UnsupervisedR&R: Unsupervised Point Cloud Registration via Differentiable Rendering
Mohamed El Banani, Luya Gao, Justin Johnson
摘要
Aligning partial views of a scene into a single whole is essential to understanding one's environment and is a key component of numerous robotics tasks such as SLAM and SfM. Recent approaches have proposed end-to-end systems that can outperform traditional methods by leveraging pose supervision. However, with the rising prevalence of cameras with depth sensors, we can expect a new stream of raw RGB-D data without the annotations needed for supervision. We propose UnsupervisedR&R: an end-to-end unsupervised approach to learning point cloud registration from raw RGB-D video. The key idea is to leverage differentiable alignment and rendering to enforce photometric and geometric consistency between frames. We evaluate our approach on indoor scene datasets and find that we outperform existing traditional approaches with classical and learned descriptors while being competitive with supervised geometric point cloud registration approaches.
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引用它的顶会 Paper20
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- SiLK: Simple Learned KeypointsPierre Gleize, Weiyao Wang, Matt FeiszliICCV 2023 · 被引用 87 次
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它引用的顶会 Paper18
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- Scaling and Benchmarking Self-Supervised Visual Representation LearningPriya Goyal, Dhruv Mahajan, Abhinav Gupta, Ishan MisraICCV 2019 · 被引用 429 次
- DeepV2D: Video to Depth with Differentiable Structure from MotionZachary Teed, Jia DengICLR 2020 · 被引用 314 次
- DeepVCP: An End-to-End Deep Neural Network for Point Cloud RegistrationWeixin Lu, Guowei Wan, Yao Zhou, Xiangyu Fu 等ICCV 2019 · 被引用 313 次
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