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arg(z-1)/arg(z+1) (1 Viewer)

Teoh

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Can someone please explain to me why

arg(z-1)/arg(z+1) = pi/2

Is below the x axis, rather than above?

I mean the semicircle/triangle it makes
 

ngai

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below is it?
hmm, when z = i
(i-1)/(i+1)
= [(i-1)^2]/(i^2 - 1^2)
= (i^2 - 2i + 1)/(-1-1)
= (-1+1-2i)/(-2)
= -2i/-2
= i
and arg i = pi/2
hence we have a contradiction, in that it cannot be just below the real axis :D

its actually above the real axis
draw the complex nubmers z-1, z+1
the full circle is arg(...) = |pi/2|
for the z-1 to have bigger argument, can't be below real axis
for the z+1 to have bigger argument, can't be above real axis
 

Teoh

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Oh whoops...
z+1/z-1

So...should i just sub in z=i, and work through it by simplyfying the arguments, or what?

OR, should i just compare which one has to be the bigger angle, and draw from there?
 

McLake

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Teoh said:
Oh whoops...
z+1/z-1

So...should i just sub in z=i, and work through it by simplyfying the arguments, or what?

OR, should i just compare which one has to be the bigger angle, and draw from there?
You can take either approach. By the second one I take it that you mean that you would simplify the LHS and RHS and show a relation ...
 

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