Abstract:
A control method controlling a display panel comprising a pixel unit. The pixel unit is coupled to a data line and comprises a capacitor, a transistor, and a luminiferous device. The capacitor comprises a first terminal coupled to the data line and a second terminal coupled to the transistor. The voltage of the first terminal is increased and the voltage of the second terminal is reduced during a first period. The voltage of the first and the second terminals are controlled during a second period subsequent to the first period. The luminiferous device is lit according to the voltage of the capacitor during a third period subsequent to the second period. The voltage of the data line is maintained during the third period.
Abstract:
An amplifying circuit includes an operational amplifier, a pull-up circuit and a pull-down circuit. The operational amplifier generates a first pull-up signal, a first pull-down signal and an output signal, wherein the phases of the first pull-up signal and the first pull-down signal are out of phase with the output signal. The pull-up circuit includes a first controlling module for outputting a second pull-up signal according to the first pull-up signal, and a first adjusting module for adjusting the output signal according to the second pull-up signal. The pull-down circuit includes a second controlling module for outputting a second pull-down signal according to the first pull-down signal, and a second adjusting module for adjusting the output signal according to the second pull-down signal.
Abstract:
An exemplary method for manufacturing a liquid crystal display (LCD) panel (20) includes: providing a first and a second substrates (21, 22), each substrate including a display region (212, 222), a periphery region (214, 224) surrounding the display region, and a sealant adhesive region (215, 225) located between the display region and the periphery region; forming data lines (223) and gate lines (221), and the data lines and gate lines extending to the periphery region; forming an alignment film (240) on the second substrate, the alignment film covering the display region and the periphery region; rubbing the alignment film; forming a sealant; injecting liquid crystals; attaching the two substrates to form an LCD panel; etching the alignment film to expose end portions of the data lines and gate lines.
Abstract:
An electron emission light-emitting device includes a cathode structure, an anode structure, a fluorescent layer, and a low-pressure gas layer. The fluorescent layer is located between the cathode structure and the anode structure. The low-pressure gas layer is filled between the cathode structure and the anode structure, having a function of inducing the cathode to emit electron uniformly. The low-pressure gas layer has an electron mean free path, allowing at least sufficient amount of electrons to directly impinge the fluorescent layer under an operation voltage.
Abstract:
Disclosed is a scan test data compression method and decoding apparatus for multiple-scan-chain designs. The apparatus comprises a on-chip decoder connected to a tester. The decoder includes a decoding buffer configured as a multilayer architecture, a controller, and a switching box for receiving a shift signal or a copy signal. The decoding buffer is used to store decoded test data. While the decoder decodes the encoded data, it transmits control signals to both the decoding buffer and the switching box from the controller, and sends the decoded data to scan chains of a CUT for testing through the decoding buffer. This invention has the advantages of simple encoding method, high compression rate, low power consumption in testing, and without the fault coverage loss.
Abstract:
A method, apparatus and data structure for managing data in a memory device. The memory device is divided into two volumes. The first volume is intended for storing relatively static data, i.e. data which does not change or is not rewritten frequently. The second volume is intended for storing dynamic data, i.e. data which is changed or rewritten frequently. Each of the volumes is divided into a number of blocks, for example erase blocks, with each block being divided into sectors. In the dynamic volume, each of the erase blocks has one sector allocated for storing metadata, and the remaining sectors in the erase block are available for storing data, other than metadata. In the static volume, each of erase blocks can store more than one sector of metadata, in addition to data other than metadata. The metadata may be stored in consecutive sectors in the erase blocks. According to another aspect, the data structure is suitable for flash disk memory devices and flash disk memory devices used for multimedia applications.
Abstract:
A quick release handlebar stem assembly for a bicycle comprises a stem having a first pivotal connecting portion, a clamping portion formed on the stem, and a clamping member is pivotally connected to the clamping portion, the clamping member is provided with a retained portion; a quick-release locking clamp pivotally coupled the first pivotal connecting portion of the stem; a retainer pivotally coupled to the quick-release locking clamp is provided with a retaining portion for locking the retained portion of the clamping member; wherein the retainer can hook the clamping member when rotating the quick-release locking clamp, so that the clamping member will cooperate with the clamping portion to clamp and release a handlebar of a bicycle.
Abstract:
The present invention provides methods and compositions for isolating and detecting rare cells from a biological sample containing other types of cells. In particular, the present invention includes a debulking step that uses a microfabricated filters for filtering fluid samples and the enriched rare cells can be used in a downstream process such as identifies, characterizes or even grown in culture or used in other ways. The invention also include a method of determining the aggressiveness of the tumor or of the number or proportion of cancer cells in the enriched sample by detecting the presence or amount of telomerase activity or telomerase nucleic acid or telomerase expression after enrichment of rare cells. This invention further provides an efficient and rapid method to specifically remove red blood cells as well as white blood cells from a biological sample containing at least one of each of red blood cells and white blood cells, resulting in the enrichment of rare target cells including circulating tumor cells (CTC), stromal cells, mesenchymal cells, endothelial cells, fetal cells, stem cells, non-hematopoietic cells etc from a blood sample. The method is based upon combination of immuno-microparticles (antibody coated microparticles) and density-based separation. The final enriched target cells can be subjected to a variety of analysis and manipulations, such as flowcytometry, PCR, immunofluorescence, immunocytochemistry, image analysis, enzymatic assays, gene expression profiling analysis, efficacy tests of therapeutics, culturing of enriched rare cells, and therapeutic use of enriched rare cells. In addition, depleted plasma protein and white blood cells can be optionally recovered, and subjected to other analysis such as inflammation studies, gene expression profiling, etc.
Abstract:
A tire parameter sensing system (12) for a vehicle (10) comprises a vehicle-based unit (42) for receiving parameter signals. A tire-based unit (34) is associated with a tire (16) of the vehicle (10) and rotates with the tire (16). The tire-based unit (34) is located in a communication zone (134) for communicating with the vehicle-based unit (42) through only a portion of each rotation of the tire (16). The tire-based unit (34) is configured to sense a parameter of the tire (16) and to transmit a parameter signal (54) indicative thereof. The system (12) also comprises means (78) for monitoring the rotation of the tire and for providing rotation information indicative of the monitored tire rotation. The tire-based unit (34) is responsive to the rotation information for transmitting the parameter signal (54) while the tire-based unit (34) is located the communication zone (134).
Abstract:
A fabrication method for a damascene bit line contact plug. A semiconductor substrate has a first gate conductive structure, a second gate conductive structure and a source/drain region formed therebetween. A first conductive layer is formed in a space between the first gate conductive structure and the second gate conductive structure to be electrically connected to the source/drain region. An inter-layer dielectric with a planarized surface is formed to cover the first conductive layer, the first gate conductive structure, and the second gate conductive structure. A bit line contact hole is formed in the inter-layer dielectric to expose the top of the first conductive layer. A second conductive layer is formed in the bit line contact hole, in which the combination of the second conductive layer and the first conductive layer serves as a damascene bit line contact plug.