Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T12:01:37.800538Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 43 of 43 outbound references and 0 inbound Pith citation observations for arXiv:2506.00918.
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 2026-08-07T12:01:37.800538Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+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
43 of 43 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation db6e3d29-2fc1-4c8a-aa66-609eea6a98e3 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Deep ensembles work, but are they necessary? Advances in Neural Information Processing Systems, 35: 0 33646--33660, 2022
Reference 1
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Observation f61ad08d-f3d0-40e5-a99d-555e8f01d23b · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Deep evidential regression
Reference 2
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Observation b59cf893-8eb8-49e8-b83d-14c402b2503b · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Test-time data augmentation for estimation of heteroscedastic aleatoric uncertainty in deep neural networks
Reference 3
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Observation 77572213-0e50-4b38-927b-02b4b4480268 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks The need for uncertainty quantification in machine-assisted medical decision making
Reference 4
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Observation 59781e63-57ef-45c2-91c5-5a31f0e73961 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Pitfalls of epistemic uncertainty quantification through loss minimisation
Reference 5
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Observation 750e4f78-a313-4280-82bd-ef0d3ea2de21 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks A Conceptual Introduction to Hamiltonian Monte Carlo
Reference 6
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Observation 6ade0756-5db8-47d2-a410-9adf0b52becf · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Weight uncertainty in neural network
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Observation ae4e5722-f0d4-4481-9cbe-1ae6bb6071c8 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Plausible uncertainties for human pose regression
Reference 8
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Observation c749340e-7b7f-4e0f-92e3-d49e64badba8 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Heteroscedastic kernel ridge regression
Reference 9
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Observation 429bb908-03b9-4ae7-a480-7015070e9844 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Stochastic gradient hamiltonian monte carlo
Reference 10
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Observation b4bff363-74f2-45b0-8842-08ab2d5b1a1c · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Repulsive deep ensembles are bayesian
Reference 11
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Observation 0b28696a-ac56-4d85-a2a6-4bec0985aa69 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Laplace redux-effortless bayesian deep learning
Reference 12
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Observation ec4decaf-3a97-490f-b42e-b571f93bcb2a · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Decomposition of uncertainty in bayesian deep learning for efficient and risk-sensitive learning
Reference 13
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Observation 8080c461-37c4-461a-b1fa-430b0e1ea083 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Aleatory or epistemic? does it matter? Structural safety, 31 0 (2): 0 105--112, 2009
Reference 14
Source-reported events for the cited work
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Observation 1835eb9a-ba7a-4272-a5b0-065fff3d51a8 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Reliable training and estimation of variance networks
Reference 15
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Observation 1e811725-d1b7-4fd3-8b98-69ef13a66605 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks O zg \"u n C i c ek, Ahmed Abdulkadir, Yassine Marrakchi, Anton B \
Reference 16
Source-reported events for the cited work
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Observation 71a098ab-9a9e-4b83-9796-2d5a3938608d · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Is MC Dropout Bayesian?
Reference 17
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Observation 565b9af0-768b-4136-9706-9d82a81d7471 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Dropout as a bayesian approximation: Representing model uncertainty in deep learning
Reference 18
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Observation f1fb954d-d19e-44cb-ac14-acb31df8429e · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Strictly proper scoring rules, prediction, and estimation
Reference 19
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Observation 111430f1-7c78-4223-a1b5-6205f91fff48 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Probabilistic backpropagation for scalable learning of bayesian neural networks
Reference 20
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Observation 8c24b270-d712-4455-9da0-a505a1ab8600 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Revisiting single image depth estimation: Toward higher resolution maps with accurate object boundaries
Reference 21
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Observation 5e7e759e-f2f7-454c-9b06-c9926a9fa201 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks The apolloscape dataset for autonomous driving
Reference 22
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Observation e8107f38-8ffc-4b56-a7a8-62095a119bdf · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks o lkopf, Peter B \
Reference 23
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Observation c0c5ddd3-62b5-45e7-b474-817a7b2aa6db · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Is Epistemic Uncertainty Faithfully Represented by Evidential Deep Learning Methods?
Reference 24
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Observation 892c0312-f8bf-46ec-be96-aed6a35f4005 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks What uncertainties do we need in bayesian deep learning for computer vision? Advances in neural information processing systems, 30, 2017
Reference 25
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Observation ff7d32bc-20a5-4f7e-bdf2-fd1b586bee99 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Accurate uncertainties for deep learning using calibrated regression
Reference 26
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Observation 05675ceb-90ca-4118-90f5-1e038e4138ec · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks DEUP: Direct Epistemic Uncertainty Prediction
Reference 27
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Observation db98f22c-a784-49dc-84c3-0a54d4960d2d · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Simple and scalable predictive uncertainty estimation using deep ensembles
Reference 28
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Observation bdce551b-b53c-4e23-b171-e1a4e3b0d02f · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Heteroscedastic gaussian process regression
Reference 29
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Observation 5b796839-9ec8-488e-90f3-4269a503abcd · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Dropout injection at test time for post hoc uncertainty quantification in neural networks
Reference 30
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Observation d3b2da9a-f118-4115-b9d2-434a8263efde · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks A practical bayesian framework for backpropagation networks
Reference 31
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Observation 7251cfae-350f-4d28-b218-690ad3b075e9 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks A simple baseline for bayesian uncertainty in deep learning
Reference 32
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Observation d9c2acec-1e1d-4b1c-8a07-5de764d3b511 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks The unreasonable effectiveness of deep evidential regression
Reference 33
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Observation d304e24a-5266-444c-8783-97678817bc1e · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Mcmc using hamiltonian dynamics
Reference 34
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Observation 00ebafd1-7604-4a7a-882d-75568a35811b · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Estimating the mean and variance of the target probability distribution
Reference 35
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Observation 0cfc83c0-7093-4f2b-80d0-c637c1b5631b · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks A scalable laplace approximation for neural networks
Reference 36
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Observation 59127ed0-2261-4c7d-bdb1-4618acf6421b · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Second-Order Uncertainty Quantification: Variance-Based Measures
Reference 37
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Observation a8598331-425e-4aea-8593-6f238a790b47 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks On the Pitfalls of Heteroscedastic Uncertainty Estimation with Probabilistic Neural Networks
Reference 38
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Observation a8249728-0f21-47dc-b4b1-68a07828b851 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Evidential deep learning to quantify classification uncertainty
Reference 39
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Observation e4c9ff66-78da-4087-b0ab-3fabb4284f50 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Indoor segmentation and support inference from rgbd images
Reference 40
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Observation c3caf8d6-aaea-4f94-9ec3-4498f7a17fe7 · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Bayescap: Bayesian identity cap for calibrated uncertainty in frozen neural networks
Reference 41
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Observation 9ce171a8-917c-4274-a725-4093e4578cce · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Unresolved cited work
Reference 42
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Observation 506a0995-b365-4bf5-a0b0-8b4b9a441f1b · outbound
Principled Input-Output-Conditioned Post-Hoc Uncertainty Estimation for Regression Networks Doubly penalized likelihood estimator in heteroscedastic regression
Reference 43
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No inbound Pith citation observations are available.