244

I want to change the following code

for directory, dirs, files in os.walk(directory_1):
    do_something()

for directory, dirs, files in os.walk(directory_2):
    do_something()

to this code:

for directory, dirs, files in os.walk(directory_1) + os.walk(directory_2):
    do_something()

I get the error:

unsupported operand type(s) for +: 'generator' and 'generator'

How to join two generators in Python?

0

15 Answers 15

316

itertools.chain() should do it. It takes multiple iterables and yields from each one by one, roughly equivalent to:

def chain(*iterables):
    for it in iterables:
        for element in it:
            yield element

Usage example:

from itertools import chain

g = (c for c in 'ABC')  # Dummy generator, just for example
c = chain(g, 'DEF')  # Chain the generator and a string
for item in c:
    print(item)

Output:

A
B
C
D
E
F
5
  • 15
    One should keep in mind that the return value of itertools.chain() does not return a types.GeneratorType instance. Just in case the exact type is crucial.
    – Riga
    Sep 16, 2019 at 13:45
  • 1
    See @andrew-pate anser for itertools.chain.from_iterable() reference to return a types.GeneratorType instance.
    – gkedge
    Sep 9, 2020 at 13:13
  • itertools.chain() would give all the elements in one directory and then shift to the other directory. Now, how do we pick the first elements of both directories and perform some operations, and then shift to the next pair and so on? Any idea would be appreciated.
    – yash
    Feb 9, 2021 at 11:07
  • 1
    @yash Iterate over those directories manually using the built-in function next.
    – Jeyekomon
    Feb 16, 2021 at 8:57
  • 2
    @yash you might like zip. It does precisely that, pick out the first, second etc. values and put them in tuples.
    – Randelung
    May 18, 2021 at 21:00
107

A example of code:

from itertools import chain

def generator1():
    for item in 'abcdef':
        yield item

def generator2():
    for item in '123456':
        yield item

generator3 = chain(generator1(), generator2())
for item in generator3:
    print item
4
  • 23
    Why not add this example to the already existing, highly upvoted itertools.chain() answer? Oct 15, 2018 at 7:13
  • 5
    Um. Because it would have cost him 850 rep. The guy has 851. You do you, cesio.
    – Tatarize
    Dec 14, 2020 at 10:38
  • 2
    @Jean-FrançoisCorbett the person who wrote the "already existing" answer could have done that really... okay? :)
    – Ice Bear
    Dec 27, 2020 at 10:37
  • An example has been added to the top answer, making this redundant.
    – wjandrea
    Jul 17 at 0:52
79

In Python (3.5 or greater) you can do:

def concat(a, b):
    yield from a
    yield from b
8
  • 14
    So much pythonic. Oct 28, 2018 at 18:18
  • 22
    More general: def chain(*iterables): for iterable in iterables: yield from iterable (Put the def and for on separate lines when you run it.)
    – wjandrea
    Apr 12, 2019 at 15:29
  • 1
    Is everything from a yielded before anything from b is yielded or are they being alternated? Dec 10, 2019 at 16:22
  • 1
    @problemofficer Yup. Only a is checked until everything is yielded from it, even if b isn't an iterator. The TypeError for b not being an iterator will come up later.
    – GeeTransit
    Jan 4, 2020 at 16:10
  • 1
    @Karolius Oh OK, I see what you're saying. It looks like you made a typo, which confused me: def chain(iterable) should be def chain(iterables). (Also, x for x in is redundant.) Anyway, there's already a tool in the stdlib that does that: itertools.chain.from_iterable. And beyond performance, if you had an infinite iterable of iterables, it wouldn't be possible to use unpacking.
    – wjandrea
    Jul 17 at 1:22
39

Simple example:

from itertools import chain
x = iter([1,2,3])      #Create Generator Object (listiterator)
y = iter([3,4,5])      #another one
result = chain(x, y)   #Chained x and y
5
  • 6
    Why not add this example to the already existing, highly upvoted itertools.chain() answer? Oct 15, 2018 at 7:13
  • This isn't quite right, since itertools.chain returns an iterator, not a generator.
    – David J.
    Apr 12, 2020 at 22:12
  • Can't you just do chain([1, 2, 3], [3, 4, 5])?
    – Corman
    Jun 3, 2020 at 19:41
  • To be pedantic, a list_iterator isn't a generator, but it is an iterator, which is what OP's effectively actually asking about, since generators don't behave any differently from iterators in this context.
    – wjandrea
    Jul 17 at 0:46
  • An example has been added to the top answer, making this redundant.
    – wjandrea
    Jul 17 at 0:52
14

