Folding-Free Zero-Noise Extrapolation by Layout-induced Noise Diversity
Debarthi Pal, Yogesh Simmhan

TL;DR
FF-ZNE introduces a noise mitigation method for quantum computing that removes the need for noise factor selection by leveraging hardware layout diversity, making zero noise extrapolation more practical and scalable.
Contribution
The paper presents FF-ZNE, a novel zero noise extrapolation technique that eliminates the need for noise scaling factors by exploiting isomorphic hardware layouts with different noise profiles.
Findings
Achieves ~6% and 4.5% deviation reduction on IBM Quantum devices
Demonstrates scalability to 50-qubit circuits
Provides a fixed linear form for noise extrapolation under depolarizing noise
Abstract
Near term quantum processors operate in a noise dominated regime, motivating error mitigation techniques that recover accurate expectation values without full fault tolerance. Zero Noise Extrapolation (ZNE) is a widely used but biased error mitigation method that lacks rigorous error bounds. Its effective application requires nontrivial technical choices, most notably the selection of noise scaling factors and extrapolation models, making ZNE sensitive to user expertise and often necessitating costly trial and error procedures. Here, we introduce Folding Free Zero Noise Extrapolation (FF-ZNE), a method that removes the need for noise factor selection by achieving effective noise amplification without circuit folding. FF-ZNE exploits isomorphic hardware layouts with distinct native noise profiles, such that executing a fixed circuit across these layouts induces controllable variations in…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Low-power high-performance VLSI design · Quantum Information and Cryptography
