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Paper Citation Record · LEDGER

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches

As of 17 August 2026, this Paper Citation Record lists 57 of 57 outbound references and 0 inbound Pith citation observations for arXiv:2607.27542.

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pith.paper-citation-record.v1
2607.27542 v1

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Outbound references

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Unresolved cited work

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Unresolved cited work

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches locally efficient

Reference 3

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This paper cites Covariate adjustment for two-sample treatment comparisons in randomized clinical trials: A principled yet flexible approach.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Covariate adjustment for two-sample treatment comparisons in randomized clinical trials: A principled yet flexible approach

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This paper cites Simple, Efficient Estimators of Treatment Effects in Randomized Trials Using Generalized Linear Models to Leverage Baseline Variables.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Simple, Efficient Estimators of Treatment Effects in Randomized Trials Using Generalized Linear Models to Leverage Baseline Variables

Reference 5

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This paper cites Improving Precision and Power in Randomized Trials for COVID-19 Treatments Using Covariate Adjustment, for Binary, Ordinal, and Time-to-Event Outcomes.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Improving Precision and Power in Randomized Trials for COVID-19 Treatments Using Covariate Adjustment, for Binary, Ordinal, and Time-to-Event Outcomes

Reference 6

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This paper cites Covariate adjustment in randomized controlled trials: General concepts and practical considerations.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Covariate adjustment in randomized controlled trials: General concepts and practical considerations

Reference 7

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This paper cites Statistical Methods for Research Workers.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Statistical Methods for Research Workers

Reference 8

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This paper cites Machine learning methods for leveraging baseline covariate information to improve the efficiency of clinical trials.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Machine learning methods for leveraging baseline covariate information to improve the efficiency of clinical trials

Reference 9

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This paper cites Optimising precision and power by machine learning in randomised trials with ordinal and time-to-event outcomes with an application to COVID-19.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Optimising precision and power by machine learning in randomised trials with ordinal and time-to-event outcomes with an application to COVID-19

Reference 10

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This paper cites Adaptive selection of the optimal strategy to improve precision and power in randomized trials.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Adaptive selection of the optimal strategy to improve precision and power in randomized trials

Reference 11

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This paper cites COADVISE: covariate adjustment with variable selection in randomized controlled trials.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches COADVISE: covariate adjustment with variable selection in randomized controlled trials

Reference 12

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Efficient Randomized Experiments Using Foundation Models

Reference 13

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Statistical Principles for Clinical Trials E9

Reference 14

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Guideline on Adjustment for Baseline Covariates in Clinical Trials

Reference 15

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This paper cites ICH E9 (R1) Addendum on Estimands and Sensitivity Analysis in Clinical Trials to the Guideline on Statistical Principles for Clinical Trials.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches ICH E9 (R1) Addendum on Estimands and Sensitivity Analysis in Clinical Trials to the Guideline on Statistical Principles for Clinical Trials

Reference 16

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Adjusting for Covariates in Randomized Clinical Trials for Drugs and Biological Products Guidance for Industry

Reference 17

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Lasso adjustments of treatment effect estimates in randomized experiments

Reference 18

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches The LOOP Estimator: Adjusting for Covariates in Randomized Experiments

Reference 19

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches The Generalized Oaxaca-Blinder Estimator

Reference 20

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches A family of Bayesian prognostic and predictive covariate-adjusted response-adaptive randomization designs

Reference 21

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Making apples from oranges: Comparing noncollapsible effect estimators and their standard errors after adjustment for different covariate sets

Reference 22

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Asymptotic Statistics

Reference 23

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Stratification by a multivariate confounder score

Reference 24

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Increasing the efficiency of randomized trial estimates via linear adjustment for a prognostic score

Reference 25

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches A new approach to causal inference in mortality studies with sustained exposure periods–application to control of the healthy worker survivor effect

Reference 26

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Adjusting for Nonignorable Drop-Out Using Semiparametric Nonresponse Models (with Rejoiner)

Reference 27

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Inverse probability weighted estimation for general missing data problems

Reference 28

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches A general form of covariate adjustment in clinical trials under covariate-adaptive randomization

Reference 29

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Adjusting for partially missing baseline measurements in randomized trials

