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A vision-based approach to early detection of drowning incidents in swimming pools

机译:一种基于视觉的方法来及早发现游泳池中的溺水事件

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摘要

We present in this paper a vision-based approach to detection of drowning incidents in swimming pools at the earliest possible stage. The proposed approach consists of two main parts: a vision component which can reliably detect and track swimmers in spite of large scene variations of monitored pool areas, and an event-inference module which parses observation sequences of swimmer features for possible drowning behavioral signs. The vision component employs a model-based approach to represent and differentiate the background pool areas and foreground swimmers. The event-inference module is constructed based on a finite state machine, which integrates several reasoning rules formulated from universal motion characteristics of drowning swimmers. Possible drowning incidents are quickly detected using a sequential change detection algorithm. We have applied the proposed approach to a number of video clips of simulated drowning and obtained promising results as reported in this paper.
机译:我们在本文中提出了一种基于视觉的方法,以尽早发现游泳池中的溺水事件。拟议的方法包括两个主要部分:一个视觉组件,尽管受监视的泳池区域场景变化很大,但仍可以可靠地检测和跟踪游泳者;以及事件推断模块,该模块解析游泳者特征的观察序列以寻找可能的溺水行为迹象。视觉组件采用基于模型的方法来表示和区分背景池区域和前景游泳者。事件推理模块是基于有限状态机构建的,该状态机集成了根据溺水游泳者的通用运动特性制定的几种推理规则。使用顺序更改检测算法可以快速检测可能的溺水事件。我们已将拟议的方法应用于大量模拟溺水的视频剪辑,并获得了本文报道的有希望的结果。

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