一种改进的在线多维装箱算法

Vincent Portella, Hong Shen
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引用次数: 2

摘要

将给定的一组对象打包到尽可能少的bins中,是一个基本的优化问题,在算法和运筹学中具有重要的理论意义,在资源分配特别是云计算和数据中心管理中具有重要的应用价值。本文针对多维在线装箱问题,提出了一种基于Csirik和Van Vliet提出的ROUNDdM算法的在线装箱算法。ROUNDdM算法是[7]中谐波分割方案的推广,并保证d维的最坏情况近似比为1.691d,平均情况比为1.2899d。我们的hybrid - rounddm算法使用一种基于谐波的混合分割方案,在保证相同的最坏情况近似比的同时,将该平均情况近似比提高到1.0797d。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Improved Online Multidimensional Bin Packing Algorithm
As a fundamental optimization problem, the problem of packing a given set of objects into the fewest possible bins has both important theoretical significance in algorithms and operations research and great application values for resource allocation, particularly in cloud computing and data center management. In this paper we address the multidimensional online bin packing problem and present an algorithm based on the ROUNDdM algorithm proposed by Csirik & Van Vliet [6]. The ROUNDdM algorithm is a generalisation of the harmonic partitioning scheme in [7], and guarantees a worst case approximation ratio of 1.691d for d-dimensions and an average case ratio of 1.2899d. Our HYBRID-ROUNDdM algorithm uses a harmonic based hybrid partitioning scheme and improves this average case approximation ratio to 1.0797d while guaranteeing the same worst case approximation ratio.
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