MonoPair: Monocular 3D Object Detection Using Pairwise Spatial Relationships
Yongjian Chen, Lei Tai, Kai Sun, Mingyang Li
摘要
Monocular 3D object detection is an essential component in autonomous driving while challenging to solve, especially for those occluded samples which are only partially visible. Most detectors consider each 3D object as an independent training target, inevitably resulting in a lack of useful information for occluded samples. To this end, we propose a novel method to improve the monocular 3D object detection by considering the relationship of paired samples. This allows us to encode spatial constraints for partially-occluded objects from their adjacent neighbors. Specifically, the proposed detector computes uncertaintyaware predictions for object locations and 3D distances for the adjacent object pairs, which are subsequently jointly optimized by nonlinear least squares. Finally, the onestage uncertainty-aware prediction structure and the postoptimization module are dedicatedly integrated for ensuring the run-time efficiency. Experiments demonstrate that our method yields the best performance on KITTI 3D detection benchmark, by outperforming state-of-the-art competitors by wide margins, especially for the hard samples.
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引用它的顶会 Paper62
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它引用的顶会 Paper6
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- Accurate Monocular 3D Object Detection via Color-Embedded 3D Reconstruction for Autonomous DrivingXinzhu Ma, Zhihui Wang, Haojie Li, Pengbo Zhang 等ICCV 2019 · 被引用 339 次
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