AgentDet: A Shared-Blackboard Multi-Agent Framework for Zero-/Few-Shot Object Detection
Haolin Li, Yaohua Wang, Ze Yan, Lijie Wen, Biqing Huang
摘要
Large multimodal language models have made rapid progress on vision-language tasks, yet their potential for zero-/few-shot object detection (ZSOD/FSOD) under a closed set of target classes has yet to be fully explored. ZSOD/FSOD is hampered by data scarcity and catastrophic forgetting. Although vision-language models (VLMs) demonstrated excellent performance on multiple benchmarks, they typically rely on large-scale visual pretraining, which is inconsistent with the goal of FSOD to test generalization to new categories under limited supervision. We introduce AgentDet, a shared-blackboard multiagent framework that unifies ZSOD and FSOD via pseudoincremental learning. AgentDet decouples detection into four cooperating roles-Agent-Scout, Agent-Pinner, Agent-Curator, and Agent-Judge-which collaboratively maintain a Shared Blackboard and a Knowledge Base. For efficiency, we only train Agent-Judge by updating its image encoder and LLM-based detection head, which is a lightweight recipe that encourages generalization to previously unseen categories. On PASCAL VOC and MS COCO ZSOD/FSOD datasets, AgentDet achieves strongly competitive performance with state-of-the-art results in several settings.
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它引用的顶会 Paper15
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- Few-Shot Object Detection via Feature ReweightingBingyi Kang, Zhuang Liu, Xin Wang, Fisher Yu 等ICCV 2019 · 被引用 835 次
- Frustratingly Simple Few-Shot Object DetectionXin Wang, Thomas E. Huang, Joseph Gonzalez, Trevor Darrell 等ICML 2020 · 被引用 723 次
- Few-Shot Object Detection via Association and DIscriminationYuhang Cao, Jiaqi Wang, Ying Jin, Tong Wu 等NeurIPS 2021 · 被引用 110 次
- Breaking Immutable: Information-Coupled Prototype Elaboration for Few-Shot Object DetectionXiaonan Lu, Wenhui Diao, Yongqiang Mao, Junxi Li 等AAAI 2023 · 被引用 66 次
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