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Tracking Objects with Shadows

机译:跟踪带有阴影的对象

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摘要

In this paper, we present a new method for tracking objects with shadows. Traditional motion-based tracking schemes cannot usually distinguish the shadow from the object itself, and this results in a falsely captured object shape. If we want to utilize the object's shape information for a pattern recognition task, this poses a severe difficulty. In this paper we present a color processing scheme to project the image into an illumination invariant space such that the shadow's effect is greatly attenuated. The optical flow in this projected image together with the original image is used as a reference for object tracking so that we can extract the real object shape in the tracking process. We present a modified snake model for general video object tracking. A new external force is introduced into the snake equation based on the predictive contour such that the active contour is attracted to a shape similar to the one in the previous video frame. The proposed method can deal with the problem of an object's ceasing movement temporarily, and can also avoid the problem of the snake tracking into the object interior. Global affine motion estimation is applied to eliminate the effect of camera motion and hence the method can be applied in a general video environment. Experimental results show that the proposed method can track the real object even if there is strong shadow influence.
机译:在本文中,我们提出了一种跟踪阴影物体的新方法。传统的基于运动的跟踪方案通常无法将阴影与对象本身区分开,这会导致错误捕获对象形状。如果我们想将物体的形状信息用于模式识别任务,这将带来很大的困难。在本文中,我们提出了一种颜色处理方案,将图像投影到光照不变的空间中,从而大大降低了阴影的影响。此投影图像中的光流与原始图像一起用作对象跟踪的参考,以便我们可以在跟踪过程中提取真实的对象形状。我们提出了用于一般视频对象跟踪的改进的蛇模型。根据预测轮廓将新的外力引入到蛇方程中,以使活动轮廓被吸引到类似于前一视频帧中的形状。所提出的方法可以暂时解决物体停止运动的问题,也可以避免蛇进入物体内部的问题。全局仿射运动估计被应用以消除相机运动的影响,因此该方法可以被应用在一般的视频环境中。实验结果表明,即使存在强烈的阴影影响,该方法也能跟踪真实物体。

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