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OSLoPrompt: Bridging Low-Supervision Challenges and Open-Set Domain Generalization in CLIP

Abstract

We introduce Low-Shot Open-Set Domain Generalization (LSOSDG), a novel paradigm unifying low-shot learning with open-set domain generalization (ODG). While prompt-based methods using models like CLIP have advanced DG, they falter in low-data regimes (e.g., 1-shot) and lack precision in detecting open-set samples with fine-grained semantics related to training classes. To address these challenges, we propose OSLOPROMPT, an advanced prompt-learning framework for CLIP with two core innovations. First, to manage limited supervision across source domains and improve DG, we introduce a domain-agnostic prompt-learning mechanism that integrates adaptable domain-specific cues and visually guided semantic attributes through a novel cross-attention module, besides being supported by learnable domain- and class-generic visual prompts to enhance cross-modal adaptability. Second, to improve outlier rejection during inference, we classify unfamiliar samples as "unknown" and train specialized prompts with systematically synthesized pseudo-open samples that maintain fine-grained relationships to known classes, generated through a targeted query strategy with off-the-shelf foundation models. This strategy enhances feature learning, enabling our model to detect open samples with varied granularity more effectively. Extensive evaluations across five benchmarks demonstrate that OSLOPROMPT establishes a new state-of-the-art in LSOSDG, significantly outperforming existing methods.

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@article{c2025_2503.16106,
  title={ OSLoPrompt: Bridging Low-Supervision Challenges and Open-Set Domain Generalization in CLIP },
  author={ Mohamad Hassan N C and Divyam Gupta and Mainak Singha and Sai Bhargav Rongali and Ankit Jha and Muhammad Haris Khan and Biplab Banerjee },
  journal={arXiv preprint arXiv:2503.16106},
  year={ 2025 }
}
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