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Knowledge extraction using probabilistic reasoning: An artificial neural network approach

机译:使用概率推理的知识提取:一种人工神经网络方法

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The World Wide Web (WWW) has radically changed the way in which we access, generate and disseminate information. Its presence is felt daily and with more internet-enabled devices being connected the web of knowledge is growing. We are now moving into era where the WWW is capable of ‘understanding’ the actual/intended meaning of our content. This is being achieved by creating links between distributed data sources using the Resource Description Framework (RDF). In order to find information in this web of interconnected sources, complex query languages are often employed, e.g. SPARQL. However, this approach is limited as exact query matches are often required. In order to overcome this challenge, this paper presents a probabilistic approach to searching RDF documents. The developed algorithm converts RDF data into a matrix of features and treats searching as a machine learning problem. Using a number of artificial neural network algorithms, a successfully developed prototype has been developed that demonstrates the applicability of the approach. The results illustrate that the Voted Perceptron classifier (VPC), perceptron linear classifier (PERLC) and random neural network classifier (RNNC) performed particularly well, with accuracies of 100%, 98% and 93% respectively.
机译:万维网(WWW)彻底改变了我们访问,生成和传播信息的方式。每天都在感觉它的存在,并且随着越来越多的支持Internet的设备的连接,知识网络也在不断增长。我们现在正进入WWW能够“了解”我们内容的实际/预期含义的时代。这是通过使用资源描述框架(RDF)在分布式数据源之间创建链接来实现的。为了在这个互连的资源网中找到信息,通常采用复杂的查询语言,例如。 SPARQL。但是,由于经常需要精确的查询匹配,因此该方法受到限制。为了克服这一挑战,本文提出了一种概率方法来搜索RDF文档。所开发的算法将RDF数据转换为特征矩阵,并将搜索视为机器学习问题。使用许多人工神经网络算法,已开发出成功开发的原型,证明了该方法的适用性。结果表明,投票感知器分类器(VPC),感知器线性分类器(PERLC)和随机神经网络分类器(RNNC)表现特别好,准确度分别为100%,98%和93%。

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