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A New Approach for Coronary Artery Diseases Diagnosis Based on Genetic Algorithm

机译:基于遗传算法的冠状动脉疾病诊断新方法

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Feature Selection (FS) has become the motivation of much research on decision support systems areas for which datasets with large number of features are analyzed. This paper presents a new method for the diagnosis of Coronary Artery Diseases (CAD) founded on Genetic Algorithm (GA) wrapper Bayes Naive (BN). Initially, thirteen attributes were involved in predicting CAD. In GA-BN algorithm, GA produces in each iteration a subset of attributes that will be evaluated using the BN in the second step of the selection procedure. The final result set of attribute holds the most pertinent feature model that increases the accuracy. The accuracy results showed that the algorithm produces 85.50% classification accuracy in the diagnosis of CAD. Therefore, the strength of the Algorithm is then compared with other machine learning algorithms such as Support lector Machine (SVM), Multi-Layer Perceptron (MLP) and C4.5 decision tree Algorithm. The result of classification accuracy for those algorithms are respectively 83.5%, 83.16% and 80.85%. Then, the GA wrapper BN Algorithm is similarly compared with other FS algorithms. The Obtained results have shown very favorable outcomes for the diagnosis of CAD.
机译:特征选择(FS)已成为对决策支持系统领域进行大量研究的动机,针对这些领域分析具有大量特征的数据集。本文提出了一种基于遗传算法(GA)包装器Bayes Naive(BN)的诊断冠状动脉疾病(CAD)的新方法。最初,在预测CAD中涉及13个属性。在GA-BN算法中,GA在每次迭代中都会生成一个属性子集,该属性子集将在选择过程的第二步中使用BN进行评估。属性的最终结果集包含最相关的要素模型,可提高准确性。准确性结果表明,该算法在CAD诊断中具有85.50%的分类准确率。因此,然后将该算法的优势与其他机器学习算法进行比较,例如支持支持者机器(SVM),多层感知器(MLP)和C4.5决策树算法。这些算法的分类精度结果分别为83.5%,83.16%和80.85%。然后,将GA包装器BN算法与其他FS算法进行类似比较。所获得的结果已显示出对CAD诊断非常有利的结果。

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