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Building Capacity for Analytics within the Academic Environment John P. Campbell Purdue University
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Fostering an environment for exploration Building campus support Building capacity = building community 2 Building capacity…
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3 1. Keep it Simple, but Important AptitudeEffort
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Mining data from systems that support teaching and learning to provide customization, tutoring, or intervention within the learning environment “Actionable intelligence” 4 Academic Analytics
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Real time predictions of student success within a course Utilize existing data sets Minimize impact on the faculty member 5 Signals Program
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Utilize historical data Avoid temptation – one question will always lead to another Select a project in which understanding the process is as important as the project impact 6 Keep it Simple
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2. Scale over time
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8 3. Visualize
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Higher levels of B/C grades Lower levels of D/F grades Earlier drops Increased help-seeking behavior in students 9 4. Measure Progress
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Measure Impact
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Students’ Views “Really appreciate knowing how I'm doing before I get too far into the course.” “Your message was a "kick in the butt" that woke me up.” “You mean, if I get help, I'll do better, and it won't be counted against me?” “This biology lab is the hardest I've ever taken, but your message let me know that I need to get more help. Also, I can see that this lab is helping me in my biology lecture course, and in my chemistry lab.”
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Student messages “Help facilities” Faculty, advisors “Actionable Intelligence” 12 5. Focus on Actions
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Building Capacity People: skills and partnerships Technology: important, but not sufficient Models: balance between predictability and scalability Success has been more about “actions” as the result of analytics
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