• We need your support!

    We are currently struggling to cover the operational costs of Xtremepapers, as a result we might have to shut this website down. Please donate if we have helped you and help make a difference in other students' lives!
    Click here to Donate Now (View Announcement)

Mathematics: Post your doubts here!

M

memyself15

Messages
1,136
Reaction score
12,982
Points
523
elbeyon said:
Please help me I really need help on the Q. no 5(i) of the below mentioned paper. (Please explain in details the method)


Question Paper :- http://www.xtremepapers.com/CIE/International A And AS Level/9709 - Mathematics/9709_w08_qp_1.pdf


Marking Scheme :-
http://www.xtremepapers.com/CIE/International A And AS Level/9709 - Mathematics/9709_w08_ms_1.pdf
Click to expand...
greatest value of cos is 1 and minimum value is -1.
multiply the inequality by -b bcoz the range is given in x.
as you are multiplying inequality by negative so the inequality signs change.
the new inequality becomes: -b (less than sign) -bcosx (greater than sign)b
now multiply it by a : a-b(less than) a-bcosx (greater than) a+b
thus, minimum value: a-b which is given -2 and maximum value : a+b which is equal to 10.
now solve both equtions.
hope that helps.
 
CaptainDanger

CaptainDanger

Messages
5,877
Reaction score
4,244
Points
323
elbeyon said:
Please help me I really need help on the Q. no 5(i) of the below mentioned paper. (Please explain in details the method)


Question Paper :- http://www.xtremepapers.com/CIE/International A And AS Level/9709 - Mathematics/9709_w08_qp_1.pdf


Marking Scheme :-
http://www.xtremepapers.com/CIE/International A And AS Level/9709 - Mathematics/9709_w08_ms_1.pdf
Click to expand...

Maximum of Cos is 1 and Minimum of Cos is -1.

You have to form two equations and then solve them simultaneously...

Maximum
10=a-b (1)
10=a-b

Minimum
-2=a-b(-1)
-2=a+b

Solve them simultaneously... You will get the answers...
 
elbeyon

elbeyon

Messages
204
Reaction score
81
Points
38
@Captain: I have already tried the way you mentioned but it gives the wrong answer ( Check in Marking scheme and Examination Report). Anyway thanks
@memyself15: I didn't got what you actually are trying to say. Can you please elaborate it. Please and Thank you too.

Others also, please help me.
 
CaptainDanger

CaptainDanger

Messages
5,877
Reaction score
4,244
Points
323
C
elbeyon said:
@Captain: I have already tried the way you mentioned but it gives the wrong answer ( Check in Marking scheme and Examination Report). Anyway thanks
@memyself15: I didn't got what you actually are trying to say. Can you please elaborate it. Please and Thank you too.

Others also, please help me.
Click to expand...

Oh... Read the question again it says they are positive constants....

By the way you can do it the other way...

When you sketch the graph of it... The maximum point is going to be at 180... And minimum at 0 or 360... So put 180 at x for the maximum equation and for minimum either put 0 or 360 in the equation at x both will give you the same answer...

The equations you get will be

10=a-b cos 180

and

-2=a-b cos 0

solve using these...
 
Unicorn

Unicorn

Messages
258
Reaction score
99
Points
28
when finding the domain of a function does the the y value have to be positive?
E.G.
6/2x + 1.5=y the answer says from 0<x ≤2 but i put anything but 0 it gives a value

but anything above 2 is negative so does it have to be positive?
 
CaptainDanger

CaptainDanger

Messages
5,877
Reaction score
4,244
Points
323
Unicorn said:
when finding the domain of a function does the the y value have to be positive?
E.G.
6/2x + 1.5=y the answer says from 0<x ≤2 but i put anything but 0 it gives a value

but anything above 2 is negative so does it have to be positive?
Click to expand...

I don't get what you exactly want to know? This question is from?
 
aliya_zad

aliya_zad

Messages
144
Reaction score
21
Points
28
walaikumusalam..
yes i did equate them to zero but dunno how to get the markscheme answers Untitled.png
 
Unicorn

Unicorn

Messages
258
Reaction score
99
Points
28
CaptainDanger said:
I don't get what you exactly want to know? This question is from?
Click to expand...
i want to know if when finding the domain does the y value obtained from x have to be positive?

[question 11 ii]
 

Attachments

  • 9709_s07_qp_1.pdf
    83 KB · Views: 4
  • 9709_s07_ms_1.pdf
    200.7 KB · Views: 3
U

unique840

Messages
755
Reaction score
159
Points
53
aliya_zad said:
walaikumusalam..
yes i did equate them to zero but dunno how to get the markscheme answers View attachment 3285
Click to expand...
value of a=3
so x^2 + 3x + 1 = 0 x^2 - 3x - 1 = 0
x = [-b +- (b^2 - 4ac)^0.5] / 2a x = [-b +- (b^2 - 4ac)^0.5] / 2a
x = {-3 +- [(3)^2 - 4(1)(1)]^0.5} / 2(1) x = {3 +- [(-3)^2 - 4(1)(-1)]^0.5} / 2(1)
x = {-3 +- (5)^0.5} / 2 x = {3 +- (13)^0.5} / 2
 
aliya_zad

aliya_zad

Messages
144
Reaction score
21
Points
28
unique840 said:
value of a=3
so x^2 + 3x + 1 = 0 x^2 - 3x - 1 = 0
x = [-b +- (b^2 - 4ac)^0.5] / 2a x = [-b +- (b^2 - 4ac)^0.5] / 2a
x = {-3 +- [(3)^2 - 4(1)(1)]^0.5} / 2(1) x = {3 +- [(-3)^2 - 4(1)(-1)]^0.5} / 2(1)
x = {-3 +- (5)^0.5} / 2 x = {3 +- (13)^0.5} / 2
Click to expand...

OMG this iz like so easy....
thank you!!:)
 
CaptainDanger

CaptainDanger

Messages
5,877
Reaction score
4,244
Points
323
Unicorn said:
then why does the answer have them between these two values? yet i put anything greater/less than the limit it still works :$
Click to expand...

Obviously the values will come... But you can't take them as domain of the given function...
 
Silent Hunter

Silent Hunter

Messages
4,609
Reaction score
3,903
Points
323
Question about S1:

Might seem easy but i cant get it :(

The letters of the word POSSESSES are written on nine cards, one on each card. The cards are shuffled and four of them are selected and arranged in a straight line.

(a) How many possible selections are there of the four letters?
(b) How many arrangements are there of the four cards?

Thank You
 
You must log in or register to reply here.
Top