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Hello is there a different way to convert a int back to a char see comment about half way down the code. Im thinking the use of a switch or an if statement but i cannot figure out hot to apply it. i used char RPS[] = {'?', 'R', 'P', 'S'};

  #include <iostream>
    using namespace std; 
    #include <ctime>
    #include <cstdlib>

    //human choice function
    int hchoice()
    {
        char entry;
        int usrchoice = 0;

        while (1)    
         {
         cout <<"Choose R for Rock P for Paper, S for Sissors or Q for quit ";
         cin >> entry;
         cin.ignore(1000, 10);
         switch (toupper(entry)){
         case 'R':
           usrchoice = 1;
           break;
         case 'P':
           usrchoice = 2;
           break; 
         case 'S': 
           usrchoice = 3;
           break; 
         case 'Q':
           usrchoice = -1; 
           break; 
         } 
         if (usrchoice != 0)break;

         cout << "Invalid Entry" <<endl;


        }
    return usrchoice;
    }
    //Computer choice function
    int compchoice()
    {
          return (1 + rand() % 3);
    }
    void printresults(int computer, int human)
    {
    //Number to char converter? Can i use a switch here?
    char RPS[] = {'?', 'R', 'P', 'S'};

     cout << "Computer:" << RPS[computer];
     cout << ", Human:" << RPS[human];
     cout << ",  ";

    if (computer == human){
      cout <<"tie";
    }
    else if ( ( human==1 && computer == 2) || (human == 2 && computer == 3) || (human == 3 && computer == 1)){
    cout << "computer wins!";
    }
    else {
    cout <<"Human Wins!";
    }
    cout << endl;


    }


    int main()
    {
     // initialize the computer's random number generator
    srand(time(0)); rand();
      // declare variables
     int human = 0, computer = 0;

      // start loop
    while (1)  
    {
        // determine computer's choice
        computer = compchoice();
        // prompt for, and read, the human's choice
        human = hchoice();
        // if human wants to quit, break out of loop
           if (human == -1) break;
        // print results
         printresults(computer, human);
        cout << endl;
      // end loop
    }//while
      // end program
     return 0;
    }
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1  
What's wrong with your array? That's IMHO the best way to do this. –  jv42 Dec 13 '11 at 9:41
    
On the other hand, your while loop could use a proper condition, instead of a manual break. –  jv42 Dec 13 '11 at 9:41
    
@jv42 But that while loop naturally has its exit condition in the middle. I consider that a pretty standard idiom (though I usually write it using for(;;)). Writing it without the break requires either adding a boolean flag (ugly) or duplicating code (beyond ugly) –  wolfgang Dec 13 '11 at 9:59
    
@wolfgang I was talking about the first loop. The one on usrchoice != 0. –  jv42 Dec 13 '11 at 12:01
    
@jv42 So was I. –  wolfgang Dec 13 '11 at 12:28

1 Answer 1

up vote 1 down vote accepted

You could use a switch there, or a series of if statements. However, what you have right now is by far the most concise and -- I would argue -- the easiest to read.

One more general thing that I would suggest is to use symbolic constants (e.g. an enum) instead of the hard-coded numbers 1, 2 and 3 that you have in several places in your code.

share|improve this answer
    
Thanks that helped! –  David Dec 13 '11 at 9:52

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