Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T21:37:30.225257Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 67 of 67 outbound references and 1 inbound Pith citation observation for arXiv:2506.23856.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T21:37:30.225257Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-06-26T00:32:35.119143Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-07-04T16:29:57.636038Z
67 of 67 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 42a143cf-56cf-44eb-9e66-373d11fc3027 · outbound
A Closer Look at Conditional Prompt Tuning for Vision-Language Models Dept: Decoupled prompt tuning
Reference 1
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Learning trans- ferable visual models from natural language supervision
Reference 2
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models A closer look at few-shot classification again
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Bayesian prompt learning for image- language model generalization
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Maple: Multi-modal prompt learning
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Conditional prompt learning for vision-language models
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Visual-language prompt tuning with knowledge-guided con- text optimization
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Distribution-aware prompt tuning for vision-language models
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Context-aware Alignment and Mutual Mask- ing for 3D-Language Pre-training
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Recent advances in natural language processing via large pre- trained language models: A survey
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Nat- ural language processing: State of the art, current trends and challenges
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Vilt: Vision-and- language transformer without convolution or region supervision
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Scaling up visual and vision- language representation learning with noisy text supervision
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models WenLan: Bridging vision and language by large-scale multi-modal pre- training
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Align before fuse: Vision and language representation learn- ing with momentum distillation
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Disentangled Multiplex Graph Represen- tation Learning
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Vilbert: Pretraining task-agnostic visiolinguistic rep- resentations for vision-and-language tasks
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models X-clip: End-to-end multi-grained contrastive learning for video-text retrieval
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Complementarity-aware space learning for video-text retrieval
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Denseclip: Language- guided dense prediction with context-aware prompting
Reference 22
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Extract free dense labels from clip
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Clip-nerf: Text-and-image driven manipula- tion of neural radiance fields
Reference 24
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Styleclip: Text-driven manipulation of stylegan imagery
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Observation 705724cd-72a8-49c2-b018-56e5ca3ffd8a · outbound
A Closer Look at Conditional Prompt Tuning for Vision-Language Models Parameter-efficient transfer learning for NLP
Reference 26
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Learning a universal tem- plate for few-shot dataset generalization
Reference 27
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Reliable Few-shot Learning under Dual Noises
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Prefix-Tuning: Optimiz- ing Continuous Prompts for Generation
Reference 29
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Skip Tuning: Pre-trained Vision- Language Models are Effective and Efficient Adapters Themselves
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Lora: Low-rank adapta- tion of large language models
Reference 31
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Learning to decompose visual features with latent textual prompts
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Prompt learning with optimal transport for vision-language models
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Consistent Prompt Tuning for Generalized Category Discovery
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models HybridPrompt: Domain-Aware Prompting for Cross-Domain Few-Shot Learning
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models DETA: Denoised Task Adaptation for Few- Shot Learning
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models Meta-fdmixup: Cross- domain few-shot learning guided by labeled target data
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models StyleAdv: Meta Style Adversarial Training for Cross- Domain Few-Shot Learning
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A Closer Look at Conditional Prompt Tuning for Vision-Language Models UCF101: A dataset of 101 human actions classes from videos in the wild
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Reference 68
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