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Restaurant Revenue Management

Author

Listed:
  • Dimitris Bertsimas

    (Sloan School of Management, E53-363, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139)

  • Romy Shioda

    (Operations Research Center, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139)

Abstract

We develop two classes of optimization models to maximize revenue in a restaurant (while controlling average waiting time as well as perceived fairness) that may violate the first-come-first-serve (FCFS) rule. In the first class of models, we use integer programming, stochastic programming, and approximate dynamic programming methods to decide dynamically when, if at all, to seat an incoming party during the day of operation of a restaurant that does not accept reservations. In a computational study with simulated data, we show that optimization-based methods enhance revenue relative to the industry practice of FCFS by 0.11% to 2.22% for low-load factors, by 0.16% to 2.96% for medium-load factors, and by 7.65% to 13.13% for high-load factors, without increasing, and occasionally decreasing, waiting times compared to FCFS. The second class of models addresses reservations. We propose a two-step procedure: Use a stochastic gradient algorithm to decide a priori how many reservations to accept for a future time and then use approximate dynamic programming methods to decide dynamically when, if at all, to seat an incoming party during the day of operation. In a computational study involving real data from an Atlanta restaurant, the reservation model improves revenue relative to FCFS by 3.5% for low-load factors and 7.3% for high-load factors.

Suggested Citation

  • Dimitris Bertsimas & Romy Shioda, 2003. "Restaurant Revenue Management," Operations Research, INFORMS, vol. 51(3), pages 472-486, June.
  • Handle: RePEc:inm:oropre:v:51:y:2003:i:3:p:472-486
    DOI: 10.1287/opre.51.3.472.14956
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    References listed on IDEAS

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    1. Jeffrey I. McGill & Garrett J. van Ryzin, 1999. "Revenue Management: Research Overview and Prospects," Transportation Science, INFORMS, vol. 33(2), pages 233-256, May.
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    Cited by:

    1. Debjit Roy & Eirini Spiliotopoulou & Jelle de Vries, 2022. "Restaurant analytics: Emerging practice and research opportunities," Production and Operations Management, Production and Operations Management Society, vol. 31(10), pages 3687-3709, October.
    2. Nicholas Apergis & Chi Keung Lau, 2022. "Hotel Revenue Convergence: Evidence Across Star Hotels in Chinese Provinces," Atlantic Economic Journal, Springer;International Atlantic Economic Society, vol. 50(1), pages 37-51, June.
    3. Eren B. Çil & Martin A. Lariviere, 2013. "Saving Seats for Strategic Customers," Operations Research, INFORMS, vol. 61(6), pages 1321-1332, December.
    4. Simhon, Eran & Starobinski, David, 2018. "On the impact of information disclosure on advance reservations: A game-theoretic view," European Journal of Operational Research, Elsevier, vol. 267(3), pages 1075-1088.
    5. Guerriero, Francesca & Miglionico, Giovanna & Olivito, Filomena, 2014. "Strategic and operational decisions in restaurant revenue management," European Journal of Operational Research, Elsevier, vol. 237(3), pages 1119-1132.
    6. Clauzel, Amélie & Guichard, Nathalie & Riché, Caroline, 2019. "Dining alone or together? The effect of group size on the service customer experience," Journal of Retailing and Consumer Services, Elsevier, vol. 47(C), pages 222-228.
    7. J Pinder, 2005. "Using revenue management to improve pricing and capacity management in programme management," Journal of the Operational Research Society, Palgrave Macmillan;The OR Society, vol. 56(1), pages 75-87, January.
    8. Yael Deutsch & Israel David, 2020. "Benchmark policies for utility-carrying queues with impatience," Queueing Systems: Theory and Applications, Springer, vol. 95(1), pages 97-120, June.
    9. Karsu, Özlem & Morton, Alec, 2015. "Inequity averse optimization in operational research," European Journal of Operational Research, Elsevier, vol. 245(2), pages 343-359.
    10. Tianhua Zhang & Juliang Zhang & Fu Zhao & Yihong Ru & John W. Sutherland, 2020. "Allocating resources for a restaurant that serves regular and group-buying customers," Electronic Commerce Research, Springer, vol. 20(4), pages 883-913, December.
    11. Wang, Tingsong & Xing, Zheng & Hu, Hongtao & Qu, Xiaobo, 2019. "Overbooking and delivery-delay-allowed strategies for container slot allocation," Transportation Research Part E: Logistics and Transportation Review, Elsevier, vol. 122(C), pages 433-447.
    12. Shan Wang & Nan Liu & Guohua Wan, 2020. "Managing Appointment-Based Services in the Presence of Walk-in Customers," Management Science, INFORMS, vol. 66(2), pages 667-686, February.
    13. E. Borgonovo & L. Peccati, 2010. "Moment calculations for piecewise-defined functions: an application to stochastic optimization with coherent risk measures," Annals of Operations Research, Springer, vol. 176(1), pages 235-258, April.
    14. Jonathan Patrick & Martin L. Puterman & Maurice Queyranne, 2008. "Dynamic Multipriority Patient Scheduling for a Diagnostic Resource," Operations Research, INFORMS, vol. 56(6), pages 1507-1525, December.
    15. Maclean, K.D.S. & Ødegaard, F., 2020. "Dynamic capacity allocation for group bookings in live entertainment," European Journal of Operational Research, Elsevier, vol. 287(3), pages 975-988.
    16. Jaelynn Oh & Xuanming Su, 2022. "Optimal Pricing and Overbooking of Reservations," Production and Operations Management, Production and Operations Management Society, vol. 31(3), pages 928-940, March.
    17. Xiao, Baichun & Yang, Wei, 2010. "A revenue management model for products with two capacity dimensions," European Journal of Operational Research, Elsevier, vol. 205(2), pages 412-421, September.
    18. Kwangji Kim & Mi-Jung Kim & Jae-Kyoon Jun, 2020. "Small Queuing Restaurant Sustainable Revenue Management," Sustainability, MDPI, vol. 12(8), pages 1-14, April.
    19. Alexei Alexandrov & Martin A. Lariviere, 2012. "Are Reservations Recommended?," Manufacturing & Service Operations Management, INFORMS, vol. 14(2), pages 218-230, April.
    20. Mohit Tyagi & Nomesh B. Bolia, 2022. "Approaches for restaurant revenue management," Journal of Revenue and Pricing Management, Palgrave Macmillan, vol. 21(1), pages 17-35, February.
    21. Kuo-Pin Li* & Shieh-Liang Chen & Wen-Hong Chiu & Wen-Cheng Lu, 2019. "Strategies of Reduce Customer’s No-show Probability at Restaurants," The Journal of Social Sciences Research, Academic Research Publishing Group, vol. 5(1), pages 145-152, 01-2019.

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