Abstract:
Systems, methods, and computer-readable media for providing indications of object attributes to users via image capturing devices are provided. In one embodiment, scene data associated with a detectable area is obtained. The scene data is utilized to identify an object attribute associated with a set of objects, such as faces, within the detectable area. An indication of the object attribute is provided via an image capturing device.
Abstract:
A display apparatus includes a first substrate including a plurality of pixels, a first electrode arranged on the first substrate, a second substrate facing the first substrate, and a second electrode arranged on the second substrate and spaced apart from the first electrode, the second electrode to form an electric field in cooperation with the first electrode. At least one of the first and second electrodes includes a transparent conductive nanomaterial having a transmittance of no less than 73% to no more than 100% and a sheet resistance of 0 ohms to 100 ohms.
Abstract:
Systems, products, and methods are disclosed for providing an indication of unavailable media products. An illustrative method includes referencing one or more attributes of a currently present media file, based on the attributes, determining a set of absent media files that are related to the present media file but not currently available for presentation via the device, and presenting indications of at least a portion of the absent media files of the set. An indication of one or more absent media files may be presented to a user so that the user may recognize absent media files. In one embodiment, such an indication may include an identifier, such as text or a symbol, that is positioned adjacent a media attribute that describes the absent media file.
Abstract:
A method of fabricating a flexible display device. The method includes forming an adhesive layer on a first carrier substrate; laminating a first flexible substrate on the adhesive layer, so that a first separation layer of the first flexible substrate is disposed on the adhesive layer; forming a thin film transistor array on the first flexible substrate; and separating the first carrier substrate from the flexible substrate by directing a laser beam onto the first separation layer. The first separation layer comprises silicon nitride (SiNx) with amounts of nitride A1 and amounts of silicon B1 satisfying 0.18≦{A1/B1}≦0.90.
Abstract:
A display apparatus includes a first substrate, a second substrate, and a blocking layer disposed on the first substrate adjacent to an outer edge of the first substrate. The second substrate includes first and second areas. The first area faces the first substrate. The outer edge of the first substrate is aligned with a boundary between the first area and the second area of the second substrate.
Abstract:
A touch screen display device includes a common electrode, a base substrate disposed opposite to the common electrode, a display signal line formed on the base substrate, a plurality of pixel electrodes, a touch position sensing part formed between the base substrate and the pixel electrodes, the touch position sensing part sensing a change of electrostatic capacitance formed between the common electrode and the touch position sensing part, and a display layer disposed between the common electrode and the pixel electrodes. The display layer includes a plurality of micro capsules comprising positively charged pigment particles and negatively charged pigment particles.
Abstract:
An electrophoretic display device and a manufacturing method thereof are provided. The manufacturing method includes forming a first mother substrate that has a first thin structure, and forming a second mother substrate that has a second thin structure. The second mother substrate faces the first mother substrate. The manufacturing method also includes disposing an electrophoretic material on one of the first mother substrate and the second mother substrate, and enclosing a region on which the electrophoretic material is disposed with a sealant. The manufacturing method further includes combining the first mother substrate and the second mother substrate using pressure applied thereto to form an electrophoretic layer between the first mother substrate and the second mother substrate.
Abstract:
A method of fabricating a flexible display device. The method includes forming an adhesive layer on a first carrier substrate; laminating a first flexible substrate on the adhesive layer, so that a first separation layer of the first flexible substrate is disposed on the adhesive layer; forming a thin film transistor array on the first flexible substrate; and separating the first carrier substrate from the flexible substrate by directing a laser beam onto the first separation layer. The first separation layer comprises silicon nitride (SiNx) with amounts of nitride A1 and amounts of silicon B1 satisfying 0.18≦{A1/B1}≦0.90.
Abstract:
Provided is a substrate for a liquid crystal display which is resistant to deformation. The substrate includes a flexible substrate, first and second barrier layers respectively disposed on first and second surfaces of the flexible substrate, and first and second hard coating layers respectively disposed on the first and second barrier layers.
Abstract:
A display device includes first and second plastic substrates. The first substrate is directly bonded to the second plastic substrate by heat and pressure. When the display device is manufactured, a process of forming a coupling member interposed between the first and second plastic substrates may be omitted, thereby preventing deterioration of reliability of the display device due to the coupling member.