Urban Land Cover Classification with Missing Data Modalities Using Deep Convolutional Neural Networks
September 21, 2017 Β· Declared Dead Β· π IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing
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Authors
Michael Kampffmeyer, Arnt-BΓΈrre Salberg, Robert Jenssen
arXiv ID
1709.07383
Category
cs.CV: Computer Vision
Citations
55
Venue
IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing
Last Checked
5 months ago
Abstract
Automatic urban land cover classification is a fundamental problem in remote sensing, e.g. for environmental monitoring. The problem is highly challenging, as classes generally have high inter-class and low intra-class variance. Techniques to improve urban land cover classification performance in remote sensing include fusion of data from different sensors with different data modalities. However, such techniques require all modalities to be available to the classifier in the decision-making process, i.e. at test time, as well as in training. If a data modality is missing at test time, current state-of-the-art approaches have in general no procedure available for exploiting information from these modalities. This represents a waste of potentially useful information. We propose as a remedy a convolutional neural network (CNN) architecture for urban land cover classification which is able to embed all available training modalities in a so-called hallucination network. The network will in effect replace missing data modalities in the test phase, enabling fusion capabilities even when data modalities are missing in testing. We demonstrate the method using two datasets consisting of optical and digital surface model (DSM) images. We simulate missing modalities by assuming that DSM images are missing during testing. Our method outperforms both standard CNNs trained only on optical images as well as an ensemble of two standard CNNs. We further evaluate the potential of our method to handle situations where only some DSM images are missing during testing. Overall, we show that we can clearly exploit training time information of the missing modality during testing.
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