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Yes, I know this subject has been covered before (here, here, here, here), but as far as I know, all solutions, except for one, fail on a list like this:

L = [[[1, 2, 3], [4, 5]], 6]

Where the desired output is

[1, 2, 3, 4, 5, 6]

Or perhaps even better, an iterator. The only solution I saw that works for an arbitrary nesting is found in this question:

def flatten(x):
    result = []
    for el in x:
        if hasattr(el, "__iter__") and not isinstance(el, basestring):
            result.extend(flatten(el))
        else:
            result.append(el)
    return result

flatten(L)

Is this the best model? Did I overlook something? Any problems?

share|improve this question
    
The fact that there are this many answers and so much action on this question really suggests that this should be a built-in function somewhere, right? It's especially too bad the compiler.ast was removed from Python 3.0 –  Mittenchops Mar 18 at 13:22

21 Answers 21

up vote 135 down vote accepted

Using generator functions can make your example a little easier to read and probably boost the performance.

def flatten(l):
    for el in l:
        if isinstance(el, collections.Iterable) and not isinstance(el, basestring):
            for sub in flatten(el):
                yield sub
        else:
            yield el

I used the Iterable ABC added in 2.6.

share|improve this answer
5  
I like that this is a generator, and very clear. Adding a guard against having a string in the list (not in the original spec, but will definitely blow the recursion limit), would make it perfect. –  telliott99 Jan 29 '10 at 0:04
    
You're right. I added a string check. –  Cristian Jan 29 '10 at 0:24
5  
Of all the suggestions on this page, this is the only one that flattened this list l = ([[chr(i),chr(i-32)] for i in xrange(ord('a'), ord('z')+1)] + range(0,9)) in a snap when i did this list(flatten(l)). All the others, would start working and take forever! –  nemesisfixx Jun 7 '12 at 15:04
    
This flattened my tuple of strings and lists containing strings that I was using as *args in a function I wrote... thank you! –  2rs2ts May 31 '13 at 23:33
4  
Can be further simplified in python3.3+ using yield from flatten(el) instead of that loop. –  Bakuriu Apr 27 at 20:28

You could simply use the flatten function in the compiler.ast module.

>>> from compiler.ast import flatten
>>> flatten([0, [1, 2], [3, 4, [5, 6]], 7])
[0, 1, 2, 3, 4, 5, 6, 7]
share|improve this answer
    
Nice, but is this documented anywhere? I couldn't find anything on the compiler page. –  snth Feb 27 '13 at 10:52
9  
Just a fair warning that compiler is deprecated. –  2rs2ts May 31 '13 at 23:24
6  
compiler is removed in Python 3. –  J.F. Sebastian Mar 9 at 22:33

Generator version of @unutbu's non-recursive solution, as requested by @Andrew in a comment:

def genflat(l, ltypes=collections.Sequence):
    l = list(l)
    i = 0
    while i < len(l):
        while isinstance(l[i], ltypes):
            if not l[i]:
                l.pop(i)
                i -= 1
                break
            else:
                l[i:i + 1] = l[i]
        yield l[i]
        i += 1

Slightly simplified version of this generator:

def genflat(l, ltypes=collections.Sequence):
    l = list(l)
    while l:
        while l and isinstance(l[0], ltypes):
            l[0:1] = l[0]
        if l: yield l.pop(0)
share|improve this answer
    
it's a pre-order traversal of the tree formed by the nested lists. only the leaves are returned. Note that this implementation will consume the original data structure, for better or worse. Could be fun to write one that both preserves the original tree, but also doesn't have to copy the list entries. –  Andrew Wagner Jan 29 '10 at 8:21
3  
I think you need to test for strings -- eg add "and not isinstance(l[0], basestring)" as in Cristian's solution. Otherwise you get an infinite loop around l[0:1] = l[0] –  c-urchin Nov 30 '10 at 15:21
    
This is a good example of making a generator, but as c-urchin mentions, the algorithm itself fails when the sequence contains strings. –  Daniel 'Dang' Griffith Oct 26 '12 at 11:58

My solution:

def flatten(x):
    if isinstance(x, collections.Iterable):
        return [a for i in x for a in flatten(i)]
    else:
        return [x]

