142

I want to copy a file in s3 bucket using python.

Ex : I have bucket name = test. And in the bucket, I have 2 folders name "dump" & "input". Now I want to copy a file from local directory to S3 "dump" folder using python... Can anyone help me?

17 Answers 17

122

NOTE: This answer uses boto. See the other answer that uses boto3, which is newer.

Try this...

import boto
import boto.s3
import sys
from boto.s3.key import Key

AWS_ACCESS_KEY_ID = ''
AWS_SECRET_ACCESS_KEY = ''

bucket_name = AWS_ACCESS_KEY_ID.lower() + '-dump'
conn = boto.connect_s3(AWS_ACCESS_KEY_ID,
        AWS_SECRET_ACCESS_KEY)


bucket = conn.create_bucket(bucket_name,
    location=boto.s3.connection.Location.DEFAULT)

testfile = "replace this with an actual filename"
print 'Uploading %s to Amazon S3 bucket %s' % \
   (testfile, bucket_name)

def percent_cb(complete, total):
    sys.stdout.write('.')
    sys.stdout.flush()


k = Key(bucket)
k.key = 'my test file'
k.set_contents_from_filename(testfile,
    cb=percent_cb, num_cb=10)

[UPDATE] I am not a pythonist, so thanks for the heads up about the import statements. Also, I'd not recommend placing credentials inside your own source code. If you are running this inside AWS use IAM Credentials with Instance Profiles (http://docs.aws.amazon.com/IAM/latest/UserGuide/id_roles_use_switch-role-ec2_instance-profiles.html), and to keep the same behaviour in your Dev/Test environment, use something like Hologram from AdRoll (https://github.com/AdRoll/hologram)

3
  • 9
    I would avoid the multiple import lines, not pythonic. Move the import lines to the top, and for the boto, you can use from boto.s3.connection import S3Connection ; conn = S3Connection(AWS_ACCESS_KEY_ID, AWS_SECRET_ACCESS_KEY); bucket = conn.create_bucket(bucketname...); bucket.new_key(keyname,...).set_contents_from_filename....
    – cgseller
    Jun 29, 2015 at 22:51
  • 3
    boto.s3.key.Key doesn't exist on 1.7.12
    – Alex Pavy
    Jun 21, 2018 at 9:02
  • To upload files to an existing bucket, instead of creating a new one, replace this line: bucket = conn.create_bucket(bucket_name, location=boto.s3.connection.Location.DEFAULT) With this code: bucket = conn.get_bucket(bucket_name) Jun 10, 2021 at 23:53
102
import boto3

s3 = boto3.resource('s3')
BUCKET = "test"

s3.Bucket(BUCKET).upload_file("your/local/file", "dump/file")
6
  • 1
    can you explain this line s3.Bucket(BUCKET).upload_file("your/local/file", "dump/file")
    – venkat
    Mar 6, 2018 at 12:44
  • 1
    @venkat "your/local/file" is a filepath such as "/home/file.txt" on the computer using python/boto and "dump/file" is a key name to store the file under in the S3 Bucket. See: boto3.readthedocs.io/en/latest/reference/services/…
    – Josh S.
    Mar 6, 2018 at 22:16
  • 1
    It looks like the user has pre-configured AWS Keys, to do this open your anaconda command prompt and type aws configure, enter your info and you will automatically connect with boto3. Check boto3.readthedocs.io/en/latest/guide/quickstart.html
    – seeiespi
    Aug 28, 2018 at 21:31
  • simplest solution IMO, just as easy as tinys3 but without the need for another external dependency. Also highly recommend setting up your AWS keys with aws configure ahead of time to make your life easier. Mar 3, 2019 at 20:03
  • 1
    What happens when there are multiple profile in credentials. how to pass the specific credentials Aug 1, 2019 at 10:12
50

