• Best of luck to the class of 2024 for their HSC exams. You got this!
    Let us know your thoughts on the HSC exams here
  • YOU can help the next generation of students in the community!
    Share your trial papers and notes on our Notes & Resources page
MedVision ad

3u Mathematics Marathon V 1.1 (2 Viewers)

P

pLuvia

Guest
For f(x)
(3-x)/(5-x)>0
(3-x)(5-x)>0
x<3, x>5

Next question
Find the general solution of the equation cos2x=cosx
 

zeek

Member
Joined
Sep 29, 2005
Messages
549
Location
ummmmm
Gender
Male
HSC
2006
cos2x=cosx
2cos2x -1 -cosx =0
.:cosx=[1+-sqrt(1-4.2.-1)]/4
=(1+-3)/4
.:cosx=1 or -0.5
.: x =2pi/3 or 0


EDIT: WOOPS LOL

cos2x=cosx
.: 2x=2pi.n+-x
.:3x=2pi.n OR x=2pi.n
.:x=2pi.n/3 OR x=2pi.n
i hope thats rite :p

Next question
Prove that d(3x)/dx = 3xln3
 
Last edited:

followme

Member
Joined
Feb 22, 2006
Messages
79
Gender
Male
HSC
2006
LottoX said:
Next question:

Assuming the tide acts in simple harmonic motion, if the sea level was 2 metres above a dock at high tide at 7:45 a.m. and 1.2 metres below the same dock at low tide at 1:50p.m. When will the sea level be equal with the height of the dock between these times?
shm equation:
X=Acos(nt + a)
A= (1.2+2)/2 = 1.6
period:
13hr50min - 7hr45min = 6hr5min
6hr5min * 2=12hr10min
Period=2pi/n ie. 73/6=2pi/n n=12pi/73

X=1.6 cos (12pi/73 *t +a)
t=0 X=1.6 so a=0
X=1.6 cos (12pi/73 *t)

height of dock: 1.6-2=-0.4
-0.4 = 1.6 cos (12pi/73 *t)
cos (12pi/73 *t) =-0.25
(12pi/73) t = 1.82347....
t=3.53=3hr32min
3hr32min+7hr45min =11hr17min

ie. sea level = dock is at 11:17 am
 

followme

Member
Joined
Feb 22, 2006
Messages
79
Gender
Male
HSC
2006
next Q:
a coin is biased so that in any one throw there is a constant probability P (where P =/= 0.5) that the coin shows heads. In 6 throws of the coin the probability of 3 heads is twice the probability of 2 heads. Find the value of P
 
P

pLuvia

Guest
P(H)=p, P(T)=1-p
Let x be the number of heads
P(x=3)=2P(x=2)
6C3*p3*(1-p)3=2[6C2*p2*(1-p)4]
6C3*p=2[6C2*(1-p)]
20p=30(1-p)
p=3/5

Next question
Find lim{x->0}[sin3x/tan(x/2)]
 
Last edited by a moderator:

zeek

Member
Joined
Sep 29, 2005
Messages
549
Location
ummmmm
Gender
Male
HSC
2006
for x->0:
sinx -> x
cosx -> 1
tanx -> x

.: sin3x/tan(x/2) ->3x/(x/2) -> 6

Next question:
Show that 4C09C4 + 4C19C3 + 4C29C2 + 4C39C1 + 4C49C0 = 13C4
 

Riviet

.
Joined
Oct 11, 2005
Messages
5,593
Gender
Undisclosed
HSC
N/A
LottoX said:
(1+x)n = nC0 + nC1x + nC2x2 + ... + nCnxn

Let x = 1

Equation 1:

2n = nC0 + nC1 + nC2 + ... + nCn

Let x = -1

Equation 2:

0 = nC0 - nC1 + nC2 + ... + (-1)n nCn

Hence, moving the odd terms to the other side gives:

When n is even

nC0 + nC2 + ... + nCn = nC1 + nC3 + ... + nCn-1

When n is odd

nC0 + nC2 + ... + nCn-1 = nC1 + nC3 + ... + nCn

And since Equation 1 + Equation 2:

