292

I have a .zip file and need to unpack its entire content using Powershell. I'm doing this but it doesn't seem to work:

$shell = New-Object -ComObject shell.application
$zip = $shell.NameSpace("C:\a.zip")
MkDir("C:\a")
foreach ($item in $zip.items()) {
  $shell.Namespace("C:\a").CopyHere($item)
}

What's wrong? The directory C:\a is still empty.

2
  • 7
    If you're in Powershell 2.0, or without .NET 4.5 installed, then the method you mentioned is the only path (without going with a 3rd-party exe (i.e. 7zip). I would say that the question isn't fully answered until someone provides why this method doesn't work. It does for me some of the time, but others it doesn't.
    – kenny
    Jan 6, 2016 at 17:32
  • 3
    Since Expand-Archive now exists in powershell, the accepted answer is a bit out of date. Aug 11, 2021 at 16:59

10 Answers 10

618

In PowerShell v5+, there is an Expand-Archive command (as well as Compress-Archive) built in:

Expand-Archive C:\a.zip -DestinationPath C:\a
8
  • 36
    Use $PSVersionTable.PSVersion to determine what version of PowerShell you are running.
    – Brad C
    Mar 10, 2016 at 18:37
  • 2
    @Ghashange PowerShell 5 wasn't even available for anything below Windows 10 and Server 2012 when this answer was posted, even as a pre-release.
    – jpmc26
    Mar 10, 2016 at 22:15
  • 12
    Looks like the parameter OutputPath has been changed to DestinationPath (reference msdn.microsoft.com/powershell/reference/5.1/…) Nov 15, 2016 at 13:54
  • 2
    You can also use relative paths like Expand-Archive -Path .\a.zip -DestinationPath .
    – Culip
    Oct 19, 2018 at 13:48
  • 3
    Note the Expand-Archive and Compress-Archive require that archive file extension is .zip, while [System.IO.Compression.ZipFile]-based solutions don't.
    – Jonathan
    May 7, 2020 at 13:08
287

Here is a simple way using ExtractToDirectory from System.IO.Compression.ZipFile:

Add-Type -AssemblyName System.IO.Compression.FileSystem
function Unzip
{
    param([string]$zipfile, [string]$outpath)

    [System.IO.Compression.ZipFile]::ExtractToDirectory($zipfile, $outpath)
}

Unzip "C:\a.zip" "C:\a"

Note that if the target folder doesn't exist, ExtractToDirectory will create it. Other caveats:

See also:

9
  • 1
    There is no need to quote the parameters C:\a.zip or C:\a unless there is a space in the path. PowerShell considers parameters to be of type string or numeric unless the argument starts with a special character like $, @, ( or {. This is one of benefits of PowerShell being a shell scripting language. :-)
    – Keith Hill
    Jan 4, 2015 at 22:35
  • 11
    Why do you create a function to replace a single function call?
    – user234736
    Aug 1, 2015 at 8:32
  • 19
    In theory you don't. I try to hide complex/unconventional calls in functions so later I can replace the method without worrying about where it's used. As Keith mentioned, in V5 there will be a new way to do it. Aug 1, 2015 at 9:37
  • 10
    I tried this but getting below error, Exception calling "ExtractToDirectory" with "2" argument(s): "End of Central Directory record could not be found." At line:5 char:5 + [System.IO.Compression.ZipFile]::ExtractToDirectory($zipfile, $ou ... + ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ + CategoryInfo : NotSpecified: (:) [], MethodInvocationException + FullyQualifiedErrorId : InvalidDataException
    – Karthi1234
    Dec 23, 2016 at 4:36
  • 5
    This gives me the following error: Add-Type : Cannot add type. The assembly 'System.IO.Compression.FileSystem' could not be found.. I have .NET 4.6.2 installed, and I've verified that the assembly is in the GAC, but I didn't figure out why I'm getting this error.
    – Sam
    Jan 5, 2017 at 4:53
35

In PowerShell v5.1 this is slightly different compared to v5. According to MS documentation, it has to have a -Path parameter to specify the archive file path.

Expand-Archive -Path Draft.Zip -DestinationPath C:\Reference

Or else, this can be an actual path:

Expand-Archive -Path c:\Download\Draft.Zip -DestinationPath C:\Reference

Expand-Archive Doc

1
  • 3
    There is no difference between v5 and v5.1 in this Cmdlet. You do not need to name the first parameter; it will automatically become the path. For example, Expand-Archive Draft.Zip -DestinationPath C:\Reference works without issue. In addition, it's not actual path, but absolute path. Sep 13, 2018 at 14:29
25

Use Expand-Archive cmdlet with one of parameter set:

Expand-Archive -LiteralPath C:\source\file.Zip -DestinationPath C:\destination
Expand-Archive -Path file.Zip -DestinationPath C:\destination
14

Hey Its working for me..

