75

How can I calculate a number with an exponent in Elixir?

For example, 23 would return 8.

7 Answers 7

83

Use the Erlang :math module

:math.pow(2,3) #=> 8.0

If you want an integer:

:math.pow(2,3) |> round #=> 8
68

Erlang's :math.pow has some limitations, for example it will not allow really high integer exponents:

iex(10)> :math.pow(2, 10000)
** (ArithmeticError) bad argument in arithmetic expression

You can easily reimplement a fast algorithm for computing exponentials that will work with the arbitrarily large integers provided by the runtime:

defmodule Pow do
  require Integer

  def pow(_, 0), do: 1
  def pow(x, n) when Integer.is_odd(n), do: x * pow(x, n - 1)
  def pow(x, n) do
    result = pow(x, div(n, 2))
    result * result
  end
end

iex(9)> Pow.pow(2, 10000)
19950631168807583848837421626835850838234968318861924548520089498529438830...
0
16

Here is a tail call optimized implementation of the power function:

def  pow(n, k), do: pow(n, k, 1)        
defp pow(_, 0, acc), do: acc
defp pow(n, k, acc), do: pow(n, k - 1, n * acc)
1
  • 1
    Very nice! Would be nice to replace :math.pow's current implementation with an Erlang translation of this. github.com/erlang/otp May 19, 2017 at 17:45
9

Integer.pow/2

As of v1.12, Integer.pow/2 is the way to do this.

1
  • For fractional bases/powers you still have to use :math.pow/2
    – zenw0lf
    Sep 18, 2021 at 1:42
8

**/2

As of Elixir 1.13, ** is available.

> 2 ** 3 
8

Note: it returns a float if the exponent is less than 0.

Documentation

4
  • I am not sure if it works, as I get an error -> (SyntaxError) iex:3:4: syntax error before: '*'
    – Borybar
    Nov 2, 2021 at 8:10
  • Hi @Borybar. Could you confirm what version of Elixir you're using? I just tried with the 1.13 release candidate (1.13.0-rc.0) and received the following: > elixir -v Elixir 1.13.0-rc.0 (5062a15) (compiled with Erlang/OTP 22) and iex console: iex(1)> 2 ** 4 outputs 16 Nov 2, 2021 at 9:40
  • 1
    I am using Elixir 1.12.2, so I guess an older version. However, as I see it's not working for you now also, so am I correct to believe that it's linked to a version?
    – Borybar
    Nov 2, 2021 at 9:45
  • 1
    That's unfortunately the case. It was added in the most recent version. changelog. The other solutions on this page should suffice if you're on ~1.12. Nov 3, 2021 at 1:58
5

If the base is 2 and the power is an integer, you can do a left bitshift using the function Bitwise.bsl. For example, 23 can be calculated with:

> Bitwise.bsl(1, 3)
8
0
-2

Tis works - it will be great when I learn enough to know exactly why it works - probably something to do with eval under the covers:

defmodule Example do
  require Integer

  def do_it(list) do
    list
    |> Enum.reject(&Integer.is_odd(&1))
    |> Enum.map(&(:math.pow(&1,3)))
  end

end
0

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