音频在视频总结中的作用

Ibrahim Shoer, Berkay Köprü, E. Erzin
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引用次数: 0

摘要

视频摘要是一种高效的视频表示、检索和浏览技术,可以缓解视频容量和流量激增问题。虽然视频摘要主要使用视觉通道进行压缩,但在最近的文献中出现了视听建模的好处。来自音频通道的信息可以是视频内容中视听相关的结果。在本研究中,我们提出了一种新的视听视频摘要框架,将四种视听信息融合方式与基于gru和基于注意的网络相结合。此外,我们研究了一种新的可解释性方法,使用视听典型相关分析(CCA)来更好地理解和解释音频在视频摘要任务中的作用。在TVSum数据集上的实验评估得到了视听视频摘要的F1分数和Kendall-tau分数的提高。此外,将基于视听CCA的TVSum和COGNIMUSE数据集上的视频内容拆分为正相关和负相关视频,对于纯音频和视听视频摘要而言,其性能优于正相关视频。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of Audio In Video Summarization
Video summarization attracts attention for efficient video representation, retrieval, and browsing to ease volume and traffic surge problems. Although video summarization mostly uses the visual channel for compaction, the benefits of audio-visual modeling appeared in recent literature. The information coming from the audio channel can be a result of audio-visual correlation in the video content. In this study, we propose a new audio-visual video summarization framework integrating four ways of audio-visual information fusion with GRU-based and attention-based networks. Furthermore, we investigate a new explainability methodology using audio-visual canonical correlation analysis (CCA) to better understand and explain the role of audio in the video summarization task. Experimental evaluations on the TVSum dataset attain F1 score and Kendall-tau score improvements for the audio-visual video summarization. Furthermore, splitting video content on TVSum and COGNIMUSE datasets based on audio-visual CCA as positively and negatively correlated videos yields a strong performance improvement over the positively correlated videos for audio-only and audio-visual video summarization.
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