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Can someone please explain to me why strcpy() is necessary to assign strings to character arrays, such as in the following code snippet.

int main(void) {

char s[4];

s = "abc"; //Fails
strcpy(s, "abc"); //Succeeds

return 0;
}

What is the reason that s = "abc" fails? And why is strcpy() the only way to assign strings to char arrays after they have been declared? It seems strange to me that you have to use a function to carry out a basic assignment.

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5  
It was designed this way to encourage you to move on to a more humane language with real strings. –  David Heffernan Aug 1 '11 at 16:02

3 Answers 3

Arrays in C are non-assignable and non-copy-initializable. That's just how arrays are in C. Historically, in value context (on the RHS of assignment) arrays decay to pointers, which is what formally prevents assignment and copy-initialization. This applies to all arrays, not only to char arrays.

C language inherits this arrays behavior from its predecessors - B and BCPL languages. In those languages arrays were represented by physical pointers. (And obviously re-assignment of pointers is not what you'd want to happen when you assign one array to another.) In C language arrays are not pointers, yet they do "simulate" the historical behavior of B and BCPL arrays by decaying to pointers in most cases. This historical legacy is what keeps C arrays non-copyable to this day.

One exception from the above is the initialization with a string literal. I.e. you can do

char c[] = "abc";

but that's it.

This means that whenever you want to copy an array, you have to use a library-level memory copying function, like memcpy. strcpy is just a flavor of that specifically tailored to work with strings.

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1  
Just to clarify, all array types can be initialized with a proper initializer of the form { val0, val1, ... }. –  Jens Gustedt Aug 1 '11 at 21:29
    
You don't have to use a library function; you can assign individual characters, e.g. for (char *dst = s, *src = "abc"; *dst++ = *src++;) ;. The library function is a better choice though, as it is easier to read and may be optimized for the system. –  Matt McNabb Jan 23 at 21:01

That's simply what arrays are in C. You can't assign to them. You can use pointers if you like:

char *p;
p = "abc";

Incidentally, there is a C FAQ.

Arrays are ``second-class citizens'' in C; one upshot of this prejudice is that you cannot assign to them.

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Yeah I do use pointers, I just don't understand why s = "abc" doesn't work in my example. s is a char array, and so is "abc"... –  C_p678 Aug 1 '11 at 16:03
4  
@C_p678 - no, s is a char array, "abc" is a pointer to constant string. –  MByD Aug 1 '11 at 16:03
3  
@MByD: Not entirely correct. "abc" is not a pointer. "abc" an array of type char[4], which in this context decays to a pointer of type char *. Note, that in C the string is not constant. It is non-modifiable all right, yet the type itself does not include const qualifier. –  AnT Aug 1 '11 at 16:09
1  
@AndryT: To be even pickier, "const" and "constant" are two very different things. "const" probably should have been called "readonly". A constant, or a constant expression, is one that can be evaluted at compile time; a const object is one that cannot be modified at runtime. Consider const int r = rand();. –  Keith Thompson Aug 2 '11 at 3:03

Short answer: historical reasons. C never had a built in string type. It wasn't until C++ came along that std::string came into being, and even that did not arrive with the first implementations

Long answer: the type of "abc" is not char[], but rather char *. strcpy is one mechanism with which you can copy the data that the pointer points at (in this case ABC).

strcpy isn't the only way to initialize an array, however, it is smart enough to detect and respect the terminating 0 at the end of the string. You could also use memcpy to copy the string into s but that requires you pass in the length of the data to be copied, and to ensure the terminating 0 (NULL) is present in s

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2  
The type of "abc" is char[4]. –  Jens Gustedt Aug 1 '11 at 21:27
1  
And strcpy isn't an initialization but an assignment. Character arrays can be initialized as all other arrays, see AndreyT's answer. –  Jens Gustedt Aug 1 '11 at 21:31

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