Abstract:
An information analysis system is provided, which includes a data loading unit to retrieve data from a document, a storage unit to store the data, a correlation analysis unit to compute at least one correlation index to represent the correlation between the data stored at the storage unit, and a mapping unit to show the correlation between the data on a map based on the correlation index. As a result, technical trends or prospect technology are analyzed.
Abstract:
A liquid crystal display and method of fabrication are provided, the liquid crystal display having a pixel electrode with a plurality of interconnected partitions, and a common electrode disposed opposite to the pixel electrode and having a plurality of apertures, where the plurality of partitions and the plurality of apertures define domains for generating electric fields, and at least one of the domains has at least one oblique side that is oblique to the length direction of that domain.
Abstract:
A first electrode 14 provided in a liquid crystal display device of a vertical alignment mode includes, for each picture element region, a lower conductive layer 11, a dielectric layer 12 covering the lower conductive layer 11, and an upper conductive layer 13 provided on one side of the dielectric layer 12 which is closer to a liquid crystal layer 30. The upper conductive layer 13 includes an upper layer opening 13a, and the lower conductive layer 11 includes a lower layer opening 11a, thus forming first, second and third regions (R1, R2, R3) having gradually decreasing electric field strengths. Liquid crystal molecules 30a of the liquid crystal layer 30 in an orientation-regulating region T1 in which the first, second and third regions are arranged in this order in a predetermined direction change the orientation direction thereof so that they are inclined in a single direction in the presence of an applied voltage.
Abstract:
An active matrix liquid crystal display device includes a pair of substrates and a liquid crystal layer, a video signal lines and scan signal lines delimiting pixel areas having pixel electrodes and display electrodes, reference electrodes and active devices. The display electrodes are arranged on one of the substrates, and the reference electrodes are arranged on another of the substrates. A part of the reference electrodes have a first layer formed in the substrate side and a second layer formed in the liquid crystal layer side. Each of the display electrodes and the reference electrodes has a slit, the slit of the display electrodes and the slit of the reference electrodes being shifted with respect to one another in plan view.
Abstract:
Disclosed is a liquid crystal display capable of high quality image and bright display. Gate signal lines are curved at near switching elements of the liquid crystal display. A pixel area is defined by the gate signal lines and their intersecting data signal lines. Pixel electrodes and common electrodes are disposed along a longitudinal direction of a pixel. A pixel signal and a common signal line is connected to the pixel electrode and the common electrode respectively. A storage capacitor may be formed in the middle of a longitudinal direction of the pixel, or where generally a texture may arise during display. One half of the pixel may be symmetrical with the other half with respect to the storage capacitor. A common signal line may be parallel with the data signal line and be disposed nearer to the data signal line than a pixel signal line. The pixel may be disposed symmetrically with respect to the data signal line therebetween. The pixel shape may also be repeated in the direction of the gate signal line.
Abstract:
An active matrix liquid crystal display device includes substrates, a liquid crystal layer therebetween, video signal lines and scan signal lines formed on one of the substrates, and pixel electrodes connected to one of the video signal lines through an active device. Pixel areas, which are defined by the video signal lines and the scan signal lines which are formed in the shape of a matrix, have display electrodes, reference electrodes and the active device arranged therein. The display electrodes are arranged on one of the substrates, and the reference electrodes are arranged on another of the substrates, and each of the display electrodes and the reference electrodes has a slit. The slit of the display electrodes and the slit of the reference electrodes are shifted with respect to one another in plan view.
Abstract:
The liquid crystal display device of the present invention includes a first substrate, a second substrate, and a vertical alignment type liquid crystal layer provided between the first substrate and the second substrate, and includes a plurality of picture element regions each defined by a first electrode provided on one side of the first substrate that is closer to the liquid crystal layer and a second electrode provided on the second substrate so as to oppose the first electrode via the liquid crystal layer. The first substrate includes a first orientation-regulating structure in each of the plurality of picture element regions, the first orientation-regulating structure exerting an orientation-regulating force so as to form a plurality of liquid crystal domains in the liquid crystal layer, each of the liquid crystal domains taking a radially-inclined orientation in the presence of an applied voltage. The second substrate includes a second orientation-regulating structure in a region corresponding to at least one of the plurality of liquid crystal domains, the second orientation-regulating structure exerting an orientation-regulating force for orienting liquid crystal molecules in at least one liquid crystal domain into a radially-inclined orientation at least in the presence of an applied voltage.
Abstract:
An MVA liquid crystal display which is high in brightness and has preferable characteristics is provided. Further, the MVA liquid crystal display with a preferable display quality as well as a larger margin in fabrication and a higher yield is provided. A first substrate having a first electrode, a second substrate having a second electrode corresponding to a display pixel, the liquid crystal having negative dielectric anisotropy sealed between the first and the second substrates, and a structure which is provided on each of the first and the second substrate to control an alignment of the liquid crystal are provided. The structure in the first substrate has a linear protrusion structure and provides at least two auxiliary protrusion structures opposing to each end portion facing to the second electrode extending from a protrusion structure provided and the width between the two auxiliary protrusions and the opposing second electrode is more than 6 μm respectively.
Abstract:
A liquid crystal display having a partitioned pixel electrode and a common electrode with apertures. The pixel electrode is formed in a pixel area defined by intersections of gate lines and data lines over a first substrate, and includes a plurality of partitions and a plurality of connecting members connecting the partitions. The common electrode is formed on a second substrate opposite the first substrate, and has a plurality of apertures forming means for defining domains along with the partitions of the pixel electrode. Each domain has two long sides perpendicular or parallel to the gate lines, short sides perpendicular to the long sides, and oblique sides which make an angle of about 120 to about 150 degrees or about 135 to about 180 degrees with the long sides. A drain electrode extends so that the oblique sides elongated by a repairing connection are not affected by a storage electrode.
Abstract:
A liquid crystal display includes a first substrate, a plurality of first field-generating electrodes formed on the first substrate and having a first cutout, a second substrate facing the first substrate, and a plurality of second field-generating electrodes formed on the second substrate and having a second cutout. A liquid crystal display further includes a liquid crystal layer formed between the first and second substrates, wherein the second field-generating electrode is thicker than the first field-generating electrode, and a width of the first cutout is narrower than a width of the second cutout.