HSC 2016 MX2 Marathon ADVANCED (archive) (1 Viewer)

Paradoxica · Jan 8, 2016

Re: HSC 2016 4U Marathon - Advanced Level

seanieg89 said:
Err, no. Although I am not sure if you are just joking by talking about infiniti-eth ratios.

Well we can formalise it by using limits, but we have done that already, so... yeah.

If we wish to piece it together formally:

$\noindent Lemma 1: The ${n+1}^{\text{th}}$ ratio is always larger than the $n^{\text{th}}$ ratio.$\\$Lemma 2: The limiting ratio is $\frac{1}{4\pi}.\\$Fact: The very first ratio, and hence, the starting value, is $\frac{1}{12\sqrt{3}}.\\$Letting $R(n)$ denote the ratio for $n$, we have:$\\ \therefore \frac{1}{12\sqrt{3}} < R(4) < R(5) < R(6) < \dots < R(n-2) < R(n-1) < R(n) < \frac{1}{4\pi}\\ \forall n \in \mathbb{N},\; n \notin \{0,1,2\}\\$This is essentially the isoperimetric inequality in two dimensions, as desired.$

seanieg89 · Jan 8, 2016

Re: HSC 2016 4U Marathon - Advanced Level

Paradoxica said:
Well we can formalise it by using limits, but we have done that already, so... yeah.

If we wish to piece it together formally:

$\noindent Lemma 1: The ${n+1}^{\text{th}}$ ratio is always larger than the $n^{\text{th}}$ ratio.$\\$Lemma 2: The limiting ratio is $\frac{1}{4\pi}.\\$Fact: The very first ratio, and hence, the starting value, is $\frac{1}{12\sqrt{3}}.\\$Letting $R(n)$ denote the ratio for $n$, we have:$\\ \therefore \frac{1}{12\sqrt{3}} < R(4) < R(5) < R(6) < \dots < R(n-2) < R(n-1) < R(n) < \frac{1}{4\pi}\\ \forall n \in \mathbb{N},\; n \notin \{0,1,2\}\\$This is essentially the isoperimetric inequality in two dimensions, as desired.$

That is better, and more or less what I wanted people to say for 2.

One thing though: Monotonicity isn't so essential here if you have already calculated R(n) explicitly.

What is important is just that each R(n) is smaller than 1/4*pi. (*)

(And if we have already calculated R(n) explicitly, and you really wanted to obtain montonicity, we wouldn't need any geometric reasoning as I produced on request earlier, as you already have the explicit values and the inequality is not a difficult one.)

Assuming we are working with curves that are nice enough to:
- enclose a region with well defined perimeter and area
- be well approximated by polygons (there is a sequence of polygons with vertices on the curves such that the limiting area and limiting perimeter of these polygons is the area and perimeter of the region itself)

(*) tells us that the isoperimetric ratio for such curves is bounded by 1/4*pi.

To additionally show that we cannot beat 1/4*pi as an upper bound, we can either
a) compute A/P^2 for a circle. this is cheating in a sense, but whatever.
b) observe that R(n) -> 1/4*pi (an mx2 level limit), and so any smaller real number will not bound all of the R(n).

Where monotonicity IS useful, is finding a cheap way to pass from dealing with arbitrary polygons to convex polygons. (As the convex hull of a polygon is a convex polygon of lower degree with larger area and smaller perimeter.)

Paradoxica · Jan 8, 2016

Re: HSC 2016 4U Marathon - Advanced Level

seanieg89 said:
That is better, and more or less what I wanted people to say for 2.

One thing though: Monotonicity isn't so essential here if you have already calculated R(n) explicitly.

What is important is just that each R(n) is smaller than 1/4*pi. (*)

(And if we have already calculated R(n) explicitly, and you really wanted to obtain montonicity, we wouldn't need any geometric reasoning as I produced on request earlier, as you already have the explicit values and the inequality is not a difficult one.)

