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I have defined a char array:

char d[6];

Correct me if I'm wrong regarding following:

At this moment no memory is allocated for variable d. Now I'm going to initialize it:

d="aaaaa";

After this kind of initialization, there would be no need to free memory; it will be done automatically.

How do I know if the char[] was initialized? I am looking for a pattern like

if (filled(d)){..}

Also, how do I fill char[] with one kind of character?

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As soon as you do this char d[6];, it allocates 6 bytes for d, but it is not initialized. –  jsn Jul 24 '12 at 13:52
    
Freeing memory is a method which only applies to malloc/calloc. Deleting memory is a method which only applies to new. If you have not used either of these methods you do not need to free or delete any memory. –  user7116 Jul 24 '12 at 13:55
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5 Answers

At this moment no memory allocated for variable d.

Incorrect. This:

char d[6];

is an uninitialised array of 6 chars and memory, on stack, has been allocated for it. Stack variables do not need to be explicitly free()d, whether they are initialised or not. The memory used by a stack variable will be released when it goes out of scope. Only pointers obtained via malloc(), realloc() or calloc() should be passed to free().

To initialise:

char d[6] = "aaaaa"; /* 5 'a's and one null terminator. */

or:

char d[] = "aaaaa"; /* The size of the array is inferred. */

And, as already noted by mathematician1975, array assignment is illegal:

char d[] = "aaaaa"; /* OK, initialisation. */
d = "aaaaa";        /* !OK, assignment. */

strcpy(), strncpy(), memcpy(), snprintf(), etc can be used to copy into d after declaration, or assignment of char to individual elements of d.


How to know was char[] initialized? I need pattern if filled(d){..}

If the arrays are null terminated you can use strcmp()

if (0 == strcmp("aaaaaa", d))
{
    /* Filled with 'a's. */
}

or use memcmp() if not null terminated:

if (0 == memcmp("aaaaaa", d, 6))
{
    /* Filled with 'a's. */
}

How to fill char[] with one kind of characters?

Use memset():

memset(d, 'a', sizeof(d)); /* WARNING: no null terminator. */

or:

char d[] = { 'a', 'a', 'a', 'a', 'a', 'a' }; /* Again, no null. */
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Your code will not compile (gcc 4.6.3) if you do

 char d[6];
 d = "aaaaa";

you will need to do

 char d[6] = "aaaaa" 

to initialise it this way. This is a local variable created on the stack and so in terms of memory issues all you need worry about is not writing/reading beyond the array bounds.

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Best to avoid the term freed, as the memory is not allocated with malloc internally. The top of the stack is merely moved. –  user7116 Jul 24 '12 at 13:56
    
@sixlettervariables fair point - edited accordingly. –  mathematician1975 Jul 24 '12 at 13:58
    
I'm using c++ for experiment. But my c++ compiler is absolutely happy with lines: char d[6]; d = "aaaaa"; –  user1501700 Jul 24 '12 at 14:58
    
Well you tagged this as a C question, but regardless both my gcc and g++ fail to compile the code above in my answer spread on two lines. –  mathematician1975 Jul 24 '12 at 15:02
    
ok, it is my fault, you are right - char d[6]; not allowed, soory for that –  user1501700 Jul 24 '12 at 18:03
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First, whenever you declare char d[6] 6 bytes of memory is already allocated.

Second, no need to free your memory unless you do malloc

Third, if you want to initialize it with one kind of character then do this

char d[6] = "aaaaa"; 
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int d[6];

6 bytes will be allocated onto the stack with this declaration. It will be freed automatically.

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How to know was char[] initialized? I need pattern if filled(d){..}

Just do this while declaring the character array:

char d[6];
d[0] = 0;

Then you can check like this:

if(strlen(d) == 0)
//d is not initialized
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