VLCounter: Text-Aware Visual Representation for Zero-Shot Object Counting
Seunggu Kang, WonJun Moon, Euiyeon Kim, Jae-Pil Heo
摘要
Zero-Shot Object Counting (ZSOC) aims to count referred instances of arbitrary classes in a query image without human-annotated exemplars. To deal with ZSOC, preceding studies proposed a two-stage pipeline: discovering exemplars and counting. However, there remains a challenge of vulnerability to error propagation of the sequentially designed two-stage process. In this work, we propose an one-stage baseline, Visual-Language Baseline (VLBase), exploring the implicit association of the semantic-patch embeddings of CLIP. Subsequently, we extend the VLBase to Visual-language Counter (VLCounter) by incorporating three modules devised to tailor VLBase for object counting. First, we introduce Semantic-conditioned Prompt Tuning (SPT) within the image encoder to acquire target-highlighted representations. Second, Learnable Affine Transformation (LAT) is employed to translate the semantic-patch similarity map to be appropriate for the counting task. Lastly, we transfer the layer-wisely encoded features to the decoder through Segment-aware Skip Connection (SaSC) to keep the generalization capability for unseen classes. Through extensive experiments on FSC147, CARPK, and PUCPR+, we demonstrate the benefits of our end-to-end framework, VLCounter. Code is available at https://github.com/seunggu0305/VLCounter
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引用它的顶会 Paper5
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- Open-World Object Counting in VideosNiki Amini-Naieni, Andrew ZissermanAAAI 2026 · 被引用 6 次
- Querying Autonomous Vehicle Point Clouds: Enhanced by 3D Object Counting with CounterNetXiaoyu Zhang, Zhifeng Bao, Hai Dong, Ziwei Wang 等ACM MM 2025
- Decoupling What to Count and Where to See for Referring Expression CountingYuda Zou, Zijian Zhang, Yongchao XuAAAI 2026
- SDVPT: Semantic-Driven Visual Prompt Tuning for Open-world Object CountingYiming Zhao, Guorong Li, Laiyun Qing, Amin Beheshti 等ACM MM 2025
它引用的顶会 Paper13
- Learning Transferable Visual Models From Natural Language SupervisionAlec Radford, Jong Wook Kim, Chris Hallacy, Aditya Ramesh 等ICML 2021 · 被引用 47,906 次
- Language-driven Semantic SegmentationBoyi Li, Kilian Q. Weinberger, Serge J. Belongie, Vladlen Koltun 等ICLR 2022 · 被引用 885 次
- Learning to Prompt for Continual LearningZifeng Wang, Zizhao Zhang, Chen-Yu Lee, Han Zhang 等CVPR 2022 · 被引用 635 次
- DenseCLIP: Language-Guided Dense Prediction with Context-Aware PromptingYongming Rao, Wenliang Zhao, Guangyi Chen, Yansong Tang 等CVPR 2022 · 被引用 527 次
- Image Segmentation Using Text and Image PromptsTimo Lüddecke, Alexander S. EckerCVPR 2022 · 被引用 457 次
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