I have a string like this:

/var/cpanel/users/joebloggs:DNS9=domain.com

I need to extract the username: joebloggs from this string and store it in a variable

The format of the string will always be the same with exception of joebloggs and domain.com so I am thinking the string can be split twice using "cut"?

First split would split the string up using : and we would store the first part in a varibale to pass to the second split function.

Second split would split the string using / and store the last word (joebloggs) into a variable

I know how to do this in php using arrays and splits but in bash I am a bit lost.

To extract joebloggs from this string in bash using parameter expansion without any extra processes...

MYVAR="/var/cpanel/users/joebloggs:DNS9=domain.com" 

NAME=${MYVAR%:*}  # retain the part before the colon
NAME=${NAME##*/}  # retain the part after the last slash
echo $NAME

Doesn't depend on joebloggs being at a particular depth in the path.

If you want to go a bit overboard using grep:

echo MYVAR | grep -oE '/[^/]+:' | cut -c2- | rev | cut -c2- | rev

Summary

An overview of a few parameter expansion modes, for reference...

${MYVAR#pattern}       # delete shortest match of pattern from the beginning
${MYVAR##pattern}      # delete longest match of pattern from the beginning
${MYVAR%pattern}       # delete shortest match of pattern from the end
${MYVAR%%pattern}      # delete longest match of pattern from the end

So # means match from the beginning (think of a comment line) and % means from the end. One instance means shortest and two instances means longest.

You can also replace particular strings or patterns using:

${MYVAR/search/replace}

The pattern is in the same format as file-name matching, so * (any characters) is common, often followed by a particular symbol like / or .

Examples:

Given a variable like

MYVAR="users/joebloggs/domain.com" 

Remove the path leaving file name (all characters up to a slash):

echo ${MYVAR##*/}
domain.com

Remove the file name, leaving the path (delete shortest match after last /):

echo ${MYVAR%/*}
users/joebloggs

Get just the file extension (remove all before last period):

echo ${MYVAR##*.}
com

NOTE: To do two operations, you can't combine them, but have to assign to an intermediate variable. So to get the file name without path or extension:

NAME=${MYVAR##*/}      # remove part before last slash
echo ${NAME%.*}        # from the new var remove the part after the last period
domain
  • I'm not sure if this is an argument for or against the creative use of grep, but try it with VAR=/here/is/a/path:with/a/colon/inside:DNS9=domain.com – rici Oct 20 '13 at 21:51
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    Sweet! And it is done inside the executing shell, thereby way faster than the ones using other commands. – stolsvik Jan 13 '14 at 21:56
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    @Fadi You have to switch the wildcard to come before the colon, and use # instead of %. If you want only the part after the very last colon, use ${MYVAR##*:} to get the part after the first colon, use ${MYVAR#*:} – beroe Jul 11 '16 at 23:11
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    Friend, you don't know how many times I've come back to this answer. Thank you! – Joel B May 24 at 22:51
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    Great answer! Question: If my pattern were a variable, would I type it like this ${RET##*$CHOP} or like this ${RET##*CHOP} (or another way)? EDIT: Seems to be the former, ${RET##*$CHOP} – Ctrl S Jun 28 at 12:31

Define a function like this:

getUserName() {
    echo $1 | cut -d : -f 1 | xargs basename
}

And pass the string as a parameter:

userName=$(getUserName "/var/cpanel/users/joebloggs:DNS9=domain.com")
echo $userName
  • This answer helped me achieve what I came here for. There a no accepted answers and this one gets my vote for simplicity. – harperville Jul 21 '14 at 15:08
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    The only correction I had to do in the above command was removing the ':', like this echo $1 | cut -d -f 1 | xargs. +1 for simple and neat ans. – Bhushan Jun 8 '15 at 22:33

What about sed? That will work in a single command:

sed 's#.*/\([^:]*\).*#\1#' <<<$string
  • The # are being used for regex dividers instead of / since the string has / in it.
  • .*/ grabs the string up to the last backslash.
  • \( .. \) marks a capture group. This is \([^:]*\).
    • The [^:] says any character _except a colon, and the * means zero or more.
  • .* means the rest of the line.
  • \1 means substitute what was found in the first (and only) capture group. This is the name.

Here's the breakdown matching the string with the regular expression:

        /var/cpanel/users/           joebloggs  :DNS9=domain.com joebloggs
sed 's#.*/                          \([^:]*\)   .*              #\1       #'
  • Super nice dissection! – kyb Feb 6 at 19:56

Using a single sed

echo "/var/cpanel/users/joebloggs:DNS9=domain.com" | sed 's/.*\/\(.*\):.*/\1/'

Using a single Awk:

... | awk -F '[/:]' '{print $5}'

That is, using as field separator either / or :, the username is always in field 5.

To store it in a variable:

username=$(... | awk -F '[/:]' '{print $5}')

A more flexible implementation with sed that doesn't require username to be field 5:

... | sed -e s/:.*// -e s?.*/??

That is, delete everything from : and beyond, and then delete everything up until the last /. sed is probably faster too than awk, so this alternative is definitely better.

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