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DeepWSC: A Novel Framework with Deep Neural Network for Web Service Clustering

机译:DeepWSC:带有深度神经网络的Web服务群集新型框架

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Correlative approaches have attempted to cluster web services based on either the explicit information contained in service descriptions or functionality semantic features extracted by probabilistic topic models. However, the implicit contextual information of service descriptions is ignored and has yet to be properly explored and leveraged. To this end, we propose a novel framework with deep neural network, called DeepWSC, which combines the advantages of recurrent neural network and convolutional neural network to cluster web services through automatic feature extraction. The experimental results demonstrate that DeepWSC outperforms state-of-the-art approaches for web service clustering in terms of multiple evaluation metrics.
机译:相关方法已经尝试基于由概率主题模型提取的服务描述或功能性语义特征中包含的显式信息来群集Web服务。但是,忽略了服务描述的隐式上下文信息,并尚未正确探索和利用。为此,我们提出了一种与深度神经网络的新颖框架,称为DeepWSC,其通过自动特征提取结合了经常性神经网络和卷积神经网络的优点。实验结果表明,在多个评估度量的方面,DeepWSC优于Web服务聚类的最先进方法。

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