20

import math
x = int(input("Enter a value for x: "))
y = int(input("Enter a value for y: "))

if y == 1 or y == x:
    print(1)

if y > x:
    print(0)        
else:
    a = math.factorial(x)
    b = math.factorial(y)
    div = a // (b*(x-y))
    print(div)  

This binomial coefficient program works but when I input two of the same number which is supposed to equal to 1 or when y is greater than x it is supposed to equal to 0.

  • 1
    What do you need help with? The formula you're using for binomial coefficients doesn't look quite right, is that it? – Joni Oct 25 '14 at 8:53
  • why you are using while ? you can merely use if !! – Kasrâmvd Oct 25 '14 at 8:55
  • when I input a number greater than x it comes up with an error or if x and y are equal to each other – user3396351 Oct 25 '14 at 8:56
  • Enter a value for x: 1 Enter a value for y: 1 1 Traceback (most recent call last): File "D:\CE151 Computer Programming\ass1.py", line 122, in <module> elif len(line)==1 and "1"<=line<="8": exlist[int(line)]() File "D:\CE151 Computer Programming\ass1.py", line 83, in ex4 div = (a//(b*(x-y))) ZeroDivisionError: integer division or modulo by zero – user3396351 Oct 25 '14 at 8:57
  • can you say what you want to do actually ? – Kasrâmvd Oct 25 '14 at 8:57

11 Answers 11

74

This question is old but as it comes up high on search results I will point out that scipy has two functions for computing the binomial coefficients:

  1. scipy.special.binom()
  2. scipy.special.comb()

    import scipy.special
    
    # the two give the same results 
    scipy.special.binom(10, 5)
    # 252.0
    scipy.special.comb(10, 5)
    # 252.0
    
    scipy.special.binom(300, 150)
    # 9.375970277281882e+88
    scipy.special.comb(300, 150)
    # 9.375970277281882e+88
    
    # ...but with `exact == True`
    scipy.special.comb(10, 5, exact=True)
    # 252
    scipy.special.comb(300, 150, exact=True)
    # 393759702772827452793193754439064084879232655700081358920472352712975170021839591675861424
    

Note that scipy.special.comb(exact=True) uses Python integers, and therefore it can handle arbitrarily large results!

Speed-wise, the three versions give somewhat different results:

num = 300

%timeit [[scipy.special.binom(n, k) for k in range(n + 1)] for n in range(num)]
# 52.9 ms ± 107 µs per loop (mean ± std. dev. of 7 runs, 10 loops each)

%timeit [[scipy.special.comb(n, k) for k in range(n + 1)] for n in range(num)]
# 183 ms ± 814 µs per loop (mean ± std. dev. of 7 runs, 10 loops each)each)

%timeit [[scipy.special.comb(n, k, exact=True) for k in range(n + 1)] for n in range(num)]
# 180 ms ± 649 µs per loop (mean ± std. dev. of 7 runs, 10 loops each)

(and for n = 300, the binomial coefficients are too large to be represented correctly using float64 numbers, as shown above).

  • 7
    I'll just add a caution that scipy.special.binom returns a floating point approximation. This is good enough for most applications, but might not suffice for theoretical purposes. – Dave Radcliffe Jun 27 '16 at 1:30
  • 3
    Scipy also offers the comb function, which can be used to compute exact values. – Joel Croteau Dec 7 '17 at 1:39
20

Here's a version that actually uses the correct formula . :)

#! /usr/bin/env python

''' Calculate binomial coefficient xCy = x! / (y! (x-y)!)
'''

from math import factorial as fac


def binomial(x, y):
    try:
        binom = fac(x) // fac(y) // fac(x - y)
    except ValueError:
        binom = 0
    return binom


#Print Pascal's triangle to test binomial()
def pascal(m):
    for x in range(m + 1):
        print([binomial(x, y) for y in range(x + 1)])


def main():
    #input = raw_input
    x = int(input("Enter a value for x: "))
    y = int(input("Enter a value for y: "))
    print(binomial(x, y))


if __name__ == '__main__':
    #pascal(8)
    main()

...

