• Best of luck to the class of 2024 for their HSC exams. You got this!
    Let us know your thoughts on the HSC exams here
  • YOU can help the next generation of students in the community!
    Share your trial papers and notes on our Notes & Resources page
MedVision ad

HSC 2013-14 MX1 Marathon (archive) (1 Viewer)

Status
Not open for further replies.

HeroicPandas

Heroic!
Joined
Mar 8, 2012
Messages
1,547
Gender
Male
HSC
2013
Re: HSC 2013 3U Marathon Thread

For that one:

Using that identity, equate the co-efficient of x^2 on both sides:

Now to select 2 x's from the RHS, we need to either pick x from 1 (1+x)^n and 1 x from (1+x)^n, this makes x^2
And the ways we can do this is:

First pick 2 brackets from the n number of brackets:



In each of these brackets, we need to pick the x term, so that is



So we combine both of these to get:



Now we can also get x^2 via picking 1 x^2 from 1 bracket, to do this pick 1 bracket out of the n, and in that bracket pick the x^2 co-efficient:



Add both of these together, and equate co-efficent on LHS

Thanks Sy and Nightweaver

i did equate coeffs of x^2 on both sides when i first did it but i failed in finding the x^2 i nthe RHS of that identityt
 
Joined
Sep 20, 2010
Messages
2,225
Gender
Undisclosed
HSC
2012
Re: HSC 2013 3U Marathon Thread

This is more a 2U question but the proof could be considered 3U.

 
Joined
Sep 20, 2010
Messages
2,225
Gender
Undisclosed
HSC
2012
Re: HSC 2013 3U Marathon Thread

First time making up a question so bear with me...pls correct if wrong.

 
Last edited:

nightweaver066

Well-Known Member
Joined
Jul 7, 2010
Messages
1,585
Gender
Male
HSC
2012
Re: HSC 2013 3U Marathon Thread

First time making up a question so bear with me...pls correct if wrong.

Just did it. :)

i.

ii.

iii.

iv.

Are these the answers?

I like the premise of the question, although i found it slightly easy.
 
Joined
Sep 20, 2010
Messages
2,225
Gender
Undisclosed
HSC
2012
Re: HSC 2013 3U Marathon Thread

hehe I'm not as volatile as Sy is. But yes those are the answers. I tried mucking about with variables (like x^2+(y-a)^2=r^2 and the parabola x^2=4ky) but it just wouldn't work out. Oh well hehe. Just some question making practice :)
 

Sy123

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

I'm not a fan of it

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




Solution I was looking for:













So now we have the equality:





Equate the co-efficient of x^m on both sides
For the RHS, since we are dividing by x to both of the inside terms, we need to take the co-efficient of x^m+1 instead for both of them, so when they divide by x it becomes x^m
However (1+x)^m doesn't have x^m+1 term, therefore we do not consider it:

Therefore it follows automatically:



This is actually a famous identity and have seen it proven in many more elegant ways, but this my own way :L
 

Sy123

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

 
Joined
Sep 20, 2010
Messages
2,225
Gender
Undisclosed
HSC
2012
Re: HSC 2013 3U Marathon Thread

Did you mean from 1 to k?
 
Joined
Sep 20, 2010
Messages
2,225
Gender
Undisclosed
HSC
2012
Re: HSC 2013 3U Marathon Thread

^ Full marks.

Btw twinkie I think you should give the formula for sincos formula (that's 'not' in the syllabus) if you're gonna give that question.
 

Sy123

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







 
Last edited:

HeroicPandas

Heroic!
Joined
Mar 8, 2012
Messages
1,547
Gender
Male
HSC
2013
Re: HSC 2013 3U Marathon Thread

Hey guys having a bit of trouble with this question for integrating indefinite integrals by substitution:

Find the integral of x root 2x+7 dx. By using the substitution u^2 = 2x+7
u^2 = 2x + 7

Differentiating implicitly with respect to x

therefore, 2u.(du/dx) = 2

u.du = dx

Follow normal integration steps of substitution. to get rid of x, re-arrange u^2 = 2x + 7 and sub into the question
 
Last edited:

Sy123

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



 

RealiseNothing

what is that?It is Cowpea
Joined
Jul 10, 2011
Messages
4,591
Location
Sydney
Gender
Male
HSC
2013
Re: HSC 2013 3U Marathon Thread

Note: True for

This probably isn't the way you want some one to do it, but it was the first way I thought of so I'm just going to post it lol:



We can see this as for and since , it follows the result is true. Now:







Substitute our minimum value in,



So it is true for our minimum value, and since as gets larger gets larger and gets smaller, the inequality will hold for all .

#
 

hayabusaboston

Well-Known Member
Joined
Sep 26, 2011
Messages
2,387
Location
Calabi Yau Manifold
Gender
Male
HSC
2013
Re: HSC 2013 3U Marathon Thread

u^2 = 2x + 7

Differentiating implicitly with respect to x

therefore, 2u.(du/dx) = 2

u.du = dx

Follow normal integration steps of substitution. to get rid of x, re-arrange u^2 = 2x + 7 and sub into the question
Isnt this a 4u process? 3u kids probs wont know about it...
 

HeroicPandas

Heroic!
Joined
Mar 8, 2012
Messages
1,547
Gender
Male
HSC
2013
Re: HSC 2013 3U Marathon Thread

Isnt this a 4u process? 3u kids probs wont know about it...
THe guy said to let u^2 = 2x+7 which is nice to eliminate the presence of square roots

If given this sub, we make u the subject, there will be a dirty plus-minus. How else can we do it? xD
 
Last edited:
Status
Not open for further replies.

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

Top