Leveraging Multi-View Image Sets for Unsupervised Intrinsic Image Decomposition and Highlight Separation
Renjiao Yi, Ping Tan, Stephen Lin
Abstract
We present an unsupervised approach for factorizing object appearance into highlight, shading, and albedo layers, trained by multi-view real images. To do so, we construct a multi-view dataset by collecting numerous customer product photos online, which exhibit large illumination variations that make them suitable for training of reflectance separation and can facilitate object-level decomposition. The main contribution of our approach is a proposed image representation based on local color distributions that allows training to be insensitive to the local misalignments of multi-view images. In addition, we present a new guidance cue for unsupervised training that exploits synergy between highlight separation and intrinsic image decomposition. Over a broad range of objects, our technique is shown to yield state-of-the-art results for both of these tasks.
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Install the CLIlune papers fulltext 7c62e990-c1cc-400b-975b-e619b8cd3b95Cited by top-tier papers8
- IntrinsicNeRF: Learning Intrinsic Neural Radiance Fields for Editable Novel View SynthesisWeicai Ye, Shuo Chen, Chong Bao, Hujun Bao et al.ICCV 2023 · 60 citations
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- Towards High-Quality Specular Highlight Removal by Leveraging Large-Scale Synthetic DataGang Fu, Qing Zhang, Lei Zhu, Chunxia Xiao et al.ICCV 2023 · 18 citations
- PHR-DIFF: Portrait Highlights Removal via Patch-aware Diffusion ModelHongsheng Zheng, Zhongyun Bao, Gang Fu, Xuze Jiao et al.AAAI 2025 · 4 citations
- One-Step Specular Highlight Removal with Adapted Diffusion ModelsMahir Atmis, Levent Karacan, Mehmet SarigülICCV 2025 · 1 citation
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