Learning Common and Specific Features for RGB-D Semantic Segmentation with Deconvolutional Networks
August 03, 2016 ยท Declared Dead ยท ๐ European Conference on Computer Vision
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Authors
Jinghua Wang, Zhenhua Wang, Dacheng Tao, Simon See, Gang Wang
arXiv ID
1608.01082
Category
cs.CV: Computer Vision
Citations
159
Venue
European Conference on Computer Vision
Last Checked
3 months ago
Abstract
In this paper, we tackle the problem of RGB-D semantic segmentation of indoor images. We take advantage of deconvolutional networks which can predict pixel-wise class labels, and develop a new structure for deconvolution of multiple modalities. We propose a novel feature transformation network to bridge the convolutional networks and deconvolutional networks. In the feature transformation network, we correlate the two modalities by discovering common features between them, as well as characterize each modality by discovering modality specific features. With the common features, we not only closely correlate the two modalities, but also allow them to borrow features from each other to enhance the representation of shared information. With specific features, we capture the visual patterns that are only visible in one modality. The proposed network achieves competitive segmentation accuracy on NYU depth dataset V1 and V2.
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