With itertools.chain.from_iterable you can do things like:

def genny(start):
  for x in range(start, start+3):
    yield x

y = [1, 2]
ab = [o for o in itertools.chain.from_iterable(genny(x) for x in y)]
print(ab)
6
  • You're using an unnecessary list comprehension. You're also using an unnecessary generator expression on genny when it already returns a generator. list(itertools.chain.from_iterable(genny(x))) is much more concise.
    – Corman
    May 25, 2020 at 20:31
  • The !ist comprehension was an easy way to create the two generators, as per the question. Maybe my answer is a little convoluted in that respect. May 26, 2020 at 22:29
  • 1
    I guess the reason I added this answer to the existing ones was to help those who happen to have lots of generators to deal with. May 26, 2020 at 22:41
  • It isn't an easy way, there are many easier ways. Using generator expressions on an existing generator will lower performance, and the list constructor is much more readable then the list comprehension. Your method is much more unreadable in those regards.
    – Corman
    May 27, 2020 at 0:48
  • Corman, I agree your list constructor is indeed more readable. It would be good to see your 'many easier ways' though ... I think wjandrea's comment above looks to do the same as itertools.chain.from_iterable it would be good to race them and see whos fastest. May 27, 2020 at 9:25
10

Here it is using a generator expression with nested fors:

a = range(3)
b = range(5)
ab = (i for it in (a, b) for i in it)
assert list(ab) == [0, 1, 2, 0, 1, 2, 3, 4]
5
  • 5
    A little explanation wouldn't hurt. Oct 28, 2018 at 18:11
  • Well, i do not think i can explain this better than Python's documentation.
    – Alexey
    Oct 28, 2018 at 18:16
  • (The documentation for generator expressions is linked from my answer. I do not see a good reason to copy and paste the documentation into my answer.)
    – Alexey
    Mar 28, 2019 at 14:33
  • Actually this example is not on the docs. Mar 4 at 3:19
  • @ArturoHernandez, the generator expression, and how it works, is in the doc. This example uses a generator expression.
    – Alexey
    Mar 6 at 13:48
4

One can also use unpack operator *:

concat = (*gen1(), *gen2())

NOTE: Works most efficiently for 'non-lazy' iterables. Can also be used with different kind of comprehensions. Preferred way for generator concat would be from the answer from @Uduse

2
  • It's sad that there is no lazy evaluation of *generator, because it would have made this a marvelous solution...
    – Camion
    Oct 13, 2020 at 1:43
  • 5
    –1 this will immediately consume both generators into a tuple!
    – wim
    Oct 13, 2020 at 2:01
4

2020 update: Work in both Python 3 and Python 2

import itertools

iterA = range(10,15)
iterB = range(15,20)
iterC = range(20,25)

first option

for i in itertools.chain(iterA, iterB, iterC):
    print(i)

# 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24

alternative option, introduced in python 2.6

for i in itertools.chain.from_iterable( [iterA, iterB, iterC] ):
    print(i)

# 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24

itertools.chain() is the basic.

itertools.chain.from_iterable() is handy if you have an iterable of iterables. For example a list of files per subdirectory like [ ["src/server.py", "src/readme.txt"], ["test/test.py"] ].

1
  • Python 2 went EOL on January 1, 2020, so I'm surprised you mention it
    – wjandrea
    Jul 17 at 1:31
2

If you want to keep the generators separate but still iterate over them at the same time you can use zip():

NOTE: Iteration stops at the shorter of the two generators

For example:

for (root1, dir1, files1), (root2, dir2, files2) in zip(os.walk(path1), os.walk(path2)):

    for file in files1:
        #do something with first list of files

    for file in files2:
        #do something with second list of files
1

(Disclaimer: Python 3 only!)

Something with syntax similar to what you want is to use the splat operator to expand the two generators:

for directory, dirs, files in (*os.walk(directory_1), *os.walk(directory_2)):
    do_something()

Explanation:

This effectively performs a single-level flattening of the two generators into an N-tuple of 3-tuples (from os.walk) that looks like:

((directory1, dirs1, files1), (directory2, dirs2, files2), ...)

Your for-loop then iterates over this N-tuple.

Of course, by simply replacing the outer parentheses with brackets, you can get a list of 3-tuples instead of an N-tuple of 3-tuples:

for directory, dirs, files in [*os.walk(directory_1), *os.walk(directory_2)]:
    do_something()

This yields something like:

[(directory1, dirs1, files1), (directory2, dirs2, files2), ...]

Pro:

The upside to this approach is that you don't have to import anything and it's not a lot of code.

