MedVision ad

2u Mathematics Marathon v1.0 (1 Viewer)

ztrask02

Professional Expert
Joined
Jun 8, 2005
Messages
33
Gender
Male
HSC
2005
Perhaps its a bit late, but I was just wondering...
Show that v=Ce-kt satisfies the equation dv/dt=-kv, basically exponential growth and decay and easy throw away marks, but what do you actually write to get the marks? I looked up the proof in the text book, but its about ten lines long... not worth it for 2 marks.
 

rama_v

Active Member
Joined
Oct 22, 2004
Messages
1,151
Location
Western Sydney
Gender
Male
HSC
2005
The real answer to that fish question is something like this:

F1 = 100000(1.1) - 15400
F2 = 100000(1.1) - 15400(1 + 1.1)
.
.
.
Fn = 100000(1.1) - 15400(1 + 1.1 + 1.12 + ... + 1.1n-1)
Fn = 100000(1.1) - 15400[(1)(1.1n - 1)/(1.1-1)]

Then make Fn = 0, determine the number of years, then take this value, multiply by 15400 and finally multiply by $10 each to get the total income. This was basically the last question in the 1998 HSC 2 unit exam.
 

chin music

Member
Joined
May 16, 2005
Messages
73
Location
Bondi Beach
Gender
Undisclosed
HSC
N/A
MarsBarz said:
Lol didn't realise my probability question would get 2 pages of attention. As I've said before, the answer is 7/10 and I have posted the full solution above.

Next question:
Solve the equation sin2x=sinx for -PI<=x<=PI
sin2x=sinx
x=2x

Next q. differentiate 5^x in terms of x
 

chin music

Member
Joined
May 16, 2005
Messages
73
Location
Bondi Beach
Gender
Undisclosed
HSC
N/A
rama_v said:
The real answer to that fish question is something like this:

F1 = 100000(1.1) - 15400
F2 = 100000(1.1) - 15400(1 + 1.1)
.
.
.
Fn = 100000(1.1) - 15400(1 + 1.1 + 1.12 + ... + 1.1n-1)
Fn = 100000(1.1) - 15400[(1)(1.1n - 1)/(1.1-1)]

Then make Fn = 0, determine the number of years, then take this value, multiply by 15400 and finally multiply by $10 each to get the total income. This was basically the last question in the 1998 HSC 2 unit exam.
crap i was way off. thats wierd i remember getting right in the prac paper but i guess the paper helped me along a bit with the different steps
 

word.

Member
Joined
Sep 20, 2005
Messages
174
Gender
Male
HSC
2005
chin music said:
sin2x=sinx
x=2x
[/spoiler]

Next q. differentiate 5^x in terms of x
x = 2x? lol what the?

this would require extension1 knowledge

2sinxcosx = sinx
sinx(2cosx - 1) = 0
sinx = 0, cosx = 1/2
x = -pi/3, 0, pi, pi/3

d/dx 5x
= d/dx eln5x
= ln5*eln5x
= ln5*5x

Question:
Solve sin22x + cos2x = 1 for 0 <= x <= pi
 
I

icycloud

Guest
word. said:
Question:
Solve sin^2 2x + cos2x = 1 for 0 <= x <= pi
sin^2(2x) + cos(2x) = 1
Let u = 2x
0 <= 2x <= 2pi
Therefore, 0 <= u <= 2pi

Equation becomes:
sin^2(u) + cos(u) - 1 = 0
1-cos^2(u) + cos(u) - 1 = 0
-cos^2(u)+cos(u) = 0
cos^2 (u) - cos(u) = 0
cos(u) [cos(u) - 1] = 0

Thus, cos(u) = 0, 1
u = pi/2, 3pi/2, 0, 2pi
2x = pi/2, 3pi/2, 0, 2pi

Thus, x = pi/4, 3pi/4, 0, pi #

Next Question
Simplify fully: [2e^(ln(x)*x)] / ln(e^[2x])
 

Slidey

But pieces of what?
Joined
Jun 12, 2004
Messages
6,600
Gender
Male
HSC
2005
Top=2x^x
Bottom=2x
.'. answer is x^(x-1).


Next Question:
Hence, derive [2e^(ln(x)*x)] / ln(e^[2x]).
 

