-
Finished your HSC? Check out our University Discussion, Non-School forums or help out next year's HSC students! -
YOU can help the next generation of students in the community! Share your trial papers and notes on our Notes & Resources page
COmplex Numbers Mod-arg (1 Viewer)
- Thread starter kevda1st
- Start date
Forbidden.
Banned
回复: COmplex Numbers Mod-arg
Cartesian form is x + iy and x = rcosθ and y = rsinθ
.:
x = 6cos3π/4
x = 6 . -1/√2
x = -3√2
y = 6sin3π/4
y = 6 . 1/√2
y = 3√2
Cartesian form is -3√2 + i3√2 amirite???
6eiθ = 6[cos(3π/4) + isin(3π/4)]kevda1st said:
Cartesian form is x + iy and x = rcosθ and y = rsinθ
.:
x = 6cos3π/4
x = 6 . -1/√2
x = -3√2
y = 6sin3π/4
y = 6 . 1/√2
y = 3√2
Cartesian form is -3√2 + i3√2 amirite???
gurmies
Drover
6(cos(3pi/4) + iSin(3pi/4))
= 6(-1/root2 + (1/root2)i)
= -6/root2 + (6/root2)i
= -(6root2)/2 + ((6root2)/2)i
= -3root2 + (3root2)i
= 6(-1/root2 + (1/root2)i)
= -6/root2 + (6/root2)i
= -(6root2)/2 + ((6root2)/2)i
= -3root2 + (3root2)i
x.Exhaust.x
Retired Member
Cartesian form: x+iy
6[(cos3pi/4) + isin(3pi/4)]
= 6[cos(135) + isin(135)]
= 6[cos(-45) + isin(45)] (remember ASTC)
= (6 x -1/root 2) + 6i(1/root 2)
= -6/root 2 + 6i/root 2 (rationalise)
= (-3root2) + (3root2)i
6[(cos3pi/4) + isin(3pi/4)]
= 6[cos(135) + isin(135)]
= 6[cos(-45) + isin(45)] (remember ASTC)
= (6 x -1/root 2) + 6i(1/root 2)
= -6/root 2 + 6i/root 2 (rationalise)
= (-3root2) + (3root2)i
tacogym27101990
Member
Re: 回复: COmplex Numbers Mod-arg
and it is so unnecessary to quote that rule
i believe 6cis(3pi/4) equals 6ei3pi/4Forbidden. said:
and it is so unnecessary to quote that rule