Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've been trying different methods for converting a user string input into an int I could compare and build an "if-then" statement. Every time I tried testing it, it just threw exception. Can anyone look at my Java code and help me find the way? I'm clueless about it (also a noob in programming). If I'm breaking any rules please let me know I'm new here. Thank you.

Anyway, here is the code:

 System.out.println("Sorry couldn't find your user profile " + userName + ".");
 System.out.println("Would you like to create a new user profile now? (Enter Y for yes), (Enter N for no and exit).");
 try {
     BufferedReader answer = new BufferedReader(new InputStreamReader(System.in));
     String addNewUser = answer.readLine();
     Character i = new Character(addNewUser.charAt(0));
     String s = i.toString();
     int answerInDecimal = Integer.parseInt(s);
     System.out.println(answerInDecimal);
 }
 catch(Exception e) {
     System.out.println("You've mistyped the answer.");
 e.getMessage();
 }
share|improve this question
1  
What is your input? What is the Exception stack trace? –  Atreys Jul 28 '11 at 21:01
    
Please post the stack trace-- –  antlersoft Jul 28 '11 at 21:04
    
Just a side suggestion, you can use String s = addNewUser.substring(0,1) to get the first character as a String. –  Mark Peters Jul 28 '11 at 21:04

5 Answers 5

up vote 1 down vote accepted

It seems like you are trying to convert the string (which should be a single character, Y or N) into its character value, and then retrieve the numerical representation of the character.

If you want to turn Y or N into their decimal representation, you have to perform a cast to int:

BufferedReader answer = new BufferedReader(new InputStreamReader(System.in));
String addNewUser = answer.readLine();
char i = addNewUser.charAt(0);
int integerChar = (int) i;       //The important part
System.out.println(integerChar);

This will return the integer representation of the character that the user input. It may also be useful to call the String.toUpperCase() method in order to ensure that different inputs of Y/N or y/n do not give different values.

However, you could also do an if-else based upon the character itself, rather than converting it to an integer.

BufferedReader answer = new BufferedReader(new InputStreamReader(System.in));
String addNewUser = answer.readLine();
char i = addNewUser.toUpperCase().charAt(0);
if (i == 'Y') {
    //Handle yes
} else if (i == 'N') {
    //Handle no
} else {
    System.out.println("You've mistyped the answer.");
}
share|improve this answer
    
Thanks man, I've learned a lot from your post. –  Yosi199 Jul 28 '11 at 21:23

I think you meant to ask them to Enter 0 for yes and 1 for No ? Maybe?

You're asking the user to type Y or N and then you're trying to parse that to an integer. That will always throw an exception.

EDIT -- As others have pointed out, if you want to continue to use Y or N, you should do something along the lines of

String addNewUser = answer.readLine();
if ( addNewUser.toLowerCase().startsWith("y") ) {
// Create new profile
}
share|improve this answer
    
Well, I was trying to make it intuitive for the user and also I'm taking the hard way on purpose to learn how to deal with this kind of situation in the future. –  Yosi199 Jul 28 '11 at 21:10

parseInt is just for converting text numbers into integers: everything else gets a NumberFormatException.

If you want the decimal ASCII value of a character, just cast it to an int.

share|improve this answer
    
Thank you I now know the difference. –  Yosi199 Jul 28 '11 at 21:22

Use if (addNewUser.startsWith("Y") || addNewUser.startsWith("y")) { instead. Or (as Mark pointed) if (addNewUser.toLowerCase().startsWith("y")) {. BTW maybe look at Apache Commons CLI?

share|improve this answer
2  
if (addNewUser.toLowerCase().startsWith("y")) { is a bit cleaner. –  Mark Peters Jul 28 '11 at 21:06
    
Thank you so much guys, I find this answer to work perfectly! I would now investigate ".toLowerCase().startsWith" since I didn't knew about them yet. –  Yosi199 Jul 28 '11 at 21:14

You cannot convert String to int, unless you know the String contains a valid integer.

Firstly, using the Scanner class for input is better, since its faster and you don't need to get into the hassle of using streams, if you're a beginner. This is how Scanner will be used to take input:

import java.util.Scanner; // this is where the Scanner class resides

...

Scanner sc = new Scanner(System.in); // "System.in" is the stream, you could also pass a String, or a File object to take input from
System.out.println("Would you like to ... Enter 'Y' or 'N':");
String input = sc.next();
input = input.toUpperCase();
char choice = sc.charAt(0);
if(choice == 'Y') 
{ } // do something

else if(choice == 'N')
{ } // do something

else
System.err.println("Wrong choice!");

This code could also be shortened to one line (however you won't be able to check a third "wrong choice" condition):

if ( new Scanner(System.in).next().toUpperCase().charAt(0) == 'Y')
      { } // do something
   else  // for 'N'
      { } // do something

Secondly, char to int conversion just requires an explicit type cast:

   char ch = 'A';
   int i = (int)ch;  // explicit type casting, 'i' is now 65 (ascii code of 'A')

Thirdly, even if you take input from a buffered input stream, you will take input in a String. So extracting the first character from the string and checking it, simply requires a call to the charAt() function with 0 as a parameter. It returns a character, which can then be compared to a single character in single quotes like this:

   String s = in.readLine();
   if(s.charAt(0) == 'Y') { } // do something

Fourthly, its a very bad idea to put the whole program in a try block and catch Exception at the end. An IOException can be thrown by the readline() function, and parseInt() could throw a NumberFormatException, so you won't be able to handle the 2 exceptions separately. In this question, the code is small enough for this to be ignored, but in practice, there will be many functions that can throw exceptions, hence it becomes easy to lose track of exactly which function threw what exception and proper exception handling becomes quite difficult.

share|improve this answer
    
Thank you for your answer, I'm a beginner and have learned from your answer. I appreciate the help! –  Yosi199 Apr 5 '12 at 8:37

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.