Partially Fake it Till you Make It: Mixing Real and Fake Thermal Images for Improved Object Detection
Francesco Bongini, Lorenzo Berlincioni, Marco Bertini, Alberto Del Bimbo
摘要
In this paper we propose a novel data augmentation approach for visual content domains that have scarce training datasets, compositing synthetic 3D objects within real scenes. We show the performance of the proposed system in the context of object detection in thermal videos, a domain where i) training datasets are very limited compared to visible spectrum datasets and ii) creating full realistic synthetic scenes is extremely cumbersome and expensive due to the difficulty in modeling the thermal properties of the materials of the scene. We compare different augmentation strategies, including state of the art approaches obtained through RL techniques, the injection of simulated data and the employment of a generative model, and study how to best combine our proposed augmentation with these other techniques. Experimental results demonstrate the effectiveness of our approach, and our single-modality detector achieves state-of-the-art results on the FLIR ADAS dataset.
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引用它的顶会 Paper3
- Data Generation Scheme for Thermal Modality with Edge-Guided Adversarial Conditional Diffusion ModelGuoqing Zhu, Honghu Pan, Qiang Wang, Chao Tian 等ACM MM 2024 · 被引用 7 次
- Multimodal Decomposed Distillation with Instance Alignment and Uncertainty Compensation for Thermal Object DetectionYanfeng Liu, Lefei ZhangACM MM 2025 · 被引用 2 次
- Pseudo Visible Feature Fine-Grained Fusion for Thermal Object DetectionTing Li, Mao Ye, Tianwen Wu, Nianxin Li 等CVPR 2025
它引用的顶会 Paper2
- RandAugment: Practical Automated Data Augmentation with a Reduced Search SpaceEkin Dogus Cubuk, Barret Zoph, Jonathon Shlens, Quoc LeNeurIPS 2020 · 被引用 4,453 次
- Weakly Aligned Cross-Modal Learning for Multispectral Pedestrian DetectionLu Zhang, Xiangyu Zhu, Xiangyu Chen, Xu Yang 等ICCV 2019 · 被引用 209 次
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