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Consider a logical address space of 64 pages of 1,024 words each, mapped onto a physical memory of 32 frames.

64 = 2^6

1024 = 2^10

32 frames 2^5

a. How many bits are there in the logical address?

2^10 * 2^3 = 2^13

b. how many bits are there in the physical address?

2^10 * 2^5 = 2^15

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looks like homework? –  Mitch Wheat Dec 12 '10 at 7:35
    
I'll just throw in some hints here. Would you want the memory to be word-addressable or byte-addressable? This will seriously affect the address size. To determine the amount of bits needed, you have to factor in the bits required to address the appropriate page and the byte (or word) within the page. –  Jeff Mercado Dec 12 '10 at 7:42
    
wp.mykau.com/?p=191 –  Martin v. Löwis Dec 12 '10 at 9:40

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