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I would like to know how to prototype a function that returns a array which also takes in an array. after prototyping the array how can i implement it

is this correct?

coffee* getData(*coffe);

int main() {
    coffee cf[256];
    coffee FinalCoffee[256];
    FinalCoffee=getData(cf);
}

coffee getData(coffee objcf[]) {
    for(int i=0;i<SIZE;i++) {
        objcf[i].brand="nescafe";
    }
    return coffee;
}

Plsease do advice me on this. i need to be able to get back array so that i can pass the updated array to another function to process it.

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3 Answers

up vote 5 down vote accepted

Your code doesn’t even have matching declaration and function definition. This doesn’t work.

But the following does:

std::vector<coffee> getData(std::vector<coffee> const& objs) {
    std::vector<coffee> result;
    // Do something to fill result
    return result;
}

But if, as in your example, you want to manipulate the original array, rather than returning a new one, then it makes more sense to not have a return value at all, and to pass the argument as a non-const reference:

void manipulateData(std::vector<coffee>& objs) {
    for (auto& obj : objs)
        obj.brand = "nescafe";
}

As a rule of thumb, try to avoid C arrays in favour of C++ standard library containers. This will make your life much, much easier.

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1  
In the example given, the OP appeared to want to manipulate the array, one wonders if he actually needs to return a new one at all, but in fact modify the original. –  Benj Oct 5 '12 at 8:43
    
how to do be de protoyting and implementation for vectors in the earlier situtation –  rasul1719435 Oct 5 '12 at 9:17
    
@rasul1719435 The prototype is identical to the function header. Nothing to change. –  Konrad Rudolph Oct 5 '12 at 9:29
    
@Konrad Rudolph void manipulateData(std::vector<coffee>& objs); \\This will be the prototype is it. –  rasul1719435 Oct 5 '12 at 9:39
    
@rasul1719435 Yes. –  Konrad Rudolph Oct 5 '12 at 9:40
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You can do this in C++. References to the rescue. Ugly syntax ahead, typedefs are recommended:

#include <iostream>
using namespace std;

template<size_t N>
int (&f(int(&A)[N])) [N] {
        for(auto& i: A) i +=10;
        return A; 
} 

int main() {
        int A[3] = {1,2,3};
        auto& AA = f(A);
        for(auto i: AA)   cout << i << "\n";
}    

But as, Konrad Rudolph noted, you actually do not need return anything from f(), your array is modified in place. And your function can be much simpler:
void f(int (&A)[N])

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To start with, the declaration (prototype) and the definition (implementation) of the function headers are different:

coffee* getData(*coffe);

Versus

coffee getData(coffee objcf[])

The last one doesn't even return a pointer.

As for your question, your prototype says that getData returns a pointer but you assign it to an array. This will not work. Instead declare FinalCoffee as a pointer:

coffee cf[256];
coffee* FinalCoffee;
FinalCoffee=getData(cf);

However you don't really need that. When getData modifies the array you pass as argument, then those modifications will be in the cf array too as arrays are passed as references.

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so can i type like this void getData(*coffee); This is the prototyping void getData(coffee cf[] ){ } int main(){ coffee cf[256]; getData(cf); } –  rasul1719435 Oct 5 '12 at 8:55
    
@rasul1719435 Yes that's correct. But make sure the prototype and the actual implementation matches! –  Joachim Pileborg Oct 5 '12 at 9:06
    
void getData(*coffee); \\Prototying void getData(coffee cf[]){}\\implementation are they correcct –  rasul1719435 Oct 5 '12 at 9:16
    
@rasul1719435 Besides the asterisk being placed wrong in the prototype, the compiler will probably accept it. However it may be confusing to see the prototype with a pointer argument and the implementation with an array argument. –  Joachim Pileborg Oct 5 '12 at 9:24
    
so if i use the following way i dont need to return the coffee object right since we are modifing on it direcctly? –  rasul1719435 Oct 5 '12 at 9:41
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