Arterial Mechanical Motion Estimation Based on a Semi-Rigid Body Deformation Approach

Arterial motion estimation in ultrasound (US) sequences is a hard task due to noise and discontinuities in the signal derived from US artifacts. Characterizing the mechanical properties of the artery is a promising novel imaging technique to diagnose various cardiovascular pathologies and a new way...

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Main Authors: Pablo Guzman, Ghassan Hamarneh, Rafael Ros, Eduardo Ros
Format: Article
Language:English
Published: MDPI AG 2014-05-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/14/6/9429
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spelling doaj-bbc874542bfb47d7abdcecf1336918fc2020-11-25T00:50:09ZengMDPI AGSensors1424-82202014-05-011469429945010.3390/s140609429s140609429Arterial Mechanical Motion Estimation Based on a Semi-Rigid Body Deformation ApproachPablo Guzman0Ghassan Hamarneh1Rafael Ros2Eduardo Ros3Department of Computer Architecture and Technology, ETSI Informática y de Telecomunicación, CITIC-UGR, University of Granada, 18071 Granada, SpainSchool of Computing Science, Simon Fraser University, Burnaby, BC V5A 1S6, CanadaHospital Universitario San Cecilio, Servicio de Angiología y Cirugía Vascular, 18008 Granada, SpainDepartment of Computer Architecture and Technology, ETSI Informática y de Telecomunicación, CITIC-UGR, University of Granada, 18071 Granada, SpainArterial motion estimation in ultrasound (US) sequences is a hard task due to noise and discontinuities in the signal derived from US artifacts. Characterizing the mechanical properties of the artery is a promising novel imaging technique to diagnose various cardiovascular pathologies and a new way of obtaining relevant clinical information, such as determining the absence of dicrotic peak, estimating the Augmentation Index (AIx), the arterial pressure or the arterial stiffness. One of the advantages of using US imaging is the non-invasive nature of the technique unlike Intra Vascular Ultra Sound (IVUS) or angiography invasive techniques, plus the relative low cost of the US units. In this paper, we propose a semi rigid deformable method based on Soft Bodies dynamics realized by a hybrid motion approach based on cross-correlation and optical flow methods to quantify the elasticity of the artery. We evaluate and compare different techniques (for instance optical flow methods) on which our approach is based. The goal of this comparative study is to identify the best model to be used and the impact of the accuracy of these different stages in the proposed method. To this end, an exhaustive assessment has been conducted in order to decide which model is the most appropriate for registering the variation of the arterial diameter over time. Our experiments involved a total of 1620 evaluations within nine simulated sequences of 84 frames each and the estimation of four error metrics. We conclude that our proposed approach obtains approximately 2.5 times higher accuracy than conventional state-of-the-art techniques.http://www.mdpi.com/1424-8220/14/6/9429computer visionultrasoundwall motionarterial stiffnesselastographycarotidmotion analysis
collection DOAJ
language English
format Article
sources DOAJ
author Pablo Guzman
Ghassan Hamarneh
Rafael Ros
Eduardo Ros
spellingShingle Pablo Guzman
Ghassan Hamarneh
Rafael Ros
Eduardo Ros
Arterial Mechanical Motion Estimation Based on a Semi-Rigid Body Deformation Approach
Sensors
computer vision
ultrasound
wall motion
arterial stiffness
elastography
carotid
motion analysis
author_facet Pablo Guzman
Ghassan Hamarneh
Rafael Ros
Eduardo Ros
author_sort Pablo Guzman
title Arterial Mechanical Motion Estimation Based on a Semi-Rigid Body Deformation Approach
title_short Arterial Mechanical Motion Estimation Based on a Semi-Rigid Body Deformation Approach
title_full Arterial Mechanical Motion Estimation Based on a Semi-Rigid Body Deformation Approach
title_fullStr Arterial Mechanical Motion Estimation Based on a Semi-Rigid Body Deformation Approach
title_full_unstemmed Arterial Mechanical Motion Estimation Based on a Semi-Rigid Body Deformation Approach
title_sort arterial mechanical motion estimation based on a semi-rigid body deformation approach
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2014-05-01
description Arterial motion estimation in ultrasound (US) sequences is a hard task due to noise and discontinuities in the signal derived from US artifacts. Characterizing the mechanical properties of the artery is a promising novel imaging technique to diagnose various cardiovascular pathologies and a new way of obtaining relevant clinical information, such as determining the absence of dicrotic peak, estimating the Augmentation Index (AIx), the arterial pressure or the arterial stiffness. One of the advantages of using US imaging is the non-invasive nature of the technique unlike Intra Vascular Ultra Sound (IVUS) or angiography invasive techniques, plus the relative low cost of the US units. In this paper, we propose a semi rigid deformable method based on Soft Bodies dynamics realized by a hybrid motion approach based on cross-correlation and optical flow methods to quantify the elasticity of the artery. We evaluate and compare different techniques (for instance optical flow methods) on which our approach is based. The goal of this comparative study is to identify the best model to be used and the impact of the accuracy of these different stages in the proposed method. To this end, an exhaustive assessment has been conducted in order to decide which model is the most appropriate for registering the variation of the arterial diameter over time. Our experiments involved a total of 1620 evaluations within nine simulated sequences of 84 frames each and the estimation of four error metrics. We conclude that our proposed approach obtains approximately 2.5 times higher accuracy than conventional state-of-the-art techniques.
topic computer vision
ultrasound
wall motion
arterial stiffness
elastography
carotid
motion analysis
url http://www.mdpi.com/1424-8220/14/6/9429
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