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Jan 22nd, 2005, 02:24 PM
#1
Thread Starter
Hyperactive Member
[resolved] 4,6,8... root of a negative [/resolved]
4,6,8... root of a negative
ok i know how to take the sqaure root of a negative but ive been searching the web for an hour know and havent found any thing about even roots higher than that (well techincly lower 1/2 > 1/4)
i know from typing it into a calc thats its possible and it will return an number like xi + c but i cant figure out how it comes about getting that answer.
so please post any links or advise on how to solve thanks.
-Nate
Last edited by dogfish227; Jan 23rd, 2005 at 11:26 PM.
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Jan 22nd, 2005, 04:10 PM
#2
Thread Starter
Hyperactive Member
Re: 4,6,8... root of a negative
well ive figured it out for 4th root just treat it like (-4)^(1/4) as ((-4)^(1/2))^(1/2) then you get
2i^(1/2)
so you must find the number A + Bi such that it ^2 = 2i so just say
(A +Bi)^2 = 2i
(A + Bi)(A + Bi) = 2i
A^2 + ABi - B^2 = 2i
A^2 - B^2 must = 0 as there is no constant
so A^2 - B^2 = 0 and solve
A^2 = B^2 and so
A = B
so A^2 + A^2 i - A^2 = 2i
A^2 i = 2i
A^2 = 2
A = 2^(1/2)
and you get your answer but i cant seem to get it to work out for 6,8,10 ect.
any ideas??
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Jan 22nd, 2005, 04:31 PM
#3
Hyperactive Member
Re: 4,6,8... root of a negative
First of all you can't have negative numbers from an even power...
Second to get a root just do number^(1/power).
"I don't want to live alone until I'm married" - M.M.R.P
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Jan 22nd, 2005, 09:51 PM
#4
Thread Starter
Hyperactive Member
Re: 4,6,8... root of a negative
well you can if you use the imaginary number system. which it what im asking about
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Jan 23rd, 2005, 07:57 AM
#5
Re: 4,6,8... root of a negative
{r*(cos x + i sin x)}(1/N) = r(1/N) [cos(x/N+2PIk/N) + i sin(x/N+2PIk/N)] for k = 0,1,2,...,N
From:
http://oakroadsystems.com/twt/twtnotes.htm#eq82

So, the trick is to determine, from some number A+iB which you want to take the root of, the values r and x.
Well, lets see.
If we say r = (A2 + B2)^(1/2)
Then
A+iB = r*(A/r + i(B/r))
So cos(x) = A/r, and sin(x) = B/r.
Last edited by NotLKH; Jan 23rd, 2005 at 08:07 AM.
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Jan 23rd, 2005, 12:15 PM
#6
PowerPoster
Re: 4,6,8... root of a negative
The root of a negetive is an imiginary number.
There are no two alike numbers when multiplied that will equal a negetive.
I hope you understand this much:
Sqrt(-1)...You can't take -1 * -1 = 1, nor can you 1 * 1 = 1.
So we call the sqrt(-1) an imiginary number i, or k.
Now i * i or i^2 = -1
So the sqrt(-4)
= (i^2 * 2)
= -1 * 2
= -2
I believe that is how it is done.
Just remeber, imaginary number * imaginary number always equals -1.
Follow that rule and you can "imagine" the sqrt of any negetive number.
It this idea that will lead into Quaternions.
"From what was there, and was meant to be, but not of that was faded away." - - Steve Damm
"The polar opposite of nothingness is existance. When existance calls apon nothingness it shall return to nothingness." - - Steve Damm
"When you do things right, people won't be sure if you did anything at all." - - God from Futurama
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Jan 23rd, 2005, 01:01 PM
#7
Re: 4,6,8... root of a negative
 Originally Posted by NotLKH
{r*(cos x + i sin x)}(1/N) = r(1/N) [cos(x/N+2PIk/N) + i sin(x/N+2PIk/N)] for k = 0,1,2,...,N
It's suddenly SOOOO obvious!  
I don't live here any more.
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Jan 23rd, 2005, 01:12 PM
#8
PowerPoster
Re: 4,6,8... root of a negative
 Originally Posted by wossname
Is that suppose to be sarcastic.
That equation went right over me head.
"From what was there, and was meant to be, but not of that was faded away." - - Steve Damm
"The polar opposite of nothingness is existance. When existance calls apon nothingness it shall return to nothingness." - - Steve Damm
"When you do things right, people won't be sure if you did anything at all." - - God from Futurama
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Jan 23rd, 2005, 05:17 PM
#9
Thread Starter
Hyperactive Member
Re: 4,6,8... root of a negative
thanks for that formula LHK. ill try it out.
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Jan 23rd, 2005, 10:41 PM
#10
Thread Starter
Hyperactive Member
Re: 4,6,8... root of a negative
um LKH could you show me an example of how to use the equation you've given me.
like how could i solve (3i+5)^(1/3)
thanks
-nate
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Jan 23rd, 2005, 11:26 PM
#11
Thread Starter
Hyperactive Member
Re: 4,6,8... root of a negative
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