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I have more than 500,000 objects on s3. I am trying to get the size of each object. I am using the following python code for that

import boto3

bucket = 'bucket'
prefix = 'prefix'

contents = boto3.client('s3').list_objects_v2(Bucket=bucket,  MaxKeys=1000, Prefix=prefix)["Contents"]

for c in contents:
    print(c["Size"])

But it just gave me the size of the top 1000 objects. Based on the documentation we can't get more than 1000. Is there any way I can get more than that?

1

3 Answers 3

135

The inbuilt boto3 Paginator class is the easiest way to overcome the 1000 record limitation of list-objects-v2. This can be implemented as follows

s3 = boto3.client('s3')

paginator = s3.get_paginator('list_objects_v2')
pages = paginator.paginate(Bucket='bucket', Prefix='prefix')

for page in pages:
    for obj in page['Contents']:
        print(obj['Size'])

For more details: https://boto3.amazonaws.com/v1/documentation/api/latest/reference/services/s3.html#S3.Paginator.ListObjectsV2

4
  • 3
    This was exactly what I needed to eval the current list of s3 buckets I have access to. I was wondering why they all had 1000 in them haha. Jan 5, 2021 at 21:30
  • 1
    This is the ANSWER!
    – dvallejo
    May 20, 2021 at 21:04
  • 1
    Is there an upper limit, since pages are in memory what if there are very large amount of objects.
    – ddttdd
    Jul 2, 2021 at 19:00
  • 3
    I am curious about the possible difference between using list_object_v2 and list_object when using the pagination wrapper. Does _v2 offer benefits in this case?
    – Shan Dou
    Aug 4, 2021 at 22:33
71

Use the ContinuationToken returned in the response as a parameter for subsequent calls, until the IsTruncated value returned in the response is false.

This can be factored into a neat generator function:

def get_all_s3_objects(s3, **base_kwargs):
    continuation_token = None
    while True:
        list_kwargs = dict(MaxKeys=1000, **base_kwargs)
        if continuation_token:
            list_kwargs['ContinuationToken'] = continuation_token
        response = s3.list_objects_v2(**list_kwargs)
        yield from response.get('Contents', [])
        if not response.get('IsTruncated'):  # At the end of the list?
            break
        continuation_token = response.get('NextContinuationToken')

for file in get_all_s3_objects(boto3.client('s3'), Bucket=bucket, Prefix=prefix):
    print(file['Size'])
2
  • 2
    Is there a way to distribute the creation of this list? Iterating through the generator to create the list takes hours. Dec 5, 2019 at 2:15
  • 1
    Worked for me like a charm! Jan 16, 2020 at 8:50
18

If you don't NEED to use the boto3.client you can use boto3.resource to get a complete list of your files:

s3r = boto3.resource('s3')
bucket = s3r.Bucket('bucket_name')
files_in_bucket = list(bucket.objects.all())

Then to get the size just:

sizes = [f.size for f in files_in_bucket]

Depending on the size of your bucket this might take a minute.

6
  • 2
    is there an advantage to using resource?
    – crypdick
    Mar 14, 2020 at 0:43
  • 1
    There are some methods that can be found in resource and not in client and vice-versa. However, in my experience they share a lot of the same functionality. You might be able to get the size of a bucket using client but I didn't find another way that was similar to this.
    – seeiespi
    Mar 17, 2020 at 16:52
  • 1
    I am listing the objects in my path like this: s3_resource = boto3.resource('s3') source_bucket_obj = s3_resource.Bucket(source_bucket) source_objects = source_bucket_obj.objects.filter(Prefix=source_key) Are you saying that this will list all the files, even if there are more than 1000? Mar 19, 2020 at 2:24
  • @MelissaGuo in my experience the list(bucket.objects.all()) method returns all the files, even if its more than 1,000. Has that not been your experience?
    – seeiespi
    Apr 2, 2020 at 15:54
  • 1
    after 3000 list, this fails
    – saviour123
    May 14, 2021 at 15:14

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