105

I know that this sounds trivial but I did not realize that the sort() function of Python was weird. I have a list of "numbers" that are actually in string form, so I first convert them to ints, then attempt a sort.

list1=["1","10","3","22","23","4","2","200"]
for item in list1:
    item=int(item)

list1.sort()
print list1

Gives me:

['1', '10', '2', '200', '22', '23', '3', '4']

What I want is

['1','2','3','4','10','22','23','200']

I've looked around for some of the algorithms associated with sorting numeric sets, but the ones I found all involve sorting alphanumeric sets.

I know this is probably a no brainer problem but google and my textbook don't offer anything more or less useful than the .sort() function.

  • 8
    Note that your for loop does not do what I suspect that you think it does. – deinst Aug 6 '10 at 17:21
  • 1
    At no time did you update list1. What made you think list was being updated? – S.Lott Aug 6 '10 at 17:23
  • The similar problem raise when list1 = ['1', '1.10', '1.11', '1.1', '1.2'] is provided as input. Instead of getting output as ['1', '1.1', '1.2', '1.10', '1.11'], I am getting ['1', '1.1', '1.10', '1.11', '1.2'] – sathish May 20 '16 at 3:46
  • 2
    in python 3 you may want to use sorted(mylist) – Akin Hwan Dec 23 '18 at 15:02

13 Answers 13

172

You haven't actually converted your strings to ints. Or rather, you did, but then you didn't do anything with the results. What you want is:

list1 = ["1","10","3","22","23","4","2","200"]
list1 = [int(x) for x in list1]
list1.sort()

If for some reason you need to keep strings instead of ints (usually a bad idea, but maybe you need to preserve leading zeros or something), you can use a key function. sort takes a named parameter, key, which is a function that is called on each element before it is compared. The key function's return values are compared instead of comparing the list elements directly:

list1 = ["1","10","3","22","23","4","2","200"]
# call int(x) on each element before comparing it
list1.sort(key=int)
  • 7
    when I try key=int in 2.7 I get None – KI4JGT Jan 28 '13 at 5:48
  • @KI4JGT: It works fine with Python 3.3.2. – dfernan Jul 9 '13 at 21:37
  • This works if the list element is stored as "integer", how shall be handled in case of float values? Eg., list1 = [1, 1.10, 1.11, 1.1, 1.2] – sathish May 19 '16 at 9:01
  • 1
    @sathish This should work: list1.sort(key=float) – jkdev Sep 21 '16 at 0:41
  • @KI4JGT the sort method modifies the list and returns None. So instead of list1 = list1.sort(key=int), use just list1.sort(key=int) and list1 will already be sorted. – Josiah Yoder Jun 20 '18 at 16:41
36

You could pass a function to the key parameter to the .sort method. With this, the system will sort by key(x) instead of x.

list1.sort(key=int)

BTW, to convert the list to integers permanently, use the map function

list1 = list(map(int, list1))   # you don't need to call list() in Python 2.x

or list comprehension

list1 = [int(x) for x in list1]
17

In case you want to use sorted() function: sorted(list1, key=int)

It returns a new sorted list.

12

Python's sort isn't weird. It's just that this code:

for item in list1:
   item=int(item)

isn't doing what you think it is - item is not replaced back into the list, it is simply thrown away.

Anyway, the correct solution is to use key=int as others have shown you.

8

You can also use:

 
import re
def sort_human(l):
  convert = lambda text: float(text) if text.isdigit() else text
  alphanum = lambda key: [ convert(c) for c in re.split('([-+]?[0-9]*\.?[0-9]*)', key) ]
  l.sort( key=alphanum )
  return l

this is very similar for other stuff that you can find on the internet but also works for alphanumericals like [abc0.1, abc0.2..]

6

Seamus Campbell's answer doesnot work on python2.x.
list1 = sorted(list1, key=lambda e: int(e)) using lambda function works well.

3

Try this, it’ll sort the list in-place in descending order (there’s no need to specify a key in this case):

Process

listB = [24, 13, -15, -36, 8, 22, 48, 25, 46, -9]
listC = sorted(listB, reverse=True) # listB remains untouched
print listC

output:

 [48, 46, 25, 24, 22, 13, 8, -9, -15, -36]
2

I approached the same problem yesterday and found a module called natsort which solves the problems. Use:

from natsort import natsorted

# Example list of strings
a = ['1', '10', '2', '3', '11']

[In]  sorted(a)
[Out] ['1', '10', '11', '2', '3']

[In]  natsorted(a)
[Out] ['1', '2', '3', '10', '11']
1

The most recent solution is right. You are reading solutions as a string, in which case the order is 1, then 100, then 104 followed by 2 then 21, then 2001001010, 3 and so forth.

You have to CAST your input as an int instead:

sorted strings:

stringList = (1, 10, 2, 21, 3)

sorted ints:

intList = (1, 2, 3, 10, 21)

To cast, just put the stringList inside int ( blahblah ).

Again:

stringList = (1, 10, 2, 21, 3)

newList = int (stringList)

print newList

=> returns (1, 2, 3, 10, 21) 
  • TypeError: int() argument must be a string or a number, not 'tuple' – Cees Timmerman Apr 14 '14 at 14:56
  • Also, the strings in your stringList should have quotes. – Teepeemm Nov 20 '15 at 18:01
  • 2
    That's a helluva prediction to make: "the most recent solution is right" ;) – GreenAsJade Feb 29 '16 at 1:13
1

Simple way to sort a numerical list

    numlists = [5,50,7,51,87,97,53]
    numlists.sort(reverse=False)
    print(numlists)
0

if you want to use string of the numbers better take another list as shown in my code it will work fine.

list1=["1","10","3","22","23","4","2","200"]

k=[]

for item in list1:

         k.append(int(item))

k.sort()

print(k)
0

Python3 sorting functtion:

if __name__== '__main__':
    n = list(input())
    print(n)    
    print(sorted(n))
-1
scores = ['91','89','87','86','85']
scores.sort()
print (scores)

This worked for me using python version 3, though it didn't in version 2.

  • 2
    Try sorting with '11 and '100' there, that's when things get interesting. – Penz Jan 5 '17 at 18:09

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