Comparison of conventional mathematical model and machine learning model based on recent advances in mathematical models for predicting diabetic kidney disease

Author:

Sheng Yingda12,Zhang Caimei12,Huang Jing12,Wang Dan12,Xiao Qian12,Zhang Haocheng3,Ha Xiaoqin2ORCID

Affiliation:

1. Gansu University of Chinese Medicine, Lanzhou, Gansu, China

2. The 940th Hospital of the Joint Logistics Support Force of the Chinese People's Liberation Army, Lanzhou, Gansu, China

3. The Second Hospital of Lanzhou University, Lanzhou, Gansu, China

Abstract

Previous research suggests that mathematical models could serve as valuable tools for diagnosing or predicting diseases like diabetic kidney disease, which often necessitate invasive examinations for conclusive diagnosis. In the big-data era, there are several mathematical modeling methods, but generally, two types are recognized: conventional mathematical model and machine learning model. Each modeling method has its advantages and disadvantages, but a thorough comparison of the two models is lacking. In this article, we describe and briefly compare the conventional mathematical model and machine learning model, and provide research prospects in this field.

Funder

Health Commission of Gansu Province

Publisher

SAGE Publications

Reference50 articles.

1. International Diabetes Federation. IDF Diabetes Atlas, 10th ed. Brussels, Belgium: 2021. Available at: https://www.diabetesatlas.org.

2. Treatment of Diabetic Kidney Disease: Current and Future

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