Literature DB >> 28018014

Active Clinical Trials for Personalized Medicine.

Stanislav Minsker, Ying-Qi Zhao, Guang Cheng.   

Abstract

Individualized treatment rules (ITRs) tailor treatments according to individual patient characteristics. They can significantly improve patient care and are thus becoming increasingly popular. The data collected during randomized clinical trials are often used to estimate the optimal ITRs. However, these trials are generally expensive to run, and, moreover, they are not designed to efficiently estimate ITRs. In this article, we propose a cost-effective estimation method from an active learning perspective. In particular, our method recruits only the "most informative" patients (in terms of learning the optimal ITRs) from an ongoing clinical trial. Simulation studies and real-data examples show that our active clinical trial method significantly improves on competing methods. We derive risk bounds and show that they support these observed empirical advantages. Supplementary materials for this article are available online.

Entities:  

Keywords:  Active learning; Clinical trial; Individualized treatment rule; Personalized medicine; Risk bound

Year:  2016        PMID: 28018014      PMCID: PMC5179145          DOI: 10.1080/01621459.2015.1066682

Source DB:  PubMed          Journal:  J Am Stat Assoc        ISSN: 0162-1459            Impact factor:   5.033


  20 in total

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Authors:  William F Rosenberger; Oleksandr Sverdlov; Feifang Hu
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2.  The path to personalized medicine.

Authors:  Margaret A Hamburg; Francis S Collins
Journal:  N Engl J Med       Date:  2010-06-15       Impact factor: 91.245

3.  Personalized medicine prompts push to redesign clinical trials.

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Journal:  Nat Med       Date:  2005-05       Impact factor: 53.440

4.  Analysis of randomized comparative clinical trial data for personalized treatment selections.

Authors:  Tianxi Cai; Lu Tian; Peggy H Wong; L J Wei
Journal:  Biostatistics       Date:  2010-09-28       Impact factor: 5.899

5.  Subgroup identification from randomized clinical trial data.

Authors:  Jared C Foster; Jeremy M G Taylor; Stephen J Ruberg
Journal:  Stat Med       Date:  2011-08-04       Impact factor: 2.373

6.  Adaptive enrichment designs for clinical trials.

Authors:  Noah Simon; Richard Simon
Journal:  Biostatistics       Date:  2013-03-21       Impact factor: 5.899

7.  PERFORMANCE GUARANTEES FOR INDIVIDUALIZED TREATMENT RULES.

Authors:  Min Qian; Susan A Murphy
Journal:  Ann Stat       Date:  2011-04-01       Impact factor: 4.028

8.  Using Data Augmentation to Facilitate Conduct of Phase I-II Clinical Trials with Delayed Outcomes.

Authors:  Ick Hoon Jin; Suyu Liu; Peter F Thall; Ying Yuan
Journal:  J Am Stat Assoc       Date:  2014       Impact factor: 5.033

9.  Using pilot data to size a two-arm randomized trial to find a nearly optimal personalized treatment strategy.

Authors:  Eric B Laber; Ying-Qi Zhao; Todd Regh; Marie Davidian; Anastasios Tsiatis; Joseph B Stanford; Donglin Zeng; Rui Song; Michael R Kosorok
Journal:  Stat Med       Date:  2015-10-28       Impact factor: 2.373

10.  Personalized Evaluation of Biomarker Value: A Cost-Benefit Perspective.

Authors:  Ying Huang; Eric Laber
Journal:  Stat Biosci       Date:  2014-11-21
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  2 in total

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Authors:  Issam El Naqa; Michael R Kosorok; Judy Jin; Michelle Mierzwa; Randall K Ten Haken
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2.  Improving genomics-based predictions for precision medicine through active elicitation of expert knowledge.

Authors:  Iiris Sundin; Tomi Peltola; Luana Micallef; Homayun Afrabandpey; Marta Soare; Muntasir Mamun Majumder; Pedram Daee; Chen He; Baris Serim; Aki Havulinna; Caroline Heckman; Giulio Jacucci; Pekka Marttinen; Samuel Kaski
Journal:  Bioinformatics       Date:  2018-07-01       Impact factor: 6.937

  2 in total

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