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I am trying to run the process and wait until it is closed. When I run VSIXInstaller like below it works:

$pathToTheExtension = $path + "VS2012.Ext.vsix"
VSIXInstaller.exe $pathToTheExtension

But when I run it through the Start-Process VSIXInstaller does not get $pathToTheExtension as an argument.

$pathToTheExtension = $path + "VS2012.Ext.vsix"
$result = $(Start-Process -filePath "VSIXInstaller.exe" -argumentList $pathToTheExtension -Wait)

How should I pass the path to the vsix file through the Start-Process?

Below is the result of running Start-Process.

enter image description here

EDIT

I check command line parameter for the running VSIXInstaller process from the Process explorer and it seems correct for me.

"C:\Program Files (x86)\Microsoft Visual Studio 11.0\Common7\IDE\VSIXInstaller.exe" "C:\VS2012.Ext.vsix"
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1 Answer 1

up vote 1 down vote accepted

You need to surround the argument value with quotes.

$pathToTheExtension = '"{0}VS2012.Ext.vsix"' -f $path;
$result = Start-Process -FilePath "VSIXInstaller.exe" -ArgumentList $pathToTheExtension -Wait -PassThru;
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Unfortunately it leads to the same result –  k0stya Jul 16 '12 at 21:52
    
Does $path have a trailing slash? If not, you'll have to add one between the file path and the file name (right after the {0}). –  Trevor Sullivan Jul 16 '12 at 22:01
    
$path is valid because I am able to run it using VSIXInstaller.exe $pathToTheExtension –  k0stya Jul 16 '12 at 22:02
    
It works. You are right, I should correct quotes. Thanks! –  k0stya Jul 16 '12 at 22:07

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