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Optimization of Cross-Domain Detection Capabilities Based on RT-DETR

  • Beijing Institute of Technology
  • Beijing Institute of Technology

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Object detectors often suffer a significant performance decline when faced with domain shifts between the source domain (collected data) and the target domain (actual application data). This is due to significant visual differences between images across domains, such as variations in object scale, texture, and content style. To improve cross-domain detection performance, this paper proposes integrating two modules: AssemFormer (an assembly-based convolutional vision transformer) and SEAM (Separated and Enhanced Attention Module) into the RT-DETR detector. AssemFormer combines the local feature extraction capabilities of convolutional neural networks with the global context modeling power of Transformers, addressing the limitations of traditional convolutional neural networks in capturing long-range dependencies and local details. SEAM improves feature responses in unobstructed regions while compensating for information loss in occluded areas, thereby enhancing detection capabilities for obscured objects. It also addresses the lack of inductive bias and weak local detail capture in pure Transformers. Together, these modules mitigate the adverse effects of domain differences between synthetic and real images, optimizing performance for cross-domain object detection. In the Sim10k-Cityscapes crossdomain detection task, the mAP improved by 5.8%, and in the Cityscapes-FoggyCityscapes task, it increased by 5.7%.

源语言英语
主期刊名2026 IEEE 20th International Conference on Control and Automation, ICCA 2026
出版商IEEE Computer Society
174-179
页数6
ISBN(电子版)9798331548537
DOI
出版状态已出版 - 2026
已对外发布
活动20th IEEE International Conference on Control and Automation, ICCA 2026 - Almaty, 哈萨克斯坦
期限: 16 6月 202619 6月 2026

丛书

姓名IEEE International Conference on Control and Automation, ICCA
ISSN(印刷版)1948-3449
ISSN(电子版)1948-3457

会议

会议20th IEEE International Conference on Control and Automation, ICCA 2026
国家/地区哈萨克斯坦
Almaty
时期16/06/2619/06/26

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