2019 · 268 citations · 17 references
Artificial IntelligenceStructured PredictionEngineeringMachine LearningNatural Language ProcessingImage AnalysisUnsupervised Domain AdaptationData SciencePattern RecognitionSemantic SegmentationDise ModelSegmentation PerformanceSynthetic Image GenerationMachine VisionKnowledge DiscoveryComputer ScienceHuman Image SynthesisDeep LearningComputer VisionBoosting Semantic SegmentationScene InterpretationDomain AdaptationScene UnderstandingImage Segmentation
In this paper we tackle the problem of unsupervised domain adaptation for the task of semantic segmentation, where we attempt to transfer the knowledge learned upon synthetic datasets with ground-truth labels to real-world images without any annotation. With the hypothesis that the structural content of images is the most informative and decisive factor to semantic segmentation and can be readily shared across domains, we propose a Domain Invariant Structure Extraction (DISE) framework to disentangle images into domain-invariant structure and domain-specific texture representations, which can further realize image-translation across domains and enable label transfer to improve segmentation performance. Extensive experiments verify the effectiveness of our proposed DISE model and demonstrate its superiority over several state-of-the-art approaches.
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Deep Residual Learning for Image Recognition
Kaiming He, Xiangyu Zhang, Shaoqing Ren et al. · 2016 · 214.9K citations · Full text
Image Classification, Deep Neural Networks, Machine Vision +14
Fully convolutional networks for semantic segmentation
Jonathan Long, Evan Shelhamer, Trevor Darrell · 2015 · 36.2K citations
Liang-Chieh Chen, George Papandreou, Iasonas Kokkinos et al. · IEEE Transactions on Pattern Analysis and Machine Intelligence · 2017 · 21.4K citations
Semantic Image Segmentation, Convolutional Neural Network, Scene Analysis +15
Unpaired Image-to-Image Translation Using Cycle-Consistent Adversarial Networks
Jun-Yan Zhu, Taesung Park, Phillip Isola et al. · 2017 · 21.3K citations · Full text
Engineering, Machine Learning, Image-to-image Translation +17