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I am using gcc in linux. I have declared two array 1 MB and 4KB size. I am able to generate the virtual addresses for both arrays. Now I want to calculate the virtual address to physical address mapping ( VPN --> PFN ) and then calculating Physical address to cache set no mapping.

for the first part , I have gone through /proc/pid/maps and /proc/pid/pagemap , but it confusing. I am unable to understand and figure out the VPN-PFN for both array one by one from that file.

here is my content of the file /proc/pid/maps

00602000-00625000 rw-p 00000000 00:00 0                                  [heap]
34d7a00000-34d7a22000 r-xp 00000000 08:01 6037385                        /lib64/ld-2.14.90.so
34d7c21000-34d7c22000 r--p 00021000 08:01 6037385                        /lib64/ld-2.14.90.so
34d7c22000-34d7c23000 rw-p 00022000 08:01 6037385                        /lib64/ld-2.14.90.so
34d7c23000-34d7c24000 rw-p 00000000 00:00 0 
34d7e00000-34d7fad000 r-xp 00000000 08:01 6037386                        /lib64/libc-2.14.90.so
34d7fad000-34d81ad000 ---p 001ad000 08:01 6037386                        /lib64/libc-2.14.90.so
34d81ad000-34d81b1000 r--p 001ad000 08:01 6037386                        /lib64/libc-2.14.90.so
34d81b1000-34d81b3000 rw-p 001b1000 08:01 6037386                        /lib64/libc-2.14.90.so
34d81b3000-34d81b8000 rw-p 00000000 00:00 0 
7ffff7ed8000-7ffff7fdc000 rw-p 00000000 00:00 0 
7ffff7ff8000-7ffff7ffe000 rw-p 00000000 00:00 0 
7ffff7ffe000-7ffff7fff000 r-xp 00000000 00:00 0                          [vdso]
7ffffffde000-7ffffffff000 rw-p 00000000 00:00 0                          [stack]
ffffffffff600000-ffffffffff601000 r-xp 00000000 00:00 0                  [vsyscall]

Location of 1MB array is 0x7ffff7ed8010 - 0x7ffff7fd800f ( & Array1[0] -- &Array[N-1]) LOcation of 4KB array is 0x602010 - 0x60400f ( & Array2[0] -- &Array[P-1])

Can anyone help me to figure out , what is the corresponding entry for the 1MB array and 4KB array.

Note : from /proc/cpuinfo I got to know, in my system 48bit virtual address space, 36 bit physical address space.

Thank you in advance.

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You should not care at which physical RAM address is your data: the kernel is permitted to move it (e.g. by swapping out and swapping in some parts of it) at any time! Why do you ask? – Basile Starynkevitch Oct 25 '13 at 19:03
    
maps mostly makes sense for mmap'ed files, pagemap should be more helpful. – Joachim Isaksson Oct 25 '13 at 19:07

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