Utilize este identificador para referenciar este registo: https://biblioteca.unisced.edu.mz/handle/123456789/779
Título: ASSIGNING AI: SEVEN APPROACHES FOR STUDENTS WITH PROMPTS
Autores: Mollick, Ethan
Mollick, Lilach
Palavras-chave: Inteligencia artificial
Inteligencia artificial na educacao
Data: 2023
Editora: Pennsylvania & Wharton Interactive
Resumo: This paper examines the transformative role of Large Language Models (LLMs) in education and their potential as learning tools, despite their inherent risks and limitations. The authors propose seven approaches for utilizing AI in classrooms: AI-tutor, AI-coach, AI-mentor, AI-teammate, AI-tool, AIsimulator, and AI-student, each with distinct pedagogical benefits and risks. The aim is to help students learn with and about AI, with practical strategies designed to mitigate risks such as complacency about the AI’s output, errors, and biases. These strategies promote active oversight, critical assessment of AI outputs, and complementation of AI's capabilities with the students' unique insights. By challenging students to remain the "human in the loop", the authors aim to enhance learning outcomes while ensuring that AI serves as a supportive tool rather than a replacement. The proposed framework offers a guide for educators navigating the integration of AI-assisted learning in classrooms.
Descrição: 46p.
URI: https://biblioteca.unisced.edu.mz/handle/123456789/779
Aparece nas colecções:Inteligência Artificial na Educação

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