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Paper Citation Record · LEDGER

Sample Margin-Aware Recalibration of Temperature Scaling

As of 18 August 2026, this Paper Citation Record lists 37 of 37 outbound references and 1 inbound Pith citation observation for arXiv:2506.23492.

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

pith.paper-citation-record.v1
2506.23492 v1

Coverage vector

measured 37 of 37 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-06T21:47:00.323351Z

measured 38 of 38 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-18T06:34:40.430872+00:00

measured 1 of 1 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-08-15T14:26:20.400144Z

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: pith, observed 2026-08-15T14:26:20.750844Z

Reference resolution

37 of 37 outbound references displayed

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External citation measurements

No source-named external measurement is stored.

Outbound references

Observation d7a2c9ea-e071-4f39-93b4-a18f2f9860cb · outbound

This paper cites On calibration of modern neural networks.

Sample Margin-Aware Recalibration of Temperature Scaling On calibration of modern neural networks

Reference 1

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Observation 32753ecf-21b7-471c-8f76-e057fc938eb0 · outbound

This paper cites Obtaining well calibrated probabilities using bayesian binning.

Sample Margin-Aware Recalibration of Temperature Scaling Obtaining well calibrated probabilities using bayesian binning

Reference 2

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Observation e134ed4e-fc49-427c-a039-dbf27662db17 · outbound

This paper cites Obtaining calibrated probability estimates from decision trees and naive bayesian classifiers.

Sample Margin-Aware Recalibration of Temperature Scaling Obtaining calibrated probability estimates from decision trees and naive bayesian classifiers

Reference 3

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This paper cites Network calibration using differentiable classification performance metrics.

Sample Margin-Aware Recalibration of Temperature Scaling Network calibration using differentiable classification performance metrics

Reference 4

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Observation df70c6c6-574e-422b-88bc-929d790b1940 · outbound

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

Sample Margin-Aware Recalibration of Temperature Scaling Beyond temperature scaling: Obtaining well-calibrated multi-class probabilities with dirichlet calibration

Reference 5

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Observation 3bcd2487-dea4-4945-97bb-4454f69c9fa9 · outbound

This paper cites Parameterized temperature scaling for boosting the expressive power in post-hoc uncertainty calibration.

Sample Margin-Aware Recalibration of Temperature Scaling Parameterized temperature scaling for boosting the expressive power in post-hoc uncertainty calibration

Reference 6

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This paper cites Trainable calibration measures for neural networks from kernel mean embeddings.

Sample Margin-Aware Recalibration of Temperature Scaling Trainable calibration measures for neural networks from kernel mean embeddings

Reference 7

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This paper cites Soft calibration objectives for neural networks.

Sample Margin-Aware Recalibration of Temperature Scaling Soft calibration objectives for neural networks

Reference 8

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Sample Margin-Aware Recalibration of Temperature Scaling Obtaining well calibrated probabilities using bayesian binning

Reference 9

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This paper cites Calibration of neural networks using splines.

Sample Margin-Aware Recalibration of Temperature Scaling Calibration of neural networks using splines

Reference 10

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This paper cites UnMASKed: Quantifying Gender Biases in Masked Language Models through Linguistically Informed Job Market Prompts.

Sample Margin-Aware Recalibration of Temperature Scaling UnMASKed: Quantifying Gender Biases in Masked Language Models through Linguistically Informed Job Market Prompts

Reference 11

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This paper cites Proximity-informed calibration for deep neural networks.

Sample Margin-Aware Recalibration of Temperature Scaling Proximity-informed calibration for deep neural networks

Reference 12

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This paper cites Multicalibration: Calibration for the (computationally-identifiable) masses.

