Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-16T04:51:06.541523Z
Paper Citation Record · LEDGER
As of 18 August 2026, this Paper Citation Record lists 87 of 87 outbound references and 0 inbound Pith citation observations for arXiv:2505.00210.
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 2026-08-16T04:51:06.541523Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-18T06:34:40.430872+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
87 of 87 outbound references displayed
External citation measurements
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Observation 9e941b47-b067-4a1b-a48c-c918e43672d6 · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Smart manufacturing systems: state of the art and future trends
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Data- driven smart manufacturing
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Digital Twin-driven smart manufacturing: Connotation, reference model, applications and research issues
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review A review of in-situ monitoring and process control system in metal-based laser additive manufacturing
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review In-situ optical emis- sion spectroscopy of selective laser melting
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Aerial additive manufacturing with multiple autonomousrobots
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Cooperative aerial- ground multi-robot system for automated construction tasks
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Additivemanufacturing for space: status and promises
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Challenges in the technology development for additive manufacturing in space
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Spatial-temporal modeling using deep learning for real-time monitoring of additive manufacturing
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review AMTransformer: A Koopman theory-based transformer for learning additive manufacturing dynamics in laser processes
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Linking pyrometry to porosity in additively manufactured metals
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Processmonitoringdataset fromtheadditivemanufacturingmetrologytestbed(ammt): Overhang part x4
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Detection of keyhole pore formations in laser powder-bed fusion us- ing acoustic process monitoring measurements
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review An in situ crack detection approach in additive manufac- turing based on acoustic emission and machine learning
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Investigating statistical correlation between multi- modality in-situ monitoring data for powder bed fusion ad- ditive manufacturing
Reference 22
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Data-driven adaptive control for laser-based additive manufacturing with auto- matic controller tuning
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review On The Reliability Of Machine Learning Applications In Manufacturing Environments
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Observation e1c31d4d-b418-4b99-ae22-bbcc4c37837c · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review In-situ droplet inspection and closed-loop control system using machine learning for liquid metal jet printing
Reference 28
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Overcoming the limitations of adaptive control by means oflogic-basedswitching
Reference 29
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Precise motion control of wafer stages via adaptiveneuralnetworkandfractional-ordersuper-twisting algorithm
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review A machine learning framework for real-time inverse modeling and multi-objective process optimization of composites for active manufacturing con- trol
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Deep Neural Operator Enabled Digital Twin Modeling for Additive Manufacturing
Reference 35
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Real-Time Decision-Making for Digital Twin in Additive Manufacturing with Model Predictive Control using Time-Series Deep Neural Networks
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review In-Process monitoring of porosity during laser additive manufacturing process
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Auto-Encoding Variational Bayes
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review DeepInspect: An AI-Powered Defect Detection for Manufacturing Industries
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Reference 68
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Reference 69
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Reference 72
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Reference 73
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Reference 74
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Atransformer-baseddeepreinforcement learningapproachfordynamicparallelmachinescheduling problem with family setups
Reference 75
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Observation 5a74f1fe-7f97-4c92-8277-6346496dc5e4 · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Onlinedistor- tion simulation using generative machine learning models: A step toward digital twin of metallic additive manufactur- ing
Reference 76
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Virtual surface morphology generation of Ti-6Al-4V di- rected energy deposition via conditional generative adver- sarial network
Reference 77
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Diffusion policy: Visuomotor policy learning via action diffusion
Reference 78
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Observation 494648db-1aa8-4b05-948f-0db583032fec · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review RT-1: Robotics Transformer for Real-World Control at Scale
Reference 79
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Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Perceiver-actor: A multi-task transformer for robotic ma- nipulation
Reference 80
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Observation b26464fc-0a72-4e93-8673-94fdd986adac · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Transformer-based imitative reinforcement learning for multirobot path planning
Reference 81
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Reference 82
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Observation f3c0c0c4-b9ec-4fff-966c-003b1bd2dace · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Dall-e-bot: Introducing web-scale diffusion models to robotics
Reference 83
Source-reported events for the cited work
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Observation 4ede3958-afed-4ed7-92ab-49915f495ddf · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Towards autonomous system: flexible modu- lar production system enhanced with large language model agents
Reference 84
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Observation 0f84390a-431e-4002-a3a6-3fe9fbbd5950 · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Implicit behavioral cloning
Reference 85
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Observation 06c6d25c-bcce-45f5-911a-1cf2f05cf01e · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Machine learning-assisted in-situ adaptive strategies for the control of defects and anomalies in metal additive manufacturing
Reference 86
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Observation f4423bfd-c1f2-40a3-95b3-8a3d743b0ddc · outbound
Generative Machine Learning in Adaptive Control of Dynamic Manufacturing Processes: A Review Digital twin-based cyber physical production system architectural framework for personalized produc- tion
Reference 87
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No inbound Pith citation observations are available.