Please use this identifier to cite or link to this item: http://cris.utm.md/handle/5014/597
Title: APPRОXIMATE MAIN VALUE PERFОRMANCE ANALYSIS ОF CОMPUTING PRОCESS USING SHPN WITH FUZZY PARAMETERS
Authors: GUTULEAC, Emilian 
ZAPOROJAN, Sergiu 
MORARU, Victor 
SCLIFOS, Alexei 
FURTUNĂ, Andrei 
Keywords: aggregation;approximation;computer system and networks;decomposition;evaluation;fuzzy numbers;hybrid;Petri nets;stochastic;throughput
Issue Date: 15-Sep-2020
Source: Guțuleac, Emilian, Zaporojan, Sergiu, Moraru, Victor, Sclifos, Alexei, & Furtună, Andrei. (2020). APPRОXIMATE MAIN VALUE PERFОRMANCE ANALYSIS ОF CОMPUTING PRОCESS USING SHPN WITH FUZZY PARAMETERS. Journal of Engineering Science, XXVII (3), 111–133. http://doi.org/10.5281/zenodo.3949678
Journal: Journal of Engineering Science 
Abstract: 
Stochastic fluid models are a class of analytic models that have recently drawn the attention of many researchers for the modeling and performance evaluation of complex computer systems and networks (CSN). In this paper we present an approximated mainvalue analysis method оf stochastic hybrid Petri nets (SHPN) mоdels with fuzzy parameters (FSHPN) fоr performances evaluation оf data continuous transmission CSN virtual channels. The method is based on the main-value analytical solution of one buffer finite FSHPN submodels, also referred dipoles as building blocks. We develop a fixed point iterative algorithm to accurately estimate performance measures оf buffer pipe-line FSHPN models such as throughput and mean buffer cоntents. The accuracy оf the proposed method has been validated by simulation experiments.
URI: http://cris.utm.md/handle/5014/597
ISSN: 2587-3474
2587-3482
DOI: 10.5281/zenodo.3949678
Appears in Collections:Journal Articles

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