How do you enter the command for a cube root?
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I'm re-working the volume of a sphere equation (V=(4*pi*r^3)/3) to solve for the radius(r).
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John D'Errico
el 7 de Sept. de 2016
Editada: John D'Errico
el 7 de Sept. de 2016
Two simple options:
x^(1/3)
Or,
nthroot(x,3)
Be very careful though. If x is negative, it will return a complex number, because there are indeed THREE cube roots of a negative number. Two of them are complex. nthroot will give you the root you would expect however.
(-2)^(1/3)
ans =
0.62996 + 1.0911i
nthroot(-2,3)
ans =
-1.2599
In your case, it is not relevant, since the number will be non-negative.
2 comentarios
James Tursa
el 7 de Nov. de 2018
Editada: James Tursa
el 7 de Nov. de 2018
"... there are indeed THREE cube roots of a negative number ..."
To complete John's thought, there are three distinct cube roots of every non-zero number (positive real, negative real, complex), not just of the negative real numbers. And as John points out, some of these roots are complex, so you need to know how the tools you are using behave in order to get the answer(s) you want. (In general, there are n distinct n'th roots of every non-zero real or complex number)
John D'Errico
el 17 de Nov. de 2020
Good completion/correction. My statement was sloppy as I wrote it.
Más respuestas (2)
Andre Oliveira
el 7 de Nov. de 2018
0 votos
nthroot(-2,3)
Hamad Al-Mulla
el 24 de Nov. de 2021
0 votos
nthroot(10,3)
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