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Biometric Sensor Technologies, Virtual Marketplace Dynamics Data, and Computer Vision and Deep Learning Algorithms in the Metaverse Interactive Environment

Biometric Sensor Technologies, Virtual Marketplace Dynamics Data, and Computer Vision and Deep... This article reviews and advances existing literature concerning immersive retail experiences as regards metaverse assets. In this research, previous findings were cumulated showing that consumer analytics harnesses retail data to attain frictionless user engagement processes in immersive virtual environments, and we contribute to the literature by indicating that deep learning-based ambient sound processing and real-time sensor data further immersive retail experiences in extended reality environments. Throughout April 2022, a quantitative literature review of the Web of Science, Scopus, and ProQuest databases was performed, with search terms including “metaverse” + “biometric sensor technologies,” “virtual marketplace dynamics data,” and “computer vision and deep learning algorithms.” As research published in 2022 was inspected, only 184 articles satisfied the eligibility criteria. By taking out controversial or ambiguous findings (insufficient/irrelevant data), outcomes unsubstantiated by replication, too general material, or studies with nearly identical titles, we selected 37 mainly empirical sources. Data visualization tools: Dimensions (bibliometric mapping) and VOSviewer (layout algorithms). Reporting quality assessment tool: PRISMA. Methodological quality assessment tools include: AXIS, MMAT, ROBIS, and SRDR. JEL codes: D53; E22; E32; E44; G01; G41 Keywords: biometric sensor technologies; virtual marketplace; computer vision; deeplearning; metaverse http://www.deepdyve.com/assets/images/DeepDyve-Logo-lg.png Journal of Self-Governance and Management Economics Addleton Academic Publishers

Biometric Sensor Technologies, Virtual Marketplace Dynamics Data, and Computer Vision and Deep Learning Algorithms in the Metaverse Interactive Environment

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Publisher
Addleton Academic Publishers
Copyright
© 2009 Addleton Academic Publishers
ISSN
2329-4175
eISSN
2377-0996
Publisher site
See Article on Publisher Site

Abstract

This article reviews and advances existing literature concerning immersive retail experiences as regards metaverse assets. In this research, previous findings were cumulated showing that consumer analytics harnesses retail data to attain frictionless user engagement processes in immersive virtual environments, and we contribute to the literature by indicating that deep learning-based ambient sound processing and real-time sensor data further immersive retail experiences in extended reality environments. Throughout April 2022, a quantitative literature review of the Web of Science, Scopus, and ProQuest databases was performed, with search terms including “metaverse” + “biometric sensor technologies,” “virtual marketplace dynamics data,” and “computer vision and deep learning algorithms.” As research published in 2022 was inspected, only 184 articles satisfied the eligibility criteria. By taking out controversial or ambiguous findings (insufficient/irrelevant data), outcomes unsubstantiated by replication, too general material, or studies with nearly identical titles, we selected 37 mainly empirical sources. Data visualization tools: Dimensions (bibliometric mapping) and VOSviewer (layout algorithms). Reporting quality assessment tool: PRISMA. Methodological quality assessment tools include: AXIS, MMAT, ROBIS, and SRDR. JEL codes: D53; E22; E32; E44; G01; G41 Keywords: biometric sensor technologies; virtual marketplace; computer vision; deeplearning; metaverse

Journal

Journal of Self-Governance and Management EconomicsAddleton Academic Publishers

Published: Jan 1, 2022

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