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What is the most elegant and concise way (without creating my own class with operator overloading) to perform tuple arithmetic in Python 2.7?

Lets say I have two tuples:

a = (10, 10)
b = (4, 4)

My intended result is

c = a - b = (6, 6)

I currently use:

c = (a[0] - b[0], a[1] - b[1])

I also tried:

c = tuple([(i - j) for i in a for j in b])

but the result was (6, 6, 6, 6). I believe the above works as a nested for loops resulting in 4 iterations and 4 values in the result.

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If you are doing a lot of these and they don't particularly need to be tuples you could look at numpy – John La Rooy Jul 2 '13 at 5:53
up vote 14 down vote accepted

If you're looking for fast, you can use numpy:

>>> import numpy
>>> numpy.subtract((10, 10), (4, 4))
array([6, 6])

and if you want to keep it in a tuple:

>>> tuple(numpy.subtract((10, 10), (4, 4)))
(6, 6)
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1  
Thank you for mentioning numpy, totally missed it. – user1737647 Jul 2 '13 at 6:58

One option would be,

>>> from operator import sub
>>> c = tuple(map(sub, a, b))
>>> c
(6, 6)

And itertools.imap can serve as a replacement for map.

Of course you can also use other functions from operator to add, mul, div, etc.

But I would seriously consider moving into another data structure since I don't think this type of problem is fit for tuples

share|improve this answer
    
Thanks. +1 for operator and map. – user1737647 Jul 2 '13 at 7:00

Use zip and a generator expression:

c = tuple(x-y for x, y in zip(a, b))

Demo:

>>> a = (10, 10)
>>> b = (4, 4)
>>> c = tuple(x-y for x, y in zip(a, b))
>>> c
(6, 6)

Use itertools.izip for a memory efficient solution.

help on zip:

>>> print zip.__doc__
zip(seq1 [, seq2 [...]]) -> [(seq1[0], seq2[0] ...), (...)]

Return a list of tuples, where each tuple contains the i-th element
from each of the argument sequences.  The returned list is truncated
in length to the length of the shortest argument sequence.
share|improve this answer
    
Thanks for the detailed answer! – user1737647 Jul 2 '13 at 6:59

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