detecting an event of requesting a scheduler change; selecting a scheduler corresponding to the event among schedulers; and changing a scheduler of a node, which schedules use of the control unit, to the selected scheduler, without rebooting the node.
Abstract:
According to various embodiments of the disclosure, an electronic device may comprise a housing including a conductive portion, a wireless communication circuit electrically connected with the conductive portion, a first camera module disposed in a first area of the housing proximate to the conductive portion and including a first camera assembly and a flexible circuit board extending from the first camera assembly, a second camera module disposed in a second area of the housing, spaced apart from the first camera module, and including a second camera assembly and a camera bracket covering the second camera assembly and forming at least a partial surface of the housing, and a conductive pattern having at least a portion disposed between the first area and the second area and including a first portion coupled with the first camera module and a second portion coupled with the camera bracket. Other various embodiments are possible.
Abstract:
According to an embodiment, an electronic device may include: a housing including a first surface and a second surface facing away from the first surface; a display at least partially accommodated in the housing and viewable through the first surface; a conductive layer disposed between the display and the second surface and including a first opening; a support disposed between the second surface and the conductive layer and including a conductive portion; and a wireless communication circuit electrically connected to the conductive layer, and configured to transmit and/or receive a signal through an antenna including at least a portion of the conductive layer surrounding the first opening.