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I would like to know the following;

  1. Why the given non-working example doesn't work.
  2. If there are any other cleaner methods than those given in working example.

Non-working example

> ids=(1 2 3 4);echo ${ids[*]// /|}
1 2 3 4
> ids=(1 2 3 4);echo ${${ids[*]}// /|}
-bash: ${${ids[*]}// /|}: bad substitution
> ids=(1 2 3 4);echo ${"${ids[*]}"// /|}
-bash: ${"${ids[*]}"// /|}: bad substitution

Working example

> ids=(1 2 3 4);id="${ids[@]}";echo ${id// /|}
1|2|3|4
> ids=(1 2 3 4); lst=$( IFS='|'; echo "${ids[*]}" ); echo $lst
1|2|3|4

In context, the delimited string to to be used in a sed command for further parsing.

share|improve this question
1  
${${ids[*]}// /|} is a syntax error, that's all. Dunno what you're trying to achieve here. –  sputnick Nov 20 '12 at 9:47
    
Trying to achieve variable substitution in 1 hop, it was never going to work... –  koola Nov 21 '12 at 3:20

1 Answer 1

up vote 5 down vote accepted

Because parenthesis are used to delimit an array, not a string:

ids="1 2 3 4";echo ${ids// /|}
1|2|3|4

Some samples:

ids=("a b" "c d")

echo ${ids[*]// /|}
a|b c|d

IFS='|';echo "${ids[*]}";IFS=$' \t\n'
a b|c d

... and finally:

IFS='|';echo "${ids[*]// /|}";IFS=$' \t\n'
a|b|c|d

when you

id="${ids[@]}"

you transfer the string build from the mergin of the array ids by a space to a new variable of type string.

Nota: when "${ids[@]}" give a space separated string, "${ids[*]}" (with a star instead of a space) render a string separated by the first charactère of $IFS

what man bash say:

man -Len -Pcol\ -b bash | sed -ne '/^ *IFS /{N;N;p;q}'
   IFS    The  Internal  Field  Separator  that  is used for word splitting
          after expansion and to split  lines  into  words  with  the  read
          builtin command.  The default value is ``<space><tab><newline>''.

Playing with $IFS:

set | grep ^IFS=
IFS=$' \t\n'

Litteraly a space, a tabulation and (meaning or) a line-feed. So, while the first character is a space. the use of * will do the same as @.

But:

{
    OIFS="$IFS"
    IFS=$': \t\n'
    unset array 
    declare -a array=($(echo root:x:0:0:root:/root:/bin/bash))
    echo 1 "${array[@]}"
    echo 2 "${array[*]}"
    IFS="$OIFS"
    echo 3 "${array[@]}"
    echo 4 "${array[*]}"
}
1 root x 0 0 root /root /bin/bash
2 root:x:0:0:root:/root:/bin/bash
3 root x 0 0 root /root /bin/bash
4 root x 0 0 root /root /bin/bash
share|improve this answer
    
So it's both a typeof and variable substitution error given ${ is expecting a var of type string but receives neither. Thank you for the detailed explanation. –  koola Nov 21 '12 at 3:23

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