Следене
Jack Valmadre
Jack Valmadre
Senior Research Fellow, AIML, University of Adelaide
Потвърден имейл адрес: adelaide.edu.au - Начална страница
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Позовавания
Позовавания
Година
Fully-convolutional siamese networks for object tracking
L Bertinetto, J Valmadre, JF Henriques, A Vedaldi, PHS Torr
Computer Vision – ECCV 2016 Workshops, 850-865, 2016
35342016
Staple: Complementary learners for real-time tracking
L Bertinetto, J Valmadre, S Golodetz, O Miksik, PHS Torr
IEEE Conference on Computer Vision and Pattern Recognition (CVPR), 1401-1409, 2016
17962016
End-to-end representation learning for correlation filter based tracking
J Valmadre, L Bertinetto, J Henriques, A Vedaldi, PHS Torr
IEEE Conference on Computer Vision and Pattern Recognition (CVPR), 2805-2813, 2017
15172017
Learning feed-forward one-shot learners
L Bertinetto, JF Henriques, J Valmadre, PHS Torr, A Vedaldi
Advances in Neural Information Processing Systems (NeurIPS), 523-531, 2016
4522016
Long-term tracking in the wild: A benchmark
J Valmadre, L Bertinetto, JF Henriques, R Tao, A Vedaldi, ...
European Conference on Computer Vision (ECCV), 670-685, 2018
1492018
Dense semantic correspondence where every pixel is a classifier
H Bristow, J Valmadre, S Lucey
IEEE International Conference on Computer Vision (ICCV), 4024-4031, 2015
632015
General trajectory prior for non-rigid reconstruction
J Valmadre, S Lucey
IEEE Conference on Computer Vision and Pattern Recognition (CVPR), 1394-1401, 2012
602012
Deterministic 3D human pose estimation using rigid structure
J Valmadre, S Lucey
European Conference on Computer Vision (ECCV), 467-480, 2010
562010
Separable spatiotemporal priors for convex reconstruction of time-varying 3D point clouds
T Simon, J Valmadre, I Matthews, Y Sheikh
European Conference on Computer Vision (ECCV), 204-219, 2014
352014
Devon: Deformable volume network for learning optical flow
Y Lu, J Valmadre, H Wang, J Kannala, M Harandi, P Torr
IEEE/CVF Winter Conference on Applications of Computer Vision (WACV), 2705-2713, 2020
312020
Efficient articulated trajectory reconstruction using dynamic programming and filters
J Valmadre, Y Zhu, S Sridharan, S Lucey
European Conference on Computer Vision (ECCV), 72–85, 2012
202012
Kronecker-markov prior for dynamic 3d reconstruction
T Simon, J Valmadre, I Matthews, Y Sheikh
IEEE Transactions on Pattern Analysis and Machine Intelligence (PAMI) 39 (11 …, 2016
162016
Learning detectors quickly with stationary statistics
J Valmadre, S Sridharan, S Lucey
Asian Conference on Computer Vision (ACCV), 99-114, 2014
12*2014
Local metrics for multi-object tracking
J Valmadre, A Bewley, J Huang, C Sun, C Sminchisescu, C Schmid
arXiv preprint arXiv:2104.02631, 2021
102021
Closed-form solutions for low-rank non-rigid reconstruction
J Valmadre, S Sridharan, S Denman, C Fookes, S Lucey
International Conference on Digital Image Computing: Techniques and …, 2015
72015
The importance of estimating object extent when tracking with correlation filters
L Bertinetto, J Valmadre, S Golodetz, O Miksik, PHS Torr
ICCV VOT workshop, 2015
72015
Learning with Neighbor Consistency for Noisy Labels
A Iscen, J Valmadre, A Arnab, C Schmid
IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR), 4672-4681, 2022
62022
Camera-less articulated trajectory reconstruction
Y Zhu, J Valmadre, S Lucey
21st International Conference on Pattern Recognition (ICPR), 2012
62012
Hierarchical classification at multiple operating points
J Valmadre
arXiv preprint arXiv:2210.10929, 2022
12022
A global analysis of global optimisation
LE MacDonald, H Saratchandran, J Valmadre, S Lucey
arXiv preprint arXiv:2210.05371, 2022
2022
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