Reference 30

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches To Adjust or not to Adjust? Estimating the Average Treatment Effect in Randomized Experiments with Missing Covariates

Reference 31

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches On the Role of the Propensity Score in Efficient Semiparametric Estimation of Average Treatment Effects

Reference 32

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Estimation of regression coefficients when some regressors are not always observed

Reference 33

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Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Unified Methods for Censored Longitudinal Data and Causality

Reference 34

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Observation 66a80ade-0a2e-4e1e-9561-884916622b37 · outbound

This paper cites Variance reduction in randomised trials by inverse probability weighting using the propensity score.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Variance reduction in randomised trials by inverse probability weighting using the propensity score

Reference 35

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-17T06:30:58.91139+00:00.

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Observation 5615ad80-8efb-4a63-ad23-6a9748008182 · outbound

This paper cites Cross-Validated Targeted Minimum-Loss-Based Estimation.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Cross-Validated Targeted Minimum-Loss-Based Estimation

Reference 36

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Observation c8202576-f5bf-4212-bfdd-a7c1d348d9d5 · outbound

This paper cites Targeted Maximum Likelihood Learning.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Targeted Maximum Likelihood Learning

Reference 37

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Observation 2cca1f61-9101-4ed4-b3db-5e0739f384f6 · outbound

This paper cites Targeted Learning: Causal Inference for Observational and Experimental Data.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Targeted Learning: Causal Inference for Observational and Experimental Data

Reference 38

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source=pdf_text observed=2026-08-01T06:03:26.246313Z digest=sha256:f0cc7a3519c9d3a806abe495e59b273fc9ffeabd34ed4804bc49c6bf7465d81b

Observation d92ac89d-6877-4c79-8e1c-0ea8d6fd1860 · outbound

This paper cites Machine learning in the estimation of causal effects: targeted minimum loss-based estimation and double/debiased machine learning.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Machine learning in the estimation of causal effects: targeted minimum loss-based estimation and double/debiased machine learning

Reference 39

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No event found in the named queried sources as of 2026-08-17T06:30:58.91139+00:00.

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Observation 96d5b54a-8178-47a9-94e0-5a2d432c2d49 · outbound

This paper cites Empirical efficiency maximization: improved locally efficient covariate adjustment in randomized experiments and survival analysis.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Empirical efficiency maximization: improved locally efficient covariate adjustment in randomized experiments and survival analysis

Reference 40

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Observation 82a821b7-5f4b-4a5d-8952-077859e4a359 · outbound

This paper cites Double/debiased machine learning for treatment and structural parameters.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Double/debiased machine learning for treatment and structural parameters

Reference 41

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source=pdf_text observed=2026-08-01T06:03:26.581536Z digest=sha256:f0778451736fcbc79819b9de2ef70c03ca0ba39f0f54005bae2618754713d2da

Observation f732be52-a2eb-4f4c-8890-a31de0490df1 · outbound

This paper cites Efficient and Adaptive Estimation for Semiparametric Models.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Efficient and Adaptive Estimation for Semiparametric Models

Reference 42

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source=pdf_text observed=2026-08-01T06:03:26.706513Z digest=sha256:c420ea075d1c3cc02d7b6688f3c129b474e2a1699a124905eb4a2696c092a928

Observation df2da751-722f-4b61-be6d-7a4a16582b55 · outbound

This paper cites Semiparametric Theory and Missing Data.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Semiparametric Theory and Missing Data

Reference 43

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source=pdf_text observed=2026-08-01T06:03:26.836583Z digest=sha256:89659f863569b80aaf27195fdb6eb6080156a50d5a64480cd684ce78757fdc0f

Observation 14de385e-c24a-4321-94c1-b63035e021b0 · outbound

This paper cites Some Surprising Results about Covariate Adjustment in Logistic Regression Models.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Some Surprising Results about Covariate Adjustment in Logistic Regression Models

Reference 44

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Observation de71bf23-ef51-4361-90c3-6d42bddb0fab · outbound

This paper cites Adaptive Pre-specification in Randomized Trials With and Without Pair-Matching.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Adaptive Pre-specification in Randomized Trials With and Without Pair-Matching

Reference 45

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Observation a70dcce1-bcbc-44a8-8585-1c08cc21f37b · outbound

