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I'm trying to write some code to test out the Cartesian product of a bunch of input parameters.

I've looked at itertools, but its product function is not exactly what I want. Is there a simple obvious way to take a dictionary with an arbitrary number of keys and an arbitrary number of elements in each value, and then yield a dictionary with the next permutation?

Input:

options = {"number": [1,2,3], "color": ["orange","blue"] }
print list( my_product(options) )

Example output:

[ {"number": 1, "color": "orange"},
  {"number": 1, "color": "blue"},
  {"number": 2, "color": "orange"},
  {"number": 2, "color": "blue"},
  {"number": 3, "color": "orange"},
  {"number": 3, "color": "blue"}
]
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I'm pretty sure you don't need any library to do this, but I don't know Python quite well enough to answer. I'd guess that list comprehensions are the trick. –  Matt Ball Mar 8 '11 at 4:00
    
I'm asking if there exists a ready-made generator that can be easily adapted to do something like this. List comprehensions are not at all relevant. –  Seth Johnson Mar 8 '11 at 4:02

3 Answers 3

up vote 10 down vote accepted

Ok, thanks to @dfan for telling me I was looking in the wrong place. I've got it now:

def my_product(dicts):
    return (dict(izip(dicts, x)) for x in product(*dicts.itervalues()))
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Does the fact that dictionary entries are stored unordered affect this in anyway? –  Phani Jun 20 at 20:50

By the way, this is not a permutation. A permutation is a rearrangement of a list. This is an enumeration of possible selections from lists.

Edit: after remembering that it was called a Cartesian product, I came up with this:

import itertools
options = {"number": [1,2,3], "color": ["orange","blue"] }
product = [x for x in apply(itertools.product, options.values())]
print [dict(zip(options.keys(), p)) for p in product]
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I was trying to explain why looking up "permutations" wasn't helping. I remembered what this actually is: it's a Cartesian product. I would start by looking at itertools.product(). –  dfan Mar 8 '11 at 4:09
    
Yep, done, and thanks for the pointer. But still, welcome to Stack Overflow: an answer should be one that actually provides an answer the question. This belongs as a comment on the question. –  Seth Johnson Mar 8 '11 at 4:13
    
@user470379 not really, the original version didn't state Cartesian product –  Daniel DiPaolo Mar 8 '11 at 4:14
    
I don't seem to have the ability to comment on anything but my own answers yet. I would have put it there if I could. I'm glad my answer led you to the solution. –  dfan Mar 8 '11 at 13:13
    
Ah, understood. Well, thanks again for your help in setting me on the right track. –  Seth Johnson Mar 8 '11 at 15:48
# I would like to do
keys,values = options.keys(), options.values()
# but I am not sure that the keys and values would always
# be returned in the same relative order. Comments?
keys = []
values = []
for k,v in options.iteritems():
    keys.append(k)
    values.append(v)

import itertools
opts = [dict(zip(keys,items)) for items in itertools.product(*values)]

results in

opts = [
    {'color': 'orange', 'number': 1},
    {'color': 'orange', 'number': 2},
    {'color': 'orange', 'number': 3},
    {'color': 'blue', 'number': 1},
    {'color': 'blue', 'number': 2},
    {'color': 'blue', 'number': 3}
]
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2  
I think Python guarantees that keys() and values() and their corresponding iter* will return in the same order. See docs.python.org/library/stdtypes.html#dict.items –  Seth Johnson Mar 8 '11 at 4:21
    
@Seth: Excellent! Thank you, that had been bothering me for a while. –  Hugh Bothwell Mar 8 '11 at 15:43
    
you're quite welcome. It's very handy, and especially for this case. If you review my answer, you can see that the iterkeys/itervalues methods will save you from creating a bunch of temporaries, too. –  Seth Johnson Mar 8 '11 at 15:50

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