44

Using boto3, I can access my AWS S3 bucket:

s3 = boto3.resource('s3')
bucket = s3.Bucket('my-bucket-name')

Now, the bucket contains folder first-level, which itself contains several sub-folders named with a timestamp, for instance 1456753904534. I need to know the name of these sub-folders for another job I'm doing and I wonder whether I could have boto3 retrieve those for me.

So I tried:

objs = bucket.meta.client.list_objects(Bucket='my-bucket-name')

which gives a dictionary, whose key 'Contents' gives me all the third-level files instead of the second-level timestamp directories, in fact I get a list containing things as

{u'ETag': '"etag"', u'Key': first-level/1456753904534/part-00014', u'LastModified': datetime.datetime(2016, 2, 29, 13, 52, 24, tzinfo=tzutc()),
u'Owner': {u'DisplayName': 'owner', u'ID': 'id'},
u'Size': size, u'StorageClass': 'storageclass'}

you can see that the specific files, in this case part-00014 are retrieved, while I'd like to get the name of the directory alone. In principle I could strip out the directory name from all the paths but it's ugly and expensive to retrieve everything at third level to get the second level!

I also tried something reported here:

for o in bucket.objects.filter(Delimiter='/'):
    print(o.key)

but I do not get the folders at the desired level.

Is there a way to solve this?

  • So you're saying that this doesn't work? Could you post what happens when you run that? – Jordon Phillips Mar 4 '16 at 18:27
  • 1
    @JordonPhillips I've tried the first lines of that link you send, which I pasted here, and I get the text files at the very first level of the bucket and no folders. – mar tin Mar 4 '16 at 20:06
  • @mar tin Did you ever resolve this issue. I am facing a similar dilemma where I need the first element in every buckets subfolder. – Ted Taylor of Life Oct 14 '16 at 14:14
  • 1
    @TedTaylorofLife Yea, no other way than getting all the objects and splitting by / to get subfolders – mar tin Oct 14 '16 at 15:17
  • @ mar tin The only way that I have done is taken the output, thrown it into a text format and comma delimit by " /" and then copying and pasting first element. What a pain in the ass. – Ted Taylor of Life Oct 14 '16 at 16:04

10 Answers 10

18

S3 is an object storage, it doesn't have real directory structure. The "/" is rather cosmetic. One reason that people want to have a directory structure, because they can maintain/prune/add a tree to the application. For S3, you treat such structure as sort of index or search tag.

To manipulate object in S3, you need boto3.client or boto3.resource, e.g. To list all object

import boto3 
s3 = boto3.client("s3")
all_objects = s3.list_objects(Bucket = 'bucket-name') 

http://boto3.readthedocs.org/en/latest/reference/services/s3.html#S3.Client.list_objects

In fact, if the s3 object name is stored using '/' separator, you can use python os.path function to extract the folder prefix.

import os
s3_key = 'first-level/1456753904534/part-00014'
filename = os.path.basename(s3_key) 
foldername = os.path.dirname(s3_key)

# if you are not using conventional delimiter like '#' 
s3_key = 'first-level#1456753904534#part-00014
filename = s3_key.split("#")[-1]

A reminder about boto3 : boto3.resource is a nice high level API. There are pros and cons using boto3.client vs boto3.resource. If you develop internal shared library, using boto3.resource will give you a blackbox layer over the resources used.

  • 1
    This gives me the same result I get with my attempt in the question. I guess I'll have to solve the hard way by grabbing all keys from the returned objects and splitting the string to get the folder name. – mar tin Mar 7 '16 at 12:18
  • 1
    @martina : a lazy python split and pick up the last data inside the list e.g. filename = keyname.split("/")[-1] – mootmoot Mar 7 '16 at 16:36
  • 1
    @martin directory_name = os.path.dirname(directory/path/and/filename.txt) and file_name = os.path.basename(directory/path/and/filename.txt) – jkdev Nov 3 '16 at 21:33
66

Below piece of code returns ONLY the 'subfolders' in a 'folder' from s3 bucket.

