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

I have read the article Synchronization and Multiprocessor Issues and I have a question about InterlockedCompareExchange and InterlockedExchange. The question is actually about the last example in the article. They have two variables iValue and fValueHasBeenComputed and in CacheComputedValue() they modify each of them using InterlockedExchange:

InterlockedExchange ((LONG*)&iValue, (LONG)ComputeValue());  // don't understand
InterlockedExchange ((LONG*)&fValueHasBeenComputed, TRUE); // understand

I understand that I can use InterlockedExchange for modifing iValue but is it enought just to do

iValue = ComputeValue();

So is it actually necessary to use InterlockedExchange to set iValue? Or other threads will see iValue correctly even if iValue = ComputeValue();. I mean the other threads will see iValue correctly because there is InterlockedExchange after it.

There is also the paper A Principle-Based Sequential Memory Model for Microsoft Native Code Platforms. There is the 3.1.1 example with more or less the same code. One of the recomendation Make y interlocked. Notice - not both y and x.

Update
Just to clarify the question. The issue is that I see a contradiction. The example from "Synchronization and Multiprocessor Issues" uses two InterlockedExchange. On the contrary, in the example 3.1.1 "Basic Reodering" (which I think is quite similar to the first example) Herb Sutter gives this recomendation

"Make y interlocked: If y is interlocked, then there is no race on y because it is atomically updatable,and there is no race on x because a -> b -> d."

. In this draft Herb do not use two interlocked variable (If I am right he means use InterlockedExchange only for y ).

share|improve this question
1  
Yeah, it's necessary. InterlockedExchange promises a full memory barrier so you can be sure that both variables are visible. But it does not guarantee in which order the pending buffer writes become visible. You are still screwed if the fValueHasBeenComputed update is flushed first. –  Hans Passant Oct 7 '11 at 10:06
3  
@HansPassant: Wrong. Quoting the linked document: A full memory barrier ensures that memory read and write operations that appear before the memory barrier instruction are committed to memory before any memory read and write operations that appear after the memory barrier instruction. In fact, the barriers are ther to ensure ordering, not visibility. –  jpalecek Oct 7 '11 at 10:41
1  
@Oleg: OMG, protected against what? What do "instructions in another thread" have to do with this? –  jpalecek Oct 7 '11 at 11:01
1  
@Oleg: writes to well-aligned memory locations are atomic on x86. Even without interlocked exchange, iValue would be updated atomically (unless your code does something horrible to break alignment). So instructions in another thread have nothing to do with it. Morover, even when both variables are updated with interlocked operations, there's still an interval in between them where instructions in another thread will see the nerw value of iValue and the old value of fValueHasBeenComputed. So the race condition is still there with interlocked. –  jalf Oct 7 '11 at 11:30
3  
@Oleg: Yes. The code (in either modification) does nothing against races between two calls of CacheComputedValue(). However, races between Cache... and Fetch... are equally impossible in both. Arguing for InterlockedExchange (especially if you don't use its return value) on grounds of race condition is lame. –  jpalecek Oct 7 '11 at 11:36

4 Answers 4

They did that to prevent partial reads/writes if the address of iValue is not aligned to an address that guarantees atomic access. this problem would arise when two or more physical thread try to write the value concurrently, or one reads and one tries to write at the same time.

As a secondary point, it should be noted that stores are not always globally visible, they are only going to be visible when serialized, either by a fence or by a bus lock.

share|improve this answer
    
How is this particular example iValue can be read partially modifed even if iValue is not aligned to an address that guarantees atomic access? I mean that FetchComputedValue() reads iValue only after fValueHasBeenComputed has been set to TRUE. And at that moment iValue must be fully modifed even if its modification was not atomic. –  skwllsp Oct 14 '11 at 8:33
    
@skwllsp: although that may be partially true for x86, what happens if the thread is interrupted between the check and the read? other threads are still free to modify the value, so when the interrupted thread receives control again, it can still read a partial value. the same applies to instructions, just cause read2 directly follows read1 doesn't mean there cant be a write from a separate HW thread in-between. such is the perils of multi-core/threaded programming, you can never assume things, this is why early lockless algo's fell prey to the ABA problem –  Necrolis Oct 14 '11 at 9:14
    
