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Applications of Deep Learning in Unified Credit Management of Commercial Banks

机译:深度学习在商业银行统一信用管理中的应用

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With the rapid development of new technologies, such as cloud computing, mobile internet, financial technology and big data, commercial banks in China have to step up their efforts to use new technologies such as artificial intelligence to innovate. In this paper, we focus on detecting the image orientation and rotating the image to the right angle automatically based on convolutional neural network in unified credit management of banks. First, in view of the characteristics of scanned images in banking systems, we analyze the process of credit evaluation and approval of Zhengzhou bank in detail. Then, we convert the problem of skew correction into image classification in unified credit management of commercial banks, and we fine-tuning the pretrained VGG16 model with TensorFlow for image classification. Finally, we develop a deep learning platform in bank of Zhengzhou to test the performance of the proposed method. In contrast to traditional image processing methods, the test results on bank's real dataset show the superiority of our proposed method, and the proposed method has been applied in the process of credit approval to improve the automation and intelligence level of Zhengzhou Bank to a certain extent.
机译:随着云计算,移动互联网,金融技术和大数据等新技术的飞速发展,中国的商业银行必须加紧努力,利用人工智能等新技术进行创新。本文重点研究基于卷积神经网络的图像方向检测和图像自动旋转至直角,实现银行统一授信管理。首先,针对银行系统扫描图像的特点,详细分析了郑州银行的信用评估和审批过程。然后,在商业银行统一信贷管理中,将偏斜校正问题转换为图像分类,并使用TensorFlow对预训练的VGG16模型进行微调以进行图像分类。最后,我们在郑州银行开发了一个深度学习平台,以测试该方法的性能。与传统的图像处理方法相比,在银行真实数据集上的测试结果表明了该方法的优越性,并将该方法应用于授信审批过程中,在一定程度上提高了郑州银行的自动化程度和智能水平。 。

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