352

I need to loop some values,

for i in $(seq $first $last)
do
    does something here
done

For $first and $last, i need it to be of fixed length 5. So if the input is 1, i need to add zeros in front such that it becomes 00001. It loops till 99999 for example, but the length has to be 5.

E.g.: 00002, 00042, 00212, 012312 and so forth.

Any idea on how i can do that?

11 Answers 11

591

In your specific case though it's probably easiest to use the -f flag to seq to get it to format the numbers as it outputs the list. For example:

for i in $(seq -f "%05g" 10 15)
do
  echo $i
done

will produce the following output:

00010
00011
00012
00013
00014
00015

More generally, bash has printf as a built-in so you can pad output with zeroes as follows:

$ i=99
$ printf "%05d\n" $i
00099

You can use the -v flag to store the output in another variable:

$ i=99
$ printf -v j "%05d" $i
$ echo $j
00099

Notice that printf supports a slightly different format to seq so you need to use %05d instead of %05g.

  • 5
    %05g instead of %05d fixed it for me. "00026" was giving me "00022". Thanks! – Ed Manet Feb 21 '13 at 21:16
  • 7
    Great, comprehensive answer. One small correction: strictly speaking, seq supports a subset of the format chars. that printf supports (and that subsets includes g, but not d). The behavior of characters d and g differs subtly in that d interprets 0-prefixed numbers strings as octal numbers and converts them to decimal, whereas g treats them as decimals. (@EdManet: that's why '00026' turned into '00022' with d). Another thing worth mentioning: seq -w does automatic zero-padding of the output numbers based on the widest number generated. – mklement0 Jul 31 '13 at 17:30
  • This helped me generate hex characters list. for (( i = 0; i <= 0xffffffff; i++ )) do printf "%08x\n" $i ; done >> hex.txt produced a 8 character hexadecimal list. Thanks. – cde Jan 25 '14 at 22:32
114

Easier still you can just do

for i in {00001..99999}; do
  echo $i
done
  • 14
    This works on Bash version 4.1.2 (CentOS 6) but fails in version 3.2.25 (CentOS 5). I do agree that this is much more aesthetically pleasing way to do it! – Mike Starov Sep 13 '13 at 16:03
  • 1
    Works, but does not give zero padded strings on my bash – user2707001 Oct 19 '17 at 12:11
  • On a Mac (Bash 4.4), this doesn't pad the numbers. On CentOS & SuSE, it works great! – Stefan Lasiewski Nov 19 '18 at 17:58
  • This works fine on macOS with Bash 4.4.23(1)-release – Whymarrh Jan 3 at 22:47
75

If the end of sequence has maximal length of padding (for example, if you want 5 digits and command is "seq 1 10000"), than you can use "-w" flag for seq - it adds padding itself.

seq -w 1 10

produce

01
02
03
04
05
06
07
08
09
10
  • 6
    This is obviously the correct answer. Why does it have so few upvotes? 😳 – adius Apr 26 '17 at 16:22
  • 4
    easy, because the padding depends on the max number you want to reach. If this is a parameter you never know beforehand how many zero you will end up with – guillem Jun 22 '17 at 13:30
  • 3
    This doesn't give a specified fixed length, just results which are all of the same length. – Ceisc Aug 25 '17 at 21:56
69

use printf with "%05d" e.g.

printf "%05d" 1
17

Very simple using printf

[jaypal:~/Temp] printf "%05d\n" 1
00001
[jaypal:~/Temp] printf "%05d\n" 2
00002
12

Use awk like this:

awk -v start=1 -v end=10 'BEGIN{for (i=start; i<=end; i++) printf("%05d\n", i)}'

OUTPUT:

00001
00002
00003
00004
00005
00006
00007
00008
00009
00010

Update:

As pure bash alternative you can do this to get same output:

for i in {1..10}
do
   printf "%05d\n" $i
done

This way you can avoid using an external program seq which is NOT available on all the flavors of *nix.

  • 1
    We can use awk's BEGIN statement so that we don't have to use the heredoc assignment. – jaypal singh Jan 9 '12 at 14:36
  • @JaypalSingh: Thanks mate, that's a good point. Updated my answer. – anubhava Jan 9 '12 at 14:41
8

I pad output with more digits (zeros) than I need then use tail to only use the number of digits I am looking for. Notice that you have to use '6' in tail to get the last five digits :)

for i in $(seq 1 10)
do
RESULT=$(echo 00000$i | tail -c 6)
echo $RESULT
done
  • If you wanted to use the correct number of places in the -c argument of tail, you could use 'echo -n 00000$i' as this stops it outputting a newline which is one of the chars tail is returning, hence it needing to be one higher in this answer. Depending what you're then doing, the newline, if left, might affect the results. – Ceisc Aug 25 '17 at 21:54
  • Using an external process to trim the variable in the loop is rather inefficient. You can use the shell's parameter expansion features instead. In Bash there is a facility for extracting a particular substring by index, or you can use the prefix and suffix substitutions with a pattern which matches the desired width, though it requires a bit of back-and-forth. – tripleee Nov 23 '18 at 5:32
4

If you want N digits, add 10^N and delete the first digit.

for (( num=100; num<=105; num++ ))
do
  echo ${num:1:3}
done

Output:

01
02
03
04
05
1

This will work also:

for i in {0..9}{0..9}{0..9}{0..9}
do
  echo "$i"
done
1

Other way :

zeroos="000"
echo 

for num in {99..105};do
 echo ${zeroos:${#num}:${#zeroos}}${num}
done

So simple function to convert any number would be:

function leading_zero(){

    local num=$1
    local zeroos=00000
    echo ${zeroos:${#num}:${#zeroos}}${num} 

}
0

1.) Create a sequence of numbers 'seq' from 1 to 1000, and fix the width '-w' (width is determined by length of ending number, in this case 4 digits for 1000).

2.) Also, select which numbers you want using 'sed -n' (in this case, we select numbers 1-100).

3.) 'echo' out each number. Numbers are stored in the variable 'i', accessed using the '$'.

Pros: This code is pretty clean.

Cons: 'seq' isn't native to all Linux systems (as I understand)

for i in `seq -w 1 1000 | sed -n '1,100p'`; 
do 
    echo $i; 
done

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