67

I'd like to do something like printf("?", count, char) to repeat a character count times.

What is the right format-string to accomplish this?

EDIT: Yes, it is obvious that I could call printf() in a loop, but that is just what I wanted to avoid.

  • 2
    How many did you have in mind? – WhozCraig Feb 4 '13 at 0:28
  • 4
    Not knowing the count at compile time isn't an obstacle to writing a loop. – Keith Thompson Feb 4 '13 at 0:54
  • Your question is reasonably clear (and the real answer is that there is no printf format that does what you want), but your comments leave me unsure what you're asking. You talk about a format string and arguments being passed into your function. What function are you asking about? It seems there are things you're not telling us. – Keith Thompson May 23 '13 at 14:55
  • @KeithThompson I wrote a wrapper around 'printf', so those arguments were the same as for the original, sorry for the confusion. And I should have described the reason for needing this better, you're right. – Muis May 23 '13 at 20:56
  • I'm afraid I still have no clear idea what you're trying to do, or (no offense to @synthesizerpatel) why you accepted the answer you did, which was not intended as a serious solution. – Keith Thompson May 23 '13 at 21:01

12 Answers 12

54

Short answer - yes, long answer: not how you want it.

You can use the %* form of printf, which accepts a variable width. And, if you use '0' as your value to print, combined with the right-aligned text that's zero padded on the left..

printf("%0*d\n", 20, 0);

produces:

00000000000000000000

With my tongue firmly planted in my cheek, I offer up this little horror-show snippet of code.

Some times you just gotta do things badly to remember why you try so hard the rest of the time.

#include <stdio.h>

int width = 20;
char buf[4096];

void subst(char *s, char from, char to) {
    while (*s == from)
    *s++ = to;
}

int main() {
    sprintf(buf, "%0*d", width, 0);
    subst(buf, '0', '-');
    printf("%s\n", buf);
    return 0;
}
  • 3
    I don't clearly remember what I was thinking, but in your code the upper bound is 4096. I suppose you could malloc the buffer. – Keith Thompson Jan 29 '14 at 20:48
  • 1
    Fair enough. Knife-fight == averted! – synthesizerpatel Jan 31 '14 at 11:14
  • 4
    This style is wrose than directly assign char in a loop. – liuyang1 Nov 27 '15 at 11:03
  • 2
    Yep. This method is terrible but it does answer the OPs question. – synthesizerpatel May 24 '16 at 16:48
  • 1
    Can you please clarify what you mean by horror-show? I feel like you're trying to warn against something but I'm not sure what... are you just trying to point out the danger of overflow when using "%*"? – cheshirekow Jul 19 '18 at 18:17
105

You can use the following technique:

printf("%.*s", 5, "=================");

This will print "=====" It works for me on Visual Studio, no reason it shouldn't work on all C compilers.

  • 3
    It's unfortunate that this answer isn't rated higher considering it's not only correct but works cross-platform. Tested on OSX, Linux and OpenBSD in C as well as Perl (which is wrapping the C printf anywho) – synthesizerpatel May 22 '13 at 11:49
  • 3
    Thanks, I remembered doing this 10 years ago , but forgot it and then rediscovered it. – rep_movsd May 23 '13 at 9:28
  • 15
    It's not exactly flexible tho'. If the width is larger than the string itself, it won't print more than the string (at least not in my simple experiment with gcc). – Mats Petersson May 23 '13 at 9:56
  • 1
    This works better than synthesizerpatel's answer. When I tried space instead of a zero and the width is zero, is still prints a single space. This one doesn't. – black May 12 '14 at 10:13
  • 1
    Nice catch! @rep_movsd – Juan Diego Godoy Robles Oct 22 '15 at 10:12
18

If you limit yourself to repeating either a 0 or a space you can do:

For spaces:

printf("%*s", count, "");

For zeros:

printf("%0*d", count, 0);
16

In c++ you could use std::string to get repeated character

printf("%s",std::string(count,char).c_str());

For example:

printf("%s",std::string(5,'a').c_str());

output:

aaaaa
11

There is no such thing. You'll have to either write a loop using printf or puts, or write a function that copies the string count times into a new string.

