Isoprobability Models of Qubit Dynamics: Demonstration via Time-Dependent Phase Control on IBM Quantum
Ivo S. Mihov, Nikolay V. Vitanov

TL;DR
This paper introduces isoprobability models for qubit control, allowing different pulse shapes to produce the same transition probabilities, validated experimentally on IBM Quantum to enhance robustness and flexibility.
Contribution
It develops a novel class of isoprobability models for qubit dynamics, using phase control to emulate detuning, validated through experiments on IBM Quantum processors.
Findings
Isoprobability models enable flexible pulse shaping for qubit control.
Experimental validation shows high agreement with simulations (low MSE).
Phase modulation effectively replaces detuning control in quantum gates.
Abstract
Efficient quantum control is a cornerstone for the advancement of quantum technologies, from computation to sensing and communications. Several approaches in quantum control, e.g. optimal control and inverse engineering, use pulse amplitude and frequency shaping as control tools. Often, these approaches prescribe pulse shapes which are difficult or impossible to implement. To this end, we develop the concept of isoprobability classes of models of qubit dynamics, in which various pairs of time-dependent pulse amplitude and frequency generate the same transition probability profile (albeit different temporal evolutions toward this probability). In this manner, we introduce an additional degree of freedom, and hence flexibility in qubit control. Selection of hardware-aware temporal pulse shapes has the potential to decrease gate duration, overcome platform constraints and increase…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Mechanics and Applications · Quantum Information and Cryptography
