An Efficient Coronary Disease Diagnosis System Using Dual-Phase Multi-Objective Optimization and Embedded Feature Selection

Author:

Priyatharshini R. 1,Chitrakala S. 2

Affiliation:

1. Easwari Engineering College, Department of Information Technology, Chennai, India

2. Anna University, Department of Computer Science and Engineering, Chennai, India

Abstract

Developments in healthcare technologies have significantly enhanced spatial resolution and improved contrast resolution, permitting analysis of additional subtle structures than formerly attainable. An approach for Automatic recognition and quantification of calcifications from arteries in computed tomography (CT) scans is developed which is a key necessity in planning the treatment of individuals with suspected coronary artery disease. First, a Dual-Phase Multi-_objective Optimization approach using an Active Contour Model-based region-growing technique is developed. Second, an embedded feature selection method is developed with an expert classifier to detect calcified objects in the segmented artery with great accuracy. Finally, the Agatston scoring method is utilized to quantify the level of coronary artery calcium plaque. Coronary CT images from the AS+CT scanner with a slice thickness of 3 mm were obtained from clinical practice. Experimental results demonstrate that our proposed method improves the accuracy of lesion detection for better treatment planning.

Publisher

IGI Global

Subject

Decision Sciences (miscellaneous),Information Systems

Reference30 articles.

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2. Anita, S., & Satish, C. (2014). Meta-heuristic Approaches for Active Contour Model based Medical Image Segmentation. International Journal of Advances in Soft Computing and its Applications, 6(2), 1-22.

3. Current Clinical Status of Vascular Non-Invasive Imaging Methodologies

4. Cardiovascular diseases, (2011). fact sheet 317., World Health Organization.

5. An Improved Region Based Active Contour model for Medical Image Segmentation

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