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This thread is really helpful 
Thanks all and creator XPFMember
Thanks all and creator XPFMember-
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Mathematics: Post your doubts here!
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Thanks! and No problem bro.This thread is really helpful
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http://papers.xtremepapers.com/CIE/...S Level/Mathematics (9709)/9709_w11_qp_33.pdf question 10 part1
http://papers.xtremepapers.com/CIE/...S Level/Mathematics (9709)/9709_s12_qp_61.pdf q6 part II.
http://papers.xtremepapers.com/CIE/...S Level/Mathematics (9709)/9709_s11_qp_33.pdf Q7 part iii.
Thanks a lot!
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Really sorry I meant 6 part ii.
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Well, For the stats question:
They say there's 600 feathers, with 63 less than 6 cm, 155 more than 12 cm.
so for P(X<6)= 63/600=0.105 and for P(X>12)= 155/600=0.258
(by checking from the normal distribution table you'd see theres no 0.105 or 0.258! so you gotta subtract them from 1)
1-0.105=0.895 and 1-0.258=0.742
You get 2 equations; (i) (6-u)/S.D = -1.253* & (ii) (12-u)/S.D = 0.65
Solve simultaneously and they go down to:
6 + 1.253S.D = 12 - 0.65.D
=S.D = 3.15
and you can calculate the mean (u) now.
*Note that I put the negative sign with 1.253 in equation (i) because if you have a case where there's a probability for something less than a certain value e.g: P(X<a), and its probability is less than 0.5 e.g: P(X<a) = 0.2, you put a -ve sign. While there's no negative sign in equation (ii) because the given probability is for something greater than a certain value e.g: P(X>a) and its probability is less than 0.5 e.g: P(X>a)=0.6. I can't explain the reason online without diagrams, but there's a general rule, if there's a less than "<" sign, and the probability is less than 0.5, you put -ve sign. Also if there's a greater than ">" sign with the probability greater than "0.5" you put a -ve sign. And if there's a greater than ">" sign, and the probability is less than 0.5 you put a +ve sign. Also, when theres a less than "<" sign with probability greater than 0.5, you put a +ve sign.
IGNORE THIS IF YOU ALREADY KNOW ABOUT THIS. IT MAYBE REALLY CONFUSING.
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2nd part????
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Thank u so much for the detailed answer.awesome.
Can u plz solve the other too?
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P1
?
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For paper 61 Q6 part ii
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q10 part 1 for oct/nov
(Lim from 0 to 1) Int(u^(n+2) + u^n)
converting the limits, tan(pi/4)= 1 tan(0)=0
converting dx into du, u=tanx => du/dx= sec^2(x)= 1+tan^2(x)
dx= du/1+u^2
Now, lim(0-1) int[u^n(u^2 + 1)]/ (u^2 + 1)
(u^2 +1) cancels out. so youre left with int(u^n)du
= u^n+1/n+1
put in the limits and you get 1/n+1
First get the direction of the line AB....this will be perpendicular with the plane's normal.....equate their dot product to 0.......you will get an equation.....now use the given angle and ......you will get another equation.....solve the two equations...you will get the value of b and c......
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an extremely idiotic atempt
Heres the deal
If you have an equation
Ax²-bx +c =0
Frst make the coefficient of x²=1
We ignore the c and see only the a and b part
To remove the a and make it one we take common a that wud bring us to
A (x²- (b/A)x) +c
Then we divide the b wali term by 2 ( so that we can justify the 2ab part when we expand (a -b)^2)
A(x² - (b/2A)x) +c
Add the (b/2) square and subtract b/2 square
[A(x²-(B/2A)- (B ²/4A) +(B ²/4A)]+C
Next we take out the +(b ²/4A) out of the bracket
Remember in the process it will be multiplied by A
b²/4A wen multiplied by A will give B ²/4
thus
A[(x²-(B/2A) +(B ²/4A)] -B ²/4 +c= 0
Can u see the statement inside the []?
Does it resemble a ² - 2ab +c ?
So A[x- (B/2A)] ²] +c-B ²/4
robinhoodmustafa
Heres the deal
If you have an equation
Ax²-bx +c =0
Frst make the coefficient of x²=1
We ignore the c and see only the a and b part
To remove the a and make it one we take common a that wud bring us to
A (x²- (b/A)x) +c
Then we divide the b wali term by 2 ( so that we can justify the 2ab part when we expand (a -b)^2)
A(x² - (b/2A)x) +c
Add the (b/2) square and subtract b/2 square
[A(x²-(B/2A)- (B ²/4A) +(B ²/4A)]+C
Next we take out the +(b ²/4A) out of the bracket
Remember in the process it will be multiplied by A
b²/4A wen multiplied by A will give B ²/4
thus
A[(x²-(B/2A) +(B ²/4A)] -B ²/4 +c= 0
Can u see the statement inside the []?
Does it resemble a ² - 2ab +c ?
So A[x- (B/2A)] ²] +c-B ²/4
robinhoodmustafa
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Formula
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Sinus, due to Math
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Still I am weak at those. Can you do it step by step all 3 parts please.
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