Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-03T20:26:58.841866Z
Paper Citation Record · LEDGER
As of 21 August 2026, this Paper Citation Record lists 39 of 39 outbound references and 1 inbound Pith citation observation for arXiv:2511.20102.
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 2026-08-03T20:26:58.841866Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-20T06:33:59.587034+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-01T02:55:55.168098Z
A source-named dated measurement, never combined with another source.
Source: cited_works
39 of 39 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 2a356653-4ea8-4e1b-a107-deca93b04064 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space RepoCoder: Repository-level code completion through iterative retrieval and generation
Reference 1
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Observation 51e73469-61e7-4e73-8154-10c059e3cb70 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space SWE-bench: Can language models resolve real-world github issues? InThe Twelfth International Conference on Learning Representations, 2024
Reference 2
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Observation a359517d-e8fe-49c5-b6dc-7cf31dcf5dd3 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space OpenAI o1 System Card
Reference 3
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Observation cfec3f38-2d17-445f-88db-b67548091657 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space DeepSeek-R1: Incentivizing Reasoning Capability in LLMs via Reinforcement Learning
Reference 4
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Observation 93ae988c-d204-4e76-8d44-92f483953e53 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space DeepResearcher: Scaling deep research via reinforcement learning in real-world environments
Reference 5
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Observation c23ae301-0286-43d0-98de-a0abe18a4c88 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Qwen2.5-1M Technical Report
Reference 6
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Observation 4378f1c6-97d9-46ba-89de-016d8a5aae22 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Efficient attention mechanisms for large language models: A survey, 2025
Reference 7
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Observation a4978751-50b7-4bae-b1ff-a57c17ba0049 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space InfLLM: Training-free long-context extrapolation for LLMs with an efficient context memory
Reference 8
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Observation fc1ec184-7f2e-44bc-9dbd-40d71ecb1d68 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Efficient streaming language models with attention sinks
Reference 9
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Observation 9f842d74-6e69-4460-ae91-d6c3290f0e49 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Abdi, Dongsheng Li, Chin-Yew Lin, Yuqing Yang, and Lili Qiu
Reference 10
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Observation 0ba24532-4334-4096-a549-310755b3a7a6 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Native sparse attention: Hardware-aligned and natively trainable sparse attention
Reference 11
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Observation b6471f1e-407f-4319-97ba-bc373cdd48ae · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space MoBA: Mixture of block attention for long-context LLMs
Reference 12
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Observation bd7dc74a-1242-4fe0-857c-5dbcd6c16cc0 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Generating Long Sequences with Sparse Transformers
Reference 13
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Observation cb55ba6f-abab-4106-a3a9-4c5939cacc30 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Longformer: The Long-Document Transformer
Reference 14
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Observation 70ece932-7827-4032-ad23-bd9a32b71982 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Language models are few-shot learners
Reference 15
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Observation c69861b1-2179-4760-8eaf-42ed8d239f7a · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space XAttention: Block sparse attention with antidiagonal scoring
Reference 16
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Observation aa396816-1a8b-4ea2-8b8e-59f291aa802d · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Quest: Query- aware sparsity for efficient long-context llm inference
Reference 17
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Observation 468b92de-4e2b-4c33-8ac4-e46054bc859b · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Spargeattention: Accurate and training-free sparse attention accelerating any model inference
Reference 18
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Observation 978f0d5d-f254-40f8-ac1e-6b73528c029b · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Gated attention for large language models: Non-linearity, sparsity, and attention-sink-free
Reference 19
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Unavailable: canonical work link unavailable.
Observation 185cfc53-2405-41ba-b190-71e690cbda3b · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Infllm-v2: Dense-sparse switchable attention for seamless short-to-long adaptation, 2025
Reference 20
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Observation 1f39bbbf-ee7d-4fbc-a758-93adb4117053 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Deepseek-v3.2-exp: Boosting long-context efficiency with deepseek sparse attention, 2025
Reference 21
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Observation 343d7faa-8490-49bb-9f08-55ebaa653f43 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Neural discrete representation learning
Reference 22
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Observation 14344ca0-4f15-4f08-bbd9-ad9936181a0a · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Training language models to follow instructions with human feedback
Reference 23
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Observation 312e74e3-1f68-4acf-a347-dbd0c204bdf3 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Fast R-CNN
Reference 24
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Observation 1badb153-3a0a-4ec1-8e95-8cb7864e031e · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Flashattention-2: Faster attention with better parallelism and work partitioning
Reference 25
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Observation afdb395c-767f-4c3a-bb79-6fe0657abf8c · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space The Llama 3 Herd of Models
Reference 26
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Observation d21ea959-c08b-4e19-8e01-fd44a2d547cc · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space SmolLM2: When smol goes big — data-centric training of a fully open small language model
Reference 27
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Observation 64fa50e5-efc8-44ec-acc1-c555546edad3 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Unresolved cited work
Reference 28
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Observation 041fc075-58e6-4f1c-a1b2-07adaed3c53b · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space PIQA: Reasoning about Physical Commonsense in Natural Language
Reference 29
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Observation 69759f69-382a-4a95-8de2-df1234edce60 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space HellaSwag: Can a machine really finish your sentence? InProceedings of the 57th Annual Meeting of the Association for Computational Linguistics, 2019
Reference 30
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Observation e28ee209-c4fb-4255-a529-ab3ddb0ca3e6 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Think you have Solved Question Answering? Try ARC, the AI2 Reasoning Challenge
Reference 31
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Observation 7e76a162-02ee-4d87-bd99-9e2cf59417b6 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Pointer sentinel mixture models
Reference 32
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Observation cb07d4e4-d60f-4c62-9ea2-d9da5a91b540 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space LongBench: A bilingual, multitask benchmark for long context understanding
Reference 33
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Observation 318f6f40-9ec1-445c-a24d-0f9b837a426c · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space RULER: What’s the real context size of your long-context language models? InFirst Conference on Language Modeling, 2024
Reference 34
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Observation 8366c321-7f2b-42cc-835e-168c3340e697 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Rae, Anna Potapenko, Siddhant M
Reference 35
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Observation 5fd507f8-a7bb-4933-ac4f-15bf8d910da7 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Smith, and Mike Lewis
Reference 36
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Observation 279b0f14-75d0-4847-8963-146fcfcac2ba · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Train short, test long: Attention with linear biases enables input length extrapolation
Reference 37
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Observation 9fc96259-379a-4c22-9238-f5d598e04f9d · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space The language model evaluation harness, 07 2024
Reference 38
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Observation a62a12fa-367a-4f29-9af5-0eab09a17b81 · outbound
SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space Liger-kernel: Efficient triton kernels for LLM training
Reference 39
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Observation 8ad8611a-7984-4426-b3e8-ef3e1b5ac2bc · inbound
CoSA: Accelerating Long-Context Inference via Proxy-Kernel Co-Designed Sparse Attention SSA: Sparse Sparse Attention by Aligning Full and Sparse Attention Outputs in Feature Space
Reference 66
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