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Title: MEI (OCR) Maths - Core 3 - Coursework - Newton Raphson Method
Description: 2nd year sixth form coursework core 3 module
Description: 2nd year sixth form coursework core 3 module
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Newton-Raphson Method
π₯ π+1 = π₯ π β
π(π₯ π )
π β² (π₯ π )
The Newton-Raphson method is a fixed point estimation method, i
...
it
estimates the actual value of a root as opposed to the interval in which it lies
...
It is necessary to find fβ(x) to use in the formula:
f(x) = π₯ 3 + 3π₯ 2 β π₯ β 5
fβ(x) = 3π₯ 2 β 6π₯ β 1
This gives the iterative formula:
π₯ π+1 = π₯ π β
π₯ 3 + 3π₯ 2 β π₯ π β 5
π
π
3π₯ π 2 β 6π₯ π β 1
If the numbers in the sequence approach a limiting value then they are said to
βconvergeβ to this value
...
Where this
tangent crosses the x-axis
will be the next prediction x1
...
25
x
y
This graph shows the
prediction x1 and the creation
of a tangent
...
This can be seen in greater
detail on the graph below:
Tangent x=1
...
25
on y=f(x)
x2
y=f(x)
x1
y
x2 at 1
...
f
...
21508
x3
Tangent at
x=1
...
21432 (to 6 s
...
)
Scale is too small to
show, this should read:
1
...
2143 (to 5 s
...
) and so the root lies in the interval [1
...
2144]
...
2143 (to 5 s
...
Using this technique all 3 roots can be found:
The roots lie in the intervals: [-3,-2], [-2,-1] and [1, 2]
Root: 1
...
5392
Root: -2
...
An equation that is proof of this is:
Here is the curve: π¦ =
π₯3
3
π₯3
3
+ 0
...
22953π₯ + 1
...
618π₯ 2 β 2
...
1 represented graphically:
y
y=f(x)
x
To verify the roots, look for change in sign:
f(-4)= -1
...
35059
So root in interval [-4,-3]
f(0)= 1
...
1782
So root in interval [0,1]
f(1)= -0
...
77961
So root in interval [1, 2]
It is necessary to find fβ(x) to use in the formula:
π₯3
f(x) = 3 + 0
...
22953π₯ + 1
...
236π₯ β 2
...
618π₯ π β 2
...
1
= π₯πβ
π₯ π 2 + 1
...
22953
Since f(1) = -0
...
1 it seems reasonable to assume that the
root is closer to 1 than 0, so start with x1 = 1
...
Instead
it converged on another root in
the interval [1, 2]
...
e
...
54199 β this is already seen to create a significant problem for the method
...
54199
x
Tangent at x=1 i
...
x0
y
x
Tangent at x = 28
...
e
...
87877 which
gives the new prediction:
x2 = 18
...
y
y=f(x)
x
Tangent at x = 1
...
e
...
319581 which
gives the new prediction:
x13 = 1
...
y
Scale is too small to
show, this should read:
1
...
319592
New
prediction, x13
x13 = 1
...
f
...
3196 (5 s
...
So in this instance the method failed to find the root in the
interval [0, 1]
Title: MEI (OCR) Maths - Core 3 - Coursework - Newton Raphson Method
Description: 2nd year sixth form coursework core 3 module
Description: 2nd year sixth form coursework core 3 module