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dc.contributor.authorSainz-de-Abajo, Beatriz
dc.contributor.authorLaso, Sergio
dc.contributor.authorGarcia-Alonso, Jose
dc.date2023-06
dc.date.accessioned2023-05-03T10:16:58Z
dc.date.available2023-05-03T10:16:58Z
dc.identifier.issn1989-1660
dc.identifier.urihttps://reunir.unir.net/handle/123456789/14592
dc.description.abstractNot all frameworks used in machine learning and deep learning integrate with Android, which requires some prerequisites. The primary objective of this paper is to present the results of the analysis and a comparison of deep learning development frameworks, which can be adapted into fully decentralized Android apps from a cloud server. As a work methodology, we develop and/or modify the test applications that these frameworks offer us a priori in such a way that it allows an equitable comparison of the analysed characteristics of interest. These parameters are related to attributes that a user would consider, such as (1) percentage of success; (2) battery consumption; and (3) power consumption of the processor. After analysing numerical results, the proposed framework that best behaves in relation to the analysed characteristics for the development of an Android application is TensorFlow, which obtained the best score against Caffe2 and Snapdragon NPE in the percentage of correct answers, battery consumption, and device CPU power consumption. Data consumption was not considered because we focus on decentralized cloud storage applications in this study.es_ES
dc.language.isoenges_ES
dc.publisherInternational Journal of Interactive Multimedia and Artificial Intelligencees_ES
dc.relation.ispartofseries;vol. 8, nº 2
dc.relation.urihttps://www.ijimai.org/journal/bibcite/reference/3306es_ES
dc.rightsopenAccesses_ES
dc.subjectandroides_ES
dc.subjectdeep learninges_ES
dc.subjectframeworkes_ES
dc.subjectimageses_ES
dc.subjectTensorFlowes_ES
dc.subjectIJIMAIes_ES
dc.titleAdaptation of Applications to Compare Development Frameworks in Deep Learning for Decentralized Android Applicationses_ES
dc.typearticlees_ES
reunir.tag~IJIMAIes_ES
dc.identifier.doihttps://doi.org/10.9781/ijimai.2023.04.006


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