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I have this:

uint64_t **array;
int a;

if((array = malloc(8 * 25)) == NULL){
    errx(1, "malloc");
}

for(a = 0; a < 25; a++){
    if((array[a] = malloc(8 * (1 << a))) == NULL){
        errx(1, "malloc 1");
    }   
}

In the worst scenario I'll use 2^a bits, it means, I don't always need to use uint64_t for this, and uint even. My idea is allocate just 1 byte for a < 8, 2 bytes for a < 16 and a >=8 and this way to 8 bytes (uint64_t).

Is possible to do that? How I can do that using just my variable array?

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I don't quite understand the question: Are you trying to allocate a bit array (to store individual bits) or are you just concerned about over allocation? –  LiraNuna Apr 11 '12 at 0:02
    
@Frederico note in the worst case you are using 2^(a+3) bytes and not 2^a bits malloc allocates in bytes not bits so this would not work as you expect –  keety Apr 11 '12 at 0:02
    
@LiraNuna just concerned about over allocation –  Frederico Schardong Apr 11 '12 at 0:05
    
@keety why 2^(a+3)? –  Frederico Schardong Apr 11 '12 at 0:06
    
(8*(1<<a))=> 2^a *8 => 2^(a+3) bytes note malloc allocates in bytes –  keety Apr 11 '12 at 0:08

1 Answer 1

This probably should've been a comment (or 3), but...

You need to start by figuring out exactly how many bytes you will need (and for what, though I assume you have that part covered.)

What is 25? Why are you allocating memory for 25 different arrays of size 8, 16, 32 ... 2^27? This may be sample code, but we're still thrown off by a magic number: 25. We could've used the name of the constant (or the preprocessor macro).

8 is another magic number and it is also problematic. sizeof(*array) is not guaranteed to be 8.

I'm also a bit confused by your idea. Your current code allocates 1024 bytes for a=7. How will a single byte be enough to store whatever you saw a need to allocate 1024 bytes for in your prototype?

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