SuperPlane: 3D Plane Detection and Description from a Single Image
Weicai Ye, Hai Li, Tianxiang Zhang, Xiaowei Zhou, Hujun Bao, Guofeng Zhang
摘要
We present a novel end-to-end plane detection and description network named SuperPlane to detect and match planes in two RGB images. SuperPlane takes a single image as input and extracts 3D planes and generates corresponding descriptors simultaneously. A mask-attention module and an instance-triplet loss are proposed to improve the distinctiveness of the plane descriptor. For image matching, we also propose an area-aware Kullback-Leibler (KL) divergence retrieval method. Extensive experiments show that the proposed method outperforms state-of-the-art methods and retains good generalization capacity. The applications in image-based localization and augmented reality also demonstrate the effectiveness of SuperPlane.
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