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handle: 10197/8637
This paper presents an all-digital phase-locked loop (ADPLL) architecture in a new light that allows it to significantly save power through complexity reduction of its phase locking and detection mechanisms. The natural predictive nature of the ADPLL to estimate next edge occurrence of the reference clock is exploited here to reduce the timing range and thus complexity of the fractional part of the phase detection mechanism as implemented by a time-to-digital converter (TDC) and to ease the clock retiming circuit. In addition, the integer part, which counts the DCO clock edges, can be disabled to save power once the loop has achieved lock. It can be widely used in fields of fractional-N frequency multiplication and frequency/phase modulation. The presented principles and techniques have been validated through extensive behavioral simulations as well as fabricated IC chips.
all-digital phase-locked loop, frequency synthesis, ADPLL, 600, time-to-digital converter, Frequency multiplication, Time-to-digital converter (TDC), Digital-to-time converter (DTC), phase prediction, frequency modulation, All-digital PLL (ADPLL), time-to-digital converter (TDC), Phase modulation, Digitally controlled oscillator (DCO), Frequency modulation, Phase-locked loop (PLL), phase-locke loop (PLL), digitally controlled oscillator, phase modulation, frequency multiplication, Frequency synthesis
all-digital phase-locked loop, frequency synthesis, ADPLL, 600, time-to-digital converter, Frequency multiplication, Time-to-digital converter (TDC), Digital-to-time converter (DTC), phase prediction, frequency modulation, All-digital PLL (ADPLL), time-to-digital converter (TDC), Phase modulation, Digitally controlled oscillator (DCO), Frequency modulation, Phase-locked loop (PLL), phase-locke loop (PLL), digitally controlled oscillator, phase modulation, frequency multiplication, Frequency synthesis
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