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Im used too using Scanner mainly and want too try using a buffered reader: heres what i have so far

import java.util.*;
import java.io.*;
public class IceCreamCone 
{
// variables
String flavour;
int numScoops;
Scanner flavourIceCream = new Scanner(System.in);

// constructor
public IceCreamCone()
{

}
// methods
public String getFlavour() throws IOexception 
{
	try{

	BufferedReader keyboardInput;
	keyboardInput = new BufferedReader(new InputStreamReader(System.in));
	System.out.println(" please enter your flavour ice cream");
	flavour  =  keyboardInput.readLine();
	return keyboardInput.readLine();
	}
	catch (IOexception e)
	{
		e.printStackTrace();
	}
}

im fairly sure to get an int you can say

Integer.parseInt(keyboardInput.readLine());

but what do i do if i want a String

share|improve this question
    
why was this downvoted? –  jon-hanson Dec 2 '09 at 15:17

1 Answer 1

up vote 4 down vote accepted

keyboardInput.readLine() already returns a string so you should simply do:

return keyboardInput.readLine();

(update)

The readLine method throws an IOException. You either throw the exception:

public String getFlavour() throws IOException {
   ...
}

or you handle it in your method.

public static String getFlavour() {
	BufferedReader keyboardInput = null;
	try {
		keyboardInput = new BufferedReader(new InputStreamReader(System.in));
		System.out.println(" please enter your flavour ice cream");
		// in this case, you don't need to declare this extra variable
		// String flavour = keyboardInput.readLine();
		// return flavour;
		return keyboardInput.readLine();
	} catch (IOException e) {
		// handle this
		e.printStackTrace();
	}
	return null;
}
share|improve this answer
    
im still getting a compile error that way. i dont understand. your telling me not too have flavour defined as the string, just a line that will print? –  OVERTONE Dec 2 '09 at 14:15
    
What's the error your getting? –  bruno conde Dec 2 '09 at 14:17
    
unhandled io exception. i changed the code too what you gave me above. –  OVERTONE Dec 2 '09 at 14:19
    
You don't have flavour defined as string. You have a meaningless construct flavour=string.(). He tells you to replace the last two lines with one. I must add that if you don't know how to declare a variable, you should not be writing any code. –  yu_sha Dec 2 '09 at 14:21
1  
@yu_sha i must add, im a student. so suck it. its my job too learn and make mistakes. dont like the question, then dont answer! –  OVERTONE Dec 2 '09 at 14:26

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