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I'm trying the next code to try to see if predict can help me to find the values of the dependent variable for a polynomial of order 2, in this case it is obvious y=x^2:

x <- c(1, 2, 3, 4, 5 , 6)
y <- c(1, 4, 9, 16, 25, 36)
mypol <- lm(y ~ poly(x, 2, raw=TRUE))

> mypol

Call:
lm(formula = y ~ poly(x, 2, raw = TRUE))

Coefficients:
            (Intercept)  poly(x, 2, raw = TRUE)1  poly(x, 2, raw = TRUE)2  
                      0                        0                        1  

If I try to find the value of x=7, I get this:

> predict(mypol, 7)
Error in eval(predvars, data, env) : not that many frames on the stack

What am I doing wrong?

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1 Answer 1

up vote 3 down vote accepted

If you read the help for predict.lm, you will see that it takes a number of arguments including newdata

newdata -- An optional data frame in which to look for variables with which to predict. If omitted, the fitted values are used.

predict(mypol, newdata = data.frame(x=7))
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Hi mnel, how can I do the same for multiple values. Say, in this example, 7,8,9,10 etc etc? How can I get the predictions for all values? –  CodingInCircles Mar 6 '13 at 22:39
1  
@CodingInCircles create the appropriate data.frame newdata = data.frame(x = c(7,8,9,10))) or ``newdata =data.frame(x = seq(7, 10, by = 15))` or whatever you want. –  mnel Mar 6 '13 at 22:45
    
Awesome! Thanks! :) Also.. can you tell me how we represent y=e^x in the notation like y ~ e^x? –  CodingInCircles Mar 6 '13 at 22:53
1  
@CodingInCircles -- you won't be able to use lm for that, either fit glm(y~x, family = gaussian(link = log)) or nls(y~a*exp(b*x),start = list(a=1,b=1)) –  mnel Mar 6 '13 at 23:00
    
Cool! Thanks a lot! :) Didn't mean to hijack this question though.. :P –  CodingInCircles Mar 6 '13 at 23:02

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