Abstract:
In one embodiment of the invention, a display is provided. The display includes a light-emitting system including a plurality of light-emitting units, wherein each light-emitting unit emits light independently, a lens array including a plurality of lenses disposed on the light-emitting system, and a first liquid crystal display cell including a plurality of pixels disposed on the lens array, wherein the number of the light-emitting units of the light-emitting system is larger than that of the pixels of the first liquid crystal display cell.
Abstract:
The present invention relates to a display device, comprising: a display unit comprising a pixel layer; a backlight unit; and a modulation unit disposed between the display unit and the backlight unit, wherein the modulation unit comprises a plurality of conductive layers and a liquid crystal layer disposed between the plurality of conductive layers, and the liquid crystal layer comprises a polymer dispersed liquid crystal (PDLC) or a polymer stabilized liquid crystal (PSLC).
Abstract:
A liquid-crystal display (LCD) includes a backlight unit, a display module and a barrier. The display module is disposed above the backlight unit and has plural pixels. Each of the pixels includes at least three differently-colored sub-pixels, and the differently-colored sub-pixels at adjacent columns are in a shifting arrangement. The barrier is disposed correspondingly to the display module, and has several slanted transparent slits. The transparent slits substantially expose at least parts of regions of the sub-pixels corresponding to the same viewing position. The sub-pixels are rectangular, rhombus or hexagonal in shape.
Abstract:
A display apparatus comprising a display panel, a light module and a haze element is provided. The light module comprises a light guide plate, a plurality of light guide elements and a first light emitting unit. The light guide plate comprises at least a light-entering surface and two opposite side surfaces. The light guide elements are disposed on at least one of the two side surfaces. The first light emitting unit is disposed on the light-entering surface. The haze element, disposed on the upper surface or the lower surface of the display panel, has a haze ranging between 1% and 10%. After the light emitted from the first light emitting unit enters the light guide plate, the light with the bright state being staggered with the dark state is guided from one of the side surfaces of the light-guiding plate.
Abstract:
An adjusting method for a three dimensional image display system, comprising following steps. A three dimensional image displaying function is activated to display a three dimensional image. An adjusting pattern is displayed on the display device. An adjusting function is performed according to the adjusting pattern to obtain an adjusting result. A computing result is generated according to the adjusting result. An adjusted image is displayed on the display device according to the computing result.
Abstract:
A liquid-crystal display (LCD) includes a backlight unit, a display module and a barrier. The display module is disposed above the backlight unit and has plural pixels. Each of the pixels includes at least three differently-colored sub-pixels, and the differently-colored sub-pixels at adjacent columns are in a shifting arrangement. The barrier is disposed correspondingly to the display module, and has several slanted transparent slits. The transparent slits substantially expose at least parts of regions of the sub-pixels corresponding to the same viewing position. The sub-pixels are rectangular, rhombus or hexagonal in shape.
Abstract:
A three-dimensional display includes a display module, a back light module (BLU) and a barrier module. The barrier module disposed above the display module includes a first substrate, a second substrate and a display material sandwiched therebetween. The first substrate has a first electrode layer which includes plural first wide and narrow electrodes interlaced in order, and plural first gaps turned on between adjacent first wide and narrow electrodes. The second substrate has a second electrode layer including plural second wide and narrow electrodes interlaced in order, and second gaps turned on between adjacent second wide and narrow electrodes. The second narrow electrodes are positioned correspondingly to the first wide electrodes, while the second wide electrodes are positioned correspondingly to the first narrow electrodes. The first and second electrode layers are driven to present barrier patterns in the odd frames and even frames, respectively.