Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-04T19:27:53.131940Z
Paper Citation Record · LEDGER
As of 5 August 2026, this Paper Citation Record lists 35 of 35 outbound references and 0 inbound Pith citation observations for arXiv:2509.09251.
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 2026-08-04T19:27:53.131940Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-04T06:34:03.388597+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
35 of 35 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation f3570eab-a432-4416-bd7c-2052ed46ae2a · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Unresolved cited work
Reference 1
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Observation cb9a6f55-f661-43c1-afc3-fc3feaba26ee · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Isermann
Reference 2
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Observation 59f8551a-1881-444c-a859-1b904cf52a83 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis SSD-Faster Net: A Hybrid Network for Industrial Defect Inspection
Reference 3
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Observation 00bf2243-b174-4205-b0e4-f6c9c95c9fe3 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Moraru, M
Reference 4
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Observation 3b019675-a2e2-45da-8720-ec09b5edf5bf · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Unresolved cited work
Reference 5
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Observation c17de84e-8089-4451-b566-1bc4fa75bd94 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Blasch, T
Reference 6
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Observation b62e2415-9a34-4969-a7dd-a218ca9521f2 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Unresolved cited work
Reference 7
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Unavailable: canonical work link unavailable.
Observation b531dc57-bd15-49b1-aec2-d7dafaf25fb8 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Image-based Freeform Handwriting Authentication with Energy-oriented Self-Supervised Learning
Reference 8
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Observation 824a90f7-0601-4048-abb5-ca34b09e892d · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Unresolved cited work
Reference 9
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Observation e1696e5e-1e6d-4640-ba3e-bccb76989d3b · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Camps-Valls
Reference 10
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Observation 9c76484c-ee4f-43b8-8ea0-97231860c81e · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Gupta, M
Reference 11
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Observation 2ede0c72-caa2-4495-af88-8efe5d227f69 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Unresolved cited work
Reference 12
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Observation 517d5a22-4cea-4d20-9c8b-520015b07aaf · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Advanc- ing complex wide-area scene understanding with hierarchical coresets selection.arXiv preprint arXiv:2507.13061, 2025
Reference 13
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Observation f68b55eb-5794-4bb2-8ebf-77a868c8a9fd · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Model-agnostic meta- learning for fast adaptation of deep networks
Reference 14
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Observation 718a71f3-72d5-46ac-898a-3c2061f6c667 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis On the Universality of Self-Supervised Learning
Reference 15
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Observation 0a3007e7-38d7-4814-8120-ea1c2fa698ef · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Rapid Learning or Feature Reuse? Towards Understanding the Effectiveness of MAML
Reference 16
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Unavailable: canonical work link unavailable.
Observation 74587ee0-6391-49d5-96df-24963d97c453 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Meta-Auxiliary Learning for Micro-Expression Recognition
Reference 17
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Observation 2a1b3568-d3cf-4040-b4d2-fb218c5a5a8d · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Towards task sampler learning for meta-learning
Reference 18
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Observation 8e921c97-a634-4d50-ab05-d67fea154a8a · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Prototypicalnetworksfor few-shot learning.Advances in neural information processing systems, 30, 2017
Reference 19
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Observation 36fbbe15-9d7b-492b-bd1b-0e674ab24d2d · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis On First-Order Meta-Learning Algorithms
Reference 20
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Unavailable: canonical work link unavailable.
Observation 1b63c472-d246-452e-922a-1c9a6dd3ab78 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Vibration-based condition monitoring: Industrial, aerospace and automotive applications
Reference 21
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Unavailable: canonical work link unavailable.
Observation 435d98b9-cdeb-48ae-b1da-6c2a4e9299d9 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Academic press, 2009
Reference 22
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Observation 4139bc85-462f-4f64-a2a2-e3578f0eaa24 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Bearing fault diagnosis based on multi-scale cnn and lstm network.Measurement, 103:5–12, 2017
Reference 23
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Observation bae74de7-3372-4f95-8903-2d635ae3c59f · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Noise-robust fault diagnosis method for rotating machin- ery based on time–frequency analysis and convolutional neural networks
Reference 24
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Unavailable: canonical work link unavailable.
Observation b6f86c43-0442-46d0-80f0-1e49c63fe224 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Time-frequency analysis in mechanical fault diagnosis–a review with applications.Mechanical Systems and Signal Processing, 121:209–237, 2018
Reference 25
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Observation 6ef370c9-4452-41e8-b754-8196a44b67f3 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Springer, 2006
Reference 26
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Observation 60795c95-89fd-43a8-84cf-6b69238b0e24 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis AwesomeMeta+: A Mixed-Prototyping Meta-Learning System Supporting AI Application Design Anywhere
Reference 27
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Unavailable: canonical work link unavailable.
Observation 7317e77c-a686-482e-a3d4-ad21b91602c2 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Tfpred: Learning discriminative representations from unlabeled data for few-label rotating machinery fault diagnosis.Control Engineering Practice, 146:105900, 2024
Reference 28
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Unavailable: canonical work link unavailable.
Observation 5477daac-db2f-49ee-81f8-d084e6e90d77 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis A simple framework for contrastive learning of visual representations
Reference 29
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Unavailable: canonical work link unavailable.
Observation 08953202-cf62-4c9b-bbc2-dab11f053b12 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Boot- strap your own latent-a new approach to self-supervised learning.Ad- vances in neural information processing systems, 33:21271–21284, 2020
Reference 30
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Unavailable: canonical work link unavailable.
Observation 00279a97-2356-4709-9cfc-8adbb53c7e8f · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Barlow twins: Self-supervised learning via redundancy reduction
Reference 31
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Observation 4b9d34ef-f0de-42ca-b2c2-c2ea36f958e9 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Learning to compare: Relation network for few-shot learning
Reference 32
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Observation bf9daec6-89ad-48d2-80a0-e520785aa1fd · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis FEDformer: Frequency enhanced decomposed transformer for long- term series forecasting.ICML, 2022
Reference 33
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Observation 2411a6fa-0e3c-4285-a394-a2f8ca99a791 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Timesnet: Temporal 2d-variation modeling for general time series analysis.ICLR, 2023
Reference 34
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Observation 8cbb8160-37c6-4437-8616-606d7d89e4b0 · outbound
Unsupervised Multi-Attention Meta Transformer for Rotating Machinery Fault Diagnosis Bearingfaultdiagnosisbase onmulti-scalecnnandlstmmodel.Journal of Intelligent Manufacturing, 32(4):971–987, 2021
Reference 35
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No inbound Pith citation observations are available.