If you have a pool of 8 friends and can only choose 5 to go camping, how many possible groups could you bring?

What if two friends don't like each other and you couldn't bring them together?

69...lol.
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Originally posted by turtleman
A normal person wouldn't say that in real life because it's ridiculous and insulting. Yet here you are spouting the most hateful garbage that your demons can muster out of your darkened soul. All because of the internet.

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It's over 9000.

36

Possible ways to choose without extra condition is just 8C5 = 8! / (3! 5!) = 56

Let us call the two quarreling friends "the bitches", for ease of notation. These 56 possibilities split up into 3 disjoint cases depending on the number of bitches chosen. Define the following numbers:

a := # of groups with 0 bitches
b := # of groups with 1 bitch
c := # of groups with 2 bitches

Then 56 = a + b + c, and we are just interested in 56 - c, in words the number of choices involving only 1 or 0 bitches so that they don't ruin the whole damn trip. To find c, it's the same as counting the number of ways of selecting any 3 additional people out of the 6 non-bitches, or c = 6C3 = 6! / (3! 3!) = 20. Thus we have 36 options.
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Wartoo

i was deliberating and came to the same, 36.

but then i wondered if this is a trick question, it is certainly not clarified.

the question is wether the possible groups must be of 5, or can be smaller.. say, if so... the possibilities are obviously higher (not as high as 9000 of course lol)
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http://phoenixtears.ca/

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"i don't have pet peeves, i have major psychotic fucking hatreds"

I have no fucking clue. I am horrible at Mathematics.
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Bonus question:

Suppose you have 8 friends still. Suppose every person has exactly two enemies which they will not go with, and the hate is mutual. Suppose also that you can't even select 4 or more friends to go without bringing enemies. How many options do you have if you want to bring 3?
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Wartoo

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Originally posted by smurf_king

i rather be a pedophile than a homo

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quote:

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Originally posted by Bobbo
Bonus question:

Suppose you have 8 friends still. Suppose every person has exactly two enemies which they will not go with, and the hate is mutual. Suppose also that you can't even select 4 or more friends to go without bringing enemies. How many options do you have if you want to bring 3?

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quote:

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Originally posted by Jon;

quote:

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Originally posted by Bobbo
Bonus question:

Suppose you have 8 friends still. Suppose every person has exactly two enemies which they will not go with, and the hate is mutual. Suppose also that you can't even select 4 or more friends to go without bringing enemies. How many options do you have if you want to bring 3?

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why are so many enemies going on a camping trip

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Originally posted by Bobbo
36

Possible ways to choose without extra condition is just 8C5 = 8! / (3! 5!) = 56

Let us call the two quarreling friends "the bitches", for ease of notation. These 56 possibilities split up into 3 disjoint cases depending on the number of bitches chosen. Define the following numbers:

a := # of groups with 0 bitches
b := # of groups with 1 bitch
c := # of groups with 2 bitches

Then 56 = a + b + c, and we are just interested in 56 - c, in words the number of choices involving only 1 or 0 bitches so that they don't ruin the whole damn trip. To find c, it's the same as counting the number of ways of selecting any 3 additional people out of the 6 non-bitches, or c = 6C3 = 6! / (3! 3!) = 20. Thus we have 36 options.

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No tricks in the question. I found the original question (without the bitches) to be a peculiar number (56) that can be reached many ways, and was wondering if anyone might reason it differently.

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Originally posted by Bobbo
Bonus question:

Suppose you have 8 friends still. Suppose every person has exactly two enemies which they will not go with, and the hate is mutual. Suppose also that you can't even select 4 or more friends to go without bringing enemies. How many options do you have if you want to bring 3?

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So hating is mutual:
(A hates B) implies (B hates A)

But hating is NOT transitive, meaning:
(A hates B) & (B hates C) does not imply that (A hates C)

Otherwise you are right and we'd need the number of people to be a multiple of 3, so I'm guessing this is what you were thinking?

You'd just need to have "hate loops" of length at least 3 people. If you made a graph with vertices corresponding to the people and edges corresponding to hate, this just says that every vertex has exactly two edges coming out of it (and at most one edge can join each pair of vertices). Thus we get a disjoint union of circuits or hate loops which have to have at least 3 people in them like you point out. But you could have 4,5,6,7, or 8 people in each one.
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Wartoo

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Originally posted by x
If you have a pool of 8 friends and can only choose 5 to go camping, how many possible groups could you bring?

What if two friends don't like each other and you couldn't bring them together?

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Originally posted by Sypher

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Originally posted by x
If you have a pool of 8 friends and can only choose 5 to go camping, how many possible groups could you bring?

What if two friends don't like each other and you couldn't bring them together?

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lol like u really have 8 friends.

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This forum is really one of the last true wilderness forums on the internet. Anything goes. Its like a FFA !
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Dude bobbos pic ROFL, so good, I have watched it over 1000 times
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invest in bitcoins

are u interested in topology bobbo
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"i don't have pet peeves, i have major psychotic fucking hatreds"

Yeah definitely. Topology is a uniting force throughout basically every area of math, from the purest to the most applied. Why do you ask? Are you interested in becoming a topologist?
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Wartoo

trying to create a worm hole
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"i don't have pet peeves, i have major psychotic fucking hatreds"

LOL well I guess topology will help with that. In case you weren't joking, I'd recommend these two books if you want to teach yourself some stuff:

http://www.amazon.com/Topology-2nd-Edition-James-Munkres/dp/0131816292 (best introduction to the subject ever)
http://www.amazon.com/basic-course-algebraic-topology-127/dp/038797430X (excellent follow-up and gets a little more abstract, into deeper topics of cohomology/homology theories)

Allen Hatcher has a widely-used text which would be a great 3rd step, but his book is not nearly as well-written as the above two (which are perfect for self-teaching). Hatcher's book is a little intense and sloppy at times.
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Wartoo

lol
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i zero bagged your mother

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Originally posted by Fast Luck
hassan-i-asher: majorin in takin pictures
dreamin bout wayne from catalina wine mixers
listen little friend stay outta the deep end
cuz you're less street than vampire weekend

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Wow, this dog can do everything.
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Originally posted by turtleman
A normal person wouldn't say that in real life because it's ridiculous and insulting. Yet here you are spouting the most hateful garbage that your demons can muster out of your darkened soul. All because of the internet.

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quote:

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Originally posted by x
If you have a pool of 8 friends and can only choose 5 to go camping, how many possible groups could you bring?

What if two friends don't like each other and you couldn't bring them together?

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Lol Messiah copy and pasted Bobbos work to try and look smart
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Originally posted by 7VlesSiah

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Originally posted by x
If you have a pool of 8 friends and can only choose 5 to go camping, how many possible groups could you bring?

What if two friends don't like each other and you couldn't bring them together?

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8 C 5 = ogrerush

6C4 +6C4 +6C5 = ogrerush

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Originally posted by Shotgun_

quote:

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Originally posted by 7VlesSiah

quote:

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Originally posted by x
If you have a pool of 8 friends and can only choose 5 to go camping, how many possible groups could you bring?

What if two friends don't like each other and you couldn't bring them together?

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8 C 5 = ogrerush

6C4 +6C4 +6C5 = ogrerush

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quote:

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Originally posted by smurf_king

i rather be a pedophile than a homo

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