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Online veröffentlicht: 04. Juli 2020
Seitenbereich: 281 - 297
Eingereicht: 16. Nov. 2019
Akzeptiert: 29. Apr. 2020
DOI: https://doi.org/10.34768/amcs-2020-0022
Schlüsselwörter
© 2020 Przemyslaw Grzegorzewski et al., published by Sciendo
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.
In this paper, a new methodology for simulating bootstrap samples of fuzzy numbers is proposed. Unlike the classical bootstrap, it allows enriching a resampling scheme with values from outside the initial sample. Although a secondary sample may contain results beyond members of the primary set, they are generated smartly so that the crucial characteristics of the original observations remain invariant. Two methods for generating bootstrap samples preserving the representation (i.e., the value and the ambiguity or the expected value and the width) of fuzzy numbers belonging to the primary sample are suggested and numerically examined with respect to other approaches and various statistical properties.