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Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 62 of 62 outbound references and 0 inbound Pith citation observations for arXiv:2602.11973.
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62 of 62 outbound references displayed
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Observation 9b021a14-1c96-49b2-8417-d40e2ae34335 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis On calibration of modern neural networks
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Observation de3c1b45-9af9-4279-9fa2-dfac30f7a02b · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Leveraging uncertainty information from deep neural networks for disease detection.Scientific Reports, 7(1):1–14, 2017
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Uncertainty estimation in deep neural networks for dermoscopic image classification
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Neal.Bayesian Learning for Neural Networks, volume 118 ofLecture Notes in Statistics
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Dropout as a Bayesian approximation: Representing model uncertainty in deep learning
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Weight uncertainty in neural networks
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Practical variational inference for neural networks
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Concrete dropout
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Observation 0a419a61-0f5e-4cbb-9be7-347d85bbe7f1 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Uncertainty estimation in medical image classification: systematic review.JMIR Medical Informatics, 10(8):e36427, 2022
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Can your ai differentiate cats from covid-19? sample efficient uncertainty estimation for deep learning safety
Reference 11
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Observation 5451c2a7-18ba-4854-9fc1-85cc601d3d26 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Improving model calibration with accuracy versus uncertainty optimiza- tion
Reference 12
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Observation 3b593fc1-ebc7-41f3-aebe-fc154f46c8fb · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Chestx-ray8: Hospital-scale chest x-ray database and benchmarks on weakly-supervised classification and localization of common thorax diseases
Reference 13
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Observation 2a76902e-5f6a-45be-b027-7b62ade7bae9 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Chexpert: A large chest radiograph dataset with uncertainty labels and expert comparison
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Observation 6a792b8a-00e9-408b-82d2-ff9b7a327dc3 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Deep transfer learning models for medical diabetic retinopathy detection.Acta Informatica Medica, 27(5):327, 2019
Reference 15
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Observation ca823804-9833-489c-8bf6-6a34a33fa203 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis The HAM10000 dataset, a large collection of multi-source dermatoscopic images of common pigmented skin lesions.Scientific Data, 5(1):180161, 2018
Reference 16
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Observation 719064d1-7a77-47bb-9eea-f38e8e7fcc51 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Skin lesion classification and detection using machine learning techniques: A systematic review.Diagnostics, 13(19):3147, 2023
Reference 17
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Observation 33e0ff5e-4f5c-4509-8c72-2de75fe04403 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unreliable Monte Carlo dropout uncertainty estimation
Reference 18
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Observation a3337334-b764-4548-a028-9e4117500221 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Variational dropout and the local reparameterization trick
Reference 19
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Well-calibrated model uncertainty with temperature scaling for dropout variational inference
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Calibration of Model Uncertainty for Dropout Variational Inference
Reference 21
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Observation 52731476-d201-4105-9ad0-0b8067cd9931 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Staib, and John A
Reference 22
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Observation 599a0ff5-7084-401a-9b4e-56abef40e7c8 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Dropout injection at test time for post hoc uncertainty quantification in neural networks.Information Sciences, 645:119356, 2023
Reference 23
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Can you trust your model’s uncertainty? Evaluating predictive uncertainty under dataset shift
Reference 24
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis 'In-Between' Uncertainty in Bayesian Neural Networks
Reference 25
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Observation 71a9598a-8f1e-48d6-be51-8d88d59eab94 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Radial Bayesian neural networks: Beyond discrete support in large-scale Bayesian deep learning
Reference 26
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis How good is the bayes posterior in deep neural networks really? InInternational Conference on Machine Learning (ICML), pages 10248–10259, 2020
Reference 27
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Soft calibration objectives for neural networks
Reference 28
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Well-calibrated regression uncer- tainty in medical imaging with deep learning
Reference 29
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work
Reference 30
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Observation 3af89fd7-499d-4c81-9493-d86fce520998 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Hinton and Drew van Camp
