7

I learned from C Primer Plus that if you want to protect an array from being accidentally modified by a function, you should add const modifier before the pointer declaration in the header of function definition.

Following this sensible advice, in the following minimal example, I'm trying to pass a non-constant two-dimensional array array to the function Sum2D, one parameter of which is a pointer-to-const-int[2].

#include <stdio.h>
#define ROWS 2
#define COLS 2
int Sum2D(const int ar[][COLS], int rows); //use `const` to protect input array
int main(void)
{
    int array[ROWS][COLS]={{1,2},{3,4}}; //the non-constant array

    printf( "%d\n", Sum2D(array,ROWS) );

    return 0;
}

int Sum2D(const int ar[][COLS], int rows)
{
    int total=0;
    int i,j;
    for( i=0 ; i<rows ; i++ )
    {
        for( j=0 ; j<COLS ; j++ )
        {
            total+=ar[i][j];
        }
    }
    return total;
}

However, gcc cannot successfully compile this code without issuing the following warnings:

$gcc -ggdb3 -Wall -Wextra -o test test.c

test.c: In function ‘main’:
test.c:16:2: warning: passing argument 1 of ‘Sum2D’ from incompatible pointer type [enabled by default]
  printf( "%d\n", Sum2D(array,4) );
  ^
test.c:4:5: note: expected ‘const int (*)[4]’ but argument is of type ‘int (*)[4]’
 int Sum2D(const int ar[][COLS], int rows);
     ^

1) Why the warning?

2) How can I eliminate the "noise"?(Apart from adding const to array declaration.)

(If the array and function both use one-dimensional array, there is no warning.)

System information:

Ubuntu 14.04LTS

Compiler: gcc 4.8.2

11
  • Very straight forward. The function Sum2D is expecting to receive a const 2d array but you give it a non const one. This might be dangerous but not necessarily, that's why a warning and not error. Jan 21, 2015 at 7:55
  • @inneedofhelp Actually, the function expects a pointer to a size COLS array of const int. In a function parameter, const int ar[][COLS] is the same as const int (*ar)[COLS] Jan 21, 2015 at 7:56
  • Any reason for your parameter rows is there rather than just using the defined dimension?
    – Mario
    Jan 21, 2015 at 7:56
  • Apparently gcc had a field day with their warnings. 4.9.2 shows no such warnings
    – WhozCraig
    Jan 21, 2015 at 8:00
  • 1
    Compilers are allowed to compile non-conforming programs as an extension, so it wouldn't be a serious bug, however it could be annoying if somebody writes code this way and later ports the code to a compiler that doesn't have the extension
    – M.M
    Jan 21, 2015 at 9:03

2 Answers 2

13

This is an unfortunate "bug" in C's design; T (*p)[N] does not implicitly convert to T const (*p)[N]. You will have to either use an ugly cast, or have the function parameter not accept const.


At first sight it looks like this conversion should be legal. C11 6.3.2.3/2:

For any qualifier q, a pointer to a non-q-qualified type may be converted to a pointer to the q-qualified version of the type;

However also look at C11 6.7.3/9 (was /8 in C99):

If the specification of an array type includes any type qualifiers, the element type is so-qualified, not the array type.

This last quote says that int const[4] is not considered to be a const-qualified version of int[4]. Actually it is a non-const-qualified array of 4 const ints. int[4] and int const[4] are arrays of different element types.

So 6.3.2.3/2 does not in fact permit int (*)[4] to be converted to int const (*)[4].


Another weird situation where this issue with const and arrays shows up is when typedefs are in use; for example:

typedef int X[5];
void func1( X const x );
void func1( int const x[5] );

This would cause a compiler error: X const x means that x is const, but it is pointing to an array of non-const ints; whereas int const x[5] means x is not const but it is pointing to an array of const ints!

Further reading here, thanks to @JensGustedt

9
  • 1
    Do you have a reference for this? I wonder if this means clang is "fixing" this as an extension. I tried compiling in strict mode (-Wall -Wextra -Wconversion -pedantic-errors -std=cxx where xx is 89, 99, 11.) Jan 21, 2015 at 8:08
  • By ugly cast, do you mean something like (const int (*)[])? I did "fix" it by adding this in function call.
    – Naitree
    Jan 21, 2015 at 8:21
  • I think my knowledge is still too limited to fully understand what you mean. But when I am trying, I want to ask: Are const int (*)[4] and int const (*)[4] the same thing? As the former is what I saw in the warning message.
    – Naitree
    Jan 21, 2015 at 9:25
  • 1
    @Naitree const int (*)[4] and int const (*)[4] are the same thing; a pointer to an array of four const int. Both differ from int (*const)[4], a const pointer to an array of four non-const int. And lest we leave it out, int const (*const)[4], a const pointer to an array of four const int.
    – WhozCraig
    Jan 21, 2015 at 10:23
  • 1
    In the latest draft of c23 the text was changed to "If the specification of an array type includes any type qualifiers, both the array and the element type is so-qualified.". So this issue maybe finally solved
    – tstanisl
    Sep 19, 2021 at 21:31
0

You can type cast the array while calling the function. It will not automatically convert non-const into const. You can use this.

Sum2D( (const int (*)[])array, ROWS );
1
  • I actually still get warning using your typecast. I think what you mean is (const int (*)[]). Then the warning is gone.
    – Naitree
    Jan 21, 2015 at 8:17

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