Novel-View Synthesis of Human Tourist Photos

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초록

We present a novel framework for performing novel-view synthesis on human tourist photos. Given a tourist photo from a known scene, we reconstruct the photo in 3D space through modeling the human and the background independently. We generate a deep buffer from a novel viewpoint of the reconstruction and utilize a deep network to translate the buffer into a photo-realistic rendering of the novel view. We additionally present a method to relight the renderings, allowing for relighting of both human and background to match either the provided input image or any other. The key contributions of our paper are: 1) a framework for performing novel view synthesis on human tourist photos, 2) an appearance transfer method for relighting of humans to match synthesized backgrounds, and 3) a method for estimating lighting properties from a single human photo. We demonstrate the proposed framework on photos from two different scenes of various tourists. © 2022 IEEE.

키워드

Computational Photography; Image and Video Synthesis Vision for Graphics
제목
Novel-View Synthesis of Human Tourist Photos
저자
Freer, J.; Yi, K.M.; Jiang, W.; Choi, Jongwon; Chang, H.J.
DOI
10.1109/WACV51458.2022.00093
발행일
2022-01
유형
Proceedings Paper
저널명
Proceedings - 2022 IEEE/CVF Winter Conference on Applications of Computer Vision, WACV 2022
페이지
857 ~ 864