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Selecting an Optimal Feature Set for Stance Detection

机译:选择用于姿态检测的最佳功能

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Stance detection is an automatic recognition of author's view point in relation to a given object. An important stage of the solution process is determining the most appropriate way to represent texts. The paper proposes a new method of selecting an optimal feature set. The method is based on a homogenous ensemble of feature selection methods and a procedure of determining the optimal number of features. In this procedure the dependence of task performance on the number of features is approximated and the optimal number of features is determined by analyzing the growth rate of the function. There have been conducted experiments with text corpora consisting of "for" and "against" stances towards vaccinations of children, the Unified State Examination at school, and human cloning. The results demonstrate that the proposed method allows to achieve better performance in comparison with individual methods and even an overall feature set with a considerably fewer number of features.
机译:姿态检测是对与给定对象相关的作者视点的自动识别。解决方案过程的一个重要阶段正在确定代表文本的最合适的方法。本文提出了一种选择最佳特征集的新方法。该方法基于特征选择方法的均匀组合和确定最佳特征数的过程。在此过程中,任务性能对特征数的依赖性近似,并且通过分析功能的生长速率来确定最佳的特征数。经过关于文本语料库的实验,包括“为”和“对抗”儿童疫苗,学校统一国家考试和人克隆的术语。结果表明,与各个方法相比,该方法允许实现更好的性能,甚至具有相当较少数量的特征的整体特征集。

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