HSC 2012 MX2 Marathon (archive) (1 Viewer)

math man · Feb 26, 2012

Re: 2012 HSC MX2 Marathon

you're not the only one, it does that for all, however, how do robots gain weight by means of human food?
I thought eating metal would make you gain weight

SpiralFlex · Feb 26, 2012

Re: 2012 HSC MX2 Marathon

I eat nuts and bolts and humans.

I better go study or clown will eat me, I will revisit the conics question I posted up, I think it's incorrect.

Post more questions, when I get back tomorrow I shall be having fun on BOS...

math man · Feb 26, 2012

Re: 2012 HSC MX2 Marathon

SpiralFlex said:
I eat nuts and bolts and humans.

I better go study or clown will eat me, I will revisit the conics question I posted up, I think it's incorrect.

Post more questions, when I get back tomorrow I shall be having fun on BOS...

your conics question is not entirely wrong, the m<0 condition restricts point of contact to quad1 only, so if you lift that conditon the question is fine

IamBread · Feb 26, 2012

Re: 2012 HSC MX2 Marathon

AAEldar said:
I don't want to spoil the party but...

Any chance we could have questions more orientated towards a regular MX2 student, or a little harder, but something that most should at least be able to attempt. A lot of people would probably be scared off, especially since you guys are into or out of uni maths already!

Yeah that's probably a good idea. This one is for people who are doing their HSC, and not done it already,

$$Show $ \int^a_0 f(x)dx = \int^a_0 f(a-x)dx$

zeebobDD · Feb 26, 2012

Re: 2012 HSC MX2 Marathon

is it bad that i consume maccas atleast 3-4times a week, ontop of other junk food everyday?:S

SpiralFlex · Feb 26, 2012

Re: 2012 HSC MX2 Marathon

zeebobDD said:
is it bad that i consume maccas atleast 3-4times a week, ontop of other junk food everyday?:S

I eat Maccas, 8 times a week...So yes.

lolcakes52 · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

IamBread said:
$$Show $ \int^a_0 f(x)dx = \int^a_0 f(a-x)dx$

Are you sure this is right, it looks like RHS should be equal to -1*LHS

IamBread · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

lolcakes52 said:
Are you sure this is right, it looks like RHS should be equal to -1*LHS

It's right.

lolcakes52 · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

Okay, because im feeling like an idiot and getting it consistently wrong apparently.

IamBread · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

How are you doing it?

kingkong123 · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

IamBread said:
Yeah that's probably a good idea. This one is for people who are doing their HSC, and not done it already,

$$Show $ \int^a_0 f(x)dx = \int^a_0 f(a-x)dx$

$\textup{For }\int^a_0 f(a-x)dx\\\textup{Let }u=a-x \therefore du=-dx\\\textup{also when }x=a\textup{ , }u=0\\\textup{and when }x=0\textup{ , }u=a\\\therefore \int^a_0 f(a-x)dx=-\int_{a}^{0}f(u)du\\=\int_{0}^{a}f(u)du\\=\int_{0}^{a}f(x)dx=LHS\\\\Q.E.D.$

lolcakes52 · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

Okay, I cant use latex so I have to explain it. Basically I let the primitive functions of f(x) and f(a-x) be F(x) and F(a-x) respectively. Then I evaluate them as one would usually and I get F(a)-F(0) and F(0)-F(a).

IamBread · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

Well the way I would do it is the way kingkong123 did, except show LHS = RHS, not RHS = LHS.

lolcakes52 · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

But what I cant understand is why both of methods seem valid and yet they are mutually exclusive.

Sidekickk · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

well RHS gives you something to work with, you wouldn't know what to do if you started from LHS.

Rezen · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

lolcakes, the if F(x) is the primitive of f(x) then -F(a-x) is the primitive of f(a-x)

zeebobDD · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

SpiralFlex said:
I eat Maccas, 8 times a week...So yes.

dw my sporty attributes will work off the fat

largarithmic · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

You can like, do that integration thing just by considering the geometry of it right; like sending x -> a-x is the same as reflecting the graph about the line x = a/2, so the area under the curve between 0 and a is preserved

Carrotsticks · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

largarithmic said:
You can like, do that integration thing just by considering the geometry of it right; like sending x -> a-x is the same as reflecting the graph about the line x = a/2, so the area under the curve between 0 and a is preserved

You really like your geometry.

Analysis ftw.

IamBread · Feb 27, 2012

Re: 2012 HSC MX2 Marathon

Never thought of it as geometry, I'm not really a geometry person

HSC 2012 MX2 Marathon (archive) (1 Viewer)

Member

Well-Known Member

Member

Member

Member

Well-Known Member

Member

Member

Member

Member

Member

Member

Member

Member

Member

Member

Member

Member

Retired

Member

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