This paper cites Super Learner.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Super Learner

Reference 46

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Observation 45924e0b-7b34-46c0-9d1e-fdad4ff84de1 · outbound

This paper cites Machine learning to optimize precision in the analysis of randomized trials: A journey in pre-specified, yet data-adaptive learning.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Machine learning to optimize precision in the analysis of randomized trials: A journey in pre-specified, yet data-adaptive learning

Reference 47

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Observation e8c9cb15-b603-42ec-bdff-e6d7a5756d24 · outbound

This paper cites Trial Emulation, Simulation, and Augmentation Using Electronic Health Records and Generative AI.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Trial Emulation, Simulation, and Augmentation Using Electronic Health Records and Generative AI

Reference 48

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No event found in the named queried sources as of 2026-08-17T06:30:58.91139+00:00.

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Observation dfdf5ec5-cf81-41be-975f-94b0086da596 · outbound

This paper cites Coadvise.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Coadvise

Reference 49

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Observation 2d7d3cc1-9542-408b-81e2-19c34ff6b203 · outbound

This paper cites RobinCar2: ROBust INference for Covariate Adjustment in Randomized Clinical Trials.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches RobinCar2: ROBust INference for Covariate Adjustment in Randomized Clinical Trials

Reference 50

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Observation a207787a-8542-48a1-be78-e92d89baf0d6 · outbound

This paper cites Automated, efficient and model-free inference for randomized clinical trials via data-driven covariate adjustment.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Automated, efficient and model-free inference for randomized clinical trials via data-driven covariate adjustment

Reference 51

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No event found in the named queried sources as of 2026-08-17T06:30:58.91139+00:00.

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Observation d9d90d1a-1400-4bd6-98b7-e55cb3841799 · outbound

This paper cites The Causal Roadmap and Simulations to Improve the Rigor and Reproducibility of Real-data Applications.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches The Causal Roadmap and Simulations to Improve the Rigor and Reproducibility of Real-data Applications

Reference 52

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No event found in the named queried sources as of 2026-08-17T06:30:58.91139+00:00.

source=pdf_text observed=2026-08-01T06:03:28.263944Z digest=sha256:9de0cea6747efbf74a1446d378e4c166a39c5f5637928ccf2a819daa3dc366a1

Observation ec9c1253-bc1d-4091-96bd-1cca66a3dc41 · outbound

This paper cites Considerations for the Integration of Randomized Controlled Trials and Real-World Data.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Considerations for the Integration of Randomized Controlled Trials and Real-World Data

Reference 54

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source=pdf_text observed=2026-08-01T06:03:28.562375Z digest=sha256:e775ef0f08f3661a3af231a58516685c654e3bdd83ef8003622f98e69b61d6a5

Observation 0fcfc62e-76fb-405d-bd10-3ef8e45bf65a · outbound

This paper cites Robust integration of external control data in randomized trials.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Robust integration of external control data in randomized trials

Reference 55

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source=pdf_text observed=2026-08-01T06:03:28.682696Z digest=sha256:87000adebccbc7a9fec2f522e80d9482d7e987d7bf2ac4e22e22b1bc3d0df98b

Observation fb0d0b4d-24cc-4e3c-88a7-bec05daf2c2c · outbound

This paper cites Robust integration of external control data in randomized trials.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Robust integration of external control data in randomized trials

Reference 56

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source=pdf_text observed=2026-08-01T06:03:28.865446Z digest=sha256:4f147e8c178bb23c1f1842010694a9a88859b4e9acfb9d7909422c78e487e228

Observation cd5cf862-c889-40df-a0d6-08d414aee394 · outbound

This paper cites an unresolved cited work.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Unresolved cited work

Reference 460

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source=pdf_text observed=2026-08-01T06:03:25.342054Z digest=sha256:9a47353d3d9e9b8cc890bebe7880460747b782dd55f454c83b11baf1d82d5788

Observation b2b909b9-085d-4190-aa88-9446f1cf4aa3 · outbound

This paper cites an unresolved cited work.

Towards Best Practices for Covariate Adjustment in Regulatory Trials: From Fixed to Data-Adaptive Approaches Unresolved cited work

Reference 2026

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Pith citing papers

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