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Research on the Application of Deep Learning Technology in Intelligent Dialogue Robots

机译:深度学习技术在智能对话机器人中的应用研究

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摘要

With the breakthrough of the application of deep learning technology in computer vision and natural language processing tasks, the application of deep learning to intelligent dialogue robots has become a new research hotspot. As a novel way of human-computer interaction, intelligent dialogue robots are becoming one of the entrances of mobile search and services, and are increasingly being paid attention to by enterprises and society. However, there are still some problems in the current dialogue robot, such as insufficient use of multi-modal information and weak emotional expression ability. In this paper, a multi-modal intelligent reply generation model based on seq2seq + attention is proposed by using deep learning algorithm, which can effectively use multi-modal information such as text, picture and video to interact. At the same time, on the basis of considering the contextual content information, the model further integrates the emotional transfer change information of the dialogue text. Experimental evaluation results show that the combination of emotional intelligence can make text response generation more emotionally expressive and more vivid response generation results.
机译:随着深度学习技术在计算机视觉和自然语言处理任务中的应用突破,深入了解智能对话机器人的应用已成为新的研究热点。作为人机互动的新方式,智能对话机器人正在成为移动搜索和服务的入口之一,越来越受到企业和社会的关注。然而,目前对话机器人仍存在一些问题,例如使用多模态信息的不足和弱情表达能力。在本文中,利用深度学习算法提出了一种基于SEQ2Seq +注意力的多模态智能回复生成模型,这可以有效地使用文本,图片和视频等多模态信息进行交互。同时,在考虑上下文内容信息的基础上,该模型还集成了对话文本的情绪转移变更信息。实验评价结果表明,情绪智力的结合可以使文本反应产生更具情感表现力和更生动的反应产生结果。

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