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Self-Adaptive Semantic Classification using Domain Knowledge and Web Usage Log for Web Service Discovery

机译:使用领域知识和Web使用日志进行Web服务发现的自适应语义分类

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摘要

The current internet has seen a tremendous growth of web services as an important technology for exchanging information, computing resources and programs online. With these increasing acceptance and existence of internet services, it has become high importance to have effective and accurate recommendation systems. It was observed that vast majority of web services are without associated with a precise description. Due to which most relevant service are not discovered to a particular user service request. Semantic based service discovery are mostly considered for service classification in the similar activities services. But these approaches are limited in their classification to the domain trained knowledge for the service discovery. This paper propose a novel self-adaptive semantic classification approach using service knowledge ontology and web user log frequent pattern in combination to improvise the web service discovery. The performance evaluation measures shows an improvisation in the classifying ability utilizing the service information of a service specific knowledge and user web log patterns.
机译:当前的互联网已经将Web服务视为一种在线交换信息,计算资源和程序的重要技术而得到了飞速发展。随着人们对互联网服务的日益接受和存在,拥有有效,准确的推荐系统已经变得越来越重要。据观察,绝大多数Web服务与精确描述无关。由于此原因,对于特定用户服务请求未发现最相关的服务。在类似活动的服务中,通常将基于语义的服务发现用于服务分类。但是这些方法的分类仅限于用于服务发现的领域培训知识。提出一种结合服务知识本体和Web用户登录频繁模式的自适应语义分类方法,以改进Web服务的发现。性能评估措施显示了利用服务特定知识的服务信息和用户Web日志模式进行分类的能力的提高。

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