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Identifying Risks of the Internet Finance Platforms Using Multi-Source Text Data

机译:使用多源文本数据识别互联网金融平台的风险

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With the explosion of the Internet Finance Platforms, identifying the risks of these platforms is of growing significance, which can help discover problematic platforms in time and ensure the healthy development of the Internet finance industry. In this paper, we design a risk index system to measure the quantitative risk of the Internet finance platforms, and propose a deep neural network based model, CBiGRU-RI, to identify the risks of the platforms using multi-source text data. We conducted comparative experiments with various baseline models on real-world data. The experimental results show that our proposed model can identify the risks of platforms more effectively than the baseline methods.
机译:随着互联网金融平台的爆炸,识别这些平台的风险越来越重要,这可以有助于发现有问题的平台,并确保互联网金融业的健康发展。在本文中,我们设计了一个风险指标系统,以测量互联网金融平台的定量风险,并提出了一个深度神经网络的模型CBIGRU-RI,以使用多源文本数据来识别平台的风险。我们对实际数据进行了各种基线模型进行了比较实验。实验结果表明,我们所提出的模型可以比基线方法更有效地识别平台的风险。

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