A little more concise, but pretty much the same.

share|improve this answer
    
import collections is required, but it works fine for [[[1, 2, 3], [4, 5]], 6] –  ferkulat May 24 '13 at 14:17
2  
You can do this without importing anything if you just try: iter(x) to test whether it's iterable… But I don't think having to import a stdlib module is a downside worth avoiding. –  abarnert Jul 5 '13 at 8:03

This version of flatten avoids python's recursion limit (and thus works with arbitrarily deep, nested iterables). It is a generator which can handle strings and arbitrary iterables (even infinite ones).

import itertools as IT
import collections

def flatten(iterable, ltypes=collections.Iterable):
    remainder = iter(iterable)
    while True:
        first = next(remainder)
        if isinstance(first, ltypes) and not isinstance(first, basestring):
            remainder = IT.chain(first, remainder)
        else:
            yield first

Here are some examples demonstrating its use:

print(list(IT.islice(flatten(IT.repeat(1)),10)))
# [1, 1, 1, 1, 1, 1, 1, 1, 1, 1]

print(list(IT.islice(flatten(IT.chain(IT.repeat(2,3),
                                       {10,20,30},
                                       'foo bar'.split(),
                                       IT.repeat(1),)),10)))
# [2, 2, 2, 10, 20, 30, 'foo', 'bar', 1, 1]

print(list(flatten([[1,2,[3,4]]])))
# [1, 2, 3, 4]

seq = ([[chr(i),chr(i-32)] for i in xrange(ord('a'), ord('z')+1)] + range(0,9))
print(list(flatten(seq)))
# ['a', 'A', 'b', 'B', 'c', 'C', 'd', 'D', 'e', 'E', 'f', 'F', 'g', 'G', 'h', 'H',
# 'i', 'I', 'j', 'J', 'k', 'K', 'l', 'L', 'm', 'M', 'n', 'N', 'o', 'O', 'p', 'P',
# 'q', 'Q', 'r', 'R', 's', 'S', 't', 'T', 'u', 'U', 'v', 'V', 'w', 'W', 'x', 'X',
# 'y', 'Y', 'z', 'Z', 0, 1, 2, 3, 4, 5, 6, 7, 8]

Although flatten can handle infinite generators, it can not handle infinite nesting:

def infinitely_nested():
    while True:
        yield IT.chain(infinitely_nested(), IT.repeat(1))

print(list(IT.islice(flatten(infinitely_nested()), 10)))
# hangs
share|improve this answer
    
So the best answer would be to somehow make this a generator. –  Andrew McGregor Jan 28 '10 at 23:11
    
@wim: You might want to check out Alex Martelli's solution. I think it is better than mine. –  unutbu Sep 15 '13 at 18:47
    
any consensus on whether to use ABC Iterable or ABC Sequence? –  wim Sep 15 '13 at 20:09
    
sets, dicts, deques, listiterators, generators, filehandles, and custom classes with __iter__ defined are all instances of collections.Iterable, but not collections.Sequence. The result of flattening a dict is a bit iffy, but otherwise, I think collections.Iterable is a better default than collections.Sequence. It's definitely the more liberal. –  unutbu Sep 15 '13 at 20:16
    
@wim: One problem with using collections.Iterable is that this includes infinite generators. I've changed my answer handle this case. –  unutbu Sep 17 '13 at 9:27

Here is my functional version of recursive flatten which handles both tuples and lists, and lets you throw in any mix of positional arguments. Returns a generator which produces the entire sequence in order, arg by arg:

flatten = lambda *n: (e for a in n
    for e in (flatten(*a) if isinstance(a, (tuple, list)) else (a,)))

Usage:

l1 = ['a', ['b', ('c', 'd')]]
l2 = [0, 1, (2, 3), [[4, 5, (6, 7, (8,), [9]), 10]], (11,)]
print list(flatten(l1, -2, -1, l2))
['a', 'b', 'c', 'd', -2, -1, 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11]
share|improve this answer
    
great solution, however would be much helpful if you added some comment to describe what e, a, n refer to –  Wolfgang Kuehne Nov 20 '13 at 14:16
    
