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Detection of stationary foreground objects: A survey

机译:静止前景物体的检测:一项调查

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Detection of stationary foreground objects (i.e., moving objects that remain static throughout several frames) has attracted the attention of many researchers over the last decades and, consequently, many new ideas have been recently proposed, trying to achieve high-quality detections in complex scenarios with the lowest misdetections, while keeping real-time constraints. Most of these strategies are focused on detecting abandoned objects. However, there are some approaches that also allow detecting partially-static foreground objects (e.g. people remaining temporarily static) or stolen objects (i.e., objects removed from the background of the scene). This paper provides a complete survey of the most relevant approaches for detecting all kind of stationary foreground objects. The aim of this survey is not to compare the existing methods, but to provide the information needed to get an idea of the state of the art in this field: kinds of stationary foreground objects, main challenges in the field, main datasets for testing the detection of stationary foreground, main stages in the existing approaches and algorithms typically used in such stages.
机译:在过去的几十年中,静止的前景物体(即,在几帧中保持静止的运动物体)的检测吸引了许多研究人员的注意力,因此,最近提出了许多新的想法,试图在复杂的场景中实现高质量的检测误检率最低,同时保持实时约束。这些策略大多数都集中在检测废弃的物体上。但是,有些方法还允许检测部分静态的前景对象(例如,暂时保持静止的人)或被盗的对象(即,从场景背景中移除的对象)。本文对检测所有类型的静止前景物体的最相关方法进行了全面的概述。这项调查的目的不是比较现有的方法,而是提供了解该领域最新技术所需的信息:固定前景对象的种类,该领域的主要挑战,用于测试目标的主要数据集静态前景的检测,现有方法中的主要阶段以及此类阶段通常使用的算法。

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