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Comparison of Neuro-Fuzzy based techniques in Nasopharyngeal Carcinoma Recurrence Prediction

机译:基于鼻咽癌复发预测中神经模糊技术的比较

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This paper aims to compare neuro-fuzzy based techniques for effective prediction of nasopharyngeal carcinoma (NPC) recurrence. The techniques include an artificial neural network (ANN), adaptive neuro-fuzzy inference systems (ANFIS), the functional-type single input rule modules connected fuzzy inference method (F-SIRMs method) and the functional and neural network type SIRMs method (F-NN-SIRMs method). All models are produced to predict the presence or absence and riming of the NPC recurrence. Five years predictions are carried out. Validity of each predictive model is assured by 10-fold cross validation. The results show that the F-NN-SIRMs method is superior to the other techniques in a sense that it provides the higher prediction performance.
机译:本文旨在比较基于神经模糊的基础技术,以有效预测鼻咽癌(NPC)复发。该技术包括人工神经网络(ANN),自适应神经模糊推理系统(ANFIS),功能型单输入规则模块连接的模糊推理方法(F-SIRMS方法)和功能和神经网络类型SIRMS方法(F -nn-sirms方法)。生产所有型号以预测NPC复发的存在或缺失和提升。进行了五年的预测。通过10倍交叉验证确保每个预测模型的有效性。结果表明,F-NN-SIRMS方法优于其他技术,以至于它提供更高的预测性能。

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