DocumentCode :
1151183
Title :
Quantification of noisy MRS signals with the pseudo-Wigner distribution
Author :
Leclere, J.H.J.
Author_Institution :
Inst. Montefiore, Liege Univ., Belgium
Volume :
41
Issue :
9
fYear :
1994
Firstpage :
809
Lastpage :
819
Abstract :
Investigates the estimation errors induced by noise in the quantification of damped sinusoids with the pseudo-Wigner distribution (PWD). A constant amplitude single frequency noise is first considered. This simple model shows how underestimation or overestimation errors depend on the relative phase between signal and noise for a fixed signal-to-noise ratio (SNR). In a second step, cross-terms and noise amplitude fluctuations are identified as the main sources of discrepancy between the theoretical model and a practical situation where wideband noise is linearly added to a synthetic free induction decay (FID) signal. Cross-terms can be attenuated by band-pass filtering noise or by using a weighting (or smoothing) window in the PWD. An original procedure is then derived to make an on-line and noise-specific estimation of the statistical error in the quantification step. This property of the Wigner distribution is a unique feature in quantitative magnetic resonance spectroscopy (MRS). Confidence intervals are evaluated for a single damped sinusoid corrupted by 8 random noise sequences with 3 different SNRs, 20, 10 and 5 dB, respectively. They are shown to match the statistical ranges of quantification results obtained with linear regression, until the SNR drops below 10 db. Estimation accuracy of amplitude and damping constant is finally evaluated from the comparison of the Cramer-Rao (CR) lower bounds with the variance of estimation errors. CR-bounds are shown to be nearly achieved at each SNR.
Keywords :
biomedical NMR; medical signal processing; nuclear magnetic resonance spectroscopy; 5 to 20 dB; Cramer-Rao lower bounds; confidence intervals; damped sinusoids; estimation errors variance; noisy MRS signals quantification; quantitative magnetic resonance spectroscopy; random noise sequences; statistical error; synthetic free induction decay signal; weighting window; Band pass filters; Estimation error; Fluctuations; Frequency; Magnetic noise; Noise level; Phase noise; Signal processing; Signal to noise ratio; Wideband; Confidence Intervals; Linear Models; Magnetic Resonance Spectroscopy; Models, Theoretical; Signal Processing, Computer-Assisted;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.312088
Filename :
312088
Link To Document :
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