自动化木工

Lihi Zelnik-Manor, P. Perona
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引用次数: 20

摘要

从不同视角拍摄的照片不可能拼接成几何上一致的马赛克,除非场景的结构非常特殊。然而,几何一致性并不是成功的唯一标准:将多个视角合并到同一张图片中可能会产生引人注目和信息丰富的表现。最近非常流行的一种多视点视觉表达形式是joiners(由艺术家David Hockney创造的术语)。Joiners是将照片分层在2D画布上的构图,其中一些照片遮挡了其他照片,并且边界完全可见。目前,拼接是一个繁琐的手工过程,特别是当涉及大量照片时。因此,我们对自动化它们的构造很感兴趣。我们的方法是基于优化一个成本函数,鼓励在点特征上和沿着图像边界测量图像到图像的一致性。优化寻找二维构图的一致性,而不是三维几何场景的一致性,并明确考虑图像之间的遮挡。我们通过一系列关于物体、人物和户外场景的图像的实验来说明我们的想法。
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Automating joiners
Pictures taken from different view points cannot be stitched into a geometrically consistent mosaic, unless the structure of the scene is very special. However, geometrical consistency is not the only criterion for success: incorporating multiple view points into the same picture may produce compelling and informative representations. A multi viewpoint form of visual expression that has recently become highly popular is that of joiners (a term coined by artist David Hockney). Joiners are compositions where photographs are layered on a 2D canvas, with some photographs occluding others and boundaries fully visible. Composing joiners is currently a tedious manual process, especially when a great number of photographs is involved. We are thus interested in automating their construction. Our approach is based on optimizing a cost function encouraging image-to-image consistency which is measured on point-features and along picture boundaries. The optimization looks for consistency in the 2D composition rather than 3D geometrical scene consistency and explicitly considers occlusion between pictures. We illustrate our ideas with a number of experiments on collections of images of objects, people, and outdoor scenes.
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