Preliminary mathematics marathon (1 Viewer)

hscishard · Jun 20, 2010

x^2 -1
You're askingh for the general one, arent you?

random-1005 · Jun 20, 2010

hscishard said:
x^2 -1
You're askingh for the general one, arent you?

yes

in normal quadratic form, sqaured term, linear term and constant =0

hscishard · Jun 21, 2010

What terms should be in there?

random-1005 · Jun 21, 2010

hscishard said:
What terms should be in there?

p's and q's obviously

Rezen · Jun 22, 2010

edmundsung · Jun 23, 2010

$\frac{2x+5}{x+1}< 3$

i know it's easy for u guys...
but i still don't know how to solve it by multiplying the square of the denominator.
greatly appreciated if someone can help

random-1005 · Jun 23, 2010

edmundsung said:
$\frac{2x+5}{x+1}< 3$

i know it's easy for u guys...
but i still don't know how to solve it by multiplying the square of the denominator.
greatly appreciated if someone can help

mmm hsc 2012, looking to get a head start?

First step: exclude values where denominator=0 { however, you will see this only matters when you have a "less than or equal" or a "greater than or equal"}

(2x+5)(x+1)^2 / (x+1) < 3(x+1)^2 { DONT EXPAND, it is easier to move all terms to one side and factorise, saves time}
(2x+5)(x+1)-3(x+1)^2 <0
(x+1) { (2x+5) -3(x+1) } <0
(x+1)( 2-x) <0
x<-1, x > 2 ( if you need explaination from the previous step to this one please ask)

ohexploitable · Jun 23, 2010

edmundsung · Jun 23, 2010

random-1005 said:
mmm hsc 2012, looking to get a head start?

First step: exclude values where denominator=0 { however, you will see this only matters when you have a "less than or equal" or a "greater than or equal"}

(2x+5)(x+1)^2 / (x+1) < 3(x+1)^2 { DONT EXPAND, it is easier to move all terms to one side and factorise, saves time}
(2x+5)(x+1)-3(x+1)^2 <0
(x+1) { (2x+5) -3(x+1) } <0
(x+1)( 2-x) <0
x<-1, x > 2 ( if you need explaination from the previous step to this one please ask)

ohexploitable said:
$\\\frac{2x+5}{x+1}<3 \\\\\frac{(2x+5)(x+1)^2}{x+1}<3(x+1)^2 \\\\(2x+5)(x+1)<3(x+1)^2 \\\\(2x+5)(x+1)-3(x+1)^2<0 \\\\(x+1)(2x+5-3x-3))<0 \\\\(x+1)(-x+2)<0 \\\\(x+1)(x-2)>0 \\\\x>2, x<-1$

thank you so much

t00l · Jun 23, 2010

Rezen said:
$x^2+px+q=0 \\x=\frac{-p\pm \sqrt {p^2-4q}}{2} \\\Rightarrow a-b=\sqrt {p^2-4q}, \;b-a=-\sqrt {p^2-4q} \\\therefore equation \; is \; (x-\sqrt {p^2-4q})(x+\sqrt {p^2-4q})=0 \\ x^2-p^2+4q=0$

shat brix

hscishard · Jun 23, 2010

Rezen said:
$x^2+px+q=0 \\x=\frac{-p\pm \sqrt {p^2-4q}}{2} \\\Rightarrow a-b=\sqrt {p^2-4q}, \;b-a=-\sqrt {p^2-4q} \\\therefore equation \; is \; (x-\sqrt {p^2-4q})(x+\sqrt {p^2-4q})=0 \\ x^2-p^2+4q=0$

For some reason, I don't think that's correct

Rezen · Jun 23, 2010

$sum \;of \;roots: a+b=-p \\product\;of\;roots:ab=q\\also, \; (a+b)^2=a^2+b^2+2ab \\ \therefore a^2+b^2 =(a+b)^2-2ab=p^2-2q \\ \\ subbing \; (a-b) \;into \;x^2-p^2+4q=0 \\LHS=(a-b)^2-p^2+4q \\ =a^2+b^2-2ab -p^2+4q \\=p^2-2q-2q-p^2+4q\\=0 \\similarly for x=(b-a), \;noting\; (b-a)=-(a-b) \;and \; (b-a)^2=(a-b)^2$

If thats not enough proof i can think of two other methods to derive the polynomial.

nat_doc · Jun 23, 2010

x^2 -q=0

sum or roots of new equation is 0 and product is: -(a-b)(a-b) =-(a-b)^2= -sqrt(P+q-4abc+2sin\theta) *using the guassian distribution formula*
then upon inspection, product of roots = -q thus x^2 -q=0

ohexploitable · Jul 22, 2010

New Question:

$\\\text{The roots of the equation }x^{4}-px^{3}+qx^{2}-pqx+1=0\text{ are }\alpha,\beta,\gamma\text{ and }\delta.\text{ Find the value of }(\alpha+\beta+\gamma)(\alpha+\beta+\delta)(\beta+\gamma+\delta)(\alpha+\gamma+\delta)$

random-1006 · Jul 22, 2010

ohexploitable said:
New Question:

$\\\text{The roots of the equation }x^{4}-px^{3}+qx^{2}-pqx+1=0\text{ are }\alpha,\beta,\gamma\text{ and }\delta.\text{ Find the value of }(\alpha+\beta+\gamma)(\alpha+\beta+\delta)(\beta+\gamma+\delta)(\alpha+\gamma+\delta)$

thats not hard, just long, get some interesting questions lol

ohexploitable · Jul 22, 2010

random-1006 said:
thats not hard, just long, get some interesting questions lol

The trick is to find a shortcut, it can be done in a few lines.

random-1006 · Jul 22, 2010

ohexploitable said:
The trick is to find a shortcut, it can be done in a few lines.

lol what expand ( p -a) ( p-b) (p-c) ( p-d), where a, b, c, d are roots

its a little less work i guess

ohexploitable · Jul 22, 2010

random-1006 said:
lol what expand ( p -a) ( p-b) (p-c) ( p-d), where a, b, c, d are roots

its a little less work i guess

I felt special because I was the only one in class who thought of that.

random-1006 · Jul 22, 2010

ohexploitable said:
I felt special because I was the only one in class who thought of that.

lol why the

ohexploitable · Jun 2, 2011

Re: another question

Much fun was had in this thread.

Quick, someone post a new question!

Preliminary mathematics marathon (1 Viewer)

Active Member

Banned

Active Member

Banned

Member

Member

Banned

hey

Member

Member

Active Member

Member

Member

hey

Banned

hey

Banned

hey

Banned

hey

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