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Official BOS Trial 2016 Thread (1 Viewer)

RCbest

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Yeeeee boiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiiii
 

Drsoccerball

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For those who can't do the question here is what i did (may be wrong) :

a) First we choose k numbers out of the n and the out of the remaining n - k numbers we chose m - k of them since total selected is m.



b) Consider all possible combinations. Firstly if bob selects 0 cards, then when bob selects 1 card, , and so on up to when he picks all m.








[]
 
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Carrotsticks

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For those who can't do the question here is what i did (may be wrong) :

a) First we choose k numbers out of the n and the out of the remaining n - k numbers we chose m - k of them since total selected is m.



b) Consider all possible combinations. Firstly if bob selects 0 cards, then when bob selects 1 card, , and so on up to when he picks all m.






EDIT: So first we pick the m cards and then decide whether or not to put them in one of two places.
[]
Mostly correct, except the last line should have the 2's multiplied instead of added. Well done.
 

leehuan

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EDIT: So first we pick the m cards and then decide whether or not to put them in one of two places.
[]
Ahh that was basically what I was thinking :)

I just wasn't so sure about it, especially how to word it
 

Yunsar

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Alternative method for part b:

 
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Carrotsticks

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A bit heavy for two marks though.
The two marks was aimed at the combinatoric proof. If students could not see how to prove it combinatorically, I gave them the option of proving it from scratch algebraically (as you did). A bit more work than for 2 marks, yes. But better than receiving no marks because they are forced to use only one technique.
 

Trebla

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A bit heavy for two marks though.
Not really if you argue how the result holds in terms of the arrangements in the question.

Even then, algebraically you just need to show is that

 

Yunsar

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Not really if you argue how the result holds in terms of the arrangements in the question.

Even then, algebraically you just need to show is that

Nice work. Certainly quicker than the approach I showed previously.
 

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