<mets:mets OBJID="eprint_53009" LABEL="Eprints Item" xsi:schemaLocation="http://www.loc.gov/METS/ http://www.loc.gov/standards/mets/mets.xsd http://www.loc.gov/mods/v3 http://www.loc.gov/standards/mods/v3/mods-3-3.xsd" xmlns:mets="http://www.loc.gov/METS/" xmlns:mods="http://www.loc.gov/mods/v3" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"><mets:metsHdr CREATEDATE="2026-07-21T15:59:31Z"><mets:agent ROLE="CUSTODIAN" TYPE="ORGANIZATION"><mets:name>Repository UHAMKA</mets:name></mets:agent></mets:metsHdr><mets:dmdSec ID="DMD_eprint_53009_mods"><mets:mdWrap MDTYPE="MODS"><mets:xmlData><mods:titleInfo><mods:title>Mapping the Landscape of Deep Learning in Meaningful Principles: A Decade-Long Bibliometric Review (2015–2025)</mods:title></mods:titleInfo><mods:name type="personal"><mods:namePart type="given">Nurul Mawadah</mods:namePart><mods:namePart type="family">Salsabila</mods:namePart><mods:role><mods:roleTerm type="text">author</mods:roleTerm></mods:role></mods:name><mods:name type="personal"><mods:namePart type="given">lismawati</mods:namePart><mods:namePart type="family">lismawati</mods:namePart><mods:role><mods:roleTerm type="text">author</mods:roleTerm></mods:role></mods:name><mods:abstract>This  study  aims  to  explore  how  Deep Learning  (DL)  contributes  to meaningful   learning   in   response   to   the   increasing   demand   for   ethical, transparent,  and  student-centered  applications  of  Artificial  Intelligence  (AI)  in education.  The  study  employs  a  bibliometric  analysis  of  110  Scopus-indexed publications  published  between  2015  and  2025,  using  Biblioshiny  in  the  R Bibliometrix  package  to  identify  research  trends,  key  contributors,  institutional productivity, and thematic developments. The analysis encompasses publication trends,   citation   patterns,   author   and   country   productivity,   collaboration networks,  and  keyword  co-occurrence.  The  findings  indicate  that,  although  the majority  of  studies  originate  from  computer  science  and  engineering,  there  has been  a  growing  shift  toward  education  and  the  social  sciences,  reflecting  an increasingly  interdisciplinary  orientation,  particularly  after  2020.  Emerging themes  such  as  explainable  AI,  adaptive  learning,  and  ethical  AI  suggest  a transition  from  technology-driven  innovation  toward  pedagogy-oriented  and ethically  grounded  practices.  Keyword  co-occurrence  analysis  reveals  three dominant  thematic  clusters:  (1)  explainable  AI  in  pedagogy,  (2)  adaptive learning systems, and (3) ethical and human-centered AI in education. This shift reflects a  broader movementtoward human-centered AI that enhances learning relevance,  personalization,  and  engagement.  Overall,  the  integration  of  DL  in education   is   evolving   beyond   technical   efficiency   to   support   meaningful, ethical, and learner-centered educational experiences.</mods:abstract><mods:classification authority="lcc">B Philosophy. Psychology. Religion</mods:classification><mods:originInfo><mods:dateIssued encoding="iso8601">2026-04-20</mods:dateIssued></mods:originInfo><mods:genre>Article</mods:genre></mets:xmlData></mets:mdWrap></mets:dmdSec><mets:amdSec ID="TMD_eprint_53009"><mets:rightsMD ID="rights_eprint_53009_mods"><mets:mdWrap MDTYPE="MODS"><mets:xmlData><mods:useAndReproduction>
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