Automated Diagnosis of Coronary Artery Disease using Pattern Recognition Approach

被引:0
|
作者
Desai, Usha [1 ]
Nayak, C. Gurudas [2 ]
Seshikala, G. [3 ]
Martis, Roshan J. [4 ]
机构
[1] Nitte Mahalinga Adyanthaya Mem Inst Technol, Udupi, KA, India
[2] Manipal Univ, Manipal Inst Technol, Manipal, KA, India
[3] REVA Univ, Bengaluru, India
[4] Vivekananda Coll Engn & Technol, Puttur, KA, India
关键词
ECG Signal Preprocessing; Dimensionality Reduction; Student's t-test; Decision Tree; Binary Confusion Matrix;
D O I
暂无
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Coronary Artery Disease (CAD) is the most leading Cardiovascular Disease (CVD), which results due to buildup of plaque inside the coronary arteries. The CAD and Normal Sinus Rhythm (NSR) heartbeats can be discriminated and diagnosed noninvasively using the standard tool Electrocardiogram (ECG). However, manual diagnosis of ECG is tiresome and time consuming task, due to complex nature and unseen nonlinearities of ECG. Hence an automated system plays a substantial role. In this study, CAD and NSR heartbeats are discriminated and diagnosed using Higher-Order Statistics (HOS) cumulants features. Further, the cumulants coefficients dimensionality reduced using Principal Components Analysis (PCA) and the medically significant features (p-value<0.05) Principal Components (PCs) are subjected for classification using Random Forest (RAF) and Rotation Forest (ROF) ensemble classifiers. Proposed system is robust which helps in screening CAD risk factors and telemonitoring applications.
引用
收藏
页码:434 / 437
页数:4
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