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GAVis: a Tool for Visualization and Control of Genetic Algorithms for -omic Data Analysis

机译:GAVis:用于基因组数据分析的遗传算法的可视化和控制工具

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A visualization and steering application, GAVis, has been developed to aid in understanding the behavior of and guiding the convergence of genetic algorithms running in parallel over long time periods. When classification techniques such as support vector machines (SVMs) paired with complete leave-one-out validation are used as a fitness function for identification of markers in -omic data, the time to complete one generation can exceed an hour on modern high-performance computing clusters. Separate solution populations on "islands" can help maintain a more diverse solution space and conveniently map to compute nodes on a cluster. Adjustments can be made at runtime to speed the convergence of genetic algorithms by stimulating lagging island populations with migrations of high-performing individuals or by selectively increasing mutation rates
机译:已经开发了一种可视化和转向应用,Gavis是为了帮助了解在长期段内并行运行遗传算法的遗传算法的行为。当与完整的休假验证配对的等待向量机(SVMS)等分类技术用作适合函数,用于识别 - 以 - M-中的标记,完成一代的时间可能超过现代高性能的一个小时计算群集。 “岛屿”的单独解决方案群体可以帮助维护更多样化的解决方案空间,方便地映射到群集中计算节点。可以在运行时进行调整,以通过刺激延迟岛群,通过迁移的高性能或选择性地增加突变率来加速遗传算法的收敛

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