Video Shadow Detection via Spatio-Temporal Interpolation Consistency Training
Xiao Lu, Yihong Cao, Sheng Liu, Chengjiang Long, Zipei Chen, Xuanyu Zhou, Yimin Yang, Chunxia Xiao
摘要
It is challenging to annotate large-scale datasets for supervised video shadow detection methods. Using a model trained on labeled images to the video frames directly may lead to high generalization error and temporal inconsistent results. In this paper, we address these challenges by proposing a Spatio-Temporal Interpolation Consistency Training (STICT) framework to rationally feed the unlabeled video frames together with the labeled images into an image shadow detection network training. Specifically, we propose the Spatial and Temporal ICT, in which we define two new interpolation schemes, i.e., the spatial interpolation and the temporal interpolation. We then derive the spatial and temporal interpolation consistency constraints accordingly for enhancing generalization in the pixel-wise classification task and for encouraging temporal consistent predictions, respectively. In addition, we design a Scale-Aware Network for multi-scale shadow knowledge learning in images, and propose a scale-consistency constraint to minimize the discrepancy among the predictions at different scales. Our proposed approach is extensively validated on the ViSha dataset and a self-annotated dataset. Experimental results show that, even without video labels, our approach is better than most state of the art supervised, semi-supervised or unsupervised image/video shadow detection methods and other methods in related tasks. Code and dataset are available at https://github.com/ yihong-97/STICT .
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引用它的顶会 Paper7
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- Multi-view Spectral Polarization Propagation for Video Glass SegmentationYu Qiao, Bo Dong, Ao Jin, Yu Fu 等ICCV 2023 · 被引用 9 次
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- Learning to Detect Mirrors from Videos via Dual CorrespondencesJiaying Lin, Xin Tan, Rynson W. H. LauCVPR 2023
它引用的顶会 Paper13
- CutMix: Regularization Strategy to Train Strong Classifiers With Localizable FeaturesSangdoo Yun, Dongyoon Han, Sanghyuk Chun, Seong Joon Oh 等ICCV 2019 · 被引用 5,843 次
- ARGAN: Attentive Recurrent Generative Adversarial Network for Shadow Detection and RemovalBin Ding, Chengjiang Long, Ling Zhang, Chunxia XiaoICCV 2019 · 被引用 171 次
- Semi-Supervised Video Salient Object Detection Using Pseudo-LabelsPengxiang Yan, Guanbin Li, Yuan Xie, Zhen Li 等ICCV 2019 · 被引用 134 次
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- RIS-GAN: Explore Residual and Illumination with Generative Adversarial Networks for Shadow RemovalLing Zhang, Chengjiang Long, Xiaolong Zhang, Chunxia XiaoAAAI 2020 · 被引用 106 次
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