47

Simple syntax question.

In maths if I have two number 3 and 2 and I wish to calculate 3 to the power of 2 then no symbol is required but I write the two small. In Python this operation seems to be represented by the ** syntax.

>>> 3**2
9

If I want to go the other direction and calculate the 2nd root of 9 then in maths I need to use a symbol:

nth root of x

Is there a short-hand symbol in Python, similar to ** that achieves this i.e.2<symbol>9. Or do I need to use the math module ?

10
  • 11
    Might be helpful to know that x to the 1/n power is the same as the nth root of x. – nhgrif Oct 8 '13 at 18:10
  • 7
    Make sure you use ** 1.0/n rather than ** 1/n in Python 2 because of integer division. – Wooble Oct 8 '13 at 18:11
  • 1
    Once you see how simple the answer is, you realize why there's no dedicated syntax for it. – Mark Ransom Oct 8 '13 at 18:16
  • @MarkRansom - I know Mark: although this is one of those questions that I nearly deleted - then left for a minute or two - and turns out the questions simplicity (silliness) has lead to some interesting answers. – whytheq Oct 8 '13 at 18:35
  • 1
    @MarkRansom in my defence though Mark - in maths we don't write 9^(1/2) when we want the square root of 9 - I thought there might be a syntactic equivalent to the mathematical norm. – whytheq Oct 8 '13 at 19:00
85

nth root of x is x^(1/n), so you can do 9**(1/2.0) to find the 2nd root of 9, for example. In general, you can compute the nth root of x as:

x**(1/float(n))

You can also do 1.0/n instead of 1/float(n). It is required so that the result is a float rather than an int.

3
  • 7
    In Python 3 it won't be necessary to coerce the result to a float, it will happen automatically. – Mark Ransom Oct 8 '13 at 18:15
  • @MarkRansom thanks - I'm using 3.2.2 and see what you mean >>> 8**(1/3) = 2 – whytheq Oct 8 '13 at 18:21
  • Or do x**(1./n) – Radio Controlled Apr 18 '19 at 11:00
4

Also: x**(n**-1), which is the same but shorter than x**(1/float(n))

1
  • However, it is not shorter than x**(1./n) and probably slightly less accurate (but then again, this whole way of computing nth roots is less than optimal). – user395760 Oct 8 '13 at 18:33
4

If you prefer to apply this operation functionally rather than with an infix operator (the ** symbol), you can pass the base and exponent as arguments to the pow function:

In [23]: (9**(0.5)) == pow(9, 0.5)
Out[23]: True

I am also fond of finding new uses for this Infix hack in Python although it's more of a fun aside than a heavy-duty solution. But you could effectively make your own personal symbol for this by doing the following:

class Infix:
    def __init__(self, function):
        self.function = function
    def __ror__(self, other):
        return Infix(lambda x, self=self, other=other: self.function(other, x))
    def __or__(self, other):
        return self.function(other)
    def __rlshift__(self, other):
        return Infix(lambda x, self=self, other=other: self.function(other, x))
    def __rshift__(self, other):
        return self.function(other)
    def __call__(self, value1, value2):
        return self.function(value1, value2)


root_of = Infix(lambda x,y: y**(1.0/x))

print 2 |root_of| 9
3.0
0
4

You may also use some logarithms:

Nth root of:

 X = exp(log(n)/x)
1
  • 1
    sorry, it's another way round - exp(log(x)/n) – Idvar Jun 1 '19 at 9:38
3

There is. It's just ** =)

Any nth root is an exponentiation by 1/n, so to get the square root of 9, you use 9**(1/2) (or 9**0.5) to get the cube root, you use 9 ** (1/3) (which we can't write with a simpler fraction), and to get the nth root, 9 ** (1/n).

Also note that as of Python 3, adding periods to integers to make them a float is no longer necessary. Saying 1/3 works the way you would actually expect it to, giving 0.333... as result, rather than zero. For legacy versions of Python, you'll have to remember to use that period (but also critically wonder why you're using a legacy version of a programming language)

2

Basically sqrt(9) is equivalent to 9^.5

>>>9**.5
3.0
2

You should do

16**(0.5) #If you print it, you get 4, So you can use this formula.
3
  • 3
    Prints 1 on Python 2.x, because 1/2 returns 0. – Nacib Neme Oct 8 '13 at 18:17
  • @NacibNeme - fine in 3.2.2 – whytheq Oct 8 '13 at 18:36
  • so use: Python 2.7.5+ (default, Sep 17 2013, 17:31:54) [GCC 4.8.1] on linux2 Type "help", "copyright", "credits" or "license" for more information. >>> 16**(0.5) 4.0 >>> – PersianGulf Oct 8 '13 at 19:44
1
def nthrootofm(a,n):
    return pow(a,(1/n))
a=81
n=4
q=nthrootofm(a,n)
print(q)

pow() function takes two parameters .

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