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Cross-model convolutional neural network for multiple modality data representation
by
Cui, Fan
, Zhai, Hongbin
, Wu, Yanbin
, Dong, Baoming
, Wang, Li
, Wang, Jing-Yan
in
Artificial Intelligence
/ Artificial neural networks
/ Computational Biology/Bioinformatics
/ Computational Science and Engineering
/ Computer Science
/ Data Mining and Knowledge Discovery
/ Data points
/ Image Processing and Computer Vision
/ Neural networks
/ Original Article
/ Probability and Statistics in Computer Science
/ Representations
2018
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Cross-model convolutional neural network for multiple modality data representation
by
Cui, Fan
, Zhai, Hongbin
, Wu, Yanbin
, Dong, Baoming
, Wang, Li
, Wang, Jing-Yan
in
Artificial Intelligence
/ Artificial neural networks
/ Computational Biology/Bioinformatics
/ Computational Science and Engineering
/ Computer Science
/ Data Mining and Knowledge Discovery
/ Data points
/ Image Processing and Computer Vision
/ Neural networks
/ Original Article
/ Probability and Statistics in Computer Science
/ Representations
2018
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Do you wish to request the book?
Cross-model convolutional neural network for multiple modality data representation
by
Cui, Fan
, Zhai, Hongbin
, Wu, Yanbin
, Dong, Baoming
, Wang, Li
, Wang, Jing-Yan
in
Artificial Intelligence
/ Artificial neural networks
/ Computational Biology/Bioinformatics
/ Computational Science and Engineering
/ Computer Science
/ Data Mining and Knowledge Discovery
/ Data points
/ Image Processing and Computer Vision
/ Neural networks
/ Original Article
/ Probability and Statistics in Computer Science
/ Representations
2018
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Cross-model convolutional neural network for multiple modality data representation
Journal Article
Cross-model convolutional neural network for multiple modality data representation
2018
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Overview
A novel data representation method of convolutional neural network (CNN) is proposed in this paper to represent data of different modalities. We learn a CNN model for the data of each modality to map the data of different modalities to a common space and regularize the new representations in the common space by a cross-model relevance matrix. We further impose that the class label of data points can also be predicted from the CNN representations in the common space. The learning problem is modeled as a minimization problem, which is solved by an augmented Lagrange method with updating rules of Alternating direction method of multipliers. The experiments over benchmark of sequence data of multiple modalities show its advantage.
Publisher
Springer London,Springer Nature B.V
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