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Reading Effective Java, the author mentioned that

while(!done) i++;

can be optimized by hotspot into

if (!done) {
    while(true) i++
}

I am very confused about it. done is usally not a const, why can compiler optimze that way?

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2 Answers 2

up vote 8 down vote accepted

The author assumes there that the variable done is a local variable, which does not have any requirements in the Java Memory Model to expose its value to other threads without synchronization primitives. Or said another way: the value of done won't be changed or viewed by any code other than what's shown here.

In that case, since the loop doesn't change the value of done, its value can be effectively ignored, and the compiler can hoist the evaluation of that variable outside the loop, preventing it from being evaluated in the "hot" part of the loop. This makes the loop run faster because it has to do less work.

This works in more complicated expressions too, such as the length of an array:'

int[] array = new int[10000];
for (int i = 0; i < array.length; ++i) {
    array[i] = Random.nextInt();
}

In this case, the naive implementation would evaluate the length of the array 10,000 times, but since the variable array is never assigned and the length of the array will never change, the evaluation can change to:

int[] array = new int[10000];
for (int i = 0, $l = array.length; i < $l; ++i) {
    array[i] = Random.nextInt();
}

Other optimizations also apply here unrelated to hoisting.

Hope that helps,

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I don't get it, how will the loop be terminated, if condition is always true? –  Mighter Sep 16 '12 at 10:03
    
I believe the author of EJ's point is that because the JIT compiler can optimize this way, a programmer should not depend on the value of 'done' changing from a different thread. It's possible that the JIT compiler could optimize the code to this construct and then the loop really never would terminate. –  ahawtho Dec 4 '12 at 22:48
1  
This optimisation can happen even if done is an instance or class variable, as long as it is not volatile. –  assylias Aug 29 '13 at 17:30

If you add system.out.println("I="+I) in the while loop. The hoisting won't work, meaning the program stops as expected. The println method is thread safe so that the jvm can not optimize the code segment?

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