Lesson Objective
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Transcript of Lesson Objective
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Lesson ObjectiveUnderstand what Complex Number are and how they fit into the mathematical landscape.Be able to do arithmetic with complex numbers
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Solve the equations:
x2 +4x + 1 = 0
x2 +4x + 4 = 0
x2 +4x + 6 = 0
What can we say about the graph of:
y = x2 + 4x + c?What are the conditions for each case? Complex numbers and quadratics.ggb
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Arithmetic of complex numbers:
Let z = 3 + 4j w = 2 – 5j
Find:a) w + z b) z – w c) z2 d) zw e)
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Complex Conjugates, Uniqueness and Real and Imaginary Parts:
If z = 3 + 4j we say that z* = 3 – 4j is the Complex Conjugate of z we say that Re(z) = 3 is the real part of z we say that Im(z*) = -4 is the imaginary part of z
Two complex numbers are identical if the imaginary and real parts are the same;In other words if 3 - 2j = a + bj a must be equal to 3 b must be equal to -2
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Complex Conjugates, Uniqueness and Real and Imaginary Parts:
If z = 3 + 4j we say that z* = 3 – 4j is the Complex Conjugate of z we say that Re(z) = 3 is the real part of z we say that Im(z*) = -4 is the imaginary part of zLet w = 2 – 5j
Find:a) w* b) z + w* c) w - z* d) (z +
w)*
e) w*z * f) (zw)* g) h)
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Complex Conjugates, Uniqueness and Real and Imaginary Parts:
If z = 3 + 4j we say that z* = 3 – 4j is the Complex Conjugate of z
Let w = 2 – 5j
Find:a) w* b) z + w* c) w - z* d) (z +
w)*
e) w*z * f) (zw)* g) h)
1) If y is a complex number y = a + bj x is a complex number x = c + dj
Prove that: a) y + y * = 2Re(y) b) y - y* = 2Im(y)
c) (xy)* = x*y *
d) (x*)* = x e) =
3) Find real numbers ‘a’ and ‘b’ such that
2) Find real numbers a and b (with a>0) such that a) (a + bj)2 = 21 + 20j b) (a + bj)2 = -40 - 42j
4) Find real numbers z for which z2 = 2z*
5) Solve z + jw = 13 3z – 4w = 2j for complex numbers z and wFrom FP1 page 53
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Complex Conjugates, Uniqueness and Real and Imaginary Parts:
If z = 3 + 4j we say that z* = 3 – 4j is the Complex Conjugate of z
Let w = 2 – 5j
Find:a) w* 2+5j b) z + w* 5+9j c) w - z* -1-j d) (z + w)* 5+je) w*z * 26+7j f) (zw)* 26+7j g) (2-5j)/29 h) (3-4j)/25
1) If y is a complex number y = a + bj x is a complex number x = c + dj
Prove that: a) Re(y + y *) = 2a b) Im(y - y*) = 2b
c) (xy)* = x*y *
d) (x*)* = x e) =
3) Find real numbers ‘a’ and ‘b’ such that
2) Find real numbers a and b (with a>0) such that a) (a + bj)2 = 21 + 20j b) (a + bj)2 = -40 - 42j
4) Find real numbers z for which z2 = 2z*
5) Solve z + jw = 13 3z – 4w = 2j for complex numbers z and wFrom FP1 page 53
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Lesson ObjectiveBe able to display complex numbers on an Argand DiagramUnderstand how to find the modulus and argument of a complex number
Consider z = 3 +4j and w = -2 – 5jRe(z) = Re(w) =Im(z) = Im(w) = = = Arg(z) = Arg(w) =
How can we represent the following on the Argand diagram:
a) z + w ?b) z – w ?
What is ?What does it represent?
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To generate a mandelbrot set:
Solve the equation z2 + 1 =0By using an iterative approach.(Like C3 coursework)
Count the number of iterations required to get within an acceptable margin of the solution.
Plot the starting value on an Argand diagram, with a colour that corresponds to the number of steps until convergence.
EgRearrange to make z = -1/z
Choose 1+i as starting valueKeep iterating until within a small radius of i.
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1) Write down the modulus and the argument of these complex numbers:a) 2 + 2j b) -3 +4j c) -3-4j d) 3j e) -2
2) What can you say about the modulus and argument of z* compared to z?
3) Let z be a complex number On the Argand diagram, show all the complex numbers ‘z’, such that:
c) =5
a) =6
b) Arg(z) =
d) =5
e) Arg(z-3-4j) =
f) =
g)=2
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Let ‘z’ be a complex numberOn the Argand diagram, show all the complex numbers ‘z’, such that:
=5
Let ‘w’ be a complex numberOn the Argand diagram, show all the complex numbers ‘w’, such that:
=
How does this differ from: ?
