MedVision ad

MX2 Marathon (1 Viewer)

InteGrand

Well-Known Member
Joined
Dec 11, 2014
Messages
6,109
Gender
Male
HSC
N/A
Re: HSC 2018 MX2 Marathon

Find an expression for cos^4x in terms of cos4x and cos2x

Edit: The question is from terry lee so I'm guessing it implies that you use 4U complex techniques rather than 3U, I'm not sure if you can even use 3U for this...
















 

Drongoski

Well-Known Member
Joined
Feb 22, 2009
Messages
4,255
Gender
Male
HSC
N/A
Re: HSC 2018 MX2 Marathon

Therefore, using 3U method:

 
Last edited:

dan964

what
Joined
Jun 3, 2014
Messages
3,479
Location
South of here
Gender
Male
HSC
2014
Uni Grad
2019
Re: HSC 2018 MX2 Marathon

What is the modulus and argument of z in this case? I got an answer that was different to the one in the textbook.

Sent from my Redmi Note 4 using Tapatalk
It is is circle of radius centred at 4+4i.

The construction is as follows
Join the points 4+4i (centre C) and origin O, extend this line so that it touches the circle again at B. This line OB will give us the range of values for |z|

To find the arg z, construct a diagram, observe the points E and F where the arg z is max and min, form a right angled triangle. The ratios of the sides will give the external angles, and from there using symmetry, the angles formed by the tangent at E and F at the origin, gives the max and min of the arg z.

In this problem |z| is from
and arg z is from
 

altSwift

Member
Joined
Jan 6, 2017
Messages
65
Gender
Male
HSC
2018
Re: HSC 2018 MX2 Marathon

I understand the 3U method, and I understand the proof for the 4U method, I'm just stumped as to how ur supposed to continue with the 4U method, I seem to be going around in circles lmao
 

fluffchuck

Active Member
Joined
Apr 29, 2016
Messages
255
Location
Sydney
Gender
Male
HSC
2017
Uni Grad
2021
Re: HSC 2018 MX2 Marathon

I understand the 3U method, and I understand the proof for the 4U method, I'm just stumped as to how ur supposed to continue with the 4U method, I seem to be going around in circles lmao
 
Last edited:

dan964

what
Joined
Jun 3, 2014
Messages
3,479
Location
South of here
Gender
Male
HSC
2014
Uni Grad
2019
Re: HSC 2018 MX2 Marathon

next question:

using demoivre's theorem or some other complex number theorems, find the exact value of cos 36 degrees.
go...
 

mrbunton

Member
Joined
Feb 1, 2018
Messages
27
Gender
Male
HSC
2018
Re: HSC 2018 MX2 Marathon

z= x+iy, w = u+iv; w = z -1/z. , find locus of w if |z|=2
edit:from patel textbook
 

fan96

617 pages
Joined
May 25, 2017
Messages
543
Location
NSW
Gender
Male
HSC
2018
Uni Grad
2024
Re: HSC 2018 MX2 Marathon

u didnt fully complete it; the hardest part is finding the relationship between v and w.




Squaring, we have









Replacing variables,



or

Is that right?
 

mrbunton

Member
Joined
Feb 1, 2018
Messages
27
Gender
Male
HSC
2018
Re: HSC 2018 MX2 Marathon

polynomial/complex number question:
cot(x)= y+1
a,b are roots of z^2-2z+2=0
prove that ( (y+a)^n - (y+b)^n ) / (a-b) = sin(nx) / sinx^n
 
Last edited:

fan96

617 pages
Joined
May 25, 2017
Messages
543
Location
NSW
Gender
Male
HSC
2018
Uni Grad
2024
Re: HSC 2018 MX2 Marathon

This is an interesting question I found in the SGS notes.

If is a complex number, find the locus of if

 

mrbunton

Member
Joined
Feb 1, 2018
Messages
27
Gender
Male
HSC
2018
Re: HSC 2018 MX2 Marathon

This is an interesting question I found in the SGS notes.

If is a complex number, find the locus of if

=Re(x+iy -(x-iy)/x^2+y^2)=0
x - x/(x^2+y^2) = 0
times by x^2 + y^2 then divide by x;
0= x^2+y^2 -1;
1 = x^2 + y^2
 

fan96

617 pages
Joined
May 25, 2017
Messages
543
Location
NSW
Gender
Male
HSC
2018
Uni Grad
2024
Re: HSC 2018 MX2 Marathon

=Re(x+iy -(x-iy)/x^2+y^2)=0
x - x/(x^2+y^2) = 0
times by x^2 + y^2 then divide by x;
0= x^2+y^2 -1;
1 = x^2 + y^2
is not the correct answer.

(Be careful of any restrictions you place on the locus)
 
Last edited:

fan96

617 pages
Joined
May 25, 2017
Messages
543
Location
NSW
Gender
Male
HSC
2018
Uni Grad
2024
Re: HSC 2018 MX2 Marathon

As I said above, that's not the correct answer.

The locus is not .

There are certain values of (specifically ) that need to be considered.

(By the way, is not on the unit circle so it's not necessary to explicitly exclude it if the locus was just the unit circle)

I'll post the solution tomorrow if nobody gets the right answer.
 
Last edited:

altSwift

Member
Joined
Jan 6, 2017
Messages
65
Gender
Male
HSC
2018
Re: HSC 2018 MX2 Marathon

As I said above, that's not the correct answer.

The locus is not .

There are certain values of (specifically ) that need to be considered.

(By the way, is not on the unit circle so it's not necessary to explicitly exclude it if the locus was just the unit circle)

I'll post the solution tomorrow if nobody can figure it out.
rip, I'll have another go tonight
 

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

Top