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  4. Solving the Product Breakdown Structure Problem with constrained QAOA
 
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September 15, 2024
Conference Paper
Title

Solving the Product Breakdown Structure Problem with constrained QAOA

Abstract
Constrained optimization problems, where not all possible variable assignments are feasible solutions, comprise numerous practically relevant optimization problems such as the Traveling Salesman Problem (TSP), or portfolio optimization. Established methods such as quantum annealing or vanilla QAOA usually transform the problem statement into a Quadratic Unconstrained Binary Optimization (QUBO) form, where the constraints are enforced by auxiliary terms in the QUBO objective. Consequently, such approaches fail to utilize the additional structure provided by the constraints. In this work, we present a method for solving the industry relevant Product Breakdown Structure problem. The method is based on constrained QAOA, which by construction never explores the part of the Hilbert space that represents solutions forbidden by the problem constraints. The size of the search space is thereby reduced significantly. We experimentally show that this approach has not only a very favorable scaling behavior, but also appears to suppress the negative effects of Barren Plateaus.
Author(s)
Zander, René
Fraunhofer-Institut für Offene Kommunikationssysteme FOKUS  
Seidel, Raphael
Fraunhofer-Institut für Offene Kommunikationssysteme FOKUS  
Inajetovic, Matteo
Steinmann, Niklas
Fraunhofer-Institut für Offene Kommunikationssysteme FOKUS  
Petric, Matic
Fraunhofer-Institut für Offene Kommunikationssysteme FOKUS  
Mainwork
IEEE Quantum Week 2024. Proceedings. Volume III: Third IEEE Quantum Science and Engineering Education Conference, QSEEC 2024  
Conference
Quantum Science and Engineering Education Conference 2024  
Quantum Week 2024  
Open Access
DOI
10.1109/QCE60285.2024.10356
Language
English
Fraunhofer-Institut für Offene Kommunikationssysteme FOKUS  
Keyword(s)
  • quantum algorithm

  • quantum optimization

  • Hilbert spaces

  • Investments

  • Optimization algorithms

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