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arXiv (Cornell University)
UniMatch V2: Pushing the Limit of Semi-Supervised Semantic Segmentation
October 2024 • Lihe Yang, Zhen Zhao, Hengshuang Zhao
Semi-supervised semantic segmentation (SSS) aims at learning rich visual knowledge from cheap unlabeled images to enhance semantic segmentation capability. Among recent works, UniMatch improves its precedents tremendously by amplifying the practice of weak-to-strong consistency regularization. Subsequent works typically follow similar pipelines and propose various delicate designs. Despite the achieved progress, strangely, even in this flourishing era of numerous powerful vision models, almost all SSS works are st…
Segmentation Fault
Computer Science
Artificial Intelligence
Mathematics
Mathematical Analysis