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Mar
25
comment How does the gcc “parallelize” code?
Yeah, the scenario was indeed "not executing case 1, 2, or 3 in switch". However, as above in the other comments, I tried to print flag right before "if", and it was 0. Is that possible the machine code put "if - switch" before "assignment - print"? Since the error only happen in the first call... I'll try to wiki "vectorize", thanks for the keyword :)
Mar
25
comment How does the gcc “parallelize” code?
@ALan I printed it right after assignment and before if, it was 0.
Mar
25
comment How does the gcc “parallelize” code?
@Floris It supposed to be a system call, and I'm quite sure I didn't call it anywhere else except in the main() function. However, the resched() may be called somewhere else, for example by time out and interruption. Yet, I modified resched to check if it is called, and it turned out all the stuff happened in one time quantum. Still not sure what's going on.
Mar
25
awarded  Commentator
Mar
25
comment How does the gcc “parallelize” code?
@sharth The given Makefile has "-O0" flag. I'm not quite sure how it works though.
Mar
25
comment an example on thread synchronization using semaphore
Sorry for the delay. You are right about 2nd, I made sure about the answer in class earlier. If FIFO is used, the blocked H-O pair in FIFO queue will always get another H at some point, and form water. Yet, LIFO is not the case. As long as the arriving order is not [2*H and 1*O] (could be H-O-H-O... or H-O-O-... or any not 2H1O), no water will be formed. Your post is really inspiring, thanks a lot!
Mar
25
asked How does the gcc “parallelize” code?
Mar
13
comment an example on thread synchronization using semaphore
I may not describe the problem clearly... Originally, there may exist many O and H. Each one of them could launch a thread (oReady() or hReady()), randomly. And there's no limitation on the total number of running/blocked threads. So, it would be possible 2 independent H launched 2 threads, and each is blocked by waiting for O separately....
Mar
13
comment an example on thread synchronization using semaphore
Yes. There's no limit on semaphore count.
Mar
13
comment an example on thread synchronization using semaphore
Ah.. This is not real program. It was assigned as an analysis topic. Here is the original description on "starting processes": …The trick is to get two H atoms and one O atom all together at the same time. The atoms are threads. Each H atom thread executes a procedure hReady() when it is ready to react; and each O atom thread invokes a procedure oReady() when it is ready. …
Mar
13
comment an example on thread synchronization using semaphore
In approach 2, could consecutive claims on one counting semaphore result in deadlock? Since there may exist many H threads, which could come to rescue... In that case, I'm assuming I just wasted one pair of O and H.(apologize to ask this kind of question...)
Mar
13
comment an example on thread synchronization using semaphore
I failed to construct scenarios to describe the potential problem. Especially in approach 2 and 3, how thread wake up policy could affect ? It seems to me that O thread could always find 2 H to make water.
Mar
13
awarded  Editor
Mar
13
revised an example on thread synchronization using semaphore
added 65 characters in body
Mar
13
asked an example on thread synchronization using semaphore
Aug
9
awarded  Tumbleweed
Jun
30
comment Google chart tools - container is not defined
Same problem here. I'm pretty sure IDs are not duplicated and no other obvious bugs... But, the second Table always remind me "Container is not defined". I can trace back to "format+en,default,table.I.js": Q.draw=function(a,b){this.Pa||d(t("Container is not defined")); ......} Quite frustrating...
Jun
27
awarded  Supporter
Jun
26
awarded  Nice Question
Jun
26
awarded  Scholar