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C. Schroers, F. Perazzi, and C. Hazirbas, “Image Processing Using A
Convolutional Neural Network,” September 2019.
US Patent App. 15/919,715.
[ bib |
doi ]
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C. Hazirbas, , S. Soyer, M. Staab, L. Leal-Taixé, and D. Cremers,
“Deep Depth From Focus,” in ACCV, December 2018.
[ bib |
arXiv |
source ]
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N. Mayer, E. Ilg, P. Fischer, C. Hazirbas, D. Cremers, A. Dosovitskiy, and
T. Brox, “What Makes Good Synthetic Training Data for Learning
Disparity and Optical Flow Estimation?,” in ArXiv, January 2018.
[ bib |
arXiv ]
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F. Walch, C. Hazirbas, L. Leal-Taixé, T. Sattler, S. Hilsenbeck, and
D. Cremers, “Image-based localization using LSTMs for structured
feature correlation,” in ICCV, October 2017.
[ bib |
arXiv |
source ]
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T. Meinhardt, M. Möller, C. Hazirbas, and D. Cremers, “Learning
Proximal Operators: Using Denoising Networks for Regularizing Inverse Imaging
Problems,” in ICCV, October 2017.
[ bib |
arXiv |
source ]
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C. Hazirbas, L. Ma, C. Domokos, and D. Cremers, “FuseNet:
Incorporating Depth into Semantic Segmentation via Fusion-based CNN
Architecture,” in ACCV, November 2016.
[ bib |
doi |
source ]
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A. Dosovitskiy, P. Fischer, E. Ilg, P. Haeusser, C. Hazirbas, V. Golkov,
P. van der Smagt, D. Cremers, and T. Brox, “FlowNet: Learning
Optical Flow with Convolutional Networks,” in ICCV, December 2015.
[ bib |
arXiv |
doi ]
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F. Stark, C. Hazirbas, R. Triebel, and D. Cremers, “CAPTCHA
Recognition with Active Deep Learning,” in GCPR Workshop on New
Challenges in Neural Computation, October 2015.
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source ]
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J. Diebold, N. Demmel, C. Hazirbas, M. Möller, and D. Cremers,
“Interactive Multi-label Segmentation of RGB-D Images,” in
SSVM, June 2015.
[ bib |
doi |
source ]
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C. Hazirbas, J. Diebold, and D. Cremers, “Optimizing the
Relevance-Redundancy Tradeoff for Efficient Semantic Segmentation,” in
SSVM, June 2015.
Oral Presentation.
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doi |
source ]
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1
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C. Hazirbas, “Feature Selection and Learning for Semantic
Segmentation,” Master's thesis, Technical University Munich, Germany, June
2014.
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