Extracting story units from long programs for video browsing and navigation

M. Yeung, B. Yeo, Bede Liu
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引用次数: 230

Abstract

Content based browsing and navigation in digital video collections have been centered on sequential and linear presentation of images. To facilitate such applications, nonlinear and non sequential access into video documents is essential, especially with long programs. For many programs, this can be achieved by identifying underlying story structures which are reflected both by visual content and temporal organization of composing elements. A new framework of video analysis and associated techniques are proposed to automatically parse long programs, to extract story structures and identify story units. The proposed analysis and representation contribute to the extraction of scenes and story units, each representing a distinct locale or event, that cannot be achieved by shot boundary detection alone. Analysis is performed on MPEG compressed video and without a prior models. The result is a compact representation that serves as a summary of the story and allows hierarchical organization of video documents.
从长节目中提取故事单元用于视频浏览和导航
数字视频收藏中基于内容的浏览和导航以图像的顺序和线性呈现为中心。为了方便这样的应用,非线性和非顺序访问视频文档是必不可少的,特别是对于长节目。对于许多节目来说,这可以通过识别由视觉内容和组成元素的时间组织反映的潜在故事结构来实现。提出了一种新的视频分析框架和相关技术,用于自动解析长节目、提取故事结构和识别故事单元。所提出的分析和表示有助于提取场景和故事单元,每个单元代表一个不同的场所或事件,这是单独通过镜头边界检测无法实现的。在没有先验模型的情况下,对MPEG压缩视频进行分析。其结果是一个紧凑的表示,作为故事的摘要,并允许视频文档的分层组织。
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