Polynomial Multiple Regression - Which function to use and how ?

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Priya
Priya am 20 Aug. 2013
I have around 50 dependent quantities (regressor variables).
I want to find the best relation between the response variable data and regressor variable data.
Which combination shall I try ?
starting from simple Quadratic Equation.
y = a.x1^2 + b.x2 + c
Which matlab function can i use ? How to use it ?
y, x1,x2,x3 ......... x50 is a matrix of 100 X 1 order.
Please help.
Can anyone suggest till how much polynomial degree shall I go to find best correlation value between original and predicted y variable.

Antworten (1)

Shashank Prasanna
Shashank Prasanna am 20 Aug. 2013
Bearbeitet: Shashank Prasanna am 20 Aug. 2013
How do I go about doing it?
Implement on your own using backslash: http://www.mathworks.com/help/matlab/ref/mldivide.html
How do I choose the polynomial order?
That is problem dependent. Without looking at the data and without understanding the application area and requirements there is no way anyone can give you a fixed answer.
However you could use STEPWISE to automatically choose the model for you:
  2 Kommentare
Priya
Priya am 21 Aug. 2013
For multiple Linear regression I used the function - regress for two and three predictors. Then I substituted the coefficients in the linear equation and calculate the predicted value of y and found correlation coefficient between original and predicted y dataset. Correlation was around 0.5 (max)
Is it different from Linear Model Fit function ?
Secondly: equation of the form Linear regression model: y ~ 1 + x1*x2 + x2^2
Does it come in Linear Model ? I think it is quadratic equation and should have been included in polynomial model .. Please explain.
Shashank Prasanna
Shashank Prasanna am 21 Aug. 2013
LinearModel.fit is newer and easier to use and is the recommended approach. REGRESS is a relatively older function in the Stats Tbx.
mdl = LinearModel.fit(X,y,'quadratic')

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