Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I asked a question about this a few months back, and I thought the answer had solved my problem, but I ran into the problem again and the solution didn't work for me.

I'm importing a CSV:

orders <- read.csv("<file_location>", sep=",", header=T, check.names = FALSE)

Here's the structure of the dataframe:

str(orders)

'data.frame':   3331575 obs. of  2 variables:
 $ OrderID  : num  -2034590217 -2034590216 -2031892773 -2031892767 -2021008573 ...
 $ OrderDate: Factor w/ 402 levels "2010-10-01","2010-10-04",..: 263 263 269 268 301 300 300 300 300 300 ...

If I run the length command on the first column, OrderID, I get this:

length(orders$OrderID)
[1] 0

If I run the length on OrderDate, it returns correctly:

length(orders$OrderDate)
[1] 3331575

This is a copy/paste of the head of the CSV.

OrderID,OrderDate
-2034590217,2011-10-14
-2034590216,2011-10-14
-2031892773,2011-10-24
-2031892767,2011-10-21
-2021008573,2011-12-08
-2021008572,2011-12-07
-2021008571,2011-12-07
-2021008570,2011-12-07
-2021008569,2011-12-07

Now, if I re-run the read.csv, but take out the check.names option, the first column of the dataframe now has an X. at the start of the name.

orders2 <- read.csv("<file_location>", sep=",", header=T)

str(orders2)

'data.frame':   3331575 obs. of  2 variables:
 $ X.OrderID: num  -2034590217 -2034590216 -2031892773 -2031892767 -2021008573 ...
 $ OrderDate: Factor w/ 402 levels "2010-10-01","2010-10-04",..: 263 263 269 268 301 300 300 300 300 300 ...

length(orders$X.OrderID)
[1] 3331575

This works correctly.

My question is why does R add an X. to beginning of the first column name? As you can see from the CSV file, there are no special characters. It should be a simple load. Adding check.names, while will import the name from the CSV, will cause the data to not load correctly for me to perform analysis on.

What can I do to fix this?

Side note: I realize this is a minor - I'm just more frustrated by the fact that I think I am loading correctly, yet not getting the result I expected. I could rename the column using colnames(orders)[1] <- "OrderID", but still want to know why it doesn't load correctly.

share|improve this question
    
Can you cut and paste the following outputs: head(orders) & head(orders2)? –  Tyler Rinker May 4 '12 at 1:19
2  
I'm more curious to see the actual raw csv file. Can you post it somewhere and provide a link so we can download it and try to reproduce this behavior. Whatever the problem is, my guess is the answer lies in the precise structure and contents of the file. –  joran May 4 '12 at 1:21
    
I don't get the str of orders but then the length(orders$OrderID) [1]0 –  Tyler Rinker May 4 '12 at 2:01
4  
I'm with @joran; I imagine that there is a non-visible character at the start of the file which is being pulled into the column name (with check.names=FALSE) or triggering a name change (with check.names=TRUE). Unfortunately, a cut-and-past of the CSV probably won't show that. What does dput(names(orders)[1]) give? Also, if length(orders[[1]]) gives the right value, then you know it is in the name. –  Brian Diggs May 4 '12 at 3:04

1 Answer 1

up vote 18 down vote accepted

read.csv() is a wrapper around the more general read.table() function. That latter function has argument check.names which is documented as:

check.names: logical.  If ‘TRUE’ then the names of the variables in the
         data frame are checked to ensure that they are syntactically
         valid variable names.  If necessary they are adjusted (by
         ‘make.names’) so that they are, and also to ensure that there
         are no duplicates.

If your header contains labels that are not syntactically valid then make.names() will replace them with a valid name, based upon the invalid name, removing invalid characters and possibly prepending X:

R> make.names("$Foo")
[1] "X.Foo"

This is documented in ?make.names:

Details:

    A syntactically valid name consists of letters, numbers and the
    dot or underline characters and starts with a letter or the dot
    not followed by a number.  Names such as ‘".2way"’ are not valid,
    and neither are the reserved words.

    The definition of a _letter_ depends on the current locale, but
    only ASCII digits are considered to be digits.

    The character ‘"X"’ is prepended if necessary.  All invalid
    characters are translated to ‘"."’.  A missing value is translated
    to ‘"NA"’.  Names which match R keywords have a dot appended to
    them.  Duplicated values are altered by ‘make.unique’.

The behaviour you are seeing is entirely consistent with the documented way read.table() loads in your data. That would suggest that you have syntactically invalid labels in the header row of your CSV file. Note the point above from ?make.names that what is a letter depends on the locale of your system; The CSV file might include a valid character that your text editor will display but if R is not running in the same locale that character may not be valid there, for example?

I would look at the CSV file and identify any non-ASCII characters in the header line; there are possibly non-visible characters (or escape sequences; \t?) in the header row also. A lot may be going on between reading in the file with the non-valid names and displaying it in the console which might be masking the non-valid characters, so don't take the fact that it doesn't show anything wrong without check.names as indicating that the file is OK.

Posting the output of sessionInfo() would also be useful.

share|improve this answer
    
Nice answer Gavin +1 I wonder if there's a space in front of the header name as make.names(" Foo") creates "X.Foo" as well. –  Tyler Rinker May 4 '12 at 15:18
    
Nope not a space as I tried it Here is the link to the csv and here is the code: x <- "http://dl.dropbox.com/u/61803503/TEST.csv"; (dat<-read.csv(url(x), header=TRUE)) and a space in front or period didn't affect it but the $ and , do. –  Tyler Rinker May 4 '12 at 15:30

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.