Reference 31
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Observation a641ec1e-9015-4e54-8a43-03eee773dc1b · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Simple and scalable predictive uncertainty estimation using deep ensembles
Reference 32
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Observation e7ff93b0-9a4c-4b9d-98a8-ed2240a7a03c · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work
Reference 33
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Observation 21bf4bdb-7cd3-47bc-9c4b-2d78972a91ae · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis A baseline for detecting misclassified and out-of-distribution examples in neural networks
Reference 34
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Observation c46dfe53-7299-4675-8e2d-b9e94e048b8d · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis The role of chest radiography in confirming covid-19 pneumonia.BMJ, 370:m2426, 2020
Reference 35
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Automated detection of covid-19 cases using deep neural networks with x-ray images.Computers in Biology and Medicine, 121:103792, 2020
Reference 36
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Observation cd6f8853-deff-4b86-bf15-2214eaadecdb · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Distance-based detection of out-of-distribution silent failures for covid-19 lung lesion segmentation.Medical Image Analysis, 82:102596, 2022
Reference 37
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Observation 50d67da4-8f5c-45dc-8c37-0e22dd95d2af · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis MIMIC-CXR, a de-identified publicly available database of chest radiographs with free-text reports.Scientific Data, 6:317, 2019
Reference 38
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Observation 023b306c-e87d-4e55-9a6c-a7cbe2279d7e · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Covid-net: a tailored deep convolutional neural network design for detection of covid-19 cases from chest x-ray images.Scientific Reports, 10(1):19549, 2020
Reference 39
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Covid-19 chest x-ray dataset initiative
Reference 40
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Actualmed covid-19 chest x-ray dataset initiative
Reference 41
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Observation cc556091-2177-47c1-8f31-a23266a2cc5d · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work
Reference 42
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Observation c60750fe-83d7-4369-8088-cc193777a1ae · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Rsna pneumonia detection challenge dataset
Reference 43
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Observation 8cfdf224-3ca3-4156-b07b-1d52e73adf70 · outbound
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Reference 44
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Observation 80264da5-4885-4f2c-89fd-4a24f9b8af6f · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Stony brook university covid-19 positive cases (covid-19-ny-sbu).https://doi.org/10.7937/TCIA.BBAG-2923, 2021
Reference 45
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Observation 36f85991-d4c5-46c3-94bb-29a6a2c88a82 · outbound
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Reference 46
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Reference 47
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Reference 48
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Observation df6211f3-1fb6-4848-aa4e-69b0501f0bd3 · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work
Reference 49
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Reference 50
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Observation 7d9880d4-ede3-4c9d-bc90-e8111f928c8b · outbound
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Reference 51
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Observation 16b0f5ae-5f43-4987-8d41-341bfeeac513 · outbound
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Reference 53
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Observation 7a8ea983-3d97-4b42-81ed-d1810a4f5bd4 · outbound
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Reference 54
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Reference 55
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Observation 00d531ed-f477-43d3-a2ad-a7b97b405b3e · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis PhD thesis, University of Cambridge, 2016
Reference 56
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Observation 2e9c7202-f8d9-4328-acb0-356cfa5ddf1e · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Automatic detection and classification of diabetic retinopathy using the improved pooling function in the convolution neural network.Diagnostics, 13(15):2606, 2023
Reference 57
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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Alwakid, W
Reference 58
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Observation 19a95593-839d-42bd-b4f0-298f1edf129c · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Analysis of pre-trained convolutional neural network models in diabetic retinopathy detection through retinal fundus images
Reference 59
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Observation 0d963b91-828a-48ab-a780-f420b21a02ef · outbound
Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Dynamically weighted balanced loss: Class imbalanced learning and confidence calibration of deep neural networks.Diagnostics, 11(8):1242, 2021
Reference 60
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Observation 703f0bd1-38f2-4267-bc1c-97b2ff6e1f63 · outbound
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Reference 61
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Observation b1b9aba8-be8b-4a8a-a1d1-006239c547f0 · outbound
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Reference 62
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