Abstract:
The present invention provides a signal processing apparatus and a signal processing method of a man-machine interface. The signal processing method comprises steps of: receiving a first touch signal; recognizing an object corresponding to the first touch signal; determining whether a second touch signal is received while receiving the first touch signal; and selecting the object corresponding to the first touch signal when receiving the second touch signal.
Abstract:
A metal-oxide-semiconductor (MOS) device having a selectable threshold voltage determined by the composition of an etching solution contacting a metal layer. The MOS device can be either a p-type or n-type MOS and the threshold voltage is selectable for both types of MOS devices. The etching solution is either an oxygen-containing solution or a fluoride-containing solution. The threshold voltage is selected by adjusting the flow rate of inert gases into an etching chamber to control the concentration of oxygen gas or nitrogen trifluoride.
Abstract:
A femtocell authentication system includes a femtocell in communication with an Internet protocol multimedia subsystem (IMS) network. The IMS network includes a gateway and a first server. The femtocell includes a global positioning system (GPS) module to obtain geolocation information of the femtocell and transmit the geolocation information to the first server. The first server includes a storage unit and a signal processing unit, the signal processing unit compares the geolocation information with a predetermined geolocation range value in the storage unit and allows the femtocell access to the IMS network according to a determination by the signal processing unit that the femtocell is within the predetermined geolocation range of the IMS network.
Abstract:
An injection-locked frequency divider (ILFD) including a signal injector, an oscillator (OSC), and a buffer stage is provided. The signal injector is configured for receiving an injection signal. The OSC is configured for dividing the frequency of the injection signal, so as to generate a first divided frequency signal, where there is an integral-multiple relation between the frequency of the first divided frequency signal and that of the injection signal. The buffer stage is configured for receiving and boosting the first divided frequency signal, and performing a push-push process on the first divided frequency signal, so as to output a second divided frequency signal, where there is a fractional-multiple relation between the frequency of the second divided frequency signal and that of the injection signal.
Abstract:
A microelectromechanical microphone comprises a shell body, a microelectromechanical microphone chip and an integrated circuit. The shell body having a cavity and an opening, sound from outside enters into the cavity from the opening. The microelectromechanical microphone chip and the integrated circuit are disposed on a circuit layout inside the cavity. A filter is integrated with the microelectromechanical microphone chip at an appropriate location. Sound entered from the opening into the cavity is received by the microelectromechanical microphone chip, then the sound or audio signals are converted to electrical signals through the filter and the integrated circuit, to be transmitted to external electronic devices.
Abstract:
A first substrate and a second substrate are provided. An alignment process is performed on a surface of the first substrate and a surface of the second substrate respectively. A liquid crystal mixture is prepared, where the liquid crystal mixture includes a liquid crystal molecule and a liquid crystal monomer having a functional group of diacrylates, and the liquid crystal monomer having the functional group of diacrylates occupies 0.01-2 wt % of the liquid crystal mixture. The first substrate and the second substrate are assembled, and the liquid crystal mixture is filled therebetween. A polymerization curing process is performed such that the liquid crystal monomer having the functional group of diacrylates is polymerized to respectively form a liquid crystal polymer film on the aligned surfaces of the first and second substrates. The method enhances anchoring energy and reduces problems of V-T shift, surface gliding, and residual image.
Abstract:
The instant disclosure relates to a holding support for electronic device, which includes a case and a bracket. A bracket compartment is formed on the case and defined by an opening formed on the outer surface of the case. The bracket has a body and at least one finger hole formed thereon for sliding a finger through. The bracket can be retracted in or extended from the bracket compartment by being arranged at a retracted position or extended position, respectively. Therefore, the user can firmly secure the electronic device and prevent from dropping it accidentally.
Abstract:
A method for preparing patterned substrate by using nano- or micro-particles is disclosed, which comprises the following steps: (A) providing a substrate with a photoresist layer formed thereon; (B) coating a surface of the photoresist layer with plural nano- or micro-particles, to form a particle layer; (C) exposing and developing the photoresist layer to obtain a patterned photoresist layer; and (D) removing the particle layer. In addition, after the particle layer is removed, the method of the present invention further comprises: (E1) using the patterned photoresist layer as an etching template to etch the substrate; and (E2) removing the patterned photoresist layer to obtain a patterned substrate with plural cavities formed thereon.
Abstract:
Provided are methods of patterning metal gate structures including a high-k gate dielectric. In an embodiment, a soluble hard mask layer may be used to provide a masking element to pattern a metal gate. The soluble hard mask layer may be removed from the substrate by water or a photoresist developer. In an embodiment, a hard mask including a high-k dielectric is formed. In a further embodiment, a protection layer is formed underlying a photoresist pattern. The protection layer may protect one or more layers formed on the substrate from a photoresist stripping process.
Abstract:
A biaxial rotary display module is disclosed, which includes a first casing, a rail disposed on the first casing, a rotary piece arranged in the rail, a second casing having s display panel, and two hinges. The rotary piece has a pivoting portion pivoted to the first casing, and the rotary piece is rotated in the rail. The hinges are disposed on opposite sides of the pivoting portion for connecting the second casing and the rotary piece, thereby causing the second casing able to be pivoted relative to the first casing via the two hinges and swiveled relative to the first casing via the rotary piece.