import boto3
bucket = 'my-bucket'
#Make sure you provide / in the end
prefix = 'prefix-name-with-slash/'  

client = boto3.client('s3')
result = client.list_objects(Bucket=bucket, Prefix=prefix, Delimiter='/')
for o in result.get('CommonPrefixes'):
    print 'sub folder : ', o.get('Prefix')

For more details, you can refer to https://github.com/boto/boto3/issues/134

  • 7
    What if I want to list contents of a particular subfolder? – itz-azhar Jun 30 '17 at 6:22
29

It took me a lot of time to figure out, but finally here is a simple way to list contents of a subfolder in S3 bucket using boto3. Hope it helps

prefix = "folderone/foldertwo/"
s3 = boto3.resource('s3')
bucket = s3.Bucket(name="bucket_name_here")
FilesNotFound = True
for obj in bucket.objects.filter(Prefix=prefix):
     print('{0}:{1}'.format(bucket.name, obj.key))
     FilesNotFound = False
if FilesNotFound:
     print("ALERT", "No file in {0}/{1}".format(bucket, prefix))
  • 2
    what if your folder contains an enormous number of objects? – Pierre D Jul 17 '18 at 0:56
  • @PierreD should still work – itz-azhar Sep 11 '18 at 5:47
  • 3
    my point is that this is a horribly inefficient solution. S3 is built to deal with arbitrary separators in the keys. For example, '/'. That let's you skip over "folders" full of objects without having to paginate over them. And then, even if you insist on a full listing (i.e. the 'recursive' equivalent in aws cli), then you must use paginators or you will list just the first 1000 objects. – Pierre D Sep 12 '18 at 14:06
  • This is a great answer. For those who need it, I have applied a limit to it in my derived answer. – Acumenus Aug 29 at 21:39
19

Short answer:

  • Use Delimiter='/'. This avoids doing a recursive listing of your bucket. Some answers here wrongly suggest doing a full listing and using some string manipulation to retrieve the directory names. This could be horribly inefficient. Remember that S3 has virtually no limit on the number of objects a bucket can contain. So, imagine that, between bar/ and foo/, you have a trillion objects: you would wait a very long time to get ['bar/', 'foo/'].

  • Use Paginators. For the same reason (S3 is an engineer's approximation of infinity), you must list through pages and avoid storing all the listing in memory. Instead, consider your "lister" as an iterator, and handle the stream it produces.

  • Use boto3.client, not boto3.resource. The resource version doesn't seem to handle well the Delimiter option. If you have a resource, say a bucket = boto3.resource('s3').Bucket(name), you can get the corresponding client with: bucket.meta.client.

Long answer:

The following is an iterator that I use for simple buckets (no version handling).

import boto3
from collections import namedtuple
from operator import attrgetter


S3Obj = namedtuple('S3Obj', ['key', 'mtime', 'size', 'ETag'])


def s3list(bucket, path, start=None, end=None, recursive=True, list_dirs=True,
           list_objs=True, limit=None):
    """
    Iterator that lists a bucket's objects under path, (optionally) starting with
    start and ending before end.

    If recursive is False, then list only the "depth=0" items (dirs and objects).

    If recursive is True, then list recursively all objects (no dirs).

    Args:
        bucket:
            a boto3.resource('s3').Bucket().
        path:
            a directory in the bucket.
        start:
            optional: start key, inclusive (may be a relative path under path, or
            absolute in the bucket)
        end:
            optional: stop key, exclusive (may be a relative path under path, or
            absolute in the bucket)
        recursive:
            optional, default True. If True, lists only objects. If False, lists
            only depth 0 "directories" and objects.
        list_dirs:
            optional, default True. Has no effect in recursive listing. On
            non-recursive listing, if False, then directories are omitted.
        list_objs:
            optional, default True. If False, then directories are omitted.
        limit:
            optional. If specified, then lists at most this many items.

    Returns:
        an iterator of S3Obj.

