Merry Christmas from Math Man (1 Viewer)

cutemouse · Dec 25, 2011

SpiralFlex said:
Prove that: $i^i=\frac{1}{\sqrt{e^\pi}}$

You should really say $\text{pv }i^i$ because of periodicity.

By definition,

$\text{pv } i^i = e^{i Log i} = e^{ i (ln|i| + i Arg(i))}= e^{i( 0 + i \frac{\pi}{2} )} = e^{-\frac{\pi}{2}} = \frac{1}{\sqrt{e^{\pi}}}$

If you didn't use pv then you'd get something like a + exp(2pi k) term as well... (The complex exponential function is periodic)

EDIT: Just saw the posted solutions... You should really use pv (principal value) for the fore mentioned reasons. But this is all complex analysis (usually a second year university course).

math man · Dec 25, 2011

cutemouse said:
You should really say $\text{pv }i^i$ because of periodicity.

By definition,

$\text{pv } i^i = e^{i Log i} = e^{ i (ln|i| + i Arg(i))}= e^{i( 0 + i \frac{\pi}{2} )} = e^{-\frac{\pi}{2}} = \frac{1}{\sqrt{e^{\pi}}}$

If you didn't use pv then you'd get something like a + exp(2pi k) term as well... (The complex exponential function is periodic)

EDIT: Just saw the posted solutions... You should really use pv (principal value) for the fore mentioned reasons. But this is all complex analysis (usually a second year university course).

yeh this is the method i posted before...but i did forget to say pv...however these young minded 4u students need not worry about logarithms of complex numbers and the periodicity of the exponential function

cutemouse · Dec 25, 2011

Complex analysis is a very beautiful course. Most of my friends hated it though.

You can do things like finding a solution to sin z = 2 (can't remember if this particular case has a solution, but it could have a complex solution) using sin z = (e^z - e^(-z) )/(2i) or by letting z=x+iy and using the double angle formulae and hyperbolic formulae.

Carrotsticks · Dec 26, 2011

cutemouse said:
Complex analysis is a very beautiful course. Most of my friends hated it though.

You can do things like finding a solution to sin z = 2 (can't remember if this particular case has a solution, but it could have a complex solution) using sin z = (e^z - e^(-z) )/(2i) or by letting z=x+iy and using the double angle formulae and hyperbolic formulae.

Oh? I remember practising questions like that during Differential Calculus.

Or maybe because I was just practising random questions out of a general Calculus textbook, not a specific USYD syllabus one.

Indeed it has complex solutions lol.

math man · Dec 26, 2011

cutemouse said:
Complex analysis is a very beautiful course. Most of my friends hated it though.

You can do things like finding a solution to sin z = 2 (can't remember if this particular case has a solution, but it could have a complex solution) using sin z = (e^z - e^(-z) )/(2i) or by letting z=x+iy and using the double angle formulae and hyperbolic formulae.

yeh im doing adv complex analysis next yr..can't wait lol

seanieg89 · Dec 26, 2011

math man said:
Well you may be right for part ii)... root2 z1 may not lie on the original circle, however it does lie on another cirlce....but this is only a simple 4u question so it does not matter if it does or does not lie on the original circle....you just need to prove it lies on a circle, which is easily done.

I did not mean any part in particular. I simply meant that the premise of the question is always false. The four points corresponding to 0, z_2, z_3, z_1+z_2 CANNOT ever be concyclic. (Try to find z_1 for which they are...I can provide geometric justification for my claim if you wish). So the question is logically equivalent to something like:

If 1=0, prove that 69=42. (Silly example to make a point.)

seanieg89 · Dec 26, 2011

cutemouse said:
Complex analysis is a very beautiful course. Most of my friends hated it though.

You can do things like finding a solution to sin z = 2 (can't remember if this particular case has a solution, but it could have a complex solution) using sin z = (e^z - e^(-z) )/(2i) or by letting z=x+iy and using the double angle formulae and hyperbolic formulae.

