Post on 17-Jan-2016
transcript
LEGOs Theory Continued…
LEGOs Theory Continued…● In learning about compound cash flows, we
found ways to decompose and convert the cash flow pattern building blocks from one type to another, and how to relocate the block patterns to different points in time.
● The individual cash flow arrow periods are like the bumps on a LEGO brick.
● The effective interest rate per period is like the holes of the block – the bumps and holes must align for the LEGO blocks to fit together.
● There are three major cases of effective interest rate to consider – and four formulas to know. But first, there are some terms to learn…
Interest Rate Terms…Interest Rate Terms…● Compounding Period (cp) – the time between
points when interest is computed and added to the initial amount.
● Payment Period (pp) – the shortest time between payments. Interest is earned on payment money once per period (cost of money)
● Nominal Rate ( r ) – is a simplified expression of the annual cost of money. It means nothing, unless the compounding period is stated along with it.
● Annual Percentage Rate (APR) – is the nominal interest rate on a yearly basis (credit cards, bank loans, …). It, too, should have a compounding period stated.
● Effective Rate ( i ) – is the rate that is used with the table factors or the closed form equations, and it converts the nominal rate taking into account both the compounding period and the payment period so that the blocks match.
Compounding Period is Compounding Period is Equal to Equal to the Payment Periodthe Payment Period
Compounding Period is Compounding Period is Equal to Equal to the Payment Periodthe Payment Period
r = nominal annual interest rate for payments that match the compounding period: (cp < year and pp = cp)
Examples: 12% per year compounded monthly(1)
10% APR, compounded quarterly(2)
i = interest rate per compounding period = r =m
nominal interest rate ( # of compounding periods per year)
Examples: 12% / 12 months = 1% compounded monthly (1)10% / 4 quarters = 2.5% compounded quarterly
(2)
Which would you rather have: 12% compounded annually
or 12% compounded monthly?
EFFECTIVE INTEREST RATE
ia = effective interest rate per year compounded
annually
= ( 1 + interest rate per cp)(# of cp per year) –
1
= 1 + r m – 1 m
Example:r = 12% per year compounded monthly
imonth = 12% yearly = 1 % compounded monthly
12 months
ia = (1 + .01)12 – 1 = 12.68% compounded
annually
Compounding Period is Compounding Period is More Frequent More Frequent than the than the AnnualAnnual Payment Period Payment Period
Compounding Period is Compounding Period is More Frequent More Frequent than the than the AnnualAnnual Payment Period Payment Period
Another example…Another example…r = 12% per year compounded semi-
annually
isemi-annual = 12% annually 2 times per year
= 6% per 6 months
ia = (1 + .06)2 – 1 = .1236= 12.36% per year compounded annually
As the compounding period gets smaller, does the effective interest rate increase or decrease?
Let’s Illustrate the Answer…
Let’s Illustrate the Answer…
r = 12% per year compounded daily
idaily = 12% 365= .000329
ia = (1 + .000329)365 – 1 = .12747= 12.747% per year compounded annually
What happens if we let the compounding period get infinitely small?
Continuous CompoundingContinuous
Compoundingi = e( r )(# of years) – 1
Examples:r = 12% per year compounded continuously
ia = e( .12 )(1) – 1 = 12.75%
What would be an effective six month interest rate for r = 12% per year compounded continuously?
i6 month = e( .12 )(.5) – 1 = 6.184%
EFFECTIVE INTEREST RATE
ie = effective interest rate per payment period
= ( 1 + interest rate per cp)(# of cp per pay
period) – 1
= 1 + r me – 1 m
Example:r = 12% APR, compounded monthly, payments quarterly
imonth = 12% yearly = 1 % compounded monthly
12 months
ie = (1 + .01)3 – 1 = .0303 – or – 3.03% per payment
Compounding Period is Compounding Period is More Frequent More Frequent than the than the Payment PeriodPayment Period
Compounding Period is Compounding Period is More Frequent More Frequent than the than the Payment PeriodPayment Period
Summary of Effective Rates
Summary of Effective RatesAn “APR” or “% per year” statement is a Nominal
interest rate – denoted r – unless there is no compounding period stated
The Effective Interest rate per period is used with tables & formulas
Formulas for Effective Interest Rate:
If continuous compounding, usey is length of pp, expressed in decimal years
If cp < year, and pp = 1 year, usem is # compounding periods per year
If cp < year, and pp = cp, usem is # compounding periods per year
If cp < year, and pp > cp, useme is # cp per payment period
11
m
a m
ri
m
ri
1ei )y(r
11
em
e m
ri
CRITICAL POINTCRITICAL POINT
When using the factors,
n and i must always match!
Use the effective interest rate formulas to make sure that i
matches the period of interest(sum any payments in-between compounding
periods so that n matches i before using formulas or tables)
Note:Note:
Interest doesn’t start accumulating until the money has been invested for the full period!
0 1 2 periods
Shows up here on CFD…
(End of Period Convention)
X
Deposit made here …
i
Returns interest here!
