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c dynamic memory allocation and sizeof()

I am trying to find the cache block by keeping a huge block of 16 MiB and by trying to access different elements each time to find the time. I just can't write the length of the array. How can I write a for loop to iterate over the array. I need the length of the array; how can I find that? I have tried sizeof(a)/sizeof(a[0]) but this doesn't work or I am doing something wrong because my assignment sheet tells me it can hold 4 million int's..

register *a;
a = malloc(16777216);
int i;
for (i = 0; i < sizeof(a)/sizeof(a[0]); i = i + 1) {

    printf("\ni = %d", i);
}

This only prints i = 0 i = 1.

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marked as duplicate by Nikos C., Jonathan Leffler, Cornstalks, 一二三, avasal Dec 11 '12 at 8:16

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
You need to use a more modern compiler or turn on some warnings. The notation register *a is archaic (for over 20 years it has been discouraged) way of writing register int *a. 'Tis funny; for the int i; to compile, you must be using either C++ or a C99 compiler because a declaration was not allowed after a statement in C89. Pay attention to what your compiler is warning you (and if it isn't warning you, turn on the warnings or get a better compiler). You have to be using a 64-bit machine to get the 0, 1 answer. –  Jonathan Leffler Dec 11 '12 at 3:42
    

2 Answers 2

The code sizeof(a) simply returns the size of the pointer register *a, and is completely unrelated to the size of the array that a points to.

C arrays do not track how many items they contain. You can use this syntax only if the size of the array is known at compile time. But you can't do it with an array allocated this way.

For this task, you'll need to track this information yourself. You can store that value in a variable, or you could append an array element with a special value that indicates it's the end of the array (much like we do with C strings).

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1  
"C arrays do not track how many items they contain" ... that's not strictly true. If you use sizeof on an actual array type it will give you the size in bytes of the array. Here, the OP is using sizeof with a pointer type, not an array type, so it is only giving him the size of the pointer. sizeof("hello") for example returns 6, because the string literal "hello" is of type char[6]. –  dreamlax Dec 11 '12 at 3:54
    
sizeof also works for variable-length arrays as well, meaning that the size of the array must be kept somewhere for sizeof to return the correct size of the variable-length array. –  dreamlax Dec 11 '12 at 3:55
    
I did specifically state that it works if the array is declared statically. He may be using a pointer but, conceptually, he is allocating an array. And that dynamically allocated array does not track the number of elements. –  Jonathan Wood Dec 11 '12 at 3:55
    
@dreamlax: I'd love to see an example where sizeof() works with a variable-length array. –  Jonathan Wood Dec 11 '12 at 3:56
    
Consider a struct with a member that is an array type (struct X { int a[4]; }. The struct can be allocated dynamically and therefore the array-type member must be allocated dynamically also; sizeof will still return the correct size of the array type member a. It isn't how the object is "allocated", it is how the object is typed. –  dreamlax Dec 11 '12 at 3:59

a is a register pointer an not an array. so sizeof(a) will not return 16MB as you are expecting. please use 16777216 directly instead of sizeof()

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so that's the length of the array.. –  user1893417 Dec 11 '12 at 3:45
    
@user1893417: yes 16777216 would be the length of your array –  aakash Dec 11 '12 at 17:33

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