351

I have a variable var in a Bash script holding a string, like:

echo $var
"some string.rtf"

I want to remove the last 4 characters of this string and assign the result to a new variable var2, so that

echo $var2
"some string"

How can I do this?

2

12 Answers 12

339

You can do like this (in bash v4 and higher):

#!/bin/bash

v="some string.rtf"

v2=${v::-4}

echo "$v --> $v2"

Note: macos uses bash 3.x by default

9
  • 84
    It is bash 4+, but in earlier version you can use the slightly longer ${v::${#v}-4}.
    – chepner
    Dec 26, 2014 at 18:54
  • 15
    Didn't worked for me, bash says '' Bad substitution' Oct 28, 2016 at 15:50
  • 27
    for some reason, in zsh ${v::-4} croaks "zsh: closing brace expected". But @fredtantini 's answer below ${v:0:-4} works fine.
    – Pierre D
    Jan 28, 2017 at 14:19
  • 17
    Error with: -2: substring expression < 0
    – Edward
    Oct 24, 2018 at 15:28
  • 3
    @PierreD day saver, I searched for the closing brace problem first in the wrong direction and tried to escape the braces. But zsh just needs a start index. This also explains the two double colons. Thanks anishane in your comment to fredtantinis answer.
    – Timo
    Nov 4, 2020 at 11:39
244

To remove four characters from the end of the string use ${var%????}.

To remove everything after and including the final . use ${var%.*}.

6
  • 14
    Pure shell answer, and will work in BASH 3.x that's found on many systems that have refused to implement BASH 4.x due to licensing issues.
    – David W.
    Dec 26, 2014 at 15:23
  • 1
    This is cool since it's robust against getting shorter strings; the index offset variants fail then.
    – Raphael
    Apr 26, 2017 at 9:19
  • works in bash 3.2.25 - the best possible answer - just what I was looking for
    – capser
    Oct 25, 2017 at 22:26
  • Excellent answer. How about a removal at the front of the string? Jan 24, 2019 at 15:38
  • 3
    @user2023370 Consulting the documentation should reveal that there is a corresponding parameter substitution ${var#????} for that.
    – tripleee
    Jul 14, 2019 at 10:16
121

First, it's usually better to be explicit about your intent. So if you know the string ends in .rtf, and you want to remove that .rtf, you can just use var2=${var%.rtf}. One potentially-useful aspect of this approach is that if the string doesn't end in .rtf, it is not changed at all; var2 will contain an unmodified copy of var.

If you want to remove a filename suffix but don't know or care exactly what it is, you can use var2=${var%.*} to remove everything starting with the last .. Or, if you only want to keep everything up to but not including the first ., you can use var2=${var%%.*}. Those options have the same result if there's only one ., but if there might be more than one, you get to pick which end of the string to work from. On the other hand, if there's no . in the string at all, var2 will again be an unchanged copy of var.

If you really want to always remove a specific number of characters, here are some options.

You tagged this bash specifically, so we'll start with bash builtins. The one which has worked the longest is the same suffix-removal syntax I used above: to remove four characters, use var2=${var%????}. Or to remove four characters only if the first one is a dot, use var2=${var%.???}, which is like var2=${var%.*} but only removes the suffix if the part after the dot is exactly three characters. As you can see, to count characters this way, you need one question mark per unknown character removed, so this approach gets unwieldy for larger substring lengths.

An option in newer shell versions is substring extraction: var2=${var:0:${#var}-4}. Here you can put any number in place of the 4 to remove a different number of characters. The ${#var} is replaced by the length of the string, so this is actually asking to extract and keep (length - 4) characters starting with the first one (at index 0). With this approach, you lose the option to make the change only if the string matches a pattern; no matter what the actual value of the string is, the copy will include all but its last four characters.

You can leave the start index out; it defaults to 0, so you can shorten that to just var2=${var::${#var}-4}. In fact, newer versions of bash (specifically 4+, which means the one that ships with MacOS won't work) recognize negative lengths as the index of the character to stop at, counting back from the end of the string. So in those versions you can get rid of the string-length expression, too: var2=${var::-4}.

If you're not actually using bash but some other POSIX-type shell, the pattern-based suffix removal with % will still work – even in plain old dash, where the index-based substring extraction won't. Ksh and zsh do both support substring extraction, but require the explicit 0 start index; zsh also supports the negative end index, while ksh requires the length expression. Note that zsh, which indexes arrays starting at 1, nonetheless indexes strings starting at 0 if you use this bash-compatible syntax. But zsh also allows you to treat scalar parameters as if they were arrays of characters, in which case the substring syntax uses a 1-based count and places the start and (inclusive) end positions in brackets separated by commas: var2=$var[1,-5].

Instead of using built-in shell parameter expansion, you can of course run some utility program to modify the string and capture its output with command substitution. There are several commands that will work; one is var2=$(sed 's/.\{4\}$//' <<<"$var").

4
  • The ???? is a double edged sword, but it worked perfectly for opening a .git repo to the /branches folder. __repo=github.com/me/something.git # REM now go check __repo branches. ???? to remove the .git open "${__repo%????}/branches" Sep 18, 2020 at 14:54
  • Glad to have helped, but it would probably be clearer to be more explicit and use ${__repo%.git}, since you know exactly which four characters you're removing. That also won't remove anything if the string doesn't end in .git, so works even if the value of __repo doesn't include the suffix for some reason.
    – Mark Reed
    Sep 18, 2020 at 19:19
  • 1
    @mark reed cut -c -4 doesn't do what you think at all. It only prints from the first to 4th character from the string, which here would simply be some. You cannot achieve this with cut.
    – Atralb
    Feb 13, 2021 at 22:01
  • Thanks, @Atralb. I must have tested with a string that happened to be 8 characters long. Updated.
    – Mark Reed
    Feb 13, 2021 at 22:26
97

What worked for me was:

echo "hello world" | rev | cut -c5- | rev
# hello w

But I used it to trim lines in a file so that's why it looks awkward. The real use was:

cat somefile | rev | cut -c5- | rev

cut only gets you as far as trimming from some starting position, which is bad if you need variable length rows. So this solution reverses (rev) the string and now we relate to its ending position, then uses cut as mentioned, and reverses (again, rev) it back to its original order.

