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Paper Citation Record · LEDGER

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration

As of 7 August 2026, this Paper Citation Record lists 33 of 33 outbound references and 0 inbound Pith citation observations for arXiv:2607.18278.

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

pith.paper-citation-record.v1
2607.18278 v1

Coverage vector

measured 33 of 33 reference resolution

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Source: paper_references, paper_reference_links, observed 2026-08-02T09:40:43.024616Z

measured 33 of 33 standing notices

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measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Reference resolution

33 of 33 outbound references displayed

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Outbound references

Observation 83436d99-e530-4906-92cb-b11f37e6f51d · outbound

This paper cites Pitfalls of in- domain uncertainty estimation and ensembling in deep learning.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Pitfalls of in- domain uncertainty estimation and ensembling in deep learning

Reference 1

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Observation 5d737c02-e8d4-4867-924e-3ed87353ce8e · outbound

This paper cites Addressing failure prediction by learning model confidence.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Addressing failure prediction by learning model confidence

Reference 2

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Observation 80f435a7-66e2-4447-898f-f756a0c8ef6e · outbound

This paper cites Efficient Post-Hoc Uncertainty Calibration via Variance-Based Smoothing.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Efficient Post-Hoc Uncertainty Calibration via Variance-Based Smoothing

Reference 3

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Observation 6a31970b-2d63-42f6-aa53-04189dc73827 · outbound

This paper cites Phases of uncertainty: Confidence–calibration dynamics in language model training.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Phases of uncertainty: Confidence–calibration dynamics in language model training

Reference 4

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Observation 2d741bdf-bee9-4127-9b67-2eb9ccb132e2 · outbound

This paper cites On the foundations of noise-free selective classification.Journal of Machine Learning Research, 11(5):1605–1641, 2010.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration On the foundations of noise-free selective classification.Journal of Machine Learning Research, 11(5):1605–1641, 2010

Reference 5

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Observation e55eb204-705c-478e-b5cc-18bf7ea4caf6 · outbound

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

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Dropout as a bayesian approximation: Representing model uncertainty in deep learning

Reference 6

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Observation 43faf19b-ae1e-488f-9657-b9a25082d7aa · outbound

This paper cites Datasheets for datasets.Communications of the ACM, 64(12):86–92, 2021.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Datasheets for datasets.Communications of the ACM, 64(12):86–92, 2021

Reference 7

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Observation ebbd52c1-e2a5-4b6c-a90a-5d7aad99255c · outbound

This paper cites Selective Classification for Deep Neural Networks.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Selective Classification for Deep Neural Networks

Reference 8

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Observation 0b217baa-67fb-4aa5-9f25-aaddd8ccdc28 · outbound

This paper cites Selectivenet: A deep neural network with an integrated reject option.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Selectivenet: A deep neural network with an integrated reject option

Reference 9

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Observation 467929dd-9a06-4812-8039-aab205c65756 · outbound

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FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Unresolved cited work

Reference 10

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Observation 400a427b-5402-4a2f-986a-a1c352614331 · outbound

This paper cites Why do tree-based models still outperform deep learning on typical tabular data? InAdvances in Neural Information Processing Systems 35 (NeurIPS 2022), 2022.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Why do tree-based models still outperform deep learning on typical tabular data? InAdvances in Neural Information Processing Systems 35 (NeurIPS 2022), 2022

Reference 11

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Observation 1823934c-1c7d-4f3f-9d1a-267e300f3360 · outbound

This paper cites Weinberger.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Weinberger

Reference 12

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This paper cites A baseline for detecting misclassified and out-of-distribution examples in neural networks.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration A baseline for detecting misclassified and out-of-distribution examples in neural networks

Reference 13

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This paper cites Better by default: Strong pre-tuned MLPs and boosted trees on tabular data.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Better by default: Strong pre-tuned MLPs and boosted trees on tabular data

Reference 14

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Observation 7a079776-c904-41c9-a485-70207e334625 · outbound

This paper cites Guan, and Maya Gupta.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Guan, and Maya Gupta

Reference 15

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Observation 5abd9f5f-f645-448c-8a0f-cca919e9e836 · outbound

This paper cites Accurate uncertainties for deep learning using calibrated regression.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Accurate uncertainties for deep learning using calibrated regression

Reference 16

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Observation 42a99b1a-82dd-4430-b54c-f3d36f5e4a39 · outbound

This paper cites Beyond temperature scaling: Obtaining well-calibrated multiclass probabilities with dirichlet calibration.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Beyond temperature scaling: Obtaining well-calibrated multiclass probabilities with dirichlet calibration

Reference 17

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Observation 132b7021-fb7d-44c7-8190-8af74dfd65b8 · outbound

This paper cites Beta calibration: a well-founded and easily implemented improvement on logistic calibration for binary classifiers.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Beta calibration: a well-founded and easily implemented improvement on logistic calibration for binary classifiers

Reference 18

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This paper cites Simple and scalable predictive uncertainty estimation using deep ensembles.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Simple and scalable predictive uncertainty estimation using deep ensembles

Reference 19

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Observation c9b839a4-efe0-4d7e-81e9-efb9f353fce0 · outbound

This paper cites Owens, and Yixuan Li.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Owens, and Yixuan Li

Reference 20

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Observation b7e05f9f-7fd7-4a42-b2d2-d1e8cdc51326 · outbound

This paper cites When do neural nets outperform boosted trees on tabular data? InAdvances in Neural Information Processing Systems 36 (NeurIPS 2023), 2023.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration When do neural nets outperform boosted trees on tabular data? InAdvances in Neural Information Processing Systems 36 (NeurIPS 2023), 2023

Reference 21

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Observation a496416e-71ca-4569-9d1a-6d7339cc7e1c · outbound

This paper cites CLUE: Neural Networks Calibration via Learning Uncertainty-Error alignment.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration CLUE: Neural Networks Calibration via Learning Uncertainty-Error alignment

Reference 22

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This paper cites Revisiting the calibration of modern neural networks.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Revisiting the calibration of modern neural networks

Reference 23

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This paper cites Model cards for model reporting.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Model cards for model reporting

Reference 24

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FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Cooper, and Milos Hauskrecht

Reference 25

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FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Predicting good probabilities with supervised learning

Reference 26

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This paper cites Sculley, Sebastian Nowozin, Joshua Dillon, Balaji Lakshminarayanan, and Jasper Snoek.

FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Sculley, Sebastian Nowozin, Joshua Dillon, Balaji Lakshminarayanan, and Jasper Snoek

Reference 27

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FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Unresolved cited work

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FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Unresolved cited work

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FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Unresolved cited work

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FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Springer, 2005

Reference 31

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FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Obtaining calibrated probability estimates from decision trees and naive bayesian classifiers

Reference 32

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FALCON-Discover: Discovering Concentrated False-Confidence Regions for Calibration Transforming classifier scores into accurate multiclass probability estimates

Reference 33

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