Author Topic: [CIE] All Pure Mathematics (P1, P2 and P3) doubts here ! (Read 77873 times)

Arthur Bon Zavi · « **Reply #135 on:** March 20, 2011, 09:22:47 am »

Quote from: Vin on March 18, 2011, 03:46:44 pm

You've got to take the derivative of (x^2 + 3), therefore 2x.

Sorry, but I have to correct you :

9709/11/O/N/09

Q 7 (i)

dy/dx of 12/(x^² + 3) not only x² + 3
= 12 (x² + 3)^-1
= -12 (x² + 3)^-2 (2x)
= -24x (x² + 3) ^-2
= -24x/(x² + 3) ²
That’s it for the first question.

Vin · « **Reply #136 on:** March 20, 2011, 11:01:47 am »

Quote from: Fidato on March 20, 2011, 09:22:47 am

Sorry, but I have to correct you :

9709/11/O/N/09

Q 7 (i)

dy/dx of 12/(x^² + 3) not only x² + 3
= 12 (x² + 3)^-1
= -12 (x² + 3)^-2 (2x)
= -24x (x² + 3) ^-2
= -24x/(x² + 3) ²
That’s it for the first question.

I know, but i remember him askin why "2x", therefore just a short explanation

iluvme · « **Reply #137 on:** March 23, 2011, 04:27:06 pm »

Please help

Question attached

elemis · « **Reply #138 on:** March 23, 2011, 05:03:36 pm »

Give me 10-15 minutes.

elemis · « **Reply #139 on:** March 23, 2011, 05:11:14 pm »

Vector OA is parallel to DE.

Vector AB is parallel to EF.

Hence, OA = DE and AB = EF.

OA = 6i

AB = 6j

DQ = 0.5*DF

Since DF = 6i + 6j

DQ = 3i + 3j

To find the position vector of Q we must go from the origin to D then to Q.

So its simply 6k + 3i + 3j

iluvme · « **Reply #140 on:** March 23, 2011, 05:13:47 pm »

Oh right, got it, Thanks!

Arthur Bon Zavi · « **Reply #141 on:** March 27, 2011, 02:02:48 pm »

http://www.xtremepapers.net/CIE/International%20A%20And%20AS%20Level/9709%20-%20Mathematics/9709_s09_qp_1.pdf

(10) (ii) Please ...

iluvme · « **Reply #142 on:** March 27, 2011, 07:34:16 pm »

Question 10

http://www.xtremepapers.net/CIE/International%20A%20And%20AS%20Level/9709%20-%20Mathematics/9709_w07_qp_1.pdf

elemis · « **Reply #143 on:** March 28, 2011, 04:47:08 am »

Quote from: i<3SL on March 27, 2011, 07:34:16 pm

Question 10

http://www.xtremepapers.net/CIE/International%20A%20And%20AS%20Level/9709%20-%20Mathematics/9709_w07_qp_1.pdf

(ii)
$ \frac{\begin{pmatrix} 2\\ 2\\ 2\end{pmatrix}\cdot \begin{pmatrix} -2\\ 2\\ 4 \end{pmatrix}}{\sqrt{2^2+2^2+2^2}\times\sqrt{-2^2+2^2+4^2} }$

Solving the above gives : $\frac{\sqrt{\3}}{3}$

Doing the cos^-1 of the above gives the angle : 61.9 degrees.

(iii)

If PR = 2i + 2j + 2k
PQ = -2i + 2j +4k

Then QR = PR - PQ

Find the modulus of PQ, PR and QR. Then add them all up; you should get the answer.

ashish · « **Reply #144 on:** March 28, 2011, 06:19:15 am »

Quote from: Fidato on March 27, 2011, 02:02:48 pm

http://www.xtremepapers.net/CIE/International%20A%20And%20AS%20Level/9709%20-%20Mathematics/9709_s09_qp_1.pdf

(10) (ii) Please ...

when x=0, y=13
the curve has turning point at (3,-5)
the line of symmetry is at x=3, since we have moved a length of 3 units from (0,0)(neglecting the y coordinate) till (3,0), to get the next part of the graph we ill have to move another 3 units, which will give (6,0)

or you could just solved for y=13 which worth more than one mark

iluvme · « **Reply #145 on:** March 28, 2011, 06:57:58 pm »

Quote from: Ari Ben Canaan on March 28, 2011, 04:47:08 am

(ii)
$ \frac{\begin{pmatrix} 2\\ 2\\ 2\end{pmatrix}\cdot \begin{pmatrix} -2\\ 2\\ 4 \end{pmatrix}}{\sqrt{2^2+2^2+2^2}\times\sqrt{-2^2+2^2+4^2} }$

Solving the above gives : $\frac{\sqrt{\3}}{3}$

Doing the cos^-1 of the above gives the angle : 61.9 degrees.

(iii)

If PR = 2i + 2j + 2k
PQ = -2i + 2j +4k

Then QR = PR - PQ

Find the modulus of PQ, PR and QR. Then add them all up; you should get the answer.

Thanks Ari.

How exactly do you find PR and PQ?

HUSH1994 · « **Reply #146 on:** March 29, 2011, 07:03:05 am »

O\N 2010 P.13 Q4 part 2 please?

elemis · « **Reply #147 on:** March 29, 2011, 07:09:09 am »

Quote from: i<3SL on March 28, 2011, 06:57:58 pm

Thanks Ari.

How exactly do you find PR and PQ?

PR = PA + 0.5 AE + 0.5 AB Read the information given in the question CAREFULLY

PQ = PO + OD + 0.5 DG

elemis · « **Reply #148 on:** March 29, 2011, 07:16:36 am »

Quote from: ~~!$!HUSH!$!~~ on March 29, 2011, 07:03:05 am

O\N 2010 P.13 Q4 part 2 please?

$ 2\pi sinx - \pi = -x$

$\pi(2sinx-1)=-x$

$ 2sinx -1 =\frac{-x}{\pi}$

$2sinx = 1-\frac{x}{\pi}$

Hence, equation of the straight line is : $y = 1-\frac{x}{\pi}$

HUSH1994 · « **Reply #149 on:** March 29, 2011, 07:22:13 am »

Thanks man +rep,and im really sorry for the trouble

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Author Topic: [CIE] All Pure Mathematics (P1, P2 and P3) doubts here ! (Read 77873 times)

Arthur Bon Zavi

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