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IVUS Longitudinal and Axial Registration for Atherosclerosis Progression Evaluation

Intravascular ultrasound (IVUS) imaging offers accurate cross-sectional vessel information. To this end, registering temporal IVUS pullbacks acquired at two time points can assist the clinicians to accurately assess pathophysiological changes in the vessels, disease progression and the effect of the...

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Autores principales: Tsiknakis, Nikos, Spanakis, Constantinos, Tsompou, Panagiota, Karanasiou, Georgia, Karanasiou, Gianna, Sakellarios, Antonis, Rigas, George, Kyriakidis, Savvas, Papafaklis, Michael, Nikopoulos, Sotirios, Gijsen, Frank, Michalis, Lampros, Fotiadis, Dimitrios I., Marias, Kostas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8394087/
https://www.ncbi.nlm.nih.gov/pubmed/34441447
http://dx.doi.org/10.3390/diagnostics11081513
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author Tsiknakis, Nikos
Spanakis, Constantinos
Tsompou, Panagiota
Karanasiou, Georgia
Karanasiou, Gianna
Sakellarios, Antonis
Rigas, George
Kyriakidis, Savvas
Papafaklis, Michael
Nikopoulos, Sotirios
Gijsen, Frank
Michalis, Lampros
Fotiadis, Dimitrios I.
Marias, Kostas
author_facet Tsiknakis, Nikos
Spanakis, Constantinos
Tsompou, Panagiota
Karanasiou, Georgia
Karanasiou, Gianna
Sakellarios, Antonis
Rigas, George
Kyriakidis, Savvas
Papafaklis, Michael
Nikopoulos, Sotirios
Gijsen, Frank
Michalis, Lampros
Fotiadis, Dimitrios I.
Marias, Kostas
author_sort Tsiknakis, Nikos
collection PubMed
description Intravascular ultrasound (IVUS) imaging offers accurate cross-sectional vessel information. To this end, registering temporal IVUS pullbacks acquired at two time points can assist the clinicians to accurately assess pathophysiological changes in the vessels, disease progression and the effect of the treatment intervention. In this paper, we present a novel two-stage registration framework for aligning pairs of longitudinal and axial IVUS pullbacks. Initially, we use a Dynamic Time Warping (DTW)-based algorithm to align the pullbacks in a temporal fashion. Subsequently, an intensity-based registration method, that utilizes a variant of the Harmony Search optimizer to register each matched pair of the pullbacks by maximizing their Mutual Information, is applied. The presented method is fully automated and only required two single global image-based measurements, unlike other methods that require extraction of morphology-based features. The data used includes 42 synthetically generated pullback pairs, achieving an alignment error of [Formula: see text] frames per pullback, a rotation error [Formula: see text] and a translation error of [Formula: see text] mm. In addition, it was also tested on 11 baseline and follow-up, and 10 baseline and post-stent deployment real IVUS pullback pairs from two clinical centres, achieving an alignment error of [Formula: see text] for the longitudinal registration, and a distance and a rotational error of [Formula: see text] mm and [Formula: see text] , respectively, for the axial registration. Although the performance of the proposed method does not match that of the state-of-the-art, our method relies on computationally lighter steps for its computations, which is crucial in real-time applications. On the other hand, the proposed method performs even or better that the state-of-the-art when considering the axial registration. The results indicate that the proposed method can support clinical decision making and diagnosis based on sequential imaging examinations.
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spelling pubmed-83940872021-08-28 IVUS Longitudinal and Axial Registration for Atherosclerosis Progression Evaluation Tsiknakis, Nikos Spanakis, Constantinos Tsompou, Panagiota Karanasiou, Georgia Karanasiou, Gianna Sakellarios, Antonis Rigas, George Kyriakidis, Savvas Papafaklis, Michael Nikopoulos, Sotirios Gijsen, Frank Michalis, Lampros Fotiadis, Dimitrios I. Marias, Kostas Diagnostics (Basel) Article Intravascular ultrasound (IVUS) imaging offers accurate cross-sectional vessel information. To this end, registering temporal IVUS pullbacks acquired at two time points can assist the clinicians to accurately assess pathophysiological changes in the vessels, disease progression and the effect of the treatment intervention. In this paper, we present a novel two-stage registration framework for aligning pairs of longitudinal and axial IVUS pullbacks. Initially, we use a Dynamic Time Warping (DTW)-based algorithm to align the pullbacks in a temporal fashion. Subsequently, an intensity-based registration method, that utilizes a variant of the Harmony Search optimizer to register each matched pair of the pullbacks by maximizing their Mutual Information, is applied. The presented method is fully automated and only required two single global image-based measurements, unlike other methods that require extraction of morphology-based features. The data used includes 42 synthetically generated pullback pairs, achieving an alignment error of [Formula: see text] frames per pullback, a rotation error [Formula: see text] and a translation error of [Formula: see text] mm. In addition, it was also tested on 11 baseline and follow-up, and 10 baseline and post-stent deployment real IVUS pullback pairs from two clinical centres, achieving an alignment error of [Formula: see text] for the longitudinal registration, and a distance and a rotational error of [Formula: see text] mm and [Formula: see text] , respectively, for the axial registration. Although the performance of the proposed method does not match that of the state-of-the-art, our method relies on computationally lighter steps for its computations, which is crucial in real-time applications. On the other hand, the proposed method performs even or better that the state-of-the-art when considering the axial registration. The results indicate that the proposed method can support clinical decision making and diagnosis based on sequential imaging examinations. MDPI 2021-08-22 /pmc/articles/PMC8394087/ /pubmed/34441447 http://dx.doi.org/10.3390/diagnostics11081513 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Tsiknakis, Nikos
Spanakis, Constantinos
Tsompou, Panagiota
Karanasiou, Georgia
Karanasiou, Gianna
Sakellarios, Antonis
Rigas, George
Kyriakidis, Savvas
Papafaklis, Michael
Nikopoulos, Sotirios
Gijsen, Frank
Michalis, Lampros
Fotiadis, Dimitrios I.
Marias, Kostas
IVUS Longitudinal and Axial Registration for Atherosclerosis Progression Evaluation
title IVUS Longitudinal and Axial Registration for Atherosclerosis Progression Evaluation
title_full IVUS Longitudinal and Axial Registration for Atherosclerosis Progression Evaluation
title_fullStr IVUS Longitudinal and Axial Registration for Atherosclerosis Progression Evaluation
title_full_unstemmed IVUS Longitudinal and Axial Registration for Atherosclerosis Progression Evaluation
title_short IVUS Longitudinal and Axial Registration for Atherosclerosis Progression Evaluation
title_sort ivus longitudinal and axial registration for atherosclerosis progression evaluation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8394087/
https://www.ncbi.nlm.nih.gov/pubmed/34441447
http://dx.doi.org/10.3390/diagnostics11081513
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