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Robustā aģentu bāzētā modelēšana×Robust Scenario Analysis×
NozareSimulācijaSimulācija
SaimeProcess / pipelineProcess / pipeline
Izcelsmes gads2000s1950 (foundations); 2003 (modern RDM formulation)
AutorsLigmann-Zielinska, A.; Railsback, S. F.; Grimm, V.Wald, A. (minimax foundation); Lempert et al. (RDM framework)
TipsSimulation robustness frameworkScenario-based robustness evaluation
PirmavotsLigmann-Zielinska, A., Cheetham, W. (2006). Spatially-explicit sensitivity analysis of an agent-based model of land use change. International Journal of Geographical Information Science, 20(12), 1355-1377. link ↗Wald, A. (1950). Statistical Decision Functions. Wiley, New York. link ↗
Citi nosaukumiRobust ABM, ABM Robustness Analysis, Uncertainty-Aware ABM, Robust Multi-Agent SimulationRSA, Robust Scenario Planning, Worst-Case Scenario Analysis, Minimax Regret Scenario Analysis
Saistītās55
KopsavilkumsRobust Agent-Based Modeling (Robust ABM) integrates systematic uncertainty quantification and sensitivity analysis into agent-based simulation workflows. Rather than relying on a single parameter configuration, it explores the full parameter space to identify which inputs drive model outcomes, ensuring that conclusions hold across plausible input ranges and model structures.Robust Scenario Analysis evaluates a set of candidate strategies across a structured collection of plausible future scenarios and selects the strategy that performs acceptably well — or best in the worst case — regardless of which scenario materializes. It merges scenario planning with robustness criteria such as maximin, minimax regret, or satisficing to support decisions under deep, irreducible uncertainty.
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ScholarGateSalīdzināt metodes: Robust Agent-Based Modeling · Robust Scenario Analysis. Izgūts 2026-06-15 no https://scholargate.app/lv/compare