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'm trying to split a dict from a certain point in the dict. It seemed like doing a simple items_dict[3:] would work but it did not work.

items_dict = {
    "Cannon barrels":10,
    "Cannon furnace":12,
    "Candle":36,
    "Bronze arrowheads":39,
    "Iron arrowheads":40,
    "Steel arrowheads":41,
    "Mithril arrowheads":42,
    "Adamant arrowheads":4
}
print items_dict[3:] # Nope, this won't work
print items_dict["Candle"] # This will of course, but only returns the Candle's number

I only figured out how to slice a dictionary by keys that start with a certain string, but I just want to know how to slice a dictionary similar to a list.

share|improve this question
2  
Looks like maybe you should rethink your datastructures. I don't think it's a good idea to use an OrderedDict here. –  John La Rooy May 20 '13 at 2:54

6 Answers 6

up vote 2 down vote accepted

If you want to split after n keys - no guarantee over the order.

n=3
d1 = {key: value for i, (key, value) in enumerate(d.items()) if i < n}
d2 = {key: value for i, (key, value) in enumerate(d.items()) if i >= n}
share|improve this answer
1  
this still doesnt give him any control over which 3 keys ... –  Joran Beasley May 20 '13 at 2:53
    
viewitems is python2.7. items will work on python2 or python3. –  mgilson May 20 '13 at 2:53
    
You could also do something like: {k:d[k] for k in islice(d,...)} –  mgilson May 20 '13 at 2:54
    
Using an OrderedDict as suggested in an answer below and in the comment above, this worked just as needed! –  Hairr May 20 '13 at 3:12
    
@mgilson, islice is much better, but with an iter(d) so you save looping over stuff multiple times. –  John La Rooy May 20 '13 at 3:36

Dictionaries don't have order, so you can't split it from a certain point. Looking at the dictionary you have there, you can't know ahead of time what the first element will be.

share|improve this answer

If you want a dictionary where the keys are stored in order, use collections.OrderedDict

http://docs.python.org/2/library/collections.html#collections.OrderedDict

share|improve this answer
items = [
    ("Cannon barrels",10),
    ("Cannon furnace",12),
    ("Candle",36),
    ....
   ]

items_dict = dict(items)

items_3_dict = dict(items[3:])

doesnt exactly answer your question (see @mgilson answer) , but provides a path forward

share|improve this answer
ditems = items_dict.items()
d1, d2 = dict(ditems[:3]), dict(ditems[3:])

print(d1)
print(d2)
{'Iron arrowheads': 40, 'Adamant arrowheads': 4, 'Mithril arrowheads': 42}
{'Candle': 36, 'Cannon barrels': 10, 'Steel arrowheads': 41, 'Cannon furnace': 12, 'Bronze arrowheads': 39}

Or creating a function to split an iterable about an n-th value

from itertools import islice

def split(iterable,point): 
    return islice(iterable,None,point), islice(iterable,point,None)

d1, d2 = (dict(segment) for segment in split(items_dict.items(),3))

This will split it about the third entry.

share|improve this answer
    
no it wont ... a dict has no concept of "third entry" ... it will create a dict with 3 of the items and another dict with the rest ... but there is no concept of "third entry" –  Joran Beasley May 20 '13 at 3:10
    
@JoranBeasley (yes it's unorderded) but it still has N (k,v) pairs which I meant by entry, so even though the 3rd pair is indeterminate it still has a third pair. –  HennyH May 20 '13 at 3:19

You could make a custom class (example only - slicing only works for [1:4] syntax, and dict[missing_key] returns None instead of throwing an exception):

>>> class SliceDict(collections.OrderedDict):
...     def __getitem__(self, val):
...         if isinstance(val, slice):
...             return {key: value for i, (key, value) in enumerate(d.items()) if val.start < i < val.stop}
...         else:
...             return self.get(val)

Now we can add your items dict:

>>> d = SliceDict(items_dict)
SliceDict([('Adamant arrowheads', 4), ('Mithril arrowheads', 42), ('Iron arrowheads', 40), ('Candle', 36), ('Cannon barrels', 10), ('Steel arrowheads', 41), ('Cannon furnace', 12), ('Bronze arrowheads', 39)])
>>> d[1:5]
{'Candle': 36, 'Cannon barrels': 10, 'Iron arrowheads': 40}
>>> d['Candle']
36
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.