Abstract:
FIG. 1 is a perspective view of a notebook computer showing our new design; FIG. 2 is another perspective view thereof; FIG. 3 is a front view thereof; FIG. 4 is a rear view thereof; FIG. 5 is a left side view thereof; FIG. 6 is a right side view thereof; FIG. 7 is a top view thereof; FIG. 8 is a bottom view thereof; FIG. 9 is an enlarged view of the portion, labeled ‘9’ of FIG. 1; FIG. 10 is an enlarged view of the portion, labeled ‘10’ of FIG. 2; FIG. 11 is an enlarged view of the portion, labeled ‘11’ of FIG. 3; FIG. 12 is an enlarged view of the portion, labeled ‘12’ of FIG. 5; FIG. 13 is a perspective view of the notebook computer of FIGS. 1-8 shown in an alternate position; FIG. 14 is a front view thereof; FIG. 15 is a rear view thereof; FIG. 16 is a left side view thereof; FIG. 17 is a right side view thereof; FIG. 18 is a top view thereof; and, FIG. 19 is a bottom view thereof. The evenly-spaced broken lines shown in the drawings illustrate portions of the notebook computer that form no part of the claimed design. The unevenly spaced broken lines indicating areas of the figures shown enlarged form no part of the claimed design. The oblique line shading shown in the drawings indicates a transparent surface. The top surface of the lid of the notebook computer is a transparent surface having no display properties.
Abstract:
An electronic device is provided, including first and second bodies, a processing module, a touch display panel, and at least one sensing unit. The second body is rotatably connected to the first body. The processing module is disposed in the first body or the second body. The touch display panel is disposed on the second body, is coupled to the processing module, and has a main display part, and first and second display parts. The sensing unit is disposed in the first body or the second body and coupled to the processing module. When the sensing unit detects the first and second bodies are folded relative to each other, the processing module is switched to a second mode, wherein in the second mode, the main display part is activated, the first display part and the second display part are adapted to operate synchronously or operate individually.
Abstract:
FIG. 1 is a perspective view of a notebook computer showing our new design; FIG. 2 is another perspective view thereof; FIG. 3 is a front view thereof; FIG. 4 is a rear view thereof; FIG. 5 is a left side view thereof; FIG. 6 is a right side view thereof; FIG. 7 is a top view thereof; FIG. 8 is a bottom view thereof; FIG. 9 is an enlarged view of the portion, labeled ‘9’ of FIG. 1; FIG. 10 is an enlarged view of the portion, labeled ‘10’ of FIG. 2; FIG. 11 is an enlarged view of the portion, labeled ‘11’ of FIG. 3; FIG. 12 is an enlarged view of the portion, labeled ‘12’ of FIG. 5; FIG. 13 is a perspective view of the notebook computer of FIGS. 1-8 shown in an alternate position; FIG. 14 is a front view thereof; FIG. 15 is a rear view thereof; FIG. 16 is a left side view thereof; FIG. 17 is a right side view thereof; FIG. 18 is a top view thereof; and, FIG. 19 is a bottom view thereof. The evenly-spaced broken lines shown in the drawings illustrate portions of the notebook computer that form no part of the claimed design. The unevenly spaced broken lines indicating areas of the figures shown enlarged form no part of the claimed design. The oblique line shading shown in the drawings indicates a transparent surface.
Abstract:
An electronic device is provided, including first and second bodies, a processing module, a touch display panel, and at least one sensing unit. The second body is rotatably connected to the first body. The processing module is disposed in the first body or the second body. The touch display panel is disposed on the second body, is coupled to the processing module, and has a main display part, and first and second display parts. The sensing unit is disposed in the first body or the second body and coupled to the processing module. When the sensing unit detects the first and second bodies are folded relative to each other, the processing module is switched to a first mode. In the first mode, the first and second display parts are adapted to synchronously display or individually display a first message, a second message, or a third message.
Abstract:
An antenna structure having a ground element and an antenna element is provided. The antenna element is disposed on a dielectric substrate, and includes a first radiation portion, a second radiation portion, and a spiral metal line. An end of the first radiation portion is a feeding point of the antenna element, and another end is open. An end of the second radiation portion is electrically coupled to the ground element, and the length of the second radiation portion is greater than that of the first radiation portion. The first radiation portion is surrounded by the second radiation portion. An end of the spiral metal line is coupled to the first radiation portion. The spiral metal line contributes a parallel resonance outside the antenna's operating band, and results in a resonant mode generated within the antenna element's operating band such that the operating bandwidth of the antenna element is increased.
Abstract:
A pixel driving circuit includes a first pixel, a second pixel, and a data driving circuit. Each pixel includes a main region and a sub region. The main region stores a gray level voltage and the sub region stores a gray level voltage corresponding to the gray level voltage stored in the main region when the main region and the sub region display image. In the data driving circuit, first, second, third, and fourth gray level voltages are generated by means of a first selecting circuit outputting first digital data corresponding to the first pixel and second digital data corresponding to the second pixel to the corresponding digital-to-analog converters. The first, second, third, and fourth gray level voltages are distributed to the main and sub regions of the first and second pixels by a second selecting circuit, thereby reducing the number of digital-to-analog converters.
Abstract:
The present invention discloses a method for fabricating a heat-resistant, humidity-resistant oxide-confined vertical-cavity surface-emitting laser (VCSEL) by slowing down the oxidizing rate during a VCSEL oxidation process to thereby reduce stress concentration of an oxidation layer and by preventing moisture invasion using a passivation layer disposed on a laser window. The VCSEL device thus fabricated is heat-resistant, humidity-resistant, and highly reliable. In a preferred embodiment, the oxidation process takes place at an oxidizing rate of less than 0.4 μm/min, and the passivation layer is a SiON passivation layer.
Abstract:
A communication device including a supporting plate and an antenna system is provided. The supporting plate includes a conductive plate and a non-conductive plate. The conductive plate has a first edge and a second edge. The antenna system includes at least two antennas, which are both disposed at the first edge of the conductive plate and operate in at least a first band. A distance between the first edge and the second edge of the conductive plate is about 0.25 wavelength of the lowest frequency in the first band, and the distance is smaller than a length of the first edge.
Abstract:
A method of allocating registers for a processor based on cycle information is disclosed. The processor comprises a first cluster and a second cluster. Each cluster comprises a first functional unit, a second functional unit, a first local register file connected to the first functional unit, a second local register file connected to the second register file, and a global register file having a ping-pong structure formed by a first register bank and a second register bank. After building a Component/Register Type Associated Data Dependency Graph (CRTA-DDG), a functional unit assignment, register file assignment, ping-pong register bank assignment, and cluster assignment are performed to take full advantage of the properties of a processor as well as cycle information.
Abstract:
A working boots includes an upper having a front portion and a rear portion, a sole having a toe portion corresponding to the front portion, a heel portion corresponding to the rear portion of the upper and a protection plate extending upright from the heel portion and surrounding an outer periphery of the heel portion and a seam securely sandwiched between the upper and the sole via stitches and surrounding an outer periphery of the front portion of the upper.