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I am trying out a c++11 array by following along with this YouTube video tutorial series. Though I am not very skilled in using my IDE's, I have both of my IDE's, Eclipse and Codeblocks, set to have the compiler follow the C++0x ISO language standard [-std=c++0x] which at least allows them to understand the syntax of a c++11 array, such as array <double, 5> rainfall; Both are responding in the same way. The following code I have written passes this array to a function which prints it out.

#include <iostream>
#include <array>

using namespace std;

void printArray(double[], int);

int main()
{
    array <double, 5> rainfall;

    rainfall[0] = 2.3;
    rainfall[1] = 0.3;
    rainfall[2] = 0.0;
    rainfall[3] = 4.1;
    rainfall[4] = 0.5;

    printArray(rainfall, 5);

    return 0;
}

void printArray(double array[], int size)
{
    for(int i = 0; i < size; i++)
    {
        cout << array[i] << " | ";
    }
}

With a non-c++11 array, such as double rainfall[5] this works fine, but with array <double, 5> rainfall there is an error which reads cannot convert 'std::array<double, 5u>' to 'double*' for argument '1' to 'void printArray(double*, int) The video I am following uses the same code, yet does not receive this error.

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3  
Call the function as printArray(rainfall.data(), 5);. The data member function returns a pointer to the beginning of the underlying array. The std::array itself is not convertible to C style array, which is why you're getting the error. – Praetorian Apr 2 '13 at 18:33
up vote 3 down vote accepted

You could pass rainfall.data() to the function. An std::array<T, N> is not implicitly convertible to T[N].

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4  
rainfall.begin() will return an iterator that is not necessarily (convertible to) a double *. The OP needs to pass rainfall.data() to the function. – Praetorian Apr 2 '13 at 18:31
    
@Praetorian: Thanks, I didn't know about data – Armen Tsirunyan Apr 2 '13 at 19:27

As you can see, in the video you use, the guy uses a static, c-style array which can be implicitly converted to T* BUT you are using an c++11 array, which doesn't have implicit conversion to static array. Though, C++11's array class has method data which gives you direct access to the underlying data, which will do in your case.

But in this case, if you want to use the function with c++11 arrays, you can make an overload like this:

template <typename T, size_t Size> void printArray(const std::array<T, Size>& arr);

This would work with any size and you don't need to pass another (unneeded) parameter for size ;)

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Or you can define the function as

void printArray (const array <double, 5>& myarray, int size)
share|improve this answer
    
Why do you need int size again if the declaration already has 5? – balki Apr 3 '13 at 8:18
    
It is a parameter of the template. en.cppreference.com/w/cpp/container/array – jbgs Apr 3 '13 at 11:03
    
yes it has a constexpr size_type size() member function, so printArray doesn't need int size parameter – balki Apr 3 '13 at 11:36
    
Sorry, you are right, I misunderstood you. The first function parameter is enough. I just kept it in order to maintain the same function body. – jbgs Apr 3 '13 at 14:25

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