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I have gone over this back and forth and keep getting this error: 'ReadDials' : function does not take 0 arguments, can I get at least a point in the right direction?

#include <iostream>

using namespace std;

//declaring function
int ReadDials(int);

int main()
{
    //declaring each character of the phone number
    char num1, num2, num3, num4, num5, num6, num7, num8;
    bool quit = false;
    int code;

    while(quit != true || quit != true)
    ReadDials(code);
    if (code == -5)
        cout << "I love football!" << endl;
    else 
        return 0;
}

int ReadDials()
{
    //getting number from user
    cout << "Enter a phone number (Q to quit): ";
    cin >> num1;
    if (num1 == 'q' || num1 == 'Q')
    {
        code = -5;
        return code;
    }
    cin >> num2 >> num3 >> num4 >> num5 >> num6 >> num7 >> num8;
}
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What is the problem? Why don't you call ReadDials(num1, num2, num3, num4, num5, num6, num7, num8, code) in your main function? –  Mihran Hovsepyan Mar 20 '11 at 11:26
1  
Is it Homewok ? –  Felice Pollano Mar 20 '11 at 11:30
    
No I am trying to learn functions better so I wanted to try to write a program that uses them. –  Crash_Override Mar 20 '11 at 11:34
    
You may want to consider learning about std::vector –  dreamlax Mar 20 '11 at 11:36
    
Now I am getting undeclared variable names but they are declared in main and I dont need them to come out of the function just determine what the value for "code" will be. –  Crash_Override Mar 20 '11 at 11:47

4 Answers 4

up vote 3 down vote accepted

Actually ReadDials takes 9 arguments, so you can't call ReadDials() without passing anithing to it. then, as far as I can see, the function "karma" seems to return the number the user "dials", but it will probably fail in this intent, since parameters are passed by value, so the function changes are not propagate outside. To achieve this you will probably better passa to the function a char*, or why not reading the whole number as a string ?

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I want to set it up where it doesnt need anything brought in, it just needs to spit out the int code. –  Crash_Override Mar 20 '11 at 11:30
    
so you probably neeed to redesign the function. –  Felice Pollano Mar 20 '11 at 11:33

You declare ReadDials to be a function with 9 arguments:

int ReadDials(char, char, char, char, char, char, char, char, int);

and then you call it providing none:

while(quit != true || quit != true)
ReadDials();

The compiler complains. Is that surprising?

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readDials is declared as a function taking several parameters, so calling it without providing the corresponding arguments is an error.

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you must provide the arguments:

const int result(ReadDials(num1, num2, num3, num4, num5, num6, num7, num8, code));
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