构建首个覆盖法国28个区的建筑变化检测大尺度基准数据集。
FOTBCD: A Large-Scale Building Change Detection Benchmark from French Orthophotos and Topographic Data
- 基于法国官方航拍图与地形数据,覆盖城乡多元场景。
- 包含约2.8万对图像及像素级二值变化标签,支持跨区域泛化评估。
- 公开二值版与实例级标注子集,适合遥感变化检测研究者使用。
本文提出FOTBCD,一个基于法国权威航拍影像与地形建筑数据的大型建筑变化检测基准数据集。不同于以往局限于单城或小范围的基准,FOTBCD覆盖法国本土28个行政区,其中25个用于训练,3个地理隔离区用于评估。数据以0.2米/像素分辨率涵盖城市、郊区和农村多种环境。我们公开发布FOTBCD-Binary,包含约28,000对前后时相图像及其像素级二值变化掩码,每对均附有片级别空间元数据。数据集设计用于大规模基准测试与地理域偏移下的性能评估,验证与测试样本来自保留区,且经人工校验确保标签质量。此外,还发布FOTBCD-Instances,一个数千对实例级标注的公开子集,展示完整标注方案。通过固定基线模型对比LEVIR-CD+与WHU-CD,实证表明数据集层面的地理多样性有助于提升建筑变化检测的跨域泛化能力。
原文摘要 · Abstract (English)
We introduce FOTBCD, a large-scale building change detection dataset derived from authoritative French orthophotos and topographic building data provided by IGN France. Unlike existing benchmarks that are geographically constrained to single cities or limited regions, FOTBCD spans 28 departments across mainland France, with 25 used for training and three geographically disjoint departments held out for evaluation. The dataset covers diverse urban, suburban, and rural environments at 0.2m/pixel resolution. We publicly release FOTBCD-Binary, a dataset comprising approximately 28,000 before/after image pairs with pixel-wise binary building change masks, each associated with patch-level spatial metadata. The dataset is designed for large-scale benchmarking and evaluation under geographic domain shift, with validation and test samples drawn from held-out departments and manually verified to ensure label quality. In addition, we publicly release FOTBCD-Instances, a publicly available instance-level annotated subset comprising several thousand image pairs, which illustrates the complete annotation schema used in the full instance-level version of FOTBCD. Using a fixed reference baseline, we benchmark FOTBCD-Binary against LEVIR-CD+ and WHU-CD, providing strong empirical evidence that geographic diversity at the dataset level is associated with improved cross-domain generalization in building change detection.
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