RTS3D: Real-time Stereo 3D Detection from 4D Feature-Consistency Embedding Space for Autonomous Driving
Peixuan Li, Shun Su, Huaici Zhao
Abstract
Although the recent image-based 3D object detection methods using Pseudo-LiDAR representation have shown great capabilities, a notable gap in efficiency and accuracy still exist compared with LiDAR-based methods. Besides, overreliance on the stand-alone depth estimator, requiring a large number of pixel-wise annotations in the training stage and more computation in the inferencing stage, limits the scaling application in the real world. In this paper, we propose an efficient and accurate 3D object detection method from stereo images, named RTS3D. Different from the 3D occupancy space in the Pseudo-LiDAR similar methods, we design a novel 4D feature-consistent embedding (FCE) space as the intermediate representation of the 3D scene without depth supervision. The FCE space encodes the object's structural and semantic information by exploring the multiscale feature consistency warped from stereo pair. Furthermore, a semantic-guided RBF (Radial Basis Function) and a structure-aware attention module are devised to reduce the influence of FCE space noise without instance mask supervision. Experiments on the KITTI benchmark show that RTS3D is the first true real-time system (FPS>24) for stereo image 3D detection meanwhile achieves 10% improvement in average precision comparing with the previous state-of-theart method. The code will be available at https://github.com/ Banconxuan/RTS3D
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Cited by top-tier papers3
- MonoCD: Monocular 3D Object Detection with Complementary DepthsLongfei Yan, Pei Yan, Shengzhou Xiong, Xuanyu Xiang et al.CVPR 2024 · 52 citations
- Stereo Neural Vernier CaliperShichao Li, Zechun Liu, Zhiqiang Shen, Kwang-Ting ChengAAAI 2022 · 6 citations
- MonoDGP: Monocular 3D Object Detection with Decoupled-Query and Geometry-Error PriorsFanqi Pu, Yifan Wang, Jiru Deng, Wenming YangCVPR 2025
Builds on7
- Disentangling Monocular 3D Object DetectionAndrea Simonelli, Samuel Rota Bulò, Lorenzo Porzi, Manuel Lopez-Antequera et al.ICCV 2019 · 504 citations
- Pseudo-LiDAR++: Accurate Depth for 3D Object Detection in Autonomous DrivingYurong You, Yan Wang, Wei-Lun Chao, Divyansh Garg et al.ICLR 2020 · 439 citations
- Accurate Monocular 3D Object Detection via Color-Embedded 3D Reconstruction for Autonomous DrivingXinzhu Ma, Zhihui Wang, Haojie Li, Pengbo Zhang et al.ICCV 2019 · 339 citations
- ZoomNet: Part-Aware Adaptive Zooming Neural Network for 3D Object DetectionZhenbo Xu, Wei Zhang, Xiaoqing Ye, Xiao Tan et al.AAAI 2020 · 77 citations
- PV-RCNN: Point-Voxel Feature Set Abstraction for 3D Object DetectionShaoshuai Shi, Chaoxu Guo, Li Jiang, Zhe Wang et al.CVPR 2020
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