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Modeling methods and a branch and cut algorithm for pharmaceutical clinical trial planning using stochastic programming

机译:随机规划的药物临床试验计划建模方法和分支切割算法

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摘要

We discuss methods for the solution of a multi-stage stochastic programming formulation for the resource-constrained scheduling of clinical trials in the pharmaceutical research and development pipeline. First, we present a number of theoretical properties to reduce the size and improve the tightness of the formulation, focusing primarily on non-anticipativity constraints. Second, we develop a novel branch and cut algorithm where necessary non-anticipativity constraints that are unlikely to be active are removed from the initial formulation and only added if they are violated within the search tree. We improve the performance of our algorithm by combining different node selection strategies and exploring different approaches to constraint violation checking.
机译:我们讨论了用于药品研发渠道中资源受限的临床试验计划的多阶段随机规划公式的求解方法。首先,我们主要针对非预期性约束,提出了一些减小其尺寸并提高配方密封性的理论特性。其次,我们开发了一种新颖的分支剪切算法,其中从初始公式中删除了不太可能需要激活的必要非预期约束,并且仅在搜索树内违反约束时才添加。我们通过组合不同的节点选择策略并探索不同的约束冲突检查方法来提高算法的性能。

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