基于T-S模糊神经网络和回归拟合交叉分析的综合预测评价模型

Yunai Wu, Jia Zhang, Jiankai Zuo, Yuqi Tan, Zhixuan Han, Zhen Zhao
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引用次数: 1

摘要

随着2019年底新冠肺炎疫情的爆发,在深入学习贯彻整体国家安全观的要求下,人民健康水平成为人们关注的焦点,也是反映民生最基本、最根本的重要指标。本文以综合经济水平较强的深圳市为例,通过数据处理,选取医疗、环境等6个主要影响因素,采用回归与拟合交叉分析的方法,建立因素与人们健康水平的拟合曲线进行预测,得到回归方程。在此基础上,利用T-S模糊神经网络(T-S FNN)划分回归模型的评价等级,对人的身体健康水平的多个因素进行有效评价,建立综合预测评价模型,得到影响人的身体健康相关因素及其自身直接因素的梯度等级。
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A Comprehensive Predictive Evaluation Model Based on T-S Fuzzy Neural Network and Regression Fitting Cross Analysis
With the outbreak of COVID-19 at the end of 2019, under the requirement of in-depth study and implementation of the overall national security concept, people's health level has become the focus of people's attention, and it is also the most basic and fundamental important indicator to reflect people's livelihood. Taking Shenzhen, a city with strong comprehensive economic level, as an example, this paper uses data processing to select six major influencing factors, such as medical treatment and environment, and uses the method of regression and fitting crossover analysis to establish the fitting curve between factors and people's health level for prediction, and obtains the regression equation. On this basis, T-S Fuzzy Neural Network (T-S FNN) is used to divide the evaluation grade of regression model, make an effective evaluation of multiple factors of people's physical health level, establish a comprehensive prediction evaluation model, and obtain the gradient grade of factors affecting people's physical health correlation and their own direct factors.
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