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I am trying to understand array declarations, constness, and their resulting variable types.

The following is allowed (by my compiler):

      char s01[] = "abc" ;  // typeof(s01) = char*
const char s02[] = "abc" ;  // typeof(s02) = const char* (== char const*)
char const s03[] = "abc" ;  // typeof(s03) = char const* (== const char*)

Alternatively, we can declare the array size manually:

      char s04[4] = "abc" ;  // typeof(s04) = char*
const char s05[4] = "abc" ;  // typeof(s05) = const char* (== char const*)
char const s06[4] = "abc" ;  // typeof(s06) = char const* (== const char*)

How do I get a resulting variable of type const char* const? The following are not allowed (by my compiler):

const char s07 const[] = "abc" ;
char const s08 const[] = "abc" ;
const char s09[] const = "abc" ;
char const s10[] const = "abc" ;
const char s11 const[4] = "abc" ;
char const s12 const[4] = "abc" ;
const char s13[4] const = "abc" ;
char const s14[4] const = "abc" ;

Thanks

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I'm not wholly sure that C supports the const ptr* const thing that C++ does. –  Puppy Aug 19 '10 at 11:29
    
@DeadMG: It does. –  Oli Charlesworth Aug 19 '10 at 11:35
    
The following is a very useful tool: cdecl.ridiculousfish.com/… ; cdecl.ridiculousfish.com/… –  celavek Aug 19 '10 at 11:39
    
I asked this question too: const char a[const] –  Matt Clarkson Jul 31 '12 at 14:34

4 Answers 4

up vote 6 down vote accepted
const char *const s15 = "abc";
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It is helpful to read from right-to-left to understand what is constant. E.g. char *const s15 means constant-pointer-to-char. char const *s15 means pointer-to-constant-char. char const *const s15 means constant-pointer-to-constant-char. Try it! Right-to-left! –  PP. Aug 19 '10 at 11:44
1  
@PP: The right-to-left rule doesn't apply in all circumstances, though. e.g. int blah[5][2]. The best summary of how to read declarators I've ever found is here: msdn.microsoft.com/en-us/library/1x82y1z4.aspx. –  Oli Charlesworth Aug 19 '10 at 11:49
3  
@PP: It's not right-to-left any more than it's left-to-right, it's inside-out. –  Gilles Aug 19 '10 at 12:06
    
This is the answer I was seeking. I was stuck on the idea that [] allocates on the stack (when declared in a function). If it is a constant pointer to an array of constant chars, I don't need to allocate on the stack. One time in program data space is OK. Who knows where "abc" is allocated here, and who cares. We use s15 as an absolute constant. We cannot reassign the pointer s15 nor can we change the value(s) to which it points ("abc"). Thanks! –  kevinarpe Aug 20 '10 at 3:40
    
C declarations should be read in a clockwise spiral: c-faq.com/decl/spiral.anderson.html –  Rich Remer Jul 11 at 21:53

Your first typeof comments aren't really correct. The type of s01 is char [4], and the types of s02 and s03 are const char [4]. When used in an expression and not the subject of either the & or sizeof operators, they will evaluate to rvalues of type char * and const char * respectively, pointing at the first element of the array.

You can't declare them in such a way that they decay to an rvalue that itself is const-qualified; it doesn't really make any sense to have a const-qualified rvalue, since rvalues can't be assigned to. It's like saying you want a 5 constant that is of type const int rather than int.

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s01 et al are not really pointer types, they're array types. In that sense, they already act a bit like const pointers (you cannot re-assign s01 to point somewhere else, for instance).

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Use cdecl:

cdecl> declare foo as constant pointer to array of constant char
Warning: Unsupported in C -- 'Pointer to array of unspecified dimension'
        (maybe you mean "pointer to object")
const char (* const foo)[]
cdecl> declare foo as constant pointer to array 4 of constant char
const char (* const foo)[3]
cdecl> declare foo as constant pointer to constant char
const char * const foo

Pointers to arrays are rarely used in C; usually API functions expect a pointer to the first element.

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