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A Neural Network Approach to Context-Sensitive Generation of Conversational Responses

机译:上下文敏感的会话响应生成的神经网络方法

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摘要

We present a novel response generation system that can be trained end to end on large quantities of unstructured Twitter conversations. A neural network architecture is used to address sparsity issues that arise when integrating contextual information into classic statistical models, allowing the system to take into account previous dialog utterances. Our dynamic-context generative models show consistent gains over both context-sensitive and non-context-sensitive Machine Translation and Information Retrieval baselines.
机译:我们提出了一种新颖的响应生成系统,可以对大量的非结构化Twitter对话进行端到端训练。神经网络体系结构用于解决将上下文信息集成到经典统计模型中时出现的稀疏性问题,从而使系统能够考虑以前的对话话语。我们的动态上下文生成模型在上下文敏感和非上下文敏感的机器翻译和信息检索基准上均显示出一致的收益。

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