Automated Diagnosis and Assessment of Cardiac Structural Alteration in Hypertension Ultrasound Images

Author:

Raghavendra U.1,En Wei Joel Koh2,Gudigar Anjan1ORCID,Shetty Akanksha1,Samanth Jyothi3,Paramasivam Ganesh4,Jagadish Sujay4,Kadri Nahrizul Adib5ORCID,Karabatak Murat6,Yildirim Özal6,Arunkumar N.7,Ardakani Ali Abbasian8

Affiliation:

1. Department of Instrumentation and Control Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal 576104, India

2. Department of Electronics and Computer Engineering, Ngee Ann Polytechnic, Clementi 599489, Singapore 599489, Singapore

3. Department of Cardiovascular Technology, Manipal College of Health Professions, Manipal Academy of Higher Education, Manipal 576104, India

4. Department of Cardiology, Kasturba Medical College and Hospital, Manipal Academy of Higher Education, Manipal 576104, India

5. Department of Biomedical Engineering, Faculty of Engineering, University of Malaya, Kuala Lumpur 50603, Malaysia

6. Department of Software Engineering, Firat University, Elazig, Turkey

7. Department of Biomedical Engineering, Rathinam College of Engineering, Coimbatore, India

8. Department of Radiology Technology, School of Allied Medical Sciences, Shahid Beheshti University of Medical Sciences, Tehran, Iran

Abstract

Hypertension (HTN) is a major risk factor for cardiovascular diseases. At least 45% of deaths due to heart disease and 51% of deaths due to stroke are the result of hypertension. According to research on the prevalence and absolute burden of HTN in India, HTN positively correlated with age and was present in 20.6% of men and 20.9% of women. It was estimated that this trend will increase to 22.9% and 23.6% for men and women, respectively, by 2025. Controlling blood pressure is therefore important to lower both morbidity and mortality. Computer-aided diagnosis (CAD) is a noninvasive technique which can determine subtle myocardial structural changes at an early stage. In this work, we show how a multi-resolution analysis-based CAD system can be utilized for the detection of early HTN-induced left ventricular heart muscle changes with the help of ultrasound imaging. Firstly, features were extracted from the ultrasound imagery, and then the feature dimensions were reduced using a locality sensitive discriminant analysis (LSDA). The decision tree classifier with contourlet and shearlet transform features was later employed for improved performance and maximized accuracy using only two features. The developed model is applicable for the evaluation of cardiac structural alteration in HTN and can be used as a standalone tool in hospitals and polyclinics.

Publisher

Hindawi Limited

Subject

Radiology, Nuclear Medicine and imaging

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