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I know that I can define array types in C like the following:

typedef int array_t[123];

This however does not make a declaration

void someFunction(array_t myArray)

constant in the sense that

myArray=0;

is forbidden inside the function, but

myArray[0]=0;

is allowed.

Is there a way to achieve this? If I add a "const" in the type definition or the parameter declaration, I end up with the reverse behavior, where array elements are constant, but the array pointer itself is variable.

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There's no such thing as "the array pointer". –  Kerrek SB Nov 7 '13 at 8:57
1  
Doing something like array = xyz; is kind of doing 3 = xyz;. –  glglgl Nov 7 '13 at 8:59
    
See updated question. –  LPG Nov 7 '13 at 9:12
    
@Kerrek SB: The OP is talking specifically about array types used in the context of function parameter list. In that context they are immediately interpreted as pointers. –  AnT Nov 7 '13 at 9:20
1  
Using typedef to hide arrays is never a good idea. –  user694733 Nov 7 '13 at 9:22

3 Answers 3

up vote 0 down vote accepted

If you absolutely need have to have an typedef, use struct to to encapsulate it. Using typedef on arrays is not a good idea.

typedef struct {
    int arr[123];
} array_t;

And then you can do what Joachim Pileborg suggested with const:

void someFunction(array_t * const myArray)
{
    myArray->arr[0] = ...

Additional advantage to this approach is that you can also transmit other data with your object.

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It's not the simple solution that I was hoping for (like putting a "const" into an unexpected place), but I guess there is no better way -> Accepted. –  LPG Nov 7 '13 at 13:04
    
Strictly speaking, I don't see the point in defining that struct at all. The struct wrapper is sometimes used for making the array copyable. In this case there's no such request. So, if the objective is to pass a compile-time sized array without losing size information, then one can simply pass it as void foo(int (*const a)[123]) or equivalently void foo(array_t* const a) (using the original typedef). No struct required. –  AnT Nov 7 '13 at 15:10
    
@AndreyT Yes you are right in that this is not only solution. My perspective is that if you have array of specific size, it is likely a representation of some specific entity, opposed to just array of generic stuff. So in that case treating it as object makes more sense, and syntax is more straight-forward. But without knowing the actual use for this, it is hard to say what would be most optimal route. –  user694733 Nov 8 '13 at 7:52

You can never assign to an array variable, no matter what. While arrays decays to pointers, as long as it hasn't decayed it's no pointer so you can't assign to it.

If you want to set all of the array to a specific value, use memset, or if you want to copy another array use memcpy.


After the edit. The important thing to remember here is that if you pass it as an argument, then it's passed as a pointer and not an array.

What you can do is to declare the argument as a constant pointer instead of a pointer to constants.

Like

void someFunction(int * const myArray);

Then you can still modify the elements, but you can't change the actual pointer.

share|improve this answer
    
See updated question. –  LPG Nov 7 '13 at 9:12
    
@LPG Updated my answer. –  Joachim Pileborg Nov 7 '13 at 9:20
    
Your solution does not use the typedef anymore. Without the typedef, it's trivial and I would not have asked the question. In my case, the typedef is required for other reasons. –  LPG Nov 7 '13 at 9:27
    
@LPG Then unfortunately it's not really possible. –  Joachim Pileborg Nov 7 '13 at 9:28

C99 did introduce syntax for declaring constant pointer parameters through "array" syntax

void foo(int a[const 123]) /* same as `int *const a` */
{
  a = NULL; // ERROR
}

As you can see in the above example, const have to be placed inside the [].

However, that const cannot be embedded into array type "in advance" by using a typedef declaration for an array type. It can only be used directly in function parameter list.

share|improve this answer
    
Very interesting and unexpected syntax. Unfortunately, I need the typedef (I do not want to lose the array's size information). –  LPG Nov 7 '13 at 9:24
    
@LPG: Well, even when you use typedef-name for parameter declaration (as in your example) the parameter type still decays to pointer type. I.e. the parameter itself will lose the array size information anyway. Typedefing the array type does not prevent this from happening. I.e. sizeof(myArray) inside your function is size of a pointer, not size of the entire array. –  AnT Nov 7 '13 at 9:26
    
But sizeof(array_t) does the trick - try it. –  LPG Nov 7 '13 at 9:31
    
@LPG Traditional and most flexible way is to use another parameter to pass array size information to function. Don't try to use sizeof tricks. Those will only cause headaches in the long run. –  user694733 Nov 7 '13 at 9:34
    
@LPG: Yes, sizeof(array_t) will give you the size of the array, but it has absolutely no connection to how you declare the function parameter. In your first comment, you said that this "unexpected" syntax does not work for you because you "don't want to lose array size information". But if you are planning to use sizeof(array_t) anyway, then the parameter declaration syntax makes no difference at all. –  AnT Nov 7 '13 at 15:00

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