33

I read the filenames in my S3 bucket by doing

objs = boto3.client.list_objects(Bucket='my_bucket')
    while 'Contents' in objs.keys():
        objs_contents = objs['Contents']
        for i in range(len(objs_contents)):
            filename = objs_contents[i]['Key']

Now, I need to get the actual content of the file, similarly to a open(filename).readlines(). What is the best way?

56

boto3 offers a resource model that makes tasks like iterating through objects easier. Unfortunately, StreamingBody doesn't provide readline or readlines.

s3 = boto3.resource('s3')
bucket = s3.Bucket('test-bucket')
# Iterates through all the objects, doing the pagination for you. Each obj
# is an ObjectSummary, so it doesn't contain the body. You'll need to call
# get to get the whole body.
for obj in bucket.objects.all():
    key = obj.key
    body = obj.get()['Body'].read()
  • 3
    You can configure the resource in the same way. – Jordon Phillips Mar 24 '16 at 20:01
  • 2
    How do I read a file if it is in folders in S3. So for eg my bucket name is A. Now A has a folder B. B has a folder C. C contains a file Readme.csv. How to read this file. Your solution is good if we have files directly in bucket but in case we have multiple folders then how to go about it. Thanks. – Kshitij Marwah Dec 14 '16 at 16:56
  • 1
    we can get the body, how can i read line by line within this body ? – Gabriel Wu Mar 2 '17 at 6:29
  • 1
    @GabrielWu lol. please share your solution. – Adi Apr 2 '17 at 10:21
  • 7
    @IulianOnofrei it is making requests yes, but you aren't downloading the objects, just listing them. You can use .filter() to make fewer list requests. Or if you know the key you want just get it directly with bucket.Object('mykey') – Jordon Phillips May 3 '17 at 15:40
10

You might also consider the smart_open module, which supports iterators:

from smart_open import smart_open

# stream lines from an S3 object
for line in smart_open('s3://mybucket/mykey.txt', 'rb'):
    print(line.decode('utf8'))

and context managers:

with smart_open('s3://mybucket/mykey.txt', 'rb') as s3_source:
    for line in s3_source:
         print(line.decode('utf8'))

    s3_source.seek(0)  # seek to the beginning
    b1000 = fin.read(1000)  # read 1000 bytes

Find smart_open at https://pypi.org/project/smart_open/

  • 1
    does this work on compressed files? – user 923227 Jan 8 at 19:50
  • Docs claim that "The S3 reader supports gzipped content transparently" but I've not exercised this myself – caffreyd Jan 8 at 19:54
  • 2
    Yes, Just tried it out! works perfectly! Thanks! – user 923227 Jan 8 at 21:29
6

When you want to read a file with a different configuration than the default one, feel free to use either mpu.aws.s3_read(s3path) directly or the copy-pasted code:

def s3_read(source, profile_name=None):
    """
    Read a file from an S3 source.

    Parameters
    ----------
    source : str
        Path starting with s3://, e.g. 's3://bucket-name/key/foo.bar'
    profile_name : str, optional
        AWS profile

    Returns
    -------
    content : bytes

    botocore.exceptions.NoCredentialsError
        Botocore is not able to find your credentials. Either specify
        profile_name or add the environment variables AWS_ACCESS_KEY_ID,
        AWS_SECRET_ACCESS_KEY and AWS_SESSION_TOKEN.
        See https://boto3.readthedocs.io/en/latest/guide/configuration.html
    """
    session = boto3.Session(profile_name=profile_name)
    s3 = session.client('s3')
    bucket_name, key = mpu.aws._s3_path_split(source)
    s3_object = s3.get_object(Bucket=bucket_name, Key=key)
    body = s3_object['Body']
    return body.read()

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