Abstract:
An electronic device that can provide both a mirror function and a user interface. A controller executes the mirror function is coupled to a display that outputs at least one of a mirror function and a user interface. A sensor senses a user approaching the front of the display and captures an image of a target object in front of the display; an input element that receives an input from the user. The controller controls a process of identifying the body region of the user reflected in the display by use of an image captured by the sensor, checks whether the user interface displayed on the display at least partially overlaps display of a body region of the user reflected in the display, and controls the display to rearrange and display the user interface in a region where the body is not being reflected.
Abstract:
A data storage method and system of the portable terminal for storing data efficiently through a synchronization service are provided. The data storage method of a portable terminal includes determining whether a residual storage space of a data storage region of the portable terminal is equal to or less than a predetermined threshold value, performing, when the residual storage space is equal to or less than the threshold value, a packet data protocol context activation procedure, determining whether a new data save command is detected, storing, when the new data save command is detected, the new data in the residual storage space, and increasing the residual storage space to be equal to or greater than the threshold value by at least one of deleting synchronization-complete data among synchronization-enabled data stored in the portable terminal and transferring synchronization-incomplete data to a predetermined synchronization service server.
Abstract:
A display panel is provided. The display panel according to an embodiment includes a thin film transistor glass substrate, a plurality of micro light emitting diodes (LEDs) arranged on one surface of the thin film transistor glass substrate, and a plurality of side wirings formed at an edge of the thin film transistor glass substrate to electrically connect the one surface of the thin film transistor glass substrate to an opposite surface to the one surface.
Abstract:
Various embodiments of the present disclosure relate to an electronic device for supporting a user input and a control method of the electronic device, and the disclosed electronic device may: identify occurrence of a first event; display a first user interface, provided by a first application program, on a display according to the occurrence of the first event; receiving, through the first user interface, a user input including an indicator indicating a category; and when the user input is received, display, on the display, a category corresponding to the user input among at least one category provided by a second application program. Various other embodiments are possible.
Abstract:
A display substrate is disclosed. The disclosed display substrate can comprise: a thin film transistor substrate; a plurality of micro LEDs arranged on one surface of the thin film transistor substrate; a rear substrate having one surface coupled to the other surface of the thin film transistor substrate, and having at least a part of an edge protruding further than the edge of the thin film transistor substrate so as to form a stepped part together with the thin film transistor substrate; and a plurality of wirings formed on the stepped part and the other surface of the rear substrate so as to electrically connect the one surface of the thin film transistor substrate and the other surface of the rear substrate.
Abstract:
A display module, including a glass substrate on which a thin film transistor (TFT) is formed; and a sub-pixel disposed on the TFT, wherein the TFT includes: a first electrode; a second electrode spaced apart from the first electrode; a source pad spaced part from the second electrode in a perpendicular direction and electrically connected to the second electrode; and a gate pad disposed below the source pad, wherein the sub-pixel includes a light emitting diode (LED), wherein the LED is connected to the first electrode and the second electrode, and wherein the source pad is extended toward the second electrode beyond the first electrode facing a space between the first electrode and the second electrode in an upward direction, and facing a portion of the gate pad in a downward direction.
Abstract:
A display panel is provided. The display panel according to an embodiment includes a thin film transistor glass substrate, a plurality of micro light emitting diodes (LEDs) arranged on one surface of the thin film transistor glass substrate, and a plurality of side wirings formed at an edge of the thin film transistor glass substrate to electrically connect the one surface of the thin film transistor glass substrate to an opposite surface to the one surface.
Abstract:
A display panel includes a driving circuit layer disposed on a glass and including a first driving circuit and a second driving circuit, and an inorganic light emitting device mounted on the driving circuit layer to be electrically connected to the first driving circuit, and including a sub pixel of the display panel. wherein the first driving circuit includes a pulse amplitude modulation driving circuit for controlling an amplitude of a driving current provided to the inorganic light emitting device, and a pulse width modulation driving circuit for controlling a light emitting duration of the inorganic light emitting device. The second driving circuit is arranged in an area excluding an area in which the first driving circuit is arranged in the driving circuit layer, and to generate a control signal for driving the first driving circuit and provide the generated control signal to the first driving circuit.
Abstract:
A light emitting diode (LED) panel is provided. The LED panel includes a thin-film transistor (TFT) backplane which includes a plurality of LED bonding areas, and a plurality of LEDs which are respectively bonded to the plurality of LED bonding areas, wherein the plurality of LED bonding areas are formed to have different heights on the TFT backplane according to an LED type bonded thereto, and wherein a relatively thin LED from among the plurality of LEDs is bonded to an LED bonding area of a relatively low height from among the plurality of LED bonding areas.