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Why doesn't this work?:

d["a"], d["b"] = *("foo","bar")

Is there a better way to achieve what I'm trying to achieve?

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2  
I would have never even thought to try something like this ... – mgilson Feb 13 '13 at 13:46
up vote 12 down vote accepted

It would work if you define a dictionary d before hand, and remove the * from there:

>>> d = {}
>>> d["a"], d["b"] = ("foo","bar")

In fact, you don't need those parenthesis on the RHS, so this will also work:

>>> d['a'], d['b'] = 'foo', 'bar'
share|improve this answer
    
Ahh, you don't need the *. Thanks. – jsj Feb 13 '13 at 13:29
    
@trideceth12: Out of curiosity, where did you get the idea for the *? – David Robinson Feb 13 '13 at 13:32
    
@trideceth12. You're welcome :) – Rohit Jain Feb 13 '13 at 13:37
2  
This is definitely cool (+1) -- But I still assert d.update(a='foo',b='bar') is nicer :) – mgilson Feb 13 '13 at 13:42
    
You also don't need the () on the RHS: d['a'], d['b'] = 'foo', 'bar' – ecatmur Feb 13 '13 at 13:50

Others have showed how you can unpack into a dict. However, in answer to your question "is there a better way", I would argue that:

d.update(a='foo',b='bar')

much easier to parse. Admitedtly, this doesn't work if you have a and b which are variables, but then you could use:

d.update({a:'foo',b:'bar'})

and I think I still prefer that version for the following reasons:

  • It scales up to multiple (>2) values nicer as it can be broken onto multiple lines more cleanly
  • It makes it immediately clear which key is associated with which value

And if you start off with a 2-tuple of values, rather than it being static as you show, you could even use zip:

d.update( zip(("a","b"),("foo","bar")) )

which is admittedly not as nice as the other two options ...

... And we've just covered all 3 ways you can use dict.update :).

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This is really nice. Forgot about it. At least this will not get ugly when number of value increases. +1 – Rohit Jain Feb 13 '13 at 13:43

It's just a typo (the *). This works (tested in Python 2.7.3):

d = dict()
d["a"], d["b"] = ("foo", "bar")
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