Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T17:14:00.657770Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 100 of 156 outbound references and 1 inbound Pith citation observation for arXiv:2507.11381.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T17:14:00.657770Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-05-12T03:23:53.494722Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-05-12T03:26:19.712325Z
100 of 156 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation fa4f8177-950a-4927-8c08-490b419b5c10 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Hern´ an and James M
Reference 1
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Observation 76547255-601a-4062-ab96-7b499a8dcb5c · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Alaa, Craig Lambert, and Mihaela van der Schaar
Reference 2
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Observation 4fbfc1a3-161c-432a-adeb-9d49a353092c · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Konig, Ruoxuan Xiong, Sadiqa Mahmood, Vera Mucaj, Chetan Bettegowda, Liam Rose, Suzanne Tamang, Adam Sacarny, Brian Caffo, Susan Athey, Elizabeth A
Reference 3
Source-reported events for the cited work
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Observation a1712010-3c66-465b-b544-ffc78a870a16 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Meid, Carmen Ruff, Lucas Wirbka, Felicitas Stoll, Hanna M
Reference 4
Source-reported events for the cited work
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Observation fa6e763b-3e2d-406a-a0c3-72d8429b7ecb · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Kent, Ewout Steyerberg, and David Van Klaveren
Reference 5
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Observation e6aa3e1d-d1f6-4060-8299-cd100a179fbe · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Tell me something interesting: Clinical utility of machine learning prediction models in the icu.Journal of Biomedical Informatics, page 104107, 2022
Reference 6
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Observation 0706bfb9-a156-4a0d-8400-c9d9d2ad913b · outbound
Reference 7
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Observation 74190ac4-eed7-4f52-870a-05664e882bd7 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Abassi, Zaher S
Reference 8
Source-reported events for the cited work
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Observation 2ce6318c-9fa7-4869-98d3-315f3e0624c3 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Valente, Adriaan A
Reference 9
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 28d75811-a911-4ab2-9eea-421ca3da8c60 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Cardiorenal syndrome in decompensated heart fail- ure.Heart, 96(4):255–260, 2010
Reference 10
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Observation 79a5cc2f-35bc-4c8a-9430-5001378064bd · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Unresolved cited work
Reference 11
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Observation b7b714d7-9913-4d66-add1-68849dde73fa · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Holland and Donald B
Reference 12
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Observation bf7d8ddd-6172-4ba0-8d97-b9e2e7c7cb18 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Cambridge university press, illustrate edition, 2009
Reference 13
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Observation 955045d0-aa8b-4589-a109-cf2cea9e8303 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies With great data comes great responsibility: Publishing comparative effec- tiveness research in epidemiology.Epidemiology, 22(3):290–291, 2011
Reference 14
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Observation e49b4e08-039f-4176-8050-03fbb4ab04b5 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Can we learn individual-level treatment policies from clinical data?Biostatistics, 21(2):359–362, 11 2019
Reference 15
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Observation ba919894-9cbd-4539-98fd-30a0b800314f · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Learning causal effects from observational data in healthcare: A review and summary.Frontiers in Medicine, page 2027, 2022
Reference 16
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Observation d64c0949-3f13-49da-a742-853273d1458d · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Causal Decision Making and Causal Effect Estimation Are Not the Same... and Why It Matters
Reference 17
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Observation 428ab145-3d39-4262-b8b5-2aa5c7048dce · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Unresolved cited work
Reference 18
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Observation f20e373d-8109-4403-a6fe-551e15de660a · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Applied Causal Inference Powered by ML and AI
Reference 19
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Observation b88009b4-61c0-4130-b587-933e50d70e5a · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Causal inference: A statistical learning approach, 2024
Reference 20
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Observation 9714d2da-a2f9-4649-b369-b3fd9969d3c0 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Nonparametric estimation of average treatment effects under exogeneity: A review.Review of Economics and Statistics, 86(1):4–29, 2004
Reference 21
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Observation cb8dec3a-03e4-4867-9949-c2a10589325a · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Rosenbaum and Donald B
Reference 22
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Observation e48f1280-847e-4447-9017-438d4bc59565 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Randomization Analysis of Experimental Data: The Fisher Randomization Test Comment.Journal of the American Statistical Association, 75(371):591–593, 1980
Reference 23
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Observation 6410ff55-cd7b-45ab-911f-d1e49c511924 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Cole and Miguel A
Reference 24
