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MIAT: A Novel Attribute Selection Approach to Better Predict Upper Gastrointestinal Cancer

机译:MIAT:一种更好地预测上胃肠癌的新颖性选择方法

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The use of data mining has led to many significant medical discoveries. However, many challenges still exist in using these methods for knowledge discovery within this field given that the large amounts of data medical practitioners collect often creates a curse of dimensionality. To address this challenge, attribute selection approaches have been developed. However, current approaches typically put equal weight on all values within that attribute. At times, and especially within medical domains, we claim that these approaches might miss attributes where only a small subset of attribute values contain a strong indication for one of the target values and thus should still be selected. To quantify this approach, we present MIAT, an algorithm that defines Minority Interesting Attribute Thresholds to find these important attribute values. As we developed MIAT to help better diagnose upper gastrointestinal cancer, we present how we use the attributes selected through this approach to build a predictive model for this cancer. To demonstrate MIAT's generality, we also applied it to a canonical Hungarian Heart Disease Dataset. In both datasets we found that MIAT yields significantly better accuracy and sensitivity over traditional attribute selection approaches.
机译:数据挖掘的使用导致了许多重要的医学发现。然而,在鉴于大量数据医生收集的情况下,在该领域中使用这些方法,仍然存在许多挑战在该领域中常常产生维度的诅咒。为了解决这一挑战,已经开发了属性选择方法。但是,当前方法通常对该属性内的所有值上的平等权重。有时,特别是在医学域内,我们声称这些方法可能会错过任何属性的属性,其中只有一个小属性值包含一个目标值的强指示,因此仍然应该选择。为了量化此方法,我们呈现MIAI,这是一种定义少数群体有趣属性阈值的算法,以查找这些重要的属性值。由于我们开发了寿命,以帮助更好地诊断上胃肠癌癌症,我们展示了我们如何使用通过这种方法选择的属性来构建这种癌症的预测模型。为了展示MIAI的普遍性,我们还将其应用于一个规范匈牙利心脏病数据集。在两个数据集中,我们发现使用传统的属性选择方法产生更好的准确性和敏感性。

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