利用机器学习预测糖尿病疾病

S. Preetha, N. Chandan, K. DarshanN
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引用次数: 9

摘要

数据挖掘是通过对大量数据集进行排序以创建关系并通过数据分析找到解决给定问题的模式的过程。分类、关联规则、预测、聚类和顺序模式是一些最重要和最常见的数据挖掘技术。数据挖掘方法用于各种各样的应用程序,在医疗保健领域也可以看到。医疗保健行业的数据分析在疾病的检测中起着重要的作用。为了诊断某种疾病,需要对病人进行各种各样的检查。然而,使用数据挖掘技术,测试的数量可以最小化。这些测试在时间和结果方面起着关键作用。数据挖掘方法有优点也有缺点。本文分析了如何使用数据挖掘方法来识别各种类型的疾病。本文调查了主要集中在预测、糖尿病、心脏病和皮肤癌的研究文章。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diabetes Disease Prediction Using Machine Learning
— Data mining is known as the process of sorting through a large number of data sets to create relationships and to find patterns for solving a given problem through data analysis. Classification, Association rules, Prediction, Clustering, and Sequential patterns are some of the most important and common data mining techniques. Data mining methods are used in a wide variety of applications, also seen in the healthcare sector. Data analysis in the health care industry plays a significant role in the detection of diseases. A variety of tests would be expected from the patient to diagnose a certain disease. However, using the data mining technique, the number of tests can be minimized. These tests play a critical role in time and results. The data mining methodology has benefits and drawbacks. This paper analyses how data mining methods are used to identify various types of diseases. This paper surveyed research articles that focused primarily on predicting, diabetes, heart disease and skin cancer.
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