Towards scalable multi-qubit optimal control via interaction decomposition in the diagonal frame
Bora Baran, Tommaso Calarco, Matthias M. Mueller, Felix Motzoi

TL;DR
This paper presents a scalable method for multi-qubit control using interaction decomposition in the diagonal frame, significantly reducing complexity and enabling efficient synthesis of entangling gates in quantum systems.
Contribution
It introduces a diagonal frame control framework that simplifies multi-qubit target characterization and enables deterministic isolation of multi-qubit interactions without diagonalization inversion.
Findings
Achieved a 10-100x reduction in operation time for multi-qubit entangling gates.
Successfully synthesized two tripartite entangling gates with a single microwave pulse.
Demonstrated the method on a simulated NV center with a three-qubit nuclear spin register.
Abstract
In this work, we introduce a general n-qubit formulation of control objectives that allows a control target to be specified in a diagonal frame, so that only the diagonal entries must be characterized, thus quadratically reducing the complexity of the cost functional in constrast to a full target matrix. We do so by representing any n-qubit unitary transformation as a diagonal phase map on the computational basis states, as they are naturally diagonalizable by unitarity. By using discrete derivative operators to analytically construct support-selective phase invariants, we enable to deterministically isolate and quantify any multi-qubit interactions encoded in the phase map. These phase invariants form a coordinate system for the formulation of specific control targets in terms of arbitrary desired multi-qubit interactions, without having to invert the diagonalization during the…
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Taxonomy
TopicsAdvanced NMR Techniques and Applications · Quantum Information and Cryptography · Quantum Computing Algorithms and Architecture