    Examples:
        # set up
        >>> s3 = boto3.resource('s3')
        ... bucket = s3.Bucket(name)

        # iterate through all S3 objects under some dir
        >>> for p in s3ls(bucket, 'some/dir'):
        ...     print(p)

        # iterate through up to 20 S3 objects under some dir, starting with foo_0010
        >>> for p in s3ls(bucket, 'some/dir', limit=20, start='foo_0010'):
        ...     print(p)

        # non-recursive listing under some dir:
        >>> for p in s3ls(bucket, 'some/dir', recursive=False):
        ...     print(p)

        # non-recursive listing under some dir, listing only dirs:
        >>> for p in s3ls(bucket, 'some/dir', recursive=False, list_objs=False):
        ...     print(p)
"""
    kwargs = dict()
    if start is not None:
        if not start.startswith(path):
            start = os.path.join(path, start)
        # note: need to use a string just smaller than start, because
        # the list_object API specifies that start is excluded (the first
        # result is *after* start).
        kwargs.update(Marker=__prev_str(start))
    if end is not None:
        if not end.startswith(path):
            end = os.path.join(path, end)
    if not recursive:
        kwargs.update(Delimiter='/')
        if not path.endswith('/'):
            path += '/'
    kwargs.update(Prefix=path)
    if limit is not None:
        kwargs.update(PaginationConfig={'MaxItems': limit})

    paginator = bucket.meta.client.get_paginator('list_objects')
    for resp in paginator.paginate(Bucket=bucket.name, **kwargs):
        q = []
        if 'CommonPrefixes' in resp and list_dirs:
            q = [S3Obj(f['Prefix'], None, None, None) for f in resp['CommonPrefixes']]
        if 'Contents' in resp and list_objs:
            q += [S3Obj(f['Key'], f['LastModified'], f['Size'], f['ETag']) for f in resp['Contents']]
        # note: even with sorted lists, it is faster to sort(a+b)
        # than heapq.merge(a, b) at least up to 10K elements in each list
        q = sorted(q, key=attrgetter('key'))
        if limit is not None:
            q = q[:limit]
            limit -= len(q)
        for p in q:
            if end is not None and p.key >= end:
                return
            yield p


def __prev_str(s):
    if len(s) == 0:
        return s
    s, c = s[:-1], ord(s[-1])
    if c > 0:
        s += chr(c - 1)
    s += ''.join(['\u7FFF' for _ in range(10)])
    return s

Test:

The following is helpful to test the behavior of the paginator and list_objects. It creates a number of dirs and files. Since the pages are up to 1000 entries, we use a multiple of that for dirs and files. dirs contains only directories (each having one object). mixed contains a mix of dirs and objects, with a ratio of 2 objects for each dir (plus one object under dir, of course; S3 stores only objects).

import concurrent
def genkeys(top='tmp/test', n=2000):
    for k in range(n):
        if k % 100 == 0:
            print(k)
        for name in [
            os.path.join(top, 'dirs', f'{k:04d}_dir', 'foo'),
            os.path.join(top, 'mixed', f'{k:04d}_dir', 'foo'),
            os.path.join(top, 'mixed', f'{k:04d}_foo_a'),
            os.path.join(top, 'mixed', f'{k:04d}_foo_b'),
        ]:
            yield name


with concurrent.futures.ThreadPoolExecutor(max_workers=32) as executor:
    executor.map(lambda name: bucket.put_object(Key=name, Body='hi\n'.encode()), genkeys())

The resulting structure is:

./dirs/0000_dir/foo
./dirs/0001_dir/foo
./dirs/0002_dir/foo
...
./dirs/1999_dir/foo
./mixed/0000_dir/foo
./mixed/0000_foo_a
./mixed/0000_foo_b
./mixed/0001_dir/foo
./mixed/0001_foo_a
./mixed/0001_foo_b
./mixed/0002_dir/foo
./mixed/0002_foo_a
./mixed/0002_foo_b
...
./mixed/1999_dir/foo
./mixed/1999_foo_a
./mixed/1999_foo_b

With a little bit of doctoring of the code given above for s3list to inspect the responses from the paginator, you can observe some fun facts:

  • The Marker is really exclusive. Given Marker=topdir + 'mixed/0500_foo_a' will make the listing start after that key (as per the AmazonS3 API), i.e., with .../mixed/0500_foo_b. That's the reason for __prev_str().

  • Using Delimiter, when listing mixed/, each response from the paginator contains 666 keys and 334 common prefixes. It's pretty good at not building enormous responses.

  • By contrast, when listing dirs/, each response from the paginator contains 1000 common prefixes (and no keys).

