120

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?

3
  • 5
    Coming from python background this is a very useful question indeed!
    – John Jiang
    Jan 25, 2014 at 6:25
  • 5
    looking at this four years later I wonder if there is still no better way of doing this. omg.
    – Giszmo
    Jun 22, 2016 at 23:54
  • Almost 8 years later I also wondered if there is still no better way of doing this. But this 2018 answer looks pretty good to me: stackoverflow.com/a/52228219/463994
    – MountainX
    Dec 9, 2019 at 0:06

12 Answers 12

106
$ 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
5
  • 8
    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.
    – 0eggxactly
    Mar 15, 2012 at 3:46
  • 1
    In case any of the $i starts with a hyphen, it's safer to set -- $i Mar 15, 2012 at 11:35
  • 2
    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, 2015 at 8:43
  • 2
    If I declare tuples="a,1 b,2 c,3" and put IFS=',' as in the edited version , and instead of c,3 e,5 use $tuples it doesn't print well at all. But instead if I put IFS=',' just after the do keyword in the for loop, it works well when using $tuples as well as litteral values. Just thought it was worth saying.
    – Simonlbc
    Jun 2, 2016 at 15:51
  • @Simonlbc that's because the for loop uses IFS to split iterations. i.e. If you loop over an array like arr=("c,3" "e,5") and put IFS before the for loop, the value of $i will be just c and e, it will split away 3 and 5 so set won't parse correctly because $i won't have anything to parse. This mean that if the values to iterate are not inlined, the IFS should be put inside the loop, and the outside value should respect the intended separator for the variable to iterate upon. In the cases of $tuples it should be simply IFS= which is default and splits upon whitespace.
    – untore
    Mar 16, 2017 at 18:44
59

Based on the answer given by @eduardo-ivanec without setting/resetting the IFS, one could simply do:

for i in "c 3" "e 5"
do
    set -- $i # convert the "tuple" into the param args $1 $2...
    echo $1 and $2
done

The output:

c and 3
e and 5
6
  • 3
    This approach seems to me a lot simpler than the accepted and most-upvoted approach. Is there any reason not to do it this way as opposed to what @Eduardo Ivanec suggested?
    – spurra
    Jan 29, 2020 at 14:55
  • @spurra this answer is 6 years and ½ more recent, and based on it. Credit where it's due.
    – Diego
    Jul 13, 2020 at 13:06
  • 1
    @Diego I am aware of that. It's explicitly written in the answer. I was asking if there is any reason not to use this approach over the accepted answer.
    – spurra
    Jul 13, 2020 at 13:33
  • 4
    @spurra you'd want to use Eduardo's answer if the default separator (space, tab or newline) doesn't work for you for some reason (bash.cyberciti.biz/guide/$IFS)
    – Diego
    Jul 13, 2020 at 13:45
  • What would you do if you already have a $1, $2 being utilized within your function because you're passing parameters? i.e. how do you distinguish between the 1st & 2nd parameter passed on vs. the 1st & 2nd item of the tuples?
    – mfaani
    Sep 15, 2022 at 1:56
46

This bash style guide illustrates how read can be used to split strings at a delimiter and assign them to individual variables. So using that technique you can parse the string and assign the variables with a one liner like the one in the loop below:

for i in c,3 e,5; do 
    IFS=',' read item1 item2 <<< "${i}"
    echo "${item1}" and "${item2}"
done
19

Use associative array (also known as dictionary / hashMap):

animals=(dog cat mouse)
declare -A sound=(
  [dog]=barks
  [cat]=purrs
  [mouse]=cheeps
)
declare -A size=(
  [dog]=big
  [cat]=medium
  [mouse]=small
)
for animal in "${animals[@]}"; do
  echo "$animal ${sound[$animal]} and it is ${size[$animal]}"
done
6
  • 1
    FYI, this didn't work for me on Mac with GNU bash, version 4.4.23(1)-release-(x86_64-apple-darwin17.5.0), which was installed via brew, so YMMV.
    – David
    Oct 18, 2018 at 0:58
  • it did however work on GNU bash, version 4.3.11(1)-release-(x86_64-pc-linux-gnu) from Ubuntu 14.04 within docker container.
    – David
    Oct 18, 2018 at 1:00
  • seems like older versions of bash or ones not supporting this feature work off index basing? where the key is a number rather than string. tldp.org/LDP/abs/html/declareref.html, and instead of -A we have -a.
    – David
    Oct 18, 2018 at 1:04
  • 1
    It appears associative array order of iterating over keys is random, so be careful...stackoverflow.com/questions/29161323/…
    – rogerdpack
    Oct 7, 2021 at 15:23
  • 1
    @rogerdpack Thanks! I've removed the part of my answer that dealt with non-deterministic iteration order, and the current solution should always iterate exactly as you defined it. Oct 7, 2021 at 18:21
9
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.

