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Low-Cost 3-D Flow Estimation of Blood With Clutter.

Authors :
Wei, Siyuan
Yang, Ming
Zhou, Jian
Sampson, Richard
Kripfgans, Oliver D.
Fowlkes, J. Brian
Wenisch, Thomas F.
Chakrabarti, Chaitali
Source :
IEEE Transactions on Ultrasonics Ferroelectrics & Frequency Control. May2017, Vol. 64 Issue 5, p772-784. 13p.
Publication Year :
2017

Abstract

Volumetric flow rate estimation is an important ultrasound medical imaging modality that is used for diagnosing cardiovascular diseases. Flow rates are obtained by integrating velocity estimates over a cross-sectional plane. Speckle tracking is a promising approach that overcomes the angle dependency of traditional Doppler methods, but suffers from poor lateral resolution. Recent work improves lateral velocity estimation accuracy by reconstructing a synthetic lateral phase (SLP) signal. However, the estimation accuracy of such approaches is compromised by the presence of clutter. Eigen-based clutter filtering has been shown to be effective in removing the clutter signal; but it is computationally expensive, precluding its use at high volume rates. In this paper, we propose low-complexity schemes for both velocity estimation and clutter filtering. We use a two-tiered motion estimation scheme to combine the low complexity sum-of-absolute-difference and SLP methods to achieve subpixel lateral accuracy. We reduce the complexity of eigen-based clutter filtering by processing in subgroups and replacing singular value decomposition with less compute-intensive power iteration and subspace iteration methods. Finally, to improve flow rate estimation accuracy, we use kernel power weighting when integrating the velocity estimates. We evaluate our method for fast- and slow-moving clutter for beam-to-flow angles of 90° and 60° using Field II simulations, demonstrating high estimation accuracy across scenarios. For instance, for a beam-to-flow angle of 90° and fast-moving clutter, our estimation method provides a bias of −8.8% and standard deviation of 3.1% relative to the actual flow rate. [ABSTRACT FROM PUBLISHER]

Details

Language :
English
ISSN :
08853010
Volume :
64
Issue :
5
Database :
Academic Search Index
Journal :
IEEE Transactions on Ultrasonics Ferroelectrics & Frequency Control
Publication Type :
Academic Journal
Accession number :
122814275
Full Text :
https://doi.org/10.1109/TUFFC.2017.2676091