DNOI-4DRO: Deep 4D Radar Odometry with Differentiable Neural-Optimization Iterations
Shouyi Lu, Huanyu Zhou, Guirong Zhuo, Xiao Tang
摘要
A novel learning-optimization-combined 4D radar odometry model, named DNOI-4DRO, is proposed in this paper. The proposed model seamlessly integrates traditional geometric optimization with end-to-end neural network training, leveraging an innovative differentiable neural-optimization iteration operator. In this framework, point-wise motion flow is first estimated using a neural network, followed by the construction of a cost function based on the relationship between point motion and pose in 3D space. The radar pose is then refined using Gauss-Newton updates. Additionally, we design a dual-stream 4D radar backbone that integrates multi-scale geometric features and clustering-based class-aware features to enhance the representation of sparse 4D radar point clouds. Extensive experiments on the VoD and Snail-Radar datasets demonstrate the superior performance of our model, which outperforms recent classical and learning-based approaches. Notably, our method even achieves results comparable to A-LOAM with mapping optimization using LiDAR point clouds as input. Our models and code will be publicly released.
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它引用的顶会 Paper14
- Deep Patch Visual OdometryZachary Teed, Lahav Lipson, Jia DengNeurIPS 2023 · 被引用 323 次
- Image as Set of PointsXu Ma, Yuqian Zhou, Huan Wang, Can Qin 等ICLR 2023 · 被引用 221 次
- NeRF-LOAM: Neural Implicit Representation for Large-Scale Incremental LiDAR Odometry and MappingJunyuan Deng, Qi Wu, Xieyuanli Chen, Songpengcheng Xia 等ICCV 2023 · 被引用 107 次
- RadarOcc: Robust 3D Occupancy Prediction with 4D Imaging RadarFangqiang Ding, Xiangyu Wen, Yunzhou Zhu, Yiming Li 等NeurIPS 2024 · 被引用 66 次
- TransLO: A Window-Based Masked Point Transformer Framework for Large-Scale LiDAR OdometryJiuming Liu, Guangming Wang, Chaokang Jiang, Zhe Liu 等AAAI 2023 · 被引用 56 次
相关 Paper
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- DiffLO: Semantic-Aware LiDAR Odometry with Diffusion-Based RefinementYongshu Huang, Chen Liu, Minghang Zhu, Sheng Ao 等CVPR 2025
- LiDAR4D: Dynamic Neural Fields for Novel Space-Time View LiDAR SynthesisZehan Zheng, Fan Lu, Weiyi Xue, Guang Chen 等CVPR 2024 · 被引用 14 次