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Observation fe7824be-9beb-48e2-b975-688fa24c34ae · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies A distributional approach for causal inference using propensity scores.Jour- nal of the American Statistical Association, 101(476):1619–1637, dec 2006
Reference 25
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Observation 01714308-9475-47a7-904f-428572be48c9 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Bounds on the conditional and average treatment effect with unobserved confounding factors.The Annals of Statistics, 50(5):2587–2615, 2022
Reference 26
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Observation c366e123-1cec-4f44-8643-9dc5c215e366 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Interval estimation of individual-level causal effects under unobserved confounding
Reference 27
Source-reported events for the cited work
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Observation 75252362-86f8-4902-8257-7bebd50944ea · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Quantifying ignorance in individual-level causal-effect estimates under hidden confounding
Reference 28
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Observation 1cdd4e39-c7a3-4087-8718-c02d78fe2f41 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Sensitivity Analysis of Individual Treatment Effects: A Robust Conformal Inference Approach
Reference 29
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Observation d0996362-8d09-404c-a60e-886d2608d7db · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Conformal sensitivity analysis for individual treatment effects.Journal of the American Statistical Association, pages 1–14, 2022
Reference 30
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Observation 31de012a-17bd-41cb-8107-5bc06d8451d9 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies B-Learner: Quasi-Oracle Bounds on Heterogeneous Causal Effects Under Hidden Confounding
Reference 31
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Observation f33e2b12-4454-42f2-8a9d-858328c5190a · outbound
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Reference 32
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Observation 6a158c9e-6626-4dac-bc44-88da2b62ac58 · outbound
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Reference 33
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Observation 67e0670c-5faf-4b39-bd8c-d28b38fd9620 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Quasi-oracle estimation of heterogeneous treatment effects
Reference 34
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Observation f57bd723-c94b-4833-a62a-fc92d9d769dc · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Towards optimal doubly robust estimation of heterogeneous causal effects
Reference 35
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Observation e84735fe-0039-4cc3-a8ff-78a28930a245 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Meta-Learners for Estimation of Causal Effects: Finite Sample Cross-Fit Performance
Reference 36
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Observation d2310518-c0df-49ac-8679-dfcd67978d1a · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Estimation and Inference of Heterogeneous Treatment Effects using Random Forests.Journal of the American Statistical Association, 113(523):1228–1242, 7 2018
Reference 37
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Observation 29c52a4b-4755-4d2a-b8d2-8ab2a3e81d16 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Random Forests.Machine Learning, 45(1):5–32, 2001
Reference 38
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Observation 045d6ce3-677c-41ec-91c6-0f38783327a8 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Shah, Trevor Hastie, and Robert Tibshirani
Reference 39
Source-reported events for the cited work
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Observation a513098d-e554-4f22-8148-202276256f70 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies A targeted maximum likelihood estimator of a causal effect on a bounded continuous outcome.The international journal of biostatistics, 6 (1):Article 26, 2010
Reference 40
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Observation 246b2e3f-2cef-45ca-9cf6-3100dfab738d · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies van der Laan and Alexander R
Reference 41
Source-reported events for the cited work
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Observation e3f143eb-cb5a-42cc-b2e2-da38308b7b0f · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Patient-Specific Effects of Medication Using Latent Force Models with Gaussian Processes
Reference 42
Source-reported events for the cited work
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Observation 1efc449d-f64d-406b-830d-80c48576362a · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Estimating individual treatment ef- fect: Generalization bounds and algorithms
Reference 43
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Observation cf17f7a0-a27f-4798-967c-fd037d6e54ec · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Learning Weighted Representations for Generalization Across Designs
Reference 44
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Observation 221071dc-3d59-4897-8052-582f948f3e0b · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Causal Effect Inference with Deep Latent-Variable Models
Reference 45
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Observation de7875a2-cd7a-476e-bf54-b083fa702aae · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Adapting Neural Networks for the Estimation of Treatment Effects
Reference 46
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Observation 8d08422c-9f80-4962-b7ed-09fc842be0ef · outbound
Reference 47
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Observation 395097d5-9b89-4edb-a1d0-0512df23e2c9 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Bayesian nonparametric modeling for causal inference.Journal of Computa- tional and Graphical Statistics, 20(1):217–240, 2011
Reference 48
Source-reported events for the cited work