  • 1
    Very strange that I can have the most complicated expressions, but something simple like repeating a character is not supported. – Muis Feb 4 '13 at 0:33
  • Why? You can do it simply by adding a loop around what you want to repeat. Most of what printf does are things you couldn't do in your own code [very easily]. Let libraries do the hard part, and the application program do the easy parts, I think that's the theme here. – Mats Petersson Feb 4 '13 at 0:38
  • 5
    And if you feel strongly about it, I guess the C standard committee is interested in suggestions for improvements, and a sample implementation inside glibc would perhaps improve the chances of it ever becoming standard. If you implement it, maybe someone else will think it's a good idea. It's only been missing for the last 50 years or so since printf was first introduced, so it's perhaps just an oversight... ;) – Mats Petersson Feb 4 '13 at 0:40
  • @MatsPetersson Thats no solution, because I don't know the format string in advance, see my response to Mokammel. – Muis Feb 4 '13 at 0:40
  • 2
    Why is this being downvoted - if you are downvoting this answer, please let me know what it is you are unhappy with... – Mats Petersson May 23 '13 at 9:53
7

printf doesn't do that -- and printf is overkill for printing a single character.

char c = '*';
int count = 42;
for (i = 0; i < count; i ++) {
    putchar(c);
}

Don't worry about this being inefficient; putchar() buffers its output, so it won't perform a physical output operation for each character unless it needs to.

  • I dont know the format-string or the arguments that will be passed into my function, they could be read from a xml-file or be user-input. – Muis Feb 4 '13 at 1:36
  • You have the character and the number of times you need to print it, right? What more information do you need? To print a single character with printf, the format string is "%c". But you don't need to use printf, and in that case you don't need a format string at all. (There simply is no printf format string that will print a character multiple times, but there are other and better ways to accomplish the task.) – Keith Thompson Feb 4 '13 at 2:19
  • Like I said, I don't know what the arguments to my function represent. Suppose I read the format-string and arguments from an XML file, and pass them on to printf(), how would my function ever be aware that it needs to loop and that the second argument represents a count? That is what I mean with that my input is not known at compile-time. – Muis Feb 4 '13 at 11:19
  • 4
    @Joshua: The arguments to what function? Your question doesn't even mention a function. – Keith Thompson Feb 4 '13 at 15:18
  • 1
    @Joshua you are really confused which is evident from your excessive usage of compile time and function 'is going to know'. It is really not as difficult as what you are making it appear. You need a function to print a character 'x' n times. If it comes from xml, then parse the xml and find out the character to print and how many times it needs printing. Use strlen to get the string length in places where your xml string field decides how many times the character 'x' needs to be printed. – SayeedHussain Jun 18 '13 at 5:04
6

If you have a compiler that supports the alloca() function, then this is possible solution (quite ugly though):

printf("%s", (char*)memset(memset(alloca(10), '\0', 10), 'x', 9));

It basically allocates 10 bytes on the stack which are filled with '\0' and then the first 9 bytes are filled with 'x'.

If you have a C99 compiler, then this might be a neater solution:

for (int i = 0;  i < 10;  i++, printf("%c", 'x'));
  • 4
    I would suggest putchar('x') instead of printf("%c", 'x'). – Paddu Aug 12 '14 at 13:19
  • Why? Is execution time lesser? – 71GA Feb 18 at 15:49
4
#include <stdio.h>
#include <string.h>

void repeat_char(unsigned int cnt, char ch) {
    char buffer[cnt + 1];
    /*assuming you want to repeat the c character 30 times*/
    memset(buffer,ch,cnd); buffer[cnt]='\0';
    printf("%s",buffer)
}
2

you can make a function that do this job and use it

#include <stdio.h>

void repeat (char input , int count )
{
    for (int i=0; i != count; i++ )
    {
        printf("%c", input);
    }
}

int main()
{
    repeat ('#', 5);
    return 0;
}

This will output

#####
  • 2
    putchar() would be a better fit for the repeat() loop – rsaxvc Nov 18 '17 at 6:41
  • Indeed, but I’ve tried to make my code very basic to be uderstandable for any entry-level coder – Loay Hussein Nov 20 '17 at 10:25
  • would be better to use i < count. Otherwise a negative input for count might result in a lot of unwanted prints. – Alexander Apr 8 '19 at 8:05
1
printf("%.*s\n",n,(char *) memset(buffer,c,n));

n <= sizeof(buffer) [ maybe also n < 2^16]

However the optimizer may change it to puts(buffer) and then the lack of EoS will .....

And the assumption is that memset is an assembler instruction (but still a loop be it on chip).

Strictly seen there is no solution given you precondition 'No loop'.

0
char buffer[41];

memset(buffer, '-', 40);    // initialize all with the '-' character<br /><br />
buffer[40] = 0;             // put a NULL at the end<br />

printf("%s\n", buffer);     // show 40 dashes<br />
-1

i think doing some like this.

void printchar(char c, int n){
     int i;
     for(i=0;i<n;i++)
         print("%c",c);
}

printchar("*",10);

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