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Uncertainty-driven generation of neutrosophic random variates from the Weibull distribution

Abstract Objective This paper aims to introduce an algorithm designed for generating random variates in situations characterized by uncertainty. Method The paper outlines the development of two distinct algorithms for producing both minimum and maximum neutrosophic data based on the Weibull distribu...

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Bibliografiset tiedot
Päätekijä: Muhammad Aslam
Aineistotyyppi: Artigo
Kieli:Inglês
Julkaistu: SpringerOpen 2023-12-01
Sarja:Journal of Big Data
Aiheet:
Linkit:https://doi.org/10.1186/s40537-023-00860-y
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