Sample Margin-Aware Recalibration of Temperature Scaling Multicalibration: Calibration for the (computationally-identifiable) masses

Reference 13

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Sample Margin-Aware Recalibration of Temperature Scaling Verification of forecasts expressed in terms of probability

Reference 14

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Sample Margin-Aware Recalibration of Temperature Scaling Re- thinking the inception architecture for computer vision

Reference 15

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Sample Margin-Aware Recalibration of Temperature Scaling Calibrating deep neural networks using focal loss

Reference 16

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Sample Margin-Aware Recalibration of Temperature Scaling Dual focal loss for calibration

Reference 17

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Sample Margin-Aware Recalibration of Temperature Scaling Simple and scalable predictive uncertainty estimation using deep ensembles

Reference 18

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Sample Margin-Aware Recalibration of Temperature Scaling Dropout as a bayesian approximation: Representing model uncertainty in deep learning

Reference 19

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Sample Margin-Aware Recalibration of Temperature Scaling Approaching the limit of accuracy: Residual uncertainty via test-time data augmentation

Reference 20

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Sample Margin-Aware Recalibration of Temperature Scaling Yong-Jin Han

Reference 21

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Sample Margin-Aware Recalibration of Temperature Scaling Intra order-preserving functions for calibration of multi-class neural networks

Reference 22

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Sample Margin-Aware Recalibration of Temperature Scaling Optimizing Calibration by Gaining Aware of Prediction Correctness

Reference 23

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Sample Margin-Aware Recalibration of Temperature Scaling Learning multiple layers of features from tiny images

Reference 24

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Sample Margin-Aware Recalibration of Temperature Scaling ImageNet: A large-scale hierarchical image database

Reference 25

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Sample Margin-Aware Recalibration of Temperature Scaling Benchmarking Neural Network Robustness to Common Corruptions and Perturbations

Reference 26

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Sample Margin-Aware Recalibration of Temperature Scaling Large-scale long-tailed recognition in an open world

Reference 27

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Sample Margin-Aware Recalibration of Temperature Scaling Learning to recognize sketches: The ImageNet-Sketch benchmark

Reference 28

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Sample Margin-Aware Recalibration of Temperature Scaling Deep residual learning for image recognition

Reference 29

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Sample Margin-Aware Recalibration of Temperature Scaling Wide residual networks

Reference 30

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Sample Margin-Aware Recalibration of Temperature Scaling Densely connected convolutional networks

Reference 31

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Sample Margin-Aware Recalibration of Temperature Scaling HUJI-KU at MRP~2020: Two Transition-based Neural Parsers

Reference 32

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Sample Margin-Aware Recalibration of Temperature Scaling Pytorch: An imperative style, high-performance deep learning library

Reference 33

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Sample Margin-Aware Recalibration of Temperature Scaling Swin transformer: Hierarchical vision transformer using shifted windows

Reference 34

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Sample Margin-Aware Recalibration of Temperature Scaling An image is worth 16x16 words: Transformers for image recognition at scale

Reference 35

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This paper cites Network calibration by class-based temperature scaling.

Sample Margin-Aware Recalibration of Temperature Scaling Network calibration by class-based temperature scaling

Reference 36

Resolution
verified fuzzy
raw_fallback, observed 2026-08-06T21:47:01.047604Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-08-06T21:47:00.257763Z digest=sha256:482234485cab252871d8e14ab425576974a4a22d0e4e593cdf59d4c1ac935f28

Observation 4fcc487c-e750-4fe1-8039-62267e97d665 · outbound

This paper cites the increased dimensionality introduces substantial noise for precise temperature parameterization,.

Sample Margin-Aware Recalibration of Temperature Scaling the increased dimensionality introduces substantial noise for precise temperature parameterization,

Reference 37

Resolution
malformed identifier
raw_fallback, observed 2026-08-06T21:47:00.765823Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-08-06T21:47:00.323351Z digest=sha256:e52d1b6000f2f7492cc240ddf9814364cb7e6a20c219a15aa6208b14531febba

Pith citing papers

Observation d251d174-d029-42d6-af7c-f219aa8a1de9 · inbound

Post-Calibration Reliability Reranking of Relevance Decisions via Label-wise Monotone Projection cites this paper.

Post-Calibration Reliability Reranking of Relevance Decisions via Label-wise Monotone Projection Sample Margin-Aware Recalibration of Temperature Scaling

Reference 10

Resolution
verified exact
local_arxiv, observed 2026-08-15T14:26:20.756935Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-18T06:34:40.430872+00:00.

source=pdf_text observed=2026-08-15T14:26:20.400144Z digest=sha256:b00c5931d10c91908b1b0b25ba83969c4bc0033d2e0544a2257d6f4bf4518a91