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In the following piece of code, to calculate strlen,

int s(const char* str)
{   
    int count=0;        
    while(*str++) count++;
    return count;
}

You can see that the argument str is const. But, the compiler does not complain when I do a str++. My question is

When passing pointers as arguments to a C function, if is is qualified with const, How can I still perform pointer arithmetic on it? What is const in the above function?

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Thanks! So, if I were to parenthesize the above declaration as the compiler would see it, it would look like (const char) *str, making the const qualify the char. And if I changed it to const char * const str, it would look like (const char) (const char(*str)) –  arbithero Jan 24 '11 at 20:01

4 Answers 4

up vote 8 down vote accepted
const char* str;

means a non-const pointer to a const data.

char* const str;

means a const pointer to a non-const data.

const char* const str;

means a const pointer to a const data.

The reason for this is that in C++ the variable type declarations are parsed from right to left, which results in that the word "const" always defines the constness of the thing that it's closest to.

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It's not the case to say that variable declaration is parsed from the right to left. The gold rule for this: "declaration mimics use". That's because you might have something more complcated to parse, like void (* var [])(int, char *) –  Martin Babacaev Jan 24 '11 at 22:34

It's not declaring the pointer const, it's declaring the thing pointed to as const. Try this:

int s(const char* const str)

With this declaration, you should get a compile error when you modify str.

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const char * ch; // non-const pointer to const data
char * const ch; // const pointer to non-constant data.

const char * const ch; // const pointer to const data

Note: Also

const char * ch;

equals to

char  const * ch;
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The pointer points to a const char, a read-only character array.

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