  • Passing a limit in the form of PaginationConfig={'MaxItems': limit} limits only the number of keys, not the common prefixes. We deal with that by further truncating the stream of our iterator.

  • @Mehdi : it's really not very complicated, for a system that offers such unbelievable scale and reliability. If you ever deal with more than a few hundred TBs, you'll get an appreciation for what they are offering. Remember, drives always have an MTBF > 0... Think about the implications for large scale data storage. Disclaimer: I'm an active and happy AWS user, no other connection, except I've worked on petabyte scale data since 2007 and it used to be much harder. – Pierre D Mar 14 at 19:21
13

I had the same issue but managed to resolve it using boto3.client and list_objects_v2 with Bucket and StartAfter parameters.

s3client = boto3.client('s3')
bucket = 'my-bucket-name'
startAfter = 'firstlevelFolder/secondLevelFolder'

theobjects = s3client.list_objects_v2(Bucket=bucket, StartAfter=startAfter )
for object in theobjects['Contents']:
    print object['Key']

The output result for the code above would display the following:

firstlevelFolder/secondLevelFolder/item1
firstlevelFolder/secondLevelFolder/item2

Boto3 list_objects_v2 Documentation

In order to strip out only the directory name for secondLevelFolder I just used python method split():

s3client = boto3.client('s3')
bucket = 'my-bucket-name'
startAfter = 'firstlevelFolder/secondLevelFolder'

theobjects = s3client.list_objects_v2(Bucket=bucket, StartAfter=startAfter )
for object in theobjects['Contents']:
    direcoryName = object['Key']..encode("string_escape").split('/')
    print direcoryName[1]

The output result for the code above would display the following:

secondLevelFolder
secondLevelFolder

Python split() Documentation

If you'd like to get the directory name AND contents item name then replace the print line with the following:

print "{}/{}".format(fileName[1], fileName[2])

And the following will be output:

secondLevelFolder/item2
secondLevelFolder/item2

Hope this helps

13

The big realisation with S3 is that there are no folders/directories just keys. The apparent folder structure is just prepended to the filename to become the 'Key', so to list the contents of myBucket's some/path/to/the/file/ you can try:

s3 = boto3.client('s3')
for obj in s3.list_objects_v2(Bucket="myBucket", Prefix="some/path/to/the/file/")['Contents']:
    print(obj['Key'])

which would give you something like:

some/path/to/the/file/yo.jpg
some/path/to/the/file/meAndYou.gif
...
  • This is a good answer, but it will retrieve up to only 1000 objects and no more. I have produced a derived answer which can retrieve a larger number of objects. – Acumenus Aug 29 at 21:42
  • yeah, @Acumenus i guess your answer is more complex – CpILL Aug 29 at 22:05
5

The following works for me... S3 objects:

s3://bucket/
    form1/
       section11/
          file111
          file112
       section12/
          file121
    form2/
       section21/
          file211
          file112
       section22/
          file221
          file222
          ...
      ...
   ...

Using:

from boto3.session import Session
s3client = session.client('s3')
resp = s3client.list_objects(Bucket=bucket, Prefix='', Delimiter="/")
forms = [x['Prefix'] for x in resp['CommonPrefixes']] 

we get:

form1/
form2/
...

With:

resp = s3client.list_objects(Bucket=bucket, Prefix='form1/', Delimiter="/")
sections = [x['Prefix'] for x in resp['CommonPrefixes']] 

we get:

form1/section11/
form1/section12/
4

The AWS cli does this (presumably without fetching and iterating through all keys in the bucket) when you run aws s3 ls s3://my-bucket/, so I figured there must be a way using boto3.

https://github.com/aws/aws-cli/blob/0fedc4c1b6a7aee13e2ed10c3ada778c702c22c3/awscli/customizations/s3/subcommands.py#L499

It looks like they indeed use Prefix and Delimiter - I was able to write a function that would get me all directories at the root level of a bucket by modifying that code a bit:

def list_folders_in_bucket(bucket):
    paginator = boto3.client('s3').get_paginator('list_objects')
    folders = []
    iterator = paginator.paginate(Bucket=bucket, Prefix='', Delimiter='/', PaginationConfig={'PageSize': None})
    for response_data in iterator:
        prefixes = response_data.get('CommonPrefixes', [])
        for prefix in prefixes:
            prefix_name = prefix['Prefix']
            if prefix_name.endswith('/'):
                folders.append(prefix_name.rstrip('/'))
    return folders
0

First of all, there is no real folder concept in S3. You definitely can have a file @ '/folder/subfolder/myfile.txt' and no folder nor subfolder.

