An Adaptive Video Surveillance Architecture for Behavior Analysis

L. Zini, Nicoletta Noceti, F. Odone
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Abstract

Adaptivity to scene changes is a main requirement for video analysis. The interpretation of video streams can be dealt by triggering different techniques depending on the scene properties. We present a work-on-progress for the design of a video surveillance architecture where different tasks in the context of behavior analysis are addressed, depending on the crowd level. A coarse estimation of the scene occupancy allows us to focus on single person or groups, adopting appropriate strategies to model the dynamic information. This paper focuses in particular on the crowd estimation problem: we propose a solution to detect and localize groups of people, able to provide an estimate of the number of people in the scene.
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一种用于行为分析的自适应视频监控体系结构
对场景变化的适应性是视频分析的主要要求。视频流的解释可以根据场景属性触发不同的技术来处理。我们提出了一个正在进行的视频监控架构的设计,其中根据人群级别解决了行为分析背景下的不同任务。对场景占用率的粗略估计使我们能够专注于单个人或群体,采用适当的策略来建模动态信息。本文特别关注人群估计问题:我们提出了一种解决方案来检测和定位人群,能够提供场景中人数的估计。
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