I'm trying to write a, for me, complicated script where my goal is to do the following. I have a string coming in that looks like this:

2012 2013 "multiple words"

My goal is to put each of these onto an array split by spaces, but only for single word matches, not those surrounded by double quotes. Those should be considered one word. So my idea was to do this in two steps. First match those words that are multiples, remove those from the string, then in another iteration split by white space.
Unfortunately I can't find help on how to echo the match only. So far I have this:

array=$(echo $tags | sed -nE 's/"(.+)"/\1/p')

But this would result in (on OS X):

2012 2013 multiple words

Expected result:

array[1]="2012"
array[2]="2013"
array[3]="multiple words"

How would I go about this sort of problem?

Thanks.

  • can you give an example of the expected result? I read multiple times the question about the double quoted words but I dont get it. you want the quoted words to be a single entry in the array or do you want to split them too? – zekus Jun 27 '13 at 9:05
  • Putting values into an array is not a goal, it's an implementation of something you think is the best approach to help you achieve a goal. If you tell us what you're really trying to do, with sample input and expected output, maybe we can suggest an alternative. – Ed Morton Jun 27 '13 at 12:04
  • @zekus I've added an expected result. Will look into posted solutions now. Thanks everyone! – Zettt Jun 27 '13 at 13:37
  • @doubleDown Thanks for editing! Much clearer now. – Zettt Jul 8 '13 at 14:48
up vote 20 down vote accepted

eval is evil, but this may be one of those cases where it comes handy

str='2012 2013 "multiple words"'
eval x=($str)
echo ${x[2]}
multiple words

Or with more recent versions of bash (tested on 4.3)

s='2012 2013 "multiple words"'
declare -a 'a=('"$s"')'
printf "%s\n" "${a[@]}"
2012
2013
multiple words
  • 1
    +1, I think sometimes eval is a very handy tool. This is one of those cases. This should be accepted solution. – anubhava Jun 27 '13 at 15:18
  • Thanks so much! I must add that @anubhava's solution is the same, except it doesn't include the eval part. – Zettt Jun 27 '13 at 17:57
  • Is this completely safe? Any danger of executing commands within str? – pimlottc Dec 4 '13 at 15:29
  • 1
    @pimlottc, eval is not ever completely safe. – iruvar Dec 4 '13 at 16:01
  • @1_CR I wasn't sure if perhaps the parens acted somehow as a guard in this case. If not, this doesn't seem like a recommendable solution. – pimlottc Dec 5 '13 at 21:37
$ grep -Eo '"[^"]*"|[^" ]*' <<< '2012 2013 "multiple words"'
2012
2013
"multiple words"

That is, print only the strings matching either

  1. a quote followed by any number (even zero) non-quotes followed by a quote or
  2. a series of characters not containing a quote or space.

Of course, this does not handle complicated cases like quotes spanning multiple lines or escaped quotes (using either double quotes like SQL or backslash like the shell).

  • On OSX above command only gives 1st string 2012. – anubhava Jun 27 '13 at 10:31
  • What does grep -V return? – l0b0 Jun 27 '13 at 10:50
  • grep -V shows grep (GNU grep) 2.5.1 – anubhava Jun 27 '13 at 11:46

You can directly do:

arr=(2012 2013 "multiple words")

echo ${#arr[@]} # gives 3
echo ${arr[2]} # gives "multiple words"

EDIT: Not sure if it helps the OP but following will also workL

str='2012 2013 "multiple\ words"'
read -a arr <<< $str
echo ${#arr[@]} # gives 3
echo ${arr[2]} # gives "multiple words"
  • It's not that simple if the string is stored in a variable. Can you show an example using a variable? – dogbane Jun 27 '13 at 9:51
  • @dogbane: Ok I will try to find that but yes fully agree that It's not that simple if the string is stored in a variable. – anubhava Jun 27 '13 at 9:53
  • @dogbane: Pls see the edit for one workaround. – anubhava Jun 27 '13 at 10:23
  • You've escaped the space in your string and it no longer matches the OP's input. Ideally, you should come up with a solution that splits str='2012 2013 "multiple words"' into an array of three elements. – dogbane Jun 27 '13 at 12:32
  • @dogbane: That's why I said its a workaround :P. Only if OP can get the spaces to be escaped inside double quote then it will work. (Can be easily done with a per/sed as well). – anubhava Jun 27 '13 at 13:05

The following will produce the result you want:

tags='2012 2013 "multiple words"'
IFS=$'\n'; array=($(echo $tags | egrep -o '"[^"]*"|\S+'))

result in ZSH:

echo ${array[1]} # 2012
echo ${array[2]} # 2013
echo ${array[3]} # "multiple words"

result in BASH:

echo ${array[0]} # 2012
echo ${array[1]} # 2013
echo ${array[2]} # "multiple words"

works in OSX.

Here is a small Python script to parse space delimited csv while respecting quoted fields:

$ python -c '
import csv, fileinput
for line in csv.reader(fileinput.input(), delimiter=" "):
   for word in line:
      print word
' test.csv
2012
2013
multiple words

Since this uses the fileinput module, works in a pipeline (or a string in a variable) as well:

$ str='2012 2013 "multiple words"'
$ echo $str | python -c '
import csv, fileinput
for line in csv.reader(fileinput.input(), delimiter=" "):
   for word in line:
      print word
' 
2012
2013
multiple words

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