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Real Time Model of Fuzzy Random Regression Based on a Convex Hull Approach

机译:基于凸包方法的模糊随机回归实时模型

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摘要

In this study, we present a new idea dealing with the analysis of fuzzy random variables (FRVs) being treated as samples of data. The proposed concept can be used to model various real-life situations where uncertainty is not only present in the form of randomness but also comes in the form of imprecision described in terms of fuzzy sets. We propose a hybrid approach, which combines a convex hull approach (called Beneath-Beyond algorithm) with a fuzzy random regression analysis. Falling under the umbrella of intelligent data analysis (IDA) tool, this approach is suitable for real-time implementation of data analysis. For a fuzzy random data set, we include simulation results and highlight two main advantages, namely a decrease of required analysis time and a reduction of computational complexity. This emphasizes that the proposed IDA approach becomes an efficient way for real-time data analysis.
机译:在这项研究中,我们提出了一个新的想法,处理了对数据样本被视为数据的模糊随机变量(FRV)的分析。所提出的概念可用于建模各种现实生活情况,其中不确定不仅以随机性形式存在,而且以模糊集合描述的不精确形式。我们提出了一种混合方法,它将凸船体方法(称为超出算法下方)与模糊的随机回归分析相结合。落在智能数据分析(IDA)工具的伞下,这种方法适用于数据分析的实时实现。对于模糊的随机数据集,我们包括仿真结果并突出两个主要优点,即减少所需的分析时间和计算复杂性的降低。这强调,所提出的IDA方法成为实时数据分析的有效方法。

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