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Paper Citation Record · LEDGER

Estimating prevalence with precision and accuracy

As of 8 August 2026, this Paper Citation Record lists 30 of 30 outbound references and 1 inbound Pith citation observation for arXiv:2507.06061.

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

pith.paper-citation-record.v1
2507.06061 v1

Coverage vector

measured 30 of 30 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-06T19:18:39.364955Z

measured 31 of 31 standing notices

One-hop event checks from named stored sources.

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measured 1 of 1 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-07-11T10:38:19.251502Z

measured 0 of 1 external citation measurements

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

Source: cited_works

Reference resolution

30 of 30 outbound references displayed

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External citation measurements

No source-named external measurement is stored.

Outbound references

Observation 9c9199e5-1574-450a-a1be-1d4959801407 · outbound

This paper cites Counting positives accurately despite inaccurate classification.

Estimating prevalence with precision and accuracy Counting positives accurately despite inaccurate classification

Reference 1

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Observation 11ac1edd-c7e4-4dee-ade2-2238825d4b3d · outbound

This paper cites Quantifying counts and costs via classification.

Estimating prevalence with precision and accuracy Quantifying counts and costs via classification

Reference 2

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Observation dcba73db-a235-4a97-9752-bd91fc0be52e · outbound

This paper cites Ag- gregative quantification for regression.

Estimating prevalence with precision and accuracy Ag- gregative quantification for regression

Reference 3

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Observation 57be76ba-2fdd-4a6f-9400-1f0391ce524e · outbound

This paper cites Why is quantification an interesting learning problem? 6(1):53–58.

Estimating prevalence with precision and accuracy Why is quantification an interesting learning problem? 6(1):53–58

Reference 4

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Observation e390e3b6-9c41-4b4a-b529-d80ecc0ec5a3 · outbound

This paper cites Learning to Quantify, volume 47 of The Information Retrieval Series.

Estimating prevalence with precision and accuracy Learning to Quantify, volume 47 of The Information Retrieval Series

Reference 5

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Observation e2142356-8c50-428e-b6f1-8fd550ea92a1 · outbound

This paper cites Confidence intervals for class prevalences under prior probability shift.

Estimating prevalence with precision and accuracy Confidence intervals for class prevalences under prior probability shift

Reference 6

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Observation c5a6db3f-d73b-4db7-ae7b-8e26ca6bcf6b · outbound

This paper cites When training and test sets are different: Characterizing learning transfer.

Estimating prevalence with precision and accuracy When training and test sets are different: Characterizing learning transfer

Reference 7

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Observation bde0deb1-8630-4e00-94e9-bef4140c86a1 · outbound

This paper cites URL https://doi.org/10.7551/ mitpress/9780262170055.003.0001.

Estimating prevalence with precision and accuracy URL https://doi.org/10.7551/ mitpress/9780262170055.003.0001

Reference 8

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Observation 1e6b56d4-bdc5-40b4-8339-45df60146d09 · outbound

This paper cites Bayesian quantification with black-box estimators.

Estimating prevalence with precision and accuracy Bayesian quantification with black-box estimators

Reference 9

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Observation 54d4e12f-c96a-4cd1-a48e-52a4422cca2a · outbound

This paper cites Uncertainty-aware generative models for inferring document class prevalence.

Estimating prevalence with precision and accuracy Uncertainty-aware generative models for inferring document class prevalence

Reference 10

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Observation 607a3133-0dc7-4d07-92da-d314be0c42f2 · outbound

This paper cites Asif Naeem.

Estimating prevalence with precision and accuracy Asif Naeem

Reference 11

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Observation 60712cc3-c6db-4142-bd50-5473bc000f10 · outbound

This paper cites Generalized bayes quantifica- tion learning under dataset shift.

Estimating prevalence with precision and accuracy Generalized bayes quantifica- tion learning under dataset shift

Reference 12

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Observation 6227f5ad-e256-470f-9a12-f9dfbbaf8fbe · outbound

This paper cites Detecting and Correcting for Label Shift with Black Box Predictors.

Estimating prevalence with precision and accuracy Detecting and Correcting for Label Shift with Black Box Predictors

Reference 13

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Observation e1f48b07-00de-4ea9-b8a8-a8dec6043534 · outbound

This paper cites QuaPy: A python-based framework for quantification.

