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So I have a string that has a certain amount of bytes (or length). I say bytes because there is no NULL terminator at the end of the string. Though, I know how long the string is. Normally, as we all know, when you printf("%s", str);, it will keep printing every byte until it gets to a NULL character. I know there is no C string that is not NULL terminated, but I have a weird situation where I'm storing stuff (Not specifically strings) and I don't store the NULL, but the length of the "thing".

Here is a little sample:

char* str = "Hello_World"; //Let's use our imagination and pretend this doesn't have a NULL terminator after the 'd' in World
long len = 5;

//Print the first 'len' bytes (or char's) of 'str'

I know you are allowed to do something like this:

printf("%.5s", str);

But with that situation, I'm hard coding the 5 in, though with my situation, the 5 is in a variable. I would do something like this:

printf("%.(%l)s", len, str);

But I know you can't do that. But gives you an idea of what I'm trying to accomplish.

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A very similar question has been answered here: stackoverflow.com/a/4777218/2163085 –  Ninjammer Mar 13 '13 at 4:02
    
SO 4777218 is related, but somewhat different (referring primarily to assignment rather than printing). –  Jonathan Leffler Mar 13 '13 at 4:16
2  
You can use snprintf(format, sizeof(format), "%%.%ds", len); to create the appropriate format string, and then use format in the call to printf(). If you're doing scanf(), you practically have to do this if the input lengths vary (the * in scanf() is very different from the * in printf()). OTOH, the printf("%.*s\n", len, str) mechanism is usually most appropriate for printf(). –  Jonathan Leffler Mar 13 '13 at 4:18

3 Answers 3

up vote 7 down vote accepted

printf("%.*s", len, str);

and also, there is no C string that is not NULL terminated.

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I know there is no C string that is not NULL terminated, but I have a weird situation where I'm storing stuff and I don't store the NULL, but the length of the "thing". –  Rob Avery IV Mar 13 '13 at 3:59
    
@RobAveryIV you can print len amount of string from str like above –  Aniket Mar 13 '13 at 4:00
    
Note that this works because every * in the format adds another required argument that is replaced with the integer value provided by len above. –  Jim Stewart Mar 13 '13 at 4:01
1  
@RobAveryIV your memory wouldn't fit :-) especially if it is a 32 bit computer. But that apart, size_t which is what strlen returns, is of type unsigned int so, even if the size of the string is much bigger than unsigned int I do not think there is an strlen_l for long strings. –  Aniket Mar 13 '13 at 4:11
3  
The type of the argument for a * must be an int. The return from strlen() is not an int (it is size_t), so you must cast it if you use it. Either the variable len must be of type int or you need to cast it in the call to printf(). Things can go horribly wrong if you move from 32-bit to 64-bit (Unix) platforms and a length is long instead of int; the alignment of everything else in the argument list is off-kilter, leading to dramatically erroneous results (or core dumps). –  Jonathan Leffler Mar 13 '13 at 4:15

You can do this:

for (int i =0; i<len; i++)
{
    printf("%c", str[i]);
}

Which will print them in the same line, looping for whatever lenght you need to print.

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You could detect null byte poisoning like this. Program wil display Poisoning Null Byte detected

  char filename[] = "path/image.php\0.bmp";

  if ((sizeof(filename) - 1) == strlen(filename)) {

      printf("%s %s", "No poisoning Null Byte detected" , "\n");

      FILE *fp;
      fp = fopen(filename, "r");

      if ( fp == NULL ) {
        perror ( "Unable to open the file" );
        exit ( 1 );
      }

      fread ( buf, 1, sizeof buf, fp );
      printf ( "%s\n", buf );

      fclose ( fp );

  } else {
      printf("%s %s", "Poisoning Null Byte detected" , "\n");
  } 
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