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223 zz
Note that:
represents the distance from the complex number a to the complex number z
Arg(z – a) represents the angle to the complex number z from the complex number a measured from a line parallel to the +ve part of the real axis
az
If z is a complex number x + iy then:Re(z) = x Im(z) = yz* = The complex conjugate of z= x - iy
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43 jz
4)( zArg
4)2(
jzArg
3)2( zArg
32)1(
zArg
62 z
624 jz
jzz 1
122 zz4
)1()1( zArgzArg
)Im()Re( zz 2)Re( z
)(6
)( jzArgjzArg zjz 32
0)Im( 2 z 0)1Re( * z
z
02Re
zz
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Lesson ObjectiveModulus and Argument Form and the beginnings of powerful arithmetic
Write down the modulus and the argument of these complex numbers:a) a = 1 + 2j b) b = 2j c) c = -j d) d = -1-j
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Lesson ObjectiveModulus and Argument Form and the beginnings of powerful arithmetic
Write down the modulus and the argument of these complex numbers:a) a = 1 + 2j b) b = 2j c) c = -j d) d = -1-j
Section AFindabab2
ab3
ab4
…….In each case plot the new complex number on the Argand diagram and find its modulus and argument
Generalise for abn
Section BWhat can you say about the modulus and argument of ad? What about ?
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Generalised results:
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Let w be a complex number in the form a + ib
Then: T The argument of w = Arg(w) = the angle that w makes with the +ve section of the real axes (usually given between 180 and -180 degrees or
We can write w as: w = this is called modulus/argument form (or polar form)
When two complex numbers are multiplied together, the resulting complex number:
Will have an argument = to the sum of the two original arguments and a modulus =to the product of the two original moduli.
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Puzzle 1The points 1 + j and 3 + 4j are two adjacent corners of a square.
Where are the other corners? Can you solve this problem? More importantly, how can you solve it using complex numbers?
Puzzle 2Suppose that 1 + j and 3 + 4j were two adjacent corners of an equilateral triangle, where would the final vertex be?
This is much easier to solve using complex numbers!
Puzzle 3Can we generalise this method to a regular ‘n’ sided shape?
This really demonstrates just how cool complex numbers are!!!!!!!!
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Lesson ObjectiveUnderstand the Fundametal Thm of Algebra be able to solve cubic/quartic equations with Real coefficients even when some roots are complex
Write down any quadratic equation with complex roots.
Solve it.
What do you notice about the solutions?
Is it true that (wn)*
(w*)n ?
Try it with (wn)*
How can we prove this key result?
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Lesson ObjectiveUnderstand the Fundamental Thm of Algebra and be able to solve cubic/quartic equations with Real coefficients even when some roots are complex
Starter:
Is it true that: (w*)n = (wn)* for all n ≥ 0 where w is a complex number?
Try it with (w*)3
How can we prove this key result?
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Lesson ObjectiveUnderstand the Fundamental Thm of Algebra be able to solve cubic/quartic equations with Real coefficients even when some roots are complex
Write down any quadratic equation with complex roots?
Solve it.
What do you notice about the solutions?
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Lesson ObjectiveUnderstand the Fundamental Thm of Algebra be able to solve cubic/quartic equations with Real coefficients even when some roots are complex
Write down any quadratic equation with complex roots?
Solve it.
What do you notice about the solutions?
The Fundamental Thm of algebra states that any polynomial equation of degree ‘n’ will have exactly ‘n’ solutions (if you count repeated roots).
The Complex Conjugate Root Thm goes further, and states that, as long as the coefficients are real, the solutions will come in complex conjugate pairs.
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Proof of Fundamental Thm of Algebra (Go to University – it took Gauss years)
Proof of the Complex Conjugate Root Thm
Consider: αzn + βzn-1 + γzn-2 + …….. + δz2 + εz + ζ = 0Then ‘z’ is a solution to the equation
Now consider:(αzn + βzn-1 + γzn-2 + …….. + δz2 + εz + ζ)* = (0)*
(αzn)* + (βzn-1)* + (γzn-2)* + …….. + (δz2)* + (εz)* + (ζ)* = (0)*
α*(zn)* + β* (zn-1)* + γ* (zn-2)* + …….. + δ* (z2)* + ε* (z)* + (ζ)* = 0*
α*(z*)n + β* (z*)n-1 + γ* (z*)n-2 + …….. + δ* (z*)2 + ε* (z*) + (ζ*) = 0*
α(z*)n + β (z*)n-1 + γ (z*)n-2 + …….. + δ (z*)2 + ε (z*) + ζ = 0*
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ExampleShows the 2 + j is a solution to z3 – z2 -7z + 15 = 0Hence find all the other roots.
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ExampleGive than z = -2 + j is a solution to z4 + az3 +bz2 +10z + 25 = 0Find the values of a and bHence factorise the cubic and find all 4 solutions
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ExampleGive than z = -2 + j is a solution to z4 + az3 +bz2 +10z + 25 = 0Find the values of a and bHence factorise the cubic and find all 4 solutions
a = 2 b = 2Other two solutions are 1 + 2j and 1 – 2j
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