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Firstly not sure if this is the right place for a question like this, but here goes.

I have a folder structure of

parentfolder/folder1/10-31-2010/file1.pdf

        /folder2/10-31-2010/filey.pdf
        /folder3/10-31-2010/filex.pdf
        /foldern/10-31-2010/filen.pdf

I need to rename the date to 2010-10-31.

This is a once off thing that will only every happen on one the one parentfolder. But well over 10000 folders to apply this to.

From googling I see there are many file renaming tools, but I am not allowed to install any software on the server, nor am I allowed to move the folders off the server.

Any help would be appreciated.

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I dont see any c#/java tag; you want to do this via batch file? –  KMån Nov 3 '10 at 7:53
    
@KMan, Correct. If possible. –  Kamal Nov 3 '10 at 10:00
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2 Answers 2

up vote 0 down vote accepted

If you want to do that from a .bat file, you can use the DOS ren command.

ren C:\folder2\10-31-2010 C:\folder2\2010-10-31

This answer has an script in it that might help you.

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I tried the solution from Razor 2.3 in the article you referenced as is. Because of the paramters. Anyway, I created the bat file and put it in my parentfolder and ran it to replace "10-31-2010" with "2010-10-31". I received an error that the file cannot be moved because it was being used by another process. But the files, nor folders were not open anywhere. –  Kamal Nov 3 '10 at 11:28
    
Are you able to rename the same using commandline? –  KMån Nov 4 '10 at 6:32
    
Just tried C:\Test>ren c:\Test\A0002843 c:\Test\test and got a syntax error –  Kamal Nov 4 '10 at 7:38
    
Try wrapping it in a "(quotation). Both ren and move works fine. Just ran a test. Use ren: C:\ren folder1 folder11; Use move: C:\move folder1 folder11; Let me know error description if you come across any. Note that folder1 contains a file within it. –  KMån Nov 4 '10 at 8:31
    
C:\Test>ren: "c:\test\A0002843" "c:\test\test1" The syntax of the command is incorrect. - I'm missing something obvious - the folder does exist. –  Kamal Nov 4 '10 at 12:25
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Your best bet is using shell scripts.

!/bin/bash
FOLDER=/path/to/*/
FILES=$(find $FOLDER -name '*-*-*')
for f in $FILES
do
    o=${f%/*}
    p=${f##*/}
    mv $f $o/$(echo $p | awk -F"-" '{ print $3"-"$1"-"$2 }')
done

That still uses mv and awk, hope your server have both on it.

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No it does not. It is a windows 2003 server. I have no rights to install anything. –  Kamal Nov 3 '10 at 9:59
    
Ooops I was inclined to read / paths as UNIX paths. –  itsnotvalid Nov 3 '10 at 10:19
    
Complete mind melt moment as i typed that. –  Kamal Nov 3 '10 at 10:46
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