In this paper, we consider the Bayesian design of a randomized, double-blind, placebo-controlled superiority clinical trial. To leverage multiple historical datasets to augment the placebo-controlled arm, we develop three conditional borrowing approaches built upon the borrowing-by-parts prior, the hierarchical prior, and the robust mixture prior. The operating characteristics of the conditional borrowing approaches are examined. Extensive simulation studies are carried out to empirically demonstrate the superiority of the conditional borrowing approaches over the unconditional borrowing or no-borrowing approaches in terms of controlling type I error, maintaining good power, having a large “sweet-spot” region, minimizing bias, and reducing the mean-squared error of the posterior estimate of the mean parameter of the placebo-controlled arm. Computational algorithms are also developed for calculating the Bayesian type I error and power as well as the corresponding simulation errors.
机构:
Bristol Myers Squibb, Global Biometr & Data Sci, Princeton, NJ USA
Univ Connecticut, Dept Stat, Storrs, CT 06269 USABristol Myers Squibb, Global Biometr & Data Sci, Princeton, NJ USA
Li, Hongfei
Tiwari, Ram
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Bristol Myers Squibb, Global Biometr & Data Sci, Princeton, NJ USABristol Myers Squibb, Global Biometr & Data Sci, Princeton, NJ USA
Tiwari, Ram
Li, Qian H.
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Stat & Data Corp, Dept Biostat & Programming, Tempe, AZ USABristol Myers Squibb, Global Biometr & Data Sci, Princeton, NJ USA
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Univ Lancaster, Fylde Coll, Dept Math & Stat, MPS Res Unit, Lancaster LA1 4YE, EnglandUniv Lancaster, Fylde Coll, Dept Math & Stat, MPS Res Unit, Lancaster LA1 4YE, England
Whitehead, John
Valdes-Marquez, Elsa
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Univ Reading, Sect Quantitat Biol & Appl Stat, Reading, Berks, EnglandUniv Lancaster, Fylde Coll, Dept Math & Stat, MPS Res Unit, Lancaster LA1 4YE, England
Valdes-Marquez, Elsa
Johnson, Patrick
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Pfizer Global Res & Dev, Sandwich, Kent, EnglandUniv Lancaster, Fylde Coll, Dept Math & Stat, MPS Res Unit, Lancaster LA1 4YE, England
Johnson, Patrick
Graham, Gordon
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Pfizer Global Res & Dev, Sandwich, Kent, EnglandUniv Lancaster, Fylde Coll, Dept Math & Stat, MPS Res Unit, Lancaster LA1 4YE, England