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How can I get a tuple of arbitrary values from an anonymous dictionary?

def func():
    return dict(one=1, two=2, three=3)

# How can the following 2 lines be rewritten as a single line,
# eliminating the dict_ variable?
dict_ = func()
(one, three) = (dict_['one'], dict_['three'])
share|improve this question

What's wrong with an intermediate variable? Honestly, that's WAY better than this ugly thing which I cooked up to get rid of it:

>>> (one,three) = (lambda d:(d['one'],d['three']))(func())

(which really does nothing other than move the intermediate value into a function which is generated on the fly)

share|improve this answer
    
Agreed; both mine and yours are more ugly than necessary. – Martijn Pieters Apr 11 '13 at 14:59
    
Thanks. Note that I wasn't asking for the preferred way, only for possible alternatives. Only then can I make a style choice. And thus far, I agree that the intermediate variable is more clear than the 3 alternatives offered. And of the 3 alternatives thus far, I like yours the best. – Rob Bednark Apr 11 '13 at 18:25

Loop over the func() result?

one, three = [v for k, v in sorted(func().iteritems()) if k in {'one', 'three'}]

Replace .iteritems() with .items() if you are using Python 3.

Demo:

>>> def func():
...     return dict(one=1, two=2, three=3)
... 
>>> one, three = [v for k,v in sorted(func().iteritems()) if k in {'one', 'three'}]
>>> one, three
(1, 3)

Note that this approach requires you to keep your target list in sorted key order, rather a strange limitation for something that should be straightforward and simple.

This is far more verbose than your version. There is nothing wrong with it, really.

share|improve this answer
    
this fails, look at your demo result - func()['one'] != 3. – ch3ka Apr 11 '13 at 14:57
    
@ch3ka: fixed; it needed a sort. – Martijn Pieters Apr 11 '13 at 14:59
    
still fails in general case – ch3ka Apr 11 '13 at 14:59
    
That's because the use-case doesn't really require these shenanigans. It works for the general case if you keep your target list sorted too. – Martijn Pieters Apr 11 '13 at 15:00
    
well, but this just "works" because sorted(['one', 'three']) is ['one', 'three']. consider different names, and it breaks. – ch3ka Apr 11 '13 at 15:02

Don't do that, an intermediate dict is fine in most cases. readability counts. If you really find yourself far too often in this situation, you could use a decorator to monkeypatch your function:

In     : from functools import wraps

In     : def dictgetter(func, *keys):
  .....:     @wraps(func)
  .....:     def wrapper(*args, **kwargs):
  .....:         tmp = func(*args, **kwargs)
  .....:         return [tmp[key] for key in keys]
  .....:     return wrapper

In     : def func():
   ....:         return dict(one=1, two=2, three=3)
   ....: 

In     : func2 = dictgetter(func, 'one', 'three')

In     : one, three = func2()

In     : one
Out    : 1

In     : three
Out    : 3

or something like that.

Of course, you could also monkeypatch so that you specify your desired fields on calltime, but then you'd want an ordinary function which wraps these mechanics, I guess.

This would be implemented very similar to the body of def wrapper above, and used like

one, three = getfromdict(func(), 'one', 'three' )

or something like that, but you could also re-use the whole decorator above:

In     : two, three = dictgetter(func, 'two', 'three')()

In     : two, three
Out    : (2, 3)
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