Abstract:
Provided are a memory device skipping a refresh operation and an operating method thereof. The memory device includes a memory cell array including N rows; a refresh controller configured to control a refresh operation for the N rows of the memory cell array based on a refresh command; and an access information storage circuit including a plurality of registers configured to store flag information corresponding to each of the N rows, wherein a first value indicates rows that have been accessed, and a second value indicates rows that have not been accessed. The refresh controller is further configured to control whether the refresh operation is performed for a first row of the N rows at a refresh timing for the first row based on the flag information corresponding to the first row
Abstract:
A drum washing machine capable of washing a helmet includes a pulsator installed on a bottom of a drum and configured to be rotatable independently of the drum. A fixing device is configured to detachably fix an object to be washed having a three-dimensional shape to an inner lower side of the drum. A processor is configured to control a water storage process for storing water in the tub in an amount, in which at least a part of the pulsator is submerged, and to control a pulsator to agitate the water inside the tub by rotating the pulsator in a state in which the drum is stopped to maintain a lower position of the object to be washed.
Abstract:
An integrated circuit includes a first circuit, a second circuit, and an inverter. The first circuit receives a first input signal, an inverted clock signal, a first logic level of a first output node, and a logic level of a second output node to determine a second logic level of a first output node. The second circuit receives the first input signal, the clock signal, the first logic level, and the second logic level to determine a logic level of the second output node. The inverter receives a second input signal to output the inverted second input signal to the first circuit or the second circuit. A logic level of the first output node or a logic level of the second output node is output as an output signal when a logic level of the clock signal is a first logic level.
Abstract:
In a sequential circuit, a first stage is configured to charge a voltage of a first node in response to a clock, and to discharge the voltage of the first node in response to the clock, a voltage of a second node, and data; a second stage is configured to charge the voltage of the second node in response to the clock, and to discharge the voltage of the second node in response to the clock and a logic signal; a combinational logic is configured to generate the logic signal based on the voltage of the first node, the voltage of the second node, and the data; and a latch circuit is configured to latch the voltage of the second node in response to the clock.
Abstract:
An electronic device and a method operative therein monitor automatic wakeup events that occur during a power save mode. Wakeup events are monitored for respective applications executable within the electronic device. Applications with processing activity during the power save mode are then listed, on the basis of at least the monitored wakeup events. An indication of which apps are consuming battery power during the power save mode can then be obtained.
Abstract:
An electronic device may include a first housing, a second housing configured to accommodate at least a part of the first housing and guide sliding movement of the first housing, a flexible display including a first display area coupled to the first housing and a second display area extending from the first display area, a gear disposed inside the second housing and configured to move the flexible display, a motor configured to rotate the gear, at least one sensor, and at least one processor. The at least one processor may be configured to identify a state of the electronic device including at least one of a battery current, a battery voltage, an internal consumption current, a battery level, or an electronic device temperature, based on information sensed through the at least one sensor, and control a speed of the motor or discontinue driving of the motor based on the state of the electronic device.
Abstract:
A three-dimensional holographic display device includes a light emitting diode (LED) array including a plurality of light sources controlled to sequentially output light according to a preset pattern, a lens configured to refract light incident from the LED array, a spatial light modulator (SLM) configured to modulate light incident from the lens, and a processor configured to generate a plurality of holographic signals each comprising depth information adjusted according to an arrangement location of each of the plurality of light sources, and for each of the plurality of light sources, control the SLM to modulate the light based on a holographic signal corresponding to the light source.
Abstract:
An electronic device according to an embodiment may include: a battery; a connector including multiple pins; and at least one processor, and wherein the at least one processor is configured to: identify an external electronic device electrically connected through the connector, identify, among at least two supportable current values, a current value of power to be supplied to the external electronic device, and supply power of the battery to the external electronic device through the connector based on the identified current value.
Abstract:
An electronic device includes: a display device, a processor operatively connected to the display device, and a memory operatively connected to the processor. The memory stores one or more instructions that when executed, cause the processor to: determine, as a second screen code value, a code value obtained by reducing a first screen code value corresponding to a luminance value of a screen of the display device by a decrement based on the screen being maintained in a turned on state during a first specific time after a screen-off condition of the display device is satisfied, and change the luminance value of the screen to correspond to the determined second screen code value.
Abstract:
A semiconductor device includes a first standard cell and a second standard cell. A single diffusion break region extending in a first direction is formed in the first standard cell, and a first edge region extending in the first direction and having a maximum cutting depth in a depth direction perpendicular to the first direction is in the first standard cell. A double diffusion break region extending in the first direction is formed in the second standard cell, and a second edge region extending in the first direction and having the maximum cutting depth in the depth direction is formed in the second standard cell.