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Normalized similarity based semantic approach for discovery of web services

机译:基于归一化相似度的语义发现Web服务的方法

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The practical challenges on the web are irrelevant and huge number of services returned by the UDDI and lack of standard mechanisms that helps in the discovery of desired web services. The utilization of the implicit semantic information from the service profiles can help the service consumers in selecting the most relevant services from a set of offered services. In this paper, an approach for web service discovery is proposed which uses a lexical semantic network constructed from the web snippets as a knowledge base for the calculation of semantic similarity between the service profiles. Our approach takes into account the text descriptions and involves mapping of service profiles to a category based dimension vector by using the notion of semantic similarity which is further merged with the IR based techniques of weight generation and is used for calculating the semantic degree of similarity between the services. We present results that we obtained by applying the approach on set of 106 OWL-S service profiles. Empirical evaluation shows that the proposed approach helps in better discovery of semantically similar and relevant services which are otherwise shown to be unrelated by the keyword based approaches.
机译:UDDI返回的网络上的实际挑战是无关紧要的,并且缺乏有助于发现所需的Web服务的标准机制。来自服务配置文件的隐式语义信息的利用可以帮助服务消费者从一组提供的服务中选择最相关的服务。在本文中,提出了一种用于Web服务发现的方法,它使用从Web片段构造的词汇语义网络作为在服务配置文件之间计算语义相似度的知识库。我们的方法考虑了文本描述,并涉及通过使用基于IR基于IR的权重生成技术的语义相似性来映射到基于类别的维度向量的映射,并且用于计算之间的语义程度服务。我们通过应用106个OWL-S服务配置文件的方法来提供我们获得的结果。经验评估表明,该方法有助于更好地发现由基于关键字的方法不相关的语义上类似和相关的服务。

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