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In C++, I have a char array defined as:

char miniAlphabet[] = {'A','B','C','D','E', '\0'};

I want to modify the values of this array from other functions without passing it to those functions. This is where you use pointers right?

So my question is what is the correct way to make a pointer to this char array. Would I just make a pointer to the first element and then when I want to modify the values I step through memory until I hit the end character?

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Just looked this up, yes a lot better than \0. Thanks –  Eric Banderhide Mar 12 '12 at 16:08

4 Answers 4

up vote 10 down vote accepted
char miniAlphabet[] = {'A','B','C','D','E', '\0'};

These are equivalent.

char *p1 = miniAlphabet;

char *p2 = &(miniAlphabet[0]);

Note that the () are useless for the operators' precedence, so

char *p3 = &miniAlphabet[0];

In C/C++ the name of an array is a pointer to the first element of the array.

You can then use pointers' math to do some magic...

This will point to the second element:

char *p4 = &miniAlphabet[0] + 1;

like

char *p5 = &miniAlphabet[1];

or

char *p6 = miniAlphabet + 1;
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Thanks for the edit, v.clear. –  Eric Banderhide Mar 12 '12 at 16:07

The position of the array in memory is the same as the position of its first element. So for example, both function signatures below are equivalent:

function changeArray(char[] myArray);
function changeArray(char* myArray);

And you can call either version like this:

changeArray(miniAlphabet);

...or

changeArray(&(miniAlphabet[0]));
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I was under the impression that a char* is a constant on declaration. This being the case, wouldn't the second function not be able to change anything about the char array, while the first can? –  MintyAnt Mar 12 '12 at 16:03
    
You can't change the value of a char* inside the function, but you can change the value it points to, in this case, the array. So both declarations allow changes to the original array. –  Diego Mar 12 '12 at 16:07

If you pass an array to a function, you ARE passing by reference as an array variable is really just a pointer to the address of the first element in the array. So you can call a function like this:

funcName(miniAlphabet);

and receive the array "by reference" like this:

void funcName(char *miniAlphabet) {
   ...
}
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In short, yes. When you create the array miniAlphabet is a pointer to the array of the size and type you defined. Which is also the pointer to the first element.

An example of what you are suggesting.

void foo(char *array)
{
    array[0] = 'z';
    array[2] = 'z';
}

...

char myArray[] = { 'a', 'b', 'c'};
foo(myArray);
//myArray now equals  {'z', 'b', 'z'}

also of note, dereferencing myArray gives you the value in the first element.

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