From e59120b683ca7c52bcc68b00a5be4a01f646fc54 Mon Sep 17 00:00:00 2001 From: Andreas Tsouchlos Date: Fri, 24 Apr 2026 14:16:18 +0200 Subject: [PATCH] Fix unicode character in bib file --- src/thesis/bibliography.bib | 2 +- 1 file changed, 1 insertion(+), 1 deletion(-) diff --git a/src/thesis/bibliography.bib b/src/thesis/bibliography.bib index 99f36ee..e4d0f10 100644 --- a/src/thesis/bibliography.bib +++ b/src/thesis/bibliography.bib @@ -1016,7 +1016,7 @@ In this work, we introduce a fast implementation of the minimum-weight perfect m abstract = {Quantum error correction (QEC) is essential for building scalable quantum computers, but a lack of systematic, end-to-end evaluation methods makes it difficult to assess how different QEC codes perform under realistic conditions. The vast diversity of codes, an expansive experimental search space, and the absence of a standardized framework prevent a thorough, holistic analysis. To address this, we introduce ECCentric, an end-to-end benchmarking framework designed to systematically evaluate QEC codes across the full quantum computing stack. ECCentric is designed to be modular, extensible, and general, allowing for a comprehensive analysis of QEC code families under varying hardware topologies, noise models, and compilation strategies. Using ECCentric, we conduct the first systematic benchmarking of major QEC code families against realistic, mid-term quantum device parameters. Our empirical analysis reveals that intra-QPU execution significantly outperforms distributed methods, that qubit connectivity is a far more critical factor for reducing logical errors than increasing code distance, and that compiler overhead remains a major source of error. Furthermore, our findings suggest that trapped-ion architectures with qubit shuttling are the most promising near-term platforms and that on noisy devices, a strategic and selective application of QEC is necessary to avoid introducing more errors than are corrected. This study provides crucial, actionable insights for both hardware designers and practitioners, guiding the development of fault-tolerant quantum systems.}, urldate = {2026-01-08}, publisher = {arXiv}, - author = {Świerkowska, Aleksandra and Pflieger, Jannik and Giortamis, Emmanouil and Bhatotia, Pramod}, + author = {{\'S}wierkowska, Aleksandra and Pflieger, Jannik and Giortamis, Emmanouil and Bhatotia, Pramod}, month = nov, year = {2025}, note = {arXiv:2511.01062 [quant-ph]