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Fighting Program Bloat with the Fractal Complexity Measure

机译:与分形复杂度衡量的战斗计划膨胀

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The problem of evolving decision programs to be used for medical diagnosis prediction brought us to the problem, well know to the genetic proramming (G) community - the tendency of programs to grow in length too fast. While searching for a solution we found out that an appropriately defined fractal complexity measure can differentiate between random and nonrandom computer programs by measuring the fractal structure of the computer programs. Knowing this fact, we introduced the fractal measure #alpha# in the evaluation and selection phase of the evolutionary process of decision program induction, which resulted in a significant program bloat reduction.
机译:不断变化的决策程序用于医学诊断预测的问题将我们带到了问题,众所周知的遗传术(G)社区 - 计划长度太快增长的趋势。在寻找解决方案的同时,我们发现适当定义的分形复杂度测量可以通过测量计算机程序的分形结构来区分随机和非谐波计算机程序。了解这一事实,我们在决策程序诱导进化过程的评估和选择阶段介绍了分数级测量阶段,这导致了一项重大的计划膨胀。

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