Exploring the Machine Learning Paradigm in Determining Risk for Reading Disability.
Florina Erbeli1, Kai He2, Connor Cheek3
1Department of Educational Psychology, Texas A&M University.
Summary
Random forest (RF) and logistic regression (LR) equally predict reading disabilities (RD) risk. Early identification of RD should include reading fluency as a key indicator.
Area of Science:
- Education
- Psychology
- Computer Science
Background:
- Reading disabilities (RD) pose significant challenges to academic achievement.
- Accurate risk determination is crucial for timely intervention.
- Existing models may face limitations with complex data relationships.
Purpose of the Study:
- To evaluate the predictive performance of machine learning (random forest, RF) against traditional logistic regression (LR) for determining reading disability risk.
- To assess the effectiveness of a constellation model incorporating multiple RD indicators.
- To compare the utility of RF and LR within the constellation model framework.
Main Methods:
- A constellation model was used to operationalize third-grade RD risk for 12,171 Florida students.
- RD risk was determined using one to four RD indicators from first and second grade.
- The prediction accuracy of RF was compared against logistic regression (LR).
Main Results:
- Both logistic regression (LR) and random forest (RF) demonstrated comparable accuracy in predicting RD risk.
- Reading fluency emerged as the most significant predictor of RD risk across models.
- RF did not outperform LR when dealing with multicollinearity among predictors.
Conclusions:
- Random forest (RF) offers no significant advantage over logistic regression (LR) for RD risk prediction in models with linearly related predictors.
- Reading fluency is a critical component for early identification batteries aimed at determining later reading disability risk.
- The constellation model effectively integrates multiple indicators for a comprehensive assessment of RD risk.
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