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An Adaptive Fuzzy Regression Model for the Prediction of Dichotomous Response Variables

机译:一种预测二分法响应变量的自适应模糊回归模型

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This paper proposes an adaptive technique in the prediction of dichotomous response variable by combining fuzzy concept with statistical logistic regression. The model was tested on an oral cancer dataset in predicting oral cancer susceptibility. In this paper we will present the development, evaluation and validation of the proposed model based on the experiment carried out. Explanatory power of the adaptive model was calculated and compared with fuzzy neural network and statistical logistic regression models using calibration and discrimination techniques. Area under ROC values calculated indicates that the proposed model has compatible predictive ability to both fuzzy neural network and statistical logistic regression models.
机译:本文通过将模糊概念与统计逻辑回归相结合来提出了一种预测二分法反应变量的自适应技术。在预测口腔癌易感性的口腔癌数据集上测试该模型。本文介绍了基于实验的拟议模型的开发,评估和验证。使用校准和辨别技术计算自适应模型的解释性,并与模糊神经网络和统计逻辑回归模型进行比较。计算下的ROC值下的区域表明,所提出的模型对模糊神经网络和统计逻辑回归模型具有兼容的预测能力。

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