Problem 1Problem 1The local bank branch pays interest on savings accounts at the rate of 6% per year, compounded monthly. What is the effective annual rate of interest paid on accounts?
GIVEN: r = 6%/yrm = 12mo/yr
FIND ia:DIAGRAM:
NONE NEEDED!
%17.6112
06.01
11
12
m
a m
ri
Problem 2Problem 2What amount must be deposited today in an account paying 6% per year, compounded monthly in order to have $2,000 in the account at the end of 5 years? GIVEN:
F5 = $2 000 r = 6%/yrm = 12 mo/yr
FIND P:
0 1 25 yrs
P?
$2 000
DIAGRAM: 12
5
5
0 061 1 1 1 6 17
12
2000 6 17 5
2000 1 0 0617 2000 74129
1482 59
.. % /
$ ( | , . %, )
$ ( . ) $ (. )
$ .
m
a
n yrs
ri yr
m
P P F
Problem 2 – Alternate Soln
Problem 2 – Alternate SolnWhat amount must be deposited today in an
account paying 6% per year, compounded monthly in order to have $2,000 in the account at the end of 5 years? GIVEN:
F5 = $2 000 r = 6%/yrm = 12 mo/yr
FIND P:
0 1 260mos
P?
$2 000
DIAGRAM:
80.1482$
)7414.0(2000$)60%,5.0,F|P(2000$P
mo/%5.0mo12
yr1
yr
06.0
m
ri
mos60)yrs5(yr
mos12)yrs)(#m(n
Problem 3Problem 3A loan of $5,000 is to be repaid in equal monthly payments over the next 2 years. The first payment is to be made 1 month from now. Determine the payment amount if interest is charged at a nominal interest rate of 12% per year, compounded monthly.
0
1 2 yrs$5 000
A ?
DIAGRAM:
GIVEN:P = $5 000 r = 12%/yrm = 12 mo/yr
FIND A:
Problem 4Problem 4You have decided to begin a savings plan in order to make a down payment on a new house. You will deposit $1000 every 3 months for 4 years into an account that pays interest at the rate of 8% per year, compounded monthly. The first deposit will be made in 3 months. How much will be in the account in 4 years?
0 1 2 3 4 yrs
$1 000
DIAGRAM: F ?
Problem 5Problem 5Determine the total amount accumulated in an account paying interest at the rate of 10% per year, compounded continuously if deposits of $1,000 are made at the end of each of the next 5 years.
0 1 2 3 5 yrs
$1 000
DIAGRAM: F ?
Problem 6Problem 6A firm pays back a $10 000 loan with quarterly payments over the next 5 years. The $10 000 returns 4% APR compounded monthly. What is the quarterly payment amount?
01 2 3 5 yrs = 20 qtrs
$A
DIAGRAM:
$10 000
Problem 7Problem 7Anita Plass-Tuwurk, who owns an engineering consulting firm, bought an old house to use as her business office. She found that the ceiling was poorly insulated and that the heat loss could be cut significantly if 6 inches of foam insulation were installed. She estimated that with the insulation she could cut the heating bill by $40 per month and the air conditioning cost by $25 per month.
Assuming that the summer season is 3 months (June, July, August) of the year and the winter season is another 3 months (December, January, and February) of the year, how much can she spend on insulation if she expects to keep the property for 5 years?
Assume that neither heating nor air conditioning would be required during the fall and spring seasons.
She is making this decision in April, about whether to install the insulation in May. If the insulation is installed, it will be paid for at the end of May. Anita’s interest rate is 9%, compounded monthly.
Problem 7Problem 7GIVEN: SAVINGS = $40/MO(DEC,JAN, FEB); $25/MO (JUN, JUL, AUG) r = 9%/YR, CPD MONTHLYFIND P(SAVINGS OVER 5 YEARS):
$40PA ?1ST YR DIAGRAM:
1 2 3 4 5 6 7 8 9 10 11 12 MO0
$25
P ? 1 2 3 4 5 YRS
0
5 YR DIAGRAM:PA
PA = Pα + Pβ(PPβ) = Aα(P|A,i,nα) + Aβ(P|A,i,nβ)(P|F,i,6)
= $25(P|A,0.75%,3) + $40(P|A,0.75%,3)(P|F,0.75%,6)
= $25(2.9556) + $40(2.9556)(0.9562) = $186.94 at the start of each year…
i = r = 0.09 = 0.75% / MO m 12
Problem 7 cont.Problem 7 cont.GIVEN: SAVINGS = $40/MO(DEC,JAN, FEB); $25/MO (JUN, JUL, AUG) r = 9%/YR, CPD MONTHLYFIND P(SAVINGS OVER 5 YEARS):
P ? 1 2 3 4 5 YRS
0
5 YR DIAGRAM:
$186.94
12
1 1
0 091 1
12
9 38
.
. %
m
a
ri
m
56.787$21288.394.186$94.186$
)0938.01(0938.0
1)0938.01(94.186$94.186$
)4%,38.9,A|P(94.186$94.186$
)i1(i
1)i1(AA
)N,i,A|P(AAPPP
4
4
N
N
A0