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I want to use space as a delimiter with the cut command.

What syntax can I use for this?

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untrue, the man page for cut doesn't explain this and is, in general, not informative – UncleZeiv Oct 5 '10 at 16:11
Also, "info cut" is no improvement in this case. – cardiff space man Apr 4 '13 at 0:26
@mklement0 if I recall, I was replying to a comment that has since been deleted, which was dismissing this question as being answered to in the man page, which was in my opinion "untrue", regardless of there being a good reason for it or not - now, while I concede that there might be a good reason for this lack of information, I still think that documentation without common usage examples is often at least irritating, when not outright useless – UncleZeiv May 5 at 10:00
@UncleZeiv Got it; thanks for clarifying; given the interest in this question, it's fair to assume that the man page isn't enough. Let's take a look: "-d delim Use delim as the field delimiter character instead of the tab character." (BSD cut, but the GNU version and the POSIX spec pretty much state the same). Using a shell to invoke cut - the typical case - therefore requires you to know how to generally pass a space as an argument using shell syntax, which is arguably not the cut man page's job. Real-world examples always help, however, and the GNU man page lacks them. – mklement0 May 5 at 20:27
although the selected answer is technically correct, consider selecting the more recent and comprehensive answer by @mklement0 as the canonical answer so that it filters to the top. – David LeBauer Sep 16 at 18:34

7 Answers 7

up vote 149 down vote accepted
cut -d ' ' -f 2

Where 2 is the field number of the space-delimited field you want.

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can you tell cut to use any number of a certain character as the delimiter, like in RegEx? e.g. any number of spaces, e.g. \s+ – amphibient Nov 1 '12 at 15:42
@foampile No, I don't believe you can. – Jonathan Hartley Nov 5 '12 at 10:51
You can't use regexes with cut, but you can with cuts which tries to "fix" all of cut limitations: – arielf Jul 3 '14 at 4:00

Usually if you use space as delimiter, you want to treat multiple spaces as one, because you parse the output of a command aligning some columns with spaces. (and the google search for that lead me here)

In this case a single cut command is not sufficient, and you need to use:

tr -s ' ' | cut -d ' ' -f 2


awk '{print $2}'
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You can also say

cut -d\  -f 2

note that there are two spaces after the backslash.

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Very unreadable - who notices there are 2 spaces? – Martin Konicek Jun 6 '11 at 15:34
The person who knows that '\' escapes the next character would be very careful to note what came next. Using '\' to escape space characters like this is a very common idiom. – Jonathan Hartley Mar 21 '12 at 9:24
@Jonathan Hartley commonly most of the codes are unreadable indeed :) – Luca Borrione Nov 2 '12 at 13:24
From a linux/unix perspective, \ was my first attempt and it worked. I agree it is less obvious when compared to ' ', but I'm sure many are glad to read it here as reassurance of behavior. For a better understanding, please see @mklement0's comment below. – QZ Support May 1 at 22:14

To complement the existing, helpful answers; tip of the hat to QZ Support for encouraging me to post a separate answer:

Two distinct mechanisms come into play here:

  • (a) whether cut itself requires the delimiter (space, in this case) passed to the -d option to be a separate argument or whether it's acceptable to append it directly to -d.

  • (b) how the shell generally parses arguments before passing them to the command being invoked.

(a) is answered by a quote from the POSIX guidelines for utilities (emphasis mine)

If the SYNOPSIS of a standard utility shows an option with a mandatory option-argument [...] a conforming application shall use separate arguments for that option and its option-argument. However, a conforming implementation shall also permit applications to specify the option and option-argument in the same argument string without intervening characters.

In other words: In this case, because -d's option-argument is mandatory, you can choose whether to specify the delimiter as:

  • (s) EITHER: a separate argument
  • (d) OR: as a value directly attached to -d.

Once you've chosen (s) or (d), it is the shell's string-literal parsing that matters:

  • With approach (s), all of the following forms are EQUIVALENT:

    • -d ' '
    • -d " "
    • -d \<space> # <space> used to represent an actual space for technical reasons
  • With approach (d), all of the following forms are EQUIVALENT:

    • -d' '
    • -d" "
    • "-d "
    • '-d '
    • d\<space>

The equivalence is explained by the shell's string-literal processing:

All solutions above result in the exact same string (in each group) by the time cut sees them:

  • (s): cut sees -d, as its own argument, followed by a separate argument that contains a space char - without quotes or \ prefix!.

  • (d): cut sees -d plus a space char - without quotes or \ prefix! - as part of the same argument.

The reason the forms in the respective groups are ultimately identical is twofold, based on how the shell parses string literals:

  • The shell allows literal to be specified as is through a mechanism called quoting, which can take several forms:
    • single-quoted strings: the contents inside '...' is taken literally and forms a single argument
    • double-quoted strings: the contents inside "..." also forms a single argument, but is subject to interpolation (expands variable references such as $var, command substitutions ($(...) or `...`), or arithmetic expansions ($(( ... ))).
    • \-quoting of individual characters: a \ preceding a single character causes that character to be interpreted as a literal.
  • Quoting is complemented by quote removal, which means that once the shell has parsed a command line, it removes the quote characters from the arguments (enclosing '...' or "..." or \ instances) - thus, the command being invoked never sees the quote characters.
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Beautiful, well done! – fedorqui May 4 at 9:43
I appreciate it, @fedorqui. – mklement0 May 4 at 12:42
love it too, even though there is way too much boldface IMHO. Strains my eyes a little too much, at times.:) – syntaxerror Jul 28 at 19:54
@syntaxerror: Point taken; I've just unbolded a fair amount, but there's plenty left... The general idea is to make it easier to quickly parse a lengthy answer for the part of interest - hopefully it's better now. – mklement0 Jul 28 at 20:08
@mklement0 hey! I didn't expect that. Mind you, the first phrase ended in "IMHO", so that was merely my personal impression. But thanks for agreeing to do it, looks way neater now. :) – syntaxerror Jul 29 at 2:27

scut, a cut-like utility (smarter but slower) that can use any perl regex as a breaking token. Breaking on whitespace is the default, but you can also break on multi-char regexes, alternative regexes, etc.

scut -f='6 2 8 7' < input.file  > output.file

so the above command would break columns on whitespace and extract the (0-based) cols 6 2 8 7 in that order.

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I just discovered that you can also use "-d ":

cut "-d "


$ cat a
hello how are you
I am fine
$ cut "-d " -f2 a
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Indeed - or '-d '. – mklement0 Apr 22 at 13:07
Note that from cut's perspective all of the following are identical: "-d ", '-d ', -d" ", -d' ', and -d\<space>: all forms directly append the option argument (a space) to the option (-d) and result in the exact same string by the time cut sees them: a single argument containing d followed by a space, after the shell has performed quote removal – mklement0 Apr 22 at 13:28
@mklement0's answer should be the answer. It is the most comprehensive on this page (even though it is a comment). – QZ Support May 1 at 22:16
@QZSupport: I appreciate the sentiment and the encouragement - it has inspired me to post my own answer with additional background information. – mklement0 May 2 at 3:53

You can't do it easily with cut if the data have for example multiple spaces. I have found sometimes useful to normalize input for easier processing. One trick is to use sed for normalization as below.

echo -e "foor\t \t bar" | sed 's:\s\+:\t:g' | cut -f2  #bar
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