Complex analysis is indeed magical. If any of you are interested in number theory you should check out how complex analysis is used to prove the prime number theorem (eg the second last chapter of Tom Apostol's Introduction to Analytic Number Theory)...it is pretty mindblowing the first time you see connections between complex numbers and the primes.

seanieg89 · Dec 26, 2011

Carrotsticks said:
Does this proof have to use methods only learnt in MX2? I have a general idea for a proof, but I think it requires the use of the max/min modulus principle (http://en.wikipedia.org/wiki/Maximum_modulus_principle), but that's meant to be something learnt in 2nd Year. I only know of it because I've been watching lectures and reading up on a bit of Complex Analysis for next semester.

EDIT: Woops, this proof does the whole FTA, not just the step you said.

Yeah generally a complete proof will utilise something relatively deep...such as the Jordan curve theorem from topology or Liouville's theorem from complex analysis. This is the first step in several proofs though I believe.

PS I do recall seeing a relatively elementary proof of FTA somewhere that required little more than the mean value theorem and the definition of partial derivatives

.

asianese · Dec 26, 2011

Oh mah gahd cannot wait for Adv Math at Sydney

SpiralFlex · Dec 26, 2011

I am sure I was right on the first page when I said it does not geometrically sustain itself. My interpretation is,

$z_{3}, O, z_{2}$ Makes a right angle. If the points are concylic, then the angle at $z_{1}+z_{2}$ must also be 90. However, the angle at $z_{1}+z_{2}$ is clearly less than 90.

math man · Dec 26, 2011

seanieg89 said:
I did not mean any part in particular. I simply meant that the premise of the question is always false. The four points corresponding to 0, z_2, z_3, z_1+z_2 CANNOT ever be concyclic. (Try to find z_1 for which they are...I can provide geometric justification for my claim if you wish). So the question is logically equivalent to something like:

If 1=0, prove that 69=42. (Silly example to make a point.)

i see what you mean..but this question is only designed to test the critical thinking skills of my students

math man · Dec 26, 2011

SpiralFlex said:
I am sure I was right on the first page when I said it does not geometrically sustain itself. My interpretation is,

$z_{3}, O, z_{2}$ Makes a right angle. If the points are concylic, then the angle at $z_{1}+z_{2}$ must also be 90. However, the angle at $z_{1}+z_{2}$ is clearly less than 90.

Did you join the line between z3 and z1+z2 ?

seanieg89 · Dec 26, 2011

math man said:
Did you join the line between z3 and z1+z2 ?

Spiral is correct, the angle will be less than 90 because of the fallacious premise I mentioned.

math man · Dec 26, 2011

Spiral did your diagram look like this?

IamBread · Dec 26, 2011

Ok, so I wasn't the only one who couldn't do this. lol

IamBread · Dec 26, 2011

I don't know if I'm making a mistake, but im getting angle z3 z2 (z1 +z2) = 90. Which means angle z3 (z1+z2) z2 can't be 90 and it therefore cannot be cyclic.

Carrotsticks · Dec 26, 2011

IamBread said:
I don't know if I'm making a mistake, but im getting angle z3 z2 (z1 +z2) = 90. Which means angle z3 (z1+z2) z2 can't be 90 and it therefore cannot be cyclic.

I think we established about 20 posts ago that the question is invalid lol.

IamBread · Dec 26, 2011

Carrotsticks said:
I think we established about 20 posts ago that the question is invalid lol.

Math man didn't seem convinced yet, no one had really stated a why though.

deterministic · Dec 26, 2011

IamBread said:
Math man didn't seem convinced yet, no one had really stated a why though.

Or else you have 2 different perpendiculars from z3 to the vector z1 (one at z2+z1 and the other at z2) which is impossible

edit: nevermind, you already said it

IamBread · Dec 26, 2011

math man said:
Spiral i tweaked your question and made it more interesting

View attachment 23978

This right?

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