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I have two variables ENERGY and TEMP

I have created two other variables temp2 and temp 3

 > temp2 <- data$temp^2
 > temp3 <- data$temp^3
 >data=cbind(data, energy, temp,temp2,temp3)

Now to create a cubic model would it look just like a linear model?

 >model<-lm(energy~temp+temp2+temp3)

Edit:

Ok so I did what you suggested and this is the output:

 > ?poly
 > model<- lm( energy ~ poly(temp, 3) , data=data ) 
 > summary(model)

 Call:
 lm(formula = energy ~ poly(temp, 3), data = data)

 Residuals:
     Min      1Q  Median      3Q     Max 
 -19.159 -11.257  -2.377   9.784  26.841 

 Coefficients:
                Estimate Std. Error t value Pr(>|t|)    
 (Intercept)       95.50       3.21  29.752  < 2e-16 ***
 poly(temp, 3)1   207.90      15.72  13.221 2.41e-11 ***
 poly(temp, 3)2   -50.07      15.72  -3.184  0.00466 ** 
 poly(temp, 3)3    81.59      15.72   5.188 4.47e-05 ***
 ---
 Signif. codes:  0 ‘***’ 0.001 ‘**’ 0.01 ‘*’ 0.05 ‘.’ 0.1 ‘ ’ 1 

 Residual standard error: 15.73 on 20 degrees of freedom
 Multiple R-squared: 0.9137,    Adjusted R-squared: 0.9008 
 F-statistic: 70.62 on 3 and 20 DF,  p-value: 8.105e-11 

I would assume that I would test for the goodness of fit test the same way and look at the Pr(>|t|). This would lead me to believe that all of the variables are significant.

would I be able to use this fitted regression model to predict the average energy consumption for an average difference in temperature?

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1  
You can also use lm(y ~ var + I(var^2) + I(var^3)). –  Roman Luštrik Nov 11 '12 at 8:15
    
It's not clear what part of your question remains that @DWin hasn't answered below. Note the phrase in his answer that says the dummies approach is not good for statistical inference: you are implicitly testing the quadratic and cubic terms at a reference level of temperature=0, which may not be meaningful. As he suggested, a question on stats.stackexchange.com may be more appropriate at this point (but if the answer below satisfies your technical question, you should consider accepting it by clicking the check mark) –  Ben Bolker Nov 12 '12 at 15:44

2 Answers 2

Instead of coding up dummy variable you should consider using the poly function:

?poly   # Polynomial contrasts
model<- lm( energy ~ poly(temp, 3) , data=data ) 

If you want to use the same columns as you would have gotten with the dummies approach (which is not good for statistical inference purposes), you can use the 'raw' parameter:

model.r<- lm( energy ~ poly(temp, 3, raw=TRUE) , data=data ) 

Predictions will be the same, but the standard errors will not. This should give you the same estimates as would be returned by @RomanLuštrik's suggestion. The terms will not be orthogonal, so their necessary correlations will be high and you will be unable to make correct inferences about independent effects.

Added question: "would I be able to use this fitted regression model to predict the average energy consumption for an average difference in temperature?"

No. You would need to specify a particular two temperatures and then predict could give you a difference, but that difference will vary depending on what the reference point is, even if the magnitude of the difference is the same.. That was a consequence of using a non-linear term. Maybe you should describe your goals and use a forum that is more geared to methods questions. SO is for coding when you know what you want to do. http://stats.stackexchange.com may be more appropriate when you have formulated your question with more clarity.

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Thanks for the response, I have updated my question with your recommendation. –  Clay Nov 11 '12 at 7:50

There are two ways to do polynomial regression with lm:

lm( y ~ x + I(x^2) + I(x^3) )

and

lm( y ~ poly(x, 3, raw=TRUE) )

(That's cubic. I'm sure you can generalise to quartic, quintic, etc.)

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