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Prediction of Heart Disease Using a Combination of Machine Learning and Deep Learning

机译:结合机器学习和深度学习预测心脏病

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摘要

The correct prediction of heart disease can prevent life threats, and incorrect prediction can prove to be fatal at the same time. In this paper different machine learning algorithms and deep learning are applied to compare the results and analysis of the UCI Machine Learning Heart Disease dataset. The dataset consists of 14 main attributes used for performing the analysis. Various promising results are achieved and are validated using accuracy and confusion matrix. The dataset consists of some irrelevant features which are handled using Isolation Forest, and data are also normalized for getting better results. And how this study can be combined with some multimedia technology like mobile devices is also discussed. Using deep learning approach, 94.2 accuracy was obtained.
机译:对心脏病的正确预测可以防止生命威胁,而错误的预测可能同时被证明是致命的。本文应用不同的机器学习算法和深度学习来比较UCI机器学习心脏病数据集的结果和分析。该数据集由用于执行分析的 14 个主要属性组成。取得了各种有希望的结果,并使用准确性和混淆矩阵进行了验证。数据集由一些不相关的特征组成,这些特征使用隔离林进行处理,并且还对数据进行了归一化以获得更好的结果。还讨论了这项研究如何与移动设备等多媒体技术相结合。使用深度学习方法,获得了94.2%的准确率。

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