@WolfgangKuehne: Try args for n, intermediate (or the shorter mid or you might prefer element) for a and result for e, so: flatten = lambda *args: (result for mid in args for result in (flatten(*mid) if isinstance(mid, (tuple, list)) else (mid,))) –  Dennis Williamson Jan 5 at 21:18

Here's another answer that is even more interesting...

import re

def Flatten(TheList):
    a = str(TheList)
    b,crap = re.subn(r'[\[,\]]', ' ', a)
    c = b.split()
    d = [int(x) for x in c]

    return(d)

Basically, it converts the nested list to a string, uses a regex to strip out the nested syntax, and then converts the result back to a (flattened) list.

share|improve this answer
def flatten(xs):
    res = []
    def loop(ys):
        for i in ys:
            if isinstance(i, list):
                loop(i)
            else:
                res.append(i)
    loop(xs)
    return res
share|improve this answer

Generator using recursion and duck typing:

def flatten(L):
    for item in L:
        try:
            for i in flatten(item):
                yield i
        except TypeError:
            yield item

list(flatten([[[1, 2, 3], [4, 5]], 6]))
>>>[1, 2, 3, 4, 5, 6]
share|improve this answer
1  
+1 for awesomeness! I stole the idea of divide and conquer from merge sort, but it isn't anywhere near as elegant as you answer –  Nick Burns Jul 5 '13 at 10:20
    
You could make it a little shorter as shown in this answer. –  Noctis Skytower Jul 25 '13 at 20:53

I prefer simple answers. No generators. No recursion or recursion limits. Just iteration:

def flatten(TheList):
    listIsNested = True

    while listIsNested:                 #outer loop
        keepChecking = False
        Temp = []

        for element in TheList:         #inner loop
            if isinstance(element,list):
                Temp.extend(element)
                keepChecking = True
            else:
                Temp.append(element)

        listIsNested = keepChecking     #determine if outer loop exits
        TheList = Temp[:]

    return TheList

This works with two lists: an inner for loop and an outer while loop.

The inner for loop iterates through the list. If it finds a list element, it (1) uses list.extend() to flatten that part one level of nesting and (2) switches keepChecking to True. keepchecking is used to control the outer while loop. If the outer loop gets set to true, it triggers the inner loop for another pass.

Those passes keep happening until no more nested lists are found. When a pass finally occurs where none are found, keepChecking never gets tripped to true, which means listIsNested stays false and the outer while loop exits.

The flattened list is then returned.

Test-run

flatten([1,2,3,4,[100,200,300,[1000,2000,3000]]])

[1, 2, 3, 4, 100, 200, 300, 1000, 2000, 3000]

share|improve this answer
    
I like simple too. In this case though, you iterate over the list as many times as there are nestings or levels. Could get expensive. –  telliott99 Jan 13 '11 at 11:56
    
@telliott99: You're right if your lists are really big and/or nested to great depths. However, if that isn't the case, then the simpler solution works just as well, and without the deep magic of some of the other answers. There is a place for multi-stage recursive generator comprehensions, but I'm not convinced that should be where you look first. (I guess you know where I fall in the "Worse is Better" debate.) –  clay Jan 14 '11 at 15:11
    
@telliott99: Or to put that another way, you won't have to "try to Grok" my solution. If performance isn't a bottleneck, what matters most to you as a programmer? –  clay Jan 14 '11 at 15:18
    
Simpler solutions have less logic. Recursion is a pretty fundamental programming construct that anyone who considers themselves a programmer should be completely comfortable with. Generators are very much the Python Way and (along with comprehensions) are something that any professional Python programmer should grok instantly. –  dash-tom-bang Apr 16 at 20:15
1  
I agree about recursion. When I wrote my answer, python still broke recursion at 1000 cycles. Have they changed this? As for being a professional python programmer, I'm not. Moreover, I imagine many people programming in python do not do so full time. –  clay Apr 16 at 23:39

Although an elegant and very pythonic answer has been selected I would present my solution just for the review:

def flat(l):
    ret = []
    for i in l:
        if isinstance(i, list) or isinstance(i, tuple):
            ret.extend(flat(i))
        else:
            ret.append(i)
    return ret

Please tell how good or bad this code is?

