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Paper Citation Record · LEDGER

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis

As of 21 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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pith.paper-citation-record.v1
2602.11973 v2

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Outbound references

Observation 9b021a14-1c96-49b2-8417-d40e2ae34335 · outbound

This paper cites On calibration of modern neural networks.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis On calibration of modern neural networks

Reference 1

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This paper cites Leveraging uncertainty information from deep neural networks for disease detection.Scientific Reports, 7(1):1–14, 2017.

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

Reference 2

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This paper cites Uncertainty estimation in deep neural networks for dermoscopic image classification.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Uncertainty estimation in deep neural networks for dermoscopic image classification

Reference 3

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work

Reference 4

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This paper cites Neal.Bayesian Learning for Neural Networks, volume 118 ofLecture Notes in Statistics.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Neal.Bayesian Learning for Neural Networks, volume 118 ofLecture Notes in Statistics

Reference 5

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This paper cites Dropout as a Bayesian approximation: Representing model uncertainty in deep learning.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Dropout as a Bayesian approximation: Representing model uncertainty in deep learning

Reference 6

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Weight uncertainty in neural networks

Reference 7

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This paper cites Practical variational inference for neural networks.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Practical variational inference for neural networks

Reference 8

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This paper cites Concrete dropout.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Concrete dropout

Reference 9

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This paper cites Uncertainty estimation in medical image classification: systematic review.JMIR Medical Informatics, 10(8):e36427, 2022.

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

Reference 10

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This paper cites Can your ai differentiate cats from covid-19? sample efficient uncertainty estimation for deep learning safety.

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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This paper cites Improving model calibration with accuracy versus uncertainty optimiza- tion.

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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This paper cites Chestx-ray8: Hospital-scale chest x-ray database and benchmarks on weakly-supervised classification and localization of common thorax diseases.

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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This paper cites Chexpert: A large chest radiograph dataset with uncertainty labels and expert comparison.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Chexpert: A large chest radiograph dataset with uncertainty labels and expert comparison

Reference 14

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This paper cites Deep transfer learning models for medical diabetic retinopathy detection.Acta Informatica Medica, 27(5):327, 2019.

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

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This paper cites The HAM10000 dataset, a large collection of multi-source dermatoscopic images of common pigmented skin lesions.Scientific Data, 5(1):180161, 2018.

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

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This paper cites Skin lesion classification and detection using machine learning techniques: A systematic review.Diagnostics, 13(19):3147, 2023.

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

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This paper cites Unreliable Monte Carlo dropout uncertainty estimation.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unreliable Monte Carlo dropout uncertainty estimation

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Variational dropout and the local reparameterization trick

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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

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Staib, and John A

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This paper cites Dropout injection at test time for post hoc uncertainty quantification in neural networks.Information Sciences, 645:119356, 2023.

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

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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

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis 'In-Between' Uncertainty in Bayesian Neural Networks

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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

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This paper cites How good is the bayes posterior in deep neural networks really? InInternational Conference on Machine Learning (ICML), pages 10248–10259, 2020.

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

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Soft calibration objectives for neural networks

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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

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Hinton and Drew van Camp

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Simple and scalable predictive uncertainty estimation using deep ensembles

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Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work

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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

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This paper cites The role of chest radiography in confirming covid-19 pneumonia.BMJ, 370:m2426, 2020.

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

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This paper cites Automated detection of covid-19 cases using deep neural networks with x-ray images.Computers in Biology and Medicine, 121:103792, 2020.

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

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Observation cd6f8853-deff-4b86-bf15-2214eaadecdb · outbound

This paper cites Distance-based detection of out-of-distribution silent failures for covid-19 lung lesion segmentation.Medical Image Analysis, 82:102596, 2022.

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

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source=pdf_text observed=2026-08-03T00:02:03.815232Z digest=sha256:5e5f695a71a17736325c47789b03118e813a9ec3b4876d07ad345b8ac909b8bf

Observation 50d67da4-8f5c-45dc-8c37-0e22dd95d2af · outbound

This paper cites MIMIC-CXR, a de-identified publicly available database of chest radiographs with free-text reports.Scientific Data, 6:317, 2019.

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

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source=pdf_text observed=2026-08-03T00:02:03.817941Z digest=sha256:ed6e17640e4dd3aca24b1297c84e0a3974fa5c8cdad7368b1f0cd7ceca698048

Observation 023b306c-e87d-4e55-9a6c-a7cbe2279d7e · outbound

This paper cites 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.

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

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source=pdf_text observed=2026-08-03T00:02:03.820590Z digest=sha256:538d2f80f80d379cf06d1b39c86723142b2396a4398a8d0752b27aa933014bfa

Observation 791f71b1-cb67-4cc3-9f03-19ecfa6dabcd · outbound

This paper cites Covid-19 chest x-ray dataset initiative.

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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source=pdf_text observed=2026-08-03T00:02:03.823463Z digest=sha256:6fe32ec0624688a7a145c5dfe0329a249c499842b8f73c90a518c90b6df4b205

Observation 91986c92-829c-473d-b13c-c9c22f6b302f · outbound

This paper cites Actualmed covid-19 chest x-ray dataset initiative.

