EventPSR: Surface Normal and Reflectance Estimation from Photometric Stereo Using an Event Camera
Bohan Yu, Jin Han, Boxin Shi, Imari Sato
摘要
Simultaneously acquisition of the surface normal and reflectance parameters is a crucial but challenging technique in the field of computer vision and graphics. It requires capturing multiple high dynamic range (HDR) images in existing methods using frame-based cameras. In this paper, we propose EventPSR, the first work to recover surface normal and reflectance parameters (e.g., metallic and roughness) simultaneously using an event camera. Compared with the existing methods based on photometric stereo or neural radiance fields, EventPSR is a robust and efficient approach that works consistently with different materials. Thanks to the extremely high temporal resolution and high dynamic range coverage of event cameras, EventPSR can recover accurate surface normal and reflectance of objects with various materials in 10 seconds. Extensive experiments on both synthetic data and real objects show that compared with existing methods using more than 100 HDR images, EventPSR recovers comparable surface normal and reflectance parameters with only about 30% of the data rate.
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- NeRD: Neural Reflectance Decomposition from Image CollectionsMark Boss, Raphael Braun, Varun Jampani, Jonathan T. Barron 等ICCV 2021 · 被引用 608 次
- NeILF++: Inter-Reflectable Light Fields for Geometry and Material EstimationJingyang Zhang, Yao Yao, Shiwei Li, Jingbo Liu 等ICCV 2023 · 被引用 92 次
- DiLiGenT102: A Photometric Stereo Benchmark Dataset with Controlled Shape and Material VariationJieji Ren, Feishi Wang, Jiahao Zhang, Qian Zheng 等CVPR 2022 · 被引用 26 次
- Universal Photometric Stereo Network using Global Lighting ContextsSatoshi IkehataCVPR 2022 · 被引用 22 次
- EventPS: Real-Time Photometric Stereo Using an Event CameraBohan Yu, Jieji Ren, Jin Han, Feishi Wang 等CVPR 2024 · 被引用 13 次
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