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Valence-arousal analysis for mental-health document retrieval

机译:精神健康文件检索的价值分析

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The increasing incidence of depression has attracted increased attention to mental-health document retrieval techniques which aims to help individuals efficiently locate documents and resources relevant to their depressive problems. However, current retrieval systems generally have low accuracy. We propose combining a Valence-Arousal-based (VA-based) retrieval model and other word-based retrieval models to improve the precision of retrieval results. The VA-based retrieval model considers affective words extracted from queries, which help provide a better understanding of user queries. Experimental results demonstrate that the combined methods outperform the word-based retrieval models which adopt word-level information alone, such as vector space model and BM25 model.
机译:抑郁症的发病率越来越多地引起了对心理健康文件检索技术的增加,旨在帮助个人有效地定位与抑郁问题相关的文件和资源。然而,电流检索系统通常具有低精度。我们建议将基于价(基于VA的)检索模型和其他基于词的检索模型结合,以提高检索结果的精度。基于VA的检索模型考虑从查询中提取的情感单词,这有助于提供对用户查询的更好理解。实验结果表明,组合方法优于单独采用字级信息的基于词的检索模型,例如矢量空间模型和BM25模型。

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