Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-07-14T07:24:27.255815Z
Paper Citation Record · LEDGER
As of 22 August 2026, this Paper Citation Record lists 45 of 45 outbound references and 1 inbound Pith citation observation for arXiv:2607.11052.
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 2026-07-14T07:24:27.255815Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-22T06:32:14.747728+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-01T03:01:55.410116Z
A source-named dated measurement, never combined with another source.
Source: cited_works
45 of 45 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 3e048f62-6b6f-4400-8b2b-d3e2ad5bbfd5 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy To Code, or Not To Code? Exploring Impact of Code in Pre-training
Reference 1
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Observation 428fe963-08f2-409f-be88-ae350776eb01 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Program Synthesis with Large Language Models
Reference 2
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Observation 7ec57828-cf92-4bd4-abe0-f3f2c6515671 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Llemma: An Open Language Model For Mathematics
Reference 3
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Observation 2f7f26dd-1441-478a-a4bf-c3ca51b34cf6 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy If you use this software, please cite it using these metadata
Reference 4
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Observation ac82df56-db89-45b6-bb1e-0f5136fdde42 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Evaluating Large Language Models Trained on Code
Reference 5
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Observation a7d168f5-0b4d-45ec-af45-536721d007aa · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Aioli: A Unified Optimization Framework for Language Model Data Mixing
Reference 6
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Observation df7f5100-f438-4c5b-b4d9-1e37d02a076a · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Think you have Solved Question Answering? Try ARC, the AI2 Reasoning Challenge
Reference 7
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Observation 72393667-e240-4e25-8e7e-ad8f20e54c82 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Training Verifiers to Solve Math Word Problems
Reference 8
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Observation 5fb9d776-39d0-466a-a260-cb4db8ecd4cd · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Albert Ge, Tzu-Heng Huang, John Cooper, Avi Trost, Ziyi Chu, Satya Sai Srinath Namburi GNVV , Ziyang Cai, Kendall Park, Nicholas Roberts, and Frederic Sala
Reference 9
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Observation 69022546-8f2a-4f5a-8473-cbf110890a79 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy OLMo: Accelerating the Science of Language Models
Reference 10
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Observation 10773f3d-cb38-4893-a2ec-fd3f7d4faa33 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Studying Large Language Model Generalization with Influence Functions
Reference 11
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Observation 7f661269-97a9-4300-bc45-5dc84106996d · outbound
Domain-Aware Scaling Laws Uncover Data Synergy CMR Scaling Law: Predicting Critical Mixture Ratios for Continual Pre-training of Language Models
Reference 12
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Observation b628019e-1abb-469f-b888-20a20b81e28d · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Training Compute-Optimal Large Language Models
Reference 13
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Observation 2455584f-c702-4866-9c58-3f581e4b710c · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Datamodels: Predicting Predictions from Training Data
Reference 14
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Observation b300a453-5410-4831-a99e-864932b4d533 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Discovering Hierarchical Latent Capabilities of Language Models via Causal Representation Learning
Reference 15
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Observation a9fe6796-2f46-4d7d-bf0a-a422a40deb11 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Autoscale: Scale-aware data mixing for pre-training llms.arXiv preprint arXiv:2407.20177,
Reference 16
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Observation f4e43290-447e-4dec-8ad7-d0b5bbc023a8 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Scaling Laws for Neural Language Models
Reference 17
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Observation 6bda2c34-7f17-4ab6-b47e-bf2a9e9db7f2 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Code Pretraining Improves Entity Tracking Abilities of Language Models
Reference 18
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Observation ebaae459-999d-4f75-b41f-1dde9c7eb7b3 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Race: Large-scale reading comprehension dataset from examinations
Reference 19
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Observation 9600c224-e067-494a-a2a2-0fa31776251b · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Improving General Text Embedding Model: Tackling Task Conflict and Data Imbalance through Model Merging
Reference 20
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Observation 10d740cf-1327-4572-b8a4-416925bd5f28 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy The Data Provenance Initiative: A Large Scale Audit of Dataset Licensing & Attribution in AI
Reference 21
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Observation 225ebb96-f56d-410e-b7d4-483a1512518b · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Atlas: Adaptive transfer scaling laws for multilingual pretraining, finetuning, and decoding the curse of multilinguality
Reference 22
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Observation bd68876a-91f2-42b0-9a72-6571733cb257 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy MathCoder2: Better Math Reasoning from Continued Pretraining on Model-translated Mathematical Code
Reference 23
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Observation 40dce8b8-4584-4927-a47b-20a7226de19c · outbound
Domain-Aware Scaling Laws Uncover Data Synergy At Which Training Stage Does Code Data Help LLMs Reasoning?
