Simultaneous Stereo Matching and Confidence Estimation Network
Tobias Schmähling,
Tobias Müller,
Jörg Eberhardt
et al.
Abstract:In this paper, we present a multi-task model that predicts disparities and confidence levels in deep stereo matching simultaneously. We do this by combining its successful model for each separate task and obtaining a multi-task model that can be trained with a proposed loss function. We show the advantages of this model compared to training and predicting disparity and confidence sequentially. This method enables an improvement of 15% to 30% in the area under the curve (AUC) metric when trained in parallel rat… Show more
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