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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source=pdf_text observed=2026-08-03T00:02:03.826133Z digest=sha256:6644ab48791dbdde9651c3c3cfbe17c7c86f6d8fc6242f86192d60d8d78bb802

Observation cc556091-2177-47c1-8f31-a23266a2cc5d · outbound

This paper cites an unresolved cited work.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work

Reference 42

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source=pdf_text observed=2026-08-03T00:02:03.828458Z digest=sha256:6d844254e48d4312a9ed90abb978903dbe3116af86d2b53bb16ee9707a6bdd6b

Observation c60750fe-83d7-4369-8088-cc193777a1ae · outbound

This paper cites Rsna pneumonia detection challenge dataset.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Rsna pneumonia detection challenge dataset

Reference 43

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source=pdf_text observed=2026-08-03T00:02:03.831132Z digest=sha256:a7c63be19605c3901cf5aeb48820ab5129fa566867fe1fceb2f00236d504b829

Observation 8cfdf224-3ca3-4156-b07b-1d52e73adf70 · outbound

This paper cites Saborit, Joaquim Á.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Saborit, Joaquim Á

Reference 44

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source=pdf_text observed=2026-08-03T00:02:03.833664Z digest=sha256:2d296e8fb3cb4ac26a0ab2f2bf375d24f07063e302644d5e7d066b6060572dc3

Observation 80264da5-4885-4f2c-89fd-4a24f9b8af6f · outbound

This paper cites Stony brook university covid-19 positive cases (covid-19-ny-sbu).https://doi.org/10.7937/TCIA.BBAG-2923, 2021.

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

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source=pdf_text observed=2026-08-03T00:02:03.836503Z digest=sha256:0ae5c397b10003151bff1a78e96fa8e0dcfebb1f693940aaddddb8c3606b2537

Observation 36f85991-d4c5-46c3-94bb-29a6a2c88a82 · outbound

This paper cites Analysis of the clever hans effect in covid-19 detection using chest x-ray images and bayesian deep learning.Biomedical Signal Processing and Control, 90:105831, 2024.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Analysis of the clever hans effect in covid-19 detection using chest x-ray images and bayesian deep learning.Biomedical Signal Processing and Control, 90:105831, 2024

Reference 46

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source=pdf_text observed=2026-08-03T00:02:03.839058Z digest=sha256:05e01619b7ed0f90337520d1ac94a4288c793ad489a8be6ba2853e60e732dcac

Observation 142637c9-f041-4f0d-b842-a6563faac3c1 · outbound

This paper cites OpenOOD v1.5: Enhanced benchmark for out-of-distribution detection.Journal of Data-centric Machine Learning Research, 2, 2024.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis OpenOOD v1.5: Enhanced benchmark for out-of-distribution detection.Journal of Data-centric Machine Learning Research, 2, 2024

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source=pdf_text observed=2026-08-03T00:02:03.841564Z digest=sha256:ad261991d70d943fe4e7938b5b7630a3f1a1e47b6f01208439731c73a62666ba

Observation 062da1c4-0215-49e3-ae62-be02662b2d83 · outbound

This paper cites Learning Confidence for Out-of-Distribution Detection in Neural Networks.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Learning Confidence for Out-of-Distribution Detection in Neural Networks

Reference 48

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source=pdf_text observed=2026-08-03T00:02:03.844651Z digest=sha256:efb71630417b95b298ee1fc6bfe53b8e18fd70fc726816d8aa4e4b25133bbb8b

Observation df6211f3-1fb6-4848-aa4e-69b0501f0bd3 · outbound

This paper cites an unresolved cited work.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work

Reference 49

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source=pdf_text observed=2026-08-03T00:02:03.847947Z digest=sha256:242f58fe898720821ae7912e73901c73ba67ad91d0ffa35ab1a86bba95563886

Observation f2f50551-c61a-4df2-b514-665156ed68e9 · outbound

This paper cites On the Use of Mahalanobis Distance for Out-of-distribution Detection with Neural Networks for Medical Imaging.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis On the Use of Mahalanobis Distance for Out-of-distribution Detection with Neural Networks for Medical Imaging

Reference 50

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source=pdf_text observed=2026-08-03T00:02:03.851005Z digest=sha256:a5d38bbb34081f233d47aea2259d7020e81cd4d3e8fadbc2b3c9786cfe07e3d9

Observation 7d9880d4-ede3-4c9d-bc90-e8111f928c8b · outbound

This paper cites an unresolved cited work.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Unresolved cited work

Reference 51

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source=pdf_text observed=2026-08-03T00:02:03.853567Z digest=sha256:1e9d9db5e67a0c2d902ac76b266fb6826d119ae2174820c4b98b71c2dbe923e5

Observation 7dc0e006-5a46-4d20-ab77-cf0f3355c038 · outbound

This paper cites Kernel PCA for out-of-distribution detection.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Kernel PCA for out-of-distribution detection

