-1

What does !*s do in this function:

void f( char *s) {
    if( !*s ) {
        return;
    }
    f( s+1 );
    putchar( *s );
}

int main( void ) {
    f("kernighan");
    putchar('\n');
return 0;
}

The output of this program is nahginrek; which I think it swapped the left character with the right character and keeps doing it till it reaches the middle?

  • 3
    It's an obfuscated way of writing if(*s == '\0'). – Lundin Nov 16 '15 at 7:47
  • 1
    The meaning of the ! operator doesn't have anything to do with the return type of the function where it's used. Your question title is mildly confusing. – M Oehm Nov 16 '15 at 7:57
  • A "!" in front of any expression produces a bool value of false for non zero values. It's been quite a common coding practice for decades, both terse and clear though it may look a little strange when first learning C or C++. – doug Nov 16 '15 at 8:07
  • The code is not swapping anything. It's using recursion to find the end of the string, and then prints the string backwards. – user3386109 Nov 16 '15 at 8:20
  • @doug well, not quite. It does result in type int, actually. Refer C11, §6.5.3.3/5 – Sourav Ghosh Nov 16 '15 at 9:30
5

It checks if the character pointed to by s is ascii null (NUL) '\0' which is the string delimiter (last char) in C strings.

!*s will be true if *s is '\0'.

Note that it is not the same as checking if s is NULL which means that the pointer s points to address zero.

3

As others already mentioned,

 if( !*s )

is equivalent to

if( !(*s) )

or

 if( *s == 0 )

Just to add some reference, quoting C11, chapter §6.5.3.3, Unary arithmetic operators, paragraph 5,

[...] The expression !E is equivalent to (0==E).

The whole block

if( !*s ) {
    return;
}

makes sure that the function returns if you've reached the null-terminator (which has a value 0) of the string.

1

s is a pointer.

*s is dereferncing a pointer which gives the value stored in the location pointed by the pointer.

and !*s says fetch the value pointed by the pointer and check whether the value fetched is \0 or not.

1

It tests if the character pointed to by s is null (the ascii character \0). The \0 character marks the end of the C-style string, so the test is basically checking to see if the recursion has reached the end of the string.

The logical not ! is evaluated after the pointer is dereferenced *s. This is not a test on the validity of the pointer itself, that would look more like if (!s) or if (s).

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