VarSaw: Application-tailored Measurement Error Mitigation for Variational Quantum Algorithms
Siddharth Dangwal, Gokul Subramanian Ravi, Poulami Das, Kaitlin N., Smith, Jonathan M. Baker, Frederic T. Chong

TL;DR
VarSaw is a tailored error mitigation technique for VQAs that significantly reduces measurement error effects and computational costs by exploiting redundancies, outperforming prior methods like JigSaw.
Contribution
It introduces VarSaw, a novel approach that reduces measurement error mitigation costs for VQAs by leveraging spatial and temporal redundancies, achieving up to 1000x efficiency gains.
Findings
Reduces measurement error infidelity by 45%.
Achieves 25x average reduction in circuit executions.
Improves fidelity by 55% over JigSaw.
Abstract
For potential quantum advantage, Variational Quantum Algorithms (VQAs) need high accuracy beyond the capability of today's NISQ devices, and thus will benefit from error mitigation. In this work we are interested in mitigating measurement errors which occur during qubit measurements after circuit execution and tend to be the most error-prone operations, especially detrimental to VQAs. Prior work, JigSaw, has shown that measuring only small subsets of circuit qubits at a time and collecting results across all such subset circuits can reduce measurement errors. Then, running the entire (global) original circuit and extracting the qubit-qubit measurement correlations can be used in conjunction with the subsets to construct a high-fidelity output distribution of the original circuit. Unfortunately, the execution cost of JigSaw scales polynomially in the number of qubits in the circuit, and…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Ferroelectric and Negative Capacitance Devices · Advancements in Semiconductor Devices and Circuit Design
