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The Argand Diagram
52

X2 t01 03 argand diagram (2012)

Jul 20, 2015

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Nigel Simmons
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Page 1: X2 t01 03 argand diagram (2012)

The Argand Diagram

Page 2: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

Page 3: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

Page 4: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

Page 5: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

Page 6: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2

Page 7: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2

A

Page 8: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3i

A

Page 9: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3i

A

B

Page 10: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3iC = -2 + i

A

B

Page 11: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3iC = -2 + i

A

B

C

Page 12: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3iC = -2 + iD = 4 - i

A

B

C

Page 13: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3iC = -2 + iD = 4 - i

A

B

C

D

Page 14: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3iC = -2 + iD = 4 - iE = 4 + i

A

B

C

D

Page 15: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3iC = -2 + iD = 4 - iE = 4 + i

A

B

C

D

E

Page 16: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3iC = -2 + iD = 4 - iE = 4 + i

A

B

C

D

E

NOTE: Conjugates are reflected in the real (x) axis

Page 17: X2 t01 03 argand diagram (2012)

The Argand DiagramComplex numbers can be represented geometrically on an Argand Diagram.

1 2 3 4-1-2-3-4

123

-3-2-1

x

y

(real axis)

(imaginary axis)

A = 2B = -3iC = -2 + iD = 4 - iE = 4 + i

A

B

C

D

E

NOTE: Conjugates are reflected in the real (x) axis

Every complex number can be represented by a unique point on the Argand Diagram.

Page 18: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

Page 19: X2 t01 03 argand diagram (2012)

Mod-Arg FormModulusThe modulus of a complex number is the length of the vector OZy

xO

Page 20: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

Page 21: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

Page 22: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

x

y

Page 23: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

x

y 22

222

yxr

yxr

Page 24: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

x

y 22

222

yxr

yxr

zr

Page 25: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

x

y 22

222

yxr

yxr

zr

22 yxz

Page 26: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

x

y 22

222

yxr

yxr

zr

22 yxz

ArgumentThe argument of a complex number is the angle the vector OZ makes with the positive real (x) axis

Page 27: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

x

y 22

222

yxr

yxr

zr

22 yxz

ArgumentThe argument of a complex number is the angle the vector OZ makes with the positive real (x) axis

zarg

Page 28: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

x

y 22

222

yxr

yxr

zr

22 yxz

ArgumentThe argument of a complex number is the angle the vector OZ makes with the positive real (x) axis

zarg

xyz 1tanarg

Page 29: X2 t01 03 argand diagram (2012)

Mod-Arg Form

y

xO

ModulusThe modulus of a complex number is the length of the vector OZz = x + iy

x

y 22

222

yxr

yxr

zr

22 yxz

ArgumentThe argument of a complex number is the angle the vector OZ makes with the positive real (x) axis

zarg

xyz 1tanarg zarg

Page 30: X2 t01 03 argand diagram (2012)

ige 44ofargument andmodulus theFind ..

Page 31: X2 t01 03 argand diagram (2012)

22 4444 i

ige 44ofargument andmodulus theFind ..

Page 32: X2 t01 03 argand diagram (2012)

22 4444 i

ige 44ofargument andmodulus theFind ..

2432

Page 33: X2 t01 03 argand diagram (2012)

22 4444 i

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

Page 34: X2 t01 03 argand diagram (2012)

22 4444 i

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

Page 35: X2 t01 03 argand diagram (2012)

22 4444 i

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

Page 36: X2 t01 03 argand diagram (2012)

22 4444 i

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

4

Page 37: X2 t01 03 argand diagram (2012)

22 4444 i

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

4

Every complex number can be written in terms of its modulus and argument

Page 38: X2 t01 03 argand diagram (2012)

22 4444 i

iyxz

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

4

Every complex number can be written in terms of its modulus and argument

Page 39: X2 t01 03 argand diagram (2012)

22 4444 i

iyxz

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

4

Every complex number can be written in terms of its modulus and argument

sincos irr

Page 40: X2 t01 03 argand diagram (2012)

22 4444 i

iyxz

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

4

Every complex number can be written in terms of its modulus and argument

sincos irr sincos ir

Page 41: X2 t01 03 argand diagram (2012)

22 4444 i

iyxz

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

4

Every complex number can be written in terms of its modulus and argument

sincos irr sincos ir

The mod-arg form of z is;

Page 42: X2 t01 03 argand diagram (2012)

22 4444 i

iyxz

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

4

Every complex number can be written in terms of its modulus and argument

sincos irr sincos ir

The mod-arg form of z is; sincos irz

Page 43: X2 t01 03 argand diagram (2012)

22 4444 i

iyxz

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

4

Every complex number can be written in terms of its modulus and argument

sincos irr sincos ir

The mod-arg form of z is; sincos irz

rcisz

Page 44: X2 t01 03 argand diagram (2012)

22 4444 i

iyxz

zzrarg

where;

ige 44ofargument andmodulus theFind ..

44tan44arg 1i

2432

1tan 1

4

Every complex number can be written in terms of its modulus and argument

sincos irr sincos ir

The mod-arg form of z is; sincos irz

rcisz

Page 45: X2 t01 03 argand diagram (2012)

iie.g. 44

Page 46: X2 t01 03 argand diagram (2012)

iie.g. 44

424 cis

Page 47: X2 t01 03 argand diagram (2012)

iie.g. 44

424 cis

iii 3

Page 48: X2 t01 03 argand diagram (2012)

iie.g. 44

424 cis

iii 3

24

13 22

z

Page 49: X2 t01 03 argand diagram (2012)

iie.g. 44

424 cis

iii 3

24

13 22

z3

1tanarg 1z

Page 50: X2 t01 03 argand diagram (2012)

iie.g. 44

424 cis

iii 3

24

13 22

z3

1tanarg 1z

6

Page 51: X2 t01 03 argand diagram (2012)

iie.g. 44

424 cis

iii 3

24

13 22

z3

1tanarg 1z

6

623 cisi

Page 52: X2 t01 03 argand diagram (2012)

iie.g. 44

424 cis

iii 3

24

13 22

z3

1tanarg 1z

6

623 cisi

Exercise 4B; evens