Financial Risk Early Warning Model Combining SMOTE and Random Forest for Internet Finance Companies
Zhongqin Zheng
Abstract:At present, there have been many achievements on enterprise financial risk early warning model, but relatively few early warning studies focusing on the Internet industry. Research shows that the model has stable recognition accuracy and good prediction performance. The improved SMOTE algorithm based on PCA can realize the equalization of unbalanced data sets and use random forest as a classifier to classify and predict geological data. Because the noise data in the original data set may cause the change of th… Show more
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