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Convolutional Patch Representations for Image Retrieval: An Unsupervised Approach

delete2016-07-12
delete45
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OA
AI
M
Mattis Paulin *
J
Julien Mairal
M
Matthijs Douze
Z
Zaïd Harchaoui
F
Florent Perronnin
C
Cordelia Schmid
DOI:10.1007/s11263-016-0924-3delete
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Abstract

Abstract

En 中文
Convolutional neural networks (CNNs) are able to model local stationary structures in natural images in a multi-scale fashion, when learning all model parameters with supervision. While excellent performance was achieved for image classification when large amounts of labeled visual data are available, their success for unsupervised tasks such as image retrieval has been moderate so far.Our paper focuses on this latter setting and explores several methods for learning patch descriptors without supervision with application to matching and instance-level retrieval. To that effect, we propose a new family of patch representations, based on the recently introduced convolutional kernel networks. We show that our descriptor, named Patch-CKN, performs better than SIFT as well as other convolutional networks learned by artificially introducing supervision and is significantly faster to train. To demonstrate its effectiveness, we perform an extensive evaluation on standard benchmarks for patch and image retrieval where we obtain state-of-the-art results. We also introduce a new dataset called RomePatches, which allows to simultaneously study descriptor performance for patch and image retrieval.
Keywords:
Low-level image description
Instance-level retrieval
Convolutional Neural Networks
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Journal

International Journal of Computer Vision cover
International Journal of Computer Vision
IF:
9.3
Papers:
3.9K
Citations:
2.8W

Organization

U
universite grenoble alpes (uga)
Scholars:
2.1W
Papers: 1.5W
Citations: 23
I
institut national polytechnique de grenoble
Scholars:
6.7K
Papers: 5.2K
Citations: 1
C
communaute universite grenoble alpes
Scholars:
3.5W
Papers: 2.7W
Citations: 29
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