Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T11:59:52.253496Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 34 of 34 outbound references and 0 inbound Pith citation observations for arXiv:2507.22250.
A citation records a reference. It does not transfer a finding from one paper to another.
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Source: paper_references, paper_reference_links, observed 2026-08-06T11:59:52.253496Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-06T06:34:29.942622+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
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Source: cited_works
34 of 34 outbound references displayed
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Observation b89c444b-297d-4afe-a89e-d9536ae460d4 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Nemotron-4 340B Technical Report
Reference 1
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Observation 02dbe5b1-a4fd-4c6d-b02c-5a6e981c77c0 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Smaller, Weaker, Yet Better: Training LLM Reasoners via Compute-Optimal Sampling
Reference 4
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Observation 7f6c5223-f9ce-42a6-b4ba-59cf61fbcb53 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Does your data spark joy? Performance gains from domain upsampling at the end of training
Reference 5
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Observation 3a768c44-459e-44ac-b5f3-ef59d77b3083 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Adapting Large Language Models to Domains via Reading Comprehension
Reference 8
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Observation 5a60c380-0052-4dfe-843a-a1bd50bc5f5b · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Training Verifiers to Solve Math Word Problems
Reference 10
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Observation abc81ed8-9caa-4b79-8a7e-819ee77b1f01 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Data Filtering Networks
Reference 11
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Observation 008bf5d2-e8fb-4668-9e55-502b98c6b04e · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Paolo Glorioso, Quentin Anthony, Yury Tokpanov, James Whittington, Jonathan Pilault, Adam Ibrahim, and Beren Millidge
Reference 12
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Observation 5827bea8-e2f5-4fc0-ac50-f3017293fa59 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Why do small language models underperform? Studying Language Model Saturation via the Softmax Bottleneck
Reference 13
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Observation 5fe2ea4d-b368-438d-9c34-eff553e03047 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training The Llama 3 Herd of Models
Reference 14
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Observation e357fd1e-b583-4fc4-b41d-8863f89cdc53 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Mistral 7B
Reference 15
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Observation 8e257326-75b0-4b0e-8204-617beb0d6ee4 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Adaptive Data Optimization: Dynamic Sample Selection with Scaling Laws
Reference 16
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Observation 89d5f78d-2df8-44a9-9882-61348e07e846 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Scaling Laws for Neural Language Models
Reference 17
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Observation 5ddd77f2-d528-43cb-b4dc-f5824a7ed1da · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Downstream Datasets Make Surprisingly Good Pretraining Corpora
Reference 18
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Observation 9a12fec1-1f79-4c10-8444-b4d7206b91b3 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training A Diversity-Promoting Objective Function for Neural Conversation Models
Reference 19
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Observation 23b9081d-2131-494b-a5fd-80b5a08b5111 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training RegMix: Data Mixture as Regression for Language Model Pre-training
Reference 21
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Observation 6119b7e9-03cc-420c-8198-ee7929aee534 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Rephrasing the Web: A Recipe for Compute and Data-Efficient Language Modeling
Reference 22
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Observation 44c5a5b8-c283-45be-956f-065425973391 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training OLMoE: Open Mixture-of-Experts Language Models
Reference 23
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Observation 93cb03ac-6bab-406d-b554-468247dd7f54 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training 2 OLMo 2 Furious
Reference 24
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Observation 0e3c9fc1-d6c2-4106-9c37-4bac7b08cd4a · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Data, Data Everywhere: A Guide for Pretraining Dataset Construction
Reference 25
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No event found in the named queried sources as of 2026-08-06T06:34:29.942622+00:00.
Observation 32da7489-51d8-4fe6-8351-1654f7de2af6 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training ZeRO: Memory Optimizations Toward Training Trillion Parameter Models
Reference 26
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Observation 6739f4ac-2bbc-4dc4-ac02-d695dcfdcde5 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training DeepSeekMath: Pushing the Limits of Mathematical Reasoning in Open Language Models
Reference 27
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Observation 2a8aa4d1-3820-4d9f-9b86-27663c35ac52 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Dolma: an Open Corpus of Three Trillion Tokens for Language Model Pretraining Research
Reference 28
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Observation 183b2ff1-2632-41bc-b5af-4c1a8308a847 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Qwen2.5 Technical Report
Reference 29
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Observation ef31d0b3-fa9a-46c8-b56c-d30b7e1a2402 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Data Mixing Laws: Optimizing Data Mixtures by Predicting Language Modeling Performance
Reference 30
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Observation 5b186594-ea56-4032-b466-0f044ac360ab · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training It is trained with AdamW (Loshchilov & Hutter, 2017), using a sequence length of 8192 tokens and 256 sequences par minibatch, for a total of 2.1M tokens
Reference 31
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Observation dfef40b5-34fa-4761-8662-c3fc6d9859b2 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Unresolved cited work
Reference 32
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Observation 9451691a-d894-4242-85e4-8faa3b7bf930 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training We also conducted ablations on classifier training, comparing binary classification with regression and exploring up-sampling vs
Reference 33
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No event found in the named queried sources as of 2026-08-06T06:34:29.942622+00:00.
Observation b34aa0aa-8ecf-47b2-a85d-be46e000181d · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Question:
Reference 34
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No event found in the named queried sources as of 2026-08-06T06:34:29.942622+00:00.
Observation 9dcf3fd6-4d6b-4227-a543-c3c799165923 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Language models are few-shot learners.Advances in neural information processing systems, 33:1877–1901,
Reference 1950
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Observation 93e6082f-3a78-42ea-b405-969c83a9a2f7 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training ScalingFilter: Assessing Data Quality through Inverse Utilization of Scaling Laws
Reference 2015
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Observation f5b23fb9-4805-4d89-8d05-f9945896ddbb · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Scaling Parameter-Constrained Language Models with Quality Data
Reference 2020
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Observation 1750ef90-b37e-47b8-aae6-84a7d3c63dfc · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training Instruction Pre-Training: Language Models are Supervised Multitask Learners
Reference 2023
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Observation 13e3b9ac-5f4b-409c-9d2a-c78bebc28867 · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training MIND: Math Informed syNthetic Dialogues for Pretraining LLMs
Reference 2024
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Observation 7cccc167-9e29-4ab5-bfb1-bc9ddb9eec1b · outbound
Using Scaling Laws for Data Source Utility Estimation in Domain-Specific Pre-Training DELIFT: Data Efficient Language model Instruction Fine Tuning
Reference 2025
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No inbound Pith citation observations are available.