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A Correlation - Sequential Forward Selection Based Feature Selection Method for Healthcare Data Analysis

机译:基于关联-顺序正向选择的医疗数据分析特征选择方法

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In recent years healthcare data is growing exponentially and thus contains a huge number of attributes. The major challenge is to predict and analysis of all these data in a huge format. Feature selection is a solution in which a subset of informative features is selected from a huge high dimensional dataset and used for analysis. Feature Selection helps to increase accuracy and remove all irrelevant features. Filter, Wrapper, and Embedded are different methods for feature selection. This paper presents a correlation-sequential forward selection based hybrid feature selection algorithm on a healthcare dataset and analyses result obtained after applying different machine learning algorithm on the feature subset. Correlation-based feature selection is part of the filter method and sequential forward selection is based on the wrapper method. Selecting important attributes for healthcare is essential as it has a direct effect on human health. Furthermore, this paper is an attempt to make healthcare predictions more accurately and in a timely manner. Correlation-based feature selection is part of the filter method and sequential forward selection is based on the wrapper method. Selecting important attributes for healthcare is essential as it has a direct effect on human health. Furthermore, this paper is an attempt to make healthcare predictions more accurately and in a timely manner.
机译:近年来,医疗保健数据呈指数增长,因此包含大量属性。主要挑战在于以巨大的格式预测和分析所有这些数据。特征选择是一种解决方案,其中从巨大的高维数据集中选择信息特征的子集并用于分析。功能选择有助于提高准确性并删除所有不相关的功能。过滤器,包装器和嵌入式是用于功能选择的不同方法。本文提出了一种在医疗数据集上基于相关顺序正向选择的混合特征选择算法,并分析了在特征子集上应用不同的机器学习算法后获得的结果。基于相关性的特征选择是过滤器方法的一部分,而顺序前向选择是基于包装器方法的。选择医疗保健的重要属性至关重要,因为它直接影响人类健康。此外,本文是试图更准确,及时地做出医疗保健预测的尝试。基于相关性的特征选择是过滤器方法的一部分,而顺序前向选择是基于包装器方法的。选择医疗保健的重要属性至关重要,因为它直接影响人类健康。此外,本文是试图更准确,及时地做出医疗保健预测的尝试。

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