首页> 外文会议>International Symposium on Advances in Visual Computing(ISVC 2006) pt.1; 20061106-08; Lake Tahoe,NV(US) >Auto-focusing in Extreme Zoom Surveillance: A System Approach with Application to Faces
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Auto-focusing in Extreme Zoom Surveillance: A System Approach with Application to Faces

机译:极端变焦监视中的自动聚焦:一种应用于面部的系统方法

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摘要

Auto-focusing is an indispensable function for imaging systems used in surveillance and object tracking. In this paper, we conduct a study of an image-based passive auto-focusing control for high magnification ( > 50x) systems using off-the-shelf telescopes and digital camcorders with applications to long range near-ground surveillance and face tracking. Considering both speed of convergence and robustness to image degradations induced by high system magnifications and long observation distances, we introduce an auto-focusing mechanism suitable for such applications, including hardware design and algorithm development. We focus on the derivation of the transition criteria following maximum likelihood (ML) estimation for the selection of adaptive step sizes and the use of sharpness measures for the proper evaluation of high magnification images. The efficiency of the proposed system is demonstrated in real-time auto-focusing and tracking of faces from distances of 50m~300m.
机译:自动对焦是监视和目标跟踪中使用的成像系统必不可少的功能。在本文中,我们使用现成的望远镜和数码摄录机对基于图像的被动式自动聚焦控制进行了研究,该控制用于高倍率(> 50x)系统,并应用于远程近地监视和面部跟踪。考虑到较高的系统放大倍率和较长的观察距离导致的图像退化的收敛速度和鲁棒性,我们介绍一种适用于此类应用的自动聚焦机制,包括硬件设计和算法开发。我们专注于最大似然(ML)估计之后的过渡准则的推导,以选择自适应步长,并使用锐度度量对高放大倍率图像进行适当评估。通过实时自动聚焦和跟踪50m〜300m距离人脸,证明了该系统的有效性。

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