Patent classifications
H03K5/249
Hybrid digital linear and switched capacitor voltage regulator
An on-die voltage regulator (VR) is provided that can deliver much higher conversion efficiency than the traditional solution (e.g., FIVR, LDO) during the standby mode of a system-on-chip (SOC), and it can save the power consumption significantly, during the connected standby mode. The VR operates as a switched capacitor VR under the low load current condition that is common during the standby mode of the SOC, while it automatically switches to the digital linear VR operation to handle a sudden high load current condition at the exit from the standby condition. A digital proportional-integral-derivative (PID) controller or a digital proportional-derivative-averaging (PDA) controller is used to achieve a very low power operation with stability and robustness. As such, the hybrid VR achieves much higher conversion efficiency than the linear voltage regulator (LVR) for low load current condition (e.g., lower than 500 mA).
Delay based comparator
An analog to digital converter (ADC) comprising: a delay circuit having a complementary signal output; a first comparator having an input coupled to the complementary signal output of the delay circuit, the first comparator having a first output and a second output; a first dummy comparator having a first dummy input coupled to the first output and a second dummy input coupled to the second output, the first dummy comparator having a dummy output; a first interpolation comparator having an interpolation output and a first interpolation input coupled to the first output; a second dummy comparator having an input coupled to the interpolation output; and a second interpolation comparator having a second interpolation input and a third interpolation input, the second interpolation input coupled to the interpolation output and the third interpolation input coupled to the dummy output.
IMAGE SENSOR, METHOD OF CONTROLLING IMAGE SENSOR, AND ELECTRONIC DEVICE
Provided is an image sensor including: a pixel section configured to include a plurality of pixels arranged therein; and an AD conversion unit configured to perform analog-to-digital (AD) conversion on a pixel signal on the basis of a result of comparison between a first voltage of a signal, which is obtained by adding, via capacitances, the pixel signal of the pixel and a reference signal that linearly changes in a direction opposite to the pixel signal, with a second voltage serving as a reference.
LOW KICKBACK NOISE COMPARATOR
A comparator includes an input pair circuit, an isolation circuit, and a latch circuit. The input pair circuit receives first and second input signals to generate first and second signals. The isolation circuit is selectively turned on according to a clock signal to transmit the first signal from the input pair circuit to a first output node and transmit the second signal from the input pair circuit to a second output node. The latch circuit adjusts a level of the first output node to generate a first output signal, adjusts a level of the second output node to generate a second output signal, and selectively resets the levels of the first and the second output nodes according to the clock signal. When the latch circuit resets the levels of the first and the second output nodes, the isolation circuit is not turned on.
Apparatus for offset cancellation in comparators and associated methods
An apparatus includes a comparator. The comparator includes first and second pregain stages, and a switch network coupled to the first and second pregain stages. A plurality of switches in the switch network are operable to provide a feedback path around at least one of the first and second pregain stages. The comparator further includes a latch coupled to the second pregain stage.
IMAGE SENSOR, METHOD OF CONTROLLING IMAGE SENSOR, AND ELECTRONIC DEVICE
Provided is an image sensor including: a pixel section configured to include a plurality of pixels arranged therein; and an AD conversion unit configured to perform analog-to-digital (AD) conversion on a pixel signal on the basis of a result of comparison between a first voltage of a signal, which is obtained by adding, via capacitances, the pixel signal of the pixel and a reference signal that linearly changes in a direction opposite to the pixel signal, with a second voltage serving as a reference.
Avalanche diode arrangement and method for controlling an avalanche diode arrangement
A avalanche diode arrangement comprises an avalanche diode (11) that is coupled to a first voltage terminal (14) and to a first node (15), a latch comparator (12) with a first input (16) coupled to the first node (15), a second input (17) for receiving a reference voltage (VREF) and an enable input (21) for receiving a comparator enable signal (CLK), and a quenching circuit (13) coupled to the first node (15).
Comparator providing offset calibration and integrated circuit including comparator
A comparator configured to calibrate an offset according to a control signal, including an input circuit configured to receive a first input signal and a second input signal, and to generate a first internal signal corresponding to the first input signal and a second internal signal corresponding to the second input signal; a differential amplification circuit configured to consume a supply current flowing from a positive voltage node having a positive supply voltage to a negative voltage node having a negative supply voltage, and to generate an output signal by amplifying a difference between the first internal signal and the second internal signal; and a current valve configured to adjust at least a portion of the supply current based on the control signal.
COMPARATOR CIRCUIT, METHOD FOR CORRECTING MISMATCH AND MEMORY
A comparator circuit includes a first transistor, a second transistor, a load circuit, a first adjustment circuit and a second adjustment circuit. A terminal of the first transistor is coupled to a first node, another terminal of the first transistor is coupled to a first control node, and a gate of the first transistor is configured to receive a first control signal. A terminal of the second transistor is coupled to the first node, another terminal of the second transistor is coupled to a second control node, and a gate of the second transistor is configured to receive a second control signal. A terminal of the load circuit is coupled to a second node, and another terminal of the load circuit is coupled to the first control node and the second control node.
Control circuit and method for detecting bus glitch signal
A control circuit and method for detecting a glitch signal on a bus are provided. The control circuit includes: input ends, respectively receiving a data signal and a clock signal from the bus; a counter, for calculating a time or a number of times in a low level period of the clock signal; a comparator, receiving an output of the time counted by the counter and a threshold value, and generating a comparison result by comparing the time and the threshold value; and an error detector, coupled to the comparator to receive the comparison result, and generating an error flag. When the comparison result indicates that there is a level change during the low level period of the clock signal, the error detector generates an error flag.