Abstract:
Provided is a storage device that performs a read operation by using a time interleaved sampling page buffer. The storage device controls a sensing point in time, when bit lines of even page buffer circuits are sensed, and a sensing point in time, when bit lines of odd page buffer circuits are sensed, with a certain time difference, and performs an Even Odd Sensing (EOS) operation in a stated order of even sensing and odd sensing. The storage device performs a two-step EOS operation and performs a main sensing operation on a selected memory cell according to a result of the two-step EOS operation.
Abstract:
An electronic device according to various embodiments may comprise: a touch-responsive display; a wireless communication circuit configured to transmit/receive a radio signal; a processor operatively connected to the wireless communication circuit and the display; and a memory operatively connected to the processor. The memory may store instructions that, when executed, cause the processor to: transmit user information to a remote computing device outside the electronic device, by using the wireless communication circuit; receive service profiles that differently define the type and/or performance of computing resources used when executing an application, and an application list based on the user information, from the remote computing device through the wireless communication circuit; request the user to select one of the service profiles; display the type and performance of computing resources defined by the selected service profile; produce a graphic user interface configured to display information regarding computing quality exhibited when each application on the application list is executed by using packaging of computing resources defined by the selected service profile; display the graphic user interface through the display; receive selection of a service profile from the user through the graphic user interface displayed on the display; and transmit information regarding the service profile selected through the graphic user interface to the remote computing device through the wireless communication circuit. Various other embodiments are also possible.
Abstract:
Provided are a flexible flat cable and a method of producing the same. The flexible flat cable includes a plate-shaped first insulation portion comprising an insulating material; a first ground, a second ground, and a third ground disposed at predetermined intervals on the first insulation portion; at least one first signal transmission line positioned between the first ground and the second ground and disposed on the first insulation portion; at least one second signal transmission line positioned between the second ground and the third ground and disposed on the first insulation portion; a first second insulation portion disposed on at least a portion of the first ground and at least a portion of the at least one first signal transmission line and the second ground; a second second insulation portion disposed on at least a portion of the second ground and at least a portion of the at least one second signal transmission line, and the third ground; a conductive adhesive layer configured to enclose the first insulation portion, the first second insulation portion, and the second second insulation portion; and a shielding portion comprising a shielding material adhered to an outside of the conductive adhesive layer. Therefore, by improving shielding efficiency of a plurality of signal transmission lines, while having good electromagnetic interference and crosstalk characteristics, a plurality of signals can be simultaneously transmitted.
Abstract:
Disclosed are a nonvolatile memory device and a read method of the nonvolatile memory device. The nonvolatile memory device includes a memory cell array, a row decoder circuit, and a page buffer circuit including first latches and second latches. The page buffer circuit respectively latches first sensing values, which are based on data stored in adjacent memory cells, at the first latches and respectively latches second sensing values, which are based on data stored in selected memory cells, at the second latches at least two times.
Abstract:
A non-volatile memory device receives a read command and an address from a controller, and performs a data recovery read operation in response to the read command. In the data recovery read operation, an operation of obtaining aggressor group information from a memory cell connected to a word line adjacent to a word line selected according to the address, and an operation of recovering data corresponding to the obtained aggressor group information in a memory cell connected to the word line selected according to the address, are repeatedly performed on each of a plurality of aggressor groups.
Abstract:
An electronic device for processing an audio signal is provided. The electronic device includes a communication circuit, a microphone, a connector and a processor. The processor identifies whether the external cable connected with a first external electronic device and including a resistor having a resistance value equal to or greater than a designated resistance value is connected to the connector, and in response to identifying that the external cable is connected to the connector, transmit a first audio signal to the first external electronic device through the external cable, and receive a second audio signal including an echo signal and a voice signal through the microphone, and cancel the echo signal corresponding to the first audio signal, based at least partly on a delay time corresponding to the external cable and a parameter related with a filter corresponding to the external cable.
Abstract:
A non-volatile memory device includes a sensing mode selector configured to select a sensing mode according to environment information. A page buffer senses a data state of a memory cell in one of a plurality of sensing methods, depending upon the selected sensing mode. Memory device operations include high speed program operations, high speed verify operations, high reliability accurate program operations, and high reliability accurate verify operations.