HSC 2015 MX1 Marathon (archive) (1 Viewer)

Trebla · Dec 7, 2014

Post any questions within the scope and level of Mathematics Extension 1. Once a question is posted, it needs to be answered before the next question is raised.

I encourage all current students in particular to participate in this marathon.

To start off:

$$Three towers of the same height $h$ stand in such a way that tower B stands equidistant from tower A and tower C at a distance of $d$. Tower B also stands such that a line drawn from the base of tower B to the base of tower A is perpendicular to the line drawn from the base of tower B to the base of tower C.$\\\\$A person walks in a straight line from the base of tower A to the base of tower C and continues to walk until the angle of elevation to top of tower B is $30^{\circ}$ and the angle of elevation to the top of tower C is $45^{\circ}$.\\\\Show that $\: \dfrac{h}{d}=\dfrac{\sqrt{2}+\sqrt{10}}{4}$

jyu · Dec 17, 2014

Re: HSC 2015 3U Marathon

h depends on d?

FrankXie · Dec 17, 2014

Re: HSC 2015 3U Marathon

jyu said:
h depends on d?

$$ Yes, there was a typo, should be $ h=\frac{\sqrt{2}+\sqrt{10}}{4}d$

jyu · Dec 17, 2014

Re: HSC 2015 3U Marathon

FrankXie said:
$$ Yes, there was a typo, should be $ h=\frac{\sqrt{2}+\sqrt{10}}{4}d$

$h=\frac{-\sqrt{2}+\sqrt{10}}{4}d$

FrankXie · Dec 18, 2014

Re: HSC 2015 3U Marathon

jyu said:
$h=\frac{-\sqrt{2}+\sqrt{10}}{4}d$

no, the questions says the person continues to walk after he arrives at the point C, which means the person stops at the point on AC produced, but not between AC

WhoStanLeee · Dec 20, 2014

Re: HSC 2015 3U Marathon

PhysicsMaths · Jan 6, 2015

Re: HSC 2015 3U Marathon

i) Using tan(a-b) = tana - tanb / 1+tanatanb,
show that 1+tannθtan(n+1)θ = cotθ(tan(n+1)θ-tannθ)

ii) Prove by mathematical induction that
tanθtan2θ + tan2θtan3θ + ... + tannθtan(n+1)θ = -(n+1) + cotθtan(n+1)θ for all integers n>=1

leehuan · Jan 7, 2015

Re: HSC 2015 3U Marathon

PhysicsMaths said:
i) Using tan(a-b) = tana - tanb / 1+tanatanb,
show that 1+tannθtan(n+1)θ = cotθ(tan(n+1)θ-tannθ)

ii) Prove by mathematical induction that
tanθtan2θ + tan2θtan3θ + ... + tannθtan(n+1)θ = -(n+1) + cotθtan(n+1)θ for all integers n>=1

Files too large and I don't feel like typing my working. Refer to links:
i) http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI07012015_zpsdc70650f.jpg
ii) http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI07012015_0001_zps84b4191b.jpg
http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI07012015_0002_zpsa8ac050b.jpg

Next question:
Using the substitution u=ln(x), or otherwise, find

Hint for those who haven't done logs (highlight to show):
d/dx ln(x) = 1/x

PhysicsMaths · Jan 7, 2015

Re: HSC 2015 3U Marathon

leehuan said:
Files too large and I don't feel like typing my working. Refer to links:
i) http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI07012015_zpsdc70650f.jpg
ii) http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI07012015_0001_zps84b4191b.jpg
http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI07012015_0002_zpsa8ac050b.jpg

Next question:
Using the substitution u=ln(x), or otherwise, find View attachment 31575

Hint for those who haven't done logs (highlight to show):
d/dx ln(x) = 1/x

Nice first post!
http://imgur.com/bNK5TeN (I think this is how you do it)

Next question:
Differentiate tanx using first priciples

leehuan · Jan 8, 2015

Re: HSC 2015 3U Marathon

PhysicsMaths said:
Nice first post!
http://imgur.com/bNK5TeN (I think this is how you do it)

Next question:
Differentiate tanx using first priciples

Thanks! Yep that's how to do it
http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI08012015_zpsa3c8b8da.jpg

Next question:
(i) Explain why d/dx c = 0 (for some constant c)
(ii) Prove by mathematical induction and derivative laws that the nth derivative of x^n is n!
(iii) Show that for any polynomial P(x)=a+bx+cx^2+...+zx^n, the (n+1)th derivative is always equal to 0

PhysicsMaths · Jan 8, 2015

Re: HSC 2015 3U Marathon

leehuan said:
Thanks! Yep that's how to do it
http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI08012015_zpsa3c8b8da.jpg

Next question:
(i) Explain why d/dx c = 0 (for some constant c)
(ii) Prove by mathematical induction and derivative laws that the nth derivative of x^n is n!
(iii) Show that for any polynomial P(x)=a+bx+cx^2+...+zx^n, the (n+1)th derivative is always equal to 0

I like that induction question. Couldn't get it today, i'll try it tomorrow.

