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I have a misunderstanding regarding this code -

typedef struct _EXP{
    int x;
    char* name;
    char lastName[40];
 }XMP

...main...
XMP a;
a.name = "eaaa";
a.lastName = strcpy(a.lastName, "bbb");

Why can't I use: a.lastName = "bbbb"; and that's all?

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7  
Because arrays are not assignable. Therefore you must copy the value it should hold into it. –  Daniel Fischer Jul 16 '12 at 16:11
    
Array != pointer, although there are many cases where array decays to pointer, which is the source of confusion. –  nhahtdh Jul 16 '12 at 16:11
    
ohh how do I accept answers? –  user1386966 Jul 16 '12 at 16:27
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3 Answers 3

up vote 3 down vote accepted

Well consider the types here. The array has the contents of the string, while the char* merely points to the data. Consequently the array requires strcpy and friends.

Besides, if you allocated memory for the char* on the heap or stack and then wanted to assign some content to that, you'd also have to use strcpy because a mere assignment would create a dangling pointer (i.e. a memory leak).

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Because the location of an array is fixed, while the value of a pointer (which is itself a location) is not. You can assign new values to a pointer, but not an array.

Under the hood, they're both the same thing; an array name in C is a pointer, but from a semantics point of view you cannot reassign an array but you can repoint a pointer.

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When you write

a.name = "eaaa" ;

the compiler will allocate memory for a NULL terminated string eaaa\0 and, because of that instruction, it will make the pointer name point to that location (e.g. the name variable will contain the address of the memory location where the first byte of the string resides).

If you have the array instead, you already have an allocated area of memory (which cannot be assigned to another memory location!), and you can only fill it with data (in this case bytes representing your string).

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