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My question is pretty simple but I can't figure out whats wrong. Just say I have data.frame a

I use

m.fit<-lm(col2~col3*col4,na.action=na.exclude)

col2 has some NA values, col3 and col4 have values less than 1.

I keep getting

Error in lm.fit(x, y, offset = offset, singular.ok = singular.ok, ...) : 
NA/NaN/Inf in foreign function call (arg 1)

I've checked the mailing list and it appears that it is because of the NAs in col2 but I tried using na.action=na.exclude/omit/pass but none of them seem to work.I 'vetested lm again on first 10 entries, definitely not because of the NAs. Problem with this warning is every google results seem to be pointing at NA

DId I misinterpret the error or am I using lm wrongly?

Thanks

ok data is at http://www.kaggle.com/c/GiveMeSomeCredit/Download/cs-training.csv. I'm modelling MonthlyIncome data using linear regression(don't judge, I couldn't get a certain glm family to work because I'm bad at R). I've created my own variables to use but if you try to model MonthlyIncome with variables already present it fails.

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1  
m.fit<-lm(col2 ~ col3 + col4 + col3*col4, data=a, na.action=na.exclude) is much more readable for specifying your model –  mindless.panda Dec 7 '11 at 13:12
3  
Without a reproducible example it is very hard to answer your question. Please see stackoverflow.com/q/5963269/567015 on instructions how to do this. –  Sacha Epskamp Dec 7 '11 at 13:13
    
If you subset a for rows with no NA in col2 and then run the lm(), do you still get the error? –  mindless.panda Dec 7 '11 at 13:15
    
For what it's worth, ~ col3*col4 is equivalent to ~ col3+col4+col3:col4 which is in turn equivalent to ~ col3+col4+col3*col4 (the last is harmlessly redundant) –  Ben Bolker Dec 7 '11 at 13:24
1  
Which columns are you using in the lm fit? If you use the names in the header row in the file, it's clearer than col2, etc. I've tried a few column combinations and can't reproduce your error. –  Richie Cotton Dec 7 '11 at 14:32

3 Answers 3

I know this thread is really old, but the answers don't seem complete, and I just ran into the same problem.

The problem I was having was because the NA columns also had NaN and Inf. Remove those and try it again. Specifically:

col2[which(is.nan(col2))] = NA
col2[which(col2==Inf)] = NA

Hope that helps your 18 month old question!

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Thanks for this suggestion. Adding that in case you have some -Inf, make sure to make those NAs as well. That solved my problem. –  bsg May 25 at 6:06
    
For a one-liner: col2[which(!is.finite(col2))] = NA –  Hugh May 26 at 6:26

Try changing the type of col2 (and all other variables)

col2 <- as.integer(col2)
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I just encountered the same problem. get the finite elements using

finiteElements = which(is.finite(col3*col4))
finiteData = data[finiteElements,]
lm(col2~col3*col4,na.action=na.exclude,data=finiteData)
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