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Paper Citation Record · LEDGER

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study

As of 22 August 2026, this Paper Citation Record lists 54 of 54 outbound references and 0 inbound Pith citation observations for arXiv:2602.22747.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2602.22747 v2

Coverage vector

measured 54 of 54 reference resolution

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Reference resolution

54 of 54 outbound references displayed

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External citation measurements

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Outbound references

Observation c3bd6f16-e267-4909-83a6-f8b5ad321457 · outbound

This paper cites Deep ensembles work, but are they necessary? Advances in Neural Information Processing Systems, 35: 0 33646--33660, 2022.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Deep ensembles work, but are they necessary? Advances in Neural Information Processing Systems, 35: 0 33646--33660, 2022

Reference 1

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This paper cites A non-specificity measure for convex sets of probability distributions.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study A non-specificity measure for convex sets of probability distributions

Reference 2

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This paper cites Disaggregated total uncertainty measure for credal sets.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Disaggregated total uncertainty measure for credal sets

Reference 3

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This paper cites Benchmarking Bayesian deep learning on diabetic retinopathy detection tasks.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Benchmarking Bayesian deep learning on diabetic retinopathy detection tasks

Reference 4

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Observation 6faf5003-6096-46df-9a2c-9f63573cc97d · outbound

This paper cites From detection of individual metastases to classification of lymph node status at the patient level: the camelyon17 challenge.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study From detection of individual metastases to classification of lymph node status at the patient level: the camelyon17 challenge

Reference 5

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This paper cites Weight uncertainty in neural network.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Weight uncertainty in neural network

Reference 6

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This paper cites Credal Bayesian deep learning.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Credal Bayesian deep learning

Reference 7

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Observation 9688dc0f-ff76-4290-ae86-fe13bdbf2b3f · outbound

This paper cites u gner, and Stephan G \.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study u gner, and Stephan G \

Reference 8

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This paper cites Integral imprecise probability metrics.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Integral imprecise probability metrics

Reference 9

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This paper cites Credal two-sample tests of epistemic uncertainty.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Credal two-sample tests of epistemic uncertainty

Reference 10

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Observation 5ac807a1-30d7-436b-aea2-fa47aa55b2c3 · outbound

This paper cites Quantifying epistemic predictive uncertainty in conformal prediction.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Quantifying epistemic predictive uncertainty in conformal prediction

Reference 11

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This paper cites Bayesian networks with imprecise probabilities: Theory and application to classification.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Bayesian networks with imprecise probabilities: Theory and application to classification

Reference 12

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Observation 5a78d92e-f356-4b8a-a8a0-17e8cb874b64 · outbound

This paper cites De Campos, Juan F.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study De Campos, Juan F

Reference 13

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This paper cites Representing partial ignorance.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Representing partial ignorance

Reference 14

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Masksembles for uncertainty estimation

Reference 15

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

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Dropout as a Bayesian approximation: Representing model uncertainty in deep learning

Reference 16

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Practical variational inference for neural networks

Reference 17

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This paper cites Transmission of information 1.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Transmission of information 1

Reference 18

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Deep residual learning for image recognition

Reference 19

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study u hn and Eyke H \

Reference 20

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This paper cites Aleatoric and epistemic uncertainty in machine learning: An introduction to concepts and methods.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Aleatoric and epistemic uncertainty in machine learning: An introduction to concepts and methods

Reference 21

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This paper cites Quantification of credal uncertainty in machine learning: A critical analysis and empirical comparison.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Quantification of credal uncertainty in machine learning: A critical analysis and empirical comparison

Reference 22

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Unresolved cited work

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This paper cites Hands-on Bayesian neural networks—a tutorial for deep learning users.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Hands-on Bayesian neural networks—a tutorial for deep learning users

Reference 24

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study A generalized deep learning framework for whole-slide image segmentation and analysis

Reference 25

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study CIFAR-10 (Canadian Institute For Advanced Research)

Reference 26

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Bayesian Hypernetworks

Reference 27

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Simple and scalable predictive uncertainty estimation using deep ensembles

Reference 28

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Packed ensembles for efficient uncertainty estimation

Reference 29

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study The enterprise of knowledge: An essay on knowledge, credal probability, and chance

Reference 30

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Position: Supervised classifiers answer the wrong questions for ood detection

Reference 31

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study o hr, Paul Hofman, Felix Mohr, and Eyke H \

