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Video Pulses: User-Based Modeling of Interesting Video Segments

机译:视频脉冲:基于用户的有趣视频片段建模

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We present a user-based method that detects regions of interest within a video in order to provide video skims and video summaries. Previous research in video retrieval has focused on content-based techniques, such as pattern recognition algorithms that attempt to understand the low-level features of a video. We are proposing a pulse modeling method, which makes sense of a web video by analyzing users' Replay interactions with the video player. In particular, we have modeled the user information seeking behavior as a time series and the semantic regions as a discrete pulse of fixed width. Then, we have calculated the correlation coefficient between the dynamically detected pulses at the local maximums of the user activity signal and the pulse of reference. We have found that users' Replay activity significantly matches the important segments in information-rich and visually complex videos, such as lecture, how-to, and documentary. The proposed signal processing of user activity is complementary to previous work in content-based video retrieval and provides an additional user-based dimension for modeling the semantics of a social video on the web.
机译:我们提出了一种基于用户的方法,该方法可以检测视频中的感兴趣区域,以便提供视频摘要和视频摘要。以前在视频检索中的研究集中在基于内容的技术上,例如试图识别视频低级特征的模式识别算法。我们正在提出一种脉冲建模方法,该方法通过分析用户与视频播放器的重放交互来使Web视频有意义。特别是,我们已将用户信息搜索行为建模为时间序列,并将语义区域建模为固定宽度的离散脉冲。然后,我们计算了在用户活动信号的局部最大值处动态检测到的脉冲与参考脉冲之间的相关系数。我们发现,用户的重播活动与信息丰富且视觉复杂的视频中的重要部分非常匹配,例如讲座,操作方法和纪录片。拟议的用户活动信号处理是对基于内容的视频检索中先前工作的补充,并提供了一个基于用户的附加维度,用于对网络上社交视频的语义建模。

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