-4

Why we need a template for calculating the size of an array why cant i calculate directly with predefined datatypes like int

I have seen the code like

template<typename T,int SIZE>
size_t array_size(const T (&array)[SIZE])
{

    return SIZE;
}

instead of template if we are directly using int why its throwing error

int N;
int size(int (&arr1)[N]) //Passing the array by reference 
{
     return N; //Correctly returns the size too [cool trick ;-)]
}

how its calculating the size

  • Don't spam tags. This has nothing to do with C. It's pure C++. – Andrew Henle Feb 11 at 14:02
  • It's interesting. But you can't assign a value to N this way. – felix Feb 11 at 14:04
  • 1
    Array dimension must be compile time constant in C++. – Öö Tiib Feb 11 at 14:06
4

The size of an array is part of its type. When you create an array like

int array[5]{};

then its type is actually int[5], not int[] or int*. That means when you do

template<typename T,int SIZE>
size_t array_size(const T (&array)[SIZE])
{

    return SIZE;
}

and you pass, for example array, the compiler deduces T and SIZE from int[5] and you get int and 5 respectively.

int N;
int size(int (&arr1)[N]) //Passing the array by reference 
{
     return N; //Correctly returns the size too [cool trick ;-)]
}

on the other hand does not do that same thing. This declares a function that takes an array of size N, but since N is not a constant expression it won't even compile. Even if you have a non-standard extension (like gcc's VLA extension) then N will never change and the code still won't compile. Even if it were to compile, N never changes so the function would always return the same result no matter what size array is passed.

  • if this is the case, then why size_t array_size(int (&array)[SIZE]) is giving error – Nimay Das Feb 11 at 14:33
  • What error are you getting? The forst example works just fine here – NathanOliver Feb 11 at 14:44

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