Abstract:
The display device comprises a printed circuit board, a display panel and a chip on film for connecting the printed circuit board with the display panel. The chip on film comprises a plurality of output pads and a plurality of first test pads which are close to the plurality of output pads and arranged at intervals. The display panel comprises a plurality of input pads in one-to-one correspondence with the plurality of output pads of the chip on film, and a plurality of second test pads which are close to the plurality of input pads of the display panel and arranged at intervals. A gap between two adjacent first test pads of the chip on film overlaps a second test pad of the display panel such that the two adjacent first test pads of the chip on film are connected via the second test pad of the display panel.
Abstract:
The invention provides a pixel array, including N rows and M columns of pixel units, wherein each pixel unit includes two sub-pixels, two adjacent pixel units in the same row include sub-pixels of three colors including a red sub-pixel, a green sub-pixel and a blue sub-pixel, every two adjacent sub-pixels in the same row have different colors, in the pixel array, all the sub-pixels have the same shape, every two adjacent green sub-pixels are provided with a sub-pixel of other color therebetween, and every two adjacent blue sub-pixels are provided with three sub-pixels of other colors therebetween. The invention also provides a display device, a driving method and a driving device. Employing the pixel array of the invention, an image is displayed with a higher visual resolution, and a mask plate for manufacturing the pixel array has a larger minimal size, and the pixel array is manufactured with high yield.
Abstract:
An array substrate, a method for fabricating the array substrate and a display device are described. The array substrate includes: a first gate electrode metal layer; a first gate insulation layer; an active layer on the first gate insulation layer; an etching barrier layer on the active layer; a source-drain metal layer including a source electrode and a drain electrode that contact with two sides of the active layer respectively; a second gate insulation layer on the source-drain metal layer; and a second gate electrode metal layer on the second gate insulation layer. The array substrate has an optimized TFT performance and a reduced gate line resistance, and light may be blocked from irradiating on the active layer, which is beneficial to restrain IR Drop, drifting of TFT threshold voltages or generation of a light-incurred leakage current on the active layer. Performance of the display device is improved.
Abstract:
A display control method and apparatus, and a display apparatus. The method includes: acquiring an actual chromaticity coordinate of light of a mixed color sub pixel; calculating respective proportions of light of primary-color sub-pixels within the light of the mixed-color sub-pixel, according to the actual chromaticity coordinate of the light of the mixed-color sub-pixel and chromaticity coordinates of the light of the primary-color sub-pixels; and determining target luminance data of the mixed-color sub-pixel and target luminance data of the primary-color sub-pixels, according to initial luminance data of the primary-color sub-pixels and the respective proportions of the light of the primary-color sub-pixels within the light of the mixed-color sub-pixel.
Abstract:
An organic electroluminescent display panel and a display apparatus are disclosed. At a first detection phase, aging of the light-emitting device in each sub-pixel is detected one by one. At a display phase, an initial grayscale value for a corresponding sub-pixel is compensated in accordance with the aging of the light-emitting device in each sub-pixel. Moreover, in the display panel the plurality of sub-pixels that belong to the same pixel group share a sense line, such that the number of the wirings in the display panel can be reduced and the number of the signal channels of the driving chip can thus be reduced, leading to a reduced area of the driving chip and a reduced manufacture cost.
Abstract:
An OLED driving compensation circuit and a driving method thereof are provided. The circuit comprises an external compensation module and a driving module comprising a driving transistor and a storage capacitor. The driving transistor is respectively connected with a power supply voltage terminal and an OLED via a first electrode and a second electrode thereof, a first terminal of the storage capacitor is connected with a control electrode of the driving transistor, and a second terminal thereof is connected between the driving transistor and the OLED. The external compensation module is connected between the driving transistor and the OLED and provides a reference voltage to the electrode of the driving transistor connected with the second terminal of the storage capacitor, to reset the voltage on the electrode. The power supply voltage terminal as variable voltage source inputs a first voltage equal to the reference voltage when the voltage is reset.
Abstract:
A detection method of a pixel circuit, a driving method of a display panel, and a display device are disclosed. The pixel circuit includes a driving transistor; and the detection method of the pixel circuit includes: in the first charge cycle, applying a first data voltage to a gate electrode of the driving transistor, acquiring a first sensing voltage at a first electrode of the driving transistor within the first duration after the application of the first data voltage and before the driving transistor is switched off, and determining whether the first sensing voltage is equal to reference sensing voltage.
Abstract:
An Active-Matrix Organic Light Emitting Diode (AMOLED) display apparatus and a brightness compensation method thereof are provided. At an initial compensation stage, a display screen can be subjected to brightness calibration by an image sensor so as to acquire a data voltage compensation value of each sub-pixel when a brightness value of a display panel equals a preset value, a first data voltage is output to a corresponding pixel circuit according to the data voltage compensation value of each sub-pixel, a sensed voltage of each sub-pixel at this stage is used as an initial reference voltage of each sub-pixel when the brightness value of the display panel equals the preset value; and at a subsequent compensation stage, by regulating a data voltage of each sub-pixel, the sensed voltage of each sub-pixel is made to be equal to the corresponding initial reference voltage when the brightness value of the display panel equals the preset value, so as to achieve uniform compensation on brightness of each sub-pixel at the subsequent compensation stage. Thus, not only are uniformity and accuracy of initial brightness compensation improved, but also pixel aging is accurately compensated and uniformity and accuracy of subsequent compensation are improved.
Abstract:
The present disclosure provides an array substrate, a method of producing the same and a display apparatus. The array substrate comprises: N rows of scan lines, N being a natural number; M columns of data lines, which are arranged to cross with the N rows of scan lines, M being a natural number; a display array comprising N×M pixel units defined by the N rows of scan lines and the M columns of data lines; and N columns of leading wires electrically connected to the N rows of scan lines respectively and led out in parallel to the M columns of data lines. It may narrow the frame of the display apparatus.
Abstract:
The image processing apparatus according to the present disclosure may include a reception module configured to receive three-color source data from the outside, and acquire a minimum value of the three-color source data; a data conversion module configured to convert the three-color source data into four-color data including a fourth color, and output the four-color data, a value of data of the fourth color in the four-color data being determined in accordance with the minimum value of the three-color source data and a first ratio of the data of the fourth color; a calculating module configured to calculate display values of the four-color data; and an adjustment module configured to control the data conversion module to adjust the first ratio of the data of the fourth color in accordance with the display values of the four-color data calculated by the calculating module.