Dealing with highly imbalanced textual data gathered into similar classes

Jean-Charles Lamirel
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引用次数: 1

Abstract

This paper deals with a new feature selection and feature contrasting approach for classification of highly imbalanced textual data with a high degree of similarity between associated classes. An example of such classification context is illustrated by the task of classifying bibliographic references into a patent classification scheme. This task represents one of the domains of investigation of the QUAERO project, with the final goal of helping experts to evaluate upcoming patents through the use of related research.
处理收集到类似类中的高度不平衡的文本数据
本文研究了一种新的特征选择和特征对比方法,用于分类高度相似的高度不平衡文本数据。这种分类上下文的一个例子是通过将书目参考文献分类为专利分类方案的任务来说明的。这项任务代表了QUAERO项目的研究领域之一,其最终目标是通过使用相关研究来帮助专家评估即将到来的专利。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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