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ViewAL: Active Learning with Viewpoint Entropy for Semantic Segmentation

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arxiv 1911.11789 v2 pith:R3EFRJ4Q submitted 2019-11-26 cs.CV cs.LG

classification cs.CVcs.LG
keywords viewpointactivelearningdataentropylabeledlabelingsame
verification ladder T0 review T1 audit T2 compute T3 formal
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We propose ViewAL, a novel active learning strategy for semantic segmentation that exploits viewpoint consistency in multi-view datasets. Our core idea is that inconsistencies in model predictions across viewpoints provide a very reliable measure of uncertainty and encourage the model to perform well irrespective of the viewpoint under which objects are observed. To incorporate this uncertainty measure, we introduce a new viewpoint entropy formulation, which is the basis of our active learning strategy. In addition, we propose uncertainty computations on a superpixel level, which exploits inherently localized signal in the segmentation task, directly lowering the annotation costs. This combination of viewpoint entropy and the use of superpixels allows to efficiently select samples that are highly informative for improving the network. We demonstrate that our proposed active learning strategy not only yields the best-performing models for the same amount of required labeled data, but also significantly reduces labeling effort. For instance, our method achieves 95% of maximum achievable network performance using only 7%, 17%, and 24% labeled data on SceneNet-RGBD, ScanNet, and Matterport3D, respectively. On these datasets, the best state-of-the-art method achieves the same performance with 14%, 27% and 33% labeled data. Finally, we demonstrate that labeling using superpixels yields the same quality of ground-truth compared to labeling whole images, but requires 25% less time.

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  1. Active Learning with Context Sampling and One-vs-Rest Entropy for Semantic Segmentation

    cs.CV 2024-12 conditional novelty 5.0 of 10

    OREAL improves patch-based active learning for semantic segmentation by scoring superpixels with their maximum pixel uncertainty and using one-vs-rest entropy to balance classes.

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