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Here is what is probably a simple question, but I wasn't able to find a straightforward answer for on my own.

Given two lists, one with only a list of ids, the other with all data, including some ids that we don't care about:
all_data = [['abc', 123], ['cde', 234], ['fgh', 345]]
ids = ['abc', 'fgh']

what is the best way to get the following output, note that it keeps only those that have the same ids: new_data = [['abc', 123], ['fgh', 345]]

My current code does something like:

for x in all_data:
    for y in ids:
         if x[0] == y:
              new_data.append(x)

What woud you do differently? Is there a built-in function that takes care of this that I missed somewhere?

(I say "something like" because it's actually a very long sequence involving sets and all that which is why there is not "pythonic" one-liner to share.)

UPDATE: Well you guys are fun.

How about I make it a little harder. What if instead of "all_data" I have a a dictionary all_data_dict that has several list entries of the same format as "all_data"? Following the rules, I'll make sure to accept the answer to the original question, but if you all want to keep up with the fun, let's see what we get!

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5 Answers 5

up vote 2 down vote accepted

being that many have used dicts or LC I thought I should show filter

>>> all_data = [['abc', 123], ['cde', 234], ['fgh', 345]]    
>>> ids = set(['abc', 'fgh'])
>>> values = filter(lambda value: value[0] in ids, all_data)
>>> values
[['abc', 123], ['fgh', 345]]
>>> 

as for the second part.

>>> all_data_dict = {'abc':all_data, 'cde':all_data, 'fgh':all_data}
>>> ids = set(['abc', 'fgh'])
>>> dict(filter(lambda value: value[0] in ids, all_data_dict.items()))
{'abc': [['abc', 123], ['cde', 234], ['fgh', 345]], 'fgh': [['abc', 123], ['cde', 234], ['fgh', 345]]}
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1  
You can use in directly: lambda value: value[0] in ids. –  Omri Barel Aug 9 '12 at 21:46
    
very good point, thank you. –  Samy Vilar Aug 9 '12 at 21:47
    
Not thinking about efficiency, this is my favourite answer: filter is self documenting, you only need to read the line once to understand what the programmer wanted to do (which is to filter). –  Omri Barel Aug 9 '12 at 21:48
    
yep, I thinks its pretty efficient, since we are not creating any dicts the check is constant, filter applies a linear search. –  Samy Vilar Aug 9 '12 at 21:50
1  
Yes, I agree that it's very efficient. What I meant was that even if efficiency wasn't important (small sets etc.) it's still my favourite - words are better than constructs, constructs are better than loops. –  Omri Barel Aug 9 '12 at 21:51

Use a list comprehension where the conditional checks for membership in a set:

>>> all_data = [['abc', 123], ['cde', 234], ['fgh', 345]]
>>> ids = ['abc', 'fgh']
>>> id_set = set(ids)
>>> [s for s in all_data if s[0] in id_set]
[['abc', 123], ['fgh', 345]]
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1  
If I have the same answer as you Raymond, that means i must be doing something right :) –  anijhaw Aug 9 '12 at 21:41
4  
@anijhaw: No, your answer is O(m·n), while Raymond's is O(n). –  Sven Marnach Aug 9 '12 at 21:43
    
I meant to use a set I think I fat fingered it but thanks for the correction. –  anijhaw Aug 9 '12 at 21:48

Edited after the comment, I meant to use a set. As Raymond suggests in his answer use a list comprehension :) with a set for ids.

all_data = [['abc', 123], ['cde', 234], ['fgh', 345]]
ids = set(['abc', 'fgh'])
filtered_data = [x for x in all_data if x[0] in ids]
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You should turn all_data into a dictionary, since you use it like one:

d = dict(all_data)
new_data = [(k, d[k]) for k in ids]

This will use the order given by ids, not the order given by all_data.

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Maybe order is important to him? –  sblom Aug 9 '12 at 21:41
    
@sblom: It might be important, though in that case it's unclear whether to use the order of all_data or the order of ids. (Also note that you probably mean "important to her".) –  Sven Marnach Aug 9 '12 at 21:46
1  
definitely her. Sorry, @Lillian! –  sblom Aug 9 '12 at 21:51

Your second question isn't harder, just the proper way to structure your data from the beginning:

>>> all_data = {'abc': 123, 'cde': 234,'fgh': 345}  # a dict
>>> ids = {'abc', 'fgh'}  # a set
>>> {k:v for k,v in all_data.viewitems() if k in ids}
{'abc': 123, 'fgh': 345}

By the way, a nice fast way to get the matching keys is:

>>> all_data.viewkeys() & ids 
set(['abc', 'fgh'])
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