Literature DB >> 29606786

Classification of calcium in intravascular OCT images for the purpose of intervention planning.

Ronny Shalev1, Hiram G Bezerra2, Soumya Ray1, David Prabhu3, David L Wilson3,4.   

Abstract

The presence of extensive calcification is a primary concern when planning and implementing a vascular percutaneous intervention such as stenting. If the balloon does not expand, the interventionalist must blindly apply high balloon pressure, use an atherectomy device, or abort the procedure. As part of a project to determine the ability of Intravascular Optical Coherence Tomography (IVOCT) to aid intervention planning, we developed a method for automatic classification of calcium in coronary IVOCT images. We developed an approach where plaque texture is modeled by the joint probability distribution of a bank of filter responses where the filter bank was chosen to reflect the qualitative characteristics of the calcium. This distribution is represented by the frequency histogram of filter response cluster centers. The trained algorithm was evaluated on independent ex-vivo image data accurately labeled using registered 3D microscopic cryo-image data which was used as ground truth. In this study, regions for extraction of sub-images (SI's) were selected by experts to include calcium, fibrous, or lipid tissues. We manually optimized algorithm parameters such as choice of filter bank, size of the dictionary, etc. Splitting samples into training and testing data, we achieved 5-fold cross validation calcium classification with F1 score of 93.7±2.7% with recall of ≥89% and a precision of ≥97% in this scenario with admittedly selective data. The automated algorithm performed in close-to-real-time (2.6 seconds per frame) suggesting possible on-line use. This promising preliminary study indicates that computational IVOCT might automatically identify calcium in IVOCT coronary artery images.

Entities:  

Keywords:  IVOCT; OCT; automated classification; calcium; intravascular; machine learning; plaque

Year:  2016        PMID: 29606786      PMCID: PMC5873316          DOI: 10.1117/12.2216315

Source DB:  PubMed          Journal:  Proc SPIE Int Soc Opt Eng        ISSN: 0277-786X


  22 in total

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  5 in total

1.  Automated plaque characterization using deep learning on coronary intravascular optical coherence tomographic images.

Authors:  Juhwan Lee; David Prabhu; Chaitanya Kolluru; Yazan Gharaibeh; Vladislav N Zimin; Hiram G Bezerra; David L Wilson
Journal:  Biomed Opt Express       Date:  2019-11-25       Impact factor: 3.732

2.  Application and Evaluation of Highly Automated Software for Comprehensive Stent Analysis in Intravascular Optical Coherence Tomography.

Authors:  Hong Lu; Juhwan Lee; Martin Jakl; Zhao Wang; Pavel Cervinka; Hiram G Bezerra; David L Wilson
Journal:  Sci Rep       Date:  2020-02-07       Impact factor: 4.379

3.  Automated classification of dense calcium tissues in gray-scale intravascular ultrasound images using a deep belief network.

Authors:  Juhwan Lee; Yoo Na Hwang; Ga Young Kim; Ji Yean Kwon; Sung Min Kim
Journal:  BMC Med Imaging       Date:  2019-12-30       Impact factor: 1.930

4.  The Prognostic Value of a Validated and Automated Intravascular Ultrasound-Derived Calcium Score.

Authors:  Tara Neleman; Shengnan Liu; Maria N Tovar Forero; Eline M J Hartman; Jurgen M R Ligthart; Karen T Witberg; Paul Cummins; Felix Zijlstra; Nicolas M Van Mieghem; Eric Boersma; Gijs van Soest; Joost Daemen
Journal:  J Cardiovasc Transl Res       Date:  2021-02-23       Impact factor: 4.132

Review 5.  Artificial Intelligence in Cardiovascular Atherosclerosis Imaging.

Authors:  Jia Zhang; Ruijuan Han; Guo Shao; Bin Lv; Kai Sun
Journal:  J Pers Med       Date:  2022-03-08
  5 in total

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