HSC 2015 MX2 Permutations & Combinations Marathon (archive) (2 Viewers)

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Drsoccerball

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Re: 2015 permutation X2 marathon

Braintic that new font you use is dope :O how do you use it
 

seanieg89

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Re: 2015 permutation X2 marathon

Nope, for this particular question we don't need calculus, although calculus will certainly generalise better.

The same method you proposed should work for the sphere should it not?

 
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braintic

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Re: 2015 permutation X2 marathon

Nope, for this particular question we don't need calculus, although calculus will certainly generalise better.

The same method you proposed should work for the sphere should it not?

Are you trying to map [0,1] to [0,pi/2] ?
Because t=1 leads to arccos(-1).
Did you mean 2π (not 4π) ?

I shouldn't have said 'spherical cap'. I meant 'spherical segment'.
It seems that the area of the surface of a segment between the equator and a latitude phi is:



(I wasn't using this formula before - I only just discovered it)

So I'm now getting:



 

braintic

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Re: 2015 permutation X2 marathon

Braintic that new font you use is dope :O how do you use it
I'm not sure whether "dope" is a good or bad thing. It doesn't sound good.

All I'm doing is changing the font and font size using the menu at the top of the reply box.
 

InteGrand

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Re: 2015 permutation X2 marathon

I'm not sure whether "dope" is a good or bad thing. It doesn't sound good.

All I'm doing is changing the font and font size using the menu at the top of the reply box.
I didn't think it sounded good either on first hearing, but I realised it probably was from the ":O how do you use it" part.
 

seanieg89

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Re: 2015 permutation X2 marathon

Are you trying to map [0,1] to [0,pi/2] ?
Because t=1 leads to arccos(-1).
Did you mean 2π (not 4π) ?

I shouldn't have said 'spherical cap'. I meant 'spherical segment'.
It seems that the area of the surface of a segment between the equator and a latitude phi is:



(I wasn't using this formula before - I only just discovered it)

So I'm now getting:



No, I am mapping [0,1] to [0,pi], the full sphere (hence the normalisation by 4pi rather than 2pi).

Your new formula is equivalent to mine, (as one might guess from their similar forms), you are just basing yours at the origin as opposed to mine which was based at the north pole.

There are lots of ways to map a rectangle to a sphere in a way that does not distort area.

(Also note that it makes no difference to consider spherical caps vs spherical segments, as passing between the formulae for these guys is straightforward.)
 
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braintic

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Re: 2015 permutation X2 marathon

No, I am mapping [0,1] to [0,pi], the full sphere (hence the normalisation by 4pi rather than 2pi).

Your new formula is equivalent to mine, (as one might guess from their similar forms), you are just basing yours at the origin as opposed to mine which was based at the north pole.

There are lots of ways to map a rectangle to a sphere in a way that does not distort area.

(Also note that it makes no difference to consider spherical caps vs spherical segments, as passing between the formulae for these guys is straightforward.)
Thanks for that. I hope you don't mind if I stick with my version - it seems a little more intuitive - I can practically "see" it. In fact, I am wondering if there is a geometric connection to Archimedes' result.
 

seanieg89

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Re: 2015 permutation X2 marathon

Thanks for that. I hope you don't mind if I stick with my version - it seems a little more intuitive - I can practically "see" it. In fact, I am wondering if there is a geometric connection to Archimedes' result.
Of course I don't mind :), everyone has their own ways of seeing things and it is a quite trivial matter to pass between the two in this case.

There are several differing conventions for spherical coordinates even without the modification to preserve area.

If you are referring to http://mathworld.wolfram.com/ArchimedesHat-BoxTheorem.html this theorem is just equivalent to the fact that specifying a longtitudinal coordinate and a perpendicular height above the equator z is another way of mapping a rectangle to the sphere in a way that does not distort area.
 
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braintic

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Re: 2015 permutation X2 marathon


A man has $1 to his name.
Every day he either gains $1 (with probability p) or loses $1 (with probability 1-p).
This stops if and when he goes broke.

Find, as a function of p, the probability P that the man will eventually go broke.
 

Drsoccerball

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Re: 2015 permutation X2 marathon


A man has $1 to his name.
Every day he either gains $1 (with probability p) or loses $1 (with probability 1-p).
This stops if and when he goes broke.

Find, as a function of p, the probability P that the man will eventually go broke.
 

braintic

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Re: 2015 permutation X2 marathon

Not correct ... but at least it is a sensible answer - it gives you what you would expect for p=0 and p=1.

I can't comment further without working or some idea of what you were thinking.
But ... it's bed time for me.
 

Paradoxica

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Re: 2015 permutation X2 marathon


A man has $1 to his name.
Every day he either gains $1 (with probability p) or loses $1 (with probability 1-p).
This stops if and when he goes broke.

Find, as a function of p, the probability P that the man will eventually go broke.
I got

(Sum goes over the set of positive integers, if you were confused)

I don't know how to prove this, and I don't know how to clean this up into a nice closed expression.
 

InteGrand

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Re: 2015 permutation X2 marathon

Not correct ... but at least it is a sensible answer - it gives you what you would expect for p=0 and p=1.

I can't comment further without working or some idea of what you were thinking.
But ... it's bed time for me.
 

Drsoccerball

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Re: 2015 permutation X2 marathon

I got

(Sum goes over the set of positive integers, if you were confused)

I don't know how to prove this, and I don't know how to clean this up into a nice closed expression.
What I did was him being bankrupt on the :

First day : (1-p)

third day: p(1-p)^2

fifth day: p^2(1-p)^3
...

And i summed the series and got my answer ?
 

Paradoxica

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Re: 2015 permutation X2 marathon

What I did was him being bankrupt on the :

First day : (1-p)

third day: p(1-p)^2

fifth day: p^2(1-p)^3
...

And i summed the series and got my answer ?
That's not correct. There is more than one way to lose after the first 3 days. He could gain a bit more, like say 3 and then drop back down to zero. All these possible paths must be taken into account. Draw an arbitrarily long checkerboard, cut it at the main diagonal, and construct your infinite tree diagram on that. You will see what I mean, as the further out you go from the beginning, the more ways there are to lose. Your approach is naive, and would most likely score 0 marks. I considered your approach until I drew my own tree diagram.
 

InteGrand

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Re: 2015 permutation X2 marathon

What I did was him being bankrupt on the :

First day : (1-p)

third day: p(1-p)^2

fifth day: p^2(1-p)^3
...

And i summed the series and got my answer ?








 
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Zlatman

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Re: 2015 permutation X2 marathon

I had something similar to this, except I think that



assumes that you can be broke or have negative dollars, and the game will continue. Instead, I had:



for each term.

I'll post a picture of the tree diagram and the working out I had, and hopefully it makes some sense.

http://imgur.com/a/ZOeCv
 
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InteGrand

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Re: 2015 permutation X2 marathon

I had something similar to this, except I think that



assumes that you can be broke or have negative dollars, and the game will continue.
Oh right, that's why my series method wasn't working.
 
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braintic

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Re: 2015 permutation X2 marathon

Although this is related to series, you don't need to sum an unspecified or infinite number of terms.

No solution yet, but I'll give the answer:

For p ≤ 1/2, the answer is 1 (as Integrand already suggested)

For p > 1/2, the answer is

The only thing I will say at the moment is that they are the solutions to a quadratic equation.
 
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