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The program takes a few basic baseball statistics input by the user, and performs a few operations, ultimately outputting a complicated statistic. Although we only just started learning functions, I first tried doing this program with functions, failing miserably. I think the program can be performed without functions though, and here's my code so far:

(The posting system refuses to let me type anything after #include <, but I'm using iostream, iomanip, conio.h, and cmath.)

using namespace std;   

int main()   

{   
    int H, TB, BB, HBP, AB, YEAR, LGRS, LGPA;   
    double REqA, EqR, RA, WIN, AEqA, LGEqA, aWIN;   

    cout << "Enter the player's at bats." << endl;   
    cin >> AB;   

    cout << "Enter the player's hits." << endl;   
    cin >> H;   

    cout << "Enter the player's total bases." << endl;   
    cin >> TB;   

    cout << "Enter the player's walks." << endl;   
    cin >> BB;   

    cout << "Enter the player's times hit by pitch." << endl;   
    cin >> HBP;   

    cout << "Enter the year the player played." << endl;   
    cin >> YEAR;   

    if (YEAR != 2012)   
    {   
       cout << "Sorry, this program only supports the 2012 season." << endl;   
    }   

    else  

    {   
       LGRS = 21017;   
       LGPA = 184179;   
       LGEqA = 0.72401;   

    }      

    REqA = (H + TB + (1.5 * (BB + HBP))) / (AB + BB + HBP);   

    EqR = (2 * REqA / LGEqA - 1) * (AB + BB + HBP) * (LGRS / LGPA);   

    WIN = (EqR * EqR) / ((EqR * EqR) + (RA * RA));   

    aWIN = (WIN / (1 - WIN));   

    AEqA = pow(aWIN, 0.2) * 0.26;   

    cout << "The player had a " << AEqA << " EqA in " << YEAR << "." << endl;   

    getch();   

    return 0;   

}  

The final output of AEqA is always 0, no matter what numbers are input at the start. If I set up the program to output REqA, the program is outputting the number it should. But I need to do all the steps coming after that for the final output of AEqA, and that always ends up as zero. I think the problem is with the line that calculates EqR, because if I set up the program to output EqR, the output is also always 0.

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This should be pretty easy to debug: split up the equations over more lines and then place a breakpoint and step through and watch for the line that doesn't do what you expect. –  Ian Nov 8 '12 at 22:46
    
TIP: Indent every line of code four spaces. This will allow your #include directives to appear correctly. –  Code-Apprentice Nov 8 '12 at 22:53
    
Oh yeah, I was told by the commenting system I had to indent every line four spaces to post my comment, but that information was provided after I posted the explanation in parentheses, and I guess I forgot to try again to post things after #include again. –  user1810719 Nov 9 '12 at 3:24

2 Answers 2

It would be better practice to use getline for your user input

#include <iostream>
#include <string>
using namespace std;

int main ()
{

  int H, TB, BB, HBP, AB, YEAR, LGRS, LGPA;   
  double REqA, EqR, RA, WIN, AEqA, LGEqA, aWIN; 

  cout << "Enter the player's at bats.? " << endl;
  getline (cin, AB);

  //etc ...

   return 0;

}

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Why do you say that's better practice? Just curious, since this is all new to me. –  user1810719 Nov 9 '12 at 3:27

This line

 WIN = (EqR * EqR) / ((EqR * EqR) + (RA * RA));

your variable RA is never initialised. In such a case it is probably initialised to zero by default. In such a case, this would result in

WIN = 1 

and so when you do this

aWIN = (WIN / (1 - WIN));  

so you are doing a floating point division by zero which should result in infinity. I am not sure what calling pow on inifinity does but I am guessing it is not good. I have no idea what your variables represent but you will always get this problem when

RA = 0

so it would be a good idea to initialised it to something or catch the user input value. I would strongly suggest using a debugger to check that your variables are being correctly set/calculated as the program runs.

Note also that you are getting a zero here through integer division - you set

LGRS = 21017;   
LGPA = 184179; 

and then on this line

EqR = (2 * REqA / LGEqA - 1) * (AB + BB + HBP) * (LGRS / LGPA);   

the result of

(LGRS / LGPA)

ALWAYS equates to zero since LGRS < LGPA. The result of divisions of 2 integer types is unsurprisingly an integer and when the numerator and denominator are both positive, but the numerator is less than the denominator the result will be zero (research integer division on this site or the web in general). As a consequence, your product contains a zero term and hence EqR == 0

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Okay, thanks. I still also get an output of 0 when outputting EqR, which is before RA. Any ideas about my error there? –  user1810719 Nov 9 '12 at 3:26
    
@user1810719 See my update –  mathematician1975 Nov 9 '12 at 9:50
    
Thank you, that really helps. –  user1810719 Nov 14 '12 at 18:34

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