Complex number question (1 Viewer)

EvoRevolution · Jan 28, 2009

Difficult:

Suppose θ, Φ doesnt = pie/2(2k+1) where k is an integer, use the fact that
z = (1+z)/(1+z^-1) to:

(a) find the real and imaginery parts of (1+cos2θ+isin2θ)/(1+cos2θ-isin2θ).

(b) show that if n is a positive integer then

[(1+sinΦ+isinΦ)/(1+sinΦ-icosΦ)]^n = cosn(pie/2-Φ)+isin n(pie/2-Φ).

vds700 · Feb 3, 2009

jet · Feb 3, 2009

For <br> you just do //

vds700 · Feb 3, 2009

jetblack2007 said:
For
you just do //

huh?

how do i type so it doesnt come up with br and ><?

jet · Feb 3, 2009

Sorry, the break i typed actually worked. Pardon, the residential was extremely tiring.
To do it without the tag showing, just use "//" [without the quotes obviously.]

vds700 · Feb 3, 2009

jetblack2007 said:
Sorry, the break i typed actually worked. Pardon, the residential was extremely tiring.
To do it without the tag showing, just use "//" [without the quotes obviously.]

ok thanks bro

EDIT: doesnt seem to work either

azureus88 · Feb 3, 2009

i think he means type // instead of that "br" crap

jet · Feb 3, 2009

Yeh. We need a latex guide. I might work on one and see what I come up with.

EDIT: Sorry. So tired. Its actually "\\"

Trebla · Feb 3, 2009

You're meant to connect the codes up into one. So when you type '\\', type the next line immediately after it, do not press enter.

vds700 · Feb 3, 2009

Trebla said:
You're meant to connect the codes up into one. So when you type '\\', type the next line immediately after it, do not press enter.

haha thanks, got it now

Templar · Feb 3, 2009

jetblack2007 said:
Yeh. We need a latex guide. I might work on one and see what I come up with.

EDIT: Sorry. So tired. Its actually "\\"

There are so many good guides online. Do a google search and you'll find a lot of them. Perhaps the mods should link a few to a sticky.

Trebla · Feb 4, 2009

EvoRevolution said:
(b) show that if n is a positive integer then

[(1+sinΦ+isinΦ)/(1+sinΦ-icosΦ)]^n = cosn(pie/2-Φ)+isin n(pie/2-Φ)

I think there is a mistake is should be show:
[(1+sinΦ+icosΦ)/(1+sinΦ-icosΦ)]^n = cosn(pie/2-Φ)+isin n(pie/2-Φ)

$$Let $ z=cis\left(\dfrac{\pi}{2} - \phi\right)\\ $Using $ z = \dfrac{1+z}{1+z^{-1}}\\ cis\left(\dfrac{\pi}{2} - \phi\right)=\dfrac{1+cis\left(\dfrac{\pi}{2} - \phi\right)}{1+\left[cis\left(\dfrac{\pi}{2} - \phi\right)\right]^{-1}}\\\\ \Rightarrow cis\left(\dfrac{\pi}{2} - \phi\right)=\dfrac{1+\cos\left(\dfrac{\pi}{2} - \phi\right)+i\sin\left(\dfrac{\pi}{2} - \phi\right)}{1+\cos\left(\phi-\dfrac{\pi}{2}\right)+i\sin\left(\phi-\dfrac{\pi}{2}\right)}\\\\ $But $\cos(-x) = \cos x $ and $ \sin(-x)=-\sin x\\\\ $Therefore $\cos\left(\phi-\dfrac{\pi}{2}\right)=\cos\left(\dfrac{\pi}{2}-\phi\right) $ and $\sin\left(\phi-\dfrac{\pi}{2}\right)=-\sin\left(\dfrac{\pi}{2}-\phi\right)\\ \Rightarrow cis\left(\dfrac{\pi}{2} - \phi\right)=\dfrac{1+\cos\left(\dfrac{\pi}{2} - \phi\right)+i\sin\left(\dfrac{\pi}{2} - \phi\right)}{1+\cos\left(\dfrac{\pi}{2} - \phi\right)-i\sin\left(\dfrac{\pi}{2} - \phi\right)}\\$
$$Note that $\sin\left(\dfrac{\pi}{2} - x\right)=\cos x $ and $\cos\left(\dfrac{\pi}{2} - x\right)=\sin x \\\Rightarrow cis\left(\dfrac{\pi}{2} - \phi\right)=\dfrac{1+\sin \phi+i\cos \phi}{1+\sin \phi-i\cos \phi}\\\Rightarrow cis\left(\dfrac{\pi}{2} - \phi\right)n\,=\left (\dfrac{1+\sin \phi+i\cos \phi}{1+\sin \phi-i\cos \phi} \right)^n$

gurmies · Feb 4, 2009

^ I found the same, but wasn't sure - so kept trying with the sin's there -_-

Complex number question (1 Viewer)

EvoRevolution

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vds700

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jet

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jet

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azureus88

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jet

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Trebla

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