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I've declared a volatile array of node based data structures.

volatile Node[] name;

For the most part, I don't need each individual node to be volatile because I update the entire array when it needs to be updated.

name = new array of nodes;

Rarely, I will need to update a field inside a specific node of the array, but no other thread will need to read this field for at least several minutes. Can I assume that at this point, whatever change I've made would be visible to other threads?

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If I need access to the fields within the node/object to be volatile, is it sufficient to declare those fields as volatile or do I also need to declare the node/object as volatile? –  lgp Jul 10 '11 at 23:44

2 Answers 2

up vote 1 down vote accepted

In the case you describe, the volatile keyword on name doesn't come into play at all. Your use of volatile will only be relevant on reads from and writes to name, neither of which are done when accessing some field of some element in name.

If you need to read guarantees on some field in some element of name, you really need to make that field volatile.

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with that field volatile, does it matter that the element containing the field is not volatile? –  lgp Jul 10 '11 at 21:59
    
-1 This is not true. writes before the write to volatile are visible to reads that occur after a subsequent read of the volatile. As long he doesn't change the elements in the array outside these circumstances, there's no problem. However, he says he does, but the reads and writes are separated by several minutes. Such a program is definitely not correct, but whether in practice he'll have problems I don't know. –  Artefacto Jul 10 '11 at 22:03
    
@Artefacto: I'm not sure which part you're saying isn't true. I was saying that slapping a volatile on name doesn't synchronize memory access to fields of elements of name. The happens before invariant you mention does occur, but I fail to see how its relevant at all here since the write and read of some field of an element of name don't appear related to the write to name. They could both happen after. Can you be a bit more specific with your reason for downvoting? –  Mark Peters Jul 10 '11 at 22:43
    
Oh I think I see where you're coming from. When I said "volatile only makes guarantees on reads and writes to name" what I meant was its effect only comes into play when reading from or writing to name. I didn't mean to imply that the memory synchronization that you describe doesn't occur, though if my memory serves that was added with 1.5, long after the volatile keyword was added to the language. –  Mark Peters Jul 10 '11 at 22:49
1  
@Mark Reading an element of the array (through the array) implies reading the array. For instance, CopyOnWriteArrayList relies on this (check its implementation). –  Artefacto Jul 10 '11 at 22:50

in this case volatile refers only to reference to array, not to its items
when (as you said) no other thread will need to read this field for at least several minutes there is very small risk, but still it exists

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if whatever thread that updated the field died, will the changes that the thread made get flushed to "main memory"? –  lgp Jul 10 '11 at 22:57

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