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In ArrayBlockingQueue, all the methods that require the lock copy it to a local final variable before calling lock().

public boolean offer(E e) {
    if (e == null) throw new NullPointerException();
    final ReentrantLock lock = this.lock;
    lock.lock();
    try {
        if (count == items.length)
            return false;
        else {
            insert(e);
            return true;
        }
    } finally {
        lock.unlock();
    }
}

Is there any reason to copy this.lock to a local variable lock when the field this.lock is final?

Additionally, it also uses a local copy of E[] before acting on it:

private E extract() {
    final E[] items = this.items;
    E x = items[takeIndex];
    items[takeIndex] = null;
    takeIndex = inc(takeIndex);
    --count;
    notFull.signal();
    return x;
}

Is there any reason for copying a final field to a local final variable?

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3 Answers

up vote 27 down vote accepted

It's an extreme optimization Doug Lea, the author of the class, likes to use. Here's a post on a recent thread on the core-libs-dev mailing list about this exact subject which answers your question pretty well.

from the post:

...copying to locals produces the smallest bytecode, and for low-level code it's nice to write code that's a little closer to the machine

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7  
Strong emphasis on "extreme"! This is not a general-purpose good programming practice that everyone should be emulating. –  Kevin Bourrillion May 7 '10 at 13:42
9  
Random FYI: in some other cases when you see this done, it's because the field in question is volatile, and the method needs to make sure it's got a single consistent value or reference for it throughout. –  Kevin Bourrillion May 7 '10 at 13:44
    
I'll take this "extreme" optimization in a core class like this. –  Erick Robertson Jan 13 '11 at 12:58
    
Ok, the copying trick is clear. But why copy to a final local variable? Just to give a hint to one who reads the code, or it gives some hidden bytecode profit as well? –  zamza Sep 20 '11 at 13:11
1  
@zamza, local final variables are only used by java compiler, not the bytecode (i.e. JVM doesn't know if a local variable is final) –  bestsss Nov 6 '11 at 1:32
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This thread gives some answers. In substance:

  • the compiler can't easily prove that a final field does not change within a method (due to reflection / serialization etc.)
  • most current compilers actually don't try and would therefore have to reload the final field everytime it is used which could lead to a cache miss or a page fault
  • storing it in a local variable forces the JVM to perform only one load
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This is a great question, I was looking at ArrayBlockingQueue and wondered the same thing myself. I have a more in depth answer about why the byte code is more compact here for anyone who is curious:

http://kingsbery.net/2010/06/02/bytecode-analysis-of-arrayblockingqueue/

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