An Approach of Semantic Web Service Classification Based on Naive Bayes

Jianxiao Liu, Zonglin Tian, Panbiao Liu, Jiawei Jiang, Zhao Li
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引用次数: 38

Abstract

How to classify and organize the semantic Web services to help users find the services to meet their needs quickly and accurately is a key issue to be solved in the era of service-oriented software engineering. This paper makes full use the characteristics of solid mathematical foundation and stable classification efficiency of naive bayes classification method. It proposes a semantic Web service classification method based on the theory of naive bayes. It elaborates the concrete process of how to use the three stages of bayesian classification to classify the semantic Web services in the consideration of service interface and execution capacity. The information gain theory is used to determine the classification influence of different features. Finally, the experiments are used to validate the proposed methods.
基于朴素贝叶斯的语义Web服务分类方法
如何对语义Web服务进行分类和组织,帮助用户快速、准确地找到满足其需求的服务,是面向服务的软件工程时代需要解决的关键问题。本文充分利用了朴素贝叶斯分类方法数学基础扎实、分类效率稳定的特点。提出了一种基于朴素贝叶斯理论的语义Web服务分类方法。详细阐述了在考虑服务接口和执行能力的情况下,如何利用贝叶斯分类的三个阶段对语义Web服务进行分类的具体过程。利用信息增益理论确定不同特征对分类的影响。最后,通过实验验证了所提方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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