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For some reason there's a bucket with a bunch of different files, all of which have the same prefix but with different dates:

backup.2017-01-01aa

backup.2017-01-01ab

backup.2017-01-15aa

backup.2017-01-15ab

backup.2017-02-01aa

backup.2017-02-01ab

etc..

How do I download only files that start with "backup.2017-01-01"?

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3 Answers 3

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I think --include does the filtering locally. So if your bucket contains millions of files, the command can take hours to run, because it needs to download a list of all the filenames in the bucket. Also, some extra network traffic.

But aws s3 ls can take a truncated filename to list all the corresponding files, without any extra traffic. So you can

aws s3 ls s3://yourbucket/backup.2017-

to see your files, and something like

aws s3 ls s3://yourbucket/backup.2017- | colrm 1 31 | xargs -I % aws s3 cp s3://yourbucket/% .

to copy your files.

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    This must be the selected answer! Sep 26, 2019 at 16:23
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    this works great. way faster than the selected answer Apr 8, 2020 at 17:21
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    If the prefix in ls command has "/" separator, make sure to specify the prefix up to the separator in the cp command (this is necessary as ls returns "file" names, while cp requires full path including the "directories")
    – Yaegor
    Mar 23, 2021 at 14:28
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    Finally a good answer! This is great if you have a lot of files in your bucket.
    – vincent
    May 7, 2021 at 22:29
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    @AnttiHaapala--СлаваУкраїні if you have lot of small files, adding -P 15 to xargs will run 15 files in parallel, significantly speeding up downloading of large number of files. Mar 29, 2022 at 12:33
28

You'll have to use aws s3 sync s3://yourbucket/

There are two parameters you can give to aws s3 sync; --exclude and --include, both of which can take the "*" wildcard.

First we'll have to --exclude "*" to exclude all of the files, and then we'll --include "backup.2017-01-01*" to include all the files we want with the specific prefix. Obviously you can change the include around so you could also do something like --include "*-01-01*".

That's it, here's the full command:

aws s3 sync s3://yourbucket/ . --exclude "*" --include "backup.2017-01-01*"

Also, remember to use --dryrun to test your command and avoid downloading all files in the bucket.

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A PowerShell equivalent for @sampo-smolander's answer

,@(Get-ChildItem -recurse | aws s3 ls s3://yourbucket/backup.2017-) | Select-Object -ExpandProperty syncroot |  foreach-Object {$_.split(" ")[-1]} | %{&"aws" s3 cp s3://yourbucket/$_ .}

Posting it here since I spent a lot of time figuring out this, so hopefully it helps someone else who needs to use powershell. Also I'm not too familiar with powershell so it may need optimization.

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