7

I'm trying to play around with my new class lesson in Pointer Arguments, and i want to make the functions senior and everyoneElse take pointer x, yet when I try to call the function with the pointer pAge, it says Error: Type name is not allowed. What's wrong?

#include <iostream>


int senior(int* x);
int everyoneElse(int* x);

using namespace std;

int main()
{
    int age(0);
    int* pAge(&age);
    cout<<"How old are you?"<<endl;
    cin>>age;
    if(age>59)
        senior(int* pAge);
    else
        everyoneElse(int* pAge);
    return 0;
}

int senior(int* x)
{

return *x;
}

int everyoneElse(int* x)
{

return *x;
}
  • It's the same as calling any other function. You don't include a type. – chris Feb 22 '13 at 4:24
7
if(age>59)
    senior(int* pAge);
else
    everyoneElse(int* pAge);

You can't include the typename when calling a function. Change to:

if(age>59)
    senior(pAge);
else
    everyoneElse(pAge);
4
senior(int* pAge);
else
    everyoneElse(int* pAge);

replace with

senior(pAge);
else
    everyoneElse(pAge);
1

When you call the function, you do not have to specify type of parametr, that you pass to a function:

if(age>59)
    senior(pAge);
else
    everyoneElse(pAge);

Parametrs should be specified by type only in function prototype and body function (smth like this:)

int senior(int* x)
{

return *x;
}
0

How you are calling the function int senior(int x)* and int everyoneElse(int x)* is wrong call the function as : everyoneElse(pAge) and int senior(x)

see link http://msdn.microsoft.com/en-us/library/be6ftfba(v=vs.80).aspx

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