Article http://dx.doi.org/10.26855/acc.2023.02.010
Application of Neural Network in Risk Management
Junyu Chen, Lebin Huang*
Sydney Smart Technology College, Northeastern University, Shenyang, Liaoning, China.
*Corresponding author: Lebin Huang
Published: April 10,2023
Abstract
In
recent years, with the intensification of project competition and the rapid increase
of various risks, all the major companies are facing unprecedented challenges.
The emergence of this phenomenon makes people pay more attention to the
engineering risk management, so the project risk management system comes into
being under this background. The key of risk management is to analyze
various risk factors that may occur in the project. Firstly, quantify each risk
factor and adopt different quantitative methods for different risk factors;
Then, using the risk information in the historical project, the neural network
is trained to establish a complete network model; Finally, BP algorithm is used
to train the weight of the neural network. Through the verification of the
proposed neural network, the effectiveness of project risk management using
neural network is verified. On the basis
of risk management, according to the improved risk identification method of
risk identification, risk identification results input to neural network
project risk analysis, then use the optimal neural network algorithm solution,
finally the risk level and countermeasures displayed on the system page, to
reduce the project risk, improve the success rate of the project, make risk
management more accurate, standardized, scientific and convenient.
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How to cite this paper
Application of Neural Network in Risk Management
How to cite this paper: Junyu Chen, Lebin Huang. (2023) Application of Neural Network in Risk Management. Advances in Computer and Communication, 4(1), 61-64.
DOI: https://dx.doi.org/10.26855/acc.2023.02.010