Modern4DaBois
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You may wish to have a look at the following thread where this question was asked in order to gain insight into this question:
boredofstudies.org
I hope this helps!
complex number question
how do i solve this : Suppose that the complex number z has modulus one, and that 0 < Arg z < π/2 . Prove that 2 Arg(z + 1) = Arg z.
boredofstudies.org
I hope this helps!
Modern4DaBois
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Ah ok. Conceptually that explanation makes sense. But how would you go about the working out? Are explanations enough, or do you have to set it up like a proper proof question?
Perhaps you need to go beyond explanations, as seen in the following working:
Step 1:
Given the complex number z has modulus one, and 0 < Arg z < π/2.
So, we may take complex number z as
z = cost + i sint.
Then |z| = 1 and
Argz = tan^-1(sint/cost) [since, 0 < Argz < π/2]
= tan^-1(tant)
= t [since, 0 <Argz <π/2 (given)]
Step 2:
z = cost +i sint,
Therefore,
z +1 = 1 + cost + i sint
= 2cos²(t/2) + i 2sin(t/2) cos(t/2)
[Since, 1+cost= 2cos²(t/2), sint=2sin(t/2)cos(t/2)]
Arg(z+1) = tan^-1[{ 2sin(t/2)cos(t/2)}/{2cos2(t/2)}] [since, 0 < Argz < π/2 (given)]
= tan^-1{tan(t/2)}
= t/2 [since, 0 < Argz < π/2 (given)]
or, 2Arg(z+1) = t = Arg(z) (Proved)
Step 1:
Given the complex number z has modulus one, and 0 < Arg z < π/2.
So, we may take complex number z as
z = cost + i sint.
Then |z| = 1 and
Argz = tan^-1(sint/cost) [since, 0 < Argz < π/2]
= tan^-1(tant)
= t [since, 0 <Argz <π/2 (given)]
Step 2:
z = cost +i sint,
Therefore,
z +1 = 1 + cost + i sint
= 2cos²(t/2) + i 2sin(t/2) cos(t/2)
[Since, 1+cost= 2cos²(t/2), sint=2sin(t/2)cos(t/2)]
Arg(z+1) = tan^-1[{ 2sin(t/2)cos(t/2)}/{2cos2(t/2)}] [since, 0 < Argz < π/2 (given)]
= tan^-1{tan(t/2)}
= t/2 [since, 0 < Argz < π/2 (given)]
or, 2Arg(z+1) = t = Arg(z) (Proved)
Modern4DaBois
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Thank you so much Jimmy!!! Really appreciate the effort you put in
yanujw
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Alternatively, by a geometrical method;
This diagram illustrates the situation. Then you must prove the two angles in red are equal because the bottom angle in red is arg(z+1), and the two angles combined are arg(z), making Arg(z) = 2arg(z+1)
The lower red angle is equal to the green angle by alternate angles. Then, since |z| = 1, the triangle bounded by the points 0, z and z+1 is isosceles. The green angle is equal to the upper red angle.
This diagram illustrates the situation. Then you must prove the two angles in red are equal because the bottom angle in red is arg(z+1), and the two angles combined are arg(z), making Arg(z) = 2arg(z+1)
The lower red angle is equal to the green angle by alternate angles. Then, since |z| = 1, the triangle bounded by the points 0, z and z+1 is isosceles. The green angle is equal to the upper red angle.
Modern4DaBois
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Oh ok that makes sense as well. Thank you so much for your help m8! Really appreciate it