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I have a list of 4 dicts (always 4) that look something like this:

[{'id':'1','name':'alfa'},{'id':'2','name':'bravo'},{'id':'3','name':'charlie'},{'id':'4','name':'delta'}]

I know exactly the order I want them in, which is:

2, 3, 1, 4

what's the simplest way of reordering them?

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I think you'll like my update, I can't imagine it getting any simpler. –  Matt Joiner Jul 22 '10 at 1:57

5 Answers 5

up vote 3 down vote accepted

If it's always four, and you always know the order, just simply like this:

lst = [{...},{...},{...},{...}]
ordered = [lst[1],lst[2],lst[0],lst[3]]

If you meant to sort them by 'id', in that order:

ordered = sorted(lst, key=lambda d: [2,3,1,4].index(int(d['id'])))

Note that index() is O(n) but doesn't require you to build a dictionary. So for small inputs, this may actually be faster. In your case, there are four elements, ten comparisons are guaranteed. Using timeit, this snippet runs 10% faster than the dictionary based solution by tokland... but it doesn't really matter since neither will likely be significant.

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thanks - forgot about indexes, I was calling the first item 1 etc hence it through a index out of range error. –  chrism Jul 21 '10 at 16:22
    
Isn't this code calling list.index (O(n)) for each element in the lst to be ordered? it won't perform well with large lists. –  tokland Jul 21 '10 at 18:22
    
@tokland : Yes, it's O(n) on 4 elements. Max of 16. I suppose that's worthy of a downvote... but his question was solved by the first solution. –  Stephen Jul 21 '10 at 20:58
    
@Stephen, I thought that was the way to go, downvote but reasoning why. But I am sorry it upset you, but I cannot remove the vote unless the question is edited. Which one was the first solution? Alex Martelli's? –  tokland Jul 22 '10 at 7:49
    
@tokland : I appreciate that you reasoned why. I'm not upset that you downvoted me... I just wanted to point out that you're arguing an asymptotic complexity with a constant 4 elements. Asymptotic complexity is for larger (or variable sized) inputs, he guaranteed 4 elements. For something that small, it's usually faster to avoid building a O(1) data structure. I added a note that this was linear , but I benchmarked it as faster than your solution. –  Stephen Jul 22 '10 at 12:54

Here's a pretty general function to impose a wanted order (any key value not in the wanted order is placed at the end of the resulting list, in arbitrary sub-order):

def ordered(somelist, wantedorder, keyfunction):
    orderdict = dict((y, x) for x, y in enumerate(wantedorder))
    later = len(orderdict)
    def key(item):
        return orderdict.get(keyfunction(item), later)
    return sorted(somelist, key=key)

You'd be using it as

import operator
sortedlist = ordered(dictlist, ('2', '3', '1', '4'),
                     operator.itemgetter('id'))
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A non-generalized solution:

lst = [{'id':'1','name':'alfa'},{'id':'2','name':'bravo'},{'id':'3','name':'charlie'},{'id':'4','name':'delta'}]
order = ["2", "3", "1", "4"]
indexes = dict((idfield, index) for (index, idfield) in enumerate(order))
print sorted(lst, key=lambda d: indexes[d["id"]])
# [{'id': '2', 'name': 'bravo'}, {'id': '3', 'name': 'charlie'}, {'id': '1', 'name': 'alfa'}, {'id': '4', 'name': 'delta'}]

And here generalized:

def my_ordered(it, wanted_order, key):
    indexes = dict((value, index) for (index, value) in enumerate(wanted_order))
    return sorted(it, key=lambda x: indexes[key(x)])

import operator  
print my_ordered(lst, order, operator.itemgetter("id"))
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Well, this appears just to be Alex Martelli's answer without taking in account elements in input but not in wanted_order. –  tokland Jul 22 '10 at 7:50
the_list.sort(key=lambda x: (3, 1, 2, 4)[int(x["id"])-1])

Update0

A new much simpler answer

the_list = [the_list[i - 1] for i in (2, 3, 1, 4)]

This way the OP can see his desired ordering, and there's no silliness with sorting, which is not required here. It's probably fast too.

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2  
I have no idea why you'd want to do this... –  Matt Joiner Jul 21 '10 at 16:16
    
But it does not show where (3, 1, 2, 4) is coming from... –  tokland Jul 21 '10 at 18:24
    
I might add that although this is complex for some people, looking at the other answers, this one is probably both faster and more straightforward. –  Matt Joiner Jul 22 '10 at 1:50
    
The array (3, 1, 2, 4) is indexed into using the id - 1 of the dicts, to get the order you requested. –  Matt Joiner Jul 22 '10 at 1:51

If you want to re-order without regard for content of the dicts:

>>> order = 2, 3, 1, 4
>>> d = [{'id':'1','name':'alfa'},{'id':'2','name':'bravo'},{'id':'3','name':'charlie'},{'id':'4','name':'delta'}]
>>> index = dict(enumerate(dd))
>>> [index[i-1] for i in order]
[{'id': '2', 'name': 'bravo'}, {'id': '3', 'name': 'charlie'}, {'id': '1', 'name': 'alfa'}, {'id': '4', 'name': 'delta'}]

If you want to base your sorting on the 'id' of the dicts:

>>> sorted(d, key=lambda x: order.index(int(x['id'])))
[{'id': '2', 'name': 'bravo'}, {'id': '3', 'name': 'charlie'}, {'id': '1', 'name': 'alfa'}, {'id': '4', 'name': 'delta'}]
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