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I'm trying to write a simple Bash script. I have a simple "template" variable:

template = "my*appserver"

I then have a function (get_env()) that returns the values dev, qa, or live. I'd like to call get_env and then string-replace the template variable with get_env's return value and swap it out with the asterisk. So:

# Returns "dev"
server = get_env

# Prints "mydevappserver"
template = string_replace(server, template)

Or:

# This time, it returns "live"
server = get_env

# Prints "myliveappserver"
template = string_replace(server, template)

What should I be using in lieu of this string_replace() function to accomplish the binding? Thanks in advance.

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5 Answers 5

up vote 6 down vote accepted

Bash can do string replacement by itself:

template='my*appserver'
server='live'
template="${template/\*/$server}"

See the advanced bash scripting guide for more details on string replacement.

So for a bash function:

function string_replace {
    echo "${1/\*/$2}"
}

And to use:

template=$(string_replace "$template" "$server")
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2  
There is error in template = "${template/\*/$server}". It should be template="${template/\*/$server}". Stackoverflow rules (need at least 6 characters to change) does not allow me to fix it :-(. –  pevik Apr 23 at 6:17
    
@pevik ah, thanks! –  Spencer Rathbun Apr 23 at 12:11

String replacement in a bash-script can e.g. be achieved by sed:

template=$(echo $template | sed 's/old_string/new_string/g')

This will replace old_string with new_string in the template variable.

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Yeah, either 'sed' as the others have said, or start with your template in 2 separate variables and construct on the fly. e.g.

templateprefix="my"
templatesuffix="appserver"

server=get_env

template=${templateprefix}${server}${templatesuffix}
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As nobody mentioned it, here's a cool possibility using printf. The place-holder must be %s though, and not *.

# use %s as the place-holder
template="my%sappserver"

# replace the place-holder by 'whatever-you-like':
server="whatever-you-like"
printf -v template "$template" "$server"

Done!

If you want a function to do that (and notice how all the other solutions mentioning a function use an ugly subshell):

#!/bin/bash

# This wonderful function should be called thus:
# string_replace "replacement string" "$placeholder_string" variable_name
string_replace() {
    printf -v $3 "$2" "$1"
}

# How to use it:
template="my%sappserver"
server="whatever-you-like"

string_replace "$server" "$template" destination_variable

echo "$destination_variable"

Done (again)!

Hope you enjoyed it... now, adapt it to your needs!

Remark. It seems that this method using printf is slightly faster than bash's string substitution. And there's no subshell at all here! Wow, that's the best method in the West.

Funny. If you like funny stuff you could write the function string_replace above as

string_replace() {
    printf -v "$@"
}

# but then, use as:
string_replace destination_variable "$template" "$server"
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I needed to do something like this, but I needed sed and the replace clause needed to include a variable. I ended up with this.

Where the variable name is $puttyline

sed "s/\(\[remote .origin.\]\)/\1\n$puttyline/"

So sed searches for [remote "origin"] and remembers the match, and inserts a line right after, containing whatever's in the variable $puttyline.

This can get ugly however if $puttyline contains any special characters that sed would react to, like \ or $. You have to either escape them prior with another call to sed, or... do something smarter in bash that I'm too crappy with bash to know. For example, to double-escape all backslashes:

sed 's/\\/\\\\/g'
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won't there be encoding issues if $puttline contains special characters? –  Frank Schwieterman Aug 20 at 22:59
    
@FrankSchwieterman That really depends more on whether your input encoding matches your output, than how this solution functions. –  Chris Moschini Aug 22 at 16:06

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