潜在Dirichlet分配模型在马来语文献语义信息检索中的有效性

Nurul Syeilla Syazhween Binti Zulkefli, N. A. Abdul Rahman, Mazidah Puteh, Zainab Binti Abu Bakar
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引用次数: 5

摘要

目前的研究通常采用向量空间模型(VSM)的标准流程来检索马来语文献信息。然而,该技术对于从集合中检索语义信息的效果较差。系统将只检索包含用户查询词的文档,而忽略这些词之间的语义信息。因此,具有相似上下文的几个文档将被忽略,而共享一个术语的几个文档上下文将被检索。针对这一问题,将潜在狄利克雷分配(Latent Dirichlet Allocation, LDA)模型应用于马来语文档的语义信息检索。基于6个查询文本和50个马来语翻译的圣训文献,由布哈里圣训集合组成,说明了一个实验。实验结果表明,与现有技术相比,LDA模型在马来语翻译圣训文档的语义信息检索方面取得了令人满意的结果。为了提高检索结果的有效性,本研究可以为今后的工作探索一些局限性。总之,LDA是一种有效的马来语文档语义信息检索方法,它可以帮助人们方便地检索马来语文档中的语义信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effectiveness of Latent Dirichlet Allocation Model for Semantic Information Retrieval on Malay Document
Current research usually adopts the standard process of Vector Space Model (VSM) in searching and retrieving information on Malay documents. However, this technique is less effective for semantic information retrieval from the collection. The system will only retrieve documents which contain the user's query terms and ignore semantic information among those terms. Therefore, several documents that have similar context are ignored and several document context that share a single term are retrieved. Due to this problem, Latent Dirichlet Allocation (LDA) model is applied for semantic information retrieval on Malay documents. An experiment was illustrated based on 6 queries text and 50 Hadith documents translated in Malay language, composed of Shahih Bukhari collections. Experimental results proved that the LDA model gives promising results in retrieving semantic information in Malay translated Hadith documents compare to existing techniques. Some limitation from this study can be explored for future work in order to improve the effectiveness of the retrieval results. Overall, LDA is an effective method for semantic information retrieval on Malay document, thus, it can help people to easily search and retrieve semantic information from Malay documents.
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