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dc.contributor.authorSobrino, Nahual
dc.contributor.authorAseginolaza, Unai
dc.contributor.authorJornet Somoza, Joaquim
dc.contributor.authorBorge, Juan
dc.date.accessioned2026-02-23T12:09:10Z
dc.date.available2026-02-23T12:09:10Z
dc.date.issued2026
dc.identifier.issn2639-0213en
dc.identifier.otherhttps://katalogoa.mondragon.edu/janium-bin/janium_login_opac.pl?find&ficha_no=200888en
dc.identifier.urihttps://hdl.handle.net/20.500.11984/14037
dc.description.abstractAccurate assessment and management of errors is indispensable for extracting useful results from noisy intermediate-scale quantum devices. In this work, we propose the qubit error probability (QEP), a device specific metric that combines relaxation, dephasing, gate, and measurement contributions into a single per qubit figure of merit computable before execution. Leveraging QEP as the control variable, we revisit zero noise extrapolation (ZNE) by adding pairs of controlled native two-qubit gates on all connected qubit pairs to generate circuits with successively larger mean QEP; the zero error limit is then approximated by a linear regression of the measured observable against those values. Benchmarking on IBM Quantum Heron processors, we apply QEP guided ZNE to first order Trotterized simulations of the two dimensional transverse field Ising model, chosen as a representative interacting many body system, involving up to 68 qubits and 15 Trotter steps. In regimes where the raw circuits exhibit a finite mean QEP, the method suppresses observable errors beyond those attainable with circuit depth scaled ZNE, while requiring only three noise scaled evaluations and no additional classical post processing. These results demonstrate that QEP serves as a transparent and efficient error metric and that its integration into ZNE provides a practical route to reliability gains on current superconducting hardware, without the resource costs associated with full quantum error correction.en
dc.language.isoengen
dc.publisherAIP Publishingen
dc.subjectQuantum mechanicsen
dc.subjectquantum computingen
dc.titleA useful metric for the NISQ era: Qubit error probability and its role in zero noise extrapolationen
dcterms.accessRightshttp://purl.org/coar/access_right/c_abf2en
dcterms.sourceAVS Quantum Scienceen
local.contributor.groupAnálisis de datos y ciberseguridades
local.description.peerreviewedtrueen
local.identifier.doihttps://doi.org/10.1116/5.0287324en
local.contributor.otherinstitutionhttps://ror.org/009gyvm78es
local.contributor.otherinstitutionhttps://ror.org/00wvqgd19es
local.contributor.otherinstitutionhttps://ror.org/000xsnr85es
local.source.detailsVol. 8. N. art. 013803, 2026en
oaire.format.mimetypeapplication/pdfen
oaire.file$DSPACE\assetstoreen
oaire.resourceTypehttp://purl.org/coar/resource_type/c_6501en
oaire.versionhttp://purl.org/coar/version/c_ab4af688f83e57aaen
dc.unesco.tesaurohttp://vocabularies.unesco.org/thesaurus/concept2214en
oaire.funderNameGobierno Vascoen
oaire.funderIdentifierhttps://ror.org/00pz2fp31 / http://data.crossref.org/fundingdata/funder/10.13039/501100003086en
oaire.fundingStreamElkartek 2024en
oaire.awardNumberKK-2024-00105en
oaire.awardTitleKuantikaren Berrikuntzarako Ikasketa Teknologikoa (KUBIT)en
oaire.awardURISin informaciónen
dc.unesco.clasificacionhttp://skos.um.es/unesco6/120903en


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