Is {(-2)^5}^(1/5) a complex number ?

phydis · Aug 7, 2013

is E = {(-2)^5}^(1/5) a complex number ?

my cal gives E=(-2), but this gives 1.61+1.78i
http://www.wolframalpha.com/input/?i=((-2)^(5))^1/5

someone please explain this..

pwsnafu · Aug 7, 2013

Notice how the alpha page says

Assuming the principal root | Use the real‐valued root instead

If you select the real valued option you'll get -2.

lurflurf · Aug 7, 2013

You have a typo
E = {(-2)^5}^(1/5)=(-32)^(1/5)
There are five numbers such that x^5=-32
(-32)^(1/5) should be one of them
they are
1.61803398874989+1.17557050458495 i
-0.61803398874989+1.90211303259031 i
-2
-0.61803398874989-1.90211303259031 i
1.61803398874989-1.17557050458495 i

We chose 1.61803398874989+1.17557050458495 i as it is first on the list and the most reasonable choice. Some people inexplicably pick -2.

D H · Aug 7, 2013

There are *five* solutions to x⁵=(-2)⁵. One of them is the real number -2. The other four are complex numbers. Wolfram Alpha gives you the principal root by default. You can force it to yield the real-valued root by clicking on "Use the real‐valued root instead".

You can see all five solutions if you instead ask WA to solve x⁵=(-2)⁵.

phydis · Aug 7, 2013

got it. Thanks everyone!

Is {(-2)^5}^(1/5) a complex number ?

1. What is a complex number?

2. How do you determine if a number is complex?

3. Is {(-2)^5}^(1/5) a complex number?

4. Can a complex number be raised to a fractional power?

5. What is the result of {(-2)^5}^(1/5)?

Similar threads

Hot Threads

Recent Insights