Patent classifications
H03K2005/00065
SerDes receiver with optimized CDR pulse shaping
An optimized pulse shaping clock data recovery system is provided that includes a slicer configured to receive a signal and provide an initial set of tentative decisions to a decision feedforward equalizer, where the decision feedforward equalizer provides a fully equalized output signal. The slicer may be incorporated as part of decision feedback equalizer to provide better quality tentative decisions. The clock data recovery system also receives the first output signal that is partially equalized in such a way as to optimally shape it for a clock to sample it at an ideal location by providing an adjustment signal to the analog to digital controller.
Timing adjustment method for drive circuit and timing adjustment circuit for drive circuit
A timing adjustment method for a drive circuit, including: a rise detector for a rise start when a voltage-driven semiconductor element is turned off; a timing signal output unit outputting a speed change timing signal after a set delay time has elapsed from the rise start; and a conduction controller for a conduction control terminal of the semiconductor element using the timing signal, comprises: defining an estimated terminal voltage of the conduction control terminal when a rise completion time elapses; increasing a delay time by a predetermined unit time, and changing the drive signal to a turning off level again, when the conduction control terminal doesn't fall below the estimated terminal voltage after the drive signal is changed to a turning off level before the level is inverted; and determining a delay time, when the conduction control terminal falls below the estimated terminal voltage initially, as a set value.
PHASE INTERPOLATOR AND CLOCK GENERATING METHOD
A phase interpolator includes a current generating circuit, a current controlling circuit and a signal generating circuit, wherein the current generating circuit is arranged to generate a current; and the current controlling circuit is arranged to generate a control signal to the current generating circuit to control a current value of the current. The signal generating circuit includes a capacitor, wherein the signal generating circuit generates a phase interpolation signal by using the capacitor to receive the current, wherein a phase of the phase interpolation signal is varied according to the current.
Clock Synthesizer
A clock synthesizer is provided. The Clock synthesizer includes a Phase Locked Loop (PLL) configured to generate a clock signal based on a reference signal. A clock buffer is connected to the PLL. The clock buffer is configured to store the clock signal. A Duty Cycle Controller and Phase Interpolator (DCCPI) circuit is connected to the clock buffer. The DCCPI circuit is configured to receive the clock signal from the clock buffer, adjust a duty cycle of the clock signal to substantially equal to 50%, perform phase interpolation on the clock signal, and provide the clock signal as an output after adjusting the duty cycle substantially equal to 50% and performing the phase interpolation.
SERDES RECEIVER WITH OPTIMIZED CDR PULSE SHAPING
An optimized pulse shaping clock data recovery system is provided that includes a slicer configured to receive a signal and provide an initial set of tentative decisions to a decision feedforward equalizer, where the decision feedforward equalizer provides a fully equalized output signal. The slicer may be incorporated as part of decision feedback equalizer to provide better quality tentative decisions. The clock data recovery system also receives the first output signal that is partially equalized in such a way as to optimally shape it for a clock to sample it at an ideal location by providing an adjustment signal to the analog to digital controller.
Clock synthesizer
A clock synthesizer is provided. The Clock synthesizer includes a a Phase Locked Loop (PLL) configured to generate a clock signal based on a reference signal. A clock buffer is connected to the PLL. The clock buffer is configured to store the clock signal. A Duty Cycle Controller and Phase Interpolator (DCCPI) circuit is connected to the clock buffer. The DCCPI circuit is configured to receive the clock signal from the clock buffer, adjust a duty cycle of the clock signal to substantially equal to 50%, perform phase interpolation on the clock signal, and provide the clock signal as an output after adjusting the duty cycle substantially equal to 50% and performing the phase interpolation.
Delay device and delay control method
A delay device and a delay control method are provided. The delay device includes at least one current-controlled delay group and at least one switch. The at least one current-controlled delay group is coupled to a transmission wire, each of the at least one current-controlled delay group includes at least one current-controlled delayer, and each of the at least one current-controlled delayer provides a delay according to a control voltage. The at least one switch is coupled between the at least one current-controlled delay group and the transmission wire, and each of the at least one switch is turned on or off according to a bit of an enable signal applied thereto. In the disclosure, the generated delay can be dynamically adjusted and cannot be affected by parasitic capacitance.
Low-power phase interpolator with wide-band operation
An example clock delivery system includes a phase-locked loop (PLL) configured to generate a plurality of input clocks, a phase interpolator configured to receive the plurality of input clocks and generate a plurality of output clocks, and a clock data recovery (CDR) circuit configured to receive the plurality of output clocks. The phase interpolator includes a decoder having a plurality of inputs configured to receive binary codes and a respective plurality of outputs configured to output thermometer codes, and a mixer circuitry segmented into a plurality of unit circuits that are enabled or disabled based on bits of the thermometer codes.
Oscillator circuit
Aspects of various embodiments of the present disclosure are directed to applications utilizing oscillator circuits. In certain embodiments, an apparatus includes an oscillator circuit having one or more capacitors. The oscillator circuit is configured to generate an oscillating signal by repeated charging and discharging of the capacitors. The apparatus also includes a control circuit connected to the oscillator. The control circuit is configured to set the oscillation frequency of the oscillator circuit as a non-linear function of an input control signal. For instance, in a more specific embodiment, the control circuit may be configured to set oscillation frequency of the oscillator circuit to a frequency scaled by a value raised to an exponent specified by the input control signal.
Dual-edge trigger clock gater
Techniques are disclosed relating to dual-edge triggered clock gater circuitry. In some embodiments, an apparatus includes dual-edge triggered clock gater circuitry configured to generate an output signal based on an input clock signal and a control signal that indicates whether to gate the input clock signal. In some embodiments, the clock gater circuitry includes first and second storage elements. In some embodiments, the clock gater circuitry includes multiplexer circuitry that selects between outputs of the first and second storage elements to generate the output signal. In some embodiments, the clock gater circuitry includes a third storage element configured to store an indication of which of the first and second storage elements stores a first digital value and which stores an inverse of the first digital value when not gating. In some embodiments, the clock gater circuitry includes a buffering element configured, when gating, to copy data stored in one of the first and second storage elements to the other of the first and second storage elements.