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A Perturbative Approach to the Solution of the Thirring Quantum Cellular Automaton
by
Rota, Saverio
, Perinotti, Paolo
, Bisio, Alessandro
, Pizzamiglio, Andrea
in
Algorithms
/ Apexes
/ Automata theory
/ Cellular automata
/ Combinatorial analysis
/ Onsite
/ path sum solution
/ perturbative approach
/ Physics
/ quantum cellular automata
/ Quantum field theory
/ Quantum theory
/ Simulation
/ Thirring quantum cellular automaton
2025
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A Perturbative Approach to the Solution of the Thirring Quantum Cellular Automaton
by
Rota, Saverio
, Perinotti, Paolo
, Bisio, Alessandro
, Pizzamiglio, Andrea
in
Algorithms
/ Apexes
/ Automata theory
/ Cellular automata
/ Combinatorial analysis
/ Onsite
/ path sum solution
/ perturbative approach
/ Physics
/ quantum cellular automata
/ Quantum field theory
/ Quantum theory
/ Simulation
/ Thirring quantum cellular automaton
2025
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Do you wish to request the book?
A Perturbative Approach to the Solution of the Thirring Quantum Cellular Automaton
by
Rota, Saverio
, Perinotti, Paolo
, Bisio, Alessandro
, Pizzamiglio, Andrea
in
Algorithms
/ Apexes
/ Automata theory
/ Cellular automata
/ Combinatorial analysis
/ Onsite
/ path sum solution
/ perturbative approach
/ Physics
/ quantum cellular automata
/ Quantum field theory
/ Quantum theory
/ Simulation
/ Thirring quantum cellular automaton
2025
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A Perturbative Approach to the Solution of the Thirring Quantum Cellular Automaton
Journal Article
A Perturbative Approach to the Solution of the Thirring Quantum Cellular Automaton
2025
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Overview
The Thirring Quantum Cellular Automaton (QCA) describes the discrete time dynamics of local fermionic modes that evolve according to one step of the Dirac cellular automaton, followed by the most general on-site number-preserving interaction, and serves as the QCA counterpart of the Thirring model in quantum field theory. In this work, we develop perturbative techniques for the QCA path sum approach, expanding both the number of interaction vertices and the mass parameter of the Thirring QCA. By classifying paths within the regimes of very light and very heavy particles, we computed the transition amplitudes in the two- and three-particle sectors to the first few orders. Our investigation into the properties of the Thirring QCA, addressing the combinatorial complexity of the problem, yielded some useful results applicable to the many-particle sector of any on-site number-preserving interactions in one spatial dimension.
Publisher
MDPI AG,MDPI
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