Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-15T23:17:34.227767Z
Paper Citation Record · LEDGER
As of 16 August 2026, this Paper Citation Record lists 60 of 60 outbound references and 2 inbound Pith citation observations for arXiv:2505.05180.
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 2026-08-15T23:17:34.227767Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-16T06:30:59.297886+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-15T18:14:13.678118Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-05-11T17:11:10.383488Z
60 of 60 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation ded358d7-21f6-40d5-981b-4733eae78033 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning write newline
Reference 1
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Observation daaa1870-b329-41b3-bdbd-e2d55858211b · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Unresolved cited work
Reference 2
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Observation eea6cf87-97cc-49ac-8ba8-542cac26c4d8 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning and Tzimiropoulos, G
Reference 3
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Observation 22f9801c-9fe7-49b6-9a9e-2532c6fe2dc6 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Describing textures in the wild
Reference 4
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Observation f014b592-963d-439a-904c-afd9aa1d7750 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Imagenet: A large-scale hierarchical image database
Reference 5
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Observation 91e13586-483b-4c4f-b9b0-1a025e6aec40 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning An introduction to ROC analysis
Reference 6
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Observation da42ae53-0e5d-43c1-b506-b79c179b6b15 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Learning generative visual models from few training examples: An incremental bayesian approach tested on 101 object categories
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OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Shrec'22 track: Open-set 3d object retrieval
Reference 8
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Observation 0ffcc87b-c00e-4df9-aeb2-b8a0029aadb8 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning and Zhou, Z
Reference 9
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Observation 71e17c0b-a1fa-4901-ba26-9d0806b69247 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Aucseg: Auc-oriented pixel-level long-tail semantic segmentation
Reference 10
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Observation 0d3177a0-86dd-4859-8d8f-176dbd6bcf2f · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Eurosat: A novel dataset and deep learning benchmark for land use and land cover classification
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Observation 390466a8-f0ef-4597-a07b-d383efa10f93 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning and Gimpel, K
Reference 12
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Observation c4891a59-39d9-4ace-82b2-1f35f15369a9 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning The many faces of robustness: A critical analysis of out-of-distribution generalization
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Observation 3cda8b56-ab1d-4116-9df8-dce61b5ce15c · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Natural adversarial examples
Reference 14
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Observation 6e1c5cb0-d939-40d8-ab73-cf00b10bc225 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Reconboost: Boosting can achieve modality reconcilement
Reference 15
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Observation c3e3c3f5-9111-4424-a18a-d512b2c28e1e · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning U., Rasheed, H
Reference 16
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Observation 2dd14bfd-6403-4e35-9951-e46f2cd68231 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning U., Wasim, S
Reference 17
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Observation aacc854d-b46a-4a08-99c7-cf3eb839c0cd · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Learning to Prompt with Text Only Supervision for Vision-Language Models
Reference 18
Source-reported events for the cited work
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Observation f03fac1c-2c13-4337-afc3-51162a395c92 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning and Ramanan, D
Reference 19
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Observation d2067048-9b6e-4781-8a63-4c3f94800c19 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning 3d object representations for fine-grained categorization
Reference 20
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Observation eec0c71f-ccd2-4e4b-b790-2065936318c3 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Gallop: Learning global and local prompts for vision-language models
Reference 21
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Observation a291974d-7526-42b3-b9e1-713f596584c3 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning The power of scale for parameter-efficient prompt tuning
Reference 22
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Observation dc7c1aee-6c9f-40f3-b1e6-e7d94e2345a3 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Promptkd: Unsupervised prompt distillation for vision-language models
Reference 23
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Observation 004d2685-443a-42c0-bab8-8dc5b03e3df3 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Stochastic auc maximization with deep neural networks
Reference 24
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Observation c67860c3-3280-48c3-91be-18055e8d3845 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Fine-Grained Visual Classification of Aircraft
Reference 25
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Observation 94b7912c-9479-4373-bc9b-1beb279d441f · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Unresolved cited work
Reference 26
Source-reported events for the cited work
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Observation 86887b83-c7cb-4459-91fb-c29ff608ff53 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Locoop: Few-shot out-of-distribution detection via prompt learning
Reference 27
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Observation 4d8da4f1-c3fb-492e-86fc-5ddf334018ef · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Out-of-distribution detection with negative prompts
Reference 28
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Observation d4c3bbb5-495b-4db8-af1a-7e2cc47df761 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning and Zisserman, A
Reference 29
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Observation 4820882f-2cac-43a6-b99c-07f359a52088 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning M., Vedaldi, A., Zisserman, A., and Jawahar, C
Reference 30
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Observation 03056a05-4523-4ca5-9964-47004b1c065c · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Automatic differentiation in pytorch
