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I have a code in C with these lines included:

int i;
int *serie = malloc(sizeof(int)); 

    for (i = 0; i <= 20; i++){
        serie=rand(); 
        printf("%d ",&serie[i]);/* *serie */
    }

It does work but I want to know why, with malloc I believe I am creating a dynamic array or pointer called serie so far my knowledge is:

& returns the address
* returns the content of the adress

With fixed arrays you use [] and with pointers ()

By testing &serie[i] seems to work but It does not *serie(i) or *serie[i] and *serie I think It does not too.

Can someone explain me these?

If I wanted to print the contents should not I put * instead of &, I think with dynamic arrays you use [] instead of () so it should be *serie[i] not &serie[i]?

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The original code was *serie=rand() still bad but I do not know why I deleted the * from serie, sorry about that. –  user1094566 Dec 15 '11 at 16:18

5 Answers 5

up vote 5 down vote accepted

In this code, serie is a pointer to an integer. The line with malloc() allocates space for it, such that setting or getting an integer to/from *serie will work. The loop seems to incorrectly be setting the return value of rand() (an integer) to serie. That particular line should look like this, in your current code (but it's not what you want anyway):

*serie = rand();

Because rand() returns an integer, and serie alone is a pointer to an integer. However, *serie is an integer that you can set to.

In the printf(), you're trying to access serie as an array, but that won't work because you've only allocated a single element. Well, it will work, but only for element zero.

If you're trying to set and generate 20 random elements (but using a "dynamic" array), you might want something like this:

int i;
// note allocating the proper number of elements
int *serie = malloc(sizeof(int) * 20);

// note starting at and going < 20 for 20 elements
for (i = 0; i < 20; i++) {
    serie[i] = rand();
    printf("%d ", serie[i]); // *(serie + i) will also work here
}

Note that any time you use square brackets to access an element, it's dereferencing it, much like * does. So serie[i] and *(serie + i) are functionally equivalent.

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Yes Dan You were right, It was actually like that *serie= rand() check this: stackoverflow.com/questions/8514049/time-h-works-in-c-not-in-c somehow I deleted but I did not want that I think you are right twice. –  user1094566 Dec 15 '11 at 16:16
With fixed arrays you use [] and with pointers () 

Incorrect. You can use the same syntax for both pointers and fixed arrays.

To get the value of the i:th element in the array serie you can write either:

serie[i]

or

*(serie + i)
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Thank you Klas, yes both sintax work well. –  user1094566 Dec 15 '11 at 16:26

FYI... Line two declares a pointer to an integer, and allocates the space for an integer. However, since this is not freed, that memory is leaked.

The allocated memory is not used at all, as serie is later reassigned to a random memory location (remember, serie is a pointer to an int, not an int itself, so the rand() is assigning a random memory address).

The array syntax dereferences the pointer to a value, as does the asterisk. serie is a pointer to an int. *serie and serie[0] are both the VALUE at the location pointed to by serie. serie[i] is an integer value at location i, it is no longer a pointer.

&serie[i] is printing the address of an integer that is i ints away from the random location. *serie[i] tries to dereference the pointer twice, once with the brackets, and again with the asterisk, which is probably not what you intended.

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*serie is just another name for serie[0]. *(serie + 1) is another name for serie[1]. They both compile to the same machine code. Use whatever makes your own code most readable. Array of objects? Use []. Pointer to a string? Use *.

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This looks horribly broken:

  1. serie=rand(); assigns an integer (the return value of rand()) to an integer pointer, hardly a sensible or valid thing to do.
  2. &serie[i] reads random memory, since you overwrote the pointer with the random number.
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