Patent classifications
H03K5/156
Duty-cycle-correcting clock distribution architecture
Clock and other cyclical signals are driven onto respective capacitively-loaded segments of a distribution path via inverting buffer stages that self-correct for stage-to-stage duty cycle error, yielding a balanced signal duty cycle over the length of the distribution path.
Clock correction circuit and memory system comprising the clock correction circuit
A clock correction circuit in which a correction accuracy of a duty cycle is increased is provided. The clock correction circuit comprises a delay-locked loop circuit configured to receive a first clock signal and generate a second clock signal obtained by delaying the first clock signal; a first duty cycle correction circuit configured to receive the second clock signal and generate a first correction clock signal obtained by correcting a duty cycle of the second clock signal; and a duty cycle detection circuit which includes a second duty cycle correction circuit and an error code generation circuit, wherein the error code generation circuit receives the first correction clock signal, and generates a first error code as to whether to correct the duty cycle of the second clock signal on the basis of the first correction clock signal, the second duty cycle correction circuit generates a second correction clock signal obtained by correcting the duty cycle of the first correction clock signal in response to the first error code, the error code generation circuit generates a second error code as to whether to correct the duty cycle of the second clock signal on the basis of the second correction clock signal, and the first duty cycle correction circuit receives the second error code, and generates a third correction clock signal obtained by correcting the duty cycle of the second clock signal in response to the second error code.
METHOD AND APPARATUS FOR PHASE-ALIGNED 2X FREQUENCY CLOCK GENERATION
One embodiment relates to a multiple-channel serializer circuit that includes a plurality of one-channel serializers. A one-channel serializer of the plurality of one-channel serializes includes a local 2× frequency clock generator with a non-divider structure. Other embodiments relate to methods of using a non-divider circuit to generate a local 2× frequency clock signal in a one-channel serializer of a multiple-channel serializer. Another embodiment relates to a local 2× frequency clock generator circuit with a non-divider structure. The local 2× frequency clock generator circuit includes a first circuit path which is selected by multiplexers for a first serialization ratio and may also include a second circuit path which is selected by the multiplexers for a second serialization ratio. Other embodiments and features are also disclosed.
DECISION FEEDBACK EQUALIZER AND SEMICONDUCTOR INTEGRATED CIRCUIT
A decision feedback equalizer includes a comparator configured to output a constant voltage in a reset period and to output a differential voltage corresponding to differential input signals in an evaluation period, a latch circuit configured to hold the differential voltage in the evaluation period, and an adjuster configured to adjust a logical threshold of the latch circuit closer to the output voltage in the reset period.
INJECTION-LOCKED OSCILLATOR AND SEMICONDUCTOR DEVICE INCLUDING THE SAME
An injection-locked oscillator includes an oscillator and an injection circuit. The oscillator includes a first oscillation node through which a first oscillation signal is output and a second oscillation node through which a second oscillation signal is output, the second oscillation signal having a phase opposite to that of the first oscillation signal. The injection circuit provides an injection current between the first oscillation node and the second oscillation node according to a reference signal. The injection circuit includes a charging element configured to be charged or discharged in response to a reference signal and to provide the injection current between the first oscillation node and the second oscillation node.
ELECTRONIC CIRCUIT
A spike generation circuit includes a first CMOS inverter connected between a first power supply and a second power supply, an output node of the first CMOS inverter being coupled to a first node that is an intermediate node coupled to an input terminal to which an input signal is input, a switch connected in series with the first CMOS inverter, between the first power supply and the second power supply, a first inverting circuit that outputs an inversion signal of a signal of the first node to a control terminal of the switch, and a delay circuit that delays the signal of the first node, outputs a delayed signal to an input node of the first CMOS inverter, and outputs an isolated output spike signal to an output terminal.
Minimum pulse-width assurance
Various methods and devices that involve pulsed signals are disclosed. An example minimum pulse-width (MPW) circuit comprises a first and second logic circuit. A first input of the first logic circuit is connected to an input of the MPW circuit. A first input of the second logic circuit is communicatively coupled to an output of the first logic circuit. The MPW circuit also comprises a MPW filter circuit communicatively coupled to an output of the second logic circuit, a one-shot circuit communicatively coupled to an output of the minimum pulse-width filter circuit and located on a first feedback path, and another one-shot circuit communicatively coupled to the output of the minimum pulse-width filter circuit and located on a second feedback path. A second input of the first logic circuit is on the first feedback path. A second input of the second logic circuit is on the second feedback path.
Duty cycle correction circuit including a reference clock generator
A duty cycle correction circuit includes a first duty cycle detecting circuit configured to detect a duty cycle of a clock signal with a first resolution; a reference clock generating circuit configured to generate a reference clock signal by adjusting a phase of the clock signal; a second duty cycle detecting circuit configured to detect a duty cycle of the clock signal with a second resolution according to the reference clock signal and the clock signal, the second resolution being finer than the first resolution; a first duty cycle adjusting circuit configured to adjust the duty cycle of the clock signal according to one or more first control signals output from the first duty cycle detecting circuit; and a second duty cycle adjusting circuit configured to adjust the duty cycle of the clock signal according to one or more second control signals output from the second duty cycle detecting circuit.
Duty cycle correction circuit and image sensing device including the same
A duty cycle correction circuit includes a detection block suitable for detecting a duty cycle of a first clock in response to the first clock and a second clock, and a correction block suitable for generating a first corrected clock having a corrected duty cycle relative to the first clock and a second corrected clock having a corrected duty cycle relative to the second clock, based on a detection result of the detection block.
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.