DocumentCode :
3602101
Title :
Spatiotemporal Clutter Filtering of Ultrafast Ultrasound Data Highly Increases Doppler and fUltrasound Sensitivity
Author :
Demene, Charlie ; Deffieux, Thomas ; Pernot, Mathieu ; Osmanski, Bruno-Felix ; Biran, Valerie ; Gennisson, Jean-Luc ; Lim-Anna Sieu ; Bergel, Antoine ; Franqui, Stephanie ; Correas, Jean-Michel ; Cohen, Ivan ; Baud, Olivier ; Tanter, Mickael
Author_Institution :
Inst. Langevin, ESPCI ParisTech, Paris, France
Volume :
34
Issue :
11
fYear :
2015
Firstpage :
2271
Lastpage :
2285
Abstract :
Ultrafast ultrasonic imaging is a rapidly developing field based on the unfocused transmission of plane or diverging ultrasound waves. This recent approach to ultrasound imaging leads to a large increase in raw ultrasound data available per acquisition. Bigger synchronous ultrasound imaging datasets can be exploited in order to strongly improve the discrimination between tissue and blood motion in the field of Doppler imaging. Here we propose a spatiotemporal singular value decomposition clutter rejection of ultrasonic data acquired at ultrafast frame rate. The singular value decomposition (SVD) takes benefits of the different features of tissue and blood motion in terms of spatiotemporal coherence and strongly outperforms conventional clutter rejection filters based on high pass temporal filtering. Whereas classical clutter filters operate on the temporal dimension only, SVD clutter filtering provides up to a four-dimensional approach (3D in space and 1D in time). We demonstrate the performance of SVD clutter filtering with a flow phantom study that showed an increased performance compared to other classical filters (better contrast to noise ratio with tissue motion between 1 and 10mm/s and axial blood flow as low as 2.6 mm/s). SVD clutter filtering revealed previously undetected blood flows such as microvascular networks or blood flows corrupted by significant tissue or probe motion artifacts. We report in vivo applications including small animal fUltrasound brain imaging (blood flow detection limit of 0.5 mm/s) and several clinical imaging cases, such as neonate brain imaging, liver or kidney Doppler imaging.
Keywords :
Doppler effect; biological tissues; biomedical ultrasonics; haemodynamics; image denoising; medical image processing; SVD; blood flows; blood motion; clutter rejection filters; diverging ultrasound waves; high pass temporal filtering; kidney Doppler imaging; liver Doppler imaging; microvascular networks; neonate brain imaging; plane ultrasound waves; probe motion artifacts; raw ultrasound data; spatiotemporal clutter filtering; spatiotemporal coherence; spatiotemporal singular value decomposition clutter rejection; synchronous ultrasound imaging datasets; tissue; ultrafast ultrasonic imaging; ultrafast ultrasound data; ultrasonic data; ultrasound sensitivity; unfocused transmission; Blood; Blood flow; Clutter; Doppler effect; Imaging; Matrix decomposition; Ultrasonic imaging; Blood flow; Doppler imaging; singular value decomposition; ultrafast imaging; ultrasound;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2015.2428634
Filename :
7098422
Link To Document :
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