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I know this is the simple quiz though I still have some questions. Calculate page table's size from 32-bit virtual address, 4KB page size, 4 bytes per page table entry.

First, calculate number of pages = virtual address's size / page's size = (2^32) byte/(4x2^10) byte = 2^20 pages

Second, calculate page table's size = number of pages x number of page table entry = (2^20) x 4 byte = 4MB

The question is why virtual address's size = 2^32 byte ? Isn't it 2^32 / 8 byte? because 1 byte = 8 bits. My understand is it's need to convert from bit to byte so it should be (2^32) / 8 bytes Why 32 bit = 2^32 byte ? Isn't 32 bit = 4 bytes?

Anyone please help me :)

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Is this homework? If so, consider tagging the question with homework :) –  Morten Jensen Mar 6 '14 at 16:50
    
32-bits can be represented in 4 bytes, yes. However it spans a range from 0 to 2^31-1 bytes. Remember each address is a byte. –  ErstwhileIII Mar 6 '14 at 16:52
    
sorry, i cannot find tag 'homework' –  user1773604 Mar 6 '14 at 16:53
    
Erstwhilelll why each address is a byte, i understand that each address = 4 bytes –  user1773604 Mar 6 '14 at 17:00

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