Statistical Input Data Analysis for Supply Chain Simulation

Galina Merkuryeva, O. Vecherinska, J. Hatem
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引用次数: 1

Abstract

Statistical Input Data Analysis for Supply Chain Simulation Stochastic simulation models utilize probability distributions to represent a multitude of randomly occurring events. Theoretical distributions are used to represent empirical data because they help smooth data irregularities that may exist due to values missed during the data collection period. The incompatibility between specific characteristics of the theoretical distribution and assumptions of simulation and mathematical calculus present an actual problem in supply chains. The paper is based on the analysis of mentioned contradictions. Different approaches to deal with theoretical probability distributions in supply chains are described in the paper.
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供应链仿真的统计输入数据分析
随机仿真模型利用概率分布来表示大量随机发生的事件。理论分布用于表示经验数据,因为它们有助于平滑由于数据收集期间丢失的值而可能存在的数据不规则性。理论分布的具体特征与模拟和数学演算假设之间的不相容是供应链中的一个实际问题。本文就是在对上述矛盾进行分析的基础上展开的。本文描述了处理供应链理论概率分布的不同方法。
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