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Why does Java Compiler raise "The local variable s may not have been initialized" in the finally block. I can not figure out in which flow of code, s remains un-initialized.

 public static void test() {
    String s;
    try {
        s = "abc";
    } catch (Throwable e) {
        s = "throwable";
    } finally {
        System.out.println(s.getClass()); //---->(The local variable s may not have been initialized)
    }
}
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Similar problem? stackoverflow.com/questions/2361916/… –  Paolo Nov 9 '12 at 13:08
    
Because local variable has not been initialized. –  Aleksandr M Nov 9 '12 at 13:08
    
what if code in catch branch fails –  onemach Nov 9 '12 at 13:08
    
If the assignment in catch block fails as well, then it may not have been initialized –  Esailija Nov 9 '12 at 13:08

5 Answers 5

up vote 3 down vote accepted

If there is an OutOfMemory-Error in line 6, s cant be used in line 8.

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does the Java Language Specification speak anything about the execution of the finally block in cases like OutOfMemory-Error? –  lab bhattacharjee Nov 9 '12 at 13:20
    
@labbhattacharjee: JLS, section 14.20.2. The finally block is always executed, even if a new throwable is thrown in the catch block. –  jarnbjo Nov 9 '12 at 13:52
    
@labbhattacharjee Yes "to ensure that resource is always recovered." docs.oracle.com/javase/tutorial/essential/exceptions/… –  Peter Rader Nov 9 '12 at 13:53
    
@jarnbjo Throwable != Error - but you are right. –  Peter Rader Nov 9 '12 at 13:55
    
@Peter: Error is a subclass of Throwable. I wrote throwable on purpose, since it doesn't matter if an Exception or Error is thrown in the catch block. The finally block is executed no matter what. –  jarnbjo Nov 9 '12 at 16:32

Part of the java language specification is that local variables must be explicitly initialized before use (ie before its value is referenced).

There are Throwables that would prevent s from being given a value - OutOFMemoryError being one of them.

Giving s a value will fix the compile problem:

String s = null;

The reason explicit initialization is required is that local variables use stack memory, not the heap memory as for instance variables, and there's no construction phase to give a default value to the variable - it has to be coded.

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1  
Yes but I think the OP is stating that s will be set in either the try or the catch. –  paxdiablo Nov 9 '12 at 13:10
    
@Bohemian, clearly, there are 2 possible flows.1) Normal flow: where a="abc". (2)Exceptional flow: s="throwable". In either cases, s is initialized. –  lab bhattacharjee Nov 9 '12 at 13:10
    
@labbhattacharjee, (3) double exceptional flow: another exception is thrown from within the catch block –  Wyzard Nov 9 '12 at 13:15

This is because the compiler can't guarantee 100% that the assignment in the try block will run without any problems and similarly with the catch block. And if both assignments fail, s will be still uninitialized when it is printed in the finally block which isn't legal.

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I can not figure out in which flow of code, s remains un-initialized.

Theoretically, an exception may occur in try/catch block, for instance OutOfMemoryException. For avoid this, You can initialize s with null

String s = null;
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Basically, there can be a new exception in the catch block before s is initialized. For example an OutOfMemoryError.

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