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I am having some troubles with leading and trailing whitespace in a data.frame. Eg I like to take a look at a specific row in a data.frame based on a certain condition:

> myDummy[myDummy$country == c("Austria"),c(1,2,3:7,19)] 

[1] codeHelper     country        dummyLI    dummyLMI       dummyUMI       
[6] dummyHInonOECD dummyHIOECD    dummyOECD      
<0 rows> (or 0-length row.names)

I was wondering why I didn't get the expected output since the country Austria obviously existed in my data.frame. After looking through my code history and trying to figure out what went wrong I tried:

> myDummy[myDummy$country == c("Austria "),c(1,2,3:7,19)]
   codeHelper  country dummyLI dummyLMI dummyUMI dummyHInonOECD dummyHIOECD
18        AUT Austria        0        0        0              0           1
   dummyOECD
18         1

All I have changed in the command is an additional whitespace after Austria.

Further annoying problems obviously arise. Eg when I like to merge two frames based on the country column. One data.frame uses "Austria " while the other frame has "Austria". The matching doesn't work.

  1. Is there a nice way to 'show' the whitespace on my screen so that i am aware of the problem?
  2. And can I remove the leading and trailing whitespace in R?

So far I used to write a simple Perl script which removes the whitespace but it would be nice if I can somehow do it inside R.

share|improve this question
1  
I just saw that sub() uses the Perl notation as well. Sorry about that. I am going to try to use the function. But for my first question i don't have a solution yet. – mropa Feb 14 '10 at 12:50
2  
As hadley pointed it this regex "^\\s+|\\s+$" will identify leading and trailing whitespace. so x <- gsub("^\\s+|\\s+$", "", x) many of R's read functions as have this option: strip.white = FALSE – Jay Feb 14 '10 at 15:11

10 Answers 10

up vote 266 down vote accepted

Probably the best way is to handle the trailing whitespaces when you read your data file. If you use read.csv or read.table you can set the parameterstrip.white=TRUE.

If you want to clean strings afterwards you could use one of these functions:

# returns string w/o leading whitespace
trim.leading <- function (x)  sub("^\\s+", "", x)

# returns string w/o trailing whitespace
trim.trailing <- function (x) sub("\\s+$", "", x)

# returns string w/o leading or trailing whitespace
trim <- function (x) gsub("^\\s+|\\s+$", "", x)

To use one of these functions on myDummy$country:

 myDummy$country <- trim(myDummy$country)

To 'show' the whitespace you could use:

 paste(myDummy$country)

which will show you the strings surrounded by quotation marks (") making whitespaces easier to spot.

share|improve this answer
6  
As hadley pointed it this regex "^\\s+|\\s+$" will identify leading and trailing whitespace. so x <- gsub("^\\s+|\\s+$", "", x) many of R's read functions as have this option: strip.white = FALSE – Jay Feb 14 '10 at 15:10
18  
See also str_trim in the stringr package. – Richie Cotton Feb 16 '10 at 15:35
1  
Plus one for "Trim function now stored for future use"- thanks! – Chris Beeley Jan 17 '12 at 9:56
1  
FYI: I trimmed all trailing spaces of the entire dataframe using apply: df_trimmed <- as.data.frame(apply(df,2,function (x) sub("\\s+$", "", x))) – Thieme Hennis Sep 19 '14 at 9:35
1  
Unfortunately, strip.white=TRUE only works on non-quoted strings. – Rodrigo Aug 10 '15 at 15:08

As of R 3.2.0 a new function was introduced for removing leading/trailing whitespaces:

trimws()

See: http://stat.ethz.ch/R-manual/R-patched/library/base/html/trimws.html

(now the only issue is getting on top as the best answer... :) )

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1  
It depends on the definition of a best answer. This answer is nice to know of (+1) but in a quick test, it wasnt as fast as some of the alternatives out there. – A Handcart And Mohair May 24 '15 at 8:05
6  
No package bloat, no opportunity for me to screw up the regex. :-) +1! – sudo make install Jul 25 '15 at 9:26
6  
IF YOU'RE READING THIS QUESTION, THIS IS THE BEST ANSWER AS OF 2015. – Adam_G Nov 11 '15 at 2:53
1  
@Adam_G only 181 votes to go :) – wligtenberg Nov 11 '15 at 10:59
1  
@Jubbles That is the expected behaviour. In the string you pass to trimws there are no leading or trailing white spaces. If you want to remove leading and trailing white spaces from each of the lines in the string, you will first have to split it up. Like this: trimws(strsplit("SELECT\n blah\n FROM foo;", "\n")[[1]]) – wligtenberg Dec 31 '15 at 8:20