4
  • 1
    This is not correct and not an answer to what is being asked. rev reverses lines, not strings. echo $SOME_VAR | rev | ...will probably not behave how one would expect. Jun 20, 2019 at 16:27
  • 2
    @Mohammad Because of the broken quoting, that is a single line.
    – tripleee
    Jul 14, 2019 at 10:18
  • I think you can simplify this: echo "hello world" | cut -c-7 and echo "hello world" | rev | cut -c5- | rev produce the same output. Aug 30, 2020 at 7:27
  • For me it worked fine - both in a pipeline and in a variable as something like var2=$(echo $var | rev | cut -c5- | rev) but yes, technically this one works on lines. Might not work as expected for multiline if you don't want to process each line as separate string.
    – Zbyszek
    Feb 26, 2021 at 20:15
43

Using Variable expansion/Substring replacement:

${var/%Pattern/Replacement}

If suffix of var matches Pattern, then substitute Replacement for Pattern.

So you can do:

~$ echo ${var/%????/}
some string

Alternatively,

If you have always the same 4 letters

~$ echo ${var/.rtf/}
some string

If it's always ending in .xyz:

~$ echo ${var%.*}
some string

You can also use the length of the string:

~$ len=${#var}
~$ echo ${var::len-4}
some string

or simply echo ${var::-4}

2
  • len=${#var}; echo ${var::len-4} could be shortened to echo ${var:0:-4} :-) EDIT: or as @iyonizer pointed out, just echo ${var::-4} ...
    – anishsane
    Dec 26, 2014 at 15:16
  • echo ${var::${#var}-4}; Oct 29, 2020 at 17:44
35

You could use sed,

sed 's/.\{4\}$//' <<< "$var"

EXample:

$ var="some string.rtf"
$ var1=$(sed 's/.\{4\}$//' <<< "$var")
$ echo $var1
some string
2
  • 1
    and how do I assign the result to var2?
    – becko
    Dec 26, 2014 at 15:08
  • 1
    this is good because it works on one line like this ... | sed 's/.\{4\}$//'. Can be used without using variables
    – Sam
    Jul 20, 2019 at 6:56
9

This also can do the job:

... | head -c -1
-c, --bytes=[-]NUM
              print the first NUM bytes of each file; with the leading '-', print all but the last NUM bytes of each file
1
  • echo "$v" | head -c -1 results in "head: illegal byte count -- -1" with BSD head. Using GNU head, (ghead), echo "$v" | ghead -c -1 results in "some string.rtf%"; no characters removed. ghead -c -1 <<<'some string.rtf' also results in no characters removed. Finally, to confirm there are no shenanigans.. wc -c <<<"$v"; wc -c <<<"$(ghead -c -1 <<<"$v")" shows that both have 16 bytes. You must use head/ghead -c -2. For those interested, ghead --version produces "head (GNU coreutils) 9.0"
    – SgtPooki
    Nov 5, 2021 at 21:54
7

I tried the following and it worked for me:

#! /bin/bash

var="hello.c"
length=${#var}
endindex=$(expr $length - 4)
echo ${var:0:$endindex}

Output: hel

1
  • This is perfect. I've been looking for this exact answer for quite some time. This is the closest code I've found so far to python's iterable slicing functionality.
    – VanBantam
    Jul 9, 2020 at 19:00
7

In this case you could use basename assuming you have the same suffix on the files you want to remove.

Example:

basename -s .rtf "some string.rtf"

This will return "some string"

If you don't know the suffix, and want it to remove everything after and including the last dot:

f=file.whateverthisis
basename "${f%.*}"

outputs "file"

% means chop, . is what you are chopping, * is wildcard

6

Hope the below example will help,

echo ${name:0:$((${#name}-10))} --> ${name:start:len}

  • In above command, name is the variable.
  • start is the string starting point
  • len is the length of string that has to be removed.

Example:

    read -p "Enter:" name
    echo ${name:0:$((${#name}-10))}

Output:

    Enter:Siddharth Murugan
    Siddhar

Note: Bash 4.2 added support for negative substring

3
  • This is much more verbose than a Bourne-compatible simple pattern substitution as in Etan Reisner's answer.
    – tripleee
    Jul 14, 2019 at 10:21
  • 1
    I also had to use echo "{${name:0:${#name} - 1}}" to remove the last char and to avoid "substring expression < 0" errors.
    – Clemens
    Jul 11, 2020 at 5:20
  • This answer is simple to understand and is similar to Python's syntax. Good.
    – GoingMyWay
    Aug 26, 2021 at 2:53
4

This worked for me by calculating size of string.
It is easy you need to echo the value you need to return and then store it like below

removechars(){
        var="some string.rtf"
        size=${#var}
        echo ${var:0:size-4}  
    }
    removechars
    var2=$?

some string

0

The top answer doesn't work for me, because mac os x ships with a different version of bash.

I use sed like so:

var2=`echo $var2 | sed 's/.$//'`

removes the last character

var2=`echo $var2 | sed 's/..$//'`

removes the last 2 characters.

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