103

I have two paths:

fred\frog

and

..\frag

I can join them together in PowerShell like this:

join-path 'fred\frog' '..\frag'

That gives me this:

fred\frog\..\frag

But I don't want that. I want a normalized path without the double dots, like this:

fred\frag

How can I get that?

1
  • 1
    Is frag a subfolder of frog? If not then combining the path would get you fred\frog\frag. If it is then that is a very different question. – EBGreen Jan 30 '09 at 14:41

12 Answers 12

87

You can use a combination of $pwd, Join-Path and [System.IO.Path]::GetFullPath to get a fully qualified expanded path.

Since cd (Set-Location) doesn't change the process current working directory, simply passing a relative file name to a .NET API that doesn't understand PowerShell context, can have unintended side-effects, such as resolving to a path based off the initial working directory (not your current location).

What you do is you first qualify your path:

Join-Path (Join-Path $pwd fred\frog) '..\frag'

This yields (given my current location):

C:\WINDOWS\system32\fred\frog\..\frag

With an absolute base, it is now safe to call the .NET API GetFullPath:

[System.IO.Path]::GetFullPath((Join-Path (Join-Path $pwd fred\frog) '..\frag'))

Which gives you the fully qualified path, with the .. correctly resolved:

C:\WINDOWS\system32\fred\frag

It's not complicated either, personally, I disdain the solutions that depend on external scripts for this, it's simple problem solved rather aptly by Join-Path and $pwd (GetFullPath is just to make it pretty). If you only want to keep only the relative part, you just add .Substring($pwd.Path.Trim('\').Length + 1) and voila!

fred\frag

UPDATE

Thanks to @Dangph for pointing out the C:\ edge case.

5
  • The last step doesn't work if pwd is "C:\". In that case I get "red\frag". – dan-gph Mar 15 '13 at 1:13
  • @Dangph - Not sure I understand what you mean, the above appears to be working just fine? What version of PowerShell are you using? I'm using version 3.0. – John Leidegren Mar 15 '13 at 7:14
  • 1
    I mean the last step: cd c:\; "C:\fred\frag".Substring((pwd).Path.Length + 1) . It's not a big deal; just something to be aware of. – dan-gph Mar 16 '13 at 9:24
  • Ah, good catch, we could fix that by adding a trim call. Try cd c:\; "C:\fred\frag".Substring((pwd).Path.Trim('\').Length + 1). It's getting kinda long though. – John Leidegren Mar 16 '13 at 13:21
  • 2
    Or, just use: $ExecutionContext.SessionState.Path.GetUnresolvedProviderPathFromPSPath(".\nonexist\foo.txt") Works with non-existant paths too. "x0n" deserves the credit for this btw. As he notes, it resolves to PSPaths, not flilesystem paths, but if you're using the paths in PowerShell, who cares? stackoverflow.com/questions/3038337/… – Joe the Coder Apr 9 '16 at 20:09
108

You can expand ..\frag to its full path with resolve-path:

PS > resolve-path ..\frag 

Try to normalize the path using the combine() method:

[io.path]::Combine("fred\frog",(resolve-path ..\frag).path)
2
  • What if your path is C:\Windows vs C:\Windows\ the same path but two different results – Joe Phillips May 25 '12 at 17:01
  • 2
    The parameters for [io.path]::Combine are reversed. Better yet, use the native Join-Path PowerShell command: Join-Path (Resolve-Path ..\frag).Path 'fred\frog' Also note that, at least as of PowerShell v3, Resolve-Path now supports the -Relative switch for resolving to a path relative to the current folder. As mentioned, Resolve-Path only works with existing paths, unlike [IO.Path]::GetFullPath(). – mklement0 Mar 11 '13 at 23:41
26

You could also use Path.GetFullPath, although (as with Dan R's answer) this will give you the entire path. Usage would be as follows:

[IO.Path]::GetFullPath( "fred\frog\..\frag" )

or more interestingly

[IO.Path]::GetFullPath( (join-path "fred\frog" "..\frag") )

both of which yield the following (assuming your current directory is D:\):

D:\fred\frag

Note that this method does not attempt to determine whether fred or frag actually exist.

