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Extension One Revising Game (1 Viewer)

conics2008

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kaz1 said:
Is it -2 < x < 2?
cbf typing the working out.
yeap your correct xD

here ill post up some level 2 questions, people posting too many simple question.

Q]

Let P(x) be a polynomial give by

P(x)= ax^4+bx^3+cx^2+dx+e

Suppose the remainder is px+q when P(x) is divided by x^2-m^2

i) show that p= 1/2m *{P(m)-P(-m)} and q=1/2 *{ P(m)+p(-m) }

this was also a 4unit question relating to complex numbers, but its from a 3unit paper.
 
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Mark576

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conics2008 said:
Let P(x) be a polynomial give by

P(x)= ax^4+bx^3+cx^2+dx+e

Suppose the remainder is px+q when P(x) is divided by x^2-m^2

i) show that p= 1/2m *{P(m)-P(-m)} and q=1/2 *{ P(m)+p(-m) }

this was also a 4unit question relating to complex numbers, but its from a 3unit paper.
By the polynomial division transformation:

P(x) = (x2 - m2)Q(x) + px + q

P(m) = pm + q <---- (1)

P(-m) = -pm + q <---- (2)

(1) + (2):

P(m) + P(-m) = 2q => q = [P(m) + P(-m)]/2

(1) - (2):

P(m) - P(-m) = 2pm => p = 1/(2m)[P(m) - P(-m)]

Someone else can post up a new question.
 
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bored of sc

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There are three identical blue marbles and four identical yellow marbles arranged in a row.

How many different arrangements are possible if...
- There are no restrictions?
- Just five marbles are used?
 

omniscience

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bored of sc said:
There are three identical blue marbles and four identical yellow marbles arranged in a row.

How many different arrangements are possible if...
- There are no restrictions?
- Just five marbles are used?
1. 7!/3!4! = 35

2. don't understand the question. Elaborate on it please. Wait, I think I understand what you intended in your question...bear with me for a while. I will post my solution.

7 marbles

1 B marbles + 4 Y marbles = 5!/1!4!
2 B marbles + 3 Y marbles = 5!/2!3!
3 B marbles + 2 Y marbles = 5!/3!2!

Add them up, so you get: 5 + 10 + 10 = 25
 
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bored of sc

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omniscience said:
1. 7!/3!4! = 35

2. don't understand the question. Elaborate on it please.
How many different arrangements of just five of these (the seven) marbles are possible?
 

tommykins

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回复: Re: Extension One Revising Game

You're correct omniscience.
 

bored of sc

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Factorise a3 + b3.

Hence or otherwise, show that

(2sin3A + 2cos3A) / (sinA + cosA) = 2 - sin2A, if sinA + cosA < 0 and sinA + cosA > 0
 

clintmyster

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bored of sc said:
Factorise a3 + b3.

Hence or otherwise, show that

(2sin3A + 2cos3A) / (sinA + cosA) = 2 - sin2A, if sinA + cosA < 0 and sinA + cosA > 0
a3 + b3 = (a+b)(a2-ab+b2)

therefore

[2(Sin A + Cos A)(Sin2 A - Sin A Cos A + Cos2 A)] / Sin A + Cos A
= 2(1 - Sin A Cos A)
= 2 - Sin2A
= RHS
 
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tommykins

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回复: Re: Extension One Revising Game

It's 2-sin2A, not sin^2 A.
 

clintmyster

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Re: 回复: Re: Extension One Revising Game

tommykins said:
It's 2-sin2A, not sin^2 A.
yeah i fixed it up..daym i had it right when i did it on paper.
 

conics2008

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Re: 回复: Re: Extension One Revising Game

com'on guys some good question can u post up.
 

midifile

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Re: 回复: Re: Extension One Revising Game

conics2008 said:
com'on guys some good question can u post up.
okay..

From the top of a cliff an observer spots two ships out at sea. One is on a true bearing of 042o with an angle of depression of 6o, while the other is on a true bearing of 312o with an angle of depression of 4o. If the two ships are 200m apart, find the height of the cliff to the nearest metre.
 

midifile

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Re: 回复: Re: Extension One Revising Game

ahhliss said:
My working is everywhere :S Using scrap paper and I've got triangles everywhere. I got a diagram and broke it apart to simplify it xD

I got 12m for the height.
Yeah thats right. or 11.6m to 1 dp
 

Trebla

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Here's one to think about. What is the flaw in the following:
-1 = (-1)3
= [(-1)6]0.5
= 10.5
= 1
Hence 1 = -1

:p
 

Pwnage101

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ur taking the positive square root, when u could also take the negative square root????

like saying (-1)^2=1, therefore (-1) = 1^0.5 = 1
 

lolokay

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Pwnage101 said:
ur taking the positive square root, when u could also take the negative square root????

like saying (-1)^2=1, therefore (-1) = 1^0.5 = 1
yeah I'd say that's it. you could also take the negative square root.
The square root is defined to be positive, but the indice law you're using is then only true for numbers >0
 

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