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Observation 7c812b1d-ead0-4175-996a-6959cdc550fd · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Gaussian processes in machine learning
Reference 49
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Observation 884c3de0-b798-4c66-8a12-32a48dbbecaf · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies A tutorial on conformal prediction.Journal of Machine Learning Research, 9(3), 2008
Reference 50
Source-reported events for the cited work
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Observation 309678ba-6e76-4dd9-9574-c368de90a8f5 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Conformal inference of counterfactuals and individual treatment effects.Journal of the Royal Statistical Society Series B: Statistical Methodology, 83(5):911–938, 2021
Reference 51
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Observation dd65ad11-4a48-456a-a6d0-4402c5005e98 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Bounds on the conditional and average treatment effect with unobserved confounding factors
Reference 52
Source-reported events for the cited work
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Observation b3a6e493-fa0c-4a30-bf06-562b31028302 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Identifying causal-effect inference failure with uncertainty-aware models.Advances in Neural Information Processing Systems, 33, 2020
Reference 53
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Observation c69fbaaf-ca11-4639-9b02-839a85228c18 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Unresolved cited work
Reference 54
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Observation ac713a02-7a7f-4ece-a8de-4d95223727ec · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Doubly robust policy eval- uation and optimization.Statistical Science, 29(4):485–511, 2014
Reference 55
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Observation ef22a7b3-8981-471b-8a8b-d06d8592d7d4 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Estimators for the value of the optimal dynamic treatment rule with application to criminal justice interventions.The International Journal of Biostatistics, 2022
Reference 56
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Observation 65cad56c-e3de-4bb3-b4fe-6a9ee561d072 · outbound
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Reference 57
Source-reported events for the cited work
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Observation c90fcbe8-353a-439d-a488-b3ca45095519 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Policy Learning with Observational Data
Reference 58
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Observation fba0a5e6-9d1f-43f1-8baf-b239cc8d418a · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Policy learning with observational data.Econometrica, 89 (1):133–161, 2021
Reference 59
Source-reported events for the cited work
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Observation b8ae29b6-a52a-4640-87cd-340540a9600a · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Balanced policy evaluation and learning
Reference 60
Source-reported events for the cited work
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Observation 09ec1647-5289-4190-9f0d-5cc870e1bfdb · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies The optimal dynamic treatment rule superlearner: consid- erations, performance, and application to criminal justice interventions.The International Journal of Biostatistics, 2022
Reference 61
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Observation b2ff1557-10d3-435c-90e7-ce9b5de29b1f · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Teaching statistical inference for causal effects in experiments and observa- tional studies.Journal of Educational and Behavioral Statistics, 29(3):343–367, 2004
Reference 62
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Observation 66632602-dcb7-44ad-af95-9cd5d74fde9f · outbound
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Reference 63
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Observation d9dfd6ae-8589-4c04-a9ec-ed088b6a1902 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Sendak, Joshua D’Arcy, Sehj Kashyap, Michael Gao, Marshall Nichols, Kristin Corey, William Ratliff, and Suresh Balu
Reference 64
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation c0dbce16-4523-4060-96ce-ebfe35a95d90 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Use of directed acyclic graphs (dags) to identify confounders in applied health research: review and recommendations.International journal of epidemiology, 50(2):620–632, 2021
Reference 65
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Observation 82f5a747-5ddf-4769-91de-49f5bb56d1f6 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies A behavioral model of rational choice.The quarterly journal of economics, pages 99–118, 1955
Reference 66
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Observation 763790d9-330e-4326-9dfd-e55985829ac7 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Analysis of complex decision-making processes in health care: cognitive approaches to health informatics.Journal of biomedical informatics, 34(5):365–376, 2001
Reference 67
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Observation 9eca1443-5cb9-45a6-9119-ea16852fed38 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Emerging paradigms of cognition in medical decision-making.Journal of biomedical informatics, 35(1):52–75, 2002
Reference 68
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Observation 9b7f8c5b-e618-4550-9037-abf23847ccf5 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Causal diagrams for empirical research.Biometrika, 82(4):669–688, 1995
Reference 69
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Observation 95fe042b-33fe-4fc8-9861-0df188827a23 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Prognostic value of estimated plasma volume in heart failure.JACC: Heart Failure, 3(11):886–893, 2015
Reference 70
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Unavailable: canonical work link unavailable.
