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A Knowledge-Driven Approach to Interactive Event Recognition for Semantic Video Understanding

机译:一种知识驱动的互动事件识别方法,用于语义视频理解

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Since early 1990, event recognition has been one of the most attractive research topics for video understanding, in company with object recognition. Most studies on video event recognition, which are based on data-driven approaches, should train a model for a newly-added event without using human knowledge and existing models for similar events. Because it is impossible to define all events required for video understanding in advance, this paper proposed a hierarchical recognition method for general events based on dynamic spatial relations between two objects and specialized events determined by the related objects. The general events are useful for describing interactions between objects of interest regardless of video domain. The specialized events can be provided to users as familiar terms in video interpretation or visual question answering for user-friendly interaction. For two general events and their specialized four events, the proposed recognition method performed the F-score of 82.31% and 88.61% based on object-based and region-based event matching, respectively.
机译:自1990年初以来,活动认可是通过对象识别公司的视频理解最具吸引力的研究主题之一。大多数关于基于数据驱动方法的视频事件识别的研究都应在不使用人类知识和现有模型的类似事件的情况下训练新添加的事件的模型。因为预先定义视频理解所需的所有事件,所以本文提出了一种基于两个对象之间的动态空间关系的一般事件的分层识别方法和由相关对象确定的专用事件。一般事件对于描述利益对象之间的交互是有用的,而不管视频域如何。可以将专门的事件作为用户友好交互的视频解释或视觉问题的熟悉条款提供给用户。对于两个一般事件及其专业的四个事件,基于基于对象和区域的事件匹配,所提出的识别方法的F分数为82.31%和88.61%。

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