Computation of Rotation Local Invariant Features using the Integral Image for Real Time Object Detection

M. Villamizar, A. Sanfeliu, J. Andrade-Cetto
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引用次数: 22

Abstract

We present a framework for object detection that is invariant to object translation, scale, rotation, and to some degree, occlusion, achieving high detection rates, at 14 fps in color images and at 30 fps in gray scale images. Our approach is based on boosting over a set of simple local features. In contrast to previous approaches, and to efficiently cope with orientation changes, we propose the use of non-Gaussian steerable filters, together with a new orientation integral image for a speedy computation of local orientation
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基于积分图像的旋转局部不变量特征计算用于实时目标检测
我们提出了一个对象检测框架,该框架对对象平移、缩放、旋转以及一定程度上的遮挡不影响,实现了高检测率,在彩色图像中为14 fps,在灰度图像中为30 fps。我们的方法是基于一组简单的局部特征的增强。与以前的方法相比,为了有效地处理方向变化,我们提出使用非高斯可转向滤波器,并结合新的方向积分图像来快速计算局部方向
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