Full metadata
Title
Online embedded assessment for Dragoon, intelligent tutoring system
Description
Embedded assessment constantly updates a model of the student as the student works on instructional tasks. Accurate embedded assessment allows students, instructors and instructional systems to make informed decisions without requiring the student to stop instruction and take a test. This thesis describes the development and comparison of several student models for Dragoon, an intelligent tutoring system. All the models were instances of Bayesian Knowledge Tracing, a standard method. Several methods of parameterization and calibration were explored using two recently developed toolkits, FAST and BNT-SM that replaces constant-valued parameters with logistic regressions. The evaluation was done by calculating the fit of the models to data from human subjects and by assessing the accuracy of their assessment of simulated students. The student models created using node properties as subskills were superior to coarse-grained, skill-only models. Adding this extra level of representation to emission parameters was superior to adding it to transmission parameters. Adding difficulty parameters did not improve fit, contrary to standard practice in psychometrics.
Date Created
2015
Contributors
- Grover, Sachin (Author)
- VanLehn, Kurt (Thesis advisor)
- Walker, Erin (Committee member)
- Shiao, Ihan (Committee member)
- Arizona State University (Publisher)
Topical Subject
Resource Type
Extent
viii, 57 pages : color illustrations
Language
eng
Copyright Statement
In Copyright
Primary Member of
Peer-reviewed
No
Open Access
No
Handle
https://hdl.handle.net/2286/R.I.36515
Statement of Responsibility
by Sachin Grover
Description Source
Viewed on March, 16, 2016
Level of coding
full
Note
thesis
Partial requirement for: M.S., Arizona State University, 2015
bibliography
Includes bibliographical references (pages 56-57)
Field of study: Computer science
System Created
- 2016-02-01 07:12:16
System Modified
- 2021-08-30 01:25:21
- 3 years 2 months ago
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