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here is some code

class DengkleTryingToSleep{
public:
int minDucks(int ducks[]);
int temp(int ducks[]){
int size=sizeof(ducks);
cout<<"sizeof="<<size<<"\n";
}
};


int main (int argc, const char * argv[])
{
DengkleTryingToSleep dt;
int arr[]={9,3,6,4};

cout<<"sizeof "<<sizeof(arr);
cout<<"\nsizeof from function "<<dt.temp(arr);

return 0; 
}

and output of this is

sizeof 16
sizeof from function sizeof=8

and i have no idea how this is working because it returns 16 (as expected when called inside main) and returns 8 when called from the function

share|improve this question
1  
i admire your naming conventions –  ardnew Feb 18 '12 at 6:48
    
possible duplicate of How to reliably get size of C-style array? –  Bo Persson Feb 18 '12 at 7:14
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2 Answers 2

up vote 3 down vote accepted

Actually this function:

int temp(int ducks[])

is exactly equivalent this function:

int temp(int *ducks)

There is NO DIFFERENCE at all. No difference. So no matter what you pass, whether an array or a pointer, it will become a pointer inside the function.

That means, when you write sizeof(ducks) in your function, it is exactly equivalent to sizeof(int*), which returns 8 on your machine (I guess, your machine has 64-bit OS where the size of pointer is 8 bytes).

If you want to pass an array, and don't it decay into pointer type, then do this:

template<size_t N>
int temp(int (&ducks)[N])
{
    int size=sizeof(ducks);
    cout<<"sizeof="<<size<<"\n";
}

Now it will print 16. Note that inside the function N represents the count of items in the array. So in your case, it would be 4, as there are 4 elements in the array. It means, if you need the length of the array, you don't need to calculate it as sizeof(bucks)/sizeof(int), as you already know the length of the array which is N.

Also note that there is a limitation in this approach: now you cannot pass dynamically allocated array:

int *a = new int[10];
dt.temp(a); //compilation error

//but you can pass any statically declared array
int b[100], c[200];
dt.temp(b); //ok - N becomes 100
dt.temp(c); //ok - N becomes 200

But in C++, you've a better option here: use std::vector<int>.

int temp(std::vector<int> & ducks)
{
     std::cout << ducks.size() << std::endl;
}

//call it as
std::vector<int> v = {1,2,3,4,5,6}; //C++11 only, or else : use .push_back()
dt.temp(v);
share|improve this answer
    
exactly but i want to calculate its length using sizeof(array)/sizeof(int) and for that what should i do? –  fsl4faisal Feb 18 '12 at 6:53
    
@fsl4faisal: Updated. see it. –  Nawaz Feb 18 '12 at 6:57
    
@fsl4faisal and if you don't want to use templates , then you have no other option but to write : int temp(int (&ducks)[4]) –  Mr.Anubis Feb 18 '12 at 6:58
    
what are you doing in here i am not getting it and one more thing that i can not manipulate the arguments in my program and i can only use int array[] as an argument –  fsl4faisal Feb 18 '12 at 7:00
    
well can i use vectors in here when calling the function from main because then i can use its in built function? –  fsl4faisal Feb 18 '12 at 7:03
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Because arrays decay to pointers when passed to a function. You're getting the size of a pointer in your temp function.

If you need to know the length of an array in a function ... you have to pass that in as well.

share|improve this answer
    
@Brain so why its size is down to 8 and not some other value what computation is performed exactly in here –  fsl4faisal Feb 18 '12 at 6:47
1  
Because apparently pointers are 64 bits on your system (8 bytes). You will get 8 if you do ... sizeof(int*) or sizeof(char*) etc. A pointer holds the memory address of the thing it points to. On 64bit systems they're generally 64bits. –  Brian Roach Feb 18 '12 at 6:48
    
so what if i have to calculate its length inside that function using sizeof(array)/sizeof(int) right now its returning a wrong value –  fsl4faisal Feb 18 '12 at 6:50
2  
You can't do that. As I said, you have to pass in the length along with the array. e.g. ... temp(int ducks[], int ducksLength). If you need to know the size you'd have to do something like temp(int ducks[], int ducksLength, size_t memberSize) and multiply; ducksLength * memberSize –  Brian Roach Feb 18 '12 at 6:53
1  
well thats a pain because i can't take more than one argument to the function its like one of its prerequisite –  fsl4faisal Feb 18 '12 at 6:55
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