Reference 32

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Predictive uncertainty estimation via prior networks

Reference 33

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This paper cites A unified evaluation framework for epistemic predictions.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study A unified evaluation framework for epistemic predictions

Reference 34

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Random-set neural networks

Reference 35

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Benchmarking common uncertainty estimation methods with histopathological images under domain shift and label noise

Reference 36

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Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Dropconnect is effective in modeling uncertainty of Bayesian deep networks

Reference 37

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This paper cites Benchmarking uncertainty disentanglement: Specialized uncertainties for specialized tasks.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Benchmarking uncertainty disentanglement: Specialized uncertainties for specialized tasks

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Observation b57124b6-1e67-42d9-a63c-a5f3941d8b2a · outbound

This paper cites Deep deterministic uncertainty: A new simple baseline.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Deep deterministic uncertainty: A new simple baseline

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This paper cites Second-order uncertainty quantification: A distance-based approach.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Second-order uncertainty quantification: A distance-based approach

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This paper cites o hr, Lisa Wimmer, Thomas Nagler, and Eyke H \.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study o hr, Lisa Wimmer, Thomas Nagler, and Eyke H \

Reference 41

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Observation 9b206e3a-199c-41b6-9656-0ff39b78f423 · outbound

This paper cites Ensemble-based uncertainty quantification: Bayesian versus credal inference.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Ensemble-based uncertainty quantification: Bayesian versus credal inference

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Observation c4800c3f-a59a-44d8-a876-e6b243b6d340 · outbound

This paper cites Uncertainty quantification for Bayesian optimization.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Uncertainty quantification for Bayesian optimization

Reference 43

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This paper cites Credal deep ensembles for uncertainty quantification.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Credal deep ensembles for uncertainty quantification

Reference 44

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This paper cites Credal ensemble distillation for uncertainty quantification, 2025 a.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Credal ensemble distillation for uncertainty quantification, 2025 a

Reference 45

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Observation 0f60447e-c8bb-4463-8b3a-97373b8302b3 · outbound

This paper cites Credal wrapper of model averaging for uncertainty estimation in classification.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Credal wrapper of model averaging for uncertainty estimation in classification

Reference 46

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Observation d3ce06e9-1caf-4cfa-b1e5-6469dc0d68df · outbound

This paper cites CreINNs : Credal-set interval neural networks for uncertainty estimation in classification tasks.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study CreINNs : Credal-set interval neural networks for uncertainty estimation in classification tasks

Reference 47

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Observation a7e3acd3-fe50-4f04-a3ec-1c2907f3268c · outbound

This paper cites A review of uncertainty representation and quantification in neural networks.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study A review of uncertainty representation and quantification in neural networks

Reference 48

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Observation cc2a532e-888e-413e-9dde-62165febef0c · outbound

This paper cites Learning Credal Ensembles via Distributionally Robust Optimization.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Learning Credal Ensembles via Distributionally Robust Optimization

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Observation 29d3fb7b-94a5-493e-8fe6-58979ca9a563 · outbound

This paper cites Navigating the waters of object detection: Evaluating the robustness of real-time object detection models for autonomous surface vehicles.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Navigating the waters of object detection: Evaluating the robustness of real-time object detection models for autonomous surface vehicles

Reference 50

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Observation 490bdc74-fdc4-4a9d-aac6-2b55a2f274fe · outbound

This paper cites Enhancing the dependability of autonomous surface vehicles through robustness benchmarking of real-time object detection models.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Enhancing the dependability of autonomous surface vehicles through robustness benchmarking of real-time object detection models

Reference 51

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Observation a99237bd-f863-4257-a641-2d5b6be1fb7c · outbound

This paper cites BatchEnsemble: An Alternative Approach to Efficient Ensemble and Lifelong Learning.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study BatchEnsemble: An Alternative Approach to Efficient Ensemble and Lifelong Learning

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Observation 36fce0a8-212c-4fa3-81ba-7bc3f1749507 · outbound

This paper cites Bayesian deep learning and a probabilistic perspective of generalization.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Bayesian deep learning and a probabilistic perspective of generalization

Reference 53

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Observation a8f256f8-559e-4084-bc66-88c2832b5945 · outbound

This paper cites Learning from the wisdom of crowds by minimax entropy.

Set-based v.s. Distribution-based Representations of Epistemic Uncertainty: A Comparative Study Learning from the wisdom of crowds by minimax entropy

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