Application Research of Artificial Neural Network in Environmental Quality Monitoring

Author:

Zhao Kunrong1,He Tingting2,Wu Shuang3,Wang Songling1,Dai Bilan1,Yang Qifan2,Lei Yutao1ORCID

Affiliation:

1. South China Institute of Environmental Sciences, MEP, Guangdong, P. R. China

2. Guangzhou Hexin Environmental Protection Technology Co., Ltd., Guangdong, P. R. China

3. Guangzhou Huake Environmental Protection Engineering Co., Ltd., Guangdong, P. R. China

Abstract

With the steady growth of the economy and the rapid development of modern industrial technology, the problem of environmental pollution has increased. To continue to develop, it is necessary to thoroughly implement the sustainable development strategy, and we must pay more attention to environmental issues. One of the important management tools implemented in China for environmental management is environmental quality monitoring and evaluation. Environmental quality monitoring can scientifically evaluate the environmental quality of a region, scientifically evaluate and forecast the environmental management and environmental engineering, and provide scientific basis for environmental management, environmental engineering, formulation of environmental standards, environmental planning, comprehensive prevention and control of environmental pollution, and ecological environment construction. This paper will discuss the basic principles of neural network and the implementation process of MATLAB and in the MATLAB software implementation and display process. At the same time, the results of different parameters are analyzed through experiments, and the network parameters are constantly adjusted to improve the accuracy of the evaluation results. Taking the regional environment as an example, two monitoring methods are proposed, and a variety of neural network models are used to analyze each prediction method. Case study results show that the latter method has a better prediction effect.

Publisher

World Scientific Pub Co Pte Lt

Subject

Artificial Intelligence,Computer Vision and Pattern Recognition,Software

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