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What is the easiest way to get a list of whole factor pairs of a given integer?

For example: f(20) would return [(1,20), (2,10), (4,5)].

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1  
possible duplicate of What is the best way to get all the divisors of a number? –  Mike Lewis Mar 31 '11 at 19:00
1  
partial overlap, but different question. –  Christopher O'Donnell Mar 31 '11 at 19:30

3 Answers 3

up vote 6 down vote accepted
def f(value):
    factors = []
    for i in range(1, int(value**0.5)+1):
        if value % i == 0:
            factors.append((i, value / i))
    return factors

Or the same thing using a list comprehension:

def f(val):
    return [(i, val / i) for i in range(1, int(val**0.5)+1) if val % i == 0]
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I added the hardcoded factor of 1 to micro optimise the function (as there's little point doing % 1) - but what do people think about this? Does the messiness of the code and the inability to accept values of less than 1 outweigh the exceptionally minor optimisation? –  Steve Mayne Mar 31 '11 at 21:00
    
It's a bit problematic as it returns 1 as a factor of 0, which is "incorrect". That could be fixed by doing result = [(1, value)] * (value > 0) which is possibly still faster than doing an extra iteration. –  Benjamin Apr 1 '11 at 17:10
    
I agree. I'll modify the code. –  Steve Mayne Apr 1 '11 at 17:43

Or this:

def f(n):
        factors_list = []
        for i in xrange(1, int(n**0.5) + 1):
            if n % i == 0:
                factors_list.append((i, n/i))
        return factors_list

print f(20)

EDIT: Or in a one-liner using list comprehension:

def f(n):
    return [(i, n / i) for i in xrange(1, int(n**0.5) + 1) if n % i == 0]

print f(36)

EDIT2: If you want the function to work for negative integers (as well as 0 and positive integers) use:

def f(n):
    return [(i, n / i) for i in xrange(1, int(math.sqrt(math.fabs(n))) + 1) if n % i == 0]

print f(-36)
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Why xrange and ceil? –  Christopher O'Donnell Mar 31 '11 at 19:25
    
@odonnell: xrange to speed things up when using large numbers (no need in Python 3, however), ceil for clarity and brevity. –  Benjamin Mar 31 '11 at 19:40
    
Wouldn't ceil remove an integer square root from the factor_list? You would need to add 1 to it. –  TheDude Mar 31 '11 at 20:26
    
@Brendan: do you have an example? –  Benjamin Mar 31 '11 at 20:34
1  
I like your one-liner, it is nice not to need to explicitly create an empty list. –  Christopher O'Donnell Mar 31 '11 at 20:39

How about this:

def f(n):
    from itertools import takewhile
    if not isinstance(n,int):
          raise ValueError("supplied %s type, requires integer input" %(type(n).__name__))
    return [(i,n/i) for i in takewhile(lambda x:x*x<n,xrange(1,n)) if (n%i)==0]
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There's so much wrong to unfortunate with the second line... (1) assert is for sanity checks, not for input validation. (2) Explicit typechecking is usually a bad idea anyway. (3) But if you do it, at least use isinstance (which considers inheritance). (4) Also, if you absolutely have to check if the type is exactly T, better use type(...) is T - is is more appropriate for singletons (a type is essentially one) and == could have a broken overload. –  delnan Mar 31 '11 at 19:12
    
Any reason why you do (n/i)*i==n, rather than use mod (%)? –  Steve Mayne Mar 31 '11 at 19:13
    
@Benjamin: Not with integer division, which truncates. Although in Python 3 you're right because they changed / to always return a float. –  delnan Mar 31 '11 at 19:16
1  
Checking types is silly, but if you must do it don't just print a message and try to muddle through. Raise a TypeError. But seriously, don't check the parameter types. –  Winston Ewert Mar 31 '11 at 19:23
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I think your list comprehension is backwards. I also think it's cooler to acknowledge when you see a good answer than to edit it into your own. –  Benjamin Mar 31 '11 at 19:45

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