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Adaptive Background Estimation: Computing a Pixel-Wise Learning Rate from Local Confidence and Global Correlation Values

机译:自适应背景估计:根据局部置信度和全局相关值计算像素明智的学习率

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摘要

Adaptive background techniques are useful for a wide spectrum of applications, ranging from security surveillance, traffic monitoring to medical and space imaging. With a properly estimated background, moving or new objects can be easily detected and tracked. Existing techniques are not suitable for real-world implementation, either because they are slow or because they do not perform well in the presence of frequent outliers or camera motion. We address the issue by computing a learning rate for each pixel, a function of a local confidence value that estimates whether a pixel is (or not) an outlier, and a global correlation value that detects camera motion. After discussing the role of each parameter, we report experimental results, showing that our technique is fast but efficient, even in a real-world situation. Furthermore, we show that the same method applies equally well to a 3-camera stereoscopic system for depth perception.
机译:自适应背景技术可用于从安全监控,交通监控到医学和空间成像等广泛的应用。通过适当估算的背景,可以轻松检测和跟踪运动或新物体。现有技术不适合在现实世界中实施,这是因为它们很慢,或者因为它们在出现异常值或摄像机运动频繁的情况下表现不佳。我们通过计算每个像素的学习率,估计像素是否为异常值的局部置信度值以及检测相机运动的全局相关值的函数来解决该问题。在讨论了每个参数的作用之后,我们报告了实验结果,表明即使在现实情况下,我们的技术也快速但有效。此外,我们表明相同的方法同样适用于深度感知的3相机立体系统。

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