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I am having problem understanding the following text,

8088 supports 1 Mbyte of external memory. This memory space is organized from a software point of view as individual bytes of data stored at consecutive address over the address range 00000 to FFFFF.

Now I don't get how the author converted from 1 Mbyte to FFFFF. Can anyone please help me out?

Thanks.

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2 Answers 2

up vote 4 down vote accepted

1 Megabyte is 2^20. That means that you need 20 bits to represent it. The range 00000-FFFFF holds all possible values of 20 bits.

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Thanks. Got it. –  Fahad Uddin Apr 16 '12 at 12:19

It is well explained in pages describing the 8086 (the 8088 has the same instruction set architecture, but with slightly different pins).

Basically a segment register gave a (16 bits) base address which was multiplied by 16, then an 16 bits offset was added.

And 0xfffff is 220-1, i.e. 1048575

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