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Model Markov×Simulasi Barisan Tunggu×
BidangSimulasiSimulasi
KeluargaProcess / pipelineProcess / pipeline
Tahun asal19061909
PengasasAndrei MarkovAgner Krarup Erlang
JenisProbabilistic state-transition modelStochastic simulation / analytical modeling
Sumber perintisNorris, J. R. (1997). Markov Chains. Cambridge University Press, Cambridge. ISBN: 9780521633963Kleinrock, L. (1975). Queueing Systems, Volume 1: Theory. Wiley-Interscience, New York. ISBN: 978-0471491101
AliasMarkov Chain, Discrete-Time Markov Chain, DTMC, Markov ProcessQueue Simulation, Queuing Theory Simulation, Waiting-Line Simulation, DES-Queue
Berkaitan56
RingkasanA 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.Queueing Simulation combines classical queueing theory with discrete-event simulation to model systems where entities arrive, wait for service, and depart. It predicts performance metrics such as average waiting time, queue length, and server utilization, enabling capacity planning and bottleneck identification across service, manufacturing, healthcare, and network systems.
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ScholarGateBandingkan kaedah: Markov Model · Queueing Simulation. Dicapai 2026-06-15 daripada https://scholargate.app/ms/compare