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perms/combs q (1 Viewer)

scardizzle

Salve!
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166
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Rwanda
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HSC
2010
Eight people attend a meeting. They are provided with 2 circular tables, one seating 3 people, the other seating 5.

i) How many arrangements are possible?

ii) If the seating is done randomly, what is the probability that a particular couple are on a different table?

for (i) i did this:

choose 3 people from 8 x no. of arrangements for each table

= 8C3 x 2! x 4!

but the answers say the solution is 8!/(3!5!)

???

also for ii) P(not sitting together) = 1 - P(sitting together)

1- [ 2C2 x 6C1 x 2! x 4! + 2C2 x 6C3 x 2! x 4!]/answer (i)

and this is wrong as well

so what am i doing wrong?
 
K

khorne

Guest
For the first one, they are just arranging 8 people around both tables (at the same time) and then canceling repetitions at both tables by dividing by 3 and 5
 
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scardizzle

Salve!
Joined
Aug 29, 2008
Messages
166
Location
Rwanda
Gender
Male
HSC
2010
but why are there 3! x 5! repetitions?

and also why is my method incorrect?
 
K

khorne

Guest
I edited original post...Shouldn't be factorial...just 3 and 5, which makes your method correct also...Nothing wrong with it.
 

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