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I Made A Batch File Which Would Open In Notepad++ From The CURRENT DIRECTORY where the batch file is located(with run.. feature in notepad++), But I Want batch file to open on the folder where i have opened the file. Example: My Batch File Is Located In D:\Projects\Java\Executor Java.bat I Have Opened A File Of .java Extension in D:\Java\Files I Want to open at file location,i.e. D:\Java\Files My batch file Looks like this:

@ECHO OFF
ECHO                                        WELCOME TO EXECUTOR
ECHO                                                         -Garvit Joshi(garvitjoshi9@gmail.com)
ECHO                                                          USER:%USERNAME%
cd /d "%~dp0"
:first
ECHO LOOKING FOR FILES IN:"%~dp0"
set /p "input=Enter The File You Want To Execute:"
ECHO ===============================
javac %input%.java
ECHO ===============================
set /p "input=Enter The Class You Want To Run:"
ECHO ===============================
ECHO OUTPUT:
ECHO ===============================
java %input%
ECHO ===============================
pause
ECHO =======================================================
ECHO *******************************************************
ECHO =======================================================
goto first
  • 2
    Do you realize, that cd /d "%~dp0" changes the working folder to the folder where the batch file resides? – Stephan Feb 25 at 14:29
  • Yes !! i Am Not Getting the appropriate snippet to add on that line so that batch file opens up in current working directory. – Garvit Joshi Feb 25 at 15:11
  • The current working folder is %cd%. But no need to change to that, because that is already the working folder. – Stephan Feb 25 at 15:34
  • If I Use %cd% the directory becomes c:\Program Files\Notepad++ – Garvit Joshi Feb 25 at 15:38
  • sorry, your description is a bit confusing. Do you want to change to D:\Java\Files? – Stephan Feb 25 at 15:41
2

You'll need to pass the path as a parameter from Notepad++ in the 'Run...' dialog, e.g:

cmd /c "D:\Projects\Java\ExecutorJava.bat $(CURRENT_DIRECTORY)"

..then have your batch file use the parameter with something like:

cd /d "%1"

(In this example, have removed the space from the "Executor Java.bat" filename for convenience)

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