基于花授粉的汇率预测算法

I Nyoman Prayana Trisna, Afiahayati Afiahayati, Muhammad Auzan
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引用次数: 0

摘要

传粉算法是一种生物启发系统,它采用了与遗传算法相似的过程,旨在解决优化问题。在这项研究中,我们研究了花授粉算法在货币兑换案例线性回归中的应用。解被表示为包含回归系数的集合。本研究对候选解的种群大小和全局传粉与局部传粉的切换概率进行了实验。我们的结果表明,当使用较大的人口规模和较高的开关概率时,最终解是更好的。此外,我们的结果表明,较高的种群规模导致相当长的运行时间,其中全局授粉的学习概率略微增加了运行时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flower Pollination Inspired Algorithm on Exchange Rates Prediction Case
Flower pollination algorithm is a bio-inspired system that adapts a similar process to genetic algorithm, that aims for optimization problems. In this research, we examine the utilization of the flower pollination algorithm in linear regression for currency exchange cases. The solutions are represented as a set that contains regression coefficients. Population size for the candidate solutions and the switch probability between global pollination and local pollination have been experimented with in this research. Our result shows that the final solution is better when a higher size population and higher switch probability are employed. Furthermore, our result shows the higher size of the population leads to considerable running time, where the leaning probability of global pollination slightly increases the running time.
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