No need to make it that complicated:

s3_connection = boto.connect_s3()
bucket = s3_connection.get_bucket('your bucket name')
key = boto.s3.key.Key(bucket, 'some_file.zip')
with open('some_file.zip') as f:
    key.send_file(f)
7
  • This will work, but for large .zip files you may need to use chunked. elastician.com/2010/12/s3-multipart-upload-in-boto.html
    – cgseller
    Jun 29, 2015 at 22:53
  • 2
    Yes.. less complicated and commonly used practice
    – Leo Prince
    Jan 8, 2016 at 11:25
  • 1
    I tried this, it doesn't work, but k.set_contents_from_filename(testfile, cb=percent_cb, num_cb=10) does
    – Simon
    Jun 24, 2016 at 18:57
  • 1
    Are you on boto 2, latest? Anyway, set_contents_from_filename is an even simpler option. Go for it !
    – vcarel
    Jun 27, 2016 at 9:37
  • 4
    key.set_contents_from_filename('some_file.zip') would also work here. See doc. The corresponding code for boto3 can be found here. May 24, 2017 at 22:44
43

Upload file to s3 within a session with credentials.

import boto3

session = boto3.Session(
    aws_access_key_id='AWS_ACCESS_KEY_ID',
    aws_secret_access_key='AWS_SECRET_ACCESS_KEY',
)
s3 = session.resource('s3')
# Filename - File to upload
# Bucket - Bucket to upload to (the top level directory under AWS S3)
# Key - S3 object name (can contain subdirectories). If not specified then file_name is used
s3.meta.client.upload_file(Filename='input_file_path', Bucket='bucket_name', Key='s3_output_key')
2
  • What is the s3_output_key?
    – Roelant
    Mar 7, 2019 at 21:17
  • 1
    It is the filename in the S3 bucket.
    – Roman Orac
    Mar 8, 2019 at 7:50
36

I used this and it is very simple to implement

import tinys3

conn = tinys3.Connection('S3_ACCESS_KEY','S3_SECRET_KEY',tls=True)

f = open('some_file.zip','rb')
conn.upload('some_file.zip',f,'my_bucket')

https://www.smore.com/labs/tinys3/

4
19
from boto3.s3.transfer import S3Transfer
import boto3
#have all the variables populated which are required below
client = boto3.client('s3', aws_access_key_id=access_key,aws_secret_access_key=secret_key)
transfer = S3Transfer(client)
transfer.upload_file(filepath, bucket_name, folder_name+"/"+filename)
4
  • what is filepath and what is folder_name+filename? it's confusing Aug 3, 2017 at 2:41
  • @colintobing filepath is path of file on cluster and folder_name/filename is the naming convention that you would want to have inside s3 bucket Aug 29, 2017 at 11:47
  • 3
    @ManishMehra The answer would be better if you edited it to clarify colintobing's point of confusion; it's non-obvious without checking the docs which parameters refer to local paths and which ones to S3 paths without checking the docs or reading the comments. (Once that's done, you can flag to have all the comments here purged, since they'll be obsolete.)
    – Mark Amery
    Feb 20, 2018 at 16:30
  • 1
    aws_access_key_id and aws_secret_access_key can also be configured with the AWS CLI and stored out of the script so that `client = boto3.client('s3') can be called
    – yvesva
    Mar 19, 2018 at 22:34
13

This is a three liner. Just follow the instructions on the boto3 documentation.

import boto3
s3 = boto3.resource(service_name = 's3')
s3.meta.client.upload_file(Filename = 'C:/foo/bar/baz.filetype', Bucket = 'yourbucketname', Key = 'baz.filetype')

Some important arguments are:

Parameters:

  • Filename (str) -- The path to the file to upload.
  • Bucket (str) -- The name of the bucket to upload to.
  • Key (str) -- The name of the that you want to assign to your file in your s3 bucket. This could be the same as the name of the file or a different name of your choice but the filetype should remain the same.

