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How do I iterate over a range of numbers in bash when the range is given by a variable?

I know I can do this (called "sequence expression" in the bash documentation):

 for i in {1..5}; do echo $i; done

Which gives:

1
2
3
4
5

Yet how can I replace either of the range endpoints with a variable? This doesn't work:

END=5
for i in {1..$END}; do echo $i; done

Which prints:

{1..5}

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4  
Hi all, the informations and hints I have read here are all really helpful. I think it is best to avoid the use of seq. The reason is that some scripts need to be portable and must run on a wide variety of unix systems, where some commands may not be present. Just to do an example, seq is not present by default on FreeBSD systems. –  user557212 Jan 14 '11 at 11:19
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11 Answers 11

up vote 262 down vote accepted
for i in $(seq 1 $END); do echo $i; done
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3  
seq involves the execution of an external command which usually slows things down. This may not matter but it becomes important if you're writing a script to handle lots of data. –  paxdiablo Oct 4 '08 at 1:45
7  
Just fine for a one-liner. Pax's solution is fine too, but if performance were really a concern I wouldn't be using a shell script. –  eschercycle Oct 4 '08 at 1:49
10  
seq is good, but is specific to GNU (it is not in POSIX, nor available as standard on systems such as Solaris, HP-UX, AIX). I have my own program, range, which is equivalent to seq - I often wondered why other people didn't need similar functionality people. Darn useful for generating test data. –  Jonathan Leffler Oct 4 '08 at 4:14
5  
seq is called just once to generate the numbers. exec()'ing it shouldn't be significant unless this loop is inside another tight loop. –  Javier Oct 4 '08 at 4:40
8  
The external command isn't really relevent: if you're worried about the overhead of running external commands you don't want to be using shell scripts at all, but generally on unix the overhead is low. However, there is the issue of memory usage if END is high. –  Mark Baker Oct 6 '08 at 12:53
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discussion

Using seq is fine, as Jiaaro suggested. Pax Diablo suggested a bash loop to avoid calling a subprocess, with the additional advantage of being more memory friendly if $END is too large. Zathrus spotted a typical bug in the loop implementation, and also hinted that since i is a text variable, continuous conversions to-and-fro numbers are performed with an associated slow-down.

integer arithmetic

This is an improved version of the bash loop:

typeset -i i END
let END=5 i=1
while ((i<=END)); do
    echo $i
    …
    let i++
done

If the only thing that we want is the echo, then we could write echo $((i++)).

ephemient taught me something: bash allows for ((expr;expr;expr)) constructs. Since I've never read the whole man page for bash (like I've done with the ksh man page, and that was a long time ago), I missed that.

So,

typeset -i i END # let's be explicit
for ((i=1;i<=END;++i)); do echo $i; done

seems to be the most memory-efficient way (it won't be necessary to allocate memory to consume seq's output, which could be a problem if END is very large), although probably not the “fastest”.

the initial question

eschercycle noted that the {a..b} bash notation works only with literals; true, accordingly to the bash manual. One can overcome this obstacle with a single (internal) fork() without an exec() (as is the case with calling seq, which being another image requires a fork+exec):

for i in $(eval echo "{1..$END}"); do

Both eval and echo are bash builtins, but a fork() is required for the command substitution (the $(…) construct).

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The only drawback to the C style loop that it cannot use command line arguments, as they begin with "$". –  karatedog Jan 9 '12 at 13:15
    
@karatedog: for ((i=$1;i<=$2;++i)); do echo $i; done in a script works fine for me on bash v.4.1.9, so I don't see a problem with command line arguments. Do you mean something else? –  tzot Jan 9 '12 at 14:41
    
It seems that eval solution is faster than built in C-like for: $ time for ((i=1;i<=100000;++i)); do :; done real 0m21.220s user 0m19.763s sys 0m1.203s $ time for i in $(eval echo "{1..100000}"); do :; done; real 0m13.881s user 0m13.536s sys 0m0.152s –  Marcin Zaluski Jul 4 '12 at 14:55
    
Yes, but eval is evil... @MarcinZaluski time for i in $(seq 100000); do :; done is a lot quicker! –  F. Hauri Aug 2 '13 at 4:58
    
The performance must be platform specific since the eval version is quickest on my machine. –  Andrew Prock Apr 2 at 23:25
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The seq method is the simplest, but Bash has built-in arithmetic evaluation.

