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This is a question for a homework assignment involving a try/catch block. For a try/catch I know that you place the code you want to test in the try block and then the code you want to happen in response to an exception in the catch block but how can i use it in this particular case?

The user enters a number which is stored in userIn but if he enters a letter or anything besides a number I want to catch it. The user entered number will be used in a switch statement after the try/catch.

Scanner in = new Scanner(System.in);

try{

int userIn = in.nextInt();

}

catch (InputMismatchException a){

    System.out.print("Problem");

}

switch(userIn){...

When I try to compile, it returns symbol not found, for the line number corresponding to the beginning of the switch statement, switch(userIn){. A few searches later I find that userIn cannot be seen outside the try block and this may be causing the error. How can I test userIn for correct input as well as have the switch statement see userIn after the try/catch?

share|improve this question
    
The problem is that "int userIn" is defined in the scope of your "try {}". It isn't visible outside of that scope. SOLUTION: simply move "int userIn" BEFORE your "try". –  paulsm4 Sep 6 '13 at 23:35

3 Answers 3

up vote 0 down vote accepted

Use something like:

Scanner in = new Scanner(System.in);

int userIn = -1;

try {
    userIn = in.nextInt();
}

catch (InputMismatchException a) {
    System.out.print("Problem");
}

switch(userIn){
case -1:
    //You didn't have a valid input
    break;

By having something like -1 as the default value (it can be anything that you won't receive as input in the normal run, you can check if you had an exception or not. If all ints are valid, then use a boolean flag which you can set in the try-catch blocks.

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Thanks, now userIn can be seen in the switch statement and it returns "Problem" if something besides an int is entered. –  Stickandjab Sep 6 '13 at 23:54
    
"default :" would be a much better choice than "case -1 :". IMHO... –  paulsm4 Sep 7 '13 at 17:21
    
@paulsm4 Default would catch all unhandled int values (which would be a lot in any sane person's code). Having one specific value for an error allowes you to handle error situations more accurately. –  Raghav Sood Sep 7 '13 at 18:03

The int userIn is inside the try-catch scope, and you can use it only inside the scope not outside.

You must declare it outside the try-catch brackets:

int userIn = 0;
try{

userIn = ....
}.....
share|improve this answer

Try something like this

int userIn = x;   // where x could be some value that you're expecting the user will not enter it, you could Integer.MAX_VALUE

try{
    userIn = Integer.parseInt(in.next());
}

catch (NumberFormatException a){
    System.out.print("Problem");
}

This will cause and exception if the user entered anything than numbers because it will try to parse the user input String as a number

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ummm, not only does this not solve his problem with userIn not being found, parseInt throws a different exception so you're not even going to catch an error in the input. –  ajb Sep 6 '13 at 23:53
    
Actually his problem is that userIn cannot be seen outside the try block. Anyway, I think your solution is wrong, in.next() gives an integer, and Integer.parseInt() needs a string. –  pinckerman Sep 6 '13 at 23:57
    
@ajb I have solved the problem –  fujy Sep 6 '13 at 23:58
    
@pinckerman You are wrong, check this docs.oracle.com/javase/1.5.0/docs/api/java/util/… –  fujy Sep 6 '13 at 23:59

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