WSS-NFP:使用软计算的基于非功能属性的web服务选择工具

Sunita Tiwari, Saroj Kaushik
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引用次数: 3

摘要

Web服务为人们和企业之间快速灵活地共享信息的长期需求提供了一个很有前途的解决方案。选择最相关的web服务是web服务研究的关键问题之一。由于越来越多的服务提供者提供具有类似功能的服务,选择web服务已经成为一项繁琐的工作。因此,需要一个框架来选择和发现能够满足非功能需求的web服务。在这项工作中,我们为web服务开发了一个选择工具(WSS-NFP),它可以根据服务的非功能属性(如性能、延迟等)对服务进行排名。我们已经使用软计算技术来选择和发现基于非功能属性的web服务。这些性质本质上是模糊的。开发和实现的工具本质上是通用的,并且可以针对任何应用程序领域进行定制。作为该工具的核心,它由用于对web服务进行排序的模糊系统和用于微调语言术语隶属度函数的神经网络组成。适当和微调的隶属函数有助于最小化输出误差测量和最大化所提出的工具的性能指标。这个工具基本上是一个神经模糊系统,用于排名任何领域的web服务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
WSS-NFP: Tool for web service selection based on non-functional properties using soft computing
Web services provide a promising solution to an age old need of fast and flexible information sharing among people and businesses. One of the key research issues in web services is selection of most pertinent web services. Selection of web service has become a tedious job because of the increasing number of service providers providing services with similar functionality. Therefore, a framework for selection and discovery of web service that can meet the non-functional requirements is needed. In this work, we have developed a selection tool (WSS-NFP) for web services which can rank services based on their non functional properties such as performance, delay etc. We have used soft computing techniques for selection and discovery of web services based on non functional properties. These properties are fuzzy in nature. A tool is developed and implemented that is generic in nature and can be customized for any application domain. As a core of this tool, it consists of Fuzzy System for ranking web services and Neural Network for fine tuning the membership functions for linguistic terms. Appropriate and fine tuned membership functions help in minimizing the output error measure and maximizing the performance index of the proposed tool. This tool is basically a Neuro-Fuzzy system for ranking web services of any domain.
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