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Quantum-inspired topology optimization

  • Xiaojun Wang*
  • , Bowen Ni
  • , Lei Wang
  • *Corresponding author for this work
  • Beihang University

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

Abstract

Topology optimization is the procedure of determining the connectivity, shape and location of voids inside a given design domain. This chapter proposes a quantum-inspired evolutionary algorithm (QEA) for structural topology optimization. It reviews the formulation of the continuum structural topology optimization model and the characteristics of quantum computing. The chapter also proposes the detailed implementation of a QEA-based topology optimization. It discusses two issues: the density-based continuum structural topology optimization formulation and the characteristics of quantum computing, which may be conducive to reducing the computational expense of topology optimization. The entire theoretical procedure of quantum-inspired topology optimization, which mainly combines FEM analysis, design sensitivity solution and quantum-inspired search, is accomplished for continuum structures. As the experimental implementation of quantum computation needs initialization, coherent manipulation, control and read of the fragile quantum system, practically building quantum computers has proved extremely difficult.

Original languageEnglish
Title of host publicationModern Trends in Structural and Solid Mechanics 3
Subtitle of host publicationNon-deterministic Mechanics
Publisherwiley
Pages177-201
Number of pages25
ISBN (Electronic)9781119831839
ISBN (Print)9781786307187
DOIs
StatePublished - 4 Jun 2021

Keywords

  • Continuum structural topology optimization
  • Continuum structural topology optimization model
  • Fragile quantum system
  • Quantum computing
  • Structural topology optimization

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