In the Microdoft example there are no other threads. So no other thread can change the two variables. –  skwllsp Oct 14 '11 at 10:03
    
I have found a discussion about the same topic here: social.msdn.microsoft.com/Forums/pl-PL/parallelcppnative/thread/…. The summary: "On Windows platforms, InterlockedXxx functions have full fence semantics". So it means that only one InterlockedExchange is necessary (the second one). It guarantees that all modifications before InterlockedExchange correctly seen by other threads. –  skwllsp Oct 14 '11 at 10:08
    
@skwllsp: the MS example is meant to apply to systems with two or more threads of execution. yes, the barrier from an interlocked stops reordering and serializes all writes (as I mentioned in my answer, they use interlocked, aka bus locks to globalize writes), but it still does not prevent an interruption between the two writes, and you need both interlocked to make the writes atomic & visible without MFENCE, as they plainly state in the article, under 'Fixing a Race Condition'. That other article also plain states that not every system fences interlocks implicitly. –  Necrolis Oct 14 '11 at 10:36

You simply get an atomic operation with InterlockedExchange. Why you need it? Cause InterlockedExchange does 2 things.

  1. Replaces a value of variable
  2. Returns an old value

If you do the same things in 2 operations (Thus first check value then replace) you can get screwed if other instructions (on another thread) occur between these 2.

And you also prevent data races on this value. here you get a good explanation why read/write on a LONG is not atomic

share|improve this answer
    
All the InterlockedExchange examples in the OP's code do is #1. The returned value is discarded –  jalf Oct 7 '11 at 11:38
1  
Oleg is right. Relying on proper alignment, the size of a defined type, and the behavior of the underlying hardware is absolutely terrible code that will someday be somebody's debugging headache. +1 –  Carey Gregory Oct 7 '11 at 17:39
1  
@Oleg: most common CPU architectures (x86 included) has cache coherence between cores, so you will see the value updated on all cores or not at all. And looking at the code, the first value is not intended to be used until the second one has also been updated. A single memory barrier will flush both writes, and there is no need for the first one to be flushed before the second has been updated –  jalf Oct 7 '11 at 19:46
2  
@jalf: I thoroughly disagree. Unless you're writing device drivers you shouldn't be assuming much of anything about hardware, and you certainly shouldn't be relying on a whole set of assumptions that may or may not be true with another platform, compiler, data item size, or OS. In a multithreaded app, operations on shared objects that need to be atomic require mutex protection from either the OS or compiler. Relying on quirks of the hardware is very poor practice. –  Carey Gregory Oct 7 '11 at 21:33
1  
@jalf, I think the issue is what happens if your code is recompiled in ten years on a different architecture. If you've used InterlockedExchange, it will still work. If not, all bets are off. –  Harry Johnston Oct 7 '11 at 23:38

There are two plausible resolutions to the contradiction you've observed.

One is that the second document is simply wrong in that particular respect. It is, after all, a draft. I note that the example you refer to specifically states that the programmer cannot rely on the writes to be atomic, which means that both writes must indeed be interlocked.

The other is that the additional interlock might not actually be required in that particular example, because it is a very special case: only a single bit of the variable is being changed. However, the specification being developed doesn't appear to mention this as a premise, so I doubt that this is intentional.

share|improve this answer

I think this discussion has the answer to the question: Implicit Memory Barriers.

Question: does calling InterlockedExchange (implicit full fence) on T1 and T2, gurentess that T2 will "See" the write done by T1 before the fence? (A, B and C variables), even though those variables are not plance on the same cache-line as Foo and Bar ?

Answer: Yes -- the full fence generated by the InterlockedExchange will guarantee that the writes to A, B, and C are not reordered past the fence implicit in the InterlockedExchange call. This is the point of memory barrier semantics. They do not need to be on the same cache line.

Memory Barriers: a Hardware View for Software Hackers and Lockless Programming Considerations for Xbox 360 and Microsoft Windows are also insteresting.

share|improve this answer

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.