37

This question already has an answer here:

I need to generate a string of dots (.characters) as a variable.

I.e., in my Bash script, for input 15 I need to generate this string of length 15: ...............

I need to do so variably. I tried using this as a base (from Unix.com):

for i in {1..100};do printf "%s" "#";done;printf "\n"

But how do I get the 100 to be a variable?

marked as duplicate by fedorqui shell Nov 18 '14 at 9:29

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.

63

You can get as many NULL bytes as you want from /dev/zero. You can then turn these into other characters. The following prints 16 lowercase a's

head -c 16 < /dev/zero | tr '\0' '\141'
  • 7
    +1 for a sweet and portable solution without filthy bashisms or hundreds of processes being spawned – fstd May 6 '14 at 2:08
  • 3
    you can use /dev/zero directly, no need to redirect – edoceo Jul 20 '15 at 5:41
  • 3
    Not that sweet and portable: "head: illegal option -- c" (SunOS 5.10 Generic_150401-20 i86pc i386 i86pc) – dokaspar Nov 6 '15 at 8:21
  • 2
    head -c is portable only on GNU and BSD utils, it's not POSIX. – tricasse Jan 26 '16 at 19:40
  • You can use dd instead with dd if=/dev/zero bs=1 count=16 replacind the head part. – NeonMan May 31 at 9:50
31
len=100 ch='#'
printf '%*s' "$len" | tr ' ' "$ch"
14

Easiest and shortest way without a loop

VAR=15

Prints as many dots as VAR says (change the first dot to any other character if you like):

printf '.%.0s' {1..$VAR}

Saves the dotted line in a variable to be used later:

line=`printf '.%.0s' {1..$VAR}`
echo "Sign here $line"

-Blatantly stolen from dogbane's answer https://stackoverflow.com/a/5349842/3319298

Edit: Since I have now switched to fish shell, here is a function defined in config.fish that does this with convenience in that shell:

function line -a char -a length
  printf '%*s\n' $length "" | tr ' ' $char
end

Usage: line = 8 produces ========, line \" 8 produces """""""".

  • 1
    what an interesting way to exploit printf's shell feature that repeatibly consumes arguments until satisfied in combination with a zero-field width, forcing just the string before the % to be printed. This could be used as a trick to divide the count as well (adding the %.0s twice to force it to consume 2 arguments per pass) – osirisgothra Jun 22 '14 at 18:42
  • oh yeah and I forgot something important, since printf processes %s with a null if no args are given, a value of zero would be a problem, for that you would have to add an if statement – osirisgothra Jun 22 '14 at 21:02
  • 2
    This only works for me in my shell (bash) if I use eval: VAR=15 ; eval printf '=%.0s' {1..$VAR} – 6EQUJ5 Sep 27 '14 at 6:42
  • Only works for me with eval too. Replacing $VAR with $COLUMNS is very useful for making a horizontal ruler. If needed from inside a script: hr () { eval printf '=%.0s' {1..$(tput cols)}; echo; } – user1985657 Nov 28 '14 at 9:37
  • 1
    @6EQUJ5 In bash, you can't use variables in a brace expansion. Instead, you can use $(seq 1 $VAR) in place of {1..$VAR} – wisbucky Dec 8 '17 at 23:56
6

On most systems, you could get away with a simple

N=100
myvar=`perl -e "print '.' x $N;"`
4

You can use C-style for loops in Bash:

num=100
string=$(for ((i=1; i<=$num; i++));do printf "%s" "#";done;printf "\n")

Or without a loop, using printf without using any externals such as sed or tr:

num=100
printf -v string "%*s" $num ' ' '' $'\n'
string=${string// /#}
4

I demonstrated a way to accomplish this task with a single command in another question, assuming it's a fixed number of characters to be produced.

I added an addendum to the end about producing a variable number of repeated characters, which is what you asked for, so my previous answer is relevant here:

https://stackoverflow.com/a/17030976/2284005

I provided a full explanation of how it works there. Here I'll just add the code to accomplish what you're asking for:

    n=20 # This the number of characters you want to produce

    variable=$(printf "%0.s." $(seq 1 $n)) # Fill $variable with $n periods

    echo $variable # Output content of $variable to terminal

Outputs:

....................
3
num=100
myvar=$(jot -b . -s '' $num)
echo $myvar
2

The solution without loops:

N=100
myvar=`seq 1 $N | sed 's/.*/./' | tr -d '\n'`
-1

When I have to create a string that contains $x repetitions of a known character with $x below a constant value, I use this idiom:

base='....................'
# 0 <= $x <= ${#base}
x=5
expr "x$base" : "x\(.\{$x\}\)"    # Will output '\n' too

Output:

.....
  • 2
    In bash and ksh (perhaps zsh), you could write echo ${base:0:$x} -- details here – glenn jackman Jul 22 '14 at 13:21

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