Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T11:17:10.156567Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 41 of 41 outbound references and 0 inbound Pith citation observations for arXiv:2506.02965.
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 2026-08-07T11:17:10.156567Z
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
41 of 41 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 1081ef37-4f04-41eb-92e4-23bba293fb47 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Petals: Collaborative Inference and Fine-tuning of Large Models
Reference 1
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Observation a2c7c3cf-0d29-4626-abca-ef0fa1486b8c · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: Advances in Neural Information Processing Systems, pp
Reference 2
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Observation f53f3e5c-e452-46cd-b070-a6847bc89f8f · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Think you have Solved Question Answering? Try ARC, the AI2 Reasoning Challenge
Reference 3
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Observation f6939cc6-70b2-45ad-8ea2-cc40953bf0e3 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Improving Robustness to Model Inversion Attacks via Sparse Coding Architectures
Reference 4
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.
Observation 76f073f6-21b1-4e85-aabd-74f486939cb4 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs DiLoCo: Distributed Low-Communication Training of Language Models
Reference 5
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Observation 6e8d6431-d6fe-43b1-aa6a-da686f01f242 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: International Conference on Machine Learning, pp
Reference 6
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Observation df2ec17a-caf9-450a-ae6d-402c13b345a9 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Enhancing Privacy against Inversion Attacks in Federated Learning by using Mixing Gradients Strategies
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Observation 012b7fba-e5a1-4449-a8a0-615806982cca · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Unresolved cited work
Reference 8
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Observation 69d9afbc-4ce4-47c3-b709-652bbb20b523 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs 16937–16947 (2020)
Reference 9
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Observation 86b0eef8-709e-46d1-bb72-8bf4fa3f8ac9 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Unresolved cited work
Reference 10
Source-reported events for the cited work
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Observation 57ff99f8-5996-45f7-bc1f-b8347bbd1f6a · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Are We Done with MMLU?
Reference 11
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Observation 237cfcde-c3a0-445d-b948-a88ab4e4cbdd · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Training Compute-Optimal Large Language Models
Reference 12
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Observation 06122b9d-818d-4737-b4ab-3b42c1059e5c · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: Proceedings of Machine Learning and Systems, vol
Reference 13
Source-reported events for the cited work
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Observation bb39ab09-f000-46e2-98cf-a409e0b67f47 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Mixture of A Million Experts
Reference 14
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Observation df9181fb-b0b5-40aa-be1d-ff34cd7ccc2d · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: Advances in Neural Information Processing Systems, pp
Reference 15
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Observation ba614d7b-8d8a-4dd7-8829-f1a5d1e2b5cd · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Unresolved cited work
Reference 16
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 7594b3f9-7e5c-48a2-b7fa-3fe7c4d2ea57 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Applied Sciences 11(14), 6421 (2021) https://doi.org/10.3390/app11146421
Reference 17
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
Observation 2fce9b1d-3193-4cd1-a1dd-c6c5c68d4dfc · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: Advances in Neural Information Processing Systems, pp
Reference 18
Source-reported events for the cited work
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Observation 529f82d9-d3a6-4cfd-ac6c-ae7594b71f1e · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Scaling Laws for Neural Language Models
Reference 19
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Observation 09e97659-2529-4f5b-b29c-41061608af56 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs GShard: Scaling Giant Models with Conditional Computation and Automatic Sharding
Reference 20
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Observation 2f873a68-380c-46a6-9583-85a81d9a8343 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Seeing the Forest through the Trees: Data Leakage from Partial Transformer Gradients
Reference 21
Source-reported events for the cited work
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Observation b099a838-195d-42d6-9308-88c92178cf3f · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Can a Suit of Armor Conduct Electricity? A New Dataset for Open Book Question Answering
Reference 22
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Observation 874f3a21-7606-4f75-949d-d950eb54fb57 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: Artificial Intelligence and Statistics, pp
Reference 23
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Observation 54c22a71-80ff-44a9-8223-0bfb11ba5474 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: Advances in Neural Information Processing Systems, pp
Reference 24
Source-reported events for the cited work
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Observation 069ea858-3175-444d-a029-ff4227c72b03 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Carbon Emissions and Large Neural Network Training
Reference 25
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Observation 2ac3dc7f-f529-49da-a91b-08104af8705f · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: IEEE INFOCOM 2024-IEEE Conference on Computer Communications, pp
Reference 26
Source-reported events for the cited work
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Observation 95edd5ae-6af3-4f4b-b367-efbfeb95d49b · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: International Conference on Machine Learning, pp
Reference 27
Source-reported events for the cited work
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Observation b9a871a3-44a3-41b6-b497-278f413cd2af · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition, pp
Reference 28
Source-reported events for the cited work
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Observation 4b8d0850-7f89-443b-9cb9-278cd4d71119 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Outrageously Large Neural Networks: The Sparsely-Gated Mixture-of-Experts Layer
Reference 29
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Observation 90138849-b8ed-43e9-a292-d527cdea5ff1 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Megatron-LM: Training Multi-Billion Parameter Language Models Using Model Parallelism
Reference 30
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Observation 935f18c3-6575-4ef9-9a96-40a861d0ada3 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Challenging BIG-Bench Tasks and Whether Chain-of-Thought Can Solve Them
Reference 31
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Observation 4dac0363-9981-476a-b95c-ff590d84678c · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: 2017 IEEE Symposium on Security and Privacy (SP), pp
Reference 32
Source-reported events for the cited work
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Observation 79bba974-e0e5-431f-b7fd-71a4374c9c40 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs The Computational Limits of Deep Learning
Reference 33
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Observation 6877ec26-9612-4232-8c1f-2c8870489a9e · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs IEEE Transactions on Information Forensics and Security 15(8), 3454–3469 (2020) https://doi.org/10.1109/TIFS.2020.2988575
Reference 34
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Observation c706d482-e999-4e57-a63f-98421956458f · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: 2021 IEEE 41st International Conference on Distributed Computing Systems (ICDCS), pp
Reference 35
Source-reported events for the cited work
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Observation 9bdff0d5-ab11-46bc-b5a8-90b5c01dcc2f · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs Emergent Abilities of Large Language Models
Reference 36
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Unavailable: canonical work link unavailable.
Observation 25b2a94a-3329-4f80-8261-3a16cfb17f28 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: 2024 IEEE Inter- national Parallel and Distributed Processing Symposium (IPDPS), pp
Reference 37
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.
Observation 14fa1b8e-c9e3-4b9e-bee5-e79f7b5912ee · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs AGIEval: A Human-Centric Benchmark for Evaluating Foundation Models
Reference 38
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Observation 4d45cbba-bcfb-48e8-b82d-d9d1ddea45b1 · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs https://arxiv.org/abs/2505.09343
Reference 39
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Observation 70ad9a15-c71b-4d7a-90cf-f4711637e44f · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs A Survey on Gradient Inversion: Attacks, Defenses and Future Directions
Reference 40
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Unavailable: canonical work link unavailable.
Observation 9083ae89-ab90-4b0f-9652-4fdebe13becc · outbound
PC-MoE: Memory-Efficient and Privacy-Preserving Collaborative Training for Mixture-of-Experts LLMs In: Advances in Neural Information Processing Systems (2019) 20
Reference 41
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.
No inbound Pith citation observations are available.