4
  • That's getting close, but when I try it I get "H:\fred\frag" even though my current directory is "C:\scratch", which is wrong. (It shouldn't do that according to the MSDN.) It gave me an idea however. I'll add it as an answer. – dan-gph Jan 31 '09 at 1:37
  • 9
    Your problem is that you need to set the current directory in .NET. [System.IO.Directory]::SetCurrentDirectory(((Get-Location -PSProvider FileSystem).ProviderPath)) – JasonMArcher Aug 16 '11 at 4:47
  • 2
    Just to state it explicitly: [IO.Path]::GetFullPath(), unlike PowerShell's native Resolve-Path, works with non-existent paths as well. Its downside is the need to sync .NET's working folder with PS' first, as @JasonMArcher points out. – mklement0 Mar 11 '13 at 23:45
  • Join-Path causes an exception if are referring to a drive that does not exist. – Tahir Hassan Jun 23 '17 at 11:49
22

The accepted answer was a great help however it doesn't properly 'normalize' an absolute path too. Find below my derivative work which normalizes both absolute and relative paths.

function Get-AbsolutePath ($Path)
{
    # System.IO.Path.Combine has two properties making it necesarry here:
    #   1) correctly deals with situations where $Path (the second term) is an absolute path
    #   2) correctly deals with situations where $Path (the second term) is relative
    # (join-path) commandlet does not have this first property
    $Path = [System.IO.Path]::Combine( ((pwd).Path), ($Path) );

    # this piece strips out any relative path modifiers like '..' and '.'
    $Path = [System.IO.Path]::GetFullPath($Path);

    return $Path;
}
1
  • Given all the different solutions, this one works for all different types of paths. As an example [IO.Path]::GetFullPath() doesn't correctly determine directory for a plain filename. – Jari Turkia Feb 7 '19 at 9:12
11

Any non-PowerShell path manipulation functions (such as those in System.IO.Path) will not be reliable from PowerShell because PowerShell's provider model allows PowerShell's current path to differ from what Windows thinks the process' working directory is.

Also, as you may have already discovered, PowerShell's Resolve-Path and Convert-Path cmdlets are useful for converting relative paths (those containing '..'s) to drive-qualified absolute paths but they fail if the path referenced does not exist.

The following very simple cmdlet should work for non-existant paths. It will convert 'fred\frog\..\frag' to 'd:\fred\frag' even if a 'fred' or 'frag' file or folder cannot be found (and the current PowerShell drive is 'd:').

function Get-AbsolutePath {
    [CmdletBinding()]
    param (
        [Parameter(Mandatory = $true, ValueFromPipeline = $true, ValueFromPipelineByPropertyName = $true)]
        [string[]]
        $Path
    )

    process {
        $Path | ForEach-Object {
            $PSCmdlet.SessionState.Path.GetUnresolvedProviderPathFromPSPath($_)
        }
    }
}
2
  • 2
    This doesn't work for non-existant paths where the drive letter doesn't exist e.g. I have no Q: drive. Get-AbsolutePath q:\foo\bar\..\baz fails even though it is a valid path. Well, depending on your definiton of a valid path. :-) FWIW, even the built-in Test-Path <path> -IsValid fails on paths rooted in drives that don't exist. – Keith Hill Feb 13 '11 at 3:42
  • 2
    @KeithHill In other words, PowerShell considers a path on a non-existent root to be invalid. I think that's fairly reasonable since PowerShell uses the root to decide what kind of provider to use when working with it. E.g., HKLM:\SOFTWARE is a valid path in PowerShell, referring to the SOFTWARE key in the Local Machine registry hive. But to figure out if it's valid, it needs to figure out what the rules for registry paths are. – jpmc26 Nov 26 '18 at 20:00
3

This library is good: NDepend.Helpers.FileDirectoryPath.

EDIT: This is what I came up with:

[Reflection.Assembly]::LoadFrom("path\to\NDepend.Helpers.FileDirectoryPath.dll") | out-null

Function NormalizePath ($path)
{
    if (-not $path.StartsWith('.\'))  # FilePathRelative requires relative paths to begin with '.'
    {
        $path = ".\$path"
    }

    if ($path -eq '.\.')  # FilePathRelative can't deal with this case
    {
        $result = '.'
    }
    else
    {
        $relPath = New-Object NDepend.Helpers.FileDirectoryPath.FilePathRelative($path)
        $result = $relPath.Path
    }

    if ($result.StartsWith('.\')) # remove '.\'. 
    {
        $result = $result.SubString(2)
    }

    $result
}

Call it like this:

> NormalizePath "fred\frog\..\frag"
fred\frag

Note that this snippet requires the path to the DLL. There is a trick you can use to find the folder containing the currently executing script, but in my case I had an environment variable I could use, so I just used that.

