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A Unified Ontology Merging and Enrichment Framework

机译:统一的本体合并和丰富框架

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摘要

With the growing development of heterogeneous domain-specific ontologies, the treatment of the semantic and structural differences between such ontologies becomes more important. In addition, constant maintenance and update is required so that they can be promptly enriched with new concepts and instances. In this paper, we present a coupled statistical/semantic framework for ontology merging and enrichment. First, we prioritize the ontology merging techniques according to their significance and execution into semantic-based, name-based, and statistical-based techniques respectively. In addition, we exploit multiple knowledge bases to support the merging task. Second, we use the massive amount of information encoded in texts on the Web as a corpus to enrich the merged ontology. An experimental instantiation of the framework and comparisons with state-of-the-art syntactic and semantic-based merging and enrichment systems validate our proposal.
机译:随着异构领域特定本体的不断发展,这种本体之间语义和结构差异的处理变得越来越重要。另外,需要不断的维护和更新,以便可以迅速用新的概念和实例来丰富它们。在本文中,我们提出了一种用于本体合并和丰富化的统计/语义耦合框架。首先,我们根据本体合并技术的重要性和执行优先级将它们分别划分为基于语义,基于名称和基于统计的技术。此外,我们利用多种知识库来支持合并任务。第二,我们将大量以网络文本形式编码的信息用作语料库,以丰富合并的本体。实验框架的实例化以及与最新的句法和基于语义的合并与充实系统的比较证实了我们的建议。

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