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Considerable research has been undertaken on the grade point average (GPA) of the students. In the present study, an attempt is made to forecast the GPA by fitting a polynomial regression model on the GPA of the Masters level students of the University of Azad Jammu and Kashmir, Muzaffarabad, Pakistan. The data was found to be acceptable for the regression modelling after testing the assumptions. The Best subset, backward elimination and stepwise regression procedures were adopted to fit the model. Good of fit of the models is measured by the coefficient of determination, i.e. R p 2 , R adj 2 , MSE and Mallow’s C p etc. The model Y ˆ  3.63 + 0.186X1 - 0.124X4 + 0.0246X6 with R p 2 , R adj 2 , MSE values 71.1%, 70.6%, and 0.033 respectively is found to be the parsimonious model. The results indicated that the three variables, i.e. study hours at home (X1), sleeping hours (X4) and qualification of father (X6) significantly affect the GPA of the Masters level students and provide sufficient information to forecast the GPA of post graduate students of the said University.

Kamran Abbas, Muhammad Zakria, Syed Masroor Ahmad. (2011) Modelling the Grade Point Average (G.P.A.): A Case study of the Postgraduate students of the University of AJK, The Journal of Humanities & Social Sciences, Volume-19, Issue-1.
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