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I have a small problem trying to unzip a file using the 7za command-line utility in Powershell.

I set the $zip_source variable to the zip file's path and the $unzip_destination to the desired output folder.

However the command-line usage of 7za needs arguments specified like this:

7za x -y <zip_file> -o<output_directory>

So my current call looks like this:

& '7za' x -y "$zip_source" -o$unzip_destination

Due to the fact that there can be no space between -o and the destination it seems that PowerShell will not expand the $unzip_destination variable, whereas $zip_source is expanded.

Currently the program simply extracts all the files into the root of C:\ in a folder named $unzip_destination. Setting different types of quotes around the variable won't work neither:

-o"$unzip_destination" : still extracts to C:\$unzip_destination
-o'$unzip_destination' : still extracts to C:\$unzip_destination
-o $unzip_destination  : Error: Incorrect command line

Is there any way to force an expansion before running the command?

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3 Answers

up vote 2 down vote accepted

try like this:

-o$($unzip_destination)
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There can be no space between -o and the unzip_destination –  jon Z May 7 '12 at 14:51
    
When I leave out the space after the -o that works - thanks. Does $() start some kind of subshell in PowerShell (sorry I am new to Windows scripting from a Unix-background). –  BergmannF May 7 '12 at 14:51
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$() is called a subexpression, and it causes everything inside the parenths to be returned as one value: $("Hello, " + "world!") returns literally: Hello, world! These are useful when wanting the output of some expression to be translated to a string in the middle of another string. –  SpellingD May 7 '12 at 21:01
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Try this:

& '7za' x -y "$zip_source" "-o$unzip_destination" 
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Works as well - I guess I should have kept on experimenting with quotes. –  BergmannF May 7 '12 at 14:52
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This should work:

& '7za' x -y $zip_source -o${unzip_destination} 
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