Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

So I have a group of files with the following file names:

52 39 118 070 13200 5480.txt
83 39 010 392 01000 9970.txt
37 39 880 163 17802 0473.txt

I am trying to rename them to something like:

2012 File Description (52-39-118-070-13200-5480).txt
2012 File Description (83-39-010-392-01000-9970).txt
2012 File Description (37-39-880-163-17802-0473).txt

But, I can't figure out what the corresponding regular expression would be, and how to code it into PowerShell. I see tons of examples to remove spaces or underscores, but nothing to add to a string.

Please note that "2012 File Description" would be constant for all files being renamed. The only thing that I would like to change is have the original file name moved into the parentheses and change the spaces to dashes.

Thank you.

share|improve this question
3  
If all you're doing is adding a constant phrase to the front of each, wrapping the original name in parentheses, and all have the .txt extension, plain old string concatenation would work much better than a regex (and be a lot easier to figure out how to do). –  Ken White Nov 22 '11 at 13:29

3 Answers 3

up vote 1 down vote accepted
"52 39 118 070 13200 5480.txt" -replace "(.*)(\.txt)",'2012 File Description ($1)$2'

gives:

2012 File Description (52 39 118 070 13200 5480).txt

Important: the replacement string is using single quotes, because the dollar sign "$" character needs to be escaped if it appears in a string that is quoted with double quotes. Alternatively I could have written:

"52 39 118 070 13200 5480.txt" -replace "(.*)(\.txt)","2012 File Description (`$1)`$2"
share|improve this answer
    
Thank you jon Z. That worked perfectly! That said, how could I change the whitespaces to dashes? ls | %{ren $_ $($_.name -replace '\s', '-')} I was able to tear that away from another response and modify it. But how could I nest this function into the one that you described? In the meantime, I'll run that one first followed by yours. –  Addikt Nov 22 '11 at 13:39
    
("52 39 118 070 13200 5480.txt" -replace "(.*)(\.txt)",'2012 File Description ($1)$2') -replace "\s",'_' –  jon Z Nov 22 '11 at 13:43
    
This replaces spaces afterwards. You end up with 2012_File_Description_(52_39_118_070_13200_5480).txt. –  Addikt Nov 22 '11 at 14:16
    
nice catch - try: ("52 39 118 070 13200 5480.txt" -replace "\s",'_') -replace "(.*)(\.txt)",'2012 File Description ($1)$2' –  jon Z Nov 22 '11 at 14:19
    
So, two more quick questions. Why are you using " when matching a string, but ' when replacing a string? Also, does $1 and $2 work outside the parentheses? Can I call those variables from outside, and will they carry through to the next -replace command? I suspect no...Sorry about the structure. I can't get line breaks working! –  Addikt Nov 22 '11 at 14:28

You could do it with a one-liner (piping directly to Rename-Item), but for the sake of simplicity I used the Foreach-Object cmdlet:

Get-ChildItem -Filter *.txt | Foreach-Object{   
   $NewName = '2012 File Description ({0}){1}' -f ($_.BaseName -replace '\s','-'),$_.Extension
   Rename-Item -Path $_.FullName -NewName $NewName 
}
share|improve this answer

You don't need a regex for this. As Ken says in the comments, you can just use concatenation (which is super easy in Powershell).

Something like:

gci Y:\MyFolder -filter '*.txt' | % {rename-item -path $_.fullname -newname "2012 File Description`($($_.basename)`).txt"
share|improve this answer
    
Interesting. I didn't know about this, but I think that regex would still have wider application than this, would it not? I do have one question for you though, why do you have the first $ before ($_ ? I've been seeing that everywhere and I don't understand it. If I try to take it out, I get the same result. –  Addikt Nov 22 '11 at 13:49
    
The $ in a double-quoted string indicates to powershell to interpret what follows as a variable or expression. You need to use this before returning properties inside strings enclosed in parentheses. –  JNK Nov 22 '11 at 13:54
    
So when starting off my command with "ls | %{ren $_ $($_.name" why does it work without it? What would be returned if I didn't have that first $, string? I assume that the rename command is taking whatever is contained in the variable $_ and then $_.name would remove the name preceding the extension, after which you can further modify or match the output. But I don't get the logic as to why it works BOTH with and without the $. Also, how do I add line breaks? It says on the FAQ that it's a return and two spaces...not working. =/ –  Addikt Nov 22 '11 at 14:05

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.