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DeepCap: Monocular Human Performance Capture Using Weak Supervision
[article]
2020
arXiv
pre-print
Human performance capture is a highly important computer vision problem with many applications in movie production and virtual/augmented reality. Many previous performance capture approaches either required expensive multi-view setups or did not recover dense space-time coherent geometry with frame-to-frame correspondences. We propose a novel deep learning approach for monocular dense human performance capture. Our method is trained in a weakly supervised manner based on multi-view supervision
arXiv:2003.08325v1
fatcat:3sb7icxkhvhbteftru3a6kg27y