Simple Multi-dataset Detection
Xingyi Zhou, Vladlen Koltun, Philipp Krähenbühl
摘要
How do we build a general and broad object detection system? We use all labels of all concepts ever annotated. These labels span diverse datasets with potentially inconsistent taxonomies. In this paper, we present a simple method for training a unified detector on multiple large-scale datasets. We use dataset-specific training protocols and losses, but share a common detection architecture with dataset-specific outputs. We show how to automatically integrate these dataset-specific outputs into a common semantic taxonomy. In contrast to prior work, our approach does not require manual taxonomy reconciliation. Experiments show our learned taxonomy outperforms a expert-designed taxonomy in all datasets. Our multi-dataset detector performs as well as dataset-specific models on each training domain, and can generalize to new unseen dataset without fine-tuning on them. Code is available at https://github.com/xingyizhou/UniDet.
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引用它的顶会 Paper56
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它引用的顶会 Paper12
- Objects365: A Large-Scale, High-Quality Dataset for Object DetectionShuai Shao, Zeming Li, Tianyuan Zhang, Chao Peng 等ICCV 2019 · 被引用 1,018 次
- Transductive Learning for Zero-Shot Object DetectionShafin Rahman, Salman H. Khan, Nick BarnesICCV 2019 · 被引用 82 次
- Universal-RCNN: Universal Object Detector via Transferable Graph R-CNNHang Xu, Linpu Fang, Xiaodan Liang, Wenxiong Kang 等AAAI 2020 · 被引用 26 次
- VarifocalNet: An IoU-Aware Dense Object DetectorHaoyang Zhang, Ying Wang, Feras Dayoub, Niko SünderhaufCVPR 2021
- MSeg: A Composite Dataset for Multi-Domain Semantic SegmentationJohn Lambert, Zhuang Liu, Ozan Sener, James Hays 等CVPR 2020
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