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I have a script that basically writes down each file and folder on a remote share and dumps it to a csv. Everything works wonderfully (there is still a lot of work to be done on the script itself tho) except for the last part.

        import-csv -path ($savelocation + '\' + $filename) -Delimiter ',' | ForEach-Object { 

            if ($audioarray -contains $_.Extension) {
                $_.MediaType = 'Audio'
                $_
            } elseif ($videoarray -contains $_.Extension) {
                $_.MediaType = 'Video'
                $_
            } elseif ($otherarray -contains $_.Extension) {
                $_.MediaType = 'Other'
                $_
            } else {
                $_
            }
        } | Export-Csv -Path ($savelocation + '\' + $filename) -Force -Delimiter ',' -NoTypeInformation

If I change the path to a static location something like \\servername\share\testfolder it works fine. But if I use the above or even if I join the ($savelocation + '\' + $filename) into something like $filename it still just writes an empty file.

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Do Write-Host ($savelocation + '\' + $filename) ... What do you get? –  Andy Arismendi May 25 '12 at 17:13
    
C:\Temp\NFDW1004-C$Progra~1-2012-5-25.csv - I also use the exact same naming convention twice before to write the file originally and then to add an extra csv header MediaType. –  MrStatic May 25 '12 at 17:17

1 Answer 1

up vote 3 down vote accepted

Sorry, but it won't work for any path. Reason is simple - you read/write to the same file. It would work, if you would read into variable, and work on data in memory.

IMO having a path (elements) stored in variable have nothing to do with it. BTW: you can join paths with Join-Path cmdlet... :)

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And of course its the easiest answer that was staring me in the face. It was indeed the fact the file is the same file. I will just dump to a temp file and delete and rename it. –  MrStatic May 25 '12 at 19:39

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