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Diagnosis of Coronary Artery Disease using Cuckoo Search and genetic algorithm in single photon emision computed tomography images

机译:使用杜鹃搜索和遗传算法在单光子发射计算机断层扫描图像中诊断冠状动脉疾病

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Coronary Artery Disease (CAD) is a kind of cardiovascular disease and a heart attack is the first sign of CAD. Cardiac SPECT is one of the efficient methods to diagnose the disease. Plaque buildup in the walls of the arteries causes CAD and makes them narrow over time. Therefore, one of the most important issues is automating of CAD early detection. In the literature, various classification methods have been presented. Also, a lot of feature selection techniques have been developed to reduce the high dimension of extracted features of images in SPECT. In this paper, a method has been proposed for early diagnosis of CAD from SPECT heart images. The Cuckoo Search and Genetic algorithm are employed for selecting the optimal set of features which can lessen feature vector dimension from 44 to 5 features. Detection rate of 77.19% is obtained by using Bagging algorithm for classifying SPECT data. Results show the proposed method has high performance comparing with other recently researches.
机译:冠状动脉疾病(CAD)是一种心血管疾病,心脏病发作是CAD的第一个迹象。心脏SPECT是诊断疾病的有效方法之一。动脉壁上的斑块堆积会导致CAD并使其随时间变窄。因此,最重要的问题之一是CAD早期检测的自动化。在文献中,已经提出了各种分类方法。而且,已经开发了许多特征选择技术以减小SPECT中图像的提取特征的高维。本文提出了一种从SPECT心脏图像中早期诊断CAD的方法。使用杜鹃搜索和遗传算法选择最佳的特征集,可以将特征向量维从44个减少到5个。采用Bagging算法对SPECT数据进行分类,检出率为77.19%。结果表明,该方法与最近的其他研究相比具有较高的性能。

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