H03F3/45076

Systems and methods for error amplification and processing

System and method for error amplification and processing. For example, the system includes: a signal processing unit configured to receive a reference signal and a feedback signal and generate a digital pulse signal, a frequency of the digital pulse signal being associated with a difference between the reference signal and the feedback signal; a counter configured to receive the digital pulse signal and generate a counter output signal based on at least information associated with the digital pulse signal; and a digital-to-analog converter configured to receive the counter output signal and generate an output signal based on at least information associated with the counter output signal.

Bandwidth enhanced gain stage with improved common mode rejection ratio

The present disclosure relates to a gain stage for an amplifier and to the amplifier. The amplifier may be a broad-band amplifier, trans-impedance amplifier and/or driver amplifier. The gain stage includes a differential input transconductor, a loading network and a differential output terminal. Further, the gain stage includes at least one pair of inductances connected within the loading network or between the differential input transconductor and the differential output terminal.

Amplifier circuit and sensor circuit

According to an embodiment, there is provided an amplifier circuit including a first capacitive element, a first GM amplifier, and a second GM amplifier. The first GM amplifier includes a first input node, a second input node, and an output node. The output node is connected to one end of the first capacitive element. The second GM amplifier includes a first input node, a second input node, and an output node. The output node is connected to one end of the first capacitive element and the second input node.

Systems and methods for error amplification and processing

System and method for error amplification and processing. For example, the system includes: a signal processing unit configured to receive a reference signal and a feedback signal and generate a digital pulse signal, a frequency of the digital pulse signal being associated with a difference between the reference signal and the feedback signal; a counter configured to receive the digital pulse signal and generate a counter output signal based on at least information associated with the digital pulse signal; and a digital-to-analog converter configured to receive the counter output signal and generate an output signal based on at least information associated with the counter output signal.

Signal receiving apparatus and programmable gain amplifier having mode-switching mechanism

The present invention discloses a programmable gain amplifier having mode-switching mechanism. An operational amplifier includes a first input terminal, a second input terminal and an output terminal. The second input terminal is coupled to a ground terminal. The output terminal generates an output signal. A variable resistor and a first switch are coupled in series between a first terminal and a second terminal that coupled to the first input terminal. A first variable capacitor and a second switch are coupled in series between the first terminal and the second terminal. A second variable capacitor and a third switch are coupled in series between the first terminal and the ground terminal. A low-pass resistor and a low-pass capacitor are coupled in parallel between the first input terminal and the output terminal. An input resistor is coupled between a signal input terminal and the first terminal to receive an input signal from the signal input terminal. The first, the second and the third switches receive a set of mode-switching signals to switch to form a path or an open-circuit.

Amplifier

The present application discloses an amplifier, including: a positive-end PMOS; a negative-end PMOS; a positive-end NMOS, having a drain coupled to a drain of the positive-end PMOS and outputting a negative-end output signal; a negative-end NMOS, having a drain coupled to a drain of the negative-end PMOS and outputting a positive-end output signal; a first resistor, coupled between a gate of the negative-end NMOS and a negative-end input signal; a second resistor, coupled between a gate of the negative-end NMOS and the positive-end output signal; a third resistor, coupled between a gate of the negative-end PMOS and the negative-end input signal; and a fourth resistor, coupled between a gate of the negative-end PMOS and the positive-end output signal.

DATA DRIVING CIRCUIT AND DISPLAY INCLUDING THE SAME

The present disclosure relates to an offset elimination operation of an internal operational amplifier of a data driving circuit and relates to a technique that applies different offset elimination methods for each position of an operational amplifier.

Differential to single-ended summation circuit with improved common-mode rejection ratio

A differential to single-ended summation circuit includes a first switch which includes a first terminal coupled to a first circuit input and includes a second terminal. The circuit includes a second switch which includes a first terminal coupled to a second circuit input and includes a second terminal. The circuit includes a holding capacitor which includes a first terminal coupled to the second terminal of the first switch and a second terminal coupled to the second terminal of the second switch. The circuit includes a third switch which includes a first terminal coupled to the second terminal of the first switch and a second terminal coupled to a circuit output. The circuit includes a fourth switch including a first terminal coupled to the second terminal of the second switch and a second terminal coupled to a common potential.

Reception circuit

Provided is a reception circuit that suppresses skew of a waveform of a signal and enables high-speed data communication. A reception circuit according to the present disclosure includes: a first differential stage that receives a first input signal and a second input signal at a first input unit and a second input unit, respectively, and causes first and second currents corresponding to the first and second input signals, respectively, to flow; a second differential stage including a first current path that generates and outputs a first amplified signal corresponding to the first current and a second current path that generates and outputs a second amplified signal corresponding to the second current; a power supply line that supplies power to the first and second differential stages; and at least one variable resistance unit provided in the first or second current path.

Differential current buffer circuit and dc and alternating current source comprising the same
12506470 · 2025-12-23 · ·

A differential current buffer circuit comprises a differential input stage supplied from a first positive and a first negative supply voltage. The input stage has a first input circuit connected between first current paths of a first current and a second mirror connected between second positive and negative supply voltages. A second input circuit is connected between first current paths of a third and a fourth current mirror connected between the second positive and negative supply voltages. The second positive voltage is higher than the first positive supply voltage, and the second negative voltage is lower than the first negative supply voltage. A first and a second output of the differential current buffer circuit are tapped off between the respective second current paths of the first and second current mirrors and the respective second current paths of the third and fourth current mirrors, respectively.