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Prediction of the Survival of Patients with Cardiac Failure by using Soft Computing Techniques

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The following paper presents a piece of work done on a relatively small dataset - with 1099 samples and 20 attributes - obtained from hospital records in Hungary. It goes to prove that by using a well tuned support vector machine model brought in better predicting results in terms of accuracy and calculation cost to a classification problem compared to an artificial neural network, random forest or the decision tree models. Next further improvements were suggested for the dataset and the preparation process as well.

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2018 IEEE 12TH INTERNATIONAL SYMPOSIUM ON APPLIED COMPUTATIONAL INTELLIGENCE AND INFORMATICS (SACI)

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978-1-5386-4640-3

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