Identificador persistente para citar o vincular este elemento: https://accedacris.ulpgc.es/handle/10553/142181
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dc.contributor.authorRodriguez-Almeida, Antonio J.en_US
dc.contributor.authorSocorro Marrero, Guillermo V.en_US
dc.contributor.authorBetancort, Carmeloen_US
dc.contributor.authorZamora Zamorano, Garleneen_US
dc.contributor.authorDéniz García, Alejandroen_US
dc.contributor.authorAlvarez-Male, Maria L.en_US
dc.contributor.authorArsand, Eiriken_US
dc.contributor.authorSoguero-Ruiz, Cristinaen_US
dc.contributor.authorWagner, Ana M.en_US
dc.contributor.authorGranja, Conceicaoen_US
dc.contributor.authorCallicó, Gustavo M.en_US
dc.contributor.authorFabelo, Himaren_US
dc.date.accessioned2025-07-07T08:36:29Z-
dc.date.available2025-07-07T08:36:29Z-
dc.date.issued2025en_US
dc.identifier.otherWoS-
dc.identifier.urihttps://accedacris.ulpgc.es/handle/10553/142181-
dc.description.abstractIntroduction Diabetes mellitus (DM) is a chronic condition defined by increased blood glucose that affects more than 500 million adults. Type 1 diabetes (T1D) needs to be treated with insulin. Keeping glucose within the desired range is challenging. Despite the advances in the mHealth field, the appearance of the do-it-yourself (DIY) tools, and the progress in glucose level prediction based on deep learning (DL), these tools fail to engage the users in the long-term. This limits the benefits that they could have on the daily T1D self-management, specifically by providing an accurate prediction of their short-term glucose level.Methods This work proposed a DL-based DIY framework for interstitial glucose prediction using continuous glucose monitoring (CGM) data to generate one personalized DL model per user, without using data from other people. The DIY module reads the CGM raw data (as it would be uploaded by the potential users of this tool), and automatically prepares them to train and validate a DL model to perform glucose predictions up to one hour ahead. For training and validation, 1 year of CGM data collected from 29 subjects with T1D were used.Results and Discussion Results showed prediction performance comparable to the state-of-the-art, using only CGM data. To the best of our knowledge, this work is the first one in providing a DL-based DIY approach for fully personalized glucose prediction. Moreover, this framework is open source and has been deployed in Docker, enabling its standalone use, its integration on a smartphone application, or the experimentation with novel DL architectures.en_US
dc.languageengen_US
dc.relation.ispartofFrontiers in Digital Healthen_US
dc.sourceFrontiers In Digital Health,v. 7, (Junio 2025)en_US
dc.subject3314 Tecnología médicaen_US
dc.subject.otherMobile Technology Systemen_US
dc.subject.otherChallengesen_US
dc.subject.otherSecurityen_US
dc.subject.otherPrivacyen_US
dc.subject.otherType 1 Diabetesen_US
dc.subject.otherDeep Learningen_US
dc.subject.otherPersonalized Medicineen_US
dc.subject.otherContinuous Glucose Monitoringen_US
dc.subject.otherMhealthen_US
dc.titleAn AI-based module for interstitial glucose forecasting enabling a "Do-It-Yourself" application for people with type 1 diabetesen_US
dc.typeinfo:eu-repo/semantics/Articleen_US
dc.typeArticleen_US
dc.identifier.doi10.3389/fdgth.2025.1534830en_US
dc.identifier.isi001518117600001-
dc.identifier.eissn2673-253X-
dc.relation.volume7en_US
dc.investigacionIngeniería y Arquitecturaen_US
dc.type2Artículoen_US
dc.contributor.daisngidNo ID-
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dc.contributor.daisngidNo ID-
dc.description.numberofpages22en_US
dc.utils.revisionen_US
dc.contributor.wosstandardWOS:Rodriguez-Almeida, AJ-
dc.contributor.wosstandardWOS:Socorro-Marrero, GV-
dc.contributor.wosstandardWOS:Betancort, C-
dc.contributor.wosstandardWOS:Zamora-Zamorano, G-
dc.contributor.wosstandardWOS:Deniz-Garcia, A-
dc.contributor.wosstandardWOS:Alvarez-Male, ML-
dc.contributor.wosstandardWOS:Arsand, E-
dc.contributor.wosstandardWOS:Soguero-Ruiz, C-
dc.contributor.wosstandardWOS:Wägner, AM-
dc.contributor.wosstandardWOS:Granja, C-
dc.contributor.wosstandardWOS:Callico, GM-
dc.contributor.wosstandardWOS:Fabelo, H-
dc.date.coverdateJunio 2025en_US
dc.identifier.ulpgcen_US
dc.contributor.buulpgcBU-TELen_US
dc.description.sjr0,864
dc.description.sjrqQ1
item.fulltextCon texto completo-
item.grantfulltextopen-
crisitem.author.deptGIR IUIBS: Diabetes y endocrinología aplicada-
crisitem.author.deptIU de Investigaciones Biomédicas y Sanitarias-
crisitem.author.deptGIR IUIBS: Diabetes y endocrinología aplicada-
crisitem.author.deptIU de Investigaciones Biomédicas y Sanitarias-
crisitem.author.deptGIR IUIBS: Diabetes y endocrinología aplicada-
crisitem.author.deptIU de Investigaciones Biomédicas y Sanitarias-
crisitem.author.deptDepartamento de Ciencias Médicas y Quirúrgicas-
crisitem.author.deptGIR IUMA: Diseño de Sistemas Electrónicos Integrados para el procesamiento de datos-
crisitem.author.deptIU de Microelectrónica Aplicada-
crisitem.author.deptDepartamento de Ingeniería Electrónica y Automática-
crisitem.author.deptGIR IUMA: Diseño de Sistemas Electrónicos Integrados para el procesamiento de datos-
crisitem.author.deptIU de Microelectrónica Aplicada-
crisitem.author.orcid0000-0003-2543-1571-
crisitem.author.orcid0000-0002-7663-9308-
crisitem.author.orcid0000-0002-3784-5504-
crisitem.author.orcid0000-0002-9794-490X-
crisitem.author.parentorgIU de Investigaciones Biomédicas y Sanitarias-
crisitem.author.parentorgIU de Investigaciones Biomédicas y Sanitarias-
crisitem.author.parentorgIU de Investigaciones Biomédicas y Sanitarias-
crisitem.author.parentorgIU de Microelectrónica Aplicada-
crisitem.author.parentorgIU de Microelectrónica Aplicada-
crisitem.author.fullNameSocorro Marrero, Guillermo Valentín-
crisitem.author.fullNameZamora Zamorano, Garlene-
crisitem.author.fullNameDéniz García, Alejandro-
crisitem.author.fullNameWägner, Anna Maria Claudia-
crisitem.author.fullNameMarrero Callicó, Gustavo Iván-
crisitem.author.fullNameFabelo Gómez, Himar Antonio-
Colección:Artículos
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