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I have a data frame with several factor columns containing NaN's that I would like to convert to NA's (the NaN seems to be a problem for using linear regression objects to predict on new data).

> tester1 <- c("2", "2", "3", "4", "2", "3", NaN)
> tester1 
[1] "2"   "2"   "3"   "4"   "2"   "3"   "NaN"
> tester1[is.nan(tester1)] = NA
> tester1 
[1] "2"   "2"   "3"   "4"   "2"   "3"   "NaN"
> tester1[is.nan(tester1)] = "NA"
> tester1 
[1] "2"   "2"   "3"   "4"   "2"   "3"   "NaN"
share|improve this question
    
you might want to have a look at setattr from the data.table package.. also check MatthewDowle's answer on my question earlier today: stackoverflow.com/questions/9463980/… –  Matt Bannert Feb 27 '12 at 22:24
    
The example makes no sense: how do you propose to use character data in a linear regression? –  Gavin Simpson Feb 27 '12 at 23:00
    
It's a factor. Last I checked lm() can deal w/ factors. I should have thrown a factor() around the example. –  screechOwl Feb 27 '12 at 23:12

3 Answers 3

up vote 6 down vote accepted

Here's the problem: Your vector is character in mode, so of course it's "not a number". That last element got interpreted as the string "NaN". Using is.nan will only make sense if the vector is numeric. If you want to make a value missing in a character vector (so that it gets handle properly by regression functions), then use (without any quotes), NA_character_.

> tester1 <- c("2", "2", "3", "4", "2", "3", NA_character_)
>  tester1
[1] "2" "2" "3" "4" "2" "3" NA 
>  is.na(tester1)
[1] FALSE FALSE FALSE FALSE FALSE FALSE  TRUE

Neither "NA" nor "NaN" are really missing in character vectors. If for some reason htere were values in a facotr variable that were "NaN" then you would have been able just use logical indexing:

tester1[tester1 == "NaN"] = "NA"  
# but that would not really be a missing value either 
# and it might screw up a factor variable anyway.

tester1[tester1=="NaN"] <- "NA"
Warning message:
In `[<-.factor`(`*tmp*`, tester1 == "NaN", value = "NA") :
invalid factor level, NAs generated
##########
tester1 <- factor(c("2", "2", "3", "4", "2", "3", NaN))

> tester1[tester1 =="NaN"] <- NA_character_
> tester1
[1] 2    2    3    4    2    3    <NA>
Levels: 2 3 4 NaN

That last result might be surprising. There is a remaining "NaN" level but none of elements is "NaN". Instead the element that was "NaN" is now a real missing value signified in print as .

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You can't have NaN in a character vector, which is what you have here:

> tester1 <- c("2", "2", "3", "4", "2", "3", NaN)
> is.nan(tester1)
[1] FALSE FALSE FALSE FALSE FALSE FALSE FALSE
> tester1
[1] "2"   "2"   "3"   "4"   "2"   "3"   "NaN"

Notice how R thinks this is a character string.

You can create NaN in a numeric vector:

> tester1 <- c("2", "2", "3", "4", "2", "3", NaN)
> as.numeric(tester1)
[1]   2   2   3   4   2   3 NaN
> is.nan(as.numeric(tester1))
[1] FALSE FALSE FALSE FALSE FALSE FALSE  TRUE

Then, of course, R can convert NaN to NA as per your code:

> foo <- as.numeric(tester1)
> foo[is.nan(foo)] <- NA
> foo
[1]  2  2  3  4  2  3 NA
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EDIT:

Gavin Simpson in comments reminds me that, in your situation, there are much easier ways to convert what is really an "NaN" to an "NA":

tester1 <- gsub("NaN", "NA", tester1)
tester1
# [1] "2"  "2"  "3"  "4"  "2"  "3"  "NA"

Solution:

To detect which elements of the character vector are NaN, you need to convert the vector to a numeric vector:

tester1[is.nan(as.numeric(tester1))] <- "NA"
tester1
[1] "2"  "2"  "3"  "4"  "2"  "3"  "NA"

Explanation:

There are a couple of reasons that this isn't working as you expect it to.

First, although NaN stands for "Not a Number", it does have class "numeric", and only makes sense inside of a numeric vector.

Second, when it is included in a character vector, the symbol NaN is silently converted to the character string "NaN". When you then test it for nan-ness, the character string returns FALSE:

class(NaN)
# [1] "numeric"
c("1", NaN)
# [1] "1"   "NaN"
is.nan(c("1", NaN))
# [1] FALSE FALSE
share|improve this answer
    
??? That is converting the string "NaN" to "NA" in a very roundabout way. Surely this is not what the OP wanted, even if they did try to use "NA" as NA in one of their examples. –  Gavin Simpson Feb 27 '12 at 22:23
    
@GavinSimpson -- OK. Fixed now. Thanks for the tap on the shoulder reminding me to pull my head out of ... the weeds! –  Josh O'Brien Feb 27 '12 at 22:31
    
I still think you are overthinking what the OP wants. He wants NaN converted to NA not the string versions but the real R versions indicating Not A Number and missingness respectively. Ignore the "NA" in one of the OP's example - that is a red herring, I presume they thought that quoting NA might work as NA in a character vector or something like that. –  Gavin Simpson Feb 27 '12 at 22:32
    
@GavinSimpson -- I know what you mean, but the OP also quoted all of the integers in the example vectors, so there are more like 25 red herrings up there, if you are right. (Although the reference to NaN giving problems in linear regressions now makes me think you're probably right). –  Josh O'Brien Feb 27 '12 at 22:37
    
Wow. My first ever downvote, presumably for answering the question the OP actually asked, rather than what they may have meant to ask!? Oh well. –  Josh O'Brien Feb 27 '12 at 22:53

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