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Analiza wrażliwości z analizą przyczyn źródłowych×Symulacja Monte Carlo×
DziedzinaPlanowanie eksperymentówPodejmowanie decyzji
RodzinaProcess / pipelineMCDM
Rok powstania1990s–2000s (formalized integration in reliability and quality engineering literature)1949
TwórcaIntegrated practice drawing on sensitivity analysis (Saltelli et al.) and root cause analysis (Ishikawa, Kepner-Tregoe)Metropolis, N., Ulam, S.
TypIntegrated diagnostic and optimization methodRobustness wrapper — Monte Carlo uncertainty propagation
Źródło pierwotneSaltelli, A., Ratto, M., Andres, T., Campolongo, F., Cariboni, J., Gatelli, D., Saisana, M., & Tarantola, S. (2008). Global Sensitivity Analysis: The Primer. John Wiley & Sons. ISBN: 978-0470059975Metropolis, N., Ulam, S. (1949). The Monte Carlo method. Journal of the American Statistical Association DOI ↗
Inne nazwySA-RCA, sensitivity-driven root cause analysis, parameter sensitivity with failure analysis, sensitivity-informed RCA
Pokrewne40
PodsumowanieSensitivity Analysis with Root Cause Analysis (SA-RCA) is an integrated engineering method that first quantifies how much each input parameter or process variable drives variability in a system output, then applies structured root cause analysis to the most influential factors to identify and eliminate the underlying failure mechanisms. The combination transforms numerical rankings of influence into actionable diagnoses, making it particularly effective in quality engineering, reliability analysis, and process improvement contexts.MONTE-CARLO-SIMULATION (Monte Carlo Simulation — Stochastic uncertainty propagation through MCDM model) is a ranking multi-criteria decision-making (MCDM) method introduced by Metropolis, N., Ulam, S. in 1949. It turns a decision matrix of alternatives scored on multiple criteria into a structured, reproducible result.
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ScholarGatePorównaj metody: Sensitivity analysis with root cause analysis · MONTE-CARLO-SIMULATION. Pobrano 2026-06-17 z https://scholargate.app/pl/compare