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HSC 2012 MX1 Marathon #1 (archive) (1 Viewer)
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Nooblet94
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Re: 2012 HSC MX1 Marathon
Not entirely happy with the way I've worded this, but it's late and I'm tired.
EDIT: Just realised something - That's not always the case:
Feel free to correct me if I'm wrong, which I might well be.
Not entirely happy with the way I've worded this, but it's late and I'm tired.
EDIT: Just realised something - That's not always the case:
Feel free to correct me if I'm wrong, which I might well be.
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Carrotsticks
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Re: 2012 HSC MX1 Marathon
It seems like you used the proof from the question to prove itself.
Nooblet94
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Re: 2012 HSC MX1 Marathon
EDIT: I'm going to bed, I'll check back here when I get home tomorrow.
I can't see how... can you please elaborate?
EDIT: I'm going to bed, I'll check back here when I get home tomorrow.
Carrotsticks
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Re: 2012 HSC MX1 Marathon
However, you used this theorem to answer the question.
An immediate result from the original question is that the angle subtended from the centre is twice the angle at the arc.
However, you used this theorem to answer the question.
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Re: 2012 HSC MX1 Marathon
What the question is essentially asking is to prove the 'converse' of the well known circle geometry theorem that if C is the centre of the circle passing through by A, B and D then angle ACB is twice of angle ADB (the proof of which is far simpler).
i.e. Prove that if angle ACB is twice of angle ADB and AC = BC (which is a necessary condition) then C is the centre of the circle passing through A, B and D. Assume that C and D are on the same side of AB.
In the case where C and D are on opposite sides of AB, the result is true when you compare the reflex angle ACB to ADB.
Not entirely happy with the way I've worded this, but it's late and I'm tired.
EDIT: Just realised something - That's not always the case:
View attachment 24267
Feel free to correct me if I'm wrong, which I might well be.
What the question is essentially asking is to prove the 'converse' of the well known circle geometry theorem that if C is the centre of the circle passing through by A, B and D then angle ACB is twice of angle ADB (the proof of which is far simpler).
i.e. Prove that if angle ACB is twice of angle ADB and AC = BC (which is a necessary condition) then C is the centre of the circle passing through A, B and D. Assume that C and D are on the same side of AB.
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largarithmic
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Re: 2012 HSC MX1 Marathon
You can do this sort of thing and make it be perfectly valid - its called "reverse reconstruction". You need to be a bit careful though about the uniqueness of points and such (nooblet94's proof isnt actually right because of things lying on different sides of lines).
Nooblet94
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Re: 2012 HSC MX1 Marathon
But that theorem is easily proved without assuming the result of the question is true. I would've proved it in my answer but (as far as I'm aware) that result is assumed knowledge for the HSC Course.
Not entirely sure what you mean by that. As far as I can see, the point C in my diagram satisfies the conditions of the question -angle ACB = 2angle ADB and is equidistant from A and B - but isn't the centre of the circle, so the result isn't always true.
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Re: 2012 HSC MX1 Marathon
The counterexample seems to be a special case of where it is a right angle where one can relabel the external point as C. I don't think that scenario would work otherwise.
What I meant to say was if C and D are on opposite sides of AB then take the reflex angle ACB as twice of angle ADB for the result.
The counterexample seems to be a special case of where it is a right angle where one can relabel the external point as C. I don't think that scenario would work otherwise.
What I meant to say was if C and D are on opposite sides of AB then take the reflex angle ACB as twice of angle ADB for the result.
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Carrotsticks
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Re: 2012 HSC MX1 Marathon
Here's a bit of an interesting problem.
Consider a sphere of radius R placed inside a cube such that the sphere is tangential to all sides of the cube. However in the gaps at the corners, there are to be smaller spheres of radius r, such that each of the smaller spheres remain in contact with 3 sides of the cube, and the larger sphere.
Show that the largest possible corner-sphere has radius:
)
Here's a bit of an interesting problem.
Consider a sphere of radius R placed inside a cube such that the sphere is tangential to all sides of the cube. However in the gaps at the corners, there are to be smaller spheres of radius r, such that each of the smaller spheres remain in contact with 3 sides of the cube, and the larger sphere.
Show that the largest possible corner-sphere has radius:
Nooblet94
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Re: 2012 HSC MX1 Marathon
EDIT: My scanner has decided it doesn't want to work and I can't be bothered typing up the whole thing in, so here's a brief summary:
Basically, you find two expressions for the length between the point of contact of the two spheres and the vertex of the cube. The first expression involves finding the length of the diagonal of the cube, subtracting the diameter and dividing that in two. You end up with a value of)
.
The second expression involves constructing a cube with vertices at the vertex of the larger cube, the 3 points of contact and the centre of the smaller sphere and finding the length of its diagonal. The distance from the centre of the smaller sphere to the point of contact of the two spheres is r. Adding the two together you get a value of)
.
