How do you convert a polar form into a cartesian form?
polar form z=re^iθ
cartesian form: x=iy
'i' is the imaginary number.
just give me the general steps.
if you don't know how to: solve this problem please.
i^(3/2)
thanks!!
polar form z=re^iθ
cartesian form: x=iy
'i' is the imaginary number.
just give me the general steps.
if you don't know how to: solve this problem please.
i^(3/2)
thanks!!
Comments
You need to use Euler's formula. This states
r * e^(iθ) = r * ( cos(θ) + i * sin(θ) )
As for computing i^(3/2), the principal branch is given by
e^(ln(i) * 3/2)
= e^( (0 + i * pi/2) * 3/2 )
= e^(i * 3pi/4)
= cos(3pi/4) + i * sin(3pi/4)
= -sqrt(2)/2 + i * sqrt(2)/2
Convert To Cartesian Form
Cartesian form is
z= x + iy
r = sqrt(x^2 + y^2) q = atan(y/x)
x = rcos(q) y = rsin(q)
z = r*(cos(q) + i sin(q)) where q is the angle theta
now z = i^(3/2) = (0+ i)^(3/2) in cartesian form
so r = sqrt(0^2 + 1^2) = 1
q = atan(1/0) =atan(infinity) = pi/2 radians
z = 1*(e^(i*pi/2))^3/2 = e^(i*3*pi/4)
r = -2/sinθ y = r sinθ = -2 sinθ/sinθ y = -2 ================== r = (1/cosθ) + 3 x = r cosθ = 1 + 3 cosθ y = r sin θ = tanθ + 3sinθ = (y/x) + 3 sinθ 3 cosθ = x - 1 3 sin θ = y - (y/x) 9 cos²θ + 9 sin²θ = (x - 1)² + [y - (y/x)]² (x - 1)² + [y - (y/x)]² = 9
z = re^(θi)
to find the x use
x= rsin(θ)
to find the y use
y = rcos(θ)
i^(3/2) = (cos(90) + isin(90))^(3/2)
= (cos(135) + isin(135))
= -&radic(2)/2 + i√(2)/2