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I'm working on a 32-bit windows application that can occasionally run out of memory (the 2GB of virtual address space). When I look at how the virtual memory is allocated using WinDbg or VMMap, I notice a dll image that is taking 85 MB of vitual memory space. To be specific, 84 MB of this is in the ".data" section, and has "Copy on write" protection. When I look on the harddrive, however, the dll is only 81 KB.

How could the dll image be over 1000 times larger in virtual address space than on disk? Note that I am only asking about the "Image", not the heaps or stacks, or mapped memory, just the image - I realize that of course the heaps, stacks, mapped memory, etc. will be additional.

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1 Answer 1

up vote 5 down vote accepted

Try creating an empty .dll and add this at file scope:

char global_stuff[84*1024*1024];

That should declare an entry in the .bss section. That is a section in the image that defines zero initialized data. Since that data is initialized to zero, it is a fairly simple optimization to just declare how big it should be when running instead of storing a bunch of zeros on disk.

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I added global_stuff, exactly as above, but it didn't affect the .data section of the dll. When I run dumpbin on the dll, I see that the .data is 52DB00 (or 86,880,256 bytes in decimal). It didn't change when I added global_stuff. –  Sean Nov 19 '10 at 18:13
    
@Sean, did you run dumpbin on the 84k .dll as well? –  MSN Nov 19 '10 at 18:30
    
I originally tried on an exisiting dll, and I didn't see a difference. Now that I try on an empty dll, as you suggested, I see what you are saying. I accept your answer. –  Sean Nov 19 '10 at 18:38

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