Assuming we are working with curves that are nice enough to:
- enclose a region with well defined perimeter and area
- be well approximated by polygons (there is a sequence of polygons with vertices on the curves such that the limiting area and limiting perimeter of these polygons is the area and perimeter of the region itself)

(*) tells us that the isoperimetric ratio for such curves is bounded by 1/4*pi.

To additionally show that we cannot beat 1/4*pi as an upper bound, we can either
a) compute A/P^2 for a circle. this is cheating in a sense, but whatever.
b) observe that R(n) -> 1/4*pi (an mx2 level limit), and so any smaller real number will not bound all of the R(n).

Where monotonicity IS useful, is finding a cheap way to pass from dealing with arbitrary polygons to convex polygons. (As the convex hull of a polygon is a convex polygon of lower degree with larger area and smaller perimeter.)

The limit is not extension 2, I have no idea what you are talking about. It's not even that difficult for an extension 1 student to manipulate it into an approachable form, all they require is the trig limit used in differentiating trig functions from first principles.

seanieg89 · Jan 8, 2016

Re: HSC 2016 4U Marathon - Advanced Level

Paradoxica said:
The limit is not extension 2, I have no idea what you are talking about. It's not even that difficult for an extension 1 student to manipulate it into an approachable form, all they require is the trig limit used in differentiating trig functions from first principles.

By MX2 I meant doable by an MX2 student i.e. in the scope of this thread. I didn't mean that you would only be capable of doing it if you knew the MX2 course.

Paradoxica · Jan 8, 2016

Re: HSC 2016 4U Marathon - Advanced Level

integrand said:
$\noindent let $abc$ be a triangle with a point $d$ on $ab$, $e$ on $bc$ and $f$ on $ac$. It is given that $ad=be=cf$ and that $\triangle def$ is equilateral.$

$show that $\triangle abc$ is equilateral.$

lita1000 said:
$\\ $show that for $a,b,c >0,\\ (1-a)^2+(1-b)^2+(1-c)^2\\ \geq \frac{(1-a^2)(1-b^2)c^2}{(ab+c)^2}+\frac{(1-c^2)(1-b^2)a^2}{(bc+a)^2}+\frac{(1-a^2)(1-c^2)b^2}{(ac+b)^2}$

heroicpandas said:
$$\noindent$ a,b,c$, are sides of a triangle satisfying $a^2+b^2+c^2=3$.\\prove $a^3b+b^3c+c^3a \geq ab+bc+ca$

paradoxica said:
$\noindent let $fgh$ be a triangle with circumcircle $a$ and incircle $b$, the latter in tangential contact at $j$ on $gh$. Let $c$ be a circle tangent to $fg$, $fh$ and $a$, and let $d$ be the point where $c$ and $a$ are tangential, as shown here:$

$$prove $\angle fgh = \angle gdj$

Awaiting answers.

KX · Jan 8, 2016

Re: HSC 2016 4U Marathon - Advanced Level

Paradoxica said:
Awaiting answers.

Do you need help for all of them?

Paradoxica · Jan 8, 2016

Re: HSC 2016 4U Marathon - Advanced Level

KX said:
Do you need help for all of them?

Oh, these are just the leftover problems, and I can't do any of them.

Yes, I did manage to forget my own answer to that damn circle problem.

KX · Jan 8, 2016

Re: HSC 2016 4U Marathon - Advanced Level

Paradoxica said:
Oh, these are just the leftover problems, and I can't do any of them.

Yes, I did manage to forget my own answer to that damn circle problem.

Ah okay.

As another user said before, I really think that these problems should be left to the 2016ers, no spoilers from any past graduates please

These look darn interesting

Paradoxica · Jan 17, 2016

Re: HSC 2016 4U Marathon - Advanced Level

$$\noindent Amongst any set of $61$ real numbers, show that there must exist a pair of numbers satisfying $0 < \frac{a-b}{1+ab} < \frac{1}{19}$

glittergal96 · Jan 18, 2016

Re: HSC 2016 4U Marathon - Advanced Level

Paradoxica said:
$$\noindent Amongst any set of $61$ real numbers, show that there must exist a pair of numbers satisfying $0 < \frac{a-b}{1+ab} < \frac{1}{19}$

$$Let these numbers be $\tan(\phi_k)$ with each $\phi_k\in(-\pi/2,\pi/2)$. We may label these in increasing order.\\ \\ Now if the claim is NOT true, then we have $\tan(\phi_{k+1}-\phi_k)\geq 1/19$ for each $k$. \\ \\ This implies that $\phi_{61}-\phi_1\geq 60 \tan^{-1}(1/19).$\\ \\ However, this is a contradiction, as $60\tan^{-1}(1/19)>\pi.$

(If you are not allowed to use a calculator to justify the final inequality, use the taylor estimates for the arctan, which conveniently alternate in sign and will converge quite rapidly at 1/19.)

Paradoxica · Jan 18, 2016

Re: HSC 2016 4U Marathon - Advanced Level

glittergal96 said:
$$Let these numbers be $\tan(\phi_k)$ with each $\phi_k\in(-\pi/2,\pi/2)$. We may label these in increasing order.\\ \\ Now if the claim is NOT true, then we have $\tan(\phi_{k+1}-\phi_k)\geq 1/19$ for each $k$. \\ \\ This implies that $\phi_{61}-\phi_1\geq 60 \tan^{-1}(1/19).$\\ \\ However, this is a contradiction, as $60\tan^{-1}(1/19)>\pi.$

(If you are not allowed to use a calculator to justify the final inequality, use the taylor estimates for the arctan, which conveniently alternate in sign and will converge quite rapidly at 1/19.)

My intended solution was to pigeonhole the 61 arctans of the real numbers into the interval -pi/2, pi/2 after dividing the interval into 60 equal sub-intervals, as tan(pi/60) is ever so slightly less than 1/19.

JusticeTackle · Jan 18, 2016

Re: HSC 2016 4U Marathon - Advanced Level

Paradoxica said:
My intended solution was to pigeonhole the 61 arctans of the real numbers into the interval -pi/2, pi/2 after dividing the interval into 60 equal sub-intervals, as tan(pi/60) is ever so slightly less than 1/19.

nvm

Paradoxica · Jan 22, 2016

Re: HSC 2016 4U Marathon - Advanced Level

$$\noindent Show by induction that the equation $\sum_{r=1}^n \frac{1}{a_r} = 1\\$is solvable in positive distinct integers $a_i, \; \forall n \ge 3$

Blast1 · Jan 23, 2016

Re: HSC 2016 4U Marathon - Advanced Level

Paradoxica said:
$$\noindent Show by induction that the equation $\sum_{r=1}^n \frac{1}{a_r} = 1\\$is solvable in positive distinct integers $a_i, \; \forall n \ge 3$

$$Statement true for n=3, as 1= $\frac{1}{2}+\frac{1}{3}+\frac{1}{6}.$ Assume that the statement is true for some n=k. So there are k distinct naturals which satisfy $ \frac{1}{a_1}+...+\frac{1}{a_n}=1. $ Thus, there are k distinct naturals all greater than 2 which satisfy $ \frac{1}{b_1}+...+\frac{1}{b_n}=\frac{1}{2}.\ (b_i=2a_i). $For n=k+1, we can have $ b_{n+1}=2, (\frac{1}{b_{n+1}}=\frac{1}{2}) $and k other distinct naturals all greater than 2 satisfy $\frac{1}{b_1}+...+\frac{1}{b_n}=\frac{1}{2}. $So we have k+1 distinct naturals satisfying the given statement (since $\frac{1}{b_1}+...+\frac{1}{b_n}+\frac{1}{b_{n+1}}=\frac{1}{2}+\frac{1}{2}=1$). True by principle of Mathematical Induction.$

Damn I take so long to Latex lol.

Paradoxica · Jan 24, 2016

Re: HSC 2016 4U Marathon - Advanced Level

$$\noindent Continuation of the previous question:$\\$Determine in closed form the values of $a_r$ for all $0<r<n \\ t_k = \frac{k(k+1)}{2} $ is the $k^{\text{th}}$ triangular number. Show that the equation from the previous equation is solvable in not necessarily distinct triangular numbers.$

Blast1 · Jan 24, 2016

Re: HSC 2016 4U Marathon - Advanced Level

Paradoxica said:
$$\noindent Continuation of the previous question:$\\$Determine in closed form the values of $a_r$ for all $0<r<n \\ t_k = \frac{k(k+1)}{2} $ is the $k^{\text{th}}$ triangular number. Show that the equation from the previous equation is solvable in not necessarily distinct triangular numbers.$

$$Notice that $ 1= \frac{1}{2}+\frac{1}{3}+\frac{1}{6}. $ Applying the algorithm which I described in my last post,$ 1=\frac{1}{2}+\frac{1}{4}+ ... + \frac{1}{2^{n-2}}+\frac{1}{3(2^{n-3})}+\frac{1}{3(2^{n-2})}.$ So, $a_i=\frac{1}{2^{i}} \ $where$ \ i=1,2,3...,n-2,$ and $ \ a_{i}=\frac{1}{3(2^{i-2})} \ $where$ \ i=n-1,n.$
For the triangular numbers question,
$$We proceed by induction. we'll prove that we can solve the equation into n triangular numbers, with at least one of them being the number 3. For n=3, notice that $ 1=\frac{1}{3}+\frac{1}{3}+\frac{1}{3}, $so statement is true for n=3. Now, suppose that for n=k, the equation can be solved into n triangular numbers (which are not necessarily distinct) so that one of the solutions is 3. Assume statement is true for n=k. So $ 1=\sum_{r=1}^{k-1}\frac{1}{a_r}+\frac{1}{3} $ where $ a_1\rightarrow a_{k-1} $ are all triangular numbers. For n=k+1, notice that $\frac{1}{3}=\frac{1}{6}+\frac{1}{6}$ so $1=\sum_{r=1}^{k-1}\frac{1}{a_r} + \frac{1}{6}+\frac{1}{6},$ which are k+1 triangular numbers. Therefore, statement is true for n=k+1, and hence for all n $ \geq3$, by the principle of mathematical induction$

Drsoccerball · Feb 15, 2016

Re: HSC 2016 4U Marathon - Advanced Level

$Find the polynomial, f(x), of $ (n-1)^{th} $ degree such that :$

$f(x_1)=y_1$

$f(x_2)=y_2$
...
$f(x_n)=y_n$

$Given that no two points have the same abscissas.$

Paradoxica · Feb 15, 2016

Re: HSC 2016 4U Marathon - Advanced Level

In simpler terms:

Find all polynomials that are one-to-one.

You may assume without loss of generality that the polynomial is monic.

seanieg89 · Feb 15, 2016

Re: HSC 2016 4U Marathon - Advanced Level

Paradoxica said:
In simpler terms:

Find all polynomials that are one-to-one.

You may assume without loss of generality that the polynomial is monic.

I don't think that is what he is asking. He is asking for an explicit expression for a polynomial whose graph passes through a given finite set of points in the plane.

(An extension question for those with knowledge from outside syllabus is to show that the polynomial so constructed has as small degree as is possible, for any given values of x_n and y_n.)

Paradoxica · Feb 15, 2016

Re: HSC 2016 4U Marathon - Advanced Level

seanieg89 said:
I don't think that is what he is asking. He is asking for an explicit expression for a polynomial whose graph passes through a given finite set of points in the plane.

(An extension question for those with knowledge from outside syllabus is to show that the polynomial so constructed has as small degree as is possible, for any given values of x_n and y_n.)

Then he should have said that.

Make a Difference – Donate to Bored of Studies!

HSC 2016 MX2 Marathon ADVANCED (archive) (1 Viewer)

-insert title here-

Well-Known Member

-insert title here-

Well-Known Member

-insert title here-

New Member

-insert title here-

New Member

-insert title here-

Active Member

-insert title here-

New Member

-insert title here-

New Member

-insert title here-

New Member

Well-Known Member

-insert title here-

Well-Known Member

-insert title here-

Users Who Are Viewing This Thread (Users: 0, Guests: 1)