Improved Road Extraction Models through Semi-Supervised Learning with ACCT
Hao Yu,
Shihong Du,
Zhenshan Tan
et al.
Abstract:Improving the performance and reducing the training cost of road extraction models in the absence of samples is important for updating road maps. Despite the success of recent road extraction models on standard datasets, they often fail to perform when applied to new datasets or real-world scenarios where labeled samples are not available. In this paper, our focus diverges from the typical quest to pinpoint the optimal road extraction model or evaluate generalization prowess across models. Instead, we propose … Show more
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