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Motion segmentation by multistage affine classification

机译:多阶段仿射分类的运动分割

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We present a multistage affine motion segmentation method that combines the benefits of the dominant motion and block-based affine modeling approaches. In particular, we propose two key modifications to a recent motion segmentation algorithm developed by Wang and Adelson (1994). 1) The adaptive k-means clustering step is replaced by a merging step, whereby the affine parameters of a block which has the smallest representation error, rather than the respective cluster center, is used to represent each layer; and 2) we implement it in multiple stages, where pixels belonging to a single motion model are labeled at each stage. Performance improvement due to the proposed modifications is demonstrated on real video frames.
机译:我们提出了一种多阶段仿射运动分割方法,该方法结合了优势运动和基于块的仿射建模方法的优势。特别是,我们对Wang和Adelson(1994)开发的最新运动分割算法提出了两个关键修改。 1)将自适应k均值聚类步骤替换为合并步骤,从而使用表示误差最小的块的仿射参数而不是各个聚类中心代表每个层; 2)我们在多个阶段实现它,在每个阶段标记属于一个运动模型的像素。在实际的视频帧上演示了由于建议的修改而导致的性能改进。

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