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Artificial neural network may perform good to predict the survivability of cervical cancer
Chi-Ming Chu1, Yu-Tian Chang, Thomas Wetter
1School of Public Health, National Defense Medical College, Taipei, Taiwan.
Abstract:
The project demonstrated to analyze the survivability of cervical cancer from the large data set of SEER (Surveillance Epidemiology and End Results). The data were re-sampled into 10 folds on 5 different size that were based on for three methods- artificial neural network, logistic regression and decision tree- to establish models for predicting the survivability of cervical cancer. In the meanwhile, 10-fold cross-validation was used to examine the respective models of three methods for performance comparison.
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