DocumentCode :
64727
Title :
A Fundamental Limitation of DC-Free Quantization Noise With Respect To Nonlinearity-Induced Spurious Tones
Author :
Familier, Eythan ; Galton, Ian
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of California at San Diego, La Jolla, CA, USA
Volume :
61
Issue :
16
fYear :
2013
fDate :
Aug.15, 2013
Firstpage :
4172
Lastpage :
4180
Abstract :
Fractional-N phase-locked loops (PLLs) are widely used to synthesize local oscillator signals for modulation and demodulation in communication systems. Such PLLs generate and subsequently lowpass filter DC-free quantization noise as part of their normal operation. Unfortunately, the quantization noise and its running sum inevitably are subjected to nonlinear distortion from analog circuit imperfections which causes spurious tones in the PLL output signal that can degrade communication system performance. This paper presents the first general mathematical analysis of this phenomenon. It proves that if the running sum of the quantization noise, t[n], satisfies tlow <; t[n] ≤ thigh for all n, where tlow and thigh are integers, then subjecting t[n] to kth-order distortion for at least one k ∈ {1, 2, 3..., thigh - tlow} will result in spurious tones for most fractional-N PLL output frequencies regardless of how the quantization is performed. It also shows that quantizers exist which are optimal in the sense that subjecting the running sum of their quantization noise to th-order distortion for any k ∈ {1, 2, 3..., thigh - tlow - 1} does not result in any spurious tones. In a typical fractional-N PLL, the larger the range of t[n] the greater the power of the PLL´s phase noise, so these results imply a fundamental tradeoff between phase noise power and spurious tones in PLLs.
Keywords :
demodulation; low-pass filters; mathematical analysis; modulation; phase locked loops; quantisation (signal); PLL output signal; PLL´s phase noise; analog circuit imperfections; communication systems; dc-free quantization noise; demodulation; fractional-N PLL output frequencies; fractional-N phase-locked loops; fundamental limitation; local oscillator signals; low-pass filter DC-free quantization noise; mathematical analysis; modulation; nonlinear distortion; nonlinearity-induced spurious tones; phase noise power; quantization noise; spurious tones; DC-free quantization noise; noise-shaping quantizers; phase-locked loops; spurious tones;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2013.2263504
Filename :
6516942
Link To Document :
بازگشت