Upon equating the two expressions you end up with
^2}{2}=R\frac{4-2\sqrt{3}+1}{2}=R(2-\sqrt{3}))
I've got it. Give me about an hour and a half to write it up all nice and neat (I've got an ortho appointment in about 10 minutes and my current working out is hardly legible). Thoroughly enjoyed that problemHere's a bit of an interesting problem.
Consider a sphere of radius R placed inside a cube such that the sphere is tangential to all sides of the cube. However in the gaps at the corners, there are to be smaller spheres of radius r, such that each of the smaller spheres remain in contact with 3 sides of the cube, and the larger sphere.
Show that the largest possible corner-sphere has radius:
EDIT: My scanner has decided it doesn't want to work and I can't be bothered typing up the whole thing in, so here's a brief summary:
Basically, you find two expressions for the length between the point of contact of the two spheres and the vertex of the cube. The first expression involves finding the length of the diagonal of the cube, subtracting the diameter and dividing that in two. You end up with a value of
The second expression involves constructing a cube with vertices at the vertex of the larger cube, the 3 points of contact and the centre of the smaller sphere and finding the length of its diagonal. The distance from the centre of the smaller sphere to the point of contact of the two spheres is r. Adding the two together you get a value of
Upon equating the two expressions you end up with
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Carrotsticks
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Re: 2012 HSC MX1 Marathon
A slightly different approach to what I did, but very nice. I quite like these problems myself.
A slightly different approach to what I did, but very nice. I quite like these problems myself.
Carrotsticks
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Re: 2012 HSC MX1 Marathon
Just finished that X-Men Origins movie. Pretty good.
Anyway here you go.
Just finished that X-Men Origins movie. Pretty good.
Anyway here you go.
deswa1
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Re: 2012 HSC MX1 Marathon
I'm not sure if this is strictly 3U but here goes:
It is known that if f(0)=0 and f'(0) is greater than or equal to zero for x>0, then f(x) is greater than or equal to zero for x>0.
Use this to show that sinx-1+x^3/6 is greater than or equal to 0 for x>0
I'm not sure if this is strictly 3U but here goes:
It is known that if f(0)=0 and f'(0) is greater than or equal to zero for x>0, then f(x) is greater than or equal to zero for x>0.
Use this to show that sinx-1+x^3/6 is greater than or equal to 0 for x>0
Nooblet94
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Carrotsticks
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Nooblet94
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Re: 2012 HSC MX1 Marathon
<a href="http://www.codecogs.com/eqnedit.php?latex=\\ f(x)=\sin x -x@plus; \frac{x^3}{6}\\ f'(x)=\cos x -1@plus;\frac{x^2}{2}\\ f''(x)=-\sin x @plus;x\\ f'''(x)=-\cos x @plus;1\\ ~\\ f(0)=\sin 0 -0@plus; \frac{0^3}{6}=0\\ f'(0)=\cos 0 -1@plus;\frac{0^2}{2}=0\\ f''(0)=-\sin 0 @plus;0=0\\ ~\\ \textrm{Now,}~f'''(x)\geq 0~\textrm{for}~x>0~\textrm{(Since the maximum value of}~\cos x~\textrm{is 1)}\\ ~\\ \textrm{Hence, by the given theorem}\\ f''(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f'(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f(x)\geq 0~\textrm{for}~x>0\\" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\\ f(x)=\sin x -x+ \frac{x^3}{6}\\ f'(x)=\cos x -1+\frac{x^2}{2}\\ f''(x)=-\sin x +x\\ f'''(x)=-\cos x +1\\ ~\\ f(0)=\sin 0 -0+ \frac{0^3}{6}=0\\ f'(0)=\cos 0 -1+\frac{0^2}{2}=0\\ f''(0)=-\sin 0 +0=0\\ ~\\ \textrm{Now,}~f'''(x)\geq 0~\textrm{for}~x>0~\textrm{(Since the maximum value of}~\cos x~\textrm{is 1)}\\ ~\\ \textrm{Hence, by the given theorem}\\ f''(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f'(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f(x)\geq 0~\textrm{for}~x>0\\" title="\\ f(x)=\sin x -x+ \frac{x^3}{6}\\ f'(x)=\cos x -1+\frac{x^2}{2}\\ f''(x)=-\sin x +x\\ f'''(x)=-\cos x +1\\ ~\\ f(0)=\sin 0 -0+ \frac{0^3}{6}=0\\ f'(0)=\cos 0 -1+\frac{0^2}{2}=0\\ f''(0)=-\sin 0 +0=0\\ ~\\ \textrm{Now,}~f'''(x)\geq 0~\textrm{for}~x>0~\textrm{(Since the maximum value of}~\cos x~\textrm{is 1)}\\ ~\\ \textrm{Hence, by the given theorem}\\ f''(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f'(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f(x)\geq 0~\textrm{for}~x>0\\" /></a>