    Note: I assume that you have saved your credentials in a ~\.aws folder as suggested in the best configuration practices in the boto3 documentation.

  • 2
    • Thank you Nde Samuel, that worked with me...One thing that was additional required in my case was to have the bucket already been created, to avoid an error of ""The specified bucket does not exist"". Jan 25, 2019 at 0:04
    • @HassanSh__3571619 I am glad it helped.
      – Samuel Nde
      Jan 29, 2019 at 22:11
    12

    This will also work:

    import os 
    import boto
    import boto.s3.connection
    from boto.s3.key import Key
    
    try:
    
        conn = boto.s3.connect_to_region('us-east-1',
        aws_access_key_id = 'AWS-Access-Key',
        aws_secret_access_key = 'AWS-Secrete-Key',
        # host = 's3-website-us-east-1.amazonaws.com',
        # is_secure=True,               # uncomment if you are not using ssl
        calling_format = boto.s3.connection.OrdinaryCallingFormat(),
        )
    
        bucket = conn.get_bucket('YourBucketName')
        key_name = 'FileToUpload'
        path = 'images/holiday' #Directory Under which file should get upload
        full_key_name = os.path.join(path, key_name)
        k = bucket.new_key(full_key_name)
        k.set_contents_from_filename(key_name)
    
    except Exception,e:
        print str(e)
        print "error"   
    
    8

    Using boto3

    import logging
    import boto3
    from botocore.exceptions import ClientError
    
    
    def upload_file(file_name, bucket, object_name=None):
        """Upload a file to an S3 bucket
    
        :param file_name: File to upload
        :param bucket: Bucket to upload to
        :param object_name: S3 object name. If not specified then file_name is used
        :return: True if file was uploaded, else False
        """
    
        # If S3 object_name was not specified, use file_name
        if object_name is None:
            object_name = file_name
    
        # Upload the file
        s3_client = boto3.client('s3')
        try:
            response = s3_client.upload_file(file_name, bucket, object_name)
        except ClientError as e:
            logging.error(e)
            return False
        return True
    

    For more:- https://boto3.amazonaws.com/v1/documentation/api/latest/guide/s3-uploading-files.html

    0
    5
    import boto
    from boto.s3.key import Key
    
    AWS_ACCESS_KEY_ID = ''
    AWS_SECRET_ACCESS_KEY = ''
    END_POINT = ''                          # eg. us-east-1
    S3_HOST = ''                            # eg. s3.us-east-1.amazonaws.com
    BUCKET_NAME = 'test'        
    FILENAME = 'upload.txt'                
    UPLOADED_FILENAME = 'dumps/upload.txt'
    # include folders in file path. If it doesn't exist, it will be created
    
    s3 = boto.s3.connect_to_region(END_POINT,
                               aws_access_key_id=AWS_ACCESS_KEY_ID,
                               aws_secret_access_key=AWS_SECRET_ACCESS_KEY,
                               host=S3_HOST)
    
    bucket = s3.get_bucket(BUCKET_NAME)
    k = Key(bucket)
    k.key = UPLOADED_FILENAME
    k.set_contents_from_filename(FILENAME)
    
    2

    For upload folder example as following code and S3 folder picture enter image description here

    import boto
    import boto.s3
    import boto.s3.connection
    import os.path
    import sys    
    
    # Fill in info on data to upload
    # destination bucket name
    bucket_name = 'willie20181121'
    # source directory
    sourceDir = '/home/willie/Desktop/x/'  #Linux Path
    # destination directory name (on s3)
    destDir = '/test1/'   #S3 Path
    
