Abstract:
An embodiment of a method of enhancing security of internal memory is disclosed. For this embodiment of the method, the application specific block is operated in a functional mode, and a reset of the application specific block is initiated. From a built-in self-test engine, at least one write to the internal memory is initiated in response to the reset initiated, where the at least one write overwrites data stored in the internal memory during a reset mode.
Abstract:
An exemplary heat dissipation device includes an elongated main body, a number of heat sinks, and a number of airflow channels. The main body has a central axis, and includes a first portion and a second portion. The second portion has an end distant from the first portion which is configured for supporting at least one item selected from the group consisting of a solid-state light source and a circuit board having a solid-state light source mounted thereon. The heat sinks are arranged around the first portion in sequence along the central axis of the main body, and spaced from one another. Each heat sink includes a number of fins extending out from the first portion radially. The airflow channel is defined between each two neighboring heat sinks.
Abstract:
A control circuit for controlling an LED device according to an input data signal and a clock signal is disclosed. The control circuit includes at least one first control module. The first control module includes a shift register unit, a latch register unit, an LED driving circuit, and a latch signal generator. The shift register unit includes at least one shift register and is triggered by the clock signal for buffering data transmitted in the input data signal. The latch register unit includes at least one latch register and is triggered by a latch signal for latching data buffered by the shift register. The LED driving circuit is utilized for driving the LED device according to data latched by the latch register. The latch signal generator is used to generate the latch signal according to the input data signal and the clock signal.
Abstract:
A digital dynamic trace adjustment pulse width modulate controller uses a core processing unit to receive a phase signal and outputs a pulse width modulate signal. It is observed that when the output voltage is rising or dropping then changing the pulse width modulate signal of the output end, the duty rate of the phase signal will be maintained at fifty percent degree.
Abstract:
FIG. 1 is a first perspective view of an oral irrigator showing my new design; FIG. 2 is a second perspective view thereof; FIG. 3 is a front view thereof; FIG. 4 is a back 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 a perspective view of another state of the oral irrigator thereof; and, FIG. 10 is an enlarged view of the selected portion 10 in FIG. 1. The broken lines shown in the drawings depict portions of the oral irrigator that form no part of the claimed design.
Abstract:
FIG. 1 is a first perspective view of an oral irrigator showing my new design; FIG. 2 is a second perspective view thereof; FIG. 3 is a front view thereof; FIG. 4 is a back 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; and, FIG. 9 is an enlarged view of the selected portion 9 in FIG. 2. The broken lines shown in the drawings depict portions of the oral irrigator that form no part of the claimed design.
Abstract:
The present invention provides a terminal and method for an idle handoff based on a High Rate Packet Data (HRPD) system. The method includes, when the terminal switches from the HRPD system to a non-HRPD radio access technology system, an HRPD protocol stack of the terminal migrating from a non-tunnel state to a tunnel state. When the terminal is in a handoff area, and performs the idle handoff from the HRPD system to the non-HRPD radio access technology system, the terminal after the handoff is in the tunnel state, and the HRPD session information of the terminal is reserved. Thus, when the terminal switches back to the HRPD system, it is not necessary to perform the HRPD session negotiation again, thereby effectively avoiding the waste of air interface resources and system processing capabilities, and improving efficiency of interconnection and intercommunication between the HRPD system and other radio access technology system.
Abstract:
The present invention discloses a method for a terminal to negotiate application support ability with a base station. The method comprises identifying application subtypes using different subtype values during session negotiation between the terminal and base station. The present invention further discloses a system for a terminal to negotiate application support ability with a base station, wherein the terminal is configured to identify the terminal supported application subtypes using different subtype values during session negotiation with the base station, and/or recognize the base station supported application subtypes identified using different subtype values by the bases station; and the base station is configured to recognize the terminal supported application subtypes identified using different subtype values by the terminal during session negotiation with the terminal, and/or identify the base station supported application subtypes using different subtype values.