OIT606

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Advanced Topics in Optimization

Graduate School of BusinessGSB - Graduate School of Business

Course Description

This course provides a rigorous introduction to dynamic optimization. The course is structured in three parts. Part I covers the fundamentals of dynamic programming (DP), focusing on Bellman's principle of optimality and its application to discrete-time finite and infinite horizon problems, including Markov Decision Processes (MDPs). Part II transitions to online optimization, where optimal decisions must be made sequentially with incomplete future information. Topics include competitive analysis, online primal-dual methods, and applications. Part III discusses recent research articles that use these frameworks in a variety of applications of interest, mostly drawing on examples from operations research, computer science, and economics.

Grading Basis

GLT - GSB Letter Graded

Min

3

Max

3

Course Repeatable for Degree Credit?

No

Course Component

Workshop

Enrollment Optional?

No

Schedule

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Programs

OIT606 is a completion requirement for: