Quantum Bayesian Error Mitigation Employing Poisson Modelling over the Hamming Spectrum for Quantum Error Mitigation
Samuel Stein, Nathan Wiebe, Yufei Ding, James Ang, Ang Li

TL;DR
This paper introduces Q-Beep, a quantum error mitigation method using Poisson modeling of error distributions over the Hamming spectrum, significantly improving accuracy on IBMQ quantum processors.
Contribution
It presents a novel Poisson-based Bayesian error mitigation approach that captures non-local error clustering patterns for enhanced quantum circuit accuracy.
Findings
Up to 234.6% accuracy improvement on BV circuits
71.0% average improvement in QAOA solution quality
Effective modeling of non-local error structures
Abstract
The field of quantum computing has experienced a rapid expansion in recent years, with ongoing exploration of new technologies, a decrease in error rates, and a growth in the number of qubits available in quantum processors. However, near-term quantum algorithms are still unable to be induced without compounding consequential levels of noise, leading to non-trivial erroneous results. Quantum Error Correction and Mitigation are rapidly advancing areas of research in the quantum computing landscape, with a goal of reducing errors. IBM has recently emphasized that Quantum Error Mitigation is the key to unlocking the full potential of quantum computing. A recent work, namely HAMMER, demonstrated the existence of a latent structure regarding post-circuit induction errors when mapping to the Hamming spectrum. However, they assumed that errors occur solely in local clusters, whereas we observe…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Cloud Computing and Resource Management · Quantum Information and Cryptography