Reference 31
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Observation 2c4fca4a-ce36-4745-85f4-f4c203effe3f · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning W., Hallacy, C., Ramesh, A., Goh, G., Agarwal, S., Sastry, G., Askell, A., Mishkin, P., Clark, J., Krueger, G., and Sutskever, I
Reference 32
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Observation a82546c9-ceb8-4d66-97ea-f2e6f195457e · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Do I mage N et classifiers generalize to I mage N et? In International Conference on Machine Learning, pp.\ 5389--5400, 2019
Reference 33
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Observation 6d3ba705-ed39-4e7d-b9dd-a119de86bcfe · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning and Etemad, A
Reference 34
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Observation 9f185ebf-c1f0-47c6-a66e-b2eb4957637a · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Unresolved cited work
Reference 35
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Observation ec48a617-16a2-496e-9812-d29e3525fa57 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning UCF101: A Dataset of 101 Human Actions Classes From Videos in The Wild
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Observation 8d751042-7d4c-4ef4-b5b5-cee167ec90bc · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Kill two birds with one stone: Rethinking data augmentation for deep long-tailed learning
Reference 37
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Observation 033ec934-459d-4033-b6b6-27569ae2f733 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning C., and Xing, E
Reference 38
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Observation 65cf3f54-8fa7-42d1-afa7-b0bac89e32ca · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Llm-autoda: Large language model-driven automatic data augmentation for long-tailed problems
Reference 39
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Observation c2e1f5e5-3324-4874-9b4a-b4a8eddf9cdc · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Openauc: Towards auc-oriented open-set recognition
Reference 40
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Observation 89d6c5bc-1458-4058-91c4-b5c592d5226b · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Cascade prompt learning for vision-language model adaptation
Reference 41
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Observation e966c540-4c42-4fe0-8c20-6d9267505935 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Zero-shot learning — the good, the bad and the ugly
Reference 42
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Observation b8c20d40-6a2f-40f5-9d5e-13e521c8aac7 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning A., Oliva, A., and Torralba, A
Reference 43
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Observation 5f5e587f-fab9-4cb8-aa44-747fa50a9755 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning and Ying, Y
Reference 44
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Observation a7f56374-f354-46ec-9158-f4f9122ce87b · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Learning with multiclass AUC: theory and algorithms, 2022
Reference 45
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Observation 255fb5e1-ea9e-4be9-81bc-670e1867cffa · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Optimizing two-way partial AUC with an end-to-end framework
Reference 46
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Observation 40bda5bf-5418-49dc-a0f1-6c846172c3c2 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Harnessing hierarchical label distribution variations in test agnostic long-tail recognition
Reference 47
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Observation 3943a415-4ed9-4b4a-8801-46ef1ae5a4ca · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Visual-language prompt tuning with knowledge-guided context optimization
Reference 48
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Observation 15ec1a37-6d2a-4a7b-a652-7a2e699f66f0 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Tcp: Textual-based class-aware prompt tuning for visual-language model
Reference 49
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Observation 1f41cb34-f335-429b-b527-13dc221d0b19 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Compositional training for end-to-end deep AUC maximization
Reference 50
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OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Counterfactual zero-shot and open-set visual recognition
Reference 51
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OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Local-Prompt: Extensible Local Prompts for Few-Shot Out-of-Distribution Detection
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Observation 2aa6eda4-6558-4537-9f25-2cf495f9021a · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning T., and Song, J
Reference 53
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Observation bc3ece8c-7fce-4f90-b257-f985cf450982 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Prompt, generate, then cache: Cascade of foundation models makes strong few-shot learners
Reference 54
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Observation c9aab9d4-5389-4d70-bcae-df55a0287558 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Two fists, one heart: Multi-objective optimization based strategy fusion for long-tailed learning
Reference 55
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Observation 89afa806-1156-44c6-8a02-078792b52355 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Breaking long-tailed learning bottlenecks: A controllable paradigm with hypernetwork-generated diverse experts
Reference 56
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Observation 54bb1eb4-1837-46e4-aac8-3ccd3e1c29b2 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning C., and Liu, Z
Reference 57
Source-reported events for the cited work
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Observation 49946655-a1de-4f2e-afc0-b7e1ea8bef26 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning C., and Liu, Z
Reference 58
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Observation 5323b0a9-ae8c-4a46-b1dc-2d7ad42a8b20 · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Decoop: Robust prompt tuning with out-of-distribution detection
Reference 59
Source-reported events for the cited work
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Observation 1178c5f8-03e6-4fd2-a9be-6dfe7e2d9e4b · outbound
OpenworldAUC: Towards Unified Evaluation and Optimization for Open-world Prompt Tuning Prompt-aligned gradient for prompt tuning
Reference 60
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Observation ff1058bd-8dfa-4be5-acdc-304eb984508d · inbound
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Source-reported events for the cited work
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Observation 02c287f4-8791-40ca-bf43-11e6e6cde60d · inbound
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Source-reported events for the cited work
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