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Paper Citation Record · LEDGER
As of 18 August 2026, this Paper Citation Record lists 100 of 121 outbound references and 0 inbound Pith citation observations for arXiv:2608.12100.
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Source: paper_references, paper_reference_links, observed 2026-08-16T00:21:57.318142Z
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Pith citing papers itemized under the disclosed page cap.
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100 of 121 outbound references displayed
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Confidence Calibration of Deep Learning Systems Conformal prediction: A gentle introduction
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Confidence Calibration of Deep Learning Systems Uncertainty sets for image classifiers using conformal prediction
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Observation 2465f15e-5bfd-4c75-9c4d-d876ddf2f147 · outbound
Confidence Calibration of Deep Learning Systems Differential privacy in the shuffle model: A survey of separations, 2022
Reference 12
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Observation 5d4c7da8-cc9d-435b-a996-bd29d759b644 · outbound
Confidence Calibration of Deep Learning Systems Split conformal prediction under data contamination
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Confidence Calibration of Deep Learning Systems Towards discriminability and diversity: Batch nuclear-norm maximization under label insufficient situa- tions
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Confidence Calibration of Deep Learning Systems Imagenet: A large- scale hierarchical image database
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Confidence Calibration of Deep Learning Systems Are labels always necessary for classifier accuracy evaluation? In Proc
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Confidence Calibration of Deep Learning Systems Training a neural network based on unreliable human annotation of medical images
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Observation 97c551c3-03d6-4c41-bfc3-ce68d74fac17 · outbound
Confidence Calibration of Deep Learning Systems Dowson and B
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Confidence Calibration of Deep Learning Systems Local privacy and statistical minimax rates
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Confidence Calibration of Deep Learning Systems Differential privacy
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Confidence Calibration of Deep Learning Systems Label Noise Robustness of Conformal Prediction
Reference 21
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Confidence Calibration of Deep Learning Systems Rappor: Randomized aggregatable privacy-preserving ordinal response
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Confidence Calibration of Deep Learning Systems Unresolved cited work
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Observation 83c90485-39b4-4c85-9901-9c54344b7a9f · outbound
Confidence Calibration of Deep Learning Systems The limits of distribution-free conditional predictive inference.Information and Inference: A Journal of the IMA, 10(2):455–482, 2021
Reference 24
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Confidence Calibration of Deep Learning Systems Calibration of medical imaging classification systems with weight scaling
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Confidence Calibration of Deep Learning Systems Locally private mean estimation: Z-test and tight confidence intervals, 2019
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Observation 9d2af7c9-96ea-430b-9cd3-9709394a94a0 · outbound
Confidence Calibration of Deep Learning Systems Deep learning with label differential privacy.Advances in Neural Information Processing Systems (NeurIPs), 34:27131–27145, 2021
Reference 29
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Reference 30
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Confidence Calibration of Deep Learning Systems Training deep neural-networks using a noise adap- tation layer
Reference 31
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Confidence Calibration of Deep Learning Systems Deep self-learning from noisy labels
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Confidence Calibration of Deep Learning Systems Deep residual learning for image recognition
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Confidence Calibration of Deep Learning Systems Using trusted data to train deep networks on labels corrupted by severe noise
Reference 37
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Confidence Calibration of Deep Learning Systems Simple and effective regularization methods for training on noisily labeled data with generalization guarantee
Reference 38
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Reference 41
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Confidence Calibration of Deep Learning Systems Chexpert: A large chest radiograph dataset with uncertainty labels and expert comparison
Reference 42
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Reference 43
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Confidence Calibration of Deep Learning Systems Minimum class confusion for ver- satile domain adaptation
Reference 44
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Confidence Calibration of Deep Learning Systems Discrete distribution estimation under local privacy
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Reference 46
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Confidence Calibration of Deep Learning Systems Adam: A Method for Stochastic Optimization
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Confidence Calibration of Deep Learning Systems Learning multiple layers of features from tiny images
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Confidence Calibration of Deep Learning Systems Simple and scalable pre- dictive uncertainty estimation using deep ensembles
Reference 49
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Confidence Calibration of Deep Learning Systems Coupled-view deep classifier learning from multiple noisy annotators
Reference 50
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Confidence Calibration of Deep Learning Systems Trustable co-label learning from multiple noisy annotators.IEEE Transactions on Multimedia , 25:1045–1057, 2021
Reference 51
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Confidence Calibration of Deep Learning Systems Provably end-to-end label-noise learning without anchor points
Reference 52
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Confidence Calibration of Deep Learning Systems Fair conformal predictors for applications in medical imaging
Reference 58
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Confidence Calibration of Deep Learning Systems The tight constant in the Dvoretzky-Kiefer-Wolfowitz inequality.The Annals of Probability, pages 1269–1283, 1990
Reference 60
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Reference 61
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Reference 62
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Reference 63
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Reference 64
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Reference 65
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Confidence Calibration of Deep Learning Systems Posterior calibration and exploratory analysis for natural language processing models
Reference 66
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Reference 67
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Confidence Calibration of Deep Learning Systems Moment matching for multi-source domain adaptation
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Confidence Calibration of Deep Learning Systems Privacy-preserving confor- mal prediction under local differential privacy
Reference 73
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Confidence Calibration of Deep Learning Systems Confidence calibration of a medical imaging classification system that is robust to label noise
Reference 74
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Reference 75
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Reference 78
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Reference 79
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Reference 80
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Reference 83
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Reference 84
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Confidence Calibration of Deep Learning Systems Improved pre- dictive uncertainty using corruption-based calibration.Stat, 1050:7, 2021
Reference 85
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Confidence Calibration of Deep Learning Systems Adaptive conformal classification with noisy labels
Reference 86
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Confidence Calibration of Deep Learning Systems Meta- weight-net: Learning an explicit mapping for sample weighting
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Confidence Calibration of Deep Learning Systems Learning from noisy labels with deep neural networks: A survey.IEEE transactions on neural networks and learning systems, 34(11):8135–8153, 2022
Reference 88
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Reference 90
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Confidence Calibration of Deep Learning Systems The HAM10000 dataset, a large collec- tion of multi-source dermatoscopic images of common pigmented skin lesions.Scientific data, 5(1):1–9, 2018
Reference 91
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Reference 96
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Reference 97
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Reference 98
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Reference 100
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