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Human-computer interaction and augmented intelligence = the paradigm of interactive machine learning in educational software /
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Human-computer interaction and augmented intelligence/ by Christos Troussas, Akrivi Krouska, Cleo Sgouropoulou.
其他題名:
the paradigm of interactive machine learning in educational software /
作者:
Troussas, Christos.
其他作者:
Sgouropoulou, Cleo.
出版者:
Cham :Springer Nature Switzerland : : 2025.,
面頁冊數:
xvi, 431 p. :ill., digital ; : 24 cm.;
Contained By:
Springer Nature eBook
標題:
Computers and Education. -
電子資源:
https://doi.org/10.1007/978-3-031-84453-9
ISBN:
9783031844539
Human-computer interaction and augmented intelligence = the paradigm of interactive machine learning in educational software /
Troussas, Christos.
Human-computer interaction and augmented intelligence
the paradigm of interactive machine learning in educational software /[electronic resource] :by Christos Troussas, Akrivi Krouska, Cleo Sgouropoulou. - Cham :Springer Nature Switzerland :2025. - xvi, 431 p. :ill., digital ;24 cm. - Cognitive systems monographs,v. 341867-4933 ;. - Cognitive systems monographs ;v.16..
Human-Computer Interaction in EducationHuman-Computer Interaction in Education -- The Role of Augmented Intelligence and Pedagogical Theories in Digital Learning -- Teaching methods and Online Instructional Design -- Cognitive Styles as a Factor of Effective Learning.
This book explores the transformative roles of human-computer interaction (HCI) and augmented intelligence (AI) in shaping intelligent systems. HCI focuses on designing interactive systems that enhance human-technology relationships, while AI empowers users with adaptive, data-driven tools that complement decision-making. Together, these fields drive innovation, creating systems that are efficient, intuitive, and inclusive, addressing diverse user needs across various domains. Central to this work is the paradigm of interactive machine learning (IML), which builds on HCI and AI principles to create adaptive systems capable of evolving in real-time. The book highlights the application of IML in educational software, demonstrating how dynamic, personalized, and responsive learning environments can enhance student engagement and success. It provides detailed case studies and practical examples that showcase how IML aligns educational content, feedback, and interactions with learner behaviors and preferences. Additionally, it includes numerous Python code implementations and actionable design strategies, making these concepts accessible to practitioners and researchers alike. Key topics include leveraging cognitive and communication styles to shape adaptive systems, integrating learning models to enhance personalization, and addressing ethical considerations such as data privacy and algorithmic fairness. Readers will also discover discussions on creating personalized tutoring systems, collaborative platforms, and immersive environments that redefine educational technology. This book is a valuable resource for researchers, software developers, educators, instructional designers, and technologists at the intersection of human-computer interaction, augmented intelligence, and educational innovation. With its comprehensive framework and practical insights, it offers the tools to design adaptive, inclusive, and impactful learning systems for the future.
ISBN: 9783031844539
Standard No.: 10.1007/978-3-031-84453-9doiSubjects--Topical Terms:
669806
Computers and Education.
LC Class. No.: QA76.9.H85
Dewey Class. No.: 004.019
Human-computer interaction and augmented intelligence = the paradigm of interactive machine learning in educational software /
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This book explores the transformative roles of human-computer interaction (HCI) and augmented intelligence (AI) in shaping intelligent systems. HCI focuses on designing interactive systems that enhance human-technology relationships, while AI empowers users with adaptive, data-driven tools that complement decision-making. Together, these fields drive innovation, creating systems that are efficient, intuitive, and inclusive, addressing diverse user needs across various domains. Central to this work is the paradigm of interactive machine learning (IML), which builds on HCI and AI principles to create adaptive systems capable of evolving in real-time. The book highlights the application of IML in educational software, demonstrating how dynamic, personalized, and responsive learning environments can enhance student engagement and success. It provides detailed case studies and practical examples that showcase how IML aligns educational content, feedback, and interactions with learner behaviors and preferences. Additionally, it includes numerous Python code implementations and actionable design strategies, making these concepts accessible to practitioners and researchers alike. Key topics include leveraging cognitive and communication styles to shape adaptive systems, integrating learning models to enhance personalization, and addressing ethical considerations such as data privacy and algorithmic fairness. Readers will also discover discussions on creating personalized tutoring systems, collaborative platforms, and immersive environments that redefine educational technology. This book is a valuable resource for researchers, software developers, educators, instructional designers, and technologists at the intersection of human-computer interaction, augmented intelligence, and educational innovation. With its comprehensive framework and practical insights, it offers the tools to design adaptive, inclusive, and impactful learning systems for the future.
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