LESSON 2.07: Interpolation & Extrapolation MFM1P
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LESSON 2.07:Interpolation & Extrapolation
MFM1P
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Use the graph to answer the following questions.
(a) If you have $0, how many hours can you rent a machine for?(b) If you have $50, approximately how many hours can you rent a machine for?(c) How much will it cost to rent a machine for 3 hours?(d) How much will it cost to rent a machine for 7 hours?
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Interpolation and Extrapolation
Interpolation and Extrapolation are mathematical names given to the process of reading graphs.Interpolation -estimating information within a graphExtrapolation- extending the graph to estimate information
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Consider the following example from the previous lesson on Modelling Linear Relations with Equations.
Ralph’s Rental has many tools that are available for rent. They charge $20 fixed price plus $5 per hour for the rental of their post hole digger. This situation can be represented by the equation
C = 5 n + 20 where C represents the total rental cost and n represents the number of hours rented.
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1. How many hours can you rent the post hole digger for if you have $37? 2. How much will it cost to rent the digger for 10 hours?
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Solutions1. How many hours can you rent the post hole digger for if you have $37?This question can be solved using Interpolation. We are required to read the graph.
By Interpolating on the graph, we obtain the answer of approximately 3.5 hours.
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Using the equationInterpolation is a great method when you have a graph of the relation. There is room for error in our interpolation of the results. For this reason we should also consider making use of our equation.
C = 5 n + 20Substituting C = 37 into the equation will allow us to solve for the number of hours.
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Therefore, $37 will allow you to rent the digger for 3.4 hours.
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2. How much will it cost to rent the digger for 10 hours?
In order to calculate the cost for 10 hours we are required to extend the graph and continue the pattern. This is called
Extrapolation.
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By reading the extended graph we can see that 10 hours will cost $70.
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We can also make use of the equation to find values instead of Extrapolating.
C = 5 n + 20Substituting n = 10 into the equation will allow us to solve for the total cost.
Therefore, 10 hours of use with the digger will cost $70.
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EXAMPLE:The trip from Toronto to the badminton provincial finals in Ottawa costs $1940 for the bus and $75 per person for meals and accommodation. The cost, C dollars, is modeled by the equation C=1940+80n, where n represents the number of players. n Cost ($)
0
10
20 30 40
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b) Graph the Relationship
x
y
0… … … …
…
…
…
… n Cost ($)0 1940
10 274020 3540 30 434040 5140
… …Number of People
Independent Dependent
Cos
t ($
)REMEMBER TAILS!
T – Title
A – Axis
I – Interval
L – Labels
S – Scale
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b) Graph the Relationship
x
y
0…10 20 30
2000
1000
n Cost ($)0 1940
10 274020 3540 30 434040 5140
40 50Number of People
Independent Dependent
Cos
t ($
)
3000
4000
5000
6000
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How many players attended the provincial finals if the total cost was $3700.00?
This question can be solved using Interpolation. We are required to read the graph.
C=1940+80n
$3700?
22
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How many players attended the provincial finals if the total cost was $3700.00?
Interpolation is a great method when you have a graph of the relation. There is room for error in our interpolation of the results. For this reason we should also consider making use of our equation.
C=1940+80n
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How many players attended the provincial finals if the total cost was $3700.00? C=1940+80n 3700 = 1940+80n-1940 -1940
80n=176080n/80=1760/80
n=22
C=1940+80n
∴, if the total cost was $3700, 22 players attended the provincial finals.
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How much would it cost if 41 players wanted to attend the finals?
In order to calculate the cost for 41 attendees we are required to extend the graph and continue the pattern. This is called Extrapolation.
C=1940+80n
5200?
41
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How much would it cost if 41 players wanted to attend the finals?
C=1940+80n=1940+80(41)=1940+3280=5220
C=1940+80n
∴, if 41 people wanted to attend the finals, the total cost would be $5220.
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b) Graph the Relationship
x
y
0…10 20 30
2000
1000
n Cost ($)0 1940
10 274020 3540 30 434040 5140
40 50Number of People
Independent Dependent
Cos
t ($
)
3000
4000
5000
6000