Add task category, paper and code links
Browse filesThis PR adds the appropriate `task_categories` metadata, a link to the paper, and a link to the Github repository.
README.md
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---
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license: apache-2.0
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---
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license: apache-2.0
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task_categories:
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- image-to-3d
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tags:
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- slam
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- 3d-reconstruction
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- monocular
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---
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This repository contains data for WildGS-SLAM: Monocular Gaussian Splatting SLAM in Dynamic Environments.
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[Paper](https://huggingface.co/papers/2504.03886) | [Project Page](https://wildgs-slam.github.io/) | [Code](https://github.com/GradientSpaces/WildGS-SLAM)
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WildGS-SLAM accurately tracks the camera trajectory and reconstructs a 3D Gaussian map for static elements from a monocular video sequence, effectively removing dynamic components.
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### Datasets Used
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WildGS-SLAM uses data from the following datasets:
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* **Wild-SLAM Mocap Dataset:** ([Hugging Face](https://huggingface.co/datasets/gradient-spaces/Wild-SLAM/tree/main/Mocap)) Download instructions are available in the [github repository](https://github.com/GradientSpaces/WildGS-SLAM).
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* **Wild-SLAM iPhone Dataset:** ([Hugging Face](https://huggingface.co/datasets/gradient-spaces/Wild-SLAM/tree/main/iPhone)) Download instructions are available in the [github repository](https://github.com/GradientSpaces/WildGS-SLAM).
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* **Bonn Dynamic Dataset:** ([Website](https://www.ipb.uni-bonn.de/data/rgbd-dynamic-dataset/index.html)) Download instructions are available in the [github repository](https://github.com/GradientSpaces/WildGS-SLAM).
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* **TUM RGB-D (dynamic) Dataset:** Download instructions are available in the [github repository](https://github.com/GradientSpaces/WildGS-SLAM).
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