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Given a char[] in c, I want to specify the length of output from that array starting with some position in printf, how can I conveniently do that?

For example, I want to print the portion from position 3 (indexed from 0) to position 8:

printf("%s", char_array+3..char_array+8)

I could make a temporary char[] with the desired length, but that is not very convenient. Or I could write a substring function

char* substring(const char* str, size_t begin, size_t len) {
    if (str == 0 || strlen(str) == 0 || strlen(str) < begin || strlen(str) < (begin + len))
        return 0;
    return strndup(str + begin, len);
}

But if I call

printf("%s", substring(s, 3, 5));

I am afraid there will be memory leak.

What do you think about the best way to do this?

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3  
Yes, there will be a memory leak. –  Mysticial Jan 7 '12 at 20:04
    
I would recommend against ever using str[n]dup because it has the insidious property of creating memory leaks without you ever seeing malloc anywhere –  Seth Carnegie Jan 7 '12 at 20:11
    
@Seth You'd prefer a malloc and then a strcpy? Better would be to choose a language that supported strings better. –  David Heffernan Jan 7 '12 at 20:17
    
@DavidHeffernan yes, because the malloc would let you know you needed a free, whereas strndup makes you break the rule of one free for every malloc. But yes, I also agree with your second sentence. –  Seth Carnegie Jan 7 '12 at 20:20

2 Answers 2

up vote 7 down vote accepted
#include <stdio.h>

int printmid(const char *data, size_t start, int len) {
  return printf("%.*s", len, data + start);
}

int main(void) {
  char data[] = "Hello, World!";
  printmid(data, 3, 6);
  puts("");
  return 0;
}

output

lo, Wo
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Can you avoid the magic numbers? –  Jonathan Leffler Jan 7 '12 at 20:10
1  
+1 I completely forgot you could do that. –  Brian Roach Jan 7 '12 at 20:10
    
@Jonathan: I think it's ok after the ninja edits :) –  pmg Jan 7 '12 at 20:14
1  
The original was expressed in terms of the numbers 3 and 8; your answer is written in terms of the numbers 3 and 6. I know how you derived 6 from 3 and 8, and it shouldn't take long for anyone to work it out. So what you've got is OK, but (IMO) it is best to tackle the problem with the numbers the user gives, rather than derived numbers. What you've got is, and essentially always was, correct; but it is/was not crystal clear. –  Jonathan Leffler Jan 7 '12 at 20:19
int end = 8;
int bgn = 3;
int len = end - bgn + 1;
printf("%*.*s", len, len, char_array + bgn);

Note that len should be an int (and not, for example, the difference between two pointers - that's a ptrdiff_t or size_t). You can also omit the first length if you want - both can be specified, and they have specific meanings if the source string is shorter than the designated length (meaning there's a null byte in the string before char_array + end). Clearly, if the string in char_array is shorter than 4 bytes, then what follows the terminating null is probably garbage, and GIGO applies. If you're not certain the string is at least 8 bytes long, you might prefer to have the output left justified, in which case, insert a minus - before the first *; as written, the shorter string would be right justified.

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