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I am using Powershell 2.0. I have file names like my_file_name_01012013_111546.xls. I am trying to get my_file_name.xls. I have tried:

.*(?=_.{8}_.{6})

which returns my_file_name. However, when I try

.*(?=_.{8}_.{6}).{3}

it returns my_file_name_01.

I can't figure out how to get the extension (which can be any 3 characters. The time/date part will always be _ 8 characters _ 6 characters.

I've looked at a ton of examples and tried a bunch of things, but no luck.

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Are you sure you'll never have, say, .xlsx files and need a 4-character extension? –  Inductiveload Mar 5 '13 at 14:25

4 Answers 4

up vote 0 down vote accepted

try this ( not tested), but it should works for any 'my_file_name' lenght , any lenght of digit and any kind of extension.

"my_file_name_01012013_111546.xls" -replace '(?<=[\D_]*)(_[\d_]*)(\..*)','$2'

non regex solution:

$a = "my_file_name_01012013_111546.xls"

$a.replace( ($a.substring( ($a.LastIndexOf('.') - 16 ) , 16 )),"") 
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That works. I have no idea what the $2 does. Is that getting the extension? –  user1921849 Mar 5 '13 at 15:19
    
@user1921849 yes, exstension is backreferenced with $2, $1 is the part with digit, the first part (non digit) isn't captured while in the look-ahead –  CB. Mar 5 '13 at 15:22
    
It actually doesn't work entirely. If I have a file like "my_file_250_01012013_111546.xls" it cuts off the _250. –  user1921849 Mar 7 '13 at 19:22
    
@user1921849 this is not a file name like in your example.. it has digit in the name part. I think you have too many different name type for using regex. Edit your question and add all differents name kind, Any way try this: -replace '(?<=.*_.*_.*)(_[\d_]*)(\..*)','$2' –  CB. Mar 7 '13 at 19:26
    
It looks like this works: '(?<=[\D_]*)([\d]{8})([\d]{6})(\..*)','$3' –  user1921849 Mar 7 '13 at 19:30

If you just want to find the name and extension, you probably want something like this: ^(.*)_[0-9]{8}_[0-9]{6}(\..{3})$

my_file_name will be in backreference 1 and .xls in backreference 2.

If you want to remove everything else and return the answer, you want to substitute the "numbers" with nothing: 'my_file_name_01012013_111546.xls' -replace '_[0-9]{8}_[0-9]{6}' ''. You can't simply pull two bits (name and extension) of the string out as one match - regex patterns match contiguous chunks only.

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The original regex you specified returns the maximum match that has 14 characters after it (you can change to (?=.{14}) who is the same).

Once you've changed it, it returns the maximum match that has 14 characters after it + the next 3 characters. This is why you're getting this result.

The approach described by Inductiveload is probably better in case you can use backreferences. I'd use the following regex: (.*)[_\d]{16}\.(.*) Otherwise, I'd do it in two separate stages

  1. get the initial part
  2. get the extension
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The reason you get my_filename_01 when you add that is because lookaheads are zero-width. This means that they do not consume characters in the string.

As you stated, .*(?=_.{8}_.{6}) matches my_file_name because that string is is followed by something matching _.{8}_.{6}, however once that match is found, you've only consumed my_file_name, so the addition of .{3} will then consume the next 3 characters, namely _01.

As for a regex that would fit your needs, others have posted viable alternatives.

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