Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T17:56:44.153432Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 46 of 46 outbound references and 0 inbound Pith citation observations for arXiv:2507.10613.
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 2026-08-06T17:56:44.153432Z
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
A source-named dated measurement, never combined with another source.
Source: cited_works
46 of 46 outbound references displayed
External citation measurements
No source-named external measurement is stored.
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs Effective pruning of web-scale datasets based on complexity of concept clusters
Reference 1
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Reference 3
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Reference 4
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Reference 9
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Reference 10
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs DeepSeek LLM: Scaling Open-Source Language Models with Longtermism
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Reference 12
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs Language models scale reliably with over-training and on downstream tasks
Reference 13
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs Unresolved cited work
Reference 14
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs Scaling Laws for Neural Machine Translation
Reference 15
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Reference 16
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs Scaling Laws and Interpretability of Learning from Repeated Data
Reference 18
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Reference 19
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Reference 20
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Reference 21
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs MiniCPM: Unveiling the Potential of Small Language Models with Scalable Training Strategies
Reference 22
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Reference 23
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Reference 24
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs One Epoch Is All You Need
Reference 26
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Reference 27
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Reference 28
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs Scaling Data-Constrained Language Models
Reference 29
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Reference 30
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Reference 31
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Reference 32
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Reference 33
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Reference 34
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Reference 35
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Sub-Scaling Laws: On the Role of Data Density and Training Strategies in LLMs Gemini: A Family of Highly Capable Multimodal Models
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Reference 38
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Reference 40
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Reference 41
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Reference 42
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Reference 43
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Reference 44
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Reference 47
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