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User space's layout in process address space is well known, they take 1G ~ 4G of virtual memory (32 bit os) and consists of data (bss), stack, heap area. But, I cannot find kernel space's layout.

I wonder like theses:

when vfs(virtual file system) code get memory via kmalloc, where does memory reside in? somewhere in kernel space( ~ 1G)? and how locate them later?

thanks

  • I think you could just ask this from any search engine and get plenty of reasonably reliable responses like this. – Sami Laine Sep 19 '14 at 10:14
  • Linux displays the memory layout during boot. Try dmesg. It can vary from version to version. There are also proc files like /proc/vmalloc, etc which tell you were some entries are. As is, you question is too broad or has a mis-understanding. kmalloc() for the VFS will come for the same pool as pretty much any kmalloc(). .config options, kernel version, etc will change the answer. – artless noise Sep 19 '14 at 16:30
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Typically, the address above 3G (0xC0000000) are reserved by kernel-space. You may change this during kernel configuration process.

Check this, all symbols that kernel exported are laying at address more than 0xC0000000. Just run 'sudo cat /proc/kallsyms | head -n 10' you'll see them.

Now for your question. I think you actually can find out the answer yourself, by printing the given address (that kmalloc returned) for example. Or even use the macro from kernel to translate physical address to virtual and vice versa.

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