Patent classifications
H03K5/00006
METHODS AND DEVICES FOR DIGITAL CLOCK MULTIPLICATION OF A CLOCK TO GENERATE A HIGH FREQUENCY OUTPUT
A digital clock multiplier (DCM) circuit including: a plurality of power amplifier (PA) rows, wherein each PA row comprises a plurality of cascade switched capacitor power amplifiers (SCPA) unit cells configured to: receive a phase shift of a driving clock phase; and one or more processors configured to: disable of one or more of the plurality of cascade SCPA unit cells based on a frequency of the phase shift; generate an output signal for each of the cascade SCPA unit cells; and combine the output signal for each of the cascade SCPA unit cells to generate an PA row output signal.
EMBEDDED PATTERN GENERATOR
An example apparatus includes multiplexer circuitry configured to couple a communication module to at least one of a data bus input or a test signal; and embedded pattern generator (EPG) circuitry coupled to the multiplexer circuitry, the EPG circuitry including: clock divider circuitry including a plurality of clock outputs, the clock divider circuitry configured to be coupled to an output of a clock, the plurality of clock outputs configured to be of a frequency equal to a division of a frequency of the output of the clock; a multiplexer including a multiplexer output, the multiplexer configured to couple one of the plurality of clock outputs to the multiplexer output; and signal generator circuitry including an input clock, an EPG input, and a plurality of data outputs, the input clock coupled to the multiplexer output, the signal generator circuitry configured to generate a data stream.
CLOCK CONVERSION DEVICE, TEST SYSTEM HAVING THE SAME, AND METHOD OF OPERATING TEST SYSTEM
Provided are a clock conversion device, a test system including the same, and a method of operating the test system. The clock conversion device includes a first clock generator configured to receive a first input clock signal from test logic and generate a first clock signal of which a frequency is multiplied and a phase is locked; a clock conversion circuit configured to receive the first clock signal and generate one or more second clock signals by converting at least one clock characteristic of the first clock signal; and an output selector configured to output any one of the first clock signal and the one or more second clock signals as an output clock signal, wherein the clock conversion device is configured to provide the output clock signal to a device under test (DUT).
METHODS AND SYSTEMS FOR ATOMIC CLOCKS WITH HIGH ACCURACY AND LOW ALLAN DEVIATION
A system comprises a digital processing circuit, a frequency modulator, an amplitude modulator, and an adder. The digital processing circuit receives an input signal and a correlation signal and generates a frequency tuning parameter and an amplitude modulation parameter. The frequency modulator generates a frequency modulation signal and the correlation signal. The amplitude modulator receives the amplitude modulation parameter and generates an amplitude modulation signal. The adder receives the frequency tuning parameter and the frequency modulation signal and generates a control signal. In some implementations, the system further comprises a DC feedback circuit that receives the input signal and generates a DC compensation signal. In some implementations, the system further comprises a temperature sensor, a temperature compensation circuit, and a second adder.
APPARATUS AND METHODS FOR PRODUCING STABLE CLOCK SIGNALS BASED ON A VARYING FREQUENCY SOURCE CLOCK
In some aspects, the techniques described herein relate to a system on a chip (SoC) including a first clock divider configured to: receive an oscillator signal at a first frequency; produce, based on the oscillator signal: a first clock signal at the first frequency; and a second clock signal at a second frequency, the second frequency being a division of the first frequency. The first clock divider can selectively provide the first clock signal or the second clock signal as a first output clock signal based on a scaling configuration signal. The first clock divider can produce a frequency indication signal indicating, in combination with the first output clock signal, a start of a new clock period of the second clock signal. The SoC can include a second clock divider configured to provide a second clock output signal based on the first output clock signal and the frequency indication signal.
Control method and semiconductor integrated circuit
A semiconductor integrated circuit includes a clock controller generating a clock; and a plurality of blocks that operate by using the clock. The clock controller performs statistical processing for the plurality of blocks, controls a frequency of the clock to a first frequency, changes the frequency of the clock from the first frequency to a second frequency, generates the clock of the second frequency after a time predicted by the statistical processing as a time for which the second frequency is to be continued elapses from a timing when the frequency of the clock is changed, and supplies the generated clock to the blocks. The clock controller generates a third frequency clock obtained by decimating down the second frequency from the first frequency according to a time for which the first and second frequencies are to be continued after the frequency of the clock is changed from the second frequency to the first frequency, and supplies the generated clock to the blocks.
And gates and clock dividers
An AND gate comprises: a first input; a second input; an output; and a plurality of field effect transistors, FETs, each having a respective first terminal, a respective second terminal, and a respective gate terminal to which a voltage may be applied to control a conductivity of a respective channel between the respective first terminal and the respective second terminal. The plurality of FETs comprises: a first FET having its first terminal directly connected to the first input, its second terminal directly connected to the output, and its gate terminal directly connected to the second input; a second FET having its first terminal directly connected to the first input, its second terminal directly connected to the output, and its gate terminal directly connected to the output; and a third FET having its first terminal directly connected to the second input, its second terminal directly connected to the output, and its gate terminal directly connected to the output. Also disclosed is a clock divider stage for receiving a first clock signal oscillating at a first frequency and a second clock signal, the second clock signal being an inversion of the first clock signal, and generating a first output clock signal oscillating at half of the first frequency.
Multimode Frequency Multiplier
This disclosure describes apparatuses, methods, and techniques for implementing a multimode frequency multiplier. In example implementations, an apparatus for generating a frequency includes a multimode frequency multiplier. The multimode frequency multiplier includes a multiphase generator and a reconfigurable frequency multiplier. The multiphase generator is configured to produce a first signal including multiple phase components and having a first frequency. The reconfigurable frequency multiplier is coupled in series with the multiphase generator. The reconfigurable frequency multiplier is configured to produce a second signal based on the first signal and having a second frequency that is a multiple of the first frequency.
LOW-POWER HIGH-SPEED CMOS CLOCK GENERATION CIRCUIT
A low-power clock generation circuit has a phase generator that receives an input clock signal and uses the input clock signal to generate multiple intermediate clock signals with different phase shifts, a phase rotator circuit that outputs phase-adjusted clock signals, a frequency doubler circuit that receives a plurality of the phase-adjusted clock signals and outputs two frequency-doubled clock signals having a 180° phase difference, and a quadrature clock generation circuit that receives the two frequency-doubled clock signals and provides four output signals that include in-phase and quadrature versions of the two frequency-doubled clock signals.
Clock generator for frequency multiplication
A clock generator includes a pulse generator and a duty cycle correction circuit. The pulse generator is configured to receive an input clock signal and generate a pulse signal according to the input clock signal. The duty cycle correction circuit, coupled to the pulse generator, is configured to adjust a duty cycle of the pulse signal to generate an output clock signal.