在有限信息下计算成本时获取信息一致决策

Vic Anand, Ramji Balakrishnan, Eva Labro
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引用次数: 9

摘要

我们演示了在动态环境中查看基于有限信息的任何决策的必要性。在选择产品组合时,我们关注产品成本的使用。我们展示了关于实施决策的实际成本的事后数据如何导致产品成本估算的更新,并可能引发对初始决策的修订。我们将这一更新过程建模为离散动力系统(DDS)。如果决策是DDS的定点解决方案,我们将其定义为信息一致。我们采用数值分析来表征这类解的存在性和性质。我们发现固定点是罕见的,但简单的启发式经常和快速地找到它们。我们通过检查有限信息与多个决策规则(启发式)和问题特征(产品组合的规模,产品市场的盈利能力)的相互作用,证明了我们方法的有效性和鲁棒性。我们讨论了成本系统研究的含义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Obtaining Informationally Consistent Decisions When Computing Costs with Limited Information
We demonstrate the need to view in a dynamic context any decision based on limited information. We focus on the use of product costs in selecting the product portfolio. We show how ex post data regarding the actual costs from implementing the decision leads to updating of product cost estimates and potentially trigger a revision of the initial decision. We model this updating process as a discrete dynamical system (DDS). We define a decision as informationally consistent if it is a fixed-point solution to the DDS. We employ numerical analysis to characterize the existence and properties of such solutions. We find that fixed points are rare, but that simple heuristics find them often and quickly. We demonstrate the usefulness and robustness of our methodology by examining the interaction of limited information with multiple decision rules (heuristics) and problem features (size of product portfolio, profitability of product markets). We discuss implications for research on cost systems.
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