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- W3217506035 abstract "Data analysis and prediction have gradually attracted more and more attention in the smart healthcare industry. The smart medical prediction system is of great importance to the enterprise strategy and business development, and it is also of great value to provide medical advices for patients and assist patient guidance. The research theme is the use of machine learning technologies with the application in the areas of smart medical analysis. In this paper, the actual data of the smart medical industry were statistically analysed and visualized according to the features, and the most influential feature combinations were selected for the establishment of the prediction model. Based on machine learning technology, namely, random forest, the guidance prediction model is established, and the combination of features is repeatedly adjusted to improve its accuracy. The practical significance of this paper is to provide a high-precision solution for smart medical data analysis and to realize the proposed data analysis and prediction on the cloud platform based on the Spark environment." @default.
- W3217506035 created "2021-12-06" @default.
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- W3217506035 date "2021-11-24" @default.
- W3217506035 modified "2023-09-27" @default.
- W3217506035 title "Smart Medical Prediction for Guidance: A Mechanism Study of Machine Learning" @default.
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- W3217506035 doi "https://doi.org/10.1155/2021/2474473" @default.
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