To "simulate" a folder in S3, you must create an empty file with a '/' at the end of its name (see Amazon S3 boto - how to create a folder?)

For your problem, you should probably use the method get_all_keys with the 2 parameters : prefix and delimiter

https://github.com/boto/boto/blob/develop/boto/s3/bucket.py#L427

for key in bucket.get_all_keys(prefix='first-level/', delimiter='/'):
    print(key.name)
  • 1
    I am afraid I don't have the method get_all_keys on the bucket object. I am using boto3 version 1.2.3. – mar tin Mar 4 '16 at 20:08
  • Just checked boto 1.2a: there, bucket has a method list with prefix and delimiter. I suppose it should work. – Pirheas Mar 4 '16 at 20:32
  • 1
    The Bucket object retrieved as I post in the question does not have those methods. I am on boto3 1.2.6, what version does your link refer to? – mar tin Mar 7 '16 at 11:00
-1

Using boto3.resource

This builds upon the answer by itz-azhar to apply an optional limit. It is obviously substantially simpler to use than the boto3.client version.

import logging
from typing import List, Optional

import boto3
from boto3_type_annotations.s3 import ObjectSummary  # pip install boto3_type_annotations

log = logging.getLogger(__name__)
_S3_RESOURCE = boto3.resource("s3")

def s3_list(bucket_name: str, prefix: str, *, limit: Optional[int] = None) -> List[ObjectSummary]:
    """Return a list of S3 object summaries."""
    # Ref: https://stackoverflow.com/a/57718002/
    return list(_S3_RESOURCE.Bucket(bucket_name).objects.limit(count=limit).filter(Prefix=prefix))


if __name__ == "__main__":
    s3_list("noaa-gefs-pds", "gefs.20190828/12/pgrb2a", limit=10_000)

Using boto3.client

This uses list_objects_v2 and builds upon the answer by CpILL to allow retrieving more than 1000 objects.

import logging
from typing import cast, List

import boto3

log = logging.getLogger(__name__)
_S3_CLIENT = boto3.client("s3")

def s3_list(bucket_name: str, prefix: str, *, limit: int = cast(int, float("inf"))) -> List[dict]:
    """Return a list of S3 object summaries."""
    # Ref: https://stackoverflow.com/a/57718002/
    contents: List[dict] = []
    continuation_token = None
    if limit <= 0:
        return contents
    while True:
        max_keys = min(1000, limit - len(contents))
        request_kwargs = {"Bucket": bucket_name, "Prefix": prefix, "MaxKeys": max_keys}
        if continuation_token:
            log.info(  # type: ignore
                "Listing %s objects in s3://%s/%s using continuation token ending with %s with %s objects listed thus far.",
                max_keys, bucket_name, prefix, continuation_token[-6:], len(contents))  # pylint: disable=unsubscriptable-object
            response = _S3_CLIENT.list_objects_v2(**request_kwargs, ContinuationToken=continuation_token)
        else:
            log.info("Listing %s objects in s3://%s/%s with %s objects listed thus far.", max_keys, bucket_name, prefix, len(contents))
            response = _S3_CLIENT.list_objects_v2(**request_kwargs)
        assert response["ResponseMetadata"]["HTTPStatusCode"] == 200
        contents.extend(response["Contents"])
        is_truncated = response["IsTruncated"]
        if (not is_truncated) or (len(contents) >= limit):
            break
        continuation_token = response["NextContinuationToken"]
    assert len(contents) <= limit
    log.info("Returning %s objects from s3://%s/%s.", len(contents), bucket_name, prefix)
    return contents


if __name__ == "__main__":
    s3_list("noaa-gefs-pds", "gefs.20190828/12/pgrb2a", limit=10_000)

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