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Titlebook: Natural Language Processing and Information Systems; 26th International C Elisabeth Métais,Farid Meziane,Epaminondas Kapetan Conference pro

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楼主: 习惯
发表于 2025-3-30 08:45:22 | 显示全部楼层
Cross-Domain Transfer of Generative Explanations Using Text-to-Text Modelsce across various natural language processing tasks. However, these models remain opaque and hard to explain due to their vast complexity and size. This limits adoption in highly-regulated domains like medicine and finance, and often there is a lack of trust from non-expert end-users. In this paper,
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Virus Causes Flu: Identifying Causality in the Biomedical Domain Using an Ensemble Approach with Taromain. An example sentence having CE relation in the biomedical domain (precisely Leukemia) is: .. Here, . is the cause argument, . is the effect argument and . is the trigger word creating a causal scenario. Notably CE relation has a temporal order between . and . arguments. In this paper, we harne
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Sequence-Based Word Embeddings for Effective Text Classification generalize LME to consider different distance metrics and address existing scalability issues using negative sampling, thus making DiVe scalable for large datasets. In order to evaluate the quality of word embeddings produced by DiVe, we used them to train standard machine learning classifiers, wit
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Multiword Expression Features for Automatic Hate Speech Detection human monitoring of hate speech is unfeasible. In this work, we propose new word-level features for automatic hate speech detection (HSD): multiword expressions (MWEs). MWEs are lexical units greater than a word that have idiomatic and compositional meanings. We propose to integrate MWE features in
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