1

Why does num1's value equal 0? I do not understand. How come passing num1 into the getScore function and using cin does not change the value? How can I change its value based on what is cin to score.

#include <iostream>
using namespace std;

void getScore(double);

int main(int argc, const char * argv[]) {
    double num1;
    getScore(num1);
    cout << "NUM 1 got set to " << num1 << endl;
    return 0;
}

void getScore(double score) {
    cout << "whats the score";
    cin >> score;
    cout << "num is " << score << endl;
}
  • 2
    You should have a look at references and pointers – Xatyrian Oct 12 '17 at 22:02
  • 2
    Why do you use a void function? – user2672107 Oct 12 '17 at 22:06
5

You passed num1 by value. That means that score is a new variable that had the value from num1 copied into it.

What you would probably like to happen here is to pass num1 by reference. That is done by declaring and defining the function like so:

void getScore(double&);

void getScore(double& score) {
    cout << "whats the score";
    cin >> score;
    cout << "num is " << score << endl;
}

The ampersand (&) means that you are passing a reference to the variable, not a copy of the value stored in the variable. By passing the reference, score becomes a sort of 'nickname' for num1. This means that setting a value to score will really set that value to num1.

http://www.learncpp.com/cpp-tutorial/73-passing-arguments-by-reference/

2

When you pass an argument by value (like you do here), the function creates a copy of it for itself, so you write into local copy in the getScore(), and that copy is destroyed when the function ends.

See Passing arguments by value

2

A function is commonly understood as evaluating to a value. With that in mind you might rewrite your function to:

double getScore(){  // crap and other stuff... + a return }

To access the value produced by the return statement in your function, you simply need to assign it.

double theInputtedScore = getScore();

This function will satisfy the previous assignment.

double getScore(){   return 2.71; }

When you write

getScore(double value). 

This is commonly understood as the numerical value is an input to your function. You don't want that.

  • how will double theInputtedScure = getScore(); work when the function takes a double as a parameter. – Omar Oct 12 '17 at 22:14
  • 1
    @Omar, the point Captain Giraffe is making is that having the function return a value instead of giving it a variable to change is more intuitive for most C++ programmers. Instead of calling getScore(num1), they are suggesting changing that function and calling num1 = getScore(). – Kyle A Oct 12 '17 at 22:17

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