AI in Higher Education: Global Market
Report Scope - This report provides an overview of the global market for artificial intelligence (AI) in higher education and analyzes market trends. - The study focuses on providing insight into... もっと見る
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図表リストList of TablesTable 1 : Parameters for AI Policy in Top Universities Table 2 : Focus on AI Policies at Top Ranked Universities, October 2025 Table 3 : Parameters for AI Policy Development in Higher Education Table 4 : AI Literacy Framework for Stakeholders Table 5 : Benefits of Automating Rubric Feedback Table 6 : AI Sentiment Scores for Higher Education, 2025 Table 7 : AI Adoption Sentiment Scores, by Application, 2025 Table 8 : AI Disruption Sentiment Scores, by Application, 2025 Table 9 : AI Use Cases Sentiment Scores, by Application, 2025 Table 10 : AI Spend Sentiment Scores, by Application, 2025 Table 11 : Copilot Features in Microsoft 365 Apps Table 12 : Google Gemini Features for Higher Education Table 13 : Developments and Strategic Initiatives in Higher Education, 2024 - January 2026 Table 14 : Investments and Grants for AI in Higher Education, 2024-2026 Table 15 : Product Mapping Analysis Comparing Vendors’ AI Features in Higher Education, 2025 Table 16 : Abbreviations Used in This Report
SummaryReport Scope- This report provides an overview of the global market for artificial intelligence (AI) in higher education and analyzes market trends. - The study focuses on providing insight into AI in higher education. - In-depth policy and guidance, along with institutional guidelines, are analyzed. - Market dynamics, including key drivers, challenges, and opportunities, are covered. - The research also covers the impact of AI adoption, along with investments and funding by platform providers and end users. - The report analyzes in detail the market ecosystem covering AI technology and platform providers, content and learning solution providers, systems integrators and service providers, and higher education institutions. - A survey was conducted to provide insights for adoption, investments and the market ecosystem. - The report also covers the sentiment index on four key parameters for AI in higher education: adoption, disruption, use cases and spending. Report Includes - An overview of artificial intelligence (AI) adoption and its role in the global higher education sector - Analysis of key market forces shaping AI use in higher education, including drivers, challenges, trends, and opportunities - Review of AI policies, regulations, governance frameworks, and institutional guidelines across major regions - Examination of AI readiness, adoption pathways, and value chain stakeholders in higher education - Assessment of the impact of U.S. tariffs and trade policies on the AI in higher education market - Analysis of key AI use cases for faculty, students, and administrative staff - Evaluation of AI adoption impact, including investments and funding by platform providers and end users - AI Sentiment Index analysis covering adoption, disruption, spending, and use cases in higher education - Analysis of the competitive landscape, including AI platform providers, solution providers, system integrators, and service providers - Insights from primary research highlighting key pain points, unmet needs, and emerging areas - Overview of the market ecosystem involving technology providers, content and learning solution providers, and higher education institutions - Company profiles of the leading players Table of ContentsTable of ContentsChapter 1 Introduction Scope of Report Market Summary Integration of Technology Market Dynamics and Growth Factors Future Trends and Developments Policy Viewpoint Sentiment Index Viewpoint Conclusion Chapter 2 AI Policy, Readiness and Market Foundations in Top Universities Role of AI in Higher Education AI Roadmap and Adoption Pathways in Higher Education AI Roadmap Adoption Pathways AI Frameworks and Governance AI Policies and Guidelines Importance of Regulations Implementation or Experimentation of AI in Key Universities University of Oxford Massachusetts Institute of Technology (MIT) Princeton University University of Cambridge Harvard University Stanford University California Institute of Technology (Caltech) Imperial College London University of California (UC) Yale University ETH Zurich Tsinghua University University of Pennsylvania University of Chicago Johns Hopkins University National University of Singapore Cornell University Columbia University Chapter 3 Market Forces Market Forces Snapshot Market Drivers Enhancement of the Personalized Learning Experience Automation of Administrative Tasks Integration of AI into Curriculum Development Market Challenges and Restraints Algorithmic Bias Data Privacy Faculty and Staff Resistance to Adopting AI Market Opportunities AI Tutors and Virtual Classrooms Embracing Generative AI in Higher Education Automated Grading and Rubric Scoring Chapter 4 AI Sentiment Index Analysis: Higher Education Overview of the AI Sentiment Index Sentiment Index Analysis Methodology and Data Sources How Is It Calculated? AI Sentiment Scores Analysis Four Categories of Sentiment Adoption Disruption Use Case Spend Cross-Application Insights Faculty Students Administrators AI Adoption: Sentiment Analysis Introduction AI Adoption: Sentiment Analysis by Application AI Disruption: Sentiment Analysis Introduction AI Disruption: Sentiment Analysis by Application AI Use Cases: Sentiment Analysis Introduction AI Use Cases: Sentiment Analysis by Application AI Spend: Sentiment Analysis Introduction AI Spend: Sentiment Analysis by Application Chapter 5 AI Competitive Landscape AI Stack Providers Snapshot: Platform, Infrastructure and Service Platform Providers Infrastructure Providers Service Providers Recent Developments and Strategic Initiatives Investments and Grants for AI in Higher Education AI in the EdTech Sector AI Startups in EdTech Funding in AI Companies in EdTech Market Ecosystem Learning Management Platforms Adaptive/Personalized Learning Assessment Tools Content Detection Tools Assistance Tools Higher Education Universities Product Mapping Analysis Primary Research Insights (From Universities’ Perspectives) Role of AI in Higher Education Key AI Tools Used by Students How Should AI Assist Universities? Viewpoints of Primary Respondents on AI in Higher Education Chapter 6 Appendix Methodology References Abbreviations List of Tables/GraphsList of TablesTable 1 : Parameters for AI Policy in Top Universities Table 2 : Focus on AI Policies at Top Ranked Universities, October 2025 Table 3 : Parameters for AI Policy Development in Higher Education Table 4 : AI Literacy Framework for Stakeholders Table 5 : Benefits of Automating Rubric Feedback Table 6 : AI Sentiment Scores for Higher Education, 2025 Table 7 : AI Adoption Sentiment Scores, by Application, 2025 Table 8 : AI Disruption Sentiment Scores, by Application, 2025 Table 9 : AI Use Cases Sentiment Scores, by Application, 2025 Table 10 : AI Spend Sentiment Scores, by Application, 2025 Table 11 : Copilot Features in Microsoft 365 Apps Table 12 : Google Gemini Features for Higher Education Table 13 : Developments and Strategic Initiatives in Higher Education, 2024 - January 2026 Table 14 : Investments and Grants for AI in Higher Education, 2024-2026 Table 15 : Product Mapping Analysis Comparing Vendors’ AI Features in Higher Education, 2025 Table 16 : Abbreviations Used in This Report
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