Integrated Models and Methods for Dynamic Pricing and Queue Management in Amusement Parks
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This work develops and evaluates an integrated framework for dynamic pricing and
queue management in amusement parks. We model time-varying arrivals, heterogeneous visitor
segments, and attraction service processes using stochastic queueing models coupled with demand
functions linking price, quoted waiting time, and perceived utility. Control is formulated as a
finite-horizon optimisation that selects time-of-day prices and queue policies (including virtual
queues and slot-based admissions) to maximise a multi-objective criterion balancing revenue,
average waiting time, and service-level constraints. Parameter estimation combines historical
ticketing and entry-gate data with attraction-level telemetry. Simulation studies calibrated on
realistic park scales indicate that coordinated pricing and queue control can reduce mean waiting
times by 30–40% while increasing revenue by 10–20% relative to flat pricing with FIFO, subject to
fairness caps and satisfaction constraints. The approach uses well-established results from revenue
management and queueing theory, making it suitable for deployment as a digital twin for
operational decision support.
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Slobodyanuk V., Khoshaba O. Integrated Models and Methods for Dynamic Pricing and Queue Management in Amusement Parks // Матеріали XVIII міжнародної науково-практичної конференції «Інформаційні технології і автоматизація–2025», Одеса, 30-31 жовтня 2025 р. Одеса : ОНТУ, 2025. С. 184-186.