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Contour Completion Without Region Segmentation

机译:没有区域分割的轮廓完成

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摘要

Contour completion plays an important role in visual perception, where the goal is to group fragmented low-level edge elements into perceptually coherent and salient contours. Most existing methods for contour completion have focused on pixelwise detection accuracy. In contrast, fewer methods have addressed the global contour closure effect, despite psychological evidences for its importance. This paper proposes a purely contour-based higher order CRF model to achieve contour closure, through local connectedness approximation. This leads to a simplified problem structure, where our higher order inference problem can be transformed into an integer linear program and be solved efficiently. Compared with the methods based on the same bottom-up edge detector, our method achieves a superior contour grouping ability (measured by Rand index), a comparable precision-recall performance, and more visually pleasing results. Our results suggest that contour closure can be effectively achieved in contour domain, in contrast to a popular view that segmentation is essential for this purpose.
机译:轮廓完成在视觉感知中起着重要作用,其目标是将零散的低级边缘元素分组为感知上连贯且突出的轮廓。轮廓完成的大多数现有方法集中于像素方向的检测精度。相比之下,尽管有心理学证据表明其具有重要意义,但解决全局轮廓闭合效果的方法较少。本文提出了一种基于局部轮廓的高阶CRF模型,通过局部连通性近似来实现轮廓闭合。这导致了简化的问题结构,其中我们的高阶推理问题可以转换为整数线性程序,并且可以有效解决。与基于相同的自底向上边缘检测器的方法相比,我们的方法具有出色的轮廓分组能力(通过兰德指数测量),可比的精确调用性能以及更直观的结果。我们的结果表明,轮廓分割可以在轮廓域中有效地实现,这与普遍认为分割对于此目的至关重要有关。

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