基于云计算的BP神经网络银行风险预警模型

Rui Zhang, Changbing Jiang
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引用次数: 5

摘要

构建科学有效的银行风险预警模型是商业银行有效防范和化解风险的重要措施。本文运用BP神经网络和主成分分析法构建了银行风险预警模型。同时,针对处理海量数据训练网络耗时较长的问题,将算法分解为MapReduce,并行运行以减少运行时间。实验结果表明,该神经网络模型的准确率达到了88%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The bank risk forewarning model of BP neural network based on the clound computing
Constructing a scientific and effective bank risk forewarning model is an important measure to effectively guard against and defuse risks in commercial banks. This article constructs a bank risk forewarning model using BP neural network and principal component analysis method. Meanwhile, being aimed at that it takes a long time while processing the mass data to train the network, it also decomposes the algorithm for MapReduce, running in parallel to reduce the running time. The experiment result shows that the neural network model achieved higher accuracy of rate 88percents.
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