Choice-based optimization and its application to revenue management

  • Teaching

    Details

    Faculty Faculty of Management, Economics and Social Sciences
    Domain Information Systems
    Code UE-EIG.00244
    Languages English
    Type of lesson Lecture
    Level Master
    Semester SP-2024

    Schedules and rooms

    Summary schedule Tuesday 13:15 - 16:00, Hebdomadaire, PER 21, Room B207 (Spring semester)
    Hours per week 3

    Teaching

    Teachers
    • Pacheco Paneque Meritxell
    Description

    Choice-based optimization enable planners to make decisions while taking into account individual’s choice behavior. This behavior is modeled with discrete choice models, which correspond to the state-of-the-art of the disaggregate mathematical representation of the demand. They assume that each individual associates a utility with each alternative they can choose from and selects the one with the highest alternative.

    Choice-based optimization problems are receiving increasing attention because they allow to explicitly capture the interplay between the planner’s decisions and the expected demand provided that the decisions are explanatory variables of the discrete choice model. In this course, we first introduce discrete choice models by reviewing their assumptions, mathematical formulations and applications. We then discuss how they can be integrated in an optimization problem by expressing the discrete choice model as a set of linear constraints that can be embedded in a mixed-integer linear formulation (i.e., linear model with both integer and continuous variables). We then apply the introduced modelling techniques in the context of revenue management, one of the application areas where the demand representation plays a very important role in the associated decision-making processes. Revenue management refers to the pricing and revenue optimization as a quantitative approach to set and update pricing and product availability decisions in a consistent and effective fashion. It has proven particularly successful in the airline industry, where fares and ticket offerings dynamically change as a function of the number of free seats, forecast of future demand and specific request characteristics. We introduce the basics on pricing with and without a capacity constraint, then discuss price differentiation aspects and look at revenue optimization problems including customer segmentation. From these single resource problems, we move to the network case, in which multiple resources are used to provide a service. We look at these revenue management topics from a choice-based optimization perspective concerning their modeling, solving and interpretation.

    Training objectives

    • Become familiar with discrete choice models, understand the underlying assumptions and learn how to formulate them.

    • Understand the characterization of discrete choice models as a set of linear constraints and how it can be embedded into an optimization problem formulated as a mixed-integer linear programming model.

    • Gain a good understanding of the main issues and opportunities in pricing and revenue optimization and learn to identify and exploit these opportunities in different business contexts.

    Softskills No
    Off field No
    BeNeFri Yes
    Mobility Yes
    UniPop No

    Documents

    Bibliography

    • M. Ben-Akiva and S. Lerman, Discrete Choice Analysis: Theory and Application to Travel Demand, MIT Press (1985)

    • Pricing and Revenue Optimization, Robert L. Phillips, Stanford University Press (2005)

  • Dates and rooms
    Date Hour Type of lesson Place
    20.02.2024 13:15 - 16:00 Cours PER 21, Room B207
    27.02.2024 13:15 - 16:00 Cours PER 21, Room B207
    05.03.2024 13:15 - 16:00 Cours PER 21, Room B207
    12.03.2024 13:15 - 16:00 Cours PER 21, Room B207
    19.03.2024 13:15 - 16:00 Cours PER 21, Room B207
    26.03.2024 13:15 - 16:00 Cours PER 21, Room B207
    09.04.2024 13:15 - 16:00 Cours PER 21, Room B207
    16.04.2024 13:15 - 16:00 Cours PER 21, Room B207
    23.04.2024 13:15 - 16:00 Cours PER 21, Room B207
    30.04.2024 13:15 - 16:00 Cours PER 21, Room B207
    07.05.2024 13:15 - 16:00 Cours PER 21, Room B207
    14.05.2024 13:15 - 16:00 Cours PER 21, Room B207
    21.05.2024 13:15 - 16:00 Cours PER 21, Room B207
    28.05.2024 13:15 - 16:00 Cours PER 21, Room B207
  • Assessments methods

    Written exam - SP-2024, Session d'été 2024

    Date 10.06.2024 17:00 - 18:30
    Assessments methods By rating
    Descriptions of Exams

    Written exam 90 minutes

    Written exam - SP-2024, Session de rattrapage 2024

    Date 27.08.2024 14:00 - 15:30
    Assessments methods By rating
    Descriptions of Exams

    Written exam 90 minutes

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