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I tried to make a program that has a correct Divide function. My code was:

#include <iostream>

using namespace std;

double x,y,z,a;

double divide(x,y) {
    if (x >= y) {
        x=z;
        z=y;
        y=x;
        return(x/y);
    }
    else
        return(y/x);
}

int main()
{
    double x,y,z ;
    cout << "Enter x " <<endl;
    cin >> x;
    cout << "Enter y " <<endl;
    cin >> y;
    a = divide (x,y);
    cout << a <<endl;

    system("pause");
    return 0;
}

And I have 2 errors:

 expected `,' or `;' before '{' token

on the { line. Right under the double divide (x, y) line

And another error

divide cannot be used as a function

on the a = divide (x, y); line. I am using Code: Blocks

share|improve this question
up vote 13 down vote accepted

You need to specify a proper function signature for the function divide. Specifically, the arguments to the function are missing their types:

double divide(double x, double y)
{
    ...
}

You also need to create a scope for each block in an if statement:

if (x > y)
{
    ...
}
else
{
    ...
}
share|improve this answer
1  
Technically, the braces of an if/else/else if block are not required if the block contains only one line of code. – Steve Guidi Oct 23 '09 at 19:59
6  
But a lot of times you should probably still put them since it'll save you hours of trouble later on if you make the mistake of thinking there were braces there. :) – Andrew Song Oct 23 '09 at 21:03

The braces in an if statement don't go around the else block. You need a separate pair of braces there. Try:

    if (x >= y){
        x=z ;
        z=y ;
        y=x ;
        return(x/y);
    }
    else {
        return(y/x);
    }

The second set of braces (around the one line of the code after the 'else' aren't strictly necessary; you can leave the braces off an if or an else if the block is only one line long. But while you're new you probably shouldn't, as it's easy to make mistakes that way.

Also, you have not provided types for the x and y variables in your divide function. You must specify types for them, just as you would for any other variable. You've written

    double x,y,z,a ;

...outside of the function, but that doesn't help; it defines new double variables named x, y, z,and a, completely independent of the ones in your function.

share|improve this answer
    
+1 for mentioning the 'optional' braces. I have witnessed many bugs in source code because people forget to add braces when they add the second line of code. For example - consider putting some kind of debug std::cout before the 'return y/x' line. I'm slowly convincing my team that always putting braces in makes for easy maintenance 6 months down the line! – Steve Folly Oct 23 '09 at 20:58

Corrected your braces in your if...else. also need to define a type in your function's parameters.

using namespace std;

        double x,y,z,a ;

double divide (double x, double y)
    {
        if (x >= y){
            x=z ;
            z=y ;
            y=x ;
            return(x/y);
        }  
        else
        {
            return(y/x);
        }
    }

    int main()
{
    double x,y,z ;
   cout << "Enter x " <<endl;
   cin >> x ;
   cout << "Enter y " <<endl;
   cin >> y ;
   a = divide (x,y);
   cout << a <<endl;

        system("pause");
    return 0;
}
share|improve this answer
#include <iostream>

using namespace std;

// divides x/y
double divide (x,y)
{
    if(y != 0)
    { 
    	/*{}  <- this is called a scope.
    	it is important to keep track of scopes.
    	each function has it's own scope
    	each loop or an if instruction can have it's own scope
    	in case it does - all the instructions from the scope will be executed
    	in case it doesn't - only the 1st instruction after the if/else/for/while etc. will be executed

    	Here's another funny thing about scopes :
    	{
    		double x; // this variable exists ONLY within this scope
    	}
    	{
    		// y doesn't exist here
    		{ 
    			double y; // y exists here. it's local
    		}
    		// y doesn't exist here
    	}
    	*/
    	return x / y; 
    }
    else
    	return 0;
}

int main()
{
    double x,y;
    cout << "Enter x " <<endl;
    cin >> x ;
    cout << "Enter y " <<endl;
    cin >> y ;
    double a = divide (x,y);
    cout << a <<endl;
    cin;
    return 0;
}
share|improve this answer
2  
You are missing parameter types. – dirkgently Oct 23 '09 at 20:10

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