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2106.13041
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Unsupervised Learning of Depth and Depth-of-Field Effect from Natural Images with Aperture Rendering Generative Adversarial Networks
24 June 2021
Takuhiro Kaneko
GAN
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Papers citing
"Unsupervised Learning of Depth and Depth-of-Field Effect from Natural Images with Aperture Rendering Generative Adversarial Networks"
8 / 8 papers shown
Title
Dr.Bokeh: DiffeRentiable Occlusion-aware Bokeh Rendering
Yichen Sheng
Zixun Yu
Lu Ling
Zhiwen Cao
Cecilia Zhang
Xin Lu
Ke Xian
Haiting Lin
Bedrich Benes
28
9
0
17 Aug 2023
GlowGAN: Unsupervised Learning of HDR Images from LDR Images in the Wild
Chao Wang
Ana Serrano
Xingang Pan
Bin Chen
Hans-Peter Seidel
Christian Theobalt
K. Myszkowski
Thomas Leimkuehler
GAN
21
15
0
22 Nov 2022
AR-NeRF: Unsupervised Learning of Depth and Defocus Effects from Natural Images with Aperture Rendering Neural Radiance Fields
Takuhiro Kaneko
20
14
0
13 Jun 2022
Shape and Viewpoint without Keypoints
Shubham Goel
Angjoo Kanazawa
Jitendra Malik
3DV
89
108
0
21 Jul 2020
A Style-Based Generator Architecture for Generative Adversarial Networks
Tero Karras
S. Laine
Timo Aila
262
10,320
0
12 Dec 2018
Synthetic Depth-of-Field with a Single-Camera Mobile Phone
Neal Wadhwa
Rahul Garg
David E. Jacobs
Bryan E. Feldman
Nori Kanazawa
Robert E. Carroll
Yair Movshovitz-Attias
Jonathan T. Barron
Yael Pritch
M. Levoy
3DH
MDE
177
176
0
11 Jun 2018
Deep Ordinal Regression Network for Monocular Depth Estimation
Huan Fu
Mingming Gong
Chaohui Wang
Kayhan Batmanghelich
Dacheng Tao
MDE
180
1,705
0
06 Jun 2018
Learning a Probabilistic Latent Space of Object Shapes via 3D Generative-Adversarial Modeling
Jiajun Wu
Chengkai Zhang
Tianfan Xue
Bill Freeman
J. Tenenbaum
GAN
164
1,939
0
24 Oct 2016
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