line="\t\t\t1\t2\t\t3"

What I do:

IFS=$'\t'  DIRS=($line);

What I want to get:

DIRS[0]=NULL; DIRS[1]=NULL; DIRS[2]=NULL; DIRS[3]=1;DIRS[4]=2;DIRS[5]=NULL;DIRS[6]=3;

What I actually get:

DIRS[0]=1; DIRS[1]=2; DIRS[2]=3

Is that possible to get what I want to get?

up vote 5 down vote accepted

Bash treats whitespace specially in IFS:

If IFS has a value other than the default, then sequences of the whitespace characters space and tab are ignored at the beginning and end of the word, as long as the whitespace character is in the value of IFS (an IFS whitespace character). Any character in IFS that is not IFS whitespace, along with any adjacent IFS whitespace characters, delimits a field. A sequence of IFS whitespace characters is also treated as a delimiter.

So, use a non-whitespace character. (BTW, I use $'\t' for a tab, search man bash for Quoting)

#!/bin/bash
line=$'\t\t\t1\t2\t\t3'

IFS=$':' DIRS=(${line//$'\t'/:})       # Replace tabs with colons.

for (( i=0 ; i<${#DIRS[@]} ; i++ )); do
    echo "$i: [${DIRS[i]}]"
done
  • Thank you, it works for them. But instead of using ':' as delimiter I use '|'. – TrueBlue10 Dec 4 '14 at 10:31
  • @TrueBlue10: Use whatever can't occur in the $line. – choroba Dec 4 '14 at 10:32

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.