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Why can I do

char identifier[4] = {'A', 'B', 'C', 'D'};

and not

char identifier[4];
&identifier = {'A', 'B', 'C', 'D'}; // syntax error : '{'

?

And why can I do

char identifier[4] = "ABCD"; // ABCD\0, aren't that 5 characters??

and not

char identifier[4];
&identifier = "ABCD"; // 'char (*)[4]' differs in levels of indirection from 'char [5]'

?

Is this a joke??

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2  
You can always do this if you need to separate the declaration from the assignment: char identifier[4]; sprintf(identifier, "ABCD");. Just make sure that the assigned string fits in the allocated array or use the secure version, sprintf_s. –  Jaime Soto Nov 8 '10 at 19:25
    
Ok thanks! This works but why would I need a function for something simple like this... –  Midas Nov 8 '10 at 19:30
1  
@Jaime: Do you not think sprintf() is perhaps a sledgehammer to crack a nut in this case? memcpy() will suffice and solves the issue that you propose sprintf_s() for. –  Clifford Nov 8 '10 at 22:18
1  
@Midas: Because an array is not a data-type in C, it is a contiguous sequence of objects of the same type. Arrays do not behave like objects. –  Clifford Nov 8 '10 at 22:21
    
@Midas: Clifford is correct. You do not need to use the string format modifiers in sprintf. You should use char identifier[4]; memcpy(identifier, "ABCD", 4). –  Jaime Soto Nov 8 '10 at 22:25

3 Answers 3

up vote 2 down vote accepted

Three points:

  • Initialisation is not assignment

  • Arrays are not first-class types so cannot be assigned. You have to assign the elements individually (or use a function such as strcpy() or memcpy().

  • The address of an array is provided by the array name on its own.

In your last example, the following is a valid solution:

char identifier[4];
memcpy(identifier, "ABCD", sizeof(identifier) ) ;

You cannot use strcpy() here, because that would require an array of 5 characters to allow for the nul terminator. The error message about levels of indirection is not a "joke", it is your error; note in the above code identifier does not have a & operator, since that would make it a char** where a char* is required.

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+1 +1 +1 +1 +1 +1 +1 +1 but I would elaborate a little more on what "Initialization is not assignment" means to a newbie. –  Chris Lutz Nov 8 '10 at 19:38
    
@Clifford, the address of an array is provided by the array name on its own is misleading and teaching the wrong thing. I'd go for something like using the array name by its own evaluates to the address of the first element. –  Jens Gustedt Nov 8 '10 at 21:29
    
@Jens: Maybe, I'll let it stand as I think it is clear enough. I have distinctly not said that the array name is a pointer. Your comment may serve as clarification to anyone who thinks it necessary. I was trying to be succinct. –  Clifford Nov 8 '10 at 22:12
    
Using the & operator on identifier doesn't make it a char **, it makes it a char (*)[4] (as the compiler's error message attests). These are quite different types. –  caf Nov 9 '10 at 0:52
    
@caf: I know. However what memcpy() receives is a char*. That is what I meant by "where a char* is required"; memcpy() requires a 'char*'. While I agree with you, in this case the distinction is irrelevant, so I never mentioned it - again for succinctness. –  Clifford Nov 9 '10 at 10:53

You can only initialize the array when you declare it.

As for char identifier[4] = "ABCD", this is indeed possible but the syntax is used to deliberately omit the trailing NUL character. Do char identifier[] = "ABCD" to let the compiler count the characters and add the NUL ('\0') for you.

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Plus in the second code, the &identifier is a pointer to array. –  Let_Me_Be Nov 8 '10 at 19:17
    
Yeah, I just assumed that the & syntax was something the OP tried to invent for doing something that's not possible. –  Arkku Nov 8 '10 at 19:44

What Arkku said, but also, you cannot assign to the address of something, i.e. &x = ... is never legal.

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