    #max size in bytes before uploading in parts. between 1 and 5 GB recommended
    MAX_SIZE = 20 * 1000 * 1000
    #size of parts when uploading in parts
    PART_SIZE = 6 * 1000 * 1000
    
    access_key = 'MPBVAQ*******IT****'
    secret_key = '11t63yDV***********HgUcgMOSN*****'
    
    conn = boto.connect_s3(
            aws_access_key_id = access_key,
            aws_secret_access_key = secret_key,
            host = '******.org.tw',
            is_secure=False,               # uncomment if you are not using ssl
            calling_format = boto.s3.connection.OrdinaryCallingFormat(),
            )
    bucket = conn.create_bucket(bucket_name,
            location=boto.s3.connection.Location.DEFAULT)
    
    
    uploadFileNames = []
    for (sourceDir, dirname, filename) in os.walk(sourceDir):
        uploadFileNames.extend(filename)
        break
    
    def percent_cb(complete, total):
        sys.stdout.write('.')
        sys.stdout.flush()
    
    for filename in uploadFileNames:
        sourcepath = os.path.join(sourceDir + filename)
        destpath = os.path.join(destDir, filename)
        print ('Uploading %s to Amazon S3 bucket %s' % \
               (sourcepath, bucket_name))
    
        filesize = os.path.getsize(sourcepath)
        if filesize > MAX_SIZE:
            print ("multipart upload")
            mp = bucket.initiate_multipart_upload(destpath)
            fp = open(sourcepath,'rb')
            fp_num = 0
            while (fp.tell() < filesize):
                fp_num += 1
                print ("uploading part %i" %fp_num)
                mp.upload_part_from_file(fp, fp_num, cb=percent_cb, num_cb=10, size=PART_SIZE)
    
            mp.complete_upload()
    
        else:
            print ("singlepart upload")
            k = boto.s3.key.Key(bucket)
            k.key = destpath
            k.set_contents_from_filename(sourcepath,
                    cb=percent_cb, num_cb=10)
    

    PS: For more reference URL

    2

    If you have the aws command line interface installed on your system you can make use of pythons subprocess library. For example:

    import subprocess
    def copy_file_to_s3(source: str, target: str, bucket: str):
       subprocess.run(["aws", "s3" , "cp", source, f"s3://{bucket}/{target}"])
    

    Similarly you can use that logics for all sort of AWS client operations like downloading or listing files etc. It is also possible to get return values. This way there is no need to import boto3. I guess its use is not intended that way but in practice I find it quite convenient that way. This way you also get the status of the upload displayed in your console - for example:

    Completed 3.5 GiB/3.5 GiB (242.8 MiB/s) with 1 file(s) remaining
    

    To modify the method to your wishes I recommend having a look into the subprocess reference as well as to the AWS Cli reference.

    Note: This is a copy of my answer to a similar question.

    1

    I have something that seems to me has a bit more order:

    import boto3
    from pprint import pprint
    from botocore.exceptions import NoCredentialsError
    
    
    class S3(object):
        BUCKET = "test"
        connection = None
    
        def __init__(self):
            try:
                vars = get_s3_credentials("aws")
                self.connection = boto3.resource('s3', 'aws_access_key_id',
                                                 'aws_secret_access_key')
            except(Exception) as error:
                print(error)
                self.connection = None
    
    
        def upload_file(self, file_to_upload_path, file_name):
            if file_to_upload is None or file_name is None: return False
            try:
                pprint(file_to_upload)
                file_name = "your-folder-inside-s3/{0}".format(file_name)
                self.connection.Bucket(self.BUCKET).upload_file(file_to_upload_path, 
                                                                          file_name)
                print("Upload Successful")
                return True
    
            except FileNotFoundError:
                print("The file was not found")
                return False
    
            except NoCredentialsError:
                print("Credentials not available")
                return False
    
    
    

    There're three important variables here, the BUCKET const, the file_to_upload and the file_name

    BUCKET: is the name of your S3 bucket

    file_to_upload_path: must be the path from file you want to upload

    file_name: is the resulting file and path in your bucket (this is where you add folders or what ever)

    There's many ways but you can reuse this code in another script like this

    import S3
    
    def some_function():
        S3.S3().upload_file(path_to_file, final_file_name)
    
