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I got a try catch finally java question. The code is like this:

package com.test;

public class TestExamples {

public int testFinally(int inputNum) {
    int returnNumber = inputNum;
    try {
        returnNumber++;
        return returnNumber;

    } finally {
        returnNumber++;

    }
}

public StringBuilder testFinallyString() {
    StringBuilder builder = new StringBuilder();
    try {
        builder.append("cool");
        return builder.append("try");

    } finally {
        builder.append("finally");
    }
}


public static void main(String[] args) {
    TestExamples testExamples = new TestExamples();
    System.out.println("The result of testFinally is " + testExamples.testFinally(5));
    System.out.println("The test of testFinallyString is " + testExamples.testFinallyString());

}

    }

The results:

The result of testFinally is 6
The test of testFinallyString is cooltryfinally

If finally is executed everytime, then why is testFinally 6? I am bit puzzled that finally code block doesnt result in incrementing the number that is returned. Pls can someone throw more light on what can be the underlying reason.

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marked as duplicate by Rohit Jain, Narendra Pathai, Sotirios Delimanolis, Luiggi Mendoza, Johan Oct 14 '13 at 19:20

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
Reference types and primitives. – Sotirios Delimanolis Oct 14 '13 at 19:18

I think it's because return returnNumber; is computed before the finally block. At that point, returnNumber is 6. Then the finally block is executed, and returnNumber is incremented to 7, but by that time it's too late--testFinally has already decided that it's going to return 6.

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This doesn't answer the question, just outlines the observations (poorly, because no comparison is made with the string builder) – Joost Oct 14 '13 at 19:21

If finally is executed everytime, then why is testFinally 6?

The increment is happening, but it's happening after you've returned a primitive value. What you've returned isn't an object.

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I don't think this is as much to do with primitives as it is to do with reassignment. The compound operator does x = x + y, so if you have returned x already then no-one will see the reassignment. The same would be true for an Object. – Boris the Spider Oct 14 '13 at 19:24

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