Kalman-Based Carotid-Artery Longitudinal-Kinetics Estimation and Pattern Recognition
Objectives. The context of the study is the early detection of atherosclerosis. The specific aim of the article is to estimate the longitudinal displacements of the carotid artery wall and assess the discriminative power of the estimated motion patterns to distinguish at-risk individuals from health...
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| Published in: | IRBM Vol. 38; no. 4; pp. 219 - 223 |
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| Main Authors: | , , , , , , |
| Format: | Journal Article |
| Language: | English |
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Elsevier Masson SAS
01.08.2017
Elsevier BV Elsevier Masson |
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| ISSN: | 1959-0318 |
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| Abstract | Objectives. The context of the study is the early detection of atherosclerosis. The specific aim of the article is to estimate the longitudinal displacements of the carotid artery wall and assess the discriminative power of the estimated motion patterns to distinguish at-risk individuals from healthy subjects.
Methods. Motion estimation builds on block matching with a Kalman filter updating the reference-block gray levels, and incorporates a Kalman filter controlling the trajectory via a model using cosine decomposition. The estimated motion patterns were normalized and provided as input features to a machine-learning-based classifier that automatically assigned healthy or at-risk labels.
Results. Evaluated on 113 subjects, the method successfully estimated all but one trajectory, and classification achieved 70% sensitivity and 72% specificity.
Conclusions. The proposed method is well suited to estimate 2D (longitudinal and radial) quasi-periodic displacements of the arterial wall in ultrasound image sequences. The estimated motion patterns can contribute to discriminate at-risk from healthy subjects.
•Carotid artery tissue motion is tracked in ultrasound image sequences.•A Kalman filter based on the Discrete Cosine Transform controls the trajectory.•Subjects are classified in healthy and at-risk groups using a machine learning scheme.•The method was evaluated on 56 healthy volunteers and 57 at-risk patients.•The method demonstrates improved motion tracking and classification results. |
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| AbstractList | Objectives. The context of the study is the early detection of atherosclerosis. The specific aim of the article is to estimate the longitudinal displacements of the carotid artery wall and assess the discriminative power of the estimated motion patterns to distinguish at-risk individuals from healthy subjects.
Methods. Motion estimation builds on block matching with a Kalman filter updating the reference-block gray levels, and incorporates a Kalman filter controlling the trajectory via a model using cosine decomposition. The estimated motion patterns were normalized and provided as input features to a machine-learning-based classifier that automatically assigned healthy or at-risk labels.
Results. Evaluated on 113 subjects, the method successfully estimated all but one trajectory, and classification achieved 70% sensitivity and 72% specificity.
Conclusions. The proposed method is well suited to estimate 2D (longitudinal and radial) quasi-periodic displacements of the arterial wall in ultrasound image sequences. The estimated motion patterns can contribute to discriminate at-risk from healthy subjects.
•Carotid artery tissue motion is tracked in ultrasound image sequences.•A Kalman filter based on the Discrete Cosine Transform controls the trajectory.•Subjects are classified in healthy and at-risk groups using a machine learning scheme.•The method was evaluated on 56 healthy volunteers and 57 at-risk patients.•The method demonstrates improved motion tracking and classification results. Objectives. The context of the study is the early detection of atherosclerosis. The specific aim of the article is to estimate the longitudinal displacements of the carotid artery wall and assess the discriminative power of the estimated motion patterns to distinguish at-risk individuals from healthy subjects.Methods. Motion estimation builds on block matching with a Kalman filter updating the reference-block gray levels, and incorporates a Kalman filter controlling the trajectory via a model using cosine decomposition. The estimated motion patterns were normalized and provided as input features to a machine-learning-based classifier that automatically assigned healthy or at-risk labels.Results. Evaluated on 113 subjects, the method successfully estimated all but one trajectory, and classification achieved 70% sensitivity and 72% specificity.Conclusions. The proposed method is well suited to estimate 2D (longitudinal and radial) quasi-periodic displacements of the arterial wall in ultrasound image sequences. The estimated motion patterns can contribute to discriminate at-risk from healthy subjects. |
| Author | Zahnd, G. Qorchi, S. Sérusclat, A. Orkisz, M. Galbrun, D. Moulin, P. Vray, D. |
| Author_xml | – sequence: 1 givenname: S. orcidid: 0000-0001-5201-6096 surname: Qorchi fullname: Qorchi, S. email: qorchi@creatis.insa-lyon.fr organization: Univ. Lyon, INSA-Lyon, Université Claude Bernard Lyon 1, CNRS, INSERM, CREATIS UMR 5220, U1206, F-69621, Lyon, France – sequence: 2 givenname: G. surname: Zahnd fullname: Zahnd, G. organization: Imaging-based Computational Biomedicine Lab, Nara Institute of Science and Technology, Japan – sequence: 3 givenname: D. surname: Galbrun fullname: Galbrun, D. organization: Univ. Lyon, INSA-Lyon, Université Claude Bernard Lyon 1, CNRS, INSERM, CREATIS UMR 5220, U1206, F-69621, Lyon, France – sequence: 4 givenname: A. surname: Sérusclat fullname: Sérusclat, A. organization: Department of Radiology, Hôpital Louis Pradel, Hospices Civils de Lyon, Lyon, France – sequence: 5 givenname: P. surname: Moulin fullname: Moulin, P. organization: INSERM U 1060, Department of Endocrinology, Hôpital Louis Pradel, Hospices Civils de Lyon, Université Claude Bernard Lyon 1, Lyon, France – sequence: 6 givenname: D. surname: Vray fullname: Vray, D. organization: Univ. Lyon, INSA-Lyon, Université Claude Bernard Lyon 1, CNRS, INSERM, CREATIS UMR 5220, U1206, F-69621, Lyon, France – sequence: 7 givenname: M. orcidid: 0000-0003-1709-5766 surname: Orkisz fullname: Orkisz, M. organization: Univ. Lyon, INSA-Lyon, Université Claude Bernard Lyon 1, CNRS, INSERM, CREATIS UMR 5220, U1206, F-69621, Lyon, France |
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| CitedBy_id | crossref_primary_10_1016_j_ultrasmedbio_2021_01_001 crossref_primary_10_1016_j_ultrasmedbio_2020_06_006 crossref_primary_10_1155_2019_6547982 |
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| Keywords | Carotid artery Motion tracking Ultrasound imaging Kalman filter Supervised classification Cardiovascular risk |
| Language | English |
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| Title | Kalman-Based Carotid-Artery Longitudinal-Kinetics Estimation and Pattern Recognition |
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