END=5
for ((i=1;i<=END;i++)); do
    echo $i
done
# ==> outputs 1 2 3 4 5 on separate lines

The "for ((expr1;expr2;expr2))" construct works just like "for (expr1;expr2;expr3)" in C and similar languages, and like other ((expr)) cases, Bash treats them as arithmetic.

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One constantly learns. I would prepend a typeset -i i END though. In the pre-bash times (i.e. ksh) it made a difference, but computers were much slower then. –  tzot Oct 4 '08 at 22:59
4  
This way avoids the memory overhead of a large list, and a dependency on seq. Use it! –  bobbogo Mar 14 '11 at 20:08
    
best solution for me as I need it for bash on different OS –  Hachi Jul 2 '13 at 8:37
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Since the "how to" part of the question has been completely answered by now, I will comment on why the original expression didn't work.

From man bash:

Brace expansion is performed before any other expansions, and any characters special to other expansions are preserved in the result. It is strictly textual. Bash does not apply any syntactic interpretation to the context of the expansion or the text between the braces.

So, brace expansion is something done early as a purely textual macro operation, before parameter expansion.

Shells are highly optimized hybrids between macro processors and more formal programming languages. In order to optimize the typical use cases, the language is made rather more complex and some limitations are accepted.

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3  
I don't have the power, but I would move this quite a bit up the list, above all the bash navel-gazing but immediately after the C-style for loop and arithmetic evaluation. –  mateor Mar 15 '13 at 18:03
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Another layer of indirection:

for i in $(eval echo {1..$END}); do
    ∶
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+1: Also, eval 'for i in {1..'$END'}; do ... ' eval seems the natural way to solve this issue. –  William Pursell Mar 14 '11 at 20:07
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If you're on BSD / OS X you can use jot instead of seq:

for i in $(jot $END); do echo $i; done
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You saved my day! Thanks. –  RubyDev Sep 4 '11 at 5:54
    
This doesn't work on 10.8.x –  Alan May 13 '13 at 18:48
    
Using 10.8.5 here and it works fine. –  SigmaX Oct 9 '13 at 2:59
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You can use

for i in $(seq $END); do echo $i; done
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seq involves the execution of an external command which usually slows things down. –  paxdiablo Oct 4 '08 at 1:44
3  
It doesn't involve the execution of an external command for each iteration, just once. If the time to launch one external command is an issue, you're using the wrong language. –  Mark Baker Oct 6 '08 at 12:57
5  
+1 for $() instead of backticks –  Dennis Williamson Oct 19 '09 at 22:27
1  
Why is $() better than ``? –  Sqeaky Oct 18 '11 at 18:19
2  
@Sqeaky: have you ever tried to nest `` calls?-) –  tzot Jan 9 '12 at 14:45
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This works fine in bash:

END=5
i=1 ; while [[ $i -le $END ]] ; do
    echo $i
    ((i = i + 1))
done
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9  
((i++)) works –  Dennis Williamson Oct 19 '09 at 22:28
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These are all nice but seq is supposedly deprecated and most only work with numeric ranges.

If you enclose your for loop in double quotes, the start and end variables will be dereferenced when you echo the string, and you can ship the string right back to BASH for execution. $i needs to be escaped with \'s so it is NOT evaluated before being sent to the subshell.

RANGE_START=a
RANGE_END=z
echo -e "for i in {$RANGE_START..$RANGE_END}; do echo \\${i}; done" | bash

This output can also be assigned to a variable:

VAR=`echo -e "for i in {$RANGE_START..$RANGE_END}; do echo \\${i}; done" | bash`

The only "overhead" this should generate should be the second instance of bash so it should be suitable for intensive operations.

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I know this question is about bash, but - just for the record - ksh93 is smarter and implements it as expected:

$ ksh -c 'i=5; for x in {1..$i}; do echo "$x"; done'
1
2
3
4
5
$ ksh -c 'echo $KSH_VERSION'
Version JM 93u+ 2012-02-29

$ bash -c 'i=5; for x in {1..$i}; do echo "$x"; done'
{1..5}
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Replace {} with (( )):

tmpstart=0;
tmpend=4;

for (( i=$tmpstart; i<=$tmpend; i++ )) ; do 
echo $i ;
done

Yields:

0
1
2
3
4
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