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The Use of Random-Fuzzy Variables for the Implementation of Decision Rules in the Presence of Measurement Uncertainty

机译:在存在测量不确定性的情况下使用随机-模糊变量执行决策规则

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摘要

The practical, everyday final applications of measurement processes are mostly aimed at making a decision, on the basis of a comparison between the measured value and a reference value. If uncertainty in measurement is considered, this comparison must be performed between an interval of confidence (the measurement result) and a scalar quantity (the reference value). The result of such a comparison is quite often not univocal, so that making a decision may become quite troublesome. This paper shows how the use of the random-fuzzy variables in the expression of uncertainty in measurement allows the implementation of simple decision rules capable of taking into account the measurement uncertainty correctly. The proposed decision rules are applied to measurement procedures based on measurement algorithms that contain if ... then ... else structures where the if condition is applied to intermediate measurement results. An example of implementation of these decision rules is reported and discussed.
机译:测量过程的实际日常最终应用大多旨在根据测量值和参考值之间的比较来做出决定。如果考虑到测量的不确定性,则必须在置信区间(测量结果)和标量(参考值)之间进行此比较。这种比较的结果通常不是很明确,因此做出决定可能会变得很麻烦。本文展示了如何在测量不确定度的表达式中使用随机模糊变量,从而实现能够正确考虑测量不确定度的简单决策规则。拟议的决策规则基于包含以下条件的测量算法应用于测量程序:if ... then ... else结构,其中if条件应用于中间测量结果。报告并讨论了这些决策规则的实现示例。

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