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I've been trying to get sscanf to recognize a fairly simple format using character classes. I've noticed that when I provide sscanf with a char* to match the character class it overwrites the previous byte also as if it expected a pointer to 2 bytes.

A simplified version of what I'm trying to accomplish:

#include <stdio.h>

int main(void)
{
    char num1;
    char num2;
    int s;
    s = sscanf("1,2", " %[01234567] , %[01234567]", &num1, &num2);
    printf("%d %c %c\n", s, num1, num2);
    return 0;
}

Expected output: 2 1 2

Actual output: 2 2

But if I replace char with short (or something else greater than a byte) then it works as expected, but I get warnings about format expects type char*.

What type should the argument actually be or am I making some other error?

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1 Answer 1

up vote 3 down vote accepted

sscanf expects a string.

char num1[BIG_ENOUGH], num2[BIG_ENOUGH];
s = sscanf("1,2", " %[01234567] , %[01234567]", num1, num2);

Of course this is completely unsafe, as the scanned string plus the terminating null may be longer than the buffer and cause a buffer overflow.

Unfortunately, the C type system can't differentiate between pointer to the beginning of a character array and a pointer to a single character, so the code in the question compiled.

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Isn't it a bug in sscanf implementation? According to the documentation, for %c "no null character is appended at the end." I didn't however find any documentation describing %[...]-like arguments. –  Vlad Oct 31 '10 at 11:13
2  
I found the needed documentation: linux.die.net/man/3/scanf. It says that "the next pointer must be a pointer to char, and there must be enough room for all the characters in the string, plus a terminating null byte," which explains the behaviour. –  Vlad Oct 31 '10 at 11:19
    
That makes sense. I couldn't find much on %[. I didn't realize that character classes could match more than one character per class. I thought it was like %c. –  Evan Huddleston Nov 1 '10 at 5:50
    
If you want just one character, use %1[. But you still need space for the terminating null byte. –  R.. May 1 '12 at 15:22
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