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Is it possible to loop over tuples in bash?

As an example, it would be great if the following worked:

for (i,j) in ((c,3), (e,5)); do echo "$i and $j"; done

Is there a workaround that somehow lets me loop over tuples?

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1  
Coming from python background this is a very useful question indeed! – John Jiang Jan 25 '14 at 6:25
$ for i in c,3 e,5; do IFS=","; set $i; echo $1 and $2; done
c and 3
e and 5

About this use of set (from man builtins):

Any arguments remaining after option processing are treated as values for the positional parameters and are assigned, in order, to $1, $2, ... $n

The IFS="," sets the field separator so every $i gets segmented into $1 and $2 correctly.

Via this blog.

Edit: more correct version, as suggested by @SLACEDIAMOND:

$ OLDIFS=$IFS; IFS=','; for i in c,3 e,5; do set $i; echo $1 and $2; done; IFS=$OLDIFS
c and 3
e and 5
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5  
Nice -- just want to point out IFS should be saved and reset to its original value if this is run on the command line. Also, the new IFS can be set once, before the loop runs, rather than every iteration. – Slace Diamond Mar 15 '12 at 3:46
1  
@SLACEDIAMOND: thanks, I incorporated your suggestions. – Eduardo Ivanec Mar 15 '12 at 3:59
    
In case any of the $i starts with a hyphen, it's safer to set -- $i – glenn jackman Mar 15 '12 at 11:35
    
Instead of saving IFS, only set it for the set command: for i in c,3 e,5; do IFS="," set -- $i; echo $1 and $2; done. Please edit your answer: If all readers would choose only one of the listed solutions, there's no sense in having to read the full development history. Thanks for this cool trick! – cfi Oct 30 '15 at 8:43

A bit more involved, but may be useful:

a='((c,3), (e,5))'
IFS='()'; for t in $a; do [ -n "$t" ] && { IFS=','; set -- $t; [ -n "$1" ] && echo i=$1 j=$2; }; done
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$ echo 'c,3;e,5;' | while IFS=',' read -d';' i j; do echo "$i and $j"; done
c and 3
e and 5
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c=('a' 'c')
n=(3    4 )

for i in $(seq 0 $((${#c[*]}-1)))
do
    echo ${c[i]} ${n[i]}
done

Might sometimes be more handy.

To explain the ugly part, as noted in the comments:

seq 0 2 produces the sequence of numbers 0 1 2. $(cmd) is command substitution, so for this example the output of seq 0 2, which is the number sequence. But what is the upper bound, the $((${#c[*]}-1))?

$((somthing)) is arithmetic expansion, so $((3+4)) is 7 etc. Our Expression is ${#c[*]}-1, so something - 1. Pretty simple, if we know what ${#c[*]} is.

c is an array, c[] is just the whole array, ${#c[]} is the size of the array which is 2 in our case. Now we roll everything back: for i in $(seq 0 $((${#c[*]}-1))) is for i in $(seq 0 $((2-1))) is for i in $(seq 0 1) is for i in 0 1. Because the last element in the array has an index which is the length of the Array - 1.

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1  
you should do for i in $(seq 0 $(($#c[*]}-1))); do [...] – reox Oct 20 '13 at 14:24
    
@reox: Done. Thx. – user unknown Oct 22 '13 at 7:16
1  
Wow, this wins the “Ugliest Bunch of Arbitrary Characters I've Seen Today” award. Anyone care to explain what exactly this abomination does? I got lost at the hash sign... – koniiiik May 2 '14 at 11:48
    
@koniiiik: Explanation added. – user unknown May 3 '14 at 10:23

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