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> reg.len <- lm(chao1.ave ~ lg.std.len, b.div) # b.div is my data frame imported from a CSV file
> reg.len

lm(formula = chao1.ave ~ lg.std.len, data = b.div)

(Intercept)   lg.std.len  
      282.4       -115.7  

> newx <- seq(0.6, 1.4, 0.01)
> prd.len <- predict(reg.len, newdata=data.frame(x=newx), interval="confidence", level=0.90, type="response")
Error in eval(expr, envir, enclos) : object 'lg.std.len' not found

I've tried doing the lm like this: lm(b.div$chao1.ave ~ b.div$lg.std.len), but then, predict() gives a warnings that the newdata and variables are different lengths. So, I tried the way above, and now predict() gives an error saying it doesn't recognize the object. How to fix, please?

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What are the errors? – PeeHaa Oct 16 '12 at 21:19
Error in eval(expr, envir, enclos) : object 'lg.std.len' not found – user1751333 Oct 16 '12 at 21:23

1 Answer 1

up vote 5 down vote accepted

Predict expects newdata to have the same column names (to match the formula in reg.len). You're changing it to "x" in your newdata specification, which isn't part of the formula.

dat <- data.frame(y=rnorm(50),lg.std.len=sample(10:15,50,replace=TRUE))
reg.len <- lm(y ~ lg.std.len,data=dat)

newx <- seq(0.6, 1.4, 0.01)
prd.len <- predict(reg.len, newdata=data.frame(lg.std.len=newx),
                   interval="confidence", level=0.90, type="response")

The key part is newdata=data.frame(lg.std.len=newx)

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