Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-10T21:35:01.440719Z
Paper Citation Record · LEDGER
As of 18 August 2026, this Paper Citation Record lists 100 of 159 outbound references and 1 inbound Pith citation observation for arXiv:2501.04493.
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 2026-08-10T21:35:01.440719Z
One-hop event checks from named stored sources.
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Pith citing papers itemized under the disclosed page cap.
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A source-named dated measurement, never combined with another source.
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100 of 159 outbound references displayed
External citation measurements
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Observation 0a691dd1-7bcc-4550-971b-2772e653c48a · outbound
Reference 1
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Observation 0bf0387a-b84e-4c25-bf75-035872bee8c5 · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights Sable, Michelle Marie Echko, Lauren B
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Current treatment outcomes of congenital heart disease and future perspectives.” The Lancet Child & Adolescent Health 7, no
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights Improved surgical outcome after fetal diagnosis of hypoplastic left heart syndrome
Reference 4
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights Detection of transposition of the great arteries in fetuses reduces neonatal morbidity and mortality
Reference 5
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Observation 859294ec-eaa0-4caf-8bfc-78f923a8be3a · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights Prenatal detection of transposition of the great arteries reduces mortality and morbidity
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Observation d7ad957e-f161-46cc-bbd0-16ccf44f68ae · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights Prenatal diagnosis, birth location, surgical center, and neonatal mortality in infants with hypoplastic left heart syndrome
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Epidemiology of Congenital Heart Disease in Kazakhstan: Data from the Unified National Electronic Healthcare System 2014-2021.” J Clin Med Kaz 21.3 (2024): 49-55
Reference 8
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Reference 9
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Congenital heart disease in adults.” bmj 354 (2016)
Reference 10
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Observation a1439da6-12d1-4acd-b317-55d6bf7d7494 · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights A., Saleem Ullah Shahid, and Uzma Irfan
Reference 11
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Prevalence of congenital heart disease at live birth in China.” The Journal of pediatrics 204 (2019): 53-58
Reference 12
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Explainable and interpretable artificial intelligence in medicine: a systematic bibliometric review.” Discover Artificial Intelligence 4.1 (2024): 15
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Observation e4de8a3d-b96a-4210-8cf5-f1ef88806123 · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Artificial intelligence in clinical diagnosis: opportunities, challenges, and hype.” Jama (2023)
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Surpassing the Human Accuracy: Detecting Gallbladder Cancer from USG Images with Curriculum Learning (Supplementary Material).”
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Reference 17
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Deep convolutional neural network based analysis of liver tissues using computed tomography images.” Symmetry 14.2 (2022): 383
Reference 18
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Reference 19
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Healthcare revolution: Advances in AI-driven medical imaging and diagnosis.” Responsible and Explainable Artificial Intelligence in Healthcare
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Reference 21
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Reference 24
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Applications of artificial intelligence-powered prenatal diagnosis for congenital heart disease.” Frontiers in Cardiovas- cular Medicine 11 (2024): 1345761
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Reference 26
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Artificial intelligence, fetal echocardiography, and congenital heart disease.” (2021): 733-742
Reference 29
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Observation 77bcf305-b37a-465a-848f-72631cf585dd · outbound
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Reference 30
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Observation 4893af50-5de3-4948-bce3-ce12cdb04364 · outbound
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Reference 31
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Reference 32
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Reference 33
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Observation 36eea412-3591-46af-b283-34eed7894528 · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”A guide to conducting a systematic literature review of information systems research.” (2015)
Reference 34
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”PRISMA extension for scoping reviews (PRISMA-ScR): checklist and explanation.” Annals of internal medicine 169.7 (2018): 467-473
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Green supply chain management: A review and bibliometric analysis.” International journal of production economics 162 (2015): 101-114
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Reference 40
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Reference 41
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Reference 43
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Reference 44
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Reference 46
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Reference 47
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Localization and classification of heart beats in phonocardiography signals—a compre- hensive review.” EURASIP Journal on Advances in Signal Processing 2018.1 (2018): 1-27
Reference 48
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Artificial intelligence-assisted auscultation in detecting congenital heart disease.” European Heart Journal-Digital Health 2.1 (2021): 119-124
Reference 52
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Reference 53
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Reference 54
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Reference 55
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Reference 56
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Reference 58
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Reference 61
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Reference 64
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Reference 65
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Reference 69
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Reference 80
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Reference 81
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Predicting congenital heart defects: A comparison of three data mining methods.” PloS one 12.5 (2017): e0177811
Reference 83
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Reference 84
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Head pose estimation: A survey of the last ten years.” Signal Processing: Image Communication 99 (2021): 116479
Reference 85
Source-reported events for the cited work
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”A unified framework for head pose, age and gender classification through end-to-end face segmentation.” Entropy 21.7 (2019): 647
Reference 86
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Head pose estimation through multi-class face segmentation.” 2017 IEEE International Conference on Multimedia and Expo (ICME)
Reference 87
Source-reported events for the cited work
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Automatic gender classification through face segmentation.” Symmetry 11.6 (2019): 770
Reference 89
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Sentiment Analysis of Low-Resource Language Literature Using Data Processing and Deep Learning.” Computers, Mate- rials & Continua 79.1 (2024)
Reference 90
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Observation 145e4b1f-c3a8-4f20-a25a-1c2fea2dd0f0 · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights U., Khan, S., Khan, K
Reference 91
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Observation b7032dea-ad4a-4cdd-8e5b-e5571c3057a6 · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights U., Khan, S., Khan, K., Khan, M
Reference 92
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights ”Recognition of inscribed cursive Pashtu numeral through optimized deep learning.” PeerJ Computer Science 10 (2024): e2124
Reference 93
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No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.
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The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights U., Ullah, I., Khan, A
Reference 94
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Reference 95
Source-reported events for the cited work
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Observation 0d2bff04-6b31-4538-b6b4-dc8b81361c40 · outbound
Reference 96
Source-reported events for the cited work
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Observation c6b3454f-761a-4f56-9bb6-e8d76b0a04e2 · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights U., Chung, T.-S., Attique, M., Khan, K., El Khediri, S
Reference 97
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Observation 3578f8ba-cc07-4138-a4b8-0ff53d2ac78b · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights Unresolved cited work
Reference 98
Source-reported events for the cited work
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Observation 51adc2fa-f37f-4ee3-a7d6-b3494d21e828 · outbound
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Reference 99
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Reference 100
Source-reported events for the cited work
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Observation 52cfd9ae-fbb7-436f-b3f0-7dfb765478a5 · outbound
The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights & Schuller, B
Reference 101
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Observation 79e9794e-e5eb-43a0-a31b-5f54b6a7057b · outbound
Reference 102
Source-reported events for the cited work
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Observation 582f68b0-1d43-48f4-981c-27ea1817c7aa · inbound
Congenital Heart Disease recognition using Deep Learning/Transformer models The Role of Machine Learning in Congenital Heart Disease Diagnosis: Datasets, Algorithms, and Insights
Reference 5
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