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Depth-Aware Motion Magnification

机译:深度感知运动放大率

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This paper adds depth to motion magnification. With the rise of cheap RGB+D cameras depth information is readily available. We make use of depth to make motion magnification robust to occlusion and large motions. Current approaches require a manual drawn pixel mask over all frames in the area of interest which is cumbersome and error-prone. By including depth, we avoid manual annotation and magnify motions at similar depth levels while ignoring occlusions at distant depth pixels. To achieve this, we propose an extension to the bilateral filter for non-Gaussian filters which allows us to treat pixels at very different depth layers as missing values. As our experiments will show, these missing values should be ignored, and not inferred with inpainting. We show results for a medical application (tremors) where we improve current baselines for motion magnification and motion measurements.
机译:本文增加了运动倍率的深度。随着廉价的RGB + D摄像机深度信息的兴起很容易获得。我们利用深度使运动放大倍为闭塞和大型运动。目前的方法需要在感兴趣区域中的所有帧中进行手动绘制像素掩模,这是繁琐的和容易出错的。通过包括深度,我们避免了手动注释并在类似深度水平下放大动作,同时忽略远处深度像素的闭塞。为此,我们向非高斯滤波器提出了向双边滤波器的扩展,这允许我们在非常不同的深度层处理像素作为缺失值。随着我们的实验将显示,应忽略这些缺失的值,而不是通过染色来推断出来。我们为医疗应用程序(震颤)展示了结果,在那里我们改善了运动倍率和运动测量的电流基线。

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