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Inducing Uncertain Decision Tree via Cloud Model

机译:通过云模型推导不确定的决策树

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This paper addresses the decision trees induction with uncertain data. In other words, it presents a novel method, called uncertain decision trees (UDT) to handle the uncertainty during the process of inducing decision trees. Here, uncertainty is depicted via cloud model theory, a quantitative-qualitative transforming model with uncertainty, which can well integrate the fuzziness and randomness of concepts in a unified way. In the learning stage, dataset is pre-processed by cloud transformation algorithm, which climbs data into class labels via histograms or frequency distribution, and the labels are expressed by cloud concepts. In this paper, some basic definitions are proposed, including cloud distance, cloud dissimilarity matrix, cloud index, and UDT, where cloud index is a novel splitting criterion of selecting attributes for handling uncertainty. Take data from UCI for example, this paper provided an algorithm inducing UDT, and checked its validity or appropriateness. In contrast to the classical approaches, both in the learning stage and classifying stage, the proposed method develops existing methods, and it is more consistent with the human cognition, which can support uncertainty, build UDT via cloud concepts, and classify the uncertain data. Moreover, experiments and results are compared with the current methods to illustrate the feasibility, accuracy and effectiveness of the cloud based algorithm.
机译:本文针对具有不确定数据的决策树归纳。换句话说,它提出了一种称为不确定性决策树(UDT)的新方法,用于在归纳决策树的过程中处理不确定性。在这里,不确定性通过云模型理论来描述,该模型是具有不确定性的定量定性转换模型,可以很好地统一概念的模糊性和随机性。在学习阶段,通过云变换算法对数据集进行预处理,该算法通过直方图或频率分布将数据爬到类标签中,并用云概念表示标签。本文提出了一些基本定义,包括云距离,云相似度矩阵,云指数和UDT,其中云指数是一种选择不确定性属性的新颖分裂准则。以UCI中的数据为例,本文提供了一种诱导UDT的算法,并对其有效性或适用性进行了检验。与经典方法相反,无论是在学习阶段还是分类阶段,该方法都发展了现有的方法,更符合人类的认知,可以支持不确定性,通过云概念建立UDT,并对不确定数据进行分类。此外,将实验和结果与当前方法进行了比较,以说明基于云的算法的可行性,准确性和有效性。

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