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Applying Neural Networks for Loan Decisions in the Jordanian Commercial Banking System

机译:在约旦商业银行系统中将神经网络应用于贷款决策

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摘要

Artificial Neural Networks play an increasingly important role in financial applications for such tasks as pattern recognition, classification, and time series forecasting. This study develops a proposed model that identifies artificial neural network as an enabling tool for evaluating credit applications to support loan decisions in the Jordanian commercial banks. A multi-layer feed-forward neural network with backpropagation learning algorithm was used to build up the proposed model. Different representative cases of loan applications were considered based on the guidelines of different banks in Jordan, to validate the neural network model. The results indicate that artificial neural networks are a successful technology that can be used in loan application evaluation in the Jordanian commercial banks.
机译:人工神经网络在金融应用中扮演越来越重要的角色,例如模式识别,分类和时间序列预测。这项研究开发了一种提议的模型,该模型将人工神经网络识别为评估信贷申请以支持约旦商业银行贷款决策的支持工具。利用带有反向传播学习算法的多层前馈神经网络建立了该模型。基于约旦不同银行的指导方针考虑了不同的代表性贷款申请案例,以验证神经网络模型。结果表明,人工神经网络是一项成功的技术,可用于约旦商业银行的贷款申请评估。

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