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A Case-Based Approach to Cross Domain Sentiment Classification

机译:基于案例的跨领域情感分类方法

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This paper considers the task of sentiment classification of subjective text across many domains, in particular on scenarios where no in-domain data is available. Motivated by the more general applicability of such methods, we propose an extensible approach to sentiment classification that leverages sentiment lexicons and out-of-domain data to build a case-based system where solutions to past cases are reused to predict the sentiment of new documents from an unknown domain. In our approach the case representation uses a set of features based on document statistics, while the case solution stores sentiment lexicons employed on past predictions allowing for later retrieval and reuse on similar documents. The case-based nature of our approach also allows for future improvements since new lexicons and classification methods can be added to the case base as they become available. On a cross domain experiment our method has shown robust results when compared to a baseline single-lexicon classifier where the lexicon has to be pre-selected for the domain in question.
机译:本文考虑了跨多个域的主观文本的情感分类任务,尤其是在没有域内数据可用的情况下。出于此类方法更广泛的适用性的推动,我们提出了一种可扩展的情感分类方法,该方法利用情感词典和域外数据来构建基于案例的系统,在该系统中重用过去案例的解决方案来预测新文档的情感来自未知域。在我们的方法中,案例表示使用基于文档统计信息的一组功能,而案例解决方案存储在过去的预测中使用的情感词典,以便以后在相似文档上进行检索和重用。我们的方法基于案例的性质还可以在将来进行改进,因为新的词典和分类方法可以在可用的情况下添加到案例库中。在跨域实验中,与必须针对相关域预选择词典的基线单词典分类器相比,我们的方法显示了可靠的结果。

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