46

This question already has an answer here:

Is there a way to print same character repeatedly in bash, just like you can use this construct to do this in python:

print('%' * 3)

gives

%%%

marked as duplicate by fedorqui bash Nov 18 '14 at 9:30

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

39

sure, just use printf and a bit of bash string manipulation

$ s=$(printf "%-30s" "*")
$ echo "${s// /*}"
******************************

There should be a shorter way, but currently that's how i would do it. You can make this into a function which you can store in a library for future use

printf_new() {
 str=$1
 num=$2
 v=$(printf "%-${num}s" "$str")
 echo "${v// /*}"
}

Test run:

$ printf_new "*" 20
********************
$ printf_new "*" 10
**********
$ printf_new "%" 10
%%%%%%%%%%
  • 2
    You can avoid the subshell here if you use printf -v. printf -v str '%-30s' ' '; echo "${str// /*}" – kojiro Jun 20 '12 at 15:20
  • 1
    -1. This is very slow, especially for >1000 characters. Almost anything is faster, including printf '%.s*' {1..30}, or printf '%*s' 1000000 ''|tr ' ' '*' for large numbers. – Deadcode Feb 26 '14 at 17:17
  • 2
    The printf_new fails on the third test run. I would fix it like this: printf -v v "%-*s" "$num" ""; echo "${v// /$str}" – jarno Aug 28 '15 at 21:22
  • 2
    realization of such trivial things in bash makes me cry. – ipeacocks Jan 29 '17 at 23:06
123

There's actually a one-liner that can do this:

    printf "%0.s-" {1..10}

prints

    ----------

Here's the breakdown of the arguments passed to printf:

  • %s - This specifies a string of any length
  • %0s - This specifies a string of zero length, but if the argument is longer it will print the whole thing
  • %0.s - This is the same as above, but the period tells printf to truncate the string if it's longer than the specified length, which is zero
  • {1..10} - This is a brace expansion that actually passes the arguments "1 2 3 4 5 6 7 8 9 10"
  • "-" - This is an extra character provided to printf, it could be anything (for a "%" you must escape it with another "%" first, i.e. "%%")
  • Lastly, The default behavior for printf if you give it more arguments than there are specified in the format string is to loop back to the beginning of the format string and run it again.

The end result of what's going on here then is that you're telling printf that you want it to print a zero-length string with no extra characters if the string provided is longer than zero. Then after this zero-length string print a "-" (or any other set of characters). Then you provide it 10 arguments, so it prints 10 zero-length strings following each with a "-".

It's a one-liner that prints any number of repeating characters!

Edit:

Coincidentally, if you want to print $variable characters you just have to change the argument slightly to use seq rather than brace expansion as follows:

    printf '%0.s-' $(seq 1 $variable)

This will instead pass arguments "1 2 3 4 ... $variable" to printf, printing precisely $variable instances of "-"

  • 5
    Very good but this does not work in #!/bin/sh but only in #!/bin/bash – Daniele Brugnara Oct 2 '13 at 9:00
  • 2
    Since this uses a bash built-in, for small numbers of repeated characters it should be faster than methods the spawn external processes. For large numbers, printf '%*s' 1000000 ''|tr ' ' '-' and other methods are faster. – Deadcode Feb 26 '14 at 17:13
  • 2
    Came across this question - and many other similar ones - because I needed to create a wordlist containing 1,000,000 words for performance testing purposes in a password-cracking program. – Hashim Feb 12 '17 at 23:00
  • 1
    For the record, I went with the "slow" one-liner solution of printf "%0.s-" {1..1000000} and it took around 5 seconds. – Hashim Feb 12 '17 at 23:09
  • 1
    @jww {1..10} prints 10 times as an example, 3 times would be {1..3}, and if you wanted to print $n number of times, where $n = 3 you could do printf '%0.s-' $(seq 1 $n) – CaffeineConnoisseur Sep 18 '17 at 19:42
21

The current accepted answer for this question (by ghostdog74) provides a method that executes extremely slowly for even a moderately high number of characters. The top-voted answer (by CaffeineConnoisseur) is better, but is still quite slow.

