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DCA: Diversified Co-attention Towards Informative Live Video Commenting

机译:DCA:对信息实时视频评论的多样化共同关注

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We focus on the task of Automatic Live Video Commenting (ALVC), which aims to generate real-time video comments with both video frames and other viewers' comments as inputs. A major challenge in this task is how to properly leverage the rich and diverse information carried by video and text. In this paper, we aim to collect diversified information from video and text for informative comment generation. To achieve this, we propose a Diversified Co-Attention (DCA) model for this task. Our model builds bidirectional interactions between video frames and surrounding comments from multiple perspectives via metric learning, to collect a diversified and informative context for comment generation. We also propose an effective parameter orthogonalization technique to avoid excessive overlap of information learned from different perspectives. Results show that our approach outperforms existing methods in the ALVC task, achieving new state-of-the-art results.
机译:我们专注于自动实时视频评论(ALVC)的任务,旨在为视频帧和其他观众的评论作为输入生成实时视频评论。这项任务中的一项重大挑战是如何正确利用视频和文本携带的丰富和多样化的信息。在本文中,我们的目标是从视频和文本中收集多样化的信息,以获取信息丰富的评论生成。为实现这一目标,我们为此任务提出了多元化的共同关注(DCA)模型。我们的模型通过度量学习从多个透视图构建视频帧和周围注释之间的双向交互,以收集评论生成的多元化和信息性上下文。我们还提出了一种有效的参数正交化技术,以避免从不同观点汲取的信息过度重叠。结果表明,我们的方法优于ALVC任务中的现有方法,实现了新的最先进的结果。

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