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What is the cleanest way to update the values of multiple keys in a dictionary to the values stored in a tuple?

Example:

I want to go from

>>>mydict = {'a':None, 'b':None, 'c':None, 'd':None}
>>>mytuple = ('alpha', 'beta', 'delta')

to

>>>print mydict
{'a':'alpha', 'b':'beta', 'c':None, 'd':'delta'}

Is there an easy one-liner for this? Something like this seems to be getting close to what I want.

EDIT: I don't wish to assign values to keys based on their first letter. I'm just hoping for something like

mydict('a','b','d') = mytuple

Obviously that doesn't work, but I'm hoping for something similar to that.

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4  
What rule are you using in your head to associate the value alpha with the key a? That the value starts with a? –  Eric Oct 11 '13 at 23:16
    
    
@ipinak: I don't see the relevance –  Eric Oct 11 '13 at 23:23
    
Eric, apologies for not being clear in my original question. I've updated it to reflect what I want. –  nfazzio Oct 11 '13 at 23:29
    
@eric the first answer of that post gives the answer to the requested problem. It's indirect somehow, but still the answer is there as well. I didn't say it's a duplicate, I just forward to that post. So, I believe it is relevant. –  ipinak Oct 11 '13 at 23:49

4 Answers 4

up vote 3 down vote accepted

If you're trying to create a new dictionary:

d = dict(zip(keys, valuetuple))

If you're trying to add to an existing one, just change the = to .update(…).

So, your example can be written as:

mydict.update(dict(zip('abd', mytuple))))

If you're doing this more than once, I'd wrap it up in a function, so you can write:

setitems(d, ('a', 'b', 'd'), mytuple)

Or maybe a "curried" function that parallels operator.itemgetter?

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This works! mydict.update(dict(zip(['a','b','d'],mytuple))) worked wonders! –  nfazzio Oct 11 '13 at 23:38
    
@nfazzio: I just realized I used 'abd' as shorthand for your ['a', 'b', 'd']. That will work (since a string is a sequence of 1-character strings), but I think your way is clearer. –  abarnert Oct 11 '13 at 23:46

You could use list comprehension to make it a one-liner, though it's not super efficient.

keys = [ 'a', 'b', 'c', 'd']
values = ['alpha', 'beta', 'delta']
dictionary = dict([(k,v) for k in keys for v in values if v.startswith(k)])
print dictionary #prints {'a': 'alpha', 'b': 'beta', 'd': 'delta'}
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Justin, this isn't quite what I want. I want to update existing keys in a dictionary with values from a tuple. Thanks for the extra startswith method, but it's unnecessary - I've updated my question to reflect that it isn't necessary. –  nfazzio Oct 11 '13 at 23:32

Assuming the association key <-> value is the first letter of the value is the first letter of the key.

dict( (v[0],v) for v in mytuple if v[0] in mydict)
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I would avoid one-liners in this case. It makes code more readable.

for t in mytuple:
    if t[0] in mydict.keys():
        mydict[t[0]] = t

If you want to add mytuple items even if the key does not exist, simply remove the if statement.

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