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Robust Moving Object Extraction and Tracking Method Based on Matching Position Constraints

机译:基于匹配位置约束的鲁棒运动目标提取与跟踪方法

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Object extraction and tracking in a video image is basic technology for many applications, such as video surveillance and robot vision. Many moving object extraction and tracking methods have been proposed. However, they fail when the scenes include illumination change or light reflection. For tracking the moving object robustly, we should consider not only the RGB values of input images but also the shape information of the objects. If the objects' shapes do not change suddenly, matching positions on the cost matrix of exclusive block matching are located nearly on a line. We propose a method for obtaining the correspondence of feature points by imposing a matching position constraint induced by the shape constancy. We demonstrate experimentally that the proposed method achieves robust tracking in various environments.
机译:视频图像中的对象提取和跟踪是许多应用程序的基本技术,例如视频监视和机器人视觉。已经提出了许多运动物体提取和跟踪方法。但是,当场景包括照明变化或光反射时,它们将失败。为了可靠地跟踪运动对象,我们不仅应考虑输入图像的RGB值,还应考虑对象的形状信息。如果对象的形状没有突然改变,则排他块匹配成本矩阵上的匹配位置几乎位于一条线上。我们提出一种通过施加形状恒定引起的匹配位置约束来获取特征点对应关系的方法。我们通过实验证明了该方法可以在各种环境下实现鲁棒的跟踪。

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