Estimating prevalence with precision and accuracy QuaPy: A python-based framework for quantification

Reference 14

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Observation 4caadce5-b264-49bc-9348-1cba638d69ea · outbound

This paper cites BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding.

Estimating prevalence with precision and accuracy BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding

Reference 15

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Observation 9cf99a40-71bf-4065-bdcc-b1c46c1db30a · outbound

This paper cites The importance of the test set size in quantification assessment.

Estimating prevalence with precision and accuracy The importance of the test set size in quantification assessment

Reference 16

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Observation e612b9d8-17c5-45f1-9bd4-9b243ce9f8c2 · outbound

This paper cites Quan- tification via probability estimators.

Estimating prevalence with precision and accuracy Quan- tification via probability estimators

Reference 17

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Observation bde34629-426c-4b8d-b966-6e03251644ec · outbound

This paper cites Guzmán- Martínez, and Enrique Alegre.

Estimating prevalence with precision and accuracy Guzmán- Martínez, and Enrique Alegre

Reference 18

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Observation 8d725617-efa3-431e-81eb-9644504b1a30 · outbound

This paper cites Adjusting the outputs of a classifier to new a priori probabilities: A simple procedure.

Estimating prevalence with precision and accuracy Adjusting the outputs of a classifier to new a priori probabilities: A simple procedure

Reference 19

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Observation fa767fca-0b65-4e42-b781-8a96e117dc99 · outbound

This paper cites A critical reassessment of the saerens- latinne-decaestecker algorithm for posterior probability adjustment.

Estimating prevalence with precision and accuracy A critical reassessment of the saerens- latinne-decaestecker algorithm for posterior probability adjustment

Reference 20

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Observation b23e5a19-e841-457f-be33-1dd7467cc428 · outbound

This paper cites Maximum likelihood with bias- corrected calibration is hard-to-beat at label shift adaptation.

Estimating prevalence with precision and accuracy Maximum likelihood with bias- corrected calibration is hard-to-beat at label shift adaptation

Reference 21

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Observation 6e480561-d366-4eea-b873-5b71d154054d · outbound

This paper cites Minimising quantifier variance under prior probability shift.

Estimating prevalence with precision and accuracy Minimising quantifier variance under prior probability shift

Reference 22

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Estimating prevalence with precision and accuracy Quantification-oriented learning based on reliable classifiers

Reference 23

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Observation 7860acd7-49ca-49b5-a7d8-5591c832b151 · outbound

This paper cites A Comparative Evaluation of Quantification Methods.

Estimating prevalence with precision and accuracy A Comparative Evaluation of Quantification Methods

Reference 24

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Observation cdd0fc84-a299-41f2-bb75-dfb46d96e006 · outbound

This paper cites Quantification under prior probability shift: the ratio estimator and its extensions.

Estimating prevalence with precision and accuracy Quantification under prior probability shift: the ratio estimator and its extensions

Reference 25

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Estimating prevalence with precision and accuracy Unresolved cited work

Reference 26

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Estimating prevalence with precision and accuracy Unresolved cited work

Reference 27

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This paper cites Probabilistic outputs for support vector machines and comparisons to regularized likelihood methods.

Estimating prevalence with precision and accuracy Probabilistic outputs for support vector machines and comparisons to regularized likelihood methods

Reference 28

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This paper cites That is, TPR and FPR are the same for the validation set and the test set.

Estimating prevalence with precision and accuracy That is, TPR and FPR are the same for the validation set and the test set

Reference 29

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Observation bb88520b-8cb9-4451-bde7-1b4562c5016f · outbound

This paper cites class 1 prevalence in our case) in the validation data.

Estimating prevalence with precision and accuracy class 1 prevalence in our case) in the validation data

Reference 30

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Pith citing papers

Observation 2799ab98-eeb2-4fdf-9e7e-7a86c6734c25 · inbound

Geometry-Aware Bayesian Quantification via Compositional Data Analysis cites this paper.

Geometry-Aware Bayesian Quantification via Compositional Data Analysis Estimating prevalence with precision and accuracy

Reference 26

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