Research on Danjiang Water Quality Prediction Based on Improved Artificial Bee Colony Algorithm and Optimized BP Neural Network

Author:

He Jian’qiang12ORCID,Liu Naian3,Han Mei’lin1,Chen Yao12

Affiliation:

1. Electronic Information and Electrical College of Engineering, Shangluo University, Shangluo 726000, China

2. Shangluo Artificial Intelligence Research Center, Shangluo 726000, China

3. College of Communication Engineering, Xi’an University of Electronic Science and Technology, Xian 710126, China

Abstract

In order to ensure “a river of clear water is supplied to Beijing and Tianjin” and improve the water quality prediction accuracy of the Danjiang water source, while avoiding the local optimum and premature maturity of the artificial bee colony algorithm, an improved artificial bee colony algorithm (ABC algorithm) is proposed to optimize the Danjiang water quality prediction model of BP neural network is proposed. This method improves the local and global search capabilities of the ABC algorithm by adding adaptive local search factors and mutation factors, improves the performance of local search, and avoids local optimal conditions. The improved ABC algorithm is used to optimize the weights and thresholds of the BP neural network to establish a water quality grade prediction model. Taking the water quality monitoring data of Danjiang source (Shangzhou section) from 2015 to 2019 as the research object, it is compared with GA-BP, PSO-BP, ABC-BP, and BP models. The research results show that the improved ABC-BP algorithm has the highest prediction accuracy, faster convergence speed, stronger stability, and robustness.

Funder

National Natural Science Foundation of China

Publisher

Hindawi Limited

Subject

Computer Science Applications,Software

Reference20 articles.

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3. Study on water quality forecast based on GM(1,1) residual modification model;L.-L. Guo;Mathematics in Practice and Theory,2014

4. Application of weighted combination model on forecasting water quality;D. Liu;Acta Scientiae Circumstantiae,2012

5. Forecasting of water quality using grey GM(1,1) -wavelet-GARCH hybrid method in Songhua River Basin;M. Xu;Transactions of the Chinese Society of Agricultural Engineering,2016

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