c. Use the following data to estimate y(2) based on the following methods: (i) linear interpolation then evaluating the value of the equation of the line at x = 2) , and (ii) linear regression (i.e. by first fitting a line to all the data and x2 y 1.20 2.30 ху 4.80 46.00 76.80 4.00 1.44 20.00 5.29 3.20 24.00 10.24 55.00 20.25 247.50 5.70 4.50 80.00 32.49 456.00 6.30 85.00 39.69 535.50 Σχ £y Ex? Σχν 23.20 268.00 109.40 |1366.60| Hint: Linear interpolation: f(x1) – f(xo) fi(x) = f(xo) + (x – xo) Ox – Ix Linear regression: y = a,x + ao .ηΣxy- (Σχ;) (Σγ) nEx² – (Ex¡)² Ey Ex ao = n n

Advanced Engineering Mathematics
10th Edition
ISBN:9780470458365
Author:Erwin Kreyszig
Publisher:Erwin Kreyszig
Chapter2: Second-order Linear Odes
Section: Chapter Questions
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c. Use the following data to estimate y(2) based on the following methods: (i) linear
interpolation
then evaluating the value of the equation of the line at x = 2)
, and (ii) linear regression (i.e. by first fitting a line to all the data and
x2
4.00
5.29
y
ху
4.80
1.20
2.30
3.20
4.50
1.44
20.00
24.00 10.24
55.00 20.25 247.50
80.00 32.49 456.00
85.00 39.69 535.50
Σχ2
23.20 268.00 109.40 1366.60
46.00
76.80
5.70
6.30
Σχ
Ey
Exy
Hint: Linear interpolation:
f(x1) – f(xo)
f1(x) = f(xo) +
(x – xo)
Ox – Ix
Linear regression:
y = a1x + ao
ηΣxy- (Σχ;) (Σγ)
n£x} – (Ex1)²
a1 =
Eyi Exi
do =
- -
Transcribed Image Text:c. Use the following data to estimate y(2) based on the following methods: (i) linear interpolation then evaluating the value of the equation of the line at x = 2) , and (ii) linear regression (i.e. by first fitting a line to all the data and x2 4.00 5.29 y ху 4.80 1.20 2.30 3.20 4.50 1.44 20.00 24.00 10.24 55.00 20.25 247.50 80.00 32.49 456.00 85.00 39.69 535.50 Σχ2 23.20 268.00 109.40 1366.60 46.00 76.80 5.70 6.30 Σχ Ey Exy Hint: Linear interpolation: f(x1) – f(xo) f1(x) = f(xo) + (x – xo) Ox – Ix Linear regression: y = a1x + ao ηΣxy- (Σχ;) (Σγ) n£x} – (Ex1)² a1 = Eyi Exi do = - -
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