Here's an alternate version of binomial() I wrote several years ago that doesn't use math.factorial(), which didn't exist in old versions of Python. However, it returns 1 if r is not in range(0, n+1).

def binomial(n, r):
    ''' Binomial coefficient, nCr, aka the "choose" function 
        n! / (r! * (n - r)!)
    '''
    p = 1    
    for i in range(1, min(r, n - r) + 1):
        p *= n
        p //= i
        n -= 1
    return p
  • Bah, who cares if the formula is correct. As long as my code doesn't throw any exceptions, it's fine, right? Right? :) – Tim Pietzcker Oct 25 '14 at 9:50
  • @TimPietzcker Hey, it's not your fault if the customer gives you the wrong specs for the software they want you to write for them. :) – PM 2Ring Oct 25 '14 at 9:52
  • 2
    Your (second) code seems to work with integer division as well, which is a great feature, since for n greater than (around) 60, floats start to give uncorrect results due to precision errors. – mmj Jun 5 '16 at 14:57
  • Here's a question asking about a less efficient recursive implementation: stackoverflow.com/questions/54932096/… – John Feb 28 at 19:05
3

So, this question comes up first if you search for "Implement binomial coefficients in Python". Only this answer in its second part contains an efficient implementation which relies on the multiplicative formula. This formula performs the bare minimum number of multiplications. The function below does not depend on any built-ins or imports:

def fcomb0(n, k):
    '''
    Compute the number of ways to choose $k$ elements out of a pile of $n.$

    Use an iterative approach with the multiplicative formula:
    $$\frac{n!}{k!(n - k)!} =
    \frac{n(n - 1)\dots(n - k + 1)}{k(k-1)\dots(1)} =
    \prod_{i = 1}^{k}\frac{n + 1 - i}{i}$$

    Also rely on the symmetry: $C_n^k = C_n^{n - k},$ so the product can
    be calculated up to $\min(k, n - k).$

    :param n: the size of the pile of elements
    :param k: the number of elements to take from the pile
    :return: the number of ways to choose k elements out of a pile of n
    '''

    # When k out of sensible range, should probably throw an exception.
    # For compatibility with scipy.special.{comb, binom} returns 0 instead.
    if k < 0 or k > n:
        return 0

    if k == 0 or k == n:
        return 1

    total_ways = 1
    for i in range(min(k, n - k)):
        total_ways = total_ways * (n - i) // (i + 1)

    return total_ways

Finally, if you need even larger values and do not mind trading some accuracy, Stirling's approximation is probably the way to go.

2

Your program will continue with the second if statement in the case of y == x, causing a ZeroDivisionError. You need to make the statements mutually exclusive; the way to do that is to use elif ("else if") instead of if:

import math
x = int(input("Enter a value for x: "))
y = int(input("Enter a value for y: "))
if y == x:
    print(1)
elif y == 1:         # see georg's comment
    print(x)
elif y > x:          # will be executed only if y != 1 and y != x
    print(0)
else:                # will be executed only if y != 1 and y != x and x <= y
    a = math.factorial(x)
    b = math.factorial(y)
    c = math.factorial(x-y)  # that appears to be useful to get the correct result
    div = a // (b * c)
    print(div)  
2

For Python 3, scipy has the function scipy.special.comb, which may produce floating point as well as exact integer results

import scipy.special

res = scipy.special.comb(x, y, exact=True)

See the documentation for scipy.special.comb.

For Python 2, the function is located in scipy.misc, and it works the same way:

import scipy.misc

res = scipy.misc.comb(x, y, exact=True)
1

What about this one? :) It uses correct formula, avoids math.factorial and takes less multiplication operations:

import math
import operator
product = lambda m,n: reduce(operator.mul, xrange(m, n+1), 1)
x = max(0, int(input("Enter a value for x: ")))
y = max(0, int(input("Enter a value for y: ")))
print product(y+1, x) / product(1, x-y)