Here's one from my MX1 assessment task last year that hardly anyone got:
<a href="http://www.codecogs.com/eqnedit.php?latex=\\ \textrm{The constant term in each of the binomials} \left(x@plus;\frac{4}{x}\right)^{2n}~\textrm{and}~\left(\frac{x}{a}@plus;\frac{b}{x} \right )^{2n}~\textrm{are equal.}\\ ~\\ \textrm{If}~a@plus;b=-5~\textrm{find the values of}~a~\textrm{and}~b" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\\ \textrm{The constant term in each of the binomials} \left(x+\frac{4}{x}\right)^{2n}~\textrm{and}~\left(\frac{x}{a}+\frac{b}{x} \right )^{2n}~\textrm{are equal.}\\ ~\\ \textrm{If}~a+b=-5~\textrm{find the values of}~a~\textrm{and}~b" title="\\ \textrm{The constant term in each of the binomials} \left(x+\frac{4}{x}\right)^{2n}~\textrm{and}~\left(\frac{x}{a}+\frac{b}{x} \right )^{2n}~\textrm{are equal.}\\ ~\\ \textrm{If}~a+b=-5~\textrm{find the values of}~a~\textrm{and}~b" /></a>
<a href="http://www.codecogs.com/eqnedit.php?latex=\\ f(x)=\sin x -x@plus; \frac{x^3}{6}\\ f'(x)=\cos x -1@plus;\frac{x^2}{2}\\ f''(x)=-\sin x @plus;x\\ f'''(x)=-\cos x @plus;1\\ ~\\ f(0)=\sin 0 -0@plus; \frac{0^3}{6}=0\\ f'(0)=\cos 0 -1@plus;\frac{0^2}{2}=0\\ f''(0)=-\sin 0 @plus;0=0\\ ~\\ \textrm{Now,}~f'''(x)\geq 0~\textrm{for}~x>0~\textrm{(Since the maximum value of}~\cos x~\textrm{is 1)}\\ ~\\ \textrm{Hence, by the given theorem}\\ f''(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f'(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f(x)\geq 0~\textrm{for}~x>0\\" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\\ f(x)=\sin x -x+ \frac{x^3}{6}\\ f'(x)=\cos x -1+\frac{x^2}{2}\\ f''(x)=-\sin x +x\\ f'''(x)=-\cos x +1\\ ~\\ f(0)=\sin 0 -0+ \frac{0^3}{6}=0\\ f'(0)=\cos 0 -1+\frac{0^2}{2}=0\\ f''(0)=-\sin 0 +0=0\\ ~\\ \textrm{Now,}~f'''(x)\geq 0~\textrm{for}~x>0~\textrm{(Since the maximum value of}~\cos x~\textrm{is 1)}\\ ~\\ \textrm{Hence, by the given theorem}\\ f''(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f'(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f(x)\geq 0~\textrm{for}~x>0\\" title="\\ f(x)=\sin x -x+ \frac{x^3}{6}\\ f'(x)=\cos x -1+\frac{x^2}{2}\\ f''(x)=-\sin x +x\\ f'''(x)=-\cos x +1\\ ~\\ f(0)=\sin 0 -0+ \frac{0^3}{6}=0\\ f'(0)=\cos 0 -1+\frac{0^2}{2}=0\\ f''(0)=-\sin 0 +0=0\\ ~\\ \textrm{Now,}~f'''(x)\geq 0~\textrm{for}~x>0~\textrm{(Since the maximum value of}~\cos x~\textrm{is 1)}\\ ~\\ \textrm{Hence, by the given theorem}\\ f''(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f'(x)\geq 0~\textrm{for}~x>0\\ \Rightarrow f(x)\geq 0~\textrm{for}~x>0\\" /></a>
Here's one from my MX1 assessment task last year that hardly anyone got:
<a href="http://www.codecogs.com/eqnedit.php?latex=\\ \textrm{The constant term in each of the binomials} \left(x@plus;\frac{4}{x}\right)^{2n}~\textrm{and}~\left(\frac{x}{a}@plus;\frac{b}{x} \right )^{2n}~\textrm{are equal.}\\ ~\\ \textrm{If}~a@plus;b=-5~\textrm{find the values of}~a~\textrm{and}~b" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\\ \textrm{The constant term in each of the binomials} \left(x+\frac{4}{x}\right)^{2n}~\textrm{and}~\left(\frac{x}{a}+\frac{b}{x} \right )^{2n}~\textrm{are equal.}\\ ~\\ \textrm{If}~a+b=-5~\textrm{find the values of}~a~\textrm{and}~b" title="\\ \textrm{The constant term in each of the binomials} \left(x+\frac{4}{x}\right)^{2n}~\textrm{and}~\left(\frac{x}{a}+\frac{b}{x} \right )^{2n}~\textrm{are equal.}\\ ~\\ \textrm{If}~a+b=-5~\textrm{find the values of}~a~\textrm{and}~b" /></a>
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