Datasets:
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License:
| license: cc-by-4.0 | |
| # CoherentGS-DL3DV-Blur Dataset | |
| ## Motivation π‘ | |
| To rigorously assess the generalization capability of **CoherentGS** in complex, unconstrained outdoor environments, we establish a new benchmark named **DL3DV-Blur**. This benchmark is derived from five diverse scenes within the DL3DV-10K dataset. | |
| > **Citation Reference:** Ling et al. (2024). DL3DV-10K: A Large-scale Dataset for Deep Learning-based 3D Vision. | |
| > [https://arxiv.org/abs/2312.16256](https://arxiv.org/abs/2312.16256) | |
| ## Dataset Source π | |
| This dataset is constructed from select scenes of the official DL3DV-10K repository. | |
| - **DL3DV-10K GitHub:** https://github.com/DL3DV-10K/Dataset | |
| ## Data Format π | |
| The dataset structure adheres to standard 3D vision dataset formats, where each scene (e.g., `0001`) contains sub-folders for different view configurations (e.g., `3views`, `6views`, `9views`). | |
| ### Structure Overview | |
| The hierarchical structure of the data is as follows: | |
| ```text | |
| dl3dv/ | |
| βββ 0641-0720/ | |
| β βββ 0001/ # Scene ID 0001 | |
| β β βββ .work/ | |
| β β βββ 3views/ # 3-View Sub-set | |
| β β β βββ images/ # Raw input image files | |
| β β β βββ ref_image/ # Reference Image | |
| β β β βββ sparse/ # Sparse reconstruction results (e.g., COLMAP output) | |
| β β β βββ cameras.json # Camera parameter file | |
| β β β βββ ext_metadata.json # Additional metadata | |
| β β β βββ hold=7 # Test set configuration | |
| β β β βββ intrinsics.json # Camera intrinsics | |
| β β β βββ poses_bounds.npy # Camera poses and scene bounds | |
| β β β βββ train_test_split_3.json # Train/Test split definition | |
| β β β βββ transforms.json # Coordinate transformation info | |
| β β βββ 6views/ # 6-View Sub-set | |
| β β βββ 9views/ # 9-View Sub-set | |
| β βββ 0002/ | |
| β βββ 0003/ | |
| β βββ 0004/ | |
| β βββ 0005/ | |
| βββ ... | |