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we used Regex in batch by using following command,

Dir "C:\Test\Res345_45664_1335" /s /b /a:-d | findstr /R "[(\d+)_(\d+)_(\d+)]" > filelist.txt

The "C:\Test\Res345_45664_1335" directory contains following files,

Res345_45664_1335.txt
Output.txt
list.txt

We need file that’s in the format But the above dir command with regex displaying all files present in the "C:\Test\Res345_45664_1335" directory. Because "C:\Test\Res345_45664_1335" directory contains the same format "Res345_45664_1335". But We need files only(with full path).

Thanks.

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3 Answers 3

\d, () and + are not a valid meta characters in findstr. See findstr /? fore more advanced help. You should substitute it with [0-9][0-9]* .

Dir "C:\Test\Res345_45664_1335" /s /b /a:-d | findstr /ER "[0-9][0-9]*_[0-9][0-9]*_[0-9][0-9]*.txt" > filelist.txt
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Do the files have extensions?

Dir "c:\test\Res345_45664_1335" /s /b /a:-d | findstr /R "[0-9]*_[0-9]*_[0-9]*\."
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Good point: why not filter by *.TXT ? –  Endoro Jul 8 '13 at 8:21

try

Dir /s /b /a:-d *_*_*

Not really sure what you mean by "the format"


Ah - filename in format string_string_string...

FOR /f "delims=" %%i IN ('dir /s /b /a-d *_*_*') DO ECHO "%%~ni"|FINDSTR /r "..*_..*_..*" >nul&IF NOT ERRORLEVEL 1 ECHO %%i

(that's as a batch line - reduce %% to % to run from the prompt)

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