Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-15T18:51:57.531457Z
Paper Citation Record · LEDGER
As of 16 August 2026, this Paper Citation Record lists 100 of 211 outbound references and 2 inbound Pith citation observations for arXiv:2506.18525.
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 2026-08-15T18:51:57.531457Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-16T06:30:59.297886+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-15T16:46:02.910773Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-05-11T23:46:43.449626Z
100 of 211 outbound references displayed
External citation measurements
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Observation 562278f7-ed0e-423b-849a-a5767250a01d · outbound
Federated Learning from Molecules to Processes: A Perspective Schweidtmann, Erik Esche, Asja Fischer, Marius Kloft, Jens-Uwe Repke, Sebastian Sager, and Alexander Mitsos
Reference 1
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Reference 2
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Federated Learning from Molecules to Processes: A Perspective Lee, Srinivas Rangarajan, Leo Chiang, Bhushan Gopaluni, Artur M
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Observation 9e67806c-c59f-44ad-b289-fb3c5f7b8351 · outbound
Federated Learning from Molecules to Processes: A Perspective How to do impactful research in artificial intelligence for chemistry and materials science
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Observation 5f4bc769-e887-4881-acb2-0d75ff95f0de · outbound
Federated Learning from Molecules to Processes: A Perspective Deep Learning Scaling is Predictable, Empirically
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Federated Learning from Molecules to Processes: A Perspective Scaling Laws for Neural Language Models
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Federated Learning from Molecules to Processes: A Perspective Training Compute-Optimal Large Language Models
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Federated Learning from Molecules to Processes: A Perspective Scaling vision transformers
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Federated Learning from Molecules to Processes: A Perspective Advances and opportunities in machine learning for process data analytics
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Federated Learning from Molecules to Processes: A Perspective Maximizing informa- tion from chemical engineering data sets: Applications to machine learning
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Observation 6937aa21-ddcd-40a3-bff3-190887485e79 · outbound
Federated Learning from Molecules to Processes: A Perspective Federated learning in chemical engineering: A tutorial on a framework for privacy-preserving collaboration across distributed data sources
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Observation 8b0aa0a9-1337-4db9-9c8e-0e74ca600b07 · outbound
Federated Learning from Molecules to Processes: A Perspective The sampl2 blind prediction challenge: introduction and overview
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Observation 46980896-e917-44a5-bddd-95de5e1e66bc · outbound
Federated Learning from Molecules to Processes: A Perspective Freesolv: a database of experimental and calculated hydration free energies, with input files
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Observation c2698eb4-75cf-414c-b10e-70208163566a · outbound
Federated Learning from Molecules to Processes: A Perspective Dral, Matthias Rupp, and O
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Federated Learning from Molecules to Processes: A Perspective Summit: benchmarking machine learning methods for reaction optimisation
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Observation 54634abf-29a7-47b0-98cc-97f3a524f850 · outbound
Federated Learning from Molecules to Processes: A Perspective Orderly: data sets and benchmarks for chemical reaction data
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Observation 0a36de57-af2c-49fc-ba53-5752c6d7d059 · outbound
Federated Learning from Molecules to Processes: A Perspective Fault detection and diagnosis in industrial systems
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Observation 4e839f70-a543-470f-814b-82823d35eb25 · outbound
Federated Learning from Molecules to Processes: A Perspective Perspectives on the integration between first-principles and data-driven modeling
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Observation eebd11ed-69f7-41d9-bde9-2f4c7bd40ca4 · outbound
Federated Learning from Molecules to Processes: A Perspective A review and perspective on hybrid modeling methodologies
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Observation b1e495f8-3e32-4695-a8a3-af8d72228f04 · outbound
Federated Learning from Molecules to Processes: A Perspective Physics- informed machine learning
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Federated Learning from Molecules to Processes: A Perspective Autonomous chemical research with large language models
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Federated Learning from Molecules to Processes: A Perspective Bran, Sam Cox, Oliver Schilter, Carlo Baldassari, Andrew D White, and Philippe Schwaller
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Observation 66e5d4c4-0ed7-43ba-adc2-50ccbe397295 · outbound
Federated Learning from Molecules to Processes: A Perspective Transfer learning for solvation free energies: From quantum chemistry to experiments