Also, in order to avoid big-integer arithmetics you may use floating point numbers, convert product(a[i])/product(b[i]) to product(a[i]/b[i]) and rewrite the above program as:

import math
import operator
product = lambda iterable: reduce(operator.mul, iterable, 1)
x = max(0, int(input("Enter a value for x: ")))
y = max(0, int(input("Enter a value for y: ")))
print product(map(operator.truediv, xrange(y+1, x+1), xrange(1, x-y+1)))
  • Why is avoiding math.factorial an advantage? – BartoszKP Oct 25 '14 at 9:48
  • @BartoszKP: May be it is not, but @pm-2ring in his answer pointed out that math.factorial doesn't exist in old Pythons, so I desided to avoid it just for fun. Anyway, I've defined product. – firegurafiku Oct 25 '14 at 9:53
  • @BartoszKP and firegurafiku : math.factorial() is running at C speed so it's probably much faster than solutions that use Python loops. OTOH, factorial() grows very quickly: factorial(13) is too big to fit into an int, so the much slower long arithmetic must be used. firegurafiku's algorithm is better on that score than the simple factorial-based algorithm, but it still ends up working with large numbers. Continued in next comment... – PM 2Ring Oct 25 '14 at 11:40
  • 1
    @BartoszKP and firegurafiku : My loop-based version is the usual way to do it in languages that don't have big integers because the division in each loop keeps the cumulative value as small as possible. Also, by using min(r, n - r) it does the minimum number of loops. – PM 2Ring Oct 25 '14 at 11:40
1

Here is a function that recursively calculates the binomial coefficients using conditional expressions

def binomial(n,k):
    return 1 if k==0 else (0 if n==0 else binomial(n-1, k) + binomial(n-1, k-1))
0

I recommend using dynamic programming (DP) for computing binomial coefficients. In contrast to direct computation, it avoids multiplication and division of large numbers. In addition to recursive solution, it stores previously solved overlapping sub-problems in a table for fast look-up. The code below shows bottom-up (tabular) DP and top-down (memoized) DP implementations for computing binomial coefficients.

def binomial_coeffs1(n, k):
    #top down DP
    if (k == 0 or k == n):
        return 1
    if (memo[n][k] != -1):
        return memo[n][k]

    memo[n][k] = binomial_coeffs1(n-1, k-1) + binomial_coeffs1(n-1, k)
    return memo[n][k]

def binomial_coeffs2(n, k):
    #bottom up DP
    for i in range(n+1):
        for j in range(min(i,k)+1):
            if (j == 0 or j == i):
                memo[i][j] = 1
            else:
                memo[i][j] = memo[i-1][j-1] + memo[i-1][j]
            #end if
        #end for
    #end for
    return memo[n][k]

def print_array(memo):
    for i in range(len(memo)):
        print('\t'.join([str(x) for x in memo[i]]))

#main
n = 5
k = 2

print("top down DP")
memo = [[-1 for i in range(6)] for j in range(6)]
nCk = binomial_coeffs1(n, k)
print_array(memo)
print("C(n={}, k={}) = {}".format(n,k,nCk))

print("bottom up DP")
memo = [[-1 for i in range(6)] for j in range(6)]
nCk = binomial_coeffs2(n, k)
print_array(memo)
print("C(n={}, k={}) = {}".format(n,k,nCk))

Note: the size of the memo table is set to a small value (6) for display purposes, it should be increased if you are computing binomial coefficients for large n and k.

0

It's a good idea to apply a recursive definition, as in Vadim Smolyakov's answer, combined with a DP (dynamic programming), but for the latter you may apply the lru_cache decorator from module functools:

import functools

@functools.lru_cache(maxsize = None)
def binom(n,k):
    if k == 0: return 1
    if n == k: return 1
    return binom(n-1,k-1)+binom(n-1,k)
0

The simplest way is using the Multiplicative formula. It works for (n,n) and (n,0) as expected.

def coefficient(n,k):
    c = 1.0
    for i in range(1, k+1):
        c *= float((n+1-i))/float(i)
    return c

Multiplicative formula

0

Note that starting Python 3.8, the standard library provides the math.comb function to compute the binomial coefficient:

math.comb(n, k)

which is the number of ways to choose k items from n items without repetition
n! / (k! (n - k)!):

import math
math.comb(10, 5)  # 252
math.comb(10, 10) # 1

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