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Lepard: Learning partial point cloud matching in rigid and deformable scenes
Li Yang ; Harada Tatsuya

Abstract
We present Lepard, a Learning based approach for partial point cloud matchingin rigid and deformable scenes. The key characteristics are the followingtechniques that exploit 3D positional knowledge for point cloud matching: 1) Anarchitecture that disentangles point cloud representation into feature spaceand 3D position space. 2) A position encoding method that explicitly reveals 3Drelative distance information through the dot product of vectors. 3) Arepositioning technique that modifies the crosspoint-cloud relative positions.Ablation studies demonstrate the effectiveness of the above techniques. Inrigid cases, Lepard combined with RANSAC and ICP demonstrates state-of-the-artregistration recall of 93.9% / 71.3% on the 3DMatch / 3DLoMatch. In deformablecases, Lepard achieves +27.1% / +34.8% higher non-rigid feature matching recallthan the prior art on our newly constructed 4DMatch / 4DLoMatch benchmark.
Code Repositories
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| partial-point-cloud-matching-on-4dmatch | D3Feat (1000) | IR: 52.7 NFMR: 51.6 |
| partial-point-cloud-matching-on-4dmatch | Li and Harada (θc=0.05) | IR: 80.9 NFMR: 83.9 |
| partial-point-cloud-matching-on-4dmatch | Predator (3000) | IR: 60.4 NFMR: 56.4 |
| partial-point-cloud-matching-on-4dmatch | D3Feat (3000) | IR: 54.7 NFMR: 55.5 |
| partial-point-cloud-matching-on-4dmatch | Predator (1000) | IR: 60 NFMR: 53.3 |
| partial-point-cloud-matching-on-4dmatch | Predator (5000) | IR: 59.3 NFMR: 56.8 |
| partial-point-cloud-matching-on-4dmatch | D3Feat (5000) | IR: 55.3 NFMR: 56.1 |
| partial-point-cloud-matching-on-4dmatch | Li and Harada (θc=0.1) | IR: 82.7 NFMR: 83.7 |
| partial-point-cloud-matching-on-4dmatch | Li and Harada (θc=0.2) | IR: 85.4 NFMR: 82.2 |
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