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Utterance-to-Utterance Interactive Matching Network for Multi-Turn Response Selection in Retrieval-Based Chatbots

机译:在基于检索的聊天聊天中的多转响应选择的话语到话语交互式匹配网络

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This article proposes an utterance-to-utterance interactive matching network (U2U-IMN) for multi-turn response selection in retrieval-based chatbots. Different from previous methods following context-to-response matching or utterance-to-response matching frameworks, this model treats both contexts and responses as sequences of utterances when calculating the matching degrees between them. For a context-response pair, the U2U-IMN model first encodes each utterance separately using recurrent and self-attention layers. Then, a global and bidirectional interaction between the context and the response is conducted using the attention mechanism to collect the matching information between them. The distances between context and response utterances are employed as a prior component when calculating the attention weights. Finally, sentence-level aggregation and context-response-level aggregation are executed in turn to obtain the feature vector for matching degree prediction. Experiments on four public datasets showed that our proposed method outperformed baseline methods on all metrics, achieving a new state-of-the-art performance and demonstrating compatibility across domains for multi-turn response selection.
机译:本文提出了一种用于在基于检索的Chatbots中的多转响应选择的话语到话语交互式匹配网络(U2U-IMN)。与以前的方法不同,在响应响应匹配或发话机到响应匹配框架之后,该模型将上下文和响应视为在计算它们之间的匹配度时的话语序列。对于上下文 - 响应对,U2U-IMN模型首先使用复制和自我注意层分别对每个话语进行编码。然后,使用注意机制进行上下文与响应之间的全局和双向交互来收集它们之间的匹配信息。在计算注意力时,上下文和响应话语之间的距离作为先前的组件。最后,依次执行句子级聚合和上下文 - 响应级别聚合以获得匹配程度预测的特征向量。四个公共数据集的实验表明,我们所提出的方法在所有指标上表现出基线方法,实现了新的最先进的性能,并在域中展示了多转响应选择的域兼容性。

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