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March 29, 2026Multimodal Technologies and Interaction0 citationsOpen Access

Distributed Teaching Agency–AI in the University: A Typology Based on Student Voice

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TFTomás Fontaines-RuizAPAntonio Ponce-RojoPMPaolo Fabre Merchán

Key Points

  • This research aims to explore how generative AI influences teacher authority and student perspectives in higher education.
  • Non-experimental, cross-sectional explanatory study
  • Lexicometric analysis using ALCESTE on open-ended responses
  • Sample of 3120 students segmented into 1077 units
  • Positioning theory applied to interpret results
  • Three configurations of teacher–AI agency identified: Immediate Customizer, Technological Literacy Facilitator, and Operational Optimizer
  • High teacher agency found in Immediate Customizer group, minimal delegation to AI
  • Emergence of an illusion of autonomy linked to AI's agentive erasure
  • Findings suggest a new way to integrate student voices into AI governance in education

Abstract

Generative AI is reshaping university teaching and creating tension around authority, evidence, and accountability when decisions are made using algorithms. From a student perspective, this study constructed a typology of distributed teacher–AI agency (TAI) and examined the discursive mechanisms that produce the illusion of teacher autonomy. A non-experimental, cross-sectional, explanatory study was conducted: a lexicometric analysis of the ALCESTE (IRAMUTEQ) questionnaire, using open-ended responses from 3120 students (Mexico, n = 2051; Ecuador, n = 1069), segmented into 1077 units, and analyzed using positioning theory. Co-agency was operationalized using Teacher Agency (A), Delegation to AI (D), Governance (G: disclosure, criteria, verification), and the Illusion Index (II = A/(D + G + 1)). Three configurations emerged: Immediate Customizer (28.8%) with very high A and minimal D/G (II = 25.4); Technological Literacy Facilitator (27.3%) with visible delegation and safeguards (II ≈ 2.0); and Operational Optimizer (43.9%) oriented toward accelerating tasks with moderate governance (II ≈ 2.7). The illusion was associated with the agentive erasure of AI and a rhetoric of immediacy/efficiency that replaced verifiable criteria. These findings transform the student voice into a criteria-based diagnostic tool for strengthening traceability, minimal verification, and responsible orchestration of AI in higher education.

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Cite This Study

Fontaines-Ruiz et al. (2026) studied this question.

synapsesocial.com/papers/69c8c43ede0f0f753b39efc5https://doi.org/10.3390/mti10040034
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