Observation 34b46088-f74a-4405-9a3e-cfc786cb6f96 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Instrumental variables as bias amplifiers with general outcome and confounding.Biometrika, 104(2):291–302, 2017
Reference 71
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Observation ec3e90e7-7c8f-474b-a945-41ef25df6212 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Covariate selection
Reference 72
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Observation 12777ac3-c1a1-471f-ba1e-0897918a116e · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies The choice of control variables: How causal graphs can inform the decision
Reference 73
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Observation 3d98bbc0-057e-437c-a49c-71d7c9dfa75e · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Unresolved cited work
Reference 74
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Observation b4fc6655-24f5-462d-9c36-df618b65075a · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Outcome adaptive lasso: Variable selection for causal inference.Biometrics, 73(4):1111–1122, dec 2017
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Observation c8ab45e1-2900-4979-8fdf-e14d3ee7ef69 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Propensity score models are better when post-calibrated
Reference 76
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Observation 80a04f05-506b-49e6-a68a-afec90e2b820 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Probabilistic outputs for support vector machines and comparisons to regularized likelihood methods.Advances in large margin classifiers, 10(3):61–74, 1999
Reference 77
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Observation c28b6aec-3d49-4b2f-8b9b-268bc666b692 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Obtaining calibrated probability estimates from decision trees and naive bayesian classifiers
Reference 78
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Observation deff8214-ec93-446b-98fa-0842f362522f · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies A unified approach to interpreting model predictions
Reference 79
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Observation 0d066577-a76f-4283-85dd-babaeafdbe16 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Causal effects in nonexperimental studies: Reevaluating the evaluation of training programs.Journal of the American statistical Association, 94(448): 1053–1062, 1999
Reference 80
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Observation 5ad259fd-ce38-4904-a61c-2d5734587db6 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Unresolved cited work
Reference 81
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Observation 8a6ae1fa-4468-438b-a0dd-cb69d3cdcad3 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Dealing with limited overlap in estimation of average treatment effects.Biometrika, 96(1):187–199, 2009
Reference 82
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Observation 5ca54cf1-f666-4f0f-9e54-577ec5a1cee4 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Overlap in observational studies with high-dimensional covariates.Journal of Econometrics, 221(2):644– 654, 2021
Reference 83
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Observation 5a6fd37d-c578-4ca5-8526-fce820c25288 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies In search of insights, not magic bullets: Towards demystification of the model selection dilemma in heterogeneous treatment effect estimation
Reference 84
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Observation 486d93cf-4a14-48bb-acb2-6890a4dfd1ea · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Really doing great at estimating cate? a critical look at ml benchmarking practices in treatment effect estimation
Reference 85
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Observation 84963f97-0518-4d2c-93a4-1f4f38a6dfe4 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Biases in electronic health record data due to processes within the healthcare system: retrospective observational study.Bmj, 361, 2018
Reference 86
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Observation 17755086-9461-4eec-88e4-a498bd523ffe · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies What drives performance in machine learning models for predicting heart failure outcome?European Heart Journal - Digital Health, 9 2022
Reference 87
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Observation 3cbeddaf-a05e-4c36-9806-71058e25e938 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Estimating treatment effects with causal forests: An appli- cation.Observational Studies, 5(2):37–51, 2019
Reference 88
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Observation 8f43a484-dfd9-4c30-95ff-cce607625c24 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies An introduction to the augmented inverse propensity weighted estimator.Political analysis, pages 36–56, 2010
Reference 89
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Observation d08c5f43-ca06-4966-a616-ff53ab4fcb09 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Balanced Policy Evaluation and Learning for Right Censored Data
Reference 90
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Observation af3ae0dd-5fc4-48e7-96c3-53c79d2f83dd · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Experimental evaluation of individualized treatment rules.Journal of the American Statistical Association, 118(541):242–256, 2023
Reference 91
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Observation d6de8724-798c-4e7a-9777-733c5995ba6d · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Stratification and weighting via the propensity score in estimation of causal treatment effects: A comparative study.Statistics in Medicine, 23 (19):2937–2960, 2004
Reference 92
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Observation 1488b724-ada4-49cd-a414-bbd4c725509d · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Toward robust policy summarization.Autonomous agents and multi-agent systems, 2019:2081, 2019
Reference 93
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Observation 689750e0-3ae1-498e-9c1e-10bcbdb79c95 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Case-based off-policy evaluation using prototype learning
Reference 94
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Observation 9428543d-8c3a-46bc-999a-3a77c8d73fb0 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Unresolved cited work
Reference 95
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Observation fe58b5d9-a116-4c92-805c-e3c056153f78 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Tricuspid regurgitation in acute heart failure: is there any incremental risk? European Heart Journal - Cardiovascular Imaging, 19(9):993–1001, 9 2018
Reference 96
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Observation 37019440-f397-47d2-a223-c2c5d0e338ed · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Makhoul, Diab Mutlak, Jonathan Lessick, Shemy Carasso, Shimon Reisner, Yoram Agmon, Robert Dragu, and Zaher S
Reference 97
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Observation f49b3e5b-141e-47b0-b867-adf88edc43bd · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies Voors, Stefan D
Reference 98
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Observation 5bec5f7f-7ab8-4aef-adf8-053ad0838fe6 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies A unified approach to interpreting model predictions
Reference 99
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Observation f64507a9-03c4-4cea-b5aa-64b87fb83136 · outbound
From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies A Causal Roadmap for Generating High-Quality Real-World Evidence
Reference 100
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Observation 89c7dec3-c872-49bf-88f5-66c36656f77d · inbound
ConfoundingSHAP: Quantifying confounding strength in causal inference From Observational Data to Clinical Recommendations: A Causal Framework for Estimating Patient-level Treatment Effects and Learning Policies
Reference 26
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