Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I would like to replace the values in list (foo) using a value from a list of tuples. The first value in each tuple is the field to map to the values in the first list. The second value in each tuple, in the list bar, is the value I want to replace in the list foo.

foo = ['a','b','c']
bar = [('a','1'),('b','2'),('c','3')]

Expected results:

result = ['1','2','3']

Thanks for any help

share|improve this question
up vote 5 down vote accepted

Try this:

map(dict(bar).get, foo)
share|improve this answer
    
though you may want to do d = dict(bar) map(d.get, foo) instead of map(dict(bar… so you don't create a dict each time you call the function. May do a real improvement if you're running it inside a big loop. NOT – zmo May 8 '13 at 12:56
    
@zmo It doesn't create a new dict each time – jamylak May 8 '13 at 12:56
3  
dict(bar).get evaluates to a bound method, so the dictionary is created only once. – chepner May 8 '13 at 12:57
1  
oh you're right, sorry :-) – zmo May 8 '13 at 12:57
    
Thank you, this is great. Is it possible to change the default value 'none' for an unfound key? – JAB May 8 '13 at 13:01

Another alternative which uses itemgetter:

>>> foo = ['a','b','c']
>>> bar = [('a','1'),('b','2'),('c','3')]
>>> from operator import itemgetter
>>> itemgetter(*foo)(dict(bar))
('1', '2', '3')

This gives a tuple, but that's easy enough to convert if actually necessary. Note that this turns out to be a very efficient way to do this if the tuple is acceptible and you're re-using the same getter each time:

>>> def mgilson():
...     return itemgetter(*foo)(dict(bar))
... 
>>> def zwinck():
...     return map(dict(bar).get,foo)
... 
>>> def alfe():
...     b = dict(bar)
...     return [b[i] for i in foo]
... 
>>> import timeit
>>> timeit.timeit('mgilson()','from __main__ import mgilson')
1.306307077407837
>>> timeit.timeit('zwinck()','from __main__ import zwinck')
1.6275198459625244
>>> timeit.timeit('alfe()','from __main__ import alfe')
1.2801191806793213
>>> def mgilson_mod(getter=itemgetter(*foo)):
...      return getter(dict(bar))
... 
>>> timeit.timeit('mgilson_mod()','from __main__ import mgilson_mod')
1.1312751770019531

Tests done on Ubuntu Linux with python2.7.3 64-bit

share|improve this answer
    
Interesting results, would like to see on foo*1000 or something large. Also that's an unfair mod IMO considering you shouldn't know foo in advance. – jamylak May 8 '13 at 13:04
    
@jamylak -- I don't know if OP does or doesn't know it in advance. But there are times when you might know the keys you want in advance and as far as I can see it, mine is the only method which can actually take good advantage of that. But, doing things with items which aren't found becomes a bit more messy -- (I'd need a defaultdict(lambda:default)) – mgilson May 8 '13 at 13:09
1  
Why does everyone misspell my name? – John Zwinck May 8 '13 at 13:46
    
@JohnZwinck -- my most sincere apologies. I have corrected it above (hopefully) – mgilson May 8 '13 at 14:35

Very short version:

[ dict(bar)[i] for i in foo ]

Consider doing the dict(bar) just once in the beginning.

share|improve this answer

Considering that some items in foo may not need to be replaced

eg.

>>> foo = ['a','b','c', 'd']
>>> bar = [('a','1'),('b','2'),('c','3')]
>>> d = dict(bar)
>>> [d.get(x, x) for x in foo]
['1', '2', '3', 'd']
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.