Reference 52

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source=pdf_text observed=2026-08-03T00:02:03.856721Z digest=sha256:0d6b0f11a4f9f308449faaa6997a397a821b77a75fb11f1639cc9f0a424a7dfc

Observation 16b0f5ae-5f43-4987-8d41-341bfeeac513 · outbound

This paper cites Alshalali, and Zaffar Ahmed Shaikh.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Alshalali, and Zaffar Ahmed Shaikh

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source=pdf_text observed=2026-08-03T00:02:03.859144Z digest=sha256:cd04f0e4dea07d8fac400944f081df83755a80c277da65082f13efc5ddaee50b

Observation 7a8ea983-3d97-4b42-81ed-d1810a4f5bd4 · outbound

This paper cites APTOS 2019 blindness detection.https://www.kaggle.com/c/a ptos2019-blindness-detection, 2019.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis APTOS 2019 blindness detection.https://www.kaggle.com/c/a ptos2019-blindness-detection, 2019

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source=pdf_text observed=2026-08-03T00:02:03.861976Z digest=sha256:73bb30acd851710ffc30b7d02aaa8725f81f8ac1d73ed79da814a349dbbfb4d4

Observation f2463518-2f9b-494c-a68c-fb90e070a8b0 · outbound

This paper cites Diabetic retinopathy 224x224 gaussian filtered.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Diabetic retinopathy 224x224 gaussian filtered

Reference 55

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source=pdf_text observed=2026-08-03T00:02:03.864502Z digest=sha256:7f9e67f0fac3b6f10cf4414f5d34cc6d4739a33351c84c3f3a83adbb41ad609b

Observation 00d531ed-f477-43d3-a2ad-a7b97b405b3e · outbound

This paper cites PhD thesis, University of Cambridge, 2016.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis PhD thesis, University of Cambridge, 2016

Reference 56

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source=pdf_text observed=2026-08-03T00:02:03.866945Z digest=sha256:4fffb27a63d1aa1c9ece6a1ed2385119030968979a163b25f671e8a28e3f17b5

Observation 2e9c7202-f8d9-4328-acb0-356cfa5ddf1e · outbound

This paper cites Automatic detection and classification of diabetic retinopathy using the improved pooling function in the convolution neural network.Diagnostics, 13(15):2606, 2023.

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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source=pdf_text observed=2026-08-03T00:02:03.869593Z digest=sha256:32e79a9a4c1531d216999ab6ab5c4fbd9a5f8d42d71d0c60f0a7b44e2dae1ad5

Observation 54819b59-4ddc-423f-a119-72eb69504a43 · outbound

This paper cites Alwakid, W.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Alwakid, W

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source=pdf_text observed=2026-08-03T00:02:03.872317Z digest=sha256:d91cde4d38b7cf275002bca6cd2be254fbaae9f44f990b39518213a1f13fcc5d

Observation 19a95593-839d-42bd-b4f0-298f1edf129c · outbound

This paper cites Analysis of pre-trained convolutional neural network models in diabetic retinopathy detection through retinal fundus images.

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

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source=pdf_text observed=2026-08-03T00:02:03.874887Z digest=sha256:fdd4648b857934d9bd156f2f82c68d875e285f3b4f42dc13d8987d05a3774bac

Observation 0d963b91-828a-48ab-a780-f420b21a02ef · outbound

This paper cites Dynamically weighted balanced loss: Class imbalanced learning and confidence calibration of deep neural networks.Diagnostics, 11(8):1242, 2021.

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

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source=pdf_text observed=2026-08-03T00:02:03.877548Z digest=sha256:bbda02d6e9e3f4c0c4414b177c1c3d6137607ebad75fac12e1aa199e8cd1106e

Observation 703f0bd1-38f2-4267-bc1c-97b2ff6e1f63 · outbound

This paper cites Specifying Weight Priors in Bayesian Deep Neural Networks with Empirical Bayes.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Specifying Weight Priors in Bayesian Deep Neural Networks with Empirical Bayes

Reference 61

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source=pdf_text observed=2026-08-03T00:02:03.879842Z digest=sha256:9924b2ff41e1d9bcf841a04db1dead879347f55184b50aab177d69897b6a06f9

Observation b1b9aba8-be8b-4a8a-a1d1-006239c547f0 · outbound

This paper cites Pre-train your loss: Easy bayesian transfer learning with informative priors.Advances in Neural Information Processing Systems, 35:27706–27715, 2022.

Confidence-Uncertainty Boundary Calibration for Bayesian Deep Learning in Medical Image Analysis Pre-train your loss: Easy bayesian transfer learning with informative priors.Advances in Neural Information Processing Systems, 35:27706–27715, 2022

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source=pdf_text observed=2026-08-03T00:02:03.882397Z digest=sha256:e0f83aaa6d23d5f0727149e0d0a4229399dbd582d3af9e5bbdb2eeeeaadaa0b1

Pith citing papers

No inbound Pith citation observations are available.