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Lets say we have an average of one page fault every 20,000,000 instructions, a normal instruction takes 2 nanoseconds, and a page fault causes the instruction to take an additional 10 milliseconds. What is the average instruction time, taking page faults into account?

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seem like a homework? –  Aziz May 25 '09 at 22:47
    
Sounds like homework to me. –  Noldorin May 25 '09 at 22:47
    
Someone needed to ask this question here? Really? –  Paul Sonier May 25 '09 at 22:49
    
There is a FAQ entry on the "Homework" problem. No clear consensus last time I looked. stackoverflow.com/questions/230510/homework-on-stackoverflow –  dmckee May 25 '09 at 23:01
    
I just found it: stackoverflow.com/questions/230510?sort=votes#sort-top The majority opinion includes "Try to give suggestions that will lead the asker in the correct direction rather than providing a ready-made answer." –  ChrisW May 25 '09 at 23:04

4 Answers 4

up vote 2 down vote accepted

20,000,000 instructions, one of them will page-fault

Therefore, the 20,000,000 instructions will take

  (2 nanoseconds * 20,000,000) + 10 milliseconds

get the result (which is the total time for 20,000,000 instructions), and divide it by the number of instructions to get the time-per-instruction.

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What is the average instruction time, taking page faults into account?

The average instruction time is the total time, divided by the number of instructions.

So: what's the total time for 20,000,000 instructions?

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2.5 nanoseconds? Pretty simple arithmetic, I guess.

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If 1 in 20,000,000 instructions causes a page fault then you have a page fault rate of:

Page Fault Rate = (1/20000000)

You can then calculate your average time per instruction:

Average Time = (1 - Page Fault Rate) * 2 ns + (Page Fault Rate * 10 ms)

Comes to 2.5 ns / instruction

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