Estel

Tutor
Joined
Nov 12, 2003
Messages
1,261
Gender
Male
HSC
2005
I assume you mean differentiate.
(lnx + (x-1)/x)x^(x-1) by rewriting as e^ln(x(x-1))

Next (a question I made):
P(a,a^3) and Q(b,b^3) are the points of intersection of y = k^2/x and y = x^3 (k>0)
i) Explain why a and b are the roots of k/x^2 - x^3 = 0. Without finding the roots of the equation, show that a+b=0 and ab=-k
ii) Show that the line PQ has equation y-a^3 = k(x-a)
iii) Find an expression for PQ in terms of b.
iv) Hence show that the equation of PQ is y = kx.

*trying to burn boredom before ee1 exam*
 

who_loves_maths

I wanna be a nebula too!!
Joined
Jun 8, 2004
Messages
600
Location
somewhere amidst the nebulaic cloud of your heart
Gender
Male
HSC
2005
Question by Estel

if P and Q are the intersections, then they must satisfy both equations. they do satisfy y = x^3 ; but for y = k^2/x :

1) a^3 = k^2/a ---> a^4 = k^2 ---> a^2 = +/- k

2) b^3 = k^2/b ---> b^4 = k^2 ---> b^2 = +/- k

but both a^2 & b^2 are > 0 since 'a' and 'b' are reals. hence, there are only two possible cases:

(i) a^2 = k , and, b^2 = k

(ii) a^2 = -k , and, b^2 = -k

but k > 0 ; hence, case (i) is the only possibility.

ie. a^2 = k = b^2 ; assuming that 'a' does not = 'b', then a = -b = sqrt(k)

Therefore;

Answer to (i):

a = -b ---> a+b = 0 ; and, ab = (sqrt(k))(-sqrt(k)) = -k

Answer to (ii):

just algebra and substitution using results obtained in (i)

Answer to (iii):

equation from (ii) is y - a^3 = k(x - a) ; but since a = -b ; then equation in terms of 'b' is:
y + b^3 = k(x + b)

Answer to (iv):

from (ii), equation is y = kx - ak + a^3 ; since -k = ab = -a^2, then -ak = -a^3

ie. equation: y = kx -a^3 + a^3 = kx

thus, y = kx is the equation of PQ.
Next question:

In a game of (fair) coin toss Jack and Jill take alternating turns to toss a coin. Jill gets to go first, followed by Jack. the winner of the game is the person who tosses the first head.

(a) is the game "fair"? who has the higher probability of winning any given game? and what is that probability?

(b) Jack and Jill then decide to play in a competition in which they play a number of the coin toss game. it was agreed that for every game Jack wins in the competition Jill will compensate him $1. the competition ends, however, when Jill gets her first win.
Find the probability that Jack will have more than $99 before the competition ends.
 

word.

Member
Joined
Sep 20, 2005
Messages
174
Gender
Male
HSC
2005
Well maths is better than economics anyday so let's see,


a) No the game isn't fair. Jill clearly has the higher probability of winning as she tosses first.

for Jill to win, she must toss a head on first turn, or toss a head on second turn after Jack tosses a tail on his second turn etc...
i.e. P(Jill wins) = 0.5 + 0.5*0.5*0.5 + 0.55 + ...
this is a limiting sum with a = 0.5, r = 0.52
so P(Jill wins) = a/(1 - r) = 0.5/0.75 = 2/3
so P(Jack wins) = 1 - P(Jill wins) = 1/3
hence Jill has the higher probability of winning: 2/3

b) P(Jack will have more than 99 bucks) = P(Jill loses the first 100 games then wins, + 101 games + 102 games + ...) = (2/3)(1/3)100 + (2/3)(1/3)101 + (2/3)(1/3)102 + ... = (2/3)(1/3)100/(2/3) = (1/3)100 = pretty unlikely , = P(Jill loses the first 100 games) yeah i just repeated myself like an idiot

cbf don't have calculator

Question:
If x, y and 9 are the first three terms of a geometric series and y, x and 2 are the first three terms of an arithmetic sequence, find the values of x and y.
 

richz

Active Member
Joined
Sep 11, 2004
Messages
1,348
word. said:
Question:
If x, y and 9 are the first three terms of a geometric series and y, x and 2 are the first three terms of an arithmetic sequence, find the values of x and y.
9/y=y/x
9x=y2

2-x=x-y
2+y=2x
y=2x-2

9x=(2x-2)2
9x=4x2-8x+4
4x2-17x+4=0

x= 4 or 1/4

y= 6 or -1.5

Now that looks like a better answer :D

Question:
The region bounded by the curve y=ex + e-x, the x axis and the line x=0 and x=2 is rotated about the axis. Find the volume of the solid formed .
 
