Author

Jenkar · « **Reply #12 on:** October 08, 2012, 08:02:50 pm »

Just i as far as i have read.

YawnChainHow · « **Reply #13 on:** October 10, 2012, 07:29:58 am »

I probably know less about the subject at hand than anyone else, but seem to have been luckier with my searching:
(Don't mind the redundancy)
Complex Numbers to Complex Powers
Understanding Imaginary Exponents
Imaginary and Complex Exponents
How to raise a complex number to the power of another complex number

Quote from: Jenkar on October 08, 2012, 08:02:50 pm

Just i as far as i have read.

Seems to be a+bi as far as a+bi have read

ralouf · « **Reply #14 on:** October 10, 2012, 07:51:48 am »

Did it in school last year it's something that deal with the definition of the ln of a complex number, and I forgot what it's.

Nelde95 · « **Reply #15 on:** October 11, 2012, 04:14:15 pm »

I was really wanting to do (a+bi)^(c+di), but I thought that it could be written as: ((a+bi)^c)*(((a+bi)^d)^i). However I have some doubts now,
but if this is true, I really just nead to know how to do (a+bi)^i. Can anybody comfirm wether this^ is true for complex numbers too?

Spoiler for thinking...:

Nelde95 · « **Reply #16 on:** November 10, 2012, 02:30:48 pm »

Finally figured out something helpfull: xⁱ=i^{log_e^pi/2(x)}

Nelde95 · « **Reply #17 on:** May 21, 2013, 11:46:50 am »

(a+b*i)^(c+di)
=
cos(((ln(a^(2)+b^(2))*d)/(2))-(((2*arctan(((a)/(b)))-sign(b)*pi)*c)/(2)))*(a^(2)+b^(2))^(((c)/(2)))*e^(arctan(((a)/(b)))*d-((sign(b)*d*pi)/(2)))
+
sin(((ln(a^(2)+b^(2))*d)/(2))-(((2*arctan(((a)/(b)))-sign(b)*pi)*c)/(2)))*(a^(2)+b^(2))^(((c)/(2)))*e^(arctan(((a)/(b)))*d-((sign(b)*d*pi)/(2)))*i

or

cos(u)+sin(u)*i where
u=((ln(a^(2)+b^(2))*d)/(2))-(((2*arctan(((a)/(b)))-sign(b)*pi)*c)/(2)))*(a^(2)+b^(2))^(((c)/(2)))*e^(arctan(((a)/(b)))*d-((sign(b)*d*pi)/(2))

Thanks to mathprograms... why did I not do this sooner? oh well...

But now it has no reason to remain active... D:

andretimpa · « **Reply #18 on:** June 17, 2013, 06:16:37 pm »

[troll]
exp(-pi/2) = exp(i*pi/2)^i = i^i = exp(5*i*pi/2)^i = exp(-5*pi/2)
exp(-pi/2) = exp(-5*pi/2)
exp(2*pi) = 1
pi = 0
[/troll]

now this thread is complete

Nelde95 · « **Reply #19 on:** June 18, 2013, 04:51:40 pm »

Quote from: andretimpa on June 17, 2013, 06:16:37 pm

[troll]
exp(-pi/2) = exp(i*pi/2)^i = i^i = exp(5*i*pi/2)^i = exp(-5*pi/2)
exp(-pi/2) = exp(-5*pi/2)
exp(2*pi) = 1
pi = 0
[/troll]

now this thread is complete

Huh... Did not know about that one.
Tested it in my math program and it gave "exp(5*i*pi/2)^i = exp(-5*pi/2) -> False", but I see how it was done.
Did someone divide by 0 somewhere or is it allowed to say that exp(5*i*pi/2)^i = exp(-5*pi/2)?

andretimpa · « **Reply #20 on:** June 18, 2013, 05:41:26 pm »

This is the reason essentially:
http://en.wikipedia.org/wiki/Complex_logarithm#Problems_with_inverting_the_complex_exponential_function

You basically switch the branch you are using for your calculations in the middle of the "demonstration" (much more subtle than dividing by zero)

Author

Jenkar

Re: (x+yi)^i how?! https://elementscommunity.org/forum/index.php?topic=43961.msg1006259#msg1006259

YawnChainHow

Re: (x+yi)^i how?! https://elementscommunity.org/forum/index.php?topic=43961.msg1006722#msg1006722

ralouf

Re: (x+yi)^i how?! https://elementscommunity.org/forum/index.php?topic=43961.msg1006727#msg1006727

Nelde95

Re: (x+yi)^i how?! https://elementscommunity.org/forum/index.php?topic=43961.msg1006980#msg1006980

Nelde95

Re: (x+yi)^i how?! https://elementscommunity.org/forum/index.php?topic=43961.msg1014583#msg1014583

Nelde95

Re: (x+yi)^i how?! https://elementscommunity.org/forum/index.php?topic=43961.msg1072787#msg1072787

andretimpa

Re: (x+yi)^i how?! https://elementscommunity.org/forum/index.php?topic=43961.msg1080961#msg1080961

Nelde95

Re: (x+yi)^i how?! https://elementscommunity.org/forum/index.php?topic=43961.msg1081178#msg1081178

andretimpa

Re: (x+yi)^i how?! https://elementscommunity.org/forum/index.php?topic=43961.msg1081184#msg1081184