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Analysing the classification of imbalanced data-sets with multiple classes: Binarization techniques and ad-hoc approaches

机译:分析具有多个类别的不平衡数据集的分类:二值化技术和即席方法

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The imbalanced class problem is related to the real-world application of classification in engineering. It is characterised by a very different distribution of examples among the classes. The condition of multiple imbalanced classes is more restrictive when the aim of the final system is to obtain the most accurate precision for each of the concepts of the problem. The goal of this work is to provide a thorough experimental analysis that will allow us to determine the behaviour of the different approaches proposed in the specialised literature. First, we will make use of binarization schemes, i.e., one versus one and one versus all, in order to apply the standard approaches to solving binary class imbalanced problems. Second, we will apply several ad hoc procedures which have been designed for the scenario of imbalanced data-sets with multiple classes. This experimental study will include several well-known algorithms from the literature such as decision trees, support vector machines and instance-based learning, with the intention of obtaining global conclusions from different classification paradigms. The extracted findings will be supported by a statistical comparative analysis using more than 20 data-sets from the KEEL repository.
机译:类的不平衡问题与分类在工程中的实际应用有关。它的特点是类别之间的示例分布非常不同。当最终系统的目的是为问题的每个概念获得最准确的精度时,多个不平衡类的条件会受到更大的限制。这项工作的目的是提供全面的实验分析,使我们能够确定专业文献中提出的不同方法的行为。首先,我们将使用二值化方案,即一对一和一个对所有,以便将标准方法应用于解决二元类不平衡问题。其次,我们将应用为针对具有多个类的不平衡数据集的情况而设计的几种临时过程。这项实验研究将包括文献中的几种著名算法,例如决策树,支持向量机和基于实例的学习,目的是从不同的分类范例中获得全局结论。提取的发现将通过使用KEEL存储库中的20多个数据集进行统计比较分析得到支持。

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