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Using Ontologies in Semantic Data Mining with SEGS and g-SEGS

机译:使用SEGS和g-SEGS在语义数据挖掘中使用本体

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摘要

With the expanding of the Semantic Web and the availability of numerous ontologies which provide domain background knowledge and semantic descriptors to the data, the amount of semantic data is rapidly growing. The data mining community is faced with a paradigm shift: instead of mining the abundance of empirical data supported by the background knowledge, the new challenge is to mine the abundance of knowledge encoded in domain ontologies, constrained by the heuristics computed from the empirical data collection. We address this challenge by an approach, named semantic data mining, where domain ontologies define the hypothesis search space, and the data is used as means of constraining and guiding the process of hypothesis search and evaluation. The use of prototype semantic data mining systems SEGS and g-SEGS is demonstrated in a simple semantic data mining scenario and in two real-life functional genomics scenarios of mining biological ontologies with the support of experimental microarray data.
机译:随着语义网的扩展以及提供数据背景知识和语义描述符的众多本体的可用性,语义数据的数量正在迅速增长。数据挖掘社区面临着范式转变:与其挖掘背景知识支持的大量经验数据,不如说是新的挑战是挖掘受领域本体论编码的知识的丰富性,并受经验数据集计算出的启发式方法的约束。 。我们通过一种称为语义数据挖掘的方法来应对这一挑战,其中领域本体定义了假设搜索空间,并且数据被用作约束和指导假设搜索和评估过程的手段。原型语义数据挖掘系统SEGS和g-SEGS的使用在简单的语义数据挖掘场景中以及在实验性微阵列数据的支持下在挖掘生物本体的两个现实功能基因组学场景中得到了证明。

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