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Fast illumination-invariant background subtraction using two views: error analysis, sensor placement and applications

机译:使用两种视图快速进行照明不变的背景减法:误差分析,传感器放置和应用

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Background modeling and subtraction to detect new or moving objects in a scene is an important component of many intelligent video applications. Compared to a single camera, the use of multiple cameras leads to better handling of shadows, specularities and illumination changes due to the utilization of geometric information. Although the result of stereo matching can be used as the feature for detection, it has been shown that the detection process can be made much faster by a simple subtraction of the intensities observed at stereo-generated conjugate pairs in the two views. The methodology however, suffers from false and missed detections due to some geometric considerations. In this paper, we perform a detailed analysis of such errors. Then, we propose a sensor configuration that eliminates false detections. Algorithms are also proposed that effectively eliminate most detection errors due to missed detections, specular reflections and objects being geometrically close to the background. Experiments on several scenes illustrate the utility and enhanced performance of the proposed approach compared to existing techniques.
机译:背景建模和扣除以检测场景中的新对象或运动对象是许多智能视频应用程序的重要组成部分。与单个摄像机相比,使用多个摄像机可更好地处理由于利用几何信息而产生的阴影,镜面反射和照明变化。尽管可以将立体匹配的结果用作检测的功能,但已证明,通过简单地减去在两个视图中由立体声生成的共轭对观察到的强度,可以更快地完成检测过程。然而,由于一些几何上的考虑,该方法遭受错误和遗漏的检测。在本文中,我们对此类错误进行了详细分析。然后,我们提出了一种消除错误检测的传感器配置。还提出了可有效消除大多数检测错误的算法,这些检测错误是由于丢失检测,镜面反射和对象在几何上接近背景而造成的。在几个场景上进行的实验说明了与现有技术相比,该方法的实用性和增强的性能。

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