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Decision Support System Using Decision Tree and Neural Networks

机译:使用决策树和神经网络的决策支持系统

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Decision making in a complex and dynamically changing environment of the present day demands a new techniques of computational intelligence for building equally an adaptive, hybrid intelligent decision support system. In this paper, a Decision Tree-Neuro Based model was developed to handle loan granting decision support system and clinical decision support system(Eye Disease Diagnosis) which are two important decision problems that requires delicate care. The system uses an integration of Decision Tree and Artificial Neural Networks with a hybrid of Decision Tree algorithm and Multilayer Feed-forward Neural Network with backpropagation learning algorithm to build up the proposed model. Different representative cases of loan applications and eye disease diagnosis were considered based on the guidelines of different banks in Nigeria and according to patient complaint, symptoms and physical eye examinations to validate the model. Object-Oriented Analysis and Design (OO-AD) methodology was used in the development of the system, and an object-oriented programming language was used with a MATLAB engine to implement the models and classes designed in the system. The system developed, gives 88% success rate and eliminate the opacity of an ordinary neural networks system. Key w ords: Decision Tree-Neuro Based Model, Backpropagation Learning Algorithm, Object-Oriented Analysis and Design, MATLAB Embedded Engine, Loan Granting, Eye Diseases Diagnosis.
机译:在当今复杂且动态变化的环境中进行决策需要一种新的计算智能技术,以同样地构建自适应混合智能决策支持系统。本文建立了一个基于决策树-神经网络的模型来处理贷款发放决策支持系统和临床决策支持系统(眼病诊断),这是两个需要精细护理的重要决策问题。该系统将决策树和人工神经网络集成在一起,并结合了决策树算法和多层前馈神经网络以及反向传播学习算法,从而构建了该模型。根据尼日利亚不同银行的指导方针,并根据患者的投诉,症状和肉眼检查,考虑了不同的代表性贷款申请和眼病诊断案例,以验证该模型。在系统开发中使用了面向对象的分析和设计(OO-AD)方法,并通过MATLAB引擎使用了面向对象的编程语言来实现系统中设计的模型和类。开发的系统可提供88%的成功率,并消除了普通神经网络系统的不透明性。主要工作:基于决策树-神经网络的模型,反向传播学习算法,面向对象的分析和设计,MATLAB嵌入式引擎,贷款发放,眼部疾病诊断。

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