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Distinguishing Medical Drugs from a Large Set of Side Effects Using a Distributed Genetic Algorithm on a PC Cluster

机译:在PC簇上使用分布式遗传算法区分医疗药物从一大集的副作用

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摘要

A Distributed Genetic Algorithm to compute minimal reducts is presented for a novel biomedical application to distinguish 50 medical drugs from 228 side effects. The results indicate that 15 side effects are sufficient to differentiate among all the 50 drugs. In fact, any one of 4 sets of 15 side effects can be used. The Distributed Genetic Algorithm is inherently parallel, uses a variable mutation rate and is efficiently implemented on a PC cluster using 5, 10 and 20 nodes each with a Message Passing Interface. Results show that the distributed algorithm with 20 nodes uses much less computation time than two sequential methods (savings of about a factor of 5).
机译:提出了一种分布式遗传算法,用于计算最小化的最小化的生物医学应用,以区分50个医学药物从228副作用。结果表明,15副作用足以区分所有50种药物。实际上,可以使用4组15份副作用中的任何一个。分布式遗传算法本质上是平行的,使用可变突变率,并且在PC群集中有效地在PC群集中实现,每个节点每条节点都有一个消息传递接口。结果表明,具有20个节点的分布式算法使用多于两个顺序方法的计算时间较少(节省大约5倍)。

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