一种新的量子随机漫步算法在服务器流量控制和任务调度中的应用

IF 1.2 Q2 MATHEMATICS, APPLIED
Dong Yumin, Xia Shufen
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引用次数: 3

摘要

提出了一种用于网络集群服务器流量控制和任务调度的量子随机漫步优化模型和算法。为了解决服务器负载均衡问题,我们研究和讨论了量子力学中的能量场分布理论,并将其应用于数据聚类。我们介绍了随机漫步的方法,并阐明了什么是量子随机漫步。本文主要研究一维量子随机漫步的标准模型。对于高维空间的数据聚类问题,我们可以将一维量子随机漫步分解为一维量子随机漫步。最后,我们将量子随机行走优化方法与遗传算法(GA)、蚁群算法(ACO)和模拟退火算法(SAA)进行了比较。同时,通过模拟和仿真实验证明了该方法的有效性和合理性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Algorithm of Quantum Random Walk in Server Traffic Control and Task Scheduling
A quantum random walk optimization model and algorithm in network cluster server traffic control and task scheduling is proposed. In order to solve the problem of server load balancing, we research and discuss the distribution theory of energy field in quantum mechanics and apply it to data clustering. We introduce the method of random walk and illuminate what the quantum random walk is. Here, we mainly research the standard model of one-dimensional quantum random walk. For the data clustering problem of high dimensional space, we can decompose one -dimensional quantum random walk into one-dimensional quantum random walk. In the end of the paper, we compare the quantum random walk optimization method with GA (genetic algorithm), ACO (ant colony optimization), and SAA (simulated annealing algorithm). In the same time, we prove its validity and rationality by the experiment of analog and simulation.
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来源期刊
Journal of Applied Mathematics
Journal of Applied Mathematics MATHEMATICS, APPLIED-
CiteScore
2.70
自引率
0.00%
发文量
58
审稿时长
3.2 months
期刊介绍: Journal of Applied Mathematics is a refereed journal devoted to the publication of original research papers and review articles in all areas of applied, computational, and industrial mathematics.
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