Quadratic formula is the way to go.
z = -(4-2i) +/- sqrt( (4-2i)^2 -4x6) / 2
= -(4-2i) +/- sqrt( 16 - 4 -16i - 24) / 2
= -(4-2i) +/- sqrt( -12 -16i) / 2
Now to solve the squareroot, let a + ib = sqrt( -12 -16i)
Squaring both sides we get (a+ib)^2 =-12 -16i
So a^2 - b^2 + 2abi = -12 -16i
Equating real and imaginary parts we get
a^2 - b^2 = -12
a = -8/b <--------------------- sub this into above equation we get:
64/b^2 - b^2 = -12
64 - b^4 = - 12b^2
b^4 - 12b^2 - 64 = 0
(b^2 - 16)(b^2 + 4) = 0
b = +/- 4 (b must be real)
If b = +4, a = -2. If b = -4, a = +2
Thus sqrt( -12 -16i) = +/- (2 - 4i). Subbing this back into the quadratic formula we get:
z = -(4-2i) +/- +/- (2 - 4i) / 2
= -(4-2i) +/- (2 - 4i) / 2
= -(4-2i) + (2 - 4i) / 2 or = -(4-2i) - (2 - 4i) / 2
I'm sure you can do the rest
OOO i remember doing that once, but then that method never came up again so i forgot how to do it. Can you pretty please show me? :uhhuh:
z+1/z-1 = x+1+iy/x-1+iy
Instead of thatQuadratic formula is the way to go.
z = -(4-2i) +/- sqrt( (4-2i)^2 -4x6) / 2
= -(4-2i) +/- sqrt( 16 - 4 -16i - 24) / 2
= -(4-2i) +/- sqrt( -12 -16i) / 2
Now to solve the squareroot, let a + ib = sqrt( -12 -16i)
Squaring both sides we get (a+ib)^2 =-12 -16i
So a^2 - b^2 + 2abi = -12 -16i
Equating real and imaginary parts we get
a^2 - b^2 = -12
a = -8/b <--------------------- sub this into above equation we get:
64/b^2 - b^2 = -12
64 - b^4 = - 12b^2
b^4 - 12b^2 - 64 = 0
(b^2 - 16)(b^2 + 4) = 0
b = +/- 4 (b must be real)
If b = +4, a = -2. If b = -4, a = +2
Thus sqrt( -12 -16i) = +/- (2 - 4i). Subbing this back into the quadratic formula we get:
z = -(4-2i) +/- +/- (2 - 4i) / 2
= -(4-2i) +/- (2 - 4i) / 2
= -(4-2i) + (2 - 4i) / 2 or = -(4-2i) - (2 - 4i) / 2
I'm sure you can do the rest
+1
How do you use that method so seamlessly? Are there tricks or do you just have to practise?\ \ =\ \ 4(1-4i-4)\ \ =\ \ 4(1-2\times 1\times 2i+(-2i)^{2}) \\ \\ = \ \ [2(1+(-2i))]^{2}\ \ \Rightarrow \ \ \sqrt{-12-16i}\ \ =\ \ \pm \ 2(1-2i))
Oh i see, thank you! That is much easier - i'll remember it this time
Interesting. Thanks for replying
Please see my edited reply.Interesting. Thanks for replying
I think its from Terry Lee's book? Unless im mistaken.
