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Classification of Heart Disease Using K- Nearest Neighbor and Genetic Algorithm

机译:用K-最近邻和遗传算法进行心脏病分类

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Data mining techniques have been widely used to mine knowledgeable information from medical data bases. In data mining classification is a supervised learning that can be used to design models describing important data classes, where class attribute is involved in the construction of the classifier. Nearest neighbor (KNN) is very simple, most popular, highly efficient and effective algorithm for pattern recognition.KNN is a straight forward classifier, where samples are classified based on the class of their nearest neighbor. Medical data bases are high volume in nature. If the data set contains redundant and irrelevant attributes, classification may produce less accurate result. Heart disease is the leading cause of death in INDIA, In Andhra Pradesh heart disease was the leading cause of mortality accounting for 32%of all deaths, a rate as high as Canada (35%) and USA.Hence there is a need to define a decision support system that helps clinicians decide to take precautionary steps. In this paper we propose a new algorithm which combines KNN with genetic algorithm for effective classification. Genetic algorithms perform global search in complex large and multimodal landscapes and provide optimal solution. Experimental results shows that our algorithm enhance the accuracy in diagnosis of heart disease.
机译:数据挖掘技术已广泛用于从医疗数据库挖掘知识渊博的信息。在数据挖掘分类中,可以用于设计描述重要数据类的模型的监督学习,其中类属性涉及分类器的构造。最近的邻居(knn)非常简单,最流行,高效,高效且有效的模式识别算法.KNN是一个直的转发分类器,其中基于最近邻居的类别分类。医疗数据库的性质上很高。如果数据集包含冗余和无关属性,则分类可能会产生较低的结果。心脏病是印度死亡的主要原因,在安德拉邦心脏病中是死亡率的主要原因,占所有死亡的32%,比加拿大(35%)和美国高的速度。需要定义决策支持系统,帮助临床医生决定采取预防措施。本文提出了一种新的算法,该算法将KNN与遗传算法结合起来进行有效分类。遗传算法在复杂的大型和多模式风景中进行全球搜索,并提供最佳解决方案。实验结果表明,我们的算法增强了诊断心脏病的准确性。

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