PhysicsMaths · Jan 9, 2015

Re: HSC 2015 3U Marathon

leehuan said:
Thanks! Yep that's how to do it
http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI08012015_zpsa3c8b8da.jpg

Next question:
(i) Explain why d/dx c = 0 (for some constant c)
(ii) Prove by mathematical induction and derivative laws that the nth derivative of x^n is n!
(iii) Show that for any polynomial P(x)=a+bx+cx^2+...+zx^n, the (n+1)th derivative is always equal to 0

i) i) If c is a constant then y=c represents a horizontal line. Thus,the gradient of the tangent for any point P on that line will be 0;i.e. d/dx c= 0
ii) http://imgur.com/G0HdtqQ (may or may not be right)
iii) (working on it)

colinrocks95 · Jan 9, 2015

Re: HSC 2015 3U Marathon

leehuan said:
Thanks! Yep that's how to do it
http://i1164.photobucket.com/albums/q566/Rui_Tong/CCI08012015_zpsa3c8b8da.jpg

Next question:
(i) Explain why d/dx c = 0 (for some constant c)
(ii) Prove by mathematical induction and derivative laws that the nth derivative of x^n is n!
(iii) Show that for any polynomial P(x)=a+bx+cx^2+...+zx^n, the (n+1)th derivative is always equal to 0

For (iii), we can work out each derivative as follows:
P'(x) = b + 2cx + 3dx^2 + ... + znx^(n-1)
P"(x) = 2c + 6dx + ... + zn(n-1)x^(n-2)
...
P^n(x) = zn(n-1)...(n-[n-1])x^(n-n) = zn!, where n! = n(n-1)(n-2)...1

Since P^n(x) is a constant, P^(n+1)(x), i.e. the (n+1)th derivative, is zero.

--

Next question:
By expanding sin(A+B), show that sin(3x) = 3sin(x) - 4sin^3(x). Hence or otherwise find the smallest positive value of u that satisfies the equation 12u^3 - 9u + 2 = 0. Give your answer to two decimal places.

By the way, you should check out Sci School's HSC programs. I know the presenter and he's a genius + really good at explanations.

PhysicsMaths · Jan 9, 2015

Re: HSC 2015 3U Marathon

colinrocks95 said:
For (iii), we can work out each derivative as follows:
P'(x) = b + 2cx + 3dx^2 + ... + znx^(n-1)
P"(x) = 2c + 6dx + ... + zn(n-1)x^(n-2)
...
P^n(x) = zn(n-1)...(n-[n-1])x^(n-n) = zn!, where n! = n(n-1)(n-2)...1

Since P^n(x) is a constant, P^(n+1)(x), i.e. the (n+1)th derivative, is zero.

--

Next question:
By expanding sin(A+B), show that sin(3x) = 3sin(x) - 4sin^3(x). Hence or otherwise find the smallest positive value of u that satisfies the equation 12u^3 - 9u + 2 = 0. Give your answer to two decimal places.

By the way, you should check out Sci School's HSC programs. I know the presenter and he's a genius + really good at explanations.

http://imgur.com/XDVhTNU

But still, how can you tell that it's the smallest possible number? o.o

FrankXie · Jan 9, 2015

Re: HSC 2015 3U Marathon

PhysicsMaths said:
http://imgur.com/XDVhTNU

But still, how can you tell that it's the smallest possible number? o.o

$$ You've actually found all three roots: from $ \sin3x=\frac23, 3x=41.81^\circ, 138.19^\circ, 761.81^\circ, $ hence the roots are $ u=\sin x=\sin13.94^\circ, \sin46.06^\circ, \sin253.94^\circ, $ of which the smallest positive value is $ \sin13.94^\circ.$

leehuan · Jan 12, 2015

Re: HSC 2015 3U Marathon

Next question:
(i) Show that the equation of the tangent at P(2ap,ap^2) on the parabola x^2=4ay is y=px-ap^2
(ii) Show that the point of intersection of the tangents at P and Q(2aq,aq^2) on said parabola is (a(p+q),apq)

Boring question, but I'm a bit out of ideas.

faisalabdul16 · Jan 12, 2015

Re: HSC 2015 3U Marathon

leehuan said:
Next question:
(i) Show that the equation of the tangent at P(2ap,ap^2) on the parabola x^2=4ay is y=px-ap^2
(ii) Show that the point of intersection of the tangents at P and Q(2aq,aq^2) on said parabola is (a(p+q),apq)

Boring question, but I'm a bit out of ideas.

Stock standard question hahaha

PhysicsMaths · Jan 12, 2015

Re: HSC 2015 3U Marathon

leehuan said:
Next question:
(i) Show that the equation of the tangent at P(2ap,ap^2) on the parabola x^2=4ay is y=px-ap^2
(ii) Show that the point of intersection of the tangents at P and Q(2aq,aq^2) on said parabola is (a(p+q),apq)

Boring question, but I'm a bit out of ideas.

lol

i) y = x^2/4a
y' = x/2a
f'(2ap) = p
y -ap^2 = p(x-2ap)
y = px -ap^2

ii) Similarly, at Q, y = qx-aq^2 -------1
px-ap^2 = qx-aq^2
x(p-q) = a(p+q)(p-q)
therefore, x = a(p+q)---------2
2 -> 1
y = q(ap+aq)-aq^2
= apq

Therefore, point of intersection = (a(p+q),apq)

PhysicsMaths · Jan 12, 2015

Re: HSC 2015 3U Marathon

Next question!

Express (30 x 28 x 26 x ... x 2) / (15 x 13 x 11 x ... x 1)
in factorial notation

(i'm running out of ideas too)

Kaido · Jan 12, 2015

Re: HSC 2015 3U Marathon

rofl, pre sure u dont learn that in yr 12 ^

i reckon its 30!!/15!! ?

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