Here is what, in my tests, has executed fastest of all (even faster than the python version):

perl -E "print '*' x 1000"

In second place was the python command:

python -c "print('*' * 1000)"

If neither perl nor python are available, then this is third-best:

head -c 1000 /dev/zero | tr '\0' '*'

And in fourth place is the one using the bash printf built-in along with tr:

printf '%*s' 1000 | tr ' ' '*'

And here's one (from CaffeineConnoisseur's answer) that's in fifth place in speed for large numbers of repeated characters, but might be faster for small numbers (due to using only a bash built-in, and not spawning an external process):

printf '%.s*' {1..1000}
  • Assuming * is the character being outputted, what is the purpose of the preceding %.s in the final example? – Hashim Feb 12 '17 at 23:02
  • "%s" is a format specification for printf, simply meaning string. In between the "%" and "s", you can set length attributes for the string. Using either "." or ".0" will set the maximum string length to zero, printing nothing for that string. In this example, the range is expanded to 1 2 3 4 5 ..... 98 99 100 and each number is being treated as a zero-length string. This is how to control the count of asterisks printed. – user.friendly Sep 20 '17 at 4:34
  • To transfer the repeated string to a string variable use: str=`perl -E "print '*' x 1000"` – PeterK Mar 12 at 13:44
10

I like this:

echo $(yes % | head -n3)

You may not like this:

for ((i=0; i<3; i++)){
   echo -ne "%"
}

You might like this:

s=$( printf "%3s" ); echo " ${s// /%}"

Source: http://dbaspot.com/shell/357767-bash-fast-way-repeat-string.html

There is also this form, but not very useful:

echo %{,,}
  • 7
    +1 for the combination of yes and head – fmark May 1 '11 at 2:28
  • That's what folks use now! I went off looking for /dev/y and couldn't find it on my modern system. – Jeremy J Starcher May 17 '13 at 22:05
  • The link you posted 8 years ago is stale, please edit it or remove it altogether as it redirects to a dubious looking site... – gboffi Jun 13 at 14:24
4

It's ugly, but you can do it like this:

$ for a in `seq 5`; do echo -n %; done
%%%%%

Of course, seq is an external program (which you probably have).

  • 2
    Why use another program when you can simply write: for a in {1..5}; do echo -n %; done .) – Daniele Brugnara Oct 2 '13 at 9:06
  • 1
    I figured out my self that in a script, my "solution" doesn't work, here's an up for your solution. – Daniele Brugnara Oct 2 '13 at 9:21
  • -1. Is slower than printf "%0.s%%" {1..5}, which is in turn slower than printf '%*s' 5 ''|tr ' ' '%'. – Deadcode Feb 26 '14 at 17:08
  • 5
    @Deadcode -1's are usually reserved for incorrect answers, not inefficient answers. There may be other ways to complete this operation, however this is a perfectly valid way... – War10ck Feb 26 '14 at 20:08
1

Another one:

char='%'
count=5
result=$( printf "%${count}s" ' ' )
echo -e ${result// /$char}
1
  1. It is possible to obtain any number of zero (\0) character from /dev/zero. The only thing left to do it is

    head -c 20 /dev/zero |tr '\0' '+'
    

    Note that head and tr are external commands. So that it would be invoked in separate process.

  2. It is possible to "optimize" this solution with string caching.

    CACHE="$(head -c 1000 /dev/zero |tr '\0' '+')"
    echo "${CACHE:0:10}"
    echo "${CACHE:0:100}"
    echo "${CACHE:0:300}"
    

    There are only bash built-ins in the echo statement. So, we can use it in cycle.

  • 1
    This does not work; it goes into an endless loop outputting an unlimited number of characters, not 20 as intended. The correct command is head -c 20 /dev/zero |tr '\0' '+'. – Deadcode Feb 26 '14 at 16:43
  • This appears to be a typo on ssvda's part. It should be head -c 20 to print the first 20 characters. head -n 20 displays the first 20 lines. – Six Mar 2 '15 at 17:30
0

Here is the most simple way to do that

seq -s % 4|tr -d '[:digit:]'

Note there will be only 3 '%' in created sequence.

  • -1. Prints a leading newline, prints one less character than the number passed, and is slower than printf '%*s' 3 ''|tr ' ' '%'. – Deadcode Feb 26 '14 at 17:01
0
#!/usr/bin/awk -f
BEGIN {
  while (c++ < 3) printf "%"
}

Result

%%%

Not the answer you're looking for? Browse other questions tagged or ask your own question.