4
  • 1
    you should do for i in $(seq 0 $(($#c[*]}-1))); do [...]
    – reox
    Oct 20, 2013 at 14:24
  • 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, 2014 at 11:48
  • 1
    @koniiiik: Explanation added. May 3, 2014 at 10:23
  • "Neu-Perl: The Revenge" I think it would actually be clearer in perl. :-) Nov 27, 2020 at 22:25
6
$ echo 'c,3;e,5;' | while IFS=',' read -d';' i j; do echo "$i and $j"; done
c and 3
e and 5
5

But what if the tuple is greater than the k/v that an associative array can hold? What if it's 3 or 4 elements? One could expand on this concept:

###---------------------------------------------------
### VARIABLES
###---------------------------------------------------
myVars=(
    'ya1,ya2,ya3,ya4'
    'ye1,ye2,ye3,ye4'
    'yo1,yo2,yo3,yo4'
    )


###---------------------------------------------------
### MAIN PROGRAM
###---------------------------------------------------
### Echo all elements in the array
###---
printf '\n\n%s\n' "Print all elements in the array..."
for dataRow in "${myVars[@]}"; do
    while IFS=',' read -r var1 var2 var3 var4; do
        printf '%s\n' "$var1 - $var2 - $var3 - $var4"
    done <<< "$dataRow"
done

Then the output would look something like:

$ ./assoc-array-tinkering.sh 

Print all elements in the array...
ya1 - ya2 - ya3 - ya4
ye1 - ye2 - ye3 - ye4
yo1 - yo2 - yo3 - yo4

And the number of elements are now without limit. Not looking for votes; just thinking out loud. REF1, REF2

3
  • This one works for sh. Since newer version of macOS stops keeping update bash, this once is more suitable for scripts targeting macOS.
    – WeZZard
    Sep 18, 2022 at 5:44
  • There are a few bourn-like shells worth exploring: 1) bash (more feature-rich than the original), 2) dash (posix-compliant version of the original). For EVERY new macOS install, I would recommend brew install shellcheck bash dash bash-completion@2. This will get the latest GNU bash - just like on Linux; so everything is the same everywhere :-)
    – todd_dsm
    Sep 18, 2022 at 23:55
  • The bash completion is only necessary if you're still using bash as the system shell echo $SHELL find out. On a new macOS it should be ZSH; in that case, do yourself a favor and install Oh My ZSH - it's just superior.
    – todd_dsm
    Sep 18, 2022 at 23:58
4

Using GNU Parallel:

parallel echo {1} and {2} ::: c e :::+ 3 5

Or:

parallel -N2 echo {1} and {2} ::: c 3 e 5

Or:

parallel --colsep , echo {1} and {2} ::: c,3 e,5
2
  • 1
    No love for this? well made me overcome inertia and install gnu parallel Apr 28, 2017 at 18:29
  • 2
    brew install parallel Apr 28, 2017 at 18:35
2
do echo $key $value
done < file_discriptor

for example:

$ while read key value; do echo $key $value ;done <<EOF
> c 3
> e 5
> EOF
c 3
e 5

$ echo -e 'c 3\ne 5' > file

$ while read key value; do echo $key $value ;done <file
c 3
e 5

$ echo -e 'c,3\ne,5' > file

$ while IFS=, read key value; do echo $key $value ;done <file
c 3
e 5
2

Using printf in a process substitution:

while read -r k v; do
    echo "Key $k has value: $v"
done < <(printf '%s\n' 'key1 val1' 'key2 val2' 'key3 val3')

Key key1 has value: val1
Key key2 has value: val2
Key key3 has value: val3

Above requires bash. If bash is not being used then use simple pipeline:

printf '%s\n' 'key1 val1' 'key2 val2' 'key3 val3' |
while read -r k v; do echo "Key $k has value: $v"; done
0
1

In cases where my tuple definitions are more complex, I prefer to have them in a heredoc:

while IFS=", " read -ra arr; do
  echo "${arr[0]} and ${arr[1]}"
done <<EOM
c, 3
e, 5
EOM

This combines looping over lines of a heredoc with splitting the lines at some desired separating character.

0

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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