Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T14:28:16.230983Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 71 of 71 outbound references and 0 inbound Pith citation observations for arXiv:2505.18877.
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 2026-08-07T14:28:16.230983Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
71 of 71 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation a527544c-2dc5-44f4-be14-866ca39c8cbd · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models GPT-4 Technical Report
Reference 1
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models A convergence analysis of gradient descent for deep linear neural networks
Reference 2
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Observation d3e10a48-7a2b-4dcf-b898-77bdc4a75db5 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Nonlinear programming.Journal of the Operational Research Society, 48(3):334–334, 1997
Reference 3
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Piqa: Reasoning about physical common- sense in natural language
Reference 4
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Observation a8543f4e-9501-4d12-8bcd-cc3d3bd8a599 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Cambridge University Press, 2023
Reference 5
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Observation 5726069f-6790-4114-97b9-6ff693d3b722 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Cambridge university press, 2004
Reference 6
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Observation f4eca558-f8c6-4d84-b5f6-c76db56a0e47 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models SemEval-2017 task 1: Semantic textual similarity-multilingual and cross-lingual focused evaluation
Reference 7
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Evaluating Large Language Models Trained on Code
Reference 8
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models On the Measure of Intelligence
Reference 9
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models BoolQ: Exploring the surprising difficulty of natural yes/no questions
Reference 10
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Jan Maire, Leiden, 1637
Reference 11
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Qlora: Efficient finetuning of quantized llms
Reference 12
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Observation 9ba36ac6-7c72-4f32-8102-702694602f09 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Automatically constructing a corpus of sentential paraphrases
Reference 13
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Observation 9ad96af1-4dd5-4317-b18b-5d44fafb64be · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Algorithmic regularization in learning deep homogeneous models: Layers are automatically balanced
Reference 14
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Observation 8b706d0c-b3b6-44bf-842f-dc6adc72589e · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Parameter- efficient fine-tuning with discrete fourier transform
Reference 15
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Observation efdb8fe9-7841-425c-a564-e14a0a3569f1 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models MIT press Cambridge, 2016
Reference 16
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models The Llama 3 Herd of Models
Reference 17
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Observation c425fb2f-8e5b-4e30-94cc-9adf9af76ceb · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Parameter-Efficient Transfer Learning with Diff Pruning
Reference 18
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Observation 9b8f5a68-6162-4d33-b75a-b78cc5326459 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models FLORA: Low-rank adapters are secretly gradient compres- sors
Reference 19
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models LoRA+: Efficient low rank adaptation of large models
Reference 20
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models DeBERTav3: Improving deBERTa using ELECTRA-style pre-training with gradient-disentangled embedding sharing
Reference 21
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Observation 55f235b1-3920-4aee-aa4b-15be1d3bd929 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Parameter-efficient transfer learning for NLP
Reference 22
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Observation ee96db6b-9fa6-4f01-83cd-7ab6b000c28c · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models LoRA: Low-rank adaptation of large language models
Reference 23
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Observation c67298aa-25e8-4c90-8311-8cfcf1b7f768 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models LLM-Adapters: An adapter family for parameter-efficient fine-tuning of large language models
Reference 24
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models FedPara: Low-rank hadamard product for communication-efficient federated learning
Reference 25
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Observation 8990b3db-2881-4fe5-a538-51c4eadfe384 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Adam: A method for stochastic optimization
Reference 26
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Observation b9e938e7-e4c8-4b82-9d3b-be251e0f39db · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Quantum-PEFT: Ultra parameter-efficient fine-tuning
Reference 27
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Observation 954d7b51-a8d1-4a1d-a1c7-b52d68989fab · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models VeRA: Vector-based random matrix adaptation
Reference 28
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Observation 3ca259db-8ba9-490d-a8d8-a3e6c41a668b · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models The power of scale for parameter-efficient prompt tuning
Reference 29
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Observation 9db08bc5-b526-42ee-9c5e-00780593f909 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Implicit regularization of sharpness-aware minimization for scale-invariant problems
Reference 30
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Observation 90ea32fa-4253-497d-8053-ec280b2d2d35 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models On the crucial role of initialization for matrix factorization
Reference 31