share|improve this answer
1  
Use isinstance(i, (tuple, list)). Initializing empty variables is a flag for me to look to alternate code structures, typically comprehensions, generators, recursion, etc. –  dansalmo Jul 6 '13 at 19:19
2  
return type(l)(ret) will get you the same container type back as was passed in, also. :) –  dash-tom-bang Apr 16 at 20:17
    
@dash-tom-bang Can you please explain what it means in a bit detail. –  Xolve Apr 19 at 7:34
    
If you pass in a list, you probably want a list back. If you pass in a tuple, you probably want a tuple back. If you pass in a mishmash of the two, you'll get whatever the outer enclosing thing was. –  dash-tom-bang Jun 14 at 1:04

It was fun trying to create a function that could flatten irregular list in Python, but of course that is what Python is for (to make programming fun). The following generator works fairly well with some caveats:

def flatten(iterable):
    try:
        for item in iterable:
            yield from flatten(item)
    except TypeError:
        yield iterable

It will flatten datatypes that you might want left alone (like bytearray, bytes, and str objects). Also, the code relies on the fact that requesting an iterator from a non-iterable raises a TypeError.

>>> L = [[[1, 2, 3], [4, 5]], 6]
>>> def flatten(iterable):
    try:
        for item in iterable:
            yield from flatten(item)
    except TypeError:
        yield iterable


>>> list(flatten(L))
[1, 2, 3, 4, 5, 6]
>>>
share|improve this answer

Here's a simple function that flattens lists of arbitrary depth. No recursion, to avoid stack overflow.

from copy import deepcopy

def flatten_list(nested_list):
    """Flatten an arbitrarily nested list, without recursion (to avoid
    stack overflows). Returns a new list, the original list is unchanged.

    >> list(flatten_list([1, 2, 3, [4], [], [[[[[[[[[5]]]]]]]]]]))
    [1, 2, 3, 4, 5]
    >> list(flatten_list([[1, 2], 3]))
    [1, 2, 3]

    """
    nested_list = deepcopy(nested_list)

    while nested_list:
        sublist = nested_list.pop(0)

        if isinstance(sublist, list):
            nested_list = sublist + nested_list
        else:
            yield sublist
share|improve this answer

I'm new to python and come from a lisp background. This is what I came up with (check out the var names for lulz):

def flatten(lst):
    if lst:
        car,*cdr=lst
        if isinstance(car,(list,tuple)):
            if cdr: return flatten(car) + flatten(cdr)
            return flatten(car)
        if cdr: return [car] + flatten(cdr)
        return [car]

Seems to work. Test:

flatten((1,2,3,(4,5,6,(7,8,(((1,2)))))))

returns:

[1, 2, 3, 4, 5, 6, 7, 8, 1, 2]
share|improve this answer
L2 = [o for k in [[j] if not isinstance(j,list) else j for j in [k for i in [[m] if not 
isinstance(m,list) else m for m in L] for k in i]] for o in k]
share|improve this answer
4  
That is... nearly impossible to read. –  michaelb958 Jul 2 '13 at 14:28
    
just one way to solve this problem, it's not graceful indeed –  fotocoder Sep 5 '13 at 8:27

I don't see anything like this posted around here and just got here from a closed question on the same subject, but why not just do something like this(if you know the type of the list you want to split):

>>> a = [1, 2, 3, 5, 10, [1, 25, 11, [1, 0]]]    
>>> g = str(a).replace('[', '').replace(']', '')    
>>> b = [int(x) for x in g.split(',') if x.strip()]

You would need to know the type of the elements but I think this can be generalised and in terms of speed I think it would be faster.

share|improve this answer
    
This is clever (and probably fast)... but it's not very pythonic. –  DanB Jun 9 '12 at 4:54
4  
"why not just do something like this" you say? Because it is very easy to break! Very bad idea. One example, what if your items are strings, not ints? Then if a string contains a '[' you are doomed. And what if your items have no good (or very long) string representation? –  gb. Aug 23 '12 at 4:40

If you like recursion, this might be a solution of interest to you:

def f(E):
    if E==[]: 
        return []
    elif type(E) != list: 
        return [E]
    else:
        a = f(E[0])
        b = f(E[1:])
        a.extend(b)
        return a

I actually adapted this from some practice Scheme code that I had written a while back.

