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consider a function like

char* strcpy (char* destination, const char* source);

The given value at (address) source is const because the author of the function wants to show that the value of source will not be changed by strcpy. The pointer itself is not changed by strcpy to. Why not to write

char* strcpy (char* destination, const char* const source);

Many thanks in advance.

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3 Answers 3

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You will see if you try to implement both functions, that they are actually the same. A const modifier at that point is only meaningful to the body of the function, since the argument is passed by value anyway.

error: function "strcpy" has already been defined
char* strcpy (char* destination, const char* const source)
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What happens if I set source within the function body to NULL after I delivered the pointer to destination? –  Toru Oct 24 '11 at 19:06
2  
The local copy source used as the function argument would be set to NULL, not the argument that was passed to it. –  K-ballo Oct 24 '11 at 19:08
    
Okay, many thanks! –  Toru Oct 24 '11 at 19:23

The pointer itself is passed by value, so there's no point.

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It could as well be written like that, but it wouldn't affect the caller in any case.

In the second case the prototype says that the pointer itself should not be modified, but the caller's pointer cannot be modified anyway, because it is copied (passed by value) when calling the function.

Marking variables passed by value with const is useful only to the implementer of the function as a way to make his intents clear.

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