Anchor Loss: Modulating Loss Scale based on Prediction Difficulty
September 24, 2019 Β· Declared Dead Β· π IEEE International Conference on Computer Vision
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Authors
Serim Ryou, Seong-Gyun Jeong, Pietro Perona
arXiv ID
1909.11155
Category
cs.CV: Computer Vision
Cross-listed
cs.LG
Citations
45
Venue
IEEE International Conference on Computer Vision
Last Checked
5 months ago
Abstract
We propose a novel loss function that dynamically rescales the cross entropy based on prediction difficulty regarding a sample. Deep neural network architectures in image classification tasks struggle to disambiguate visually similar objects. Likewise, in human pose estimation symmetric body parts often confuse the network with assigning indiscriminative scores to them. This is due to the output prediction, in which only the highest confidence label is selected without taking into consideration a measure of uncertainty. In this work, we define the prediction difficulty as a relative property coming from the confidence score gap between positive and negative labels. More precisely, the proposed loss function penalizes the network to avoid the score of a false prediction being significant. To demonstrate the efficacy of our loss function, we evaluate it on two different domains: image classification and human pose estimation. We find improvements in both applications by achieving higher accuracy compared to the baseline methods.
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