Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to create several new lists from one master list whereby the new lists contain similar items from the master list. Specifically, I have a list of bus routes. Here is a sample data set:

[u'Bus04_00_00_IB_pts_Line', u'Bus04_00_00_OB_pts_Line', u'Bus15_00_00_IB_pts_Line', u'Bus15_00_00_OB_pts_Line']

Most bus routes have an inbound (IB) and an outbound (OB) item, (and some have multiple IBs and OBs, and some have only one route, b/c they are loop routes). Eventually, I want to merge the IB and OB routes in mapping software (which I already know how to do)...

I originally created the filenames so that the first 5 characters represent the bus route, whether or not it's IB or OB. Therefore, I am able to group similar items based on the first 5 characters. For example, when I write:

for route in routes:
    print route[0:5]

I get:

>>> 
Bus04
Bus04
Bus15
Bus15

How can I "group" the files that pertain to Bus04 and Bus04, and Bus15 and Bus15 into new lists, such that I get:

[u'Bus04_00_00_IB_pts_Line', u'Bus04_00_00_OB_pts_Line'] and [u'Bus15_00_00_IB_pts_Line', u'Bus15_00_00_OB_pts_Line'] as separate lists?

I am thinking something along the lines of looping through each item, looking at the first five characters of each, then either create a new list with each new five character item that comes up (and add that item to the new list) or checking whether a list already exists and appending the similar item to it.

I'm having a hard time writing this out in code, so any help is greatly appreciated!

share|improve this question

4 Answers 4

I would use collections.defaultdict for this:

import collections

L = [u'Bus04_00_00_IB_pts_Line', u'Bus04_00_00_OB_pts_Line', u'Bus15_00_00_IB_pts_Line', u'Bus15_00_00_OB_pts_Line']
d = collections.defaultdict(list)
for elem in L:
    d[elem.split('_')[0]].append(elem)
print(dict(d))

This produces:

{u'Bus04': [u'Bus04_00_00_IB_pts_Line', u'Bus04_00_00_OB_pts_Line'],
 u'Bus15': [u'Bus15_00_00_IB_pts_Line', u'Bus15_00_00_OB_pts_Line']}

Unlike some of the other solutions proposed thus far, this works irrespective of the order in which entries appear in the input list.

share|improve this answer
    
But it imposes that the elements are hashable (which they are in this case), so that's OK, but I think it's worth mentioning. One other suggestion is, rather than doing dict(d) at the end, you could do: d.default_factory = None to make the defaultdict behave like a regular dictionary for almost all practical purposes. –  mgilson Dec 20 '12 at 18:14
1  
@mgilson: I think the dict call was solely to make it look better when printed (i.e. no defaultdict(<type 'list'>, etc..). –  DSM Dec 20 '12 at 18:19
    
@DSM -- That's what I figured as well. but I was super excited when I learned about the default_factory attribute, so I've made it a note to proclaim it's goodness from now on :) –  mgilson Dec 20 '12 at 18:27

You can use itertools.groupby with a custom key function such as lambda x: x[0:5].

Here's a demo that gives you a static list (i.e. not just generators):

>>> import itertools
>>> lst = [u'Bus04_00_00_IB_pts_Line', u'Bus04_00_00_OB_pts_Line', u'Bus15_00_00_IB_pts_Line', u'Bus15_00_00_OB_pts_Line']
>>> [(key, list(val)) for key, val in itertools.groupby(lst, lambda x: x[0:5])]
Out[9]:
[(u'Bus04', [u'Bus04_00_00_IB_pts_Line', u'Bus04_00_00_OB_pts_Line']),
 (u'Bus15', [u'Bus15_00_00_IB_pts_Line', u'Bus15_00_00_OB_pts_Line'])]
share|improve this answer
    
don't forget to sort the list before using groupby –  F.C. Dec 20 '12 at 17:56
import collections

lists = collections.defaultdict(list)
for item in masterlist:
    lists[item[:5]].append(item)
share|improve this answer

You can use groupby with a lambda keyfunction for this.

from itertools import groupby
results = groupby(data, key=lambda x: x[0:5])

>>> for item, values in results:
>>>     print item, list(values)
Bus04 [u'Bus04_00_00_IB_pts_Line', u'Bus04_00_00_OB_pts_Line']
Bus15 [u'Bus15_00_00_IB_pts_Line', u'Bus15_00_00_OB_pts_Line']

As mentioned by NPE in his solution, the original list must be a sorted list.

However, if you only need to deal with one entry at a time, this solution is very memory efficient, as the generator only yields one value and then waits until the next value is ready to be used.

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.