Fully Quantum Lattice Gas Automata Building Blocks for Computational Basis State Encodings

Fuente: arXiv
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Main Authors: Georgescu, Călin A., Schalkers, Merel A., Möller, Matthias
Format: Preprint
Published: 2025
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author Georgescu, Călin A.
Schalkers, Merel A.
Möller, Matthias
author_facet Georgescu, Călin A.
Schalkers, Merel A.
Möller, Matthias
contents Lattice Gas Automata (LGA) is a classical method for simulating physical phenomena, including Computational Fluid Dynamics (CFD). Quantum LGA (QLGA) is the family of methods that implement LGA schemes on quantum computers. In recent years, QLGA has garnered attention from researchers thanks to its potential of efficiently modeling CFD processes by either reducing memory requirements or providing simultaneous representations of exponentially many LGA states. In this work, we introduce novel building blocks for QLGA algorithms that rely on computational basis state encodings. We address every step of the algorithm, from initial conditions to measurement, and provide detailed complexity analyses that account for all discretization choices of the system under simulation. We introduce multiple ways of instantiating initial conditions, efficient boundary condition implementations for novel geometrical patterns, a novel collision operator that models less restricted interactions than previous implementations, and quantum circuits that extract quantities of interest out of the quantum state. For each building block, we provide intuitive examples and open-source implementations of the underlying quantum circuits.
format Preprint
id arxiv_https___arxiv_org_abs_2506_12662
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Fully Quantum Lattice Gas Automata Building Blocks for Computational Basis State Encodings
Georgescu, Călin A.
Schalkers, Merel A.
Möller, Matthias
Quantum Physics
Computational Physics
Lattice Gas Automata (LGA) is a classical method for simulating physical phenomena, including Computational Fluid Dynamics (CFD). Quantum LGA (QLGA) is the family of methods that implement LGA schemes on quantum computers. In recent years, QLGA has garnered attention from researchers thanks to its potential of efficiently modeling CFD processes by either reducing memory requirements or providing simultaneous representations of exponentially many LGA states. In this work, we introduce novel building blocks for QLGA algorithms that rely on computational basis state encodings. We address every step of the algorithm, from initial conditions to measurement, and provide detailed complexity analyses that account for all discretization choices of the system under simulation. We introduce multiple ways of instantiating initial conditions, efficient boundary condition implementations for novel geometrical patterns, a novel collision operator that models less restricted interactions than previous implementations, and quantum circuits that extract quantities of interest out of the quantum state. For each building block, we provide intuitive examples and open-source implementations of the underlying quantum circuits.
title Fully Quantum Lattice Gas Automata Building Blocks for Computational Basis State Encodings
topic Quantum Physics
Computational Physics
url https://arxiv.org/abs/2506.12662