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Human Action Analysis, Annotation and Modeling in Video Streams Based on Implicit User Interaction

机译:基于隐式用户交互的视频流中的人为行为分析,注释和建模

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摘要

This paper proposes an integrated framework for analyzing human actions in video streams. Despite most current approaches that are just based on automatic spatiotemporal analysis of sequences, the proposed method introduces the implicit user-in-the-loop concept for dynamically mining semantics and annotating video streams. This work sets a new and ambitious goal: to recognize, model and properly use "average user's" selections, preferences and perception, for dynamically extracting content semantics. The proposed approach is expected to add significant value to hundreds of billions of non-annotated or inadequately annotated video streams existing in the Web, file servers, databases etc. Furthermore expert annotators can gain important knowledge relevant to user preferences, selections, styles of searching and perception.
机译:本文提出了一个用于分析视频流中人类行为的集成框架。尽管当前大多数方法仅基于序列的时空自动分析,但所提出的方法引入了隐式用户在环概念,用于动态挖掘语义并注释视频流。这项工作设定了一个新的宏伟目标:识别,建模并正确使用“平均用户”的选择,偏好和感知,以动态提取内容语义。预期所提议的方法将为Web,文件服务器,数据库等中存在的数千亿个未注释或注释不充分的视频流增加可观的价值。此外,专家注释者还可以获得与用户偏好,选择,搜索方式有关的重要知识。和知觉。

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