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Drivers and Barriers to the Use of Generative Artificial Intelligence in the Spanish Active Population: Insights from Artificial Neural Network Modeling and Shapley Additive Explanations

  • Identification data

    Identifier:  imarina:9551865
    Authors:  Torres-Coronas, Teresa; Andres-Sanchez, Jorge de; Rua, Orlando Lima; Carrasco-Aguilar, Alvaro
    Abstract:
    This study analyzes the determinants of generative artificial intelligence (GAI) use intensity among the Spanish working population, as well as the possible existence of gender gaps in its adoption. To this end, a conceptual model is proposed that incorporates perceived economic and productive usefulness (PEU), perceived social usefulness (PSU), three dimensions of the Technology Readiness Index-technological optimism (OPTI), innovativeness (INNOV), and insecurity (INSEC)-and three sociodemographic variables: entrepreneurial status, gender, and generational cohort. The model is implemented using artificial neural networks (ANNs) endowed with explanatory capability through Shapley Additive Explanations (SHAP). The application of SHAP enables the assessment of both the global and local importance of the explanatory variables, as well as the potential existence of gender biases in their contribution to GAI use. The results indicate that the most relevant variables are PEU, generational cohort, and INNOV. Although gender does not rank among the most important variables in terms of global importance, women exhibit lower levels of GAI use, and gender-related differences are also observed in the contribution of several explanatory variables. In particular, substantive effect sizes are observed for PSU, OPTI, INSEC, entrepreneurial status, and membership in Generation Y. By contrast, differences associated with especially relevant variables such as PEU and INNOV, as well as membership in Generation Z, do not exhibit meaningful effect sizes.
  • Others:

    Link to the original source: https://www.mdpi.com/2073-431X/15/4/215
    APA: Torres-Coronas, Teresa; Andres-Sanchez, Jorge de; Rua, Orlando Lima; Carrasco-Aguilar, Alvaro (2026). Drivers and Barriers to the Use of Generative Artificial Intelligence in the Spanish Active Population: Insights from Artificial Neural Network Modeling and Shapley Additive Explanations. Computers, 15(4), 215-. DOI: 10.3390/computers15040215
    Paper original source: Computers. 15 (4): 215-
    Article's DOI: 10.3390/computers15040215
    Journal publication year: 2026-04-01
    Entity: Universitat Rovira i Virgili
    Paper version: info:eu-repo/semantics/publishedVersion
    Record's date: 2026-05-16
    URV's Author/s: Torres Coronas, Maria Teresa / Andrés Sánchez, Jorge de
    Department: Gestió d'Empreses
    Licence document URL: https://repositori.urv.cat/ca/proteccio-de-dades/
    Publication Type: Journal Publications
    Author, as appears in the article.: Torres-Coronas, Teresa; Andres-Sanchez, Jorge de; Rua, Orlando Lima; Carrasco-Aguilar, Alvaro
    licence for use: https://creativecommons.org/licenses/by/3.0/es/
    Thematic Areas: Human-computer interaction, Computer science, interdisciplinary applications, Computer science (miscellaneous), Computer networks and communications, Ciência da computação
    Author's mail: teresa.torres@urv.cat
  • Keywords:

    Unified theory
    Technology acceptance models
    Shapley additive explanations
    Readiness
    Personal innovativeness
    Neural networks
    Information-technology
    Generative artificial intelligence
    Gender gap
    Gender equality
    Adoption
    Acceptance
    Computer Networks and Communications
    Computer Science
    Interdisciplinary Applications
    Human-Computer Interaction
    Computer science (miscellaneous)
    Ciência da computação
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