7
  • I don't know why that got a downvote. That library really is good for doing path manipulations. It's what I ended up using in my project. – dan-gph Mar 1 '09 at 1:16
  • Minus 2. Still puzzled. I hope that people realize that it's easy to use .Net assemblies from PowerShell. – dan-gph May 28 '11 at 3:39
  • This doesn't seem like the best solution, but it is perfectly valid. – JasonMArcher Aug 10 '11 at 2:31
  • @Jason, I don't remember the details, but at the time it was the best solution because it was the only one that solved my particular problem. It's possible however that since then another, better solution has come along. – dan-gph Aug 16 '11 at 2:53
  • 2
    having a 3rd party DLL is a big drawback to this solution – Louis Kottmann Mar 14 '13 at 13:58
3

If the path includes a qualifier (drive letter) then x0n's answer to Powershell: resolve path that might not exist? will normalize the path. If the path doesn't include the qualifier, it will still be normalized but will return the fully qualified path relative to the current directory, which may not be what you want.

$p = 'X:\fred\frog\..\frag'
$ExecutionContext.SessionState.Path.GetUnresolvedProviderPathFromPSPath($p)
X:\fred\frag

$p = '\fred\frog\..\frag'
$ExecutionContext.SessionState.Path.GetUnresolvedProviderPathFromPSPath($p)
C:\fred\frag

$p = 'fred\frog\..\frag'
$ExecutionContext.SessionState.Path.GetUnresolvedProviderPathFromPSPath($p)
C:\Users\WileCau\fred\frag
1

This gives the full path:

(gci 'fred\frog\..\frag').FullName

This gives the path relative to the current directory:

(gci 'fred\frog\..\frag').FullName.Replace((gl).Path + '\', '')

For some reason they only work if frag is a file, not a directory.

2
  • 1
    gci is an alias for get-childitem. The children of a directory are its contents. Replace gci with gi and it should work for both. – zdan Jan 31 '09 at 2:43
  • 2
    Get-Item worked nicely. But again, this approach requires that the folders exist. – Peter Lillevold May 15 '12 at 9:58
1

Create a function. This function will normalize a path that does not exists on your system as well as not add drives letters.

function RemoveDotsInPath {
  [cmdletbinding()]
  Param( [Parameter(Position=0,  Mandatory=$true)] [string] $PathString = '' )

  $newPath = $PathString -creplace '(?<grp>[^\n\\]+\\)+(?<-grp>\.\.\\)+(?(grp)(?!))', ''
  return $newPath
}

Ex:

$a = 'fooA\obj\BusinessLayer\..\..\bin\BusinessLayer\foo.txt'
RemoveDotsInPath $a
'fooA\bin\BusinessLayer\foo.txt'

Thanks goes out to Oliver Schadlich for help in the RegEx.

1
  • Note this does not work for paths like somepaththing\.\filename.txt as it keeps that single dot – Mark Schultheiss Sep 17 '18 at 19:49
0

If you need to get rid of the .. portion, you can use a System.IO.DirectoryInfo object. Use 'fred\frog..\frag' in the constructor. The FullName property will give you the normalized directory name.

The only drawback is that it will give you the entire path (e.g. c:\test\fred\frag).

0

The expedient parts of the comments here combined such that they unify relative and absolute paths:

[System.IO.Directory]::SetCurrentDirectory($pwd)
[IO.Path]::GetFullPath($dapath)

Some samples:

$fps = '.', 'file.txt', '.\file.txt', '..\file.txt', 'c:\somewhere\file.txt'
$fps | % { [IO.Path]::GetFullPath($_) }

output:

C:\Users\thelonius\tests
C:\Users\thelonius\tests\file.txt
C:\Users\thelonius\tests\file.txt
C:\Users\thelonius\file.txt
c:\somewhere\file.txt
-1

Well, one way would be:

Join-Path 'fred\frog' '..\frag'.Replace('..', '')

Wait, maybe I misunderstand the question. In your example, is frag a subfolder of frog?

1
  • "is frag a subfolder of frog?" No. The .. means go up one level. frag is a subfolder (or a file) in fred. – dan-gph Jan 31 '09 at 1:48

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