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The basic idea of my code is for the user to enter either the spelling of 0-9 i.e. zero, one etc. or the actual numeral and for it to output the numeral/spelling respectively.

I managed to do this with a while loop using while(cin >> number) (number being a string variable) and then use if statements to select the appropriate output option i.e. "zero" --> 0, and "0"--> zero.

At first though I tried to do it as follows;

while (cin >> number || cin >> n) 
{
    if (n == 0)
        cout << digits[0] << endl;
           .
           . 
           .
    else if (n == 9)
        cout << digits[9] << endl;  

    if (number == digits[0])
        cout << 0 << endl;
           .
           .
           .
    else if (number == digits[9])
        cout << 9 << endl;  
}

digits is just a vector class that stores the strings "zero", "one" etc.

This didn't work though, when a string was entered the output was correct but when an integer was entered the output was always "zero". I was wondering why this doesn't work? I figured its something to do with the while loop conditions. Can't the computer identify if a string/integer was entered and carry out the appropriate action?

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Why all the if/else ifs? Why not just cout<<digits[n]<<endl;? –  anthropomorphic Oct 6 '12 at 23:20
    
Yeh I can see how that would be a whole lot better but that would only work if the input was an integer. what if my input was a string? –  Physbox Oct 6 '12 at 23:25
    
Oh, well if it's a string, then you need to do if (n == "0") rather than if (n == 0). –  anthropomorphic Oct 6 '12 at 23:32
    
yeh your right, I think the red colour though implies "0", right?? I have changed the code now to only read in a string as suggested by the other users. –  Physbox Oct 6 '12 at 23:37
    
what color your numbers/strings are depends entirely on what software you're using and how it's configured. I have no idea what the red color implies in your case. –  anthropomorphic Oct 6 '12 at 23:42

2 Answers 2

up vote 3 down vote accepted

The problem is that cin >> number is always going to succeed since number is a string (as long as you don't hit EOF or some other failure condition); if the user types in a digit, number is going to hold the number as a string. So cin >> n won't happen.

You should compare your number against the strings "0".."9" instead (in addition to testing the digit names). You should also use a loop instead of a chain of if/else if.

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Ok, I understand what's going on, thanks. I'll try modifying it with a loop. –  Physbox Oct 6 '12 at 22:52
    
I managed to construct a simple for loop for when the inputs are "zero", "one" etc. but I don't quite understand how I would use a loop for when the inputs are the strings "0", "1" etc. I appreciate the help, thanks. –  Physbox Oct 6 '12 at 23:35

I don't think you understand the usage of the || operator. while (cin >> number || cin >> n) means do cin >> number and if that expression evaluates false, then do cin >> n, and if either one evaluates true, then do what's inside the brackets.

As nneonneo said, cin >> number will (almost) always evaluate true, so cin >> n will never happen, but that's actually the least of your problems.

If I might suggest, I think you ought to get rid of the while loop entirely for now, and just focus on doing it once. What you need is to cin >> number and then do a test on weather or not number is a "0","1",..."9" number, or a "zero","one",..."nine" number. Then you can decide on how to convert one to the other.

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Going by what you said, I tried to see what while (cin >> n || cin >> number) would do. Shouldn't this do cin >> n and if false then do cin >> number. So if I enter the string 0 it should recognise it as an integer and store it as n but if "zero" was inputted as a string in number? –  Physbox Oct 7 '12 at 10:24

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