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Ranking and scoring semantic document annotation

机译:对语义文档注释进行排名和评分

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Semantic web makes computer understands meaning of queries. This state-of-the-art technology will assist human in querying rich documents based on their intention. We define rich document as semantic document in terms of its knowledge, which contains exact statements and related statements. However, some of the search engines are lack of ranking and scoring features. In this paper, we modify FF-ICF algorithm to ranking and scoring semantic document annotation based on document richness. Later, we apply the modification algorithm into a research prototype retrieval engine, PicoDoc, to experiment its ability in ranking and scoring documents annotation. The result shows a modified FF-ICF with related spreading concept yields promising results in retrieving related annotated document.
机译:语义网使计算机能够理解查询的含义。这种最先进的技术将帮助人们根据意图来查询丰富的文档。根据知识,我们将丰富文档定义为语义文档,其中包含精确的语句和相关语句。但是,某些搜索引擎缺少排名和评分功能。在本文中,我们修改了FF-ICF算法,以基于文档丰富度对语义文档注释进行排序和评分。后来,我们将修改算法应用于研究原型检索引擎PicoDoc,以实验其对文档注释进行排名和评分的能力。结果表明,具有相关扩展概念的改进型FF-ICF在检索相关带注释文档中产生了可喜的结果。

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