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Inferring Data Flow in Semantic Web Service Composition

机译:在语义Web服务组合中推断数据流

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Automation of web service composition is one of the most interesting challenges facing the semantic web today. Despite approaches which are able to infer partial order on services, data flow (i.e., the way data is exchanged among services) remains implicit and difficult to be inferred and automatically generated. Since web services have been enhanced with formal semantic descriptions, it becomes conceivable to exploit and reason on their semantic links (i.e., semantic matching between their functional output and input parameters) to infer data flow. Our approach has been directed to meet the main challenges facing the latter problem i.e., how to effectively i) guarantee whether a data flow is well-formed and ii) infer data flow between services based on their Description Logics (DL) descriptions. To this end, we apply constructive DL reasoning abduction, contraction and introduce the non standard DL reasoning join to model and infer data flow in compositions. The preliminary evaluation results showed high efficiency and effectiveness of the proposed approach.
机译:Web服务组成的自动化是今天语义网络面临的最有趣的挑战之一。尽管能够推断出服务的部分顺序,但数据流(即,在服务之间交换的方式)仍然隐含,难以推断和自动生成。由于Web服务通过正式语义描述得到了增强,因此可以想到利用它们的语义链接(即,它们的功能输出和输入参数之间的语义匹配)来推断数据流。我们的方法已经旨在满足后者问题所面临的主要挑战,即,如何有效地,我可以保证数据流是否是良好的,ii)基于其描述逻辑(DL)描述来推断服务之间的数据流。为此,我们应用建设性的DL推理绑架,收缩,并引入非标准DL推理加入,并在组合物中推断数据流。初步评价结果表明,拟议方法的效率高,有效性。

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