FIN622 Assignment 1 Fall 2012 Solution

Tuesday, November 20, 2012 Edit This

Net Present Value (NPV)
NPV = -Io + CF1 / (1+i)^1 + CF2 / (1+i)^2 + CF3 / (1+i)^3 + CF4 / (1+i)^4 +…….+ ∞
For Alpha:
Io= 20,000
i = initial investment for alpha = 14%
For Beta:
Io= 20,000
i = initial investment for Beta = 12% 
......................................
PV of Future Cash Flows of project ALPHA = 53428+ 63435 + 52956+ 37725
= 207547

PI= 207547/200000

ye calculation apni kr laina...main ny rounded kiya howa hy.... same isi tarah BETA ki b calculate krni hy.....just intial investment ki amount less nahi krni....balky intial investment ko divide krna hy
......................
Net Present Value (NPV)
NPV = -Io + CF1 / (1+i)^1 + CF2 / (1+i)^2 + CF3 / (1+i)^3 + CF4 / (1+i)^4 +…….+ ∞
For Alpha:
Io= 20,000
i = initial investment for alpha = 14%
For Beta:
Io= 20,000
i = initial investment for Beta = 12%
...................... 
Profitability Index (PI):
Profitability Index = PV of Future Net Cash Flows / Initial Investment Required 

...................... 
Net Present Value (NPV)
NPV = -Io + CF1 / (1+i)^1 + CF2 / (1+i)^2 + CF3 / (1+i)^3 + CF4 / (1+i)^4 +…….+ ∞
For Alpha:
Io= 20,000
i = initial investment for alpha = 14%
For Beta:
Io= 20,000
i = initial investment for Beta = 12%

Profitability Index (PI):
Profitability Index = PV of Future Net Cash Flows / Initial Investment Required

Year Project Alpha
Years	End Rs.(000)	FVIF  12.3%=1/(1.123)^t	PV	PI
	-200,000	1.000	-200000	-0.85
1	60,000	1.123	67380	2.83
2	80,000	1.261	100890.32	2.12
3	75,000	1.416	106218.59	2.27
4	60,000	1.590	95426.78128	2.83
Total	75,000		169915.6913
Project Beta
Years	End Rs.(000)	FVIF  12.3%=1/(1.123)^t	PV	PI
	-200,000	1.000	-200000	-0.851
1	55,000	1.123	61765	3.093
2	65,000	1.261	81973.385	2.617
3	70,000	1.416	99137.35069	2.430
4	80,000	1.590	127235.7084	2.126
Total	NPV		170111.4441

PV of Future Cash Flows of project ALPHA = 53428+ 63435 + 52956+ 37725
= 207547

PI= 207547/200000 
...................... 

Answers are

1: Net present values (NPV):
Alpha: NPV = 7545.63
Beta: NPV = 243.8
Profitability index (PI):
Alpha: PI = 1.0377
Beta: PI = 1.0012
2) NPV of Alpha is higher, it is favorable
3) Profitability index of Alpha is higher
4) IRR of Alpha is higher so it is favorable project. 
...................... 
Answer 4:

PROJECT ALPHA
Year End	Project Alpha	IRR	IRR+1	(IRR+1)^T			NPV of Cash Flow
0	-200000	14.00%	1 + 14% = 1.14	(1.14)^0	=	1.000	(200,000.00)
1	60000	14.00%	1 + 14% = 1.14	(1.14)^1	=	1.140	52,631.58
2	80000	14.00%	1 + 14% = 1.14	(1.14)^2	=	1.300	61,557.40
3	75000	14.00%	1 + 14% = 1.14	(1.14)^3	=	1.482	50,622.86
4	60000	14.00%	1 + 14% = 1.14	(1.14)^4	=	1.689	35,524.82
				TOTAL NPV			336.66
PROJECT Beta
Year End	Project Alpha	IRR	IRR+1	(IRR+1)^T			NPV of Cash Flow
0	-200000	12.00%	1 + 12% = 1.12	(1.12)^0	=	1.000	(200,000.00)
1	55000	12.00%	1 + 12% = 1.12	(1.12)^1	=	1.120	49,107.14
2	65000	12.00%	1 + 12% = 1.12	(1.12)^2	=	1.254	51,817.60
3	70000	12.00%	1 + 12% = 1.12	(1.12)^3	=	1.405	49,824.62
4	80000	12.00%	1 + 12% = 1.12	(1.12)^4	=	1.574	50,841.45
				TOTAL NPV			1,590.81

Using IRR criterion, project Beta IRR is higher than Project Alpha. So, Select Project Beta. Answer 4:

PROJECT ALPHA
Year End	Project Alpha	IRR	IRR+1	(IRR+1)^T			NPV of Cash Flow
0	-200000	14.00%	1 + 14% = 1.14	(1.14)^0	=	1.000	(200,000.00)
1	60000	14.00%	1 + 14% = 1.14	(1.14)^1	=	1.140	52,631.58
2	80000	14.00%	1 + 14% = 1.14	(1.14)^2	=	1.300	61,557.40
3	75000	14.00%	1 + 14% = 1.14	(1.14)^3	=	1.482	50,622.86
4	60000	14.00%	1 + 14% = 1.14	(1.14)^4	=	1.689	35,524.82
				TOTAL NPV			336.66
PROJECT Beta
Year End	Project Alpha	IRR	IRR+1	(IRR+1)^T			NPV of Cash Flow
0	-200000	12.00%	1 + 12% = 1.12	(1.12)^0	=	1.000	(200,000.00)
1	55000	12.00%	1 + 12% = 1.12	(1.12)^1	=	1.120	49,107.14
2	65000	12.00%	1 + 12% = 1.12	(1.12)^2	=	1.254	51,817.60
3	70000	12.00%	1 + 12% = 1.12	(1.12)^3	=	1.405	49,824.62
4	80000	12.00%	1 + 12% = 1.12	(1.12)^4	=	1.574	50,841.45
				TOTAL NPV			1,590.81

Using IRR criterion, project Beta IRR is higher than Project Alpha. So, Select Project Beta

STA301 Assignment 2 Solution Fall 2012

Question no 02 part a

If coefficient of skewness is zero then distribution is symmetric or zero skewed.\
\

question no 2 part b
The least squares regression line

The least squares regression line is the line which produces the smallest value of the sum of the squares of the residuals. A residual is the vertical distance from a point on a scatter diagram to the line of best fit. Therefore the least squares regression line can be seen as the best line of best fit.
The equation of the least squares regression line of y on x is:


Where b is:


As you can see there are 3 different ways to calculate the value for b, based on what information you are given in the question
Example

Calculate the least squared regression line of y on x from the following data:

x	20	30	40	50	60	70
y	2.49	2.41	2.38	2.14	1.97	2.03

Firstly draw up a table of the values you need and fill it out. In this example we'll use the third equation for b so we need all the values of x²and x_iy_i:

	x	y	x2	xiyi
	20	2.49	400	49.9
	30	2.41	900	72.3
	40	2.38	1600	95.2
	50	2.14	2500	107
	60	1.97	3600	118.2
	70	2.03	4900	142.1
Sum:	270	13.42	13900	584.7

Next step is to calculate the means of the x and y values:




Now the value of b can be calculated:
Hence the equation is therefore:


Cleaning it up:

PHY101 1st Assignment Solution nov 2012

Q 1: A football player kicks a football straight up in to the air with an initial velocity of 25m/s. What is the approximate maximum height that the ball reaches? Use acceleration due to gravity (g) as 9.8m/s2. Marks = 7

Ans:-

2as = Vf2 – Vi2

Where a = g = 9.8m/s2

Vf2 = 0

Applying the values:

2as = Vf2 – Vi2

2(9.8m/s2) s = 0 – (25m/s)2

(19.6m/s2) s = 625m2/s2

s =625m2/s2 / (19.6m/s2)

s = 31.8m

Q 2: In the classic horse and cart problem, a horse is attached to a cart that can roll along on a set of wheels. Which of the following statement is true? Also explain the reason of your selected choice as well.

a) The horse pulls on the cart with a force, and the cart pulls, back on the horse with an equal force.

b) The horse pulls on the cart with a force greater than the force that the cart pulls back on the horse.

c) The horse pulls the cart forward because the force of friction forward is greater than the force of the wagon backward.

d) The horse pulls the cart forward, because of a time delay between the action and reaction forces.

e) The horse pulls the cart forward, but only if the horse has a mass greater than the mass of the cart. Marks = 6 (2+4)

Ans:-

c) The horse pulls the cart forward because the force of friction forward is greater than the force of the wagon backward.

Reason:-

The forces on the cart include the forward force the horse exerts on the cart and the backward force due to friction at the ground, acting on the wheels. At rest, or at constant velocity, these two are equal in size, because the acceleration of the cart is zero. The forces on the horse include the backward force the cart exerts on the horse and the forward force of the ground on its hooves. At rest, or at constant velocity, these two are equal in size, because the acceleration of the horse is zero. The force the horse exerts on the cart is of equal size and opposite direction to the force the cart exerts on the horse, by Newton's third law. The horse places its feet so as to change the angle of the force its hooves exert on the ground, thereby increasing the backward force of its hooves on the ground.

Q 3: Is it true to say that a projectile has zero acceleration at its peak? If yes explain if not give a reason. Marks = 4

Ans:-

The acceleration due to gravity is constant at 9.8 m/sec^2. One of the variables in projectiles is its speed --- it slows down as it goes up and gains speed as it goes down. When the projectile reaches its maximum height, its velocity is always zero. Acceleration has nothing to do with instantaneous velocity. Acceleration shows the relationship between the velocities of the projectile at 2 different points in time. If acceleration was zero, the difference in velocity of the projectiles between any two points of its trajectory would be 0. However, with an acceleration, even if the velocity of the projectile at one point was 0, but the acceleration would not be zero because the acceleration of a projectile is always equal to the acceleration of gravity.

Q 4: (a) Anna is pushing but the box does not move. What is the force of static friction shown in below figure? Marks = 3

Ans:-

Fs=mu*N

=1*7N

=7N

(b) What is the maximum static friction force shown in below figure? The coefficient of static friction for these materials is 0.31. Marks = 5

Ans:-

=0.31*27N

27 nai only 7 hai

or answer hai 2.17