DocumentCode
1764375
Title
Estimation of multipath transmission parameters for quantitative ultrasound measurements of bone
Author
Dencks, Stefanie ; Schmitz, Guido
Author_Institution
Inst. for Med. Eng., Ruhr-Univ. Bochum, Bochum, Germany
Volume
60
Issue
9
fYear
2013
fDate
Sep. 2013
Firstpage
1884
Lastpage
1895
Abstract
When applying quantitative ultrasound (QUS) measurements to bone for predicting osteoporotic fracture risk, the multipath transmission of sound waves frequently occurs. In the last 10 years, the interest in separating multipath QUS signals for their analysis awoke, and led to the introduction of several approaches. Here, we compare the performances of the two fastest algorithms proposed for QUS measurements of bone: the modified least-squares Prony method (MLSP), and the space alternating generalized expectation maximization algorithm (SAGE) applied in the frequency domain. In both approaches, the parameters of the transfer functions of the sound propagation paths are estimated. To provide an objective measure, we also analytically derive the Cramér-Rao lower bound of variances for any estimator and arbitrary transmit signals. In comparison with results of Monte Carlo simulations, this measure is used to evaluate both approaches regarding their accuracy and precision. Additionally, with simulations using typical QUS measurement settings, we illustrate the limitations of separating two superimposed waves for varying parameters with focus on their temporal separation. It is shown that for good SNRs around 100 dB, MLSP yields better results when two waves are very close. Additionally, the parameters of the smaller wave are more reliably estimated. If the SNR decreases, the parameter estimation with MLSP becomes biased and inefficient. Then, the robustness to noise of the SAGE clearly prevails. Because a clear influence of the interrelation between the wavelength of the ultrasound signals and their temporal separation is observable on the results, these findings can be transferred to QUS measurements at other sites. The choice of the suitable algorithm thus depends on the measurement conditions.
Keywords
acoustic noise; acoustic signal processing; biomechanics; biomedical measurement; biomedical ultrasonics; bone; least squares approximations; medical signal processing; optimisation; orthopaedics; parameter estimation; transfer functions; ultrasonic measurement; ultrasonic propagation; ultrasonic transmission; Cramer-Rao lower bound; MLSP method; SAGE method; SNR; arbitrary transmit signals; bone; frequency domain; modified least-squares Prony method; multipath QUS signals; multipath transmission parameter estimation; osteoporotic fracture risk; quantitative ultrasound measurements; sound propagation paths; sound waves; space alternating generalized expectation maximization algorithm; superimposed waves; temporal separation; transfer functions; ultrasonic noise; ultrasound signals; Bones; Frequency-domain analysis; Parameter estimation; Transfer functions; Ultrasonic imaging; Ultrasonic variables measurement;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2013.2773
Filename
6587397
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