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N$^{3}$-Mapping: Normal Guided Neural Non-Projective Signed Distance Fields for Large-scale 3D Mapping

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Accurate and dense mapping in large-scale environments is essential for various robot applications. Recently, implicit neural signed distance fields (SDFs) have shown promising advances in this task. However, most existing approaches employ projective distances from range data as SDF supervision, introducing approximation errors and thus degrading the mapping quality. To address this problem, we introduce N$^{3}$-Mapping, an implicit neural mapping system featuring normal-guided neural non-projective signed distance fields. Specifically, we directly sample points along the surface normal, instead of the ray, to obtain more accurate non-projective distance values from range data. Then these distance values are used as supervision to train the implicit map. For large-scale mapping, we apply a voxel-oriented sliding window mechanism to alleviate the forgetting issue with a bounded memory footprint. Besides, considering the uneven distribution of measured point clouds, a hierarchical sampling strategy is designed to improve training efficiency. Experiments demonstrate that our method effectively mitigates SDF approximation errors and achieves state-of-the-art mapping quality compared to existing approaches.

Shuangfu Song, Junqiao Zhao, Kai Huang, Jiaye Lin, Chen Ye, Tiantian Feng• 2024

Related benchmarks

TaskDatasetResultRank
3D ReconstructionOxford Spires (Blenheim Palace 05)
Accuracy15.25
6
3D ReconstructionOxford Spires (Christ Church 02)
Accuracy14.2
6
3D ReconstructionOxford Spires (Keble College 04)
Accuracy15.62
6
3D ReconstructionOxford Spires (Observatory Quarter 01)
Accuracy13.86
6
Surface ReconstructionNewer College 23
Accuracy8.49
6
Surface ReconstructionMaiCity
Accuracy5.63
6
Incremental LiDAR MappingMaiCity
Time (s)1.35
4
Incremental LiDAR MappingNewer College
Processing Time5.77
4
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