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Paraphrase identification using collaborative adversarial networks

机译:使用协作对抗网络来解释识别

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The paper presents a Collaborative Adversarial Network (CAN) model for paraphrase identification, which is a collaborative network holding generator that is pitted against an adversarial network called discriminator. There has been tremendous research work and countless examinations done on sentence similarity demonstration. Learning and identifying the constant highlights, specifically in various areas and domains is the main focus of paraphrase identification. It Involves the capture of regular highlights between two sentences and the community-oriented learning upon traditional ill-disposed and adversarial learning for common feature extraction. The model outperforms the MaLSTM model, which is the baseline model, and also proves to be comparable to many of the state-of-the-art techniques.
机译:本文介绍了一种用于解释识别的协同对抗网络(CAN)模型,其是针对称为鉴别器的对抗网络的协作网络保持发电机。 在句子相似性演示中,已经有巨大的研究工作和无数考试。 学习和识别恒定的亮点,特别是在各种区域和域中是解释识别的主要重点。 它涉及捕获两句话与社区的常规亮点,以对共同特征提取的传统病态和对抗学习的传统病态和对抗的学习。 该模型优于马斯特马斯特模型,即基线模型,也证明是与许多最先进的技术相媲美。

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