To manipulate the white space, use str_trim() in the stringr package. The package has manual dated Feb 15,2013 and is in CRAN. The function can also handle string vectors.

install.packages("stringr", dependencies=TRUE)
require(stringr)
example(str_trim)
d4$clean2<-str_trim(d4$V2)

(credit goes to commenter: R. Cotton)

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5  
+1 For best practice, most easy, most convenient solution! – petermeissner Oct 16 '14 at 12:24

A simple function to remove leading and trailing whitespace:

trim <- function( x ) {
  gsub("(^[[:space:]]+|[[:space:]]+$)", "", x)
}

Usage:

> text = "   foo bar  baz 3 "
> trim(text)
[1] "foo bar  baz 3"
share|improve this answer

ad1) To see white spaces you could directly call print.data.frame with modified arguments:

print(head(iris), quote=TRUE)
#   Sepal.Length Sepal.Width Petal.Length Petal.Width  Species
# 1        "5.1"       "3.5"        "1.4"       "0.2" "setosa"
# 2        "4.9"       "3.0"        "1.4"       "0.2" "setosa"
# 3        "4.7"       "3.2"        "1.3"       "0.2" "setosa"
# 4        "4.6"       "3.1"        "1.5"       "0.2" "setosa"
# 5        "5.0"       "3.6"        "1.4"       "0.2" "setosa"
# 6        "5.4"       "3.9"        "1.7"       "0.4" "setosa"

See also ?print.data.frame for other options.

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Use grep or grepl to find observations with whitespaces and sub to get rid of them.

names<-c("Ganga Din\t","Shyam Lal","Bulbul ")
grep("[[:space:]]+$",names)
[1] 1 3
grepl("[[:space:]]+$",names)
[1]  TRUE FALSE  TRUE
sub("[[:space:]]+$","",names)
[1] "Ganga Din" "Shyam Lal" "Bulbul"  
share|improve this answer
5  
Or, a little more succinctly, "^\\s+|\\s+$" – hadley Feb 14 '10 at 14:45
2  
Just wanted to point out, that one will have to use gsub instead of sub with hadley's regexp. With sub it will strip trailing whitespace only if there is no leading whitespace... – f3lix Feb 14 '10 at 15:50
    
Didn't know you could use \s etc. with perl=FALSE. The docs say that POSIX syntax is used in that case, but the syntax accepted is actually a superset defined by the TRE regex library laurikari.net/tre/documentation/regex-syntax – Jyotirmoy Bhattacharya Feb 14 '10 at 18:37

I'd prefer to add the answer as comment to user56 but yet unable so writing as an independent answer. Removing leading and trailing blanks might be achieved through trim() function from gdata package as well:

require(gdata)
example(trim)

Usage example:

> trim("   Remove leading and trailing blanks    ")
[1] "Remove leading and trailing blanks"
share|improve this answer
    
trim() also works via the "raster" package – Nathan Apr 22 at 5:03

Another option is to use the stri_trim function from the stringi package which defaults to removing leading and trailing whitespace:

> x <- c("  leading space","trailing space   ")
> stri_trim(x)
[1] "leading space"  "trailing space"

For only removing leading whitespace, use stri_trim_left. For only removing trailing whitespace, use stri_trim_right. When you want to remove other leading or trailing characters, you have to specify that with pattern =.

See also ?stri_trim for more info.

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trimws() <- This method removes the whitespaces from both side of a string and return that raw string...

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Another related problem occurs if you have multiple spaces inbetween inputs:

> a <- "  a string         with lots   of starting, inter   mediate and trailing   whitespace     "

You can then easily split this string into "real" tokens using a regular expression to the split argument:

> strsplit(a, split=" +")
[[1]]
 [1] ""           "a"          "string"     "with"       "lots"      
 [6] "of"         "starting,"  "inter"      "mediate"    "and"       
[11] "trailing"   "whitespace"

Note that if there is a match at the beginning of a (non-empty) string, the first element of the output is ‘""’, but if there is a match at the end of the string, the output is the same as with the match removed.

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