Mechanism behind creating qubit gates expressed as interfering quantum pathway amplitudes

Fuente: arXiv
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Main Authors: Kasprzak, Michael, Bhole, Gaurav, Rabitz, Herschel
Format: Preprint
Published: 2025
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author Kasprzak, Michael
Bhole, Gaurav
Rabitz, Herschel
author_facet Kasprzak, Michael
Bhole, Gaurav
Rabitz, Herschel
contents Hamiltonian encoding was introduced as a technique for revealing the mechanism of controlled quantum systems. It does so by decomposing the evolution into pathways between the computational basis states, where each pathway has an associated complex amplitude. The magnitude of a pathway amplitude determines its significance and many pathways constructively and/or destructively interfere to produce the final evolution of the system. In this paper, we apply Hamiltonian encoding to reveal the mechanism behind creating qubit gates implemented via optimal control pulses. An X gate, two CNOT gates, and a SWAP gate are examined to determine the degree of interference involved and to demonstrate that different optimal controls produce distinct mechanisms. Although the detailed mechanism for creating any gate depends on the nature of the control field, the mechanism analysis tools are generic. The presented gates and their mechanisms in this paper are thus illustrative and a researcher may apply these same tools to any gate with a suitable optimal control field.
format Preprint
id arxiv_https___arxiv_org_abs_2506_05600
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mechanism behind creating qubit gates expressed as interfering quantum pathway amplitudes
Kasprzak, Michael
Bhole, Gaurav
Rabitz, Herschel
Quantum Physics
Hamiltonian encoding was introduced as a technique for revealing the mechanism of controlled quantum systems. It does so by decomposing the evolution into pathways between the computational basis states, where each pathway has an associated complex amplitude. The magnitude of a pathway amplitude determines its significance and many pathways constructively and/or destructively interfere to produce the final evolution of the system. In this paper, we apply Hamiltonian encoding to reveal the mechanism behind creating qubit gates implemented via optimal control pulses. An X gate, two CNOT gates, and a SWAP gate are examined to determine the degree of interference involved and to demonstrate that different optimal controls produce distinct mechanisms. Although the detailed mechanism for creating any gate depends on the nature of the control field, the mechanism analysis tools are generic. The presented gates and their mechanisms in this paper are thus illustrative and a researcher may apply these same tools to any gate with a suitable optimal control field.
title Mechanism behind creating qubit gates expressed as interfering quantum pathway amplitudes
topic Quantum Physics
url https://arxiv.org/abs/2506.05600