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The exercise asks for a code which can convert the user input of the numbers 0-9 either as an integer or string to a string or integer respectively i.e. if0 is entered "zero" will be outputted and vice versa.

string number;

cout << "Let's convert strings to numbers."
     << "Enter value/string of 0-9";

while (number!= "exit")
{
    cin >> number;

    for (int i=0; i < digits.size(); i++) 
    {
        if (number == digits[i]) cout << i << endl;
    }   


    if (number == "0")      cout << digits[0] << endl;
    else if (number == "1") cout << digits[1] << endl;
    else if (number == "2") cout << digits[2] << endl;
    else if (number == "3") cout << digits[3] << endl;
    else if (number == "4") cout << digits[4] << endl;  
    else if (number == "5") cout << digits[5] << endl;  
    else if (number == "6") cout << digits[6] << endl;  
    else if (number == "7") cout << digits[7] << endl;
    else if (number == "8") cout << digits[8] << endl;  
    else if (number == "9") cout << digits[9] << endl;  
}

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

This code works fine but I don't like the long chain of if/else if statements but I can't figure out a way to convert the integers to strings. Can someone help me make this more efficient? Thanks!

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"It doesn't look good" can be a argument, but runtime efficiency is not. Anything you do will be fast compared to the time taken by the I/O. –  Bo Persson Oct 7 '12 at 10:40

3 Answers 3

up vote 3 down vote accepted

you can use that if number == "0" then number[0] == '0' which is char.

e.i instead if/else statements:

if (number[0] >= '0' && number[0] <= '9' )
  std::cout << digits[number[0] - '0'] << std::endl;
else
  std::cout << "wrong input - needs to be digit" << std::endl;

string is basically an array of characters, std::string is an array of characters of type char. For instance these are two legimate ways to declare and initialize strings in c or c++

char s[3] = { '0', '1', '\0' }; 
char s[3] = "01";

Char value is technically integer (or rather byte) that stores the character code in some encoding (usually ASCII). For instance the character code of '0' is 48, that of '1' is 49, '2' is 50. And we use this, because we know that

'3' - '0' = 51 - 48 = 3
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Thanks for the replies. I don't quite understand the idea behind number-'0' could you explain it a bit more? What is the program doing? –  Physbox Oct 7 '12 at 10:49
    
I added explanation to my post above –  tozka Oct 7 '12 at 11:05
    
Oh, ok this makes sense I never viewed a string like that. Thanks for the explanation I will try to implement this. –  Physbox Oct 7 '12 at 11:23
    
I managed to implement the above along with the for loop i already had for outputting strings to integers. The only problem I have now is that when I enter numbers larger than 9 e.g. 10, 11 its outputs "one", "one" according to the first char of the string :S How do i fix this? –  Physbox Oct 7 '12 at 13:35
    
that's a different problem then. number[0] - gets you only the first char in the string (as if the first element in the array) "12" - is an array of two elements (string of two chars), if you have entered 21 you'd have gotten two as a result because number[0] is '2'. You will need something like this: `int i; int result = 0; while (number[i] != '\0') { result = result * 10 + (number[i] - '0'); ++i; } –  tozka Oct 7 '12 at 13:45

You could do digits[number[0] - 48] to get rid of the if/else if.

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2  
Please... number[0] - '0'. –  paddy Oct 7 '12 at 10:39
    
@paddy What exactly is number[0]? I am not familiar with this concept. Are we defining a new vector class, number? –  Physbox Oct 7 '12 at 10:56
    
No, number is a string. You can index individual characters in the string just like an array. So number[0] is the first character. When you subtract '0' from it, you convert an ASCII 0 value to a numeric 0 value. You're saying that ASCII 0 is your base. It's convenient that the number codes are arranged in order, as are the alphabetic characters. This is a convenience that is frequently taken advantage of (eg sorting strings). –  paddy Oct 7 '12 at 10:59
    
I should add that you want to make sure number[0] is in a valid range: if (number[0] >= '0' && number[0] <= '9') ... –  paddy Oct 7 '12 at 11:01

Just use isdigit to check if it's 0-9 http://www.cplusplus.com/reference/clibrary/cctype/isdigit/

And if it is a digit you could convert it to an int using aoti http://www.cplusplus.com/reference/clibrary/cstdlib/atoi/

and finally just say

cout << digits[aoti(number)];
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