Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Refer to the following program from the JLS.

http://java.sun.com/docs/books/jls/third_edition/html/memory7.gif

the explanation of the program is at the end of this section: http://docs.oracle.com/javase/specs/jls/se7/html/jls-17.html#jls-17.4.5

i can understand that r1 will be 1, but what is the value of r2. Does the write of x happens-before r2's read to x makes the r2=1?

since x is not synced, it could be in local memory and r2 can be 0?? I am not clear on this about the effect of happens-before order.

share|improve this question

1 Answer 1

up vote 1 down vote accepted

According to Happens-before Order ( If hb(x, y) and hb(y, z), then hb(x, z) ), we have hb(x=1, y=1), hb(y=1, r1=y), hb(r1=y, r2=x), therfore hb(x=1, r2=x). So r2=1.

share|improve this answer
    
why hb(x=1, y=1). what is the rule involed? thanks –  Ben Xu Jul 7 '11 at 13:29
    
According to rule #1: If x and y are actions of the same thread and x comes before y in program order, then hb(x, y). –  salman.mirghasemi Jul 7 '11 at 13:39
    
yes,but if it is true, how could reordering happen? –  Ben Xu Jul 7 '11 at 13:41
    
If you look at java.sun.com/docs/books/jls/third_edition/html/memory8.gif, you can see the case where reordering can happen. If thread 2 acquires the lock first. –  salman.mirghasemi Jul 7 '11 at 13:43
    
I found the original rule: If x and y are actions of the same thread and x comes before y in program order, then hb(x, y). –  Ben Xu Jul 7 '11 at 13:47

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.