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Video-understanding framework for automatic behavior recognition

机译:视频了解自动行为识别框架

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摘要

We propose an activity-monitoring framework based on a platform called VSIP, enabling behavior recognition in different environments. To allow end-users to actively participate in the development of a new application, VSIP separates algorithms from a priori knowledge. To describe how VSIP works, we present a full description of a system developed with this platform for recognizing behaviors, involving either isolated individuals, groups of people, or crowds, in the context of visual monitoring of metro scenes, using multiple cameras. In this work, we also illustrate the capability of the framework to easily combine and tune various recognition methods dedicated to the visual analysis of specific situations (e.g., mono-/multiactors' activities, numerical/symbolic actions, or temporal scenarios). We also present other applications, using this framework, in the context of behavior recognition. VSIP has shown a good performance on human behavior recognition for different problems and configurations, being suitable to fulfill a large variety of requirements.
机译:我们提出了一个基于称为VSIP的平台的活动监视框架,该框架可在不同环境中实现行为识别。为了使最终用户能够积极参与新应用程序的开发,VSIP将算法与先验知识分开。为了描述VSIP的工作原理,我们提供了使用此平台开发的系统的完整描述,该系统用于识别行为,包括使用多台摄像机对都市场景进行视觉监视的情况下的孤立个人,人群或人群。在这项工作中,我们还说明了该框架轻松组合和调整各种识别方法的能力,这些方法专门用于特定情况的视觉分析(例如,单/多角色的活动,数字/符号动作或时间情景)。我们还将在行为识别的背景下使用此框架介绍其他应用程序。 VSIP在针对不同问题和配置的人类行为识别方面显示出良好的性能,适合满足各种要求。

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