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Progressive Multi-level Distillation for Domain Adaptive Object Detection

  • Mengfan Yan*
  • , Maochen Huang
  • , Wenjie Chen
  • *此作品的通讯作者
  • 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

Domain adaptive object detection (DAOD) is intrinsically a multi-layered challenge. While existing adversarial alignment or self-training methods offer partial solutions, they often struggle with training instability or the accumulation of semantic noise. In this paper, we propose a Progressive Multi-level Distillation (PMD) framework, which systematically mitigates the domain shift via a “Structural-to-Spectral-to-Semantic” refinement pipeline. Our core philosophy is to rectify the cross-domain representation at three increasing levels of abstraction: Hierarchical Feature Alignment (HFA) for multi-scale structures; Tensor Low-rank Distillation (TLD) using SVD to purify latent manifolds; and CLIP-Guided Pseudo-Label Calibration Module (CPCM) for semantic correction and prevention of pseudo-label error accumulation. These three components form a unified pipeline that systematically refines feature representations from low-level structural alignment to high-level semantic calibration, thereby enhancing overall adaptability. Extensive experiments conducted across three representative cross-domain scenarios demonstrate that our proposed framework achieves superior performance over existing state-of-the-art methods, validating the effectiveness of progressive multi-level distillation.

源语言英语
主期刊名Pattern Recognition - 28th International Conference, ICPR 2026, Proceedings
编辑Maria De Marsico, Tin Kam Ho, Frederic Jurie, Cheng-Lin Liu, Daniel Lopresti, Ingela Nyström, Jean-Marc Ogier, Arun Ross, Liang Wang
出版商Springer Science and Business Media Deutschland GmbH
277-291
页数15
ISBN(印刷版)9783032316721
DOI
出版状态已出版 - 2027
已对外发布
活动28th International Conference on Pattern Recognition, ICPR 2026 - Lyon, 法国
期限: 17 8月 202622 8月 2026

丛书

姓名Lecture Notes in Computer Science
16817 LNCS
ISSN(印刷版)0302-9743
ISSN(电子版)1611-3349

会议

会议28th International Conference on Pattern Recognition, ICPR 2026
国家/地区法国
Lyon
时期17/08/2622/08/26

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