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A fuzzy constraint-based approach to data reconciliation in material flow analysis

机译:物流分析中基于模糊约束的数据核对方法

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摘要

Data reconciliation consists in modifying noisy or unreliable data in order to make them consistent with a mathematical model (herein a material flow network). The conventional approach relies on least-squares minimization. Here, we use a fuzzy set-based approach, replacing Gaussian likelihood functions by fuzzy intervals, and a leximin criterion. We show that the setting of fuzzy sets provides a generalized approach to the choice of estimated values, that is more flexible and less dependent on oftentimes debatable probabilistic justifications. It potentially encompasses interval-based formulations and the least squares method, by choosing appropriate membership functions and aggregation operations. This paper also lays bare the fact that data reconciliation under the fuzzy set approach is viewed as an information fusion problem, as opposed to the statistical tradition which solves an estimation problem.
机译:数据核对包括修改嘈杂或不可靠的数据,以使其与数学模型(此处为物料流网络)保持一致。常规方法依赖于最小二乘最小化。在这里,我们使用基于模糊集的方法,用模糊区间和leximin准则替换高斯似然函数。我们表明,模糊集的设置为估计值的选择提供了一种通用方法,该方法更加灵活,并且较少依赖于经常引起争议的概率论证。通过选择适当的隶属函数和聚合运算,它可能包含基于间隔的公式和最小二乘法。本文还公开了以下事实:与解决估计问题的统计传统相反,模糊集方法下的数据协调被视为信息融合问题。

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