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Hybrid parallel multimethod hyperheuristic for mixed-integer dynamic optimization problems in computational systems biology

机译:计算系统生物学中混合整数动态优化问题的混合并联多立方课程

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This paper describes and assesses a parallel multimethod hyperheuristic for the solution of complex global optimization problems. In a multimethod hyperheuristic, different metaheuristics cooperate to outperform the results obtained by any of them isolated. The results obtained show that the cooperation of individual parallel searches modifies the systemic properties of the hyperheuristic, achieving significant performance improvements versus the sequential and the non-cooperative parallel solutions. Here we present and evaluate a hybrid parallel scheme of the multimethod, using both message-passing (MPI) and shared memory (OpenMP) models. The hybrid parallelization allows to achieve a better trade-off between performance and computational resources, through a compromise between diversity (number of islands) and intensity (number of threads per island). For the performance evaluation, we considered the general problem of reverse engineering nonlinear dynamic models in systems biology, which yields very large mixed-integer dynamic optimization problems. In particular, three very challenging problems from the domain of dynamic modeling of cell signaling were used as case studies. In addition, experiments have been carried out in a local cluster, a large supercomputer and a public cloud, to show the suitability of the proposed solution in different execution platforms.
机译:本文介绍并评估了复杂全局优化问题的解决方案的平行多算法。在多算法的多种群体,不同的血向学合作以优于孤立的任何一种结果。得到的结果表明,各行搜索的协作改变了高兴仪的全身性质,实现了显着的性能改进与顺序和非合作平行解决方案。在这里,我们使用消息传递(MPI)和共享存储器(OpenMP)模型来呈现和评估多Multimethod的混合并行方案。混合并行化允许通过在多样性(岛屿数量)和强度(每岛线的线数)之间的折衷来实现性能和计算资源之间的更好的权衡。对于绩效评估,我们考虑了系统生物学中逆向工程非线性动态模型的一般问题,从而产生了非常大的混合整数动态优化问题。特别是,使用来自细胞信号传导的动态建模领域的三个非常具有挑战性的问题作为案例研究。此外,实验已经在局部集群,大型超级计算机和公共云中进行,以显示所提出的解决方案在不同执行平台中的适用性。

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