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I wanted to ask what will be the equivalent of this write statement in printf statement?

write(STDOUT_FILENO, buf + start, end - start);

Where buf is a char*, start is int, end is int. The line which is confusing me is buf + start? Or how can i save this to a char array using strcpy and then printf that char array. But i don't know how to copy the output of above code to char array. I am unable to understand what the line buf+start is doing.

thanks

  • what are you trying to do? – Iharob Al Asimi Dec 1 '14 at 19:22
  • I want to save the output of above line to a char array so that i can use it. – user2603796 Dec 1 '14 at 19:23
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    It's simple pointer arithmetic. Are you looking for memcpy? – 5gon12eder Dec 1 '14 at 19:25
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To copy this data you need

char *mybuffer;
mybuffer = malloc(end - start + 1);
if (mybuffer != NULL)
{
    memcpy(mybuffer, buf + start, end - start);
    mybuffer[end - start] = '\0';
}

There you go, now mybuffer can be used in a printf like function, you need to remember to do free(mybuffer) at some point after you are done using mybuffer. Also you need to check end - start >= 0 and be aware that if there is a null byte embeded into the data, the string will be shorter than end - start for what printf and family care.

  • Thanks for the answer. :) I was trying to do this with strcpy and was unable to do it. :) – user2603796 Dec 1 '14 at 19:38
  • If i want to return this mybuffer from a function, then where should i free it? As i cannot free it in the function where i have to return this mybuffer? @iharob – user2603796 Dec 1 '14 at 19:51
  • For e.g. i return this myBuffer from function A. And get it in another function B as char * line = A(); now if in function B after using char * line, i do free(line) will it actually free myBuffer? – user2603796 Dec 1 '14 at 19:56
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    Yes, free means release resources to the operating system, not clear memory or erase it. – Iharob Al Asimi Dec 1 '14 at 20:41
  • Thanks for the help :) – user2603796 Dec 2 '14 at 3:35
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The expression buf + start uses pointer arithmetic and is equivalent to &buf[start], the pointer to the position start in buf. The code you show prints the slice from start to end (exclusivley) of your char buffer buf.

If your buffer doesn't contain zeros, you can rewrite that as:

printf("%.*s", (int) (end - start), buf + start);

The cast to (int) isn't strictly necessary in your case, but the * precision in printf requires an int and one often uses size_t for positions, so I've made that a habit.

  • Good to have mentioned "If your buffer doesn't contain zeros". – chux Dec 1 '14 at 19:35
  • Thanks for the answer. And what is with buffer not containing zeros? – user2603796 Dec 1 '14 at 19:37
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    Buffers containing zeros, you mean? The printf format %s is for printing strings, which are terminated with a null character, i.e. with a byte value of zero. If you set a precision p in the format, at most p characters will be printed, but printing will stop short when a null character is encountered. In short: printf("%.6s", "Hi") will print "Hi" and printf("%.6s", "Good morning") will only print "Good m". – M Oehm Dec 1 '14 at 19:44
  • You should mention that str* functions expect null terminated strings, and that the absence of a '\0' terminating byte is what really causes trouble. – Iharob Al Asimi Dec 1 '14 at 19:49
  • @iharob: String formats with a precision doesn't necessarily expect a null-terminated string. In fact, it is designed to print strings that are delimited by their length. Still you would have to check that your buffer contains printable characters, though. – M Oehm Dec 1 '14 at 19:53

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