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Bayesian <scp>single‐arm</scp> phase <scp>II</scp> trial designs with <scp>time‐to‐event</scp> endpoints
- Source :
- Pharm Stat
- Publication Year :
- 2021
- Publisher :
- Wiley, 2021.
-
Abstract
- For the cancer clinical trials with immunotherapy and molecularly targeted therapy, time-to-event endpoint is often a desired endpoint. In this paper, we present an event-driven approach for Bayesian one-stage and two-stage single-arm phase II trial designs. Two versions of Bayesian one-stage designs were proposed with executable algorithms and meanwhile, we also develop theoretical relationships between the frequentist and Bayesian designs. These findings help investigators who want to design a trial using Bayesian approach have an explicit understanding of how the frequentist properties can be achieved. Moreover, the proposed Bayesian designs using the exact posterior distributions accommodate the single-arm phase II trials with small sample sizes. We also proposed an optimal two-stage approach, which can be regarded as an extension of Simon's two-stage design with the time-to-event endpoint. Comprehensive simulations were conducted to explore the frequentist properties of the proposed Bayesian designs and an R package BayesDesign can be assessed via R CRAN for convenient use of the proposed methods.
- Subjects :
- Statistics and Probability
Computer science
Bayesian probability
Phase (waves)
Machine learning
computer.software_genre
01 natural sciences
Article
010104 statistics & probability
03 medical and health sciences
0302 clinical medicine
Frequentist inference
Pharmacology (medical)
030212 general & internal medicine
0101 mathematics
Event (probability theory)
Pharmacology
business.industry
Bayes Theorem
Small sample
computer.file_format
R package
Research Design
Sample size determination
Sample Size
Immunotherapy
Artificial intelligence
Executable
business
computer
Algorithms
Subjects
Details
- ISSN :
- 15391612 and 15391604
- Volume :
- 20
- Database :
- OpenAIRE
- Journal :
- Pharmaceutical Statistics
- Accession number :
- edsair.doi.dedup.....fe8644eb15defcc878f7d5c128ef17fe
- Full Text :
- https://doi.org/10.1002/pst.2143