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Generating Multiple Diverse Responses with Multi-Mapping and Posterior Mapping Selection

机译:使用多映射和后部映射选择生成多种不同响应

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In human conversation an input post is open to multiple potential responses, which is typically regarded as a one-to-many problem. Promising approaches mainly incorporate multiple latent mechanisms to build the one-to-many relationship. However, without accurate selection of the latent mechanism corresponding to the target response during training, these methods suffer from a rough optimization of latent mechanisms. In this paper, we propose a multi-mapping mechanism to better capture the one-to-many relationship, where multiple mapping modules are employed as latent mechanisms to model the semantic mappings from an input post to its diverse responses. For accurate optimization of latent mechanisms, a posterior mapping selection module is designed to select the corresponding mapping module according to the target response for further optimization. We also introduce an auxiliary matching loss to facilitate the optimization of posterior mapping selection. Empirical results demonstrate the superiority of our model in generating multiple diverse and informative responses over the state-of-the-art methods.
机译:在人类谈话中,输入帖子对多个潜在响应开放,通常被认为是一个对许多问题。有希望的方法主要包括多个潜在机制来构建一对多关系。然而,在不准确选择训练期间对应于目标响应的潜伏机制的潜在机制,这些方法遭受潜在机制的粗略优化。在本文中,我们提出了一种多映射机制,以更好地捕获一对多关系,其中多个映射模块被用作模拟从输入帖子到其不同响应的语义映射的潜在机制。为了精确地优化潜伏机制,后映射选择模块旨在根据目标响应选择相应的映射模块以进一步优化。我们还引入了辅助匹配损失,以便于优化后部映射选择。经验结果展示了我们在通过最先进的方法产生多种多样化和信息响应时的模型的优越性。

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