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Simulasi Beratur Skenario Dasar×Model Markov×
BidangSimulasiSimulasi
KeluargaProcess / pipelineProcess / pipeline
Tahun asal1909 (queueing theory); scenario application from 1960s–1970s OR literature1906
PengasasErlang, A. K. (foundation); generalized by operations research communityAndrei Markov
JenisComparative simulation experimentProbabilistic state-transition model
Sumber perintisKleinrock, L. (1975). Queueing Systems, Volume 1: Theory. Wiley-Interscience, New York. ISBN: 978-0471491101Norris, J. R. (1997). Markov Chains. Cambridge University Press, Cambridge. ISBN: 9780521633963
AliasPSQS, policy queueing analysis, queueing policy comparison, scenario-based queueing modelMarkov Chain, Discrete-Time Markov Chain, DTMC, Markov Process
Berkaitan55
RingkasanPolicy Scenario Queueing Simulation applies queueing theory and discrete-event simulation to evaluate two or more competing service or resource-allocation policies under realistic demand and capacity conditions. By holding the system structure constant and varying only the policy rules, analysts can directly compare throughput, waiting times, utilization, and equity outcomes before committing to real-world implementation.A Markov Model represents a system as a finite set of states and specifies the probability of moving from one state to another at each time step. By capturing only the current state — not the full history — it enables tractable analysis of complex dynamic processes across health economics, engineering reliability, operations research, and social-science modeling.
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ScholarGateBandingkan kaedah: Policy Scenario Queueing Simulation · Markov Model. Dicapai 2026-06-17 daripada https://scholargate.app/ms/compare