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Federated Learning from Molecules to Processes: A Perspective Fault detection and diagnosis based on transfer learning for multimode chemical processes
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Observation 72731e9b-c56a-48b1-98b7-1ae03aed1c69 · outbound
Federated Learning from Molecules to Processes: A Perspective Transfer learning for process fault diagnosis: Knowledge transfer from simulation to physical processes
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Federated Learning from Molecules to Processes: A Perspective Multi-fidelity data-driven design and analysis of reactor and tube simulations
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Federated Learning from Molecules to Processes: A Perspective Multi-fidelity graph neural networks for predicting toluene/water partition coefficients
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Federated Learning from Molecules to Processes: A Perspective Brendan McMahan, Eider Moore, Daniel Ramage, Seth Hampson, and Blaise Agüera y Arcas
Reference 29
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Federated Learning from Molecules to Processes: A Perspective Brendan McMahan, Brendan Avent, Aurelien Bellet, and Sen Zhao
Reference 30
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Federated Learning from Molecules to Processes: A Perspective Federated Learning in Practice: Reflections and Projections
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Observation 31cd28e8-8aea-4cc5-8ba0-96110ccb2c3f · outbound
Federated Learning from Molecules to Processes: A Perspective Recent advances on federated learning: A systematic survey
Reference 32
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Observation 91506800-ef06-4e5b-ad27-67d4ba2f9319 · outbound
Federated Learning from Molecules to Processes: A Perspective A survey on federated learning: challenges and applications
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Observation da75d912-a499-4577-abd4-6eae3aaf5b02 · outbound
Federated Learning from Molecules to Processes: A Perspective H Ngai, and Thiemo V oigt
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Observation b706ec0a-26ce-45bb-b51f-c53b757738b1 · outbound
Federated Learning from Molecules to Processes: A Perspective The future of digital health with federated learning
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Observation 2f87a6bb-ca55-42f7-a0af-fc5b609efab0 · outbound
Federated Learning from Molecules to Processes: A Perspective Nguyen, Quoc-Viet Pham, Pubudu N
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Observation 800c5034-d5b1-49d6-b4ab-24d3b9bf03c8 · outbound
Federated Learning from Molecules to Processes: A Perspective Rawat, and Vladimir Vlassov
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Observation f13c39f3-2464-40b2-a6d8-63d6404c734f · outbound
Federated Learning from Molecules to Processes: A Perspective Göller, Yves Moreau, Mathieu N
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Observation 49878795-b5d7-47f5-a5d5-e8ccc5a306dd · outbound
Federated Learning from Molecules to Processes: A Perspective Applied Federated Learning: Improving Google Keyboard Query Suggestions
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Observation b7160d00-9b89-4c6b-8d35-3f13801b31d9 · outbound
Federated Learning from Molecules to Processes: A Perspective The Future of Large Language Model Pre-training is Federated
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Federated Learning from Molecules to Processes: A Perspective Federated learning for computational pathology on gigapixel whole slide images
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Federated Learning from Molecules to Processes: A Perspective Federated learning for medical image analysis: A survey
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Federated Learning from Molecules to Processes: A Perspective Anger, Chris Barber, Richard J
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Federated Learning from Molecules to Processes: A Perspective A review of federated learning in energy systems
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Federated Learning from Molecules to Processes: A Perspective A review of federated learning in renewable energy applica- tions: Potential, challenges, and future directions
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Observation 834c2014-773a-470e-827b-d3730cdc9dec · outbound
Federated Learning from Molecules to Processes: A Perspective Cooperative optimal power flow with flexible chemical process loads
Reference 97
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Observation 0f360032-18a1-43fe-9ab8-8ad7c4db8dd9 · outbound
Federated Learning from Molecules to Processes: A Perspective Toward distributed energy services: Decentralizing optimal power flow with machine learning.IEEE Transactions on Smart Grid, 11(2):1296–1306, 2019
Reference 98
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Reference 99
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Reference 100
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Federated Learning from Molecules to Processes: A Perspective Survey on ai and machine learning techniques for microgrid energy management systems
Reference 101
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Reference 80
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Privacy-Preserving Federated Learning Framework for Distributed Chemical Process Optimization Federated Learning from Molecules to Processes: A Perspective
Reference 3
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