Enjoy!

share|improve this answer

Here's the compiler.ast.flatten implementation in 2.7.5:

def flatten(seq):
    l = []
    for elt in seq:
        t = type(elt)
        if t is tuple or t is list:
            for elt2 in flatten(elt):
                l.append(elt2)
        else:
            l.append(elt)
    return l

There are better, faster methods (If you've reached here, you have seen them already)

Also note:

Deprecated since version 2.6: The compiler package has been removed in Python 3.

share|improve this answer

totally hacky but I think it would work (depending on your data_type)

flat_list = ast.literal_eval("[%s]"%re.sub("[\[\]]","",str(the_list)))
share|improve this answer

Here is another py2 approach, Im not sure if its the fastest or the most elegant nor safest ...

from collections import Iterable
from itertools import imap, repeat, chain


def flat(seqs, ignore=(int, long, float, basestring)):
    return repeat(seqs, 1) if any(imap(isinstance, repeat(seqs), ignore)) or not isinstance(seqs, Iterable) else chain.from_iterable(imap(flat, seqs))

It can ignore any specific (or derived) type you would like, it returns an iterator, so you can convert it to any specific container such as list, tuple, dict or simply consume it in order to reduce memory footprint, for better or worse it can handle initial non-iterable objects such as int ...

Note most of the heavy lifting is done in C, since as far as I know thats how itertools are implemented, so while it is recursive, AFAIK it isn't bounded by python recursion depth since the function calls are happening in C, though this doesn't mean you are bounded by memory, specially in OS X where its stack size has a hard limit as of today (OS X Mavericks) ...

there is a slightly faster approach, but less portable method, only use it if you can assume that the base elements of the input can be explicitly determined otherwise, you'll get an infinite recursion, and OS X with its limited stack size, will throw a segmentation fault fairly quickly ...

def flat(seqs, ignore={int, long, float, str, unicode}):
    return repeat(seqs, 1) if type(seqs) in ignore or not isinstance(seqs, Iterable) else chain.from_iterable(imap(flat, seqs))

here we are using sets to check for the type so it takes O(1) vs O(number of types) to check whether or not an element should be ignored, though of course any value with derived type of the stated ignored types will fail, this is why its using str, unicode so use it with caution ...

tests:

import random

def test_flat(test_size=2000):
    def increase_depth(value, depth=1):
        for func in xrange(depth):
            value = repeat(value, 1)
        return value

    def random_sub_chaining(nested_values):
        for values in nested_values:
            yield chain((values,), chain.from_iterable(imap(next, repeat(nested_values, random.randint(1, 10)))))

    expected_values = zip(xrange(test_size), imap(str, xrange(test_size)))
    nested_values = random_sub_chaining((increase_depth(value, depth) for depth, value in enumerate(expected_values)))
    assert not any(imap(cmp, chain.from_iterable(expected_values), flat(chain(((),), nested_values, ((),)))))

>>> test_flat()
>>> list(flat([[[1, 2, 3], [4, 5]], 6]))
[1, 2, 3, 4, 5, 6]
>>>  

$ uname -a
Darwin Samys-MacBook-Pro.local 13.3.0 Darwin Kernel Version 13.3.0: Tue Jun  3 21:27:35 PDT 2014; root:xnu-2422.110.17~1/RELEASE_X86_64 x86_64
$ python --version
Python 2.7.5
share|improve this answer

This has worked for me (what I needed was to convert a list [of lists]* of strings into a whole string):

import itertools

def flatten(input_list):
    try:
        return "".join(itertools.chain(*input_list))
    except TypeError:
        return flatten(itertools.chain(*input_list))
share|improve this answer
    
This is not a valid answer to the question. Try flatten(L) on the L given by the question. In fact, it seems your function does not work at all as listed. It returns the empty string ''. You might want to look at the usage of * in the argument list. –  cfi Jun 27 '13 at 8:40
    
I've updated my comment to reflect that the usage was meant for a list [of lists]* of string objects (hence the "" @ line 3 of the flatten function). Thank you for the heads up ;) –  jverce Sep 10 '13 at 21:33

protected by Abhijit Aug 31 '13 at 10:57

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