MedVision ad

HSC 2013 MX2 Marathon (archive) (4 Viewers)

Status
Not open for further replies.

RealiseNothing

what is that?It is Cowpea
Joined
Jul 10, 2011
Messages
4,591
Location
Sydney
Gender
Male
HSC
2013
Re: HSC 2013 4U Marathon



Difficulty rating: 4/5.
I'm not sure if this explanation is correct for the first part, but I'll have a go:

Let the sequence be written as:



Now there exists some real number such that:

for some

Hence we can deduce that:



Now as we get

Hence there exists a sequence such that the limit as dominates , which means and it does not converge.

This will occur in a situation where as
 

Sy123

This too shall pass
Joined
Nov 6, 2011
Messages
3,730
Gender
Male
HSC
2013
Re: HSC 2013 4U Marathon



Difficulty rating: 4/5.
My attempt:

Part 1

First provide the counter example
Consider the series



By drawing the graph y=1/x, and constructing the upper rectangles of width 1 from 1 to some integer m, it follows that:



Take m to infinity,





Despite the fact that:



Part II

Since the sequence is decreasing, we can form the inequality:



So let the LHS be = S
And sum the RHS using complex numbers and equating the real parts, it follows that:



Now, we know that:



Therefore the last term on the RHS:



For some finite values v and u, therefore we arrive at:

for some finite limit M

Therefore due to the initial assumption that you have given us, S must converge. However it cannot converge for when (integral values of k), since if this is the case, then

(This is probably wrong notation but I'm saying that cos(2pikn) can only be one of those 2 values)

And this results in:

for some function of k f(k), which is indeterminable, so the test is not applicable here.

Part III

I'm not sure here, but I think all the conditions involved in a are necessary.

======

Probably wrong
 

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: HSC 2013 4U Marathon

Essentially correct although your notation hurts my head... (a_n) typically refers to the sequence (a_0,a_1,...) rather than the corresponding series.

For things like that it suffices to provide an example, in this case the harmonic series would be adequate.
 

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: HSC 2013 4U Marathon

My attempt:

Part 1

First provide the counter example
Consider the series



By drawing the graph y=1/x, and constructing the upper rectangles of width 1 from 1 to some integer m, it follows that:



Take m to infinity,





Despite the fact that:



Part II

Since the sequence is decreasing, we can form the inequality:



So let the LHS be = S
And sum the RHS using complex numbers and equating the real parts, it follows that:



Now, we know that:



Therefore the last term on the RHS:



For some finite values v and u, therefore we arrive at:

for some finite limit M

Therefore due to the initial assumption that you have given us, S must converge. However it cannot converge for when (integral values of k), since if this is the case, then

(This is probably wrong notation but I'm saying that cos(2pikn) can only be one of those 2 values)

And this results in:

for some function of k f(k), which is indeterminable, so the test is not applicable here.

Part III

I'm not sure here, but I think all the conditions involved in a are necessary.

======

Probably wrong
Your first step in II doesn't work unfortunately, remember that cos(blah) isn't always positive.
 

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: HSC 2013 4U Marathon

A hint for my earlier question:

The corresponding result holds true for differentiable functions and is probably easier to understand for an mx2 student. The ideas behind the proofs are the same though.

 
Last edited:

Sy123

This too shall pass
Joined
Nov 6, 2011
Messages
3,730
Gender
Male
HSC
2013
Re: HSC 2013 4U Marathon









Using IBP



due to identity (3)



due to identity (2)

We then arrive at:




We arrive at:





And this can only arise due to our use of identities (1), (2) and (3) hence satisfying the iff condition.

I hope I haven't made a mistake with the algebra.

============























Might of made a mistake but I'm sure the logic is right.
 

shongaponga

Member
Joined
Feb 15, 2012
Messages
125
Gender
Male
HSC
2012
Re: HSC 2013 4U Marathon

Your logic and method is correct Sy, but you've made a mistake with your algebra.



















For the second part:













 

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: HSC 2013 4U Marathon

If and only if? I don't see how it follows from your working that an f which does not satisfy f''=kff' cannot give rise to an I which has a primitive in terms of f,f',k and n...
 

shongaponga

Member
Joined
Feb 15, 2012
Messages
125
Gender
Male
HSC
2012
Re: HSC 2013 4U Marathon

If and only if? I don't see how it follows from your working that an f which does not satisfy f''=kff' cannot give rise to an I which has a primitive in terms of f,f',k and n...
My apologies. Should simply read "if f(x)" not if and only if. I was in the middle of doing another question when i posted that one up haha; fixed it now.
 

seanieg89

Well-Known Member
Joined
Aug 8, 2006
Messages
2,662
Gender
Male
HSC
2007
Re: HSC 2013 4U Marathon

Cool, good question by the way.
 

Trebla

Administrator
Administrator
Joined
Feb 16, 2005
Messages
8,391
Gender
Male
HSC
2006
Re: HSC 2013 4U Marathon

HSC 2005 :p
 

Makematics

Well-Known Member
Joined
Mar 26, 2013
Messages
1,829
Location
Sydney
Gender
Male
HSC
2013
Re: HSC 2013 4U Marathon

Hey guys, here's a five marker from my school paper from last year.

The complex number z is given by z=(t-1)/(t+1) where t=a+ib and |t|= 4. Find and describe the locus of the point P which represents z.

Not the hardest of questions but still worth 5 marks so i thought id include it. you uni guys leave this one alone and leave to us 2013ers :)
 
Last edited:

cutemouse

Account Closed
Joined
Apr 23, 2007
Messages
2,250
Gender
Undisclosed
HSC
N/A
Re: HSC 2013 4U Marathon

Hey guys, here's a five marker from my school paper (fort street) from last year.

The complex number z is given by z=(t-1)/(t+1) where t=a+ib and |t|= 4. Find and describe the locus of the point P which represents z.

Not the hardest of questions but still worth 5 marks so i thought id include it. you uni guys leave this one alone and leave to us 2013ers :)
It's worth noting that these types are not in the 4U syllabus. Still interesting though.
 

RealiseNothing

what is that?It is Cowpea
Joined
Jul 10, 2011
Messages
4,591
Location
Sydney
Gender
Male
HSC
2013
Re: HSC 2013 4U Marathon

Hey guys, here's a five marker from my school paper (fort street) from last year.

The complex number z is given by z=(t-1)/(t+1) where t=a+ib and |t|= 4. Find and describe the locus of the point P which represents z.

Not the hardest of questions but still worth 5 marks so i thought id include it. you uni guys leave this one alone and leave to us 2013ers :)
















 
Status
Not open for further replies.

Users Who Are Viewing This Thread (Users: 0, Guests: 4)

Top