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I have the following struct:

typedef struct _chess {
   int **array;
   int size;
   struct _chess *parent;
} chess;

and I have:

typedef struct _chess *Chess;

Now, I want to create an array of dynamic length to store pointers to the chess struct so I do the following:

Chess array [] = malloc(size * sizeof(Chess));

This gives me an error: invalid initializer.

And if I drop the [] and do this:

Chess array = malloc(size * sizeof(Chess));

it compiles without error but when I try to set an element of this array to NULL by doing:

array[i]=NULL;

I get an error: incompatible types when assigning to type ‘struct _chess’ from type ‘void *’

Any idea what am I doing wrong? Thanks.

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WHy typedef the struct? it has a unique type already. –  user82238 May 30 '12 at 7:15
1  
@user82238 So you don't have to type struct when using the type. –  Tyilo Jun 7 '13 at 16:27
    
Stop using pointer typedefs, you are just confusing yourself. chess *array = malloc(size * sizeof *array);. –  Matt McNabb Mar 14 at 0:42
    
Also, NULL cannot be assigned to a chess. The only thing you can assign to a struct is another struct of the same type. Maybe you meant something like : chess blank = { 0 }; array[i] = blank; –  Matt McNabb Mar 14 at 0:44

4 Answers 4

up vote 9 down vote accepted

array is a slightly misleading name. For a dynamically allocated array of pointers, malloc will return a pointer to a block of memory. You need to use Chess* and not Chess[] to hold the pointer to your array.

Chess *array = malloc(size * sizeof(Chess));
array[i] = NULL;

and perhaps later:

/* create new struct chess */
array[i] = malloc(sizeof(struct chess));

/* set up its members */
array[i]->size = 0;
/* etc. */
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Thank you! This fixed it for me! Would you please explain why doesn't Chess[] work? I'm confused now I though [] and * are the same thing. –  MinaHany May 30 '12 at 7:20
    
@MinaHany [] is an array, holding the actual contents. * is a pointer to the contents. Access and usage is the same, but the memory representation is completely different. –  glglgl May 30 '12 at 7:24

There's a lot of typedef going on here. Personally I'm against "hiding the asterisk", i.e. typedef:ing pointer types into something that doesn't look like a pointer. In C, pointers are quite important and really affect the code, there's a lot of difference between foo and foo *.

Many of the answers are also confused about this, I think.

Your allocation of an array of Chess values, which are pointers to values of type chess (again, a very confusing nomenclature that I really can't recommend) should be like this:

Chess *array = malloc(n * sizeof *array);

Then, you need to initialize the actual instances, by looping:

for(i = 0; i < n; ++i)
  array[i] = NULL;

This assumes you don't want to allocate any memory for the instances, you just want an array of pointers with all pointers initially pointing at nothing.

If you wanted to allocate space, the simplest form would be:

for(i = 0; i < n; ++i)
  array[i] = malloc(sizeof *array[i]);

See how the sizeof usage is 100% consistent, and never starts to mention explicit types. Use the type information inherent in your variables, and let the compiler worry about which type is which. Don't repeat yourself.

Of course, the above does a needlessly large amount of calls to malloc(); depending on usage patterns it might be possible to do all of the above with just one call to malloc(), after computing the total size needed. Then you'd still need to go through and initialize the array[i] pointers to point into the large block, of course.

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2  
+1 for 'against "hiding the asterisk"'. –  glglgl May 30 '12 at 7:23
    
hmm.. I did Chess *array = malloc(size * sizeof(Chess)); and then for (i=0; i<size; i++) { array[i] = NULL; } and later in the code array[i]=Chess1; and it does work fine without doing a second malloc in a loop. Why would I need another loop to malloc if my array only holds pointers? I would need it if the array was actually holding structs so malloc the array first and then malloc the structs in all array[i] or so I think. I'm pretty confused right now. –  MinaHany May 30 '12 at 7:42
    
Yeah, that's fine, if all you want is an array of pointers that you later set to some instances that you have lying around. I modified to add NULL-init as the default case. –  unwind May 30 '12 at 7:48
    
Thanks a lot :) –  MinaHany May 30 '12 at 14:30

IMHO, this looks better:

Chess *array = malloc(size * sizeof(Chess)); // array of pointers of size `size`

for ( int i =0; i < SOME_VALUE; ++i )
{
    array[i] = (Chess) malloc(sizeof(Chess));
}
share|improve this answer
    
I think I would use this if I want the array to hold actual structs not just pointers to them. Is that right? –  MinaHany May 30 '12 at 7:20
    
In this code array holds pointers, not the objects. To make an array of structs use struct _chess a[10]; //Array of ten structs _chess –  maverik May 30 '12 at 7:30

I will admit that I am quite new to C and programming in general, but I have ran into an issue similar to this in class. I wanted to iterate over an array of struct pointers and use malloc to allocate them. Perhaps this isn't exactly suited to what you need but it has helped solved my lingering questions about using iteration and malloc with structs.

struct chess *piece = (struct chess*) calloc(5, sizeof(struct chess) * 5);

While this is not dynamic it does make 5 structs you can iterate over. Maybe there is a way to make it dynamic?

For the use I wanted this works and I fscanf() into them via a for loop and

&piece[i].x;

Hopefully this comes as to some help to a random googler.

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