Reference 24
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Observation fc358018-e038-4a34-b346-0d2b169b2c71 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy DataDecide: How to Predict Best Pretraining Data with Small Experiments
Reference 25
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Observation d1d482d3-098e-4ce8-aa9e-726c8ce3f8aa · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Pointer Sentinel Mixture Models
Reference 26
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Observation 75eea7b3-f3cc-4251-a6d1-1522d8fd37c7 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy The LAMBADA dataset: Word prediction requiring a broad discourse context
Reference 27
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Observation 87c0bd1f-c5e2-4356-a93e-abda1b9195f3 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Pretraining scaling laws for generative evaluations of language models.arXiv preprint arXiv:2509.24012,
Reference 28
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Observation 0427db88-d620-4198-b9fa-623dc26e5b87 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Scaling laws for optimal data mixtures.arXiv preprint arXiv:2507.09404,
Reference 29
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Observation e09b73e6-1c45-4bd7-bd1c-cac990ab38e4 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Dolma: an Open Corpus of Three Trillion Tokens for Language Model Pretraining Research
Reference 30
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Observation 27281d89-c4a0-4cac-afb3-ef7deff2bbac · outbound
Domain-Aware Scaling Laws Uncover Data Synergy 2 OLMo 2 Furious
Reference 31
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Observation ccf320b1-e36a-4d24-8b59-57c4a030aafe · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Mergemix: Optimizing mid-training data mixtures via learnable model merging.arXiv preprint arXiv:2601.17858,
Reference 32
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Observation 72a3f635-59e7-4db1-9179-1a7d6df13ef4 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Data Mixing Laws: Optimizing Data Mixtures by Predicting Language Modeling Performance
Reference 33
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Observation c910617d-f8c4-4959-8220-3b79d42a598f · outbound
Domain-Aware Scaling Laws Uncover Data Synergy CodePMP: Scalable Preference Model Pretraining for Large Language Model Reasoning
Reference 34
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Observation eacf1bf9-76e9-4370-ae30-206522d7ba0c · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Group-Level Data Selection for Efficient Pretraining
Reference 35
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Observation ebc5249f-5e79-4491-beb0-3be3eadae291 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy HellaSwag: Can a Machine Really Finish Your Sentence?
Reference 36
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Observation 09afd6ee-be56-4718-911b-8020a59191da · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Beyond Anti-Forgetting: Multimodal Continual Instruction Tuning with Positive Forward Transfer
Reference 37
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Observation 84d9bbad-4b30-42b1-a759-f9712ecb5536 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Instruction-Following Evaluation for Large Language Models
Reference 38
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Observation 8e00d0b0-bbc1-46e5-b756-51130a338cec · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Here we give the per-group scales and checkpoint counts
Reference 39
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Observation 85eda1e9-b798-4ef3-84ee-c73a3402c431 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Six domains (Books, Code, Encyclopedia, Legal, Science, Web) match DPI source domains
Reference 40
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Observation 1f794378-a334-4fa0-8267-950a52638ad9 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Unresolved cited work
Reference 41
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Observation 1dcd3c89-0d75-4d1d-8e66-5397484e6485 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy All evaluations use the lm-evaluation-harness (Gao et al., 2024)
Reference 42
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Observation 7e842dde-9294-4be7-aee2-5b61e33b2933 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Unresolved cited work
Reference 43
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Observation c1de4917-0cd4-4105-b243-28b655743ba7 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy Appendix G.1 derives the objective used to choose the validation mixtures, and Appendix G.2 provides more details for this experiment
Reference 44
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Observation 87da0339-88d5-4c34-844f-9740604a4d92 · outbound
Domain-Aware Scaling Laws Uncover Data Synergy The 30M model uses dmodel = 256, 8 heads, and 8 layers, while the 150M model uses dmodel = 640, 10 heads, and 12 layers
Reference 45
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Observation a5cc47bd-3e73-41ef-a316-6d10c1a192d5 · inbound
Bridging Compute- and Data-Optimal Pretraining Domain-Aware Scaling Laws Uncover Data Synergy
Reference 9
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