Arabic Metaphor Sentiment Classification Using Semantic Information
Arabic Metaphor Sentiment Classification Using Semantic Information
In this paper, I discuss the testing of the Arabic Metaphor Corpus (AMC) [1] using newly designed automatic tools for sentiment classification for AMC based on semantic tags. The tool incorporates semantic emotional tags for sentiment classification. I evaluate the tool using standard methods, which are F-score, recall, and precision. The method is to show the impact of Arabic online metaphors on sentiment through the newly designed tools. To the best of our knowledge, this is the first approach to conduct sentiment classification for Arabic metaphors using semantic tags to find the impact of the metaphor.
闪-含语系(阿非罗-亚细亚语系)
.Arabic Metaphor Sentiment Classification Using Semantic Information[EB/OL].(2025-04-28)[2025-05-12].https://arxiv.org/abs/2504.19590.点此复制
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