I can't seem to find any information on how to correctly sort a list like this. My list looks something like this

["1. Banana", "2. Pear", "11. Apple", "5. Grapes", "4. Orange"]

Using sorted() leaves me with the following

['1. Banana', '11. Apple', '2. Pear', '3. Orange', '4. Grapes']

and I would like it to come out like this

['1. Banana', '2. Pear', '3. Orange', '4. Grapes', '11. Apple']


If it adds any complications I need to use this to sort a list of dictionaries using a specific key's value, so my current code is

list.sort(key=lambda k: k["key"])
  • Wait, why are you using list.sort(key=lambda k: k["key"])? I see no dictionaries in your example. Anyway, what you'll have to do is sort by the int value of the number since that is what you seem to want. You can parse out that int. Indeed, if that is something you want, you should have used a different data-structure in the first place, i.e. (1, 'Banana') and only construct the final string when you need it. – juanpa.arrivillaga Feb 17 at 20:22
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    I think your question's answer is there : stackoverflow.com/questions/5967500/… – syny Feb 17 at 20:24
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    @syny that's exactly what I was looking for, thank you 💖. I neglected to mention in the question that some items of the list may not have a leading number but your suggestion is perfect and now I know what it's called! – user7393191 Feb 17 at 21:27
up vote 5 down vote accepted

Sort by . separated first int value as sorting key:

sorted(lst, key=lambda x: int(x.split('.')[0]))

Example:

In [20]: lst = ["1. Banana", "2. Pear", "11. Apple", "5. Grapes", "4. Orange"]

In [21]: sorted(lst, key=lambda x: int(x.split('.')[0]))
Out[21]: ['1. Banana', '2. Pear', '4. Orange', '5. Grapes', '11. Apple']
  • sorry, didn't see your solution, until i submit my answer, which was identical to yours. – marmeladze Feb 17 at 20:26
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    @marmeladze No problem. We were probably writing at the same time; mine came just a bit earlier i guess. It happens :) – heemayl Feb 17 at 20:27
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    Yeah @marmeladze, it's no big deal. I happens to the best of us - even to me ;-) I was just trying to give you heads up. – Christian Dean Feb 17 at 20:31
  • @heemayl hey thank you for the quick answer! I didn't think ahead when posting my question and over-simplified the example list, not all of the strings I need to sort have a leading number. How would you go about sorting that? – user7393191 Feb 17 at 20:49
  • @Flameout Hard to say without seeing a concrete example. Also, i think it would be better if you ask it as a new question with all the details. – heemayl Feb 17 at 20:51

For a bit more robust solution, grab the digit from the string items using regex, and use that to sort your list:

>>> from re import compile
>>> 
>>> regex = compile('\d+')
>>> lst = ["1. Banana", "2. Pear", "11. Apple", "5. Grapes", "4. Orange"]
>>> sorted(lst, key= lambda el: int(regex.search(el).group()))
['1. Banana', '2. Pear', '4. Orange', '5. Grapes', '11. Apple']
>>> 

That way, you code won't fail even if the digit isn't the first part of your strings:

>>> lst = ["Banana 1.", "2. Pear", "11. Apple", "5. Grapes", "4. Orange"]
>>> sorted(lst, key= lambda el: int(regex.search(el).group()))
['Banana 1.', '2. Pear', '4. Orange', '5. Grapes', '11. Apple']
>>> 
  • 1
    I fail to see how it's more robust. It will crash if there's no starting digit, just like the int/split solution. – Jean-François Fabre Feb 17 at 20:48
  • Ah, my bad @Jean. I meant to use search not match. – Christian Dean Feb 17 at 20:52
  • @Jean-FrançoisFabre thank you. – user7393191 Feb 17 at 20:58

In my opinion, you should be storing this data as a dictionary:

lst = ["1. Banana", "2. Pear", "11. Apple", "5. Grapes", "4. Orange"]

d = dict((int(j[0]), j[1]) for j in [i.split('. ') for i in lst])

# {1: 'Banana', 2: 'Pear', 4: 'Orange', 5: 'Grapes', 11: 'Apple'}

Then sorting is trivial:

sorted(d.items())

# [(1, 'Banana'), (2, 'Pear'), (4, 'Orange'), (5, 'Grapes'), (11, 'Apple')]

And so is formatting:

['. '.join((str(a), b)) for a, b in sorted(d.items())]

# ['1. Banana', '2. Pear', '4. Orange', '5. Grapes', '11. Apple']
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    It's not that big of an improvement, but it seems using str.format over str.join is a tiny bit faster: ideone.com/6iXDXs. Like I said though, in practice the difference probably wouldn't matter. – Christian Dean Feb 17 at 20:36

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