When n is even or odd

2n = 2(nC0 + nC2 + ... + nCn)

Divide by 2:

2n-1 = nC0 + nC2 + ... + nCn

But nC0 + nC2 + ... + nCn

= nC1 + nC3 + ... + nCn-1 when even

and

= nC1 + nC3 + ... + nCn when odd

Therefore:

nC1 + nC3 + ... = 2n-1
LottoX said:
Man that took ages.
:p
 
P

pLuvia

Guest
Show that 4C09C4 + 4C19C3 + 4C29C2 + 4C39C1 + 4C49C0 = 13C4

Using, (x+1)4(x+1)9=(1+x)13
Expand it all out
(4c4*x^4+4c3*x^3+..+4c0)(9c9*x^9+9c8*x^8+..+9c0)=(13c13*x^13+13c12*x^12+..+13c0)
Equate coefficients of x^4 for both sides
4c0*9c4+4c1*9c3+4c2*9c2+4c3*9c1+4c4*9c0=13c4

Next question
Consider the graph of y=1/x, show that 1/(k+1) < int.{[k+1] to k}(dx/x) < 1/k
 
Last edited by a moderator:

zeek

Member
Joined
Sep 29, 2005
Messages
549
Location
ummmmm
Gender
Male
HSC
2006
I thought we were over these type of questions.
I can't help it :(

Okay im not sure what i have to do with the y=1/x graph but i can show the other bit ...

1/(k+1) < [ln x]k+1k < 1/k {after integration}
.:e1/(k+1)< 1 + 1/k < e1/k

by drawing the graphs you see that this is true .: the intial statement is true.
 
Last edited:

zeek

Member
Joined
Sep 29, 2005
Messages
549
Location
ummmmm
Gender
Male
HSC
2006
hmmmm ok next question...

In a flock of 1000 chickens, the number P infected with a disease at time t years is given by P=1000/(1+ce-1000t) where c is a constant.
i) Show that, eventually, all the chickens will be infected.
ii) Suppose that when time t=0, exactly one chicken was infected. After how many days will 500 chickens be infected.
iii)Show that dP/dt= P(1000-P).
 

onebytwo

Recession '08
Joined
Apr 19, 2006
Messages
823
Location
inner west
Gender
Male
HSC
2006
zeek said:
hmmmm ok next question...

In a flock of 1000 chickens, the number P infected with a disease at time t years is given by P=1000/(1+ce-1000t) where c is a constant.
i) Show that, eventually, all the chickens will be infected.
ii) Suppose that when time t=0, exactly one chicken was infected. After how many days will 500 chickens be infected.
iii)Show that dP/dt= P(1000-P).
i seem to recall ive done this question before....somewhere
i) as t -> infinity, ce-1000t->0, then P->1000

ii) if t=0 and P=1, then c=999. put P=500, then 999e-1000t=1,
then t=[ln(999)]/100=0.0690675...years=25.2days. so after 26 days 500 chivkens will be infected
iii) on differentiating, using the chain rule, dP/dt={1000000ce-1000t}/{1+ce-1000t}2
taking out the common factor, which happens to be P, we end up with, dP/dt=P(1000-P)
EDIT: missed the last part
 
Last edited:
P

pLuvia

Guest
zeek said:
I can't help it :(

Okay im not sure what i have to do with the y=1/x graph but i can show the other bit ...

1/(k+1) < [ln x]k+1k < 1/k {after integration}
.:e1/(k+1)< 1 + 1/k < e1/k

by drawing the graphs you see that this is true .: the intial statement is true.
You use the graph, and then using rectangles and the area under the curve, you prove that result
 

onebytwo

Recession '08
Joined
Apr 19, 2006
Messages
823
Location
inner west
Gender
Male
HSC
2006
NEXT QUESTION:
this one had me thinking for a while......
Q - five persons play a card game in which one pair play against the other pair. the fifth person acts as referee. in how many ways can this occur?

btw - how do you make a spoiler?
 
Last edited:

Users Who Are Viewing This Thread (Users: 0, Guests: 2)

Top