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Observation 4a2c7f07-7e33-4309-95ef-4b41e75dad37 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Geometric means.Linear algebra and its applications, 385:305–334, 2004
Reference 32
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Observation 69fa7db9-eb84-4bcd-a569-07487157f3f5 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Prefix-tuning: Optimizing continuous prompts for generation
Reference 33
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Observation cfa51c0c-a50a-4723-a225-9174b886f9c7 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models LoftQ: LoRA-fine-tuning-aware quantization for large language models
Reference 34
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Observation ec8440a7-3c80-4ac4-ade4-239727e920b0 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models ReLoRA: High-rank training through low-rank updates
Reference 35
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Exploring versatile generative language model via parameter-efficient transfer learning
Reference 36
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Observation 3850cd44-e170-4585-9935-af9e32d5b505 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models SVFT: Parameter-Efficient Fine-Tuning with Singular Vectors
Reference 37
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Observation 0e78eefc-09f6-4faa-8402-957d1fee23f5 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Parameter-Efficient Orthogonal Finetuning via Butterfly Factorization
Reference 38
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Observation 8ec18530-d6da-487a-a3a2-0054d8530c3a · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Cola: Compute-efficient pre-training of llms via low-rank activation.arXiv preprint arXiv:2502.10940, 2025
Reference 39
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Decoupled weight decay regularization
Reference 40
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Pissa: Principal singular values and singular vectors adap- tation of large language models
Reference 41
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Can a Suit of Armor Conduct Electricity? A New Dataset for Open Book Question Answering
Reference 42
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Learning on LoRAs: GL-Equivariant Processing of Low-Rank Weight Spaces for Large Finetuned Models
Reference 43
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Know what you don’t know: Unanswerable questions for SQuAD
Reference 44
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models High-resolution image synthesis with latent diffusion models
Reference 45
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Observation 7e5c48db-e302-4ede-8b59-7bea01c174db · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models AdapterDrop: On the efficiency of adapters in transformers
Reference 46
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Observation c8ae42bb-06eb-46b5-abd9-a652af2670e6 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models McGraw-Hill, New York, 3rd edition, 1976
Reference 47
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Dream- booth: Fine tuning text-to-image diffusion models for subject-driven generation
Reference 48
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Winogrande: An adversarial winograd schema challenge at scale.Communications of the ACM, 64(9):99–106, 2021
Reference 49
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models SocialIQA: Commonsense Reasoning about Social Interactions
Reference 50
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Ge- oloRA: Geometric integration for parameter efficient fine-tuning
Reference 51
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Observation 165fd47c-539b-4985-961e-0c54b26049b5 · outbound
RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Cambridge university press, 2014
Reference 52
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Recursive deep models for semantic compositionality over a sentiment treebank
Reference 53
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Training neural networks with fixed sparse masks
Reference 54
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Galactica: A Large Language Model for Science
Reference 55
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Accelerating ill-conditioned low-rank matrix estimation via scaled gradient descent.J
Reference 56
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models LLaMA: Open and Efficient Foundation Language Models
Reference 57
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Llama 2: Open Foundation and Fine-Tuned Chat Models
Reference 58
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models GLUE: A multi-task benchmark and analysis platform for natural language understanding
Reference 59
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Lora-ga: Low-rank adaptation with gradient approximation
Reference 60
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Neural network acceptability judgments.Trans
Reference 62
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models A broad-coverage challenge corpus for sentence understanding through inference
Reference 63
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Reft: Representation finetuning for language models
Reference 64
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models DoRA: Weight-decomposed low-rank adaptation
Reference 65
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Navigating text-to-image customization: From LyCORIS fine-tuning to model evaluation
Reference 66
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models LoRA done RITE: Robust invariant transformation equilibration for loRA optimization
Reference 67
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models HellaSwag: Can a Machine Really Finish Your Sentence?
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Riemannian preconditioned LoRA for fine-tuning foundation models
Reference 69
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Limitations
Reference 70
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RefLoRA: Refactored Low-Rank Adaptation for Efficient Fine-Tuning of Large Models Guidelines: • The answer NA means that the paper does not involve crowdsourcing nor research with human subjects
Reference 71
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No inbound Pith citation observations are available.