52

I'm trying to use 7-Zip to backup some files inside a Powershell (v2) script.

I have:

$zipPath = "C:\Program Files\7-Zip\7z.exe"
[Array]$zipArgs = "-mx=9 a", "`"c:\BackupFolder\backup.zip`"", "`"c:\BackupFrom\backMeUp.txt`""

&$zipPath $zipArgs;

But when I run this I get:

7-Zip [64] 9.20  Copyright (c) 1999-2010 Igor Pavlov  2010-11-18


Error:
Incorrect command line

Writing this to the screen I get:

C:\Program Files\7-Zip\7z.exe -mx=9 a "c:\BackupFolder\backup.zip" "c:\BackupFrom\backMeUp.txt"

So I assumed that I needed to put quotes around the path to 7z.exe, that gave me:

$zipPath = "C:\Program Files\7-Zip\7z.exe"
$zipPath = " `"$zipPath`" "
[Array]$zipArgs = "-mx=9 a", "`"c:\BackupFolder\backup.zip`"", "`"c:\BackupFrom\backMeUp.txt`""

&$zipPath $zipArgs;     

But then I get the following error:

    The term '"C:\Program Files\7-Zip\7z.exe"' is not recognized as the name of a cmdlet, function, script file
, or operable program. Check the spelling of the name, or if a path was included, verify that the path is c
orrect and try again.
At C:\BackupScript\Backup.ps1:45 char:22
+                     & <<<< `"$zipPath`" $zipArgs;                    
    + CategoryInfo          : ObjectNotFound: ("C:\Program Files\7-Zip\7z.exe":String) [], CommandNotFound 
   Exception
    + FullyQualifiedErrorId : CommandNotFoundException

Writing it out gives me:

"C:\Program Files\7-Zip\7z.exe" -mx=9 a "c:\BackupFolder\backup.zip" "c:\BackupFrom\backMeUp.txt"

Which works as expected when pasting straight into a command window. I have been trying to figure this out for a while, but assume I am missing something (probably quite obvious). Can anybody see what I need to do to make this run?

4
  • 2
    An article I wrote recently may be helpful: Running Executables in PowerShell. Try & "C:\Program Files\7-Zip\7z.exe" "-mx=9" a C:\BackupFolder\Backup.zip C:\BackupFrom\backMeUp.txt. Commented Aug 13, 2014 at 14:37
  • Cheers, that's an interesting article. I'll need to have a proper read later. I think that you may have the answer. Whereas I had "-mx=9 a" what I needed was "-mx=9" a. I can't make it work with $zipArgs variable, but it does work with & "$zipPath" "-mx=9" a "c:\BackupFolder\backup.zip" "c:\BackupFrom\backMeUp.txt"
    – IGGt
    Commented Aug 13, 2014 at 15:03
  • Correct; to prevent PowerShell from interpreting -mx=9 as an operator, use quotes or escape the parameter with a backtick (as explained in the article). Commented Aug 13, 2014 at 15:20
  • Try &$zipPath @zipArgs
    – groser
    Commented Oct 1, 2020 at 6:55

8 Answers 8

87

Found this script and adapted it to your needs. Can you please try:

$7zipPath = "$env:ProgramFiles\7-Zip\7z.exe"

if (-not (Test-Path -Path $7zipPath -PathType Leaf)) {
    throw "7 zip executable '$7zipPath' not found"
}

Set-Alias Start-SevenZip $7zipPath

$Source = "c:\BackupFrom\backMeUp.txt"
$Target = "c:\BackupTo\backup.zip"

Start-SevenZip a -mx=9 $Target $Source
4
  • Cheers for that. I got that working. I'll need to spend some time with that syntax is I'm not familiar with it (it's always good to learn new ways of doing things). cheers
    – IGGt
    Commented Aug 13, 2014 at 15:06
  • Nice cheeky bit of alias work there which really helps make calls to 7z much easier. Thanks! Commented Oct 8, 2015 at 13:05
  • 1
    While I am not suggesting that aliases are always a good thing, one could also call it 7z. set-alias 7z "$env:ProgramFiles\7-Zip\7z.exe"
    – lit
    Commented Oct 9, 2016 at 12:47
  • Docs at sevenzip.osdn.jp/chm/cmdline/commands/add.htm. They helped me figured out that I needed to cd into the directory to avoid parent folders being copied to the zip.
    – Negatar
    Commented May 7, 2021 at 21:50
16

put "&" special character before 7z command. Example: &7z ...

0
15

Simply prefix the command with an ampersand

& "C:\Program Files\7-Zip\7z.exe" -mx=9 a "c:\BackupFolder\backup.zip" "c:\BackupFrom\backMeUp.txt"
3

Maybe a simpler solution is to run 7-zip on your Powershell via cmd:

cmd /c 7za ...
1
2

If you adapt it correctly: Dont forget the "" on "$Target" and avoid $7zipPath in c:\programm files with a space in the path

Set-Alias 7zip $7zipPath

$Source = "c:\BackupFrom\backMeUp.txt"
$Target = "c:\BackupFolder\backup.zip"

7zip a -mx=9 "$Target" "$Source"

or

7z a "$ArchiveName" -t7z '@listfile.txt'
1
1
C:\'Program files'\7-Zip\7z.exe a '$archiveFile'  -Path '$dest'

where:

  • archiveFile = name of the archive file name.
  • dest = destination folder.
1
  • That single quotation marks comes in clutch
    – tno2007
    Commented Jun 23 at 10:22
0

try to use parameter -file to specify the location of program or script:

-file "C:\Program Files\someting.exe"

0

The reason for the error is because each command line option needs to be a separate element in the array, so

[Array]$zipArgs = "-mx=9", "a", "c:\BackupFolder\backup.zip", "c:\BackupFrom\backMeUp.txt"

instead of

[Array]$zipArgs = "-mx=9 a", "c:\BackupFolder\backup.zip", "c:\BackupFrom\backMeUp.txt"

Note, that the "a" needs to be a separate element. Also the filenames do not need embedded quotes in them (they might if they included spaces, I'm not sure).

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