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I have:

uint64_t *list;

if((list = malloc(10 * sizeof(uint64_t))) == NULL){
    errx(1, "malloc");
} 

I need to populate this array, increment the address of it.

I mean:

(*list)++;
list = 1;
(*list)++;
list = 2;
(*list)++;
list = 3;
(*list)++;
list = 4;

How do I do that?

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You have a block (an array) of 10 uint64_t's, i.e. big integers. You have a pointer to the array. If you increment list, you'll lose the block (array), so either you need a second pointer, or just use it as an array. list[0] = 1, list[1] = 2; is okay. –  gbulmer Apr 2 '12 at 1:19
    
A simple for-cycle? Like... for (int i = 0; i < 10; i++) list[i] = (unit_64_t)i; –  Imp Apr 2 '12 at 1:19
    
Sorry guys I forgot to say that I can't use a loop or normal way: list[0] = 1; list[1] = 2; –  Frederico Schardong Apr 2 '12 at 1:33
    
How I can do this by using a second pointer? –  Frederico Schardong Apr 2 '12 at 1:36
    
"I forgot to say that I can't use a loop or normal way" -- If this is a homework problem, then tag it with the "homework" tag so we know not to answer it for you. –  librik Apr 2 '12 at 1:39

2 Answers 2

You can use the allocated memory like a normal array:

list[0] = 1;
list[1] = 2;
/* etc. */

Edit: What you are doing is increase the first entry in the "array" which probably contains a value you don't expect, then you reassign the pointer so it no longer points to your allocated memory, and so on. Also, if you really want to "increment the address" of the allocated memory, it's just simple as list++, however this is also changing the pointer so you loose the original allocated address and can not free it later (unless you save it.)

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you can use a loop

for(int i = 0; i < 10; i++) {
    list[i] = i+1;
}
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