Con:

The downside is that you dump two generators into a collection and then iterate over that collection, effectively doing two passes and potentially using a lot of memory.

2
  • This is not flattening at all. Rather, it is a zip.
    – jpaugh
    Apr 11, 2021 at 11:37
  • 1
    A bit puzzled by your comment @jpaugh. This concatenates two iterables. It doesn't create pairs from them. Maybe the confusion is from the fact that os.walk already yields 3-tuples?
    – Milosz
    Apr 12, 2021 at 4:36
0

Lets say that we have to generators (gen1 and gen 2) and we want to perform some extra calculation that requires the outcome of both. We can return the outcome of such function/calculation through the map method, which in turn returns a generator that we can loop upon.

In this scenario, the function/calculation needs to be implemented via the lambda function. The tricky part is what we aim to do inside the map and its lambda function.

General form of proposed solution:

def function(gen1,gen2):
        for item in map(lambda x, y: do_somethin(x,y), gen1, gen2):
            yield item
0
0

I would say that, as suggested in comments by user "wjandrea", the best solution is

def concat_generators(*gens):
    for gen in gens:
        yield from gen

It does not change the returned type and is really Pythonic.

3
  • Which is what itertools.chain.from_iterable() will do for you. See @andrew-pate 's answer.
    – gkedge
    Sep 9, 2020 at 13:16
  • Don't reinvent the wheel, use itertools.chain. My comment wasn't meant to suggest "the best solution", it was just to improve a mediocre solution. Anyway, you also changed the names and made them confusing: concat_generators can work on any iterable, not just generators, so it should be renamed along with gen; and args is vague, so I'd use iterables instead (or gens, following your incorrect naming scheme).
    – wjandrea
    Jul 17 at 1:42
  • Oops, actually, I take most of that back. If you're using generator-specific features, like .send(), .throw(), and .close(), then this is the better solution because it actually lets you use them, which itertools.chain doesn't. But in OP's case, they're not using any of those features, so it's simpler to use chain. (Also, I should have linked generator iterator instead of generator. The glossary is arguably wrong for this term.)
    – wjandrea
    Jul 17 at 2:23
0

You can put any generator into a list. And while you can't combine generators, you can combine lists. The cons of this is you actually created 3 lists in memory but the pros are that this is very readable, requires no imports, and is a single line idiom.

Solution for the OP.

for directory, dirs, files in list(os.walk(directory_1)) + list(os.walk(directory_2)):
    do_something()
a = range(20)
b = range(10,99,3)
for v in list(a) + list(b):
    print(v) 
0

If you would like get list of files paths from a knows directories before and after, you can do this:

for r,d,f in os.walk(current_dir):
    for dir in d:
        if dir =='after':
                after_dir = os.path.abspath(os.path.join(current_dir, dir))
                for r,d,f in os.walk(after_dir): 
                    after_flist.append([os.path.join(r,file)for file in f if file.endswith('json')])
                              
        elif dir =='before': 
                before_dir = os.path.abspath(os.path.join(current_dir, dir))
                for r,d,f in os.walk(before_dir):
                    before_flist.append([os.path.join(r,file)for file in f if file.endswith('json')])

I know there are better answers, this is simple code I felt.

-2

If you just need to do it once and do not wish to import one more module, there is a simple solutions...

just do:

for dir in directory_1, directory_2:
    for directory, dirs, files in os.walk(dir):
        do_something()

If you really want to "join" both generators, then do :

for directory, dirs, files in (
        x for osw in [os.walk(directory_1), os.walk(directory_2)] 
               for x in osw
        ):
    do_something()
3
  • The second snippet of code gives an indentation error. It can be fixed with surrounding the list comprehension with parentheses: the opening parenthesis should be on the same line as in and the closing after the list comp ends. Regardless of this error, I think this is a bad example to follow. It reduces readability by mixing up indentation. The itertools.chain answers are massively more readable and easier to use.
    – shynjax287
    Oct 8, 2020 at 18:41
  • You don't need to add parenthesis. I just moved the opening bracket on the previous line to solve this. by the way, you may not like my example, but I still think it's a good idea to know how to do things by yourself, because it makes you able to write the library yourself instead of resorting to someone else's work when you need it.
    – Camion
    Oct 13, 2020 at 1:39
  • sure, it is a good idea to learn how to do things by yourself. I never debated that. Sorry if I was unclear. The use of a list comprehension here reduces readability and is not really needed. List comprehensions are cool, long list comprehensions become hard to read & fix. The code could be improved by creating the list before and then iterating over it. Sorry about my parenthesis comment if it was incorrect.
    – shynjax287
    Oct 13, 2020 at 1:52

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