Learning to Autofocus
Charles Herrmann, Richard Strong Bowen, Neal Wadhwa, Rahul Garg, Qiurui He, Jonathan T. Barron, Ramin Zabih
摘要
Autofocus is an important task for digital cameras, yet current approaches often exhibit poor performance. We propose a learning-based approach to this problem, and provide a realistic dataset of sufficient size for effective learning. Our dataset is labeled with per-pixel depths obtained from multi-view stereo, following [9] . Using this dataset, we apply modern deep classification models and an ordinal regression loss to obtain an efficient learningbased autofocus technique. We demonstrate that our approach provides a significant improvement compared with previous learned and non-learned methods: our model reduces the mean absolute error by a factor of 3.6 over the best comparable baseline algorithm. Our dataset and code are publicly available.
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- Defocus Map Estimation and Deblurring from a Single Dual-Pixel ImageShumian Xin, Neal Wadhwa, Tianfan Xue, Jonathan T. Barron 等ICCV 2021 · 被引用 47 次
- Bridging Unsupervised and Supervised Depth from Focus via All-in-Focus SupervisionNing-Hsu Wang, Ren Wang, Yu-Lun Liu, Yu-Hao Huang 等ICCV 2021 · 被引用 44 次
- Autofocus for Event CamerasShijie Lin, Yinqiang Zhang, Lei Yu, Bin Zhou 等CVPR 2022 · 被引用 14 次
- Learning Single Image Defocus Deblurring with Misaligned Training PairsYu Li, Dongwei Ren, Xinya Shu, Wangmeng ZuoAAAI 2023 · 被引用 12 次
- Exploring Positional Characteristics of Dual-Pixel Data for Camera AutofocusMyungsub Choi, Hana Lee, Hyong-Euk LeeICCV 2023 · 被引用 9 次
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