| Title: | Mathematics at DEC |
| Moderator: | RUSURE::EDP |
| Created: | Mon Feb 03 1986 |
| Last Modified: | Fri Jun 06 1997 |
| Last Successful Update: | Fri Jun 06 1997 |
| Number of topics: | 2083 |
| Total number of notes: | 14613 |
Here's an interesting and yet practical word problem:
A customer buys 2 SA482's (SA482 = 4 x RA82). He uses volume shadowing
to shadow each unit of the first SA482 with each correponding unit
od the second. He then mounts all 4 shadow volumes and binds them
together into one large logical volume.
Q: What is the Mean Time to Service Failure (MTSF)?
Assume:
-- That Mean Time to Unit Failure (MTUF) = MTBF of an RA82
= 24 months = 720 days.
-- That if a unit fails that it can be serviced without affecting
any other units.
-- That if a unit fails that the mean time to complete restoration
of the unit is 2 days.
-- Barry
| T.R | Title | User | Personal Name | Date | Lines |
|---|---|---|---|---|---|
| 653.1 | SSDEVO::LARY | Wed Jan 21 1987 02:43 | 16 | ||
I believe an exact solution to this problem requires using Markov Chains, which I am thoroughly incompetent in, so here's an inexact solution; it will be interesting to see how close the exact solution is. With 8 RA81's you will get a failure every 90 days on the average. Only the failure of both members of a shadow pair produces a failure, and the chance of that specific drive failing during the 2 day repair period is 1/360, so you will get a Service Failure once in 360*90 days or around once every 89 years. If you keep a spare drive in your back pocket and wheel it into place when the failure is detected, reducing the down time (but not the repair time) to 3 hours, the answer goes to 1420 years and becomes even more inexact; the Markov Chain problem also becomes more complicated. Anyone have a solution to that one, too? | |||||