Last edited by a moderator:

who_loves_maths

I wanna be a nebula too!!
Joined
Jun 8, 2004
Messages
600
Location
somewhere amidst the nebulaic cloud of your heart
Gender
Male
HSC
2005
Originally Posted by word
Well maths is better than economics anyday so let's see,
a) No the game isn't fair. Jill clearly has the higher probability of winning as she tosses first.

for Jill to win, she must toss a head on first turn, or toss a head on second turn after Jack tosses a tail on his second turn etc...
i.e. P(Jill wins) = 0.5 + 0.5*0.5*0.5 + 0.55 + ...
this is a limiting sum with a = 0.5, r = 0.52
so P(Jill wins) = a/(1 - r) = 0.5/0.75 = 2/3
so P(Jack wins) = 1 - P(Jill wins) = 1/3
hence Jill has the higher probability of winning: 2/3

b) P(Jack will have more than 99 bucks) = P(Jill loses the first 100 games then wins, + 101 games + 102 games + ...) = (2/3)(1/3)100 + (2/3)(1/3)101 + (2/3)(1/3)102 + ... = (2/3)(1/3)100/(2/3) = (1/3)100 = pretty unlikely , = P(Jill loses the first 100 games) yeah i just repeated myself like an idiot

cbf don't have calculator
hehehe... i knew part b) would "trick" ppl.
word, there's a much easier way to do part b) than your series method.

the answer is simple P(Jack wins 100 in a row) = (1/3)^100

the rest of the competition after the 100th game is a given - it wouldn't matter what happens after Jack wins 100 games in a row ;)
 

Riviet

.
Joined
Oct 11, 2005
Messages
5,593
Gender
Undisclosed
HSC
N/A
Question:
The region bounded by the curve y=ex + e-x, the x axis and the line x=0 and x=2 is rotated about the axis. Find the volume of the solid formed .
I assume you mean rotated about the x-axis.
V=pi x integral 0->2 y2dx
pi x integral 0->2 (ex-e-x)2dx
=pi x integral 0->2 (e2x+2+e-2x)dx
=pi[e2x/2+2x-e-2x/2]0->2
=pi(e4-1)/2e4+4)
=pi(e8-1)/2e4)+4pi units3
Next Question:
Differentiate (2x+5)6(x-3)3
 
Last edited:

Slidey

But pieces of what?
Joined
Jun 12, 2004
Messages
6,600
Gender
Male
HSC
2005
y=(2x+5)^6(x-3)^3
lny=6ln(2x+5)+3ln(x-3)
y'/y=6*2/(2x+5)+3/(x-3)
y'=3(2x+5)^6(x-3)^3(4/[2x+5]+1/[x-3])
y'=12(2x+5)^5(x-3)^3+3(2x+5)^6(x-3)^2
y'=3(2x+5)^5(x-3)^2(6x-7)

I'll leave a "proper" 2u answer to somebody else. ;)
 
Last edited:

richz

Active Member
Joined
Sep 11, 2004
Messages
1,348
Differentiate (2x+5)6(x-3)3
y'= 6*2(2x+5)5(x-3)3 + (2x+5)6*3(x-3)2
=12(2x+5)5(x-3)3 + 3(2x+5)6(x-3)2
= 3(2x+5)5(x-3)2[4(x-3) + 2x+5]
=3(2x+5)5(x-3)2[6x-7]

slide u come up with the next q, since u solved it first :p. thats wat i hate about these maths marathons, i have to come up with qs.
 

Riviet

.
Joined
Oct 11, 2005
Messages
5,593
Gender
Undisclosed
HSC
N/A
There's also the problem with more 1 person answering a question and ending up with double answers.
 

Slidey

But pieces of what?
Joined
Jun 12, 2004
Messages
6,600
Gender
Male
HSC
2005
Okie dokie:

Express the number 0.98765432109876543210 (the digits 9 through to 0 repeating infinitely) as a fraction.
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top