Edge-based image segmentation using curvature sign maps from reflectance and range images

A new approach to image segmentation by edge detection is proposed for preserving objects topology and shape while retrieving precisely located, one-pixel-wide edges. The method is based on mean (H) and Gaussian (K) surface curvatures sign maps (HK-sign maps) computed from both registered reflectance and range images, provided by a single sensor. HK-sign maps have been used to identify objects regions on range and intensity images, but not edges, as presented in this work. The combination of the computed range and reflectance edge maps has led to more accurate segmentation results than just by using either of them alone. The proposed algorithm has been tested on real images and compared to four traditional range image segmentation algorithms. Experimental results demonstrate the viability and usefulness of our approach.

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