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For the following no-op code,

public class a {
public static void main(String args[]) throws Exception{
Thread.sleep(100000);
}
}

If I run it on a 64-bit jvm, through "top" I can see that it uses 2GB virtual memory. What is taking up that virtual memory? This example may be weird, but we do see some production code that uses a lot of virtual mem so that it exceeds ulimit -v

Thanks Yang

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1  
See this question. Virtual memory consumption is pretty much meaningless. –  ig0774 Jan 11 '12 at 0:29

2 Answers 2

When you start a Java application it creates its heap (to its maximum size) on start up. The default size for recent Sun/Oracle JVMs is 1/4 of your main memory. This sounds wasteful, except all it does is reserve address space. Given each application has its own address space, this doesn't matter much. (unless you have a 32-bit JVM with limited address space)

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Virtual memory does not mean that it is actually allocated and being used. It simply means it has that much currently addressable for use if need be.

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I know, but for what has it mapped in ?? the binary itself plus the libraries are not that big. –  teddy teddy Jan 11 '12 at 0:38
    
"doesn't not" - I'm pretty sure you didn't intend the double negative here. I'd fix it myself but I'm not quite to 2k rep yet –  Kevin K Jan 11 '12 at 0:58
    
@KevinK Thanks, fixed. –  Benoit Jan 11 '12 at 0:59
    
@user933882 It's just mapped in case it's necessary. On a 64-bit machine, the virtual address space is huge, so it doesn't really matter if a 2GB block gets mapped to a process. –  Benoit Jan 11 '12 at 1:01
    
ok I found this discussion stackoverflow.com/questions/1477885/… pmap shows: 00000000901d0000 1195584 rw--- 0000000000000000 000:00000 [ anon ] 00000000d9160000 39808 rw--- 0000000000000000 000:00000 [ anon ] so looks just to be a JVM implementation behavior. –  teddy teddy Jan 11 '12 at 1:20

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