The bankruptcy-prediction problem can be viewed as a problem of classification. The data set you will be

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The bankruptcy-prediction problem can be viewed as a problem of classification. The data set you will be using for this problem includes five ratios that have been computed from the financial statements of real-world firms. These five ratios have been used in studies involving bankruptcy prediction. The first sample includes data on firms that went bankrupt and firms that didn’t. This will be your training sample for the neural network. The second sample of 10 firms also consists of some bankrupt firms and some nonbankrupt firms. Your goal is to use neural networks, support vector machines, and nearest neighbor algorithms to build a model, using the first 20 data points, and then test its performance on the other 10 data points. (Try to analyze the new cases yourself manually before you run the neural network and see how well you do.) The following tables show the training sample and test data you should use for this exercise.

Describe the results of the neural network, support vector machines, and nearest neighbor model predictions, including software, architecture, and training information.

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Business Intelligence And Analytics Systems For Decision Support

ISBN: 9781292009209

10th Global Edition

Authors: Efraim Turban, Ramesh Sharda, Dursun Delen, Pearson Education Limited, Dennis G. Zill

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