Print a character repeatedly in bash [duplicate]
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 "-"
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
%%%%%%%%%%
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}
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 %{,,}
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).