作者
Vijeta Sharma, Shrinkhala Yadav, Manjari Gupta
发表日期
2020/12/18
研讨会论文
2020 2nd International Conference on Advances in Computing, Communication Control and Networking (ICACCCN)
页码范围
177-181
出版商
IEEE
简介
As per the recent study by WHO, heart related diseases are increasing. 17.9 million people die every-year due to this. With growing population, it gets further difficult to diagnose and start treatment at early stage. But due to the recent advancement in technology, Machine Learning techniques have accelerated the health sector by multiple researches. Thus, the objective of this paper is to build a ML model for heart disease prediction based on the related parameters. We have used a benchmark dataset of UCI Heart disease prediction for this research work, which consist of 14 different parameters related to Heart Disease. Machine Learning algorithms such as Random Forest, Support Vector Machine (SVM), Naive Bayes and Decision tree have been used for the development of model. In our research we have also tried to find the correlations between the different attributes available in the dataset with the help of …
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V Sharma, S Yadav, M Gupta - 2020 2nd international conference on advances in …, 2020