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Analytical approximations to predict performance measures of markovian type manufacturing systems with job failures and parallel processing

机译:通过分析近似来预测具有工作故障和并行处理的马尔可夫式制造系统的性能指标

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摘要

Manufacturing or service systems with multiple product classes, job circulation due to random failures, resources shared between product classes, and some portions of the manufacturing or assembly carried in series and the rest in parallel are commonly observed in real-life. The web server assembly is one such manufacturing system which exhibits the above characteristics. Predicting the performance measures of these manufacturing systems is not an easy task. The primary objective of this research was to propose analytical approximations to predict the flow times of the manufacturing systems, with the above characteristics, and evaluate its accuracy. The manufacturing system is represented as a network of queues. The parametric decomposition approach is used to develop analytical approximations for a system with arrival and service rates from a Markovian distribution. The results from the analytical approximations are compared to simulation models. In order to bridge the gap in error, correction terms were developed through regression modeling. The experimental study conducted indicates that the analytical approximations along with the correction terms can serve as a good estimate for the flow times of the manufacturing systems with the above characteristics.
机译:具有多个产品类别的制造或服务系统,由于随机故障而导致的工作流转,产品类别之间共享的资源以及串行或并行进行的制造或装配的某些部分通常是在现实生活中观察到的。 Web服务器组件就是一个具有上述特征的制造系统。预测这些制造系统的性能指标并非易事。这项研究的主要目的是提出分析近似值,以预测具有上述特征的制造系统的流动时间,并评估其准确性。制造系统表示为队列网络。参数分解方法用于为具有马尔可夫分布的到达率和服务率的系统开发解析近似。解析近似的结果与仿真模型进行比较。为了弥合误差差距,通过回归建模开发了校正项。进行的实验研究表明,分析近似值和校正项可以很好地估计具有上述特征的制造系统的运行时间。

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