    1
    0
    xmlstr = etree.tostring(listings,  encoding='utf8', method='xml')
    conn = boto.connect_s3(
            aws_access_key_id = access_key,
            aws_secret_access_key = secret_key,
            # host = '<bucketName>.s3.amazonaws.com',
            host = 'bycket.s3.amazonaws.com',
            #is_secure=False,               # uncomment if you are not using ssl
            calling_format = boto.s3.connection.OrdinaryCallingFormat(),
            )
    conn.auth_region_name = 'us-west-1'
    
    bucket = conn.get_bucket('resources', validate=False)
    key= bucket.get_key('filename.txt')
    key.set_contents_from_string("SAMPLE TEXT")
    key.set_canned_acl('public-read')
    
    1
    • A text explanation with what your code does will be nice!
      – Nick
      Nov 13, 2018 at 21:01
    0

    You should mention the content type as well to omit the file accessing issue.

    import os
    image='fly.png'
    s3_filestore_path = 'images/fly.png'
    filename, file_extension = os.path.splitext(image)
    content_type_dict={".png":"image/png",".html":"text/html",
                   ".css":"text/css",".js":"application/javascript",
                   ".jpg":"image/png",".gif":"image/gif",
                   ".jpeg":"image/jpeg"}
    
    content_type=content_type_dict[file_extension]
    s3 = boto3.client('s3', config=boto3.session.Config(signature_version='s3v4'),
                      region_name='ap-south-1',
                      aws_access_key_id=S3_KEY,
                      aws_secret_access_key=S3_SECRET)
    s3.put_object(Body=image, Bucket=S3_BUCKET, Key=s3_filestore_path, ContentType=content_type)
    
    0

    A lot of the existing answers here are pretty complex. A simple approach is to use cloudpathlib, which wraps boto3.

    First, be sure to be authenticated properly with an ~/.aws/credentials file or environment variables set. See more options in the cloudpathlib docs.

    This is how you would upload a file:

    from pathlib import Path
    from cloudpathlib import CloudPath
    
    # write a local file that we will upload:
    Path("test_file.txt").write_text("hello")
    #> 5
    
    # upload that file to S3
    CloudPath("s3://drivendata-public-assets/testsfile.txt").upload_from("test_file.txt")
    #> S3Path('s3://mybucket/testsfile.txt')
    
    # read it back from s3
    CloudPath("s3://mybucket/testsfile.txt").read_text()
    #> 'hello'
    

    Note, that you could write to the cloud path directly using the normal write_text, write_bytes, or open methods as well.

    0

    I modified your example slightly, dropping some imports and the progress to get what I needed for a boto example.

    import boto.s3
    from boto.s3.key import Key
    
    AWS_ACCESS_KEY_ID = 'your-access-key-id'
    AWS_SECRET_ACCESS_KEY = 'your-secret-access-key'
    
    bucket_name = AWS_ACCESS_KEY_ID.lower() + '-form13'
    conn = boto.connect_s3(AWS_ACCESS_KEY_ID, AWS_SECRET_ACCESS_KEY)
    bucket = conn.create_bucket(bucket_name, location=boto.s3.connection.Location.DEFAULT)
    filename = 'embedding.csv'
    
    k = Key(bucket)
    k.key = filename
    k.set_contents_from_filename(filename)
    

    Here's a boto3 example as well:

    import boto3
    
    ACCESS_KEY = 'your-access-key'
    SECRET_KEY = 'your-secret-key'
    
    file_name='embedding.csv'
    object_name=file_name
    bucket_name = ACCESS_KEY.lower() + '-form13'
    
    s3 = boto3.client('s3', aws_access_key_id=ACCESS_KEY, aws_secret_access_key=SECRET_KEY)
    s3.create_bucket(Bucket=bucket_name)
    s3.upload_file(file_name, bucket_name, object_name)
    

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