CLIM: Contrastive Language-Image Mosaic for Region Representation
Size Wu, Wenwei Zhang, Lumin Xu, Sheng Jin, Wentao Liu, Chen Change Loy
Abstract
Detecting objects accurately from a large or open vocabulary necessitates the vision-language alignment on region representations. However, learning such a region-text alignment by obtaining high-quality box annotations with text labels or descriptions is expensive and infeasible. In contrast, collecting image-text pairs is simpler but lacks precise object location information to associate regions with texts. In this paper, we propose a novel approach called Contrastive Language-Image Mosaic (CLIM), which leverages large-scale image-text pairs effectively for aligning region and text representations. CLIM combines multiple images into a mosaicked image and treats each image as a ‘pseudo region’. The feature of each pseudo region is extracted and trained to be similar to the corresponding text embedding while dissimilar from others by a contrastive loss, enabling the model to learn the region-text alignment without costly box annotations. As a generally applicable approach, CLIM consistently improves different open-vocabulary object detection methods that use caption supervision. Furthermore, CLIM can effectively enhance the region representation of vision-language models, thus providing stronger backbones for open-vocabulary object detectors. Our experimental results demonstrate that CLIM improves different baseline open-vocabulary object detectors by a large margin on both OV-COCO and OV-LVIS benchmarks. The code is available at https://github.com/wusize/CLIM.
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Cited by top-tier papers13
- CLIPSelf: Vision Transformer Distills Itself for Open-Vocabulary Dense PredictionSize Wu, Wenwei Zhang, Lumin Xu, Sheng Jin et al.ICLR 2024 · 129 citations
- OV-DQUO: Open-Vocabulary DETR with Denoising Text Query Training and Open-World Unknown Objects SupervisionJunjie Wang, Bin Chen, Bin Kang, Yulin Li et al.AAAI 2025 · 23 citations
- FlexCap: Describe Anything in Images in Controllable DetailDebidatta Dwibedi, Vidhi Jain, Jonathan Tompson, Andrew Zisserman et al.NeurIPS 2024 · 11 citations
- SIA-OVD: Shape-Invariant Adapter for Bridging the Image-Region Gap in Open-Vocabulary DetectionZishuo Wang, Wenhao Zhou, Jinglin Xu, Yuxin PengACM MM 2024 · 6 citations
- DeCo-DETR: Decoupled Cognition DETR for efficient Open-Vocabulary Object DetectionSiheng Wang, Yanshu Li, Bohan Hu, Zhengdao Li et al.ICLR 2026 · 5 citations
Builds on15
- Learning Transferable Visual Models From Natural Language SupervisionAlec Radford, Jong Wook Kim, Chris Hallacy, Aditya Ramesh et al.ICML 2021 · 47,906 citations
- Scaling Up Visual and Vision-Language Representation Learning With Noisy Text SupervisionChao Jia, Yinfei Yang, Ye Xia, Yi-Ting Chen et al.ICML 2021 · 5,401 citations
- ViLT: Vision-and-Language Transformer Without Convolution or Region SupervisionWonjae Kim, Bokyung Son, Ildoo KimICML 2021 · 2,258 citations
- Open-vocabulary Object Detection via Vision and Language Knowledge DistillationXiuye Gu, Tsung-Yi Lin, Weicheng Kuo, Yin CuiICLR 2022 · 1,274 citations
- RegionCLIP: Region-based Language-Image PretrainingYiwu Zhong, Jianwei Yang, Pengchuan Zhang, Chunyuan Li et al.CVPR 2022 · 481 citations
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