$shell = New-Object -ComObject shell.application
$zip = $shell.NameSpace("put ur zip file path here")
foreach ($item in $zip.items()) {
  $shell.Namespace("destination where files need to unzip").CopyHere($item)
}
2
  • 2
    If one of the files or directories already exists at the destination location, it pops up a dialogue asking what to do (ignore, overwrite) which defeats the purpose. Does anyone know how to force it to silently overwrite? Oct 29, 2018 at 4:56
  • Answering to the comment by @OlegKazakov: there is set of option controlling the CopyHere method. I guess @OlegKazakov already solved his issue. Nevertheless I put this link here for other surfers who can find this topic: docs.microsoft.com/en-us/previous-versions/windows/desktop/…
    – jsxt
    Aug 9, 2019 at 15:58
10

Use the built in powershell method Expand-Archive

Example

Expand-Archive -LiteralPath C:\archive.zip -DestinationPath C:\
5

Using expand-archive but auto-creating directories named after the archive:

function unzip ($file) {
    $dirname = (Get-Item $file).Basename
    New-Item -Force -ItemType directory -Path $dirname
    expand-archive $file -OutputPath $dirname -ShowProgress
}
3
  • This necessarily expands in the current directory, doesn't it?
    – jpmc26
    Mar 21, 2017 at 20:59
  • Don't really see the added value of auto creating. It's more flexible to add a second parameter outputPath like in the accepted answer. In this solution (as jpmc26 said), you will always create a new directory in the current directory so it's possible you need to set the current directory before you call unzip
    – Rubanov
    Jul 3, 2017 at 12:29
  • 2
    Most archivers extract into a dir named after the archive, in the same place as the archive. Nothing to stop you adding parameters if you want something different, but it's a sensible default. Jul 6, 2017 at 13:07
4

For those, who want to use Shell.Application.Namespace.Folder.CopyHere() and want to hide progress bars while copying, or use more options, the documentation is here:
https://docs.microsoft.com/en-us/windows/desktop/shell/folder-copyhere

To use powershell and hide progress bars and disable confirmations you can use code like this:

# We should create folder before using it for shell operations as it is required
New-Item -ItemType directory -Path "C:\destinationDir" -Force

$shell = New-Object -ComObject Shell.Application
$zip = $shell.Namespace("C:\archive.zip")
$items = $zip.items()
$shell.Namespace("C:\destinationDir").CopyHere($items, 1556)

Limitations of use of Shell.Application on windows core versions:
https://docs.microsoft.com/en-us/windows-server/administration/server-core/what-is-server-core

On windows core versions, by default the Microsoft-Windows-Server-Shell-Package is not installed, so shell.applicaton will not work.

note: Extracting archives this way will take a long time and can slow down windows gui

2
function unzip {
    param (
        [string]$archiveFilePath,
        [string]$destinationPath
    )

    if ($archiveFilePath -notlike '?:\*') {
        $archiveFilePath = [System.IO.Path]::Combine($PWD, $archiveFilePath)
    }

    if ($destinationPath -notlike '?:\*') {
        $destinationPath = [System.IO.Path]::Combine($PWD, $destinationPath)
    }

    Add-Type -AssemblyName System.IO.Compression
    Add-Type -AssemblyName System.IO.Compression.FileSystem

    $archiveFile = [System.IO.File]::Open($archiveFilePath, [System.IO.FileMode]::Open)
    $archive = [System.IO.Compression.ZipArchive]::new($archiveFile)

    if (Test-Path $destinationPath) {
        foreach ($item in $archive.Entries) {
            $destinationItemPath = [System.IO.Path]::Combine($destinationPath, $item.FullName)

            if ($destinationItemPath -like '*/') {
                New-Item $destinationItemPath -Force -ItemType Directory > $null
            } else {
                New-Item $destinationItemPath -Force -ItemType File > $null

                [System.IO.Compression.ZipFileExtensions]::ExtractToFile($item, $destinationItemPath, $true)
            }
        }
    } else {
        [System.IO.Compression.ZipFileExtensions]::ExtractToDirectory($archive, $destinationPath)
    }
}

Using:

unzip 'Applications\Site.zip' 'C:\inetpub\wwwroot\Site'
1
  • 1
    Don't forget to dispose $archive and $archiveFile at the end Sep 27, 2019 at 7:13
1

ForEach Loop processes each ZIP file located within the $filepath variable

    foreach($file in $filepath)
    {
        $zip = $shell.NameSpace($file.FullName)
        foreach($item in $zip.items())
        {
            $shell.Namespace($file.DirectoryName).copyhere($item)
        }
        Remove-Item $file.FullName
    }

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