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Innovative learning analytics for evaluating instruction a big data roadmap to effective online learning / Theodore W. Frick, Rodney D. Myers, Cesur Dagli, Andrew F. Barrett.

By: Contributor(s): Material type: TextTextLanguage: English Publication details: London : Routledge, 2021.Description: 1 online resource illustrations (black and white)ISBN:
  • 1000454770
  • 9781003176343
  • 1003176348
  • 9781000454772
  • 9781000454703
  • 1000454703
Subject(s): DDC classification:
  • 371.3344678
Online resources: Summary: Innovative Learning Analytics for Evaluating Instruction covers the application of a forward-thinking research methodology that uses big data to evaluate the effectiveness of online instruction. Analysis of Patterns in Time (APT) is a practical analytic approach that finds meaningful patterns in massive data sets, capturing temporal maps of students' learning journeys by combining qualitative and quantitative methods. Offering conceptual and research overviews, design principles, historical examples, and more, this book demonstrates how APT can yield strong, easily generalizable empirical evidence through big data; help students succeed in their learning journeys; and document the extraordinary effectiveness of First Principles of Instruction. It is an ideal resource for faculty and professionals in instructional design, learning engineering, online learning, program evaluation, and research methods.
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Item type Current library Call number Materials specified Status Date due Barcode Item holds
E-Books E-Books National Library of India Online Resource 371.3344678 (Browse shelf(Opens below)) Available EBK000029592ENG
Total holds: 0

Innovative Learning Analytics for Evaluating Instruction covers the application of a forward-thinking research methodology that uses big data to evaluate the effectiveness of online instruction. Analysis of Patterns in Time (APT) is a practical analytic approach that finds meaningful patterns in massive data sets, capturing temporal maps of students' learning journeys by combining qualitative and quantitative methods. Offering conceptual and research overviews, design principles, historical examples, and more, this book demonstrates how APT can yield strong, easily generalizable empirical evidence through big data; help students succeed in their learning journeys; and document the extraordinary effectiveness of First Principles of Instruction. It is an ideal resource for faculty and professionals in instructional design, learning engineering, online learning, program evaluation, and research methods.

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