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I have this script:

#!/usr/bin/env bash

read -p "Provide arguments: " -a arr <<< "foo \"bar baz\" buz"
for i in ${arr[@]}
do
    echo $i
done

which incorrectly outputs:

foo
"bar
baz"
buz

How can I make it interpret user input so that parameters within quotation marks would make a single array element? Like this:

foo
bar baz
buz

EDIT: To be clear: I don't want the user to input each element in separate line, so read-ing in loop is not what I'm looking for.

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I was thinking on doing IFS=""; read -p "Provide arguments: " -a arr <<< "$var" and having a new line in between every element, but it is not working to me. –  fedorqui Jan 16 '14 at 13:09
    
If you're reading input from STDIN, the only option seems to input using a delimiter, e.g. foo;bar baz;buz. –  devnull Jan 16 '14 at 13:27
    
Ok, but how? Provide arguments: foo; bar baz; buz does not seem to work either. It reads foo; (with the colon) as one element. GNU bash, version 4.2.25(1)-release (x86_64-pc-linux-gnu). –  Maciej Sz Jan 16 '14 at 13:49
    
@MaciejSz Of course you'd need to change the code a bit. See the answer. –  devnull Jan 16 '14 at 13:58

1 Answer 1

up vote 2 down vote accepted

You're better off supplying user input using a different delimiter, e.g. ;.

OLDIFS=$IFS
IFS=$';'
read -p "Provide arguments: " -a var
for i in "${!var[@]}"
do
    echo Argument $i: "${var[i]}"
done
IFS=$OLDIFS

Upon execution:

Provide arguments: foo;bar baz;buz
Argument 0: foo
Argument 1: bar baz
Argument 2: buz

Plus a modification to trim the variables:

echo Argument $i: $(echo "${var[i]}" | sed -e 's/^ *//g' -e 's/ *$//g')
share|improve this answer
    
Ok, I can settle for this. Thanks :) Just one modification: trimming from this answer. –  Maciej Sz Jan 16 '14 at 14:22
1  
Nice; you could do IFS=$';' read ... (on the same line, localizing the $IFS change to that command), in which case there's no need to save and restore $IFS via $OLDIFS. –  mklement0 Jan 16 '14 at 14:34

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