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A new two-dimensional performance measure in purchase order sizing

机译:采购订单确定中的新二维绩效指标

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Lack of knowledge about demand responses or about behavioural aspects of decision-making within procurement processes is a significant cost driver in modern supply chains. Very often, this lack of knowledge leads to a substantial increase in inventories and may endanger negotiated service levels. For instance, various studies reveal that decision- makers tend to anchor orders close to the average past demand although the target order size is significantly higher or lower. In order to improve this situation, feedback has to be systematically provided to the decision-makers. In combination with modern big data analytics and reporting instruments that enable exhaustive monitoring, effective indicators have to be applied in order to directly detect processes with significant potential for improvement. Hence, this paper proposes a new approach for measuring the intricacy in purchase order sizing that addresses self-awareness skills of decision-makers. By simultaneously analysing the amount and structure of occurring costs, processes with a significant and simple structured error pattern are identified. In order to identify these processes more reliably, a new approach that supplements former information-theoretic entropy measures by an additional cost value is proposed. By analysing costs and the structure of deviations from target values in a two-dimensional measure, a more comprehensive understanding of the considered order sizing process is pursued. In order to illustrate the application of the new approach and show limitations of one-dimensional measures, different scenarios that exemplify the new approach are presented.
机译:缺乏对需求响应的了解或对采购流程中决策行为的了解,是现代供应链中重要的成本驱动因素。通常,这种知识的缺乏导致库存的大量增加,并可能危及议定的服务水平。例如,各种研究表明,决策者倾向于将订单锚定在接近过去平均需求的水平,尽管目标订单规模明显更高或更低。为了改善这种情况,必须系统地向决策者提供反馈。与能够进行详尽监控的现代大数据分析和报告工具相结合,必须应用有效的指标才能直接检测具有重大改进潜力的流程。因此,本文提出了一种新的方法来衡量采购订单规模的复杂性,从而解决了决策者的自我意识。通过同时分析发生成本的数量和结构,可以识别出具有明显且简单的结构化错误模式的过程。为了更可靠地识别这些过程,提出了一种通过附加成本值补充以前的信息理论熵度量的新方法。通过在二维量度中分析成本和偏离目标值的结构,可以对所考虑的订单大小确定过程进行更全面的了解。为了说明新方法的应用并显示一维度量的局限性,提出了各种示例来说明新方法。

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