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Following http://stackoverflow.com/questions/659647/how-to-get-folder-path-from-file-path-with-cmd

I want to strip the path (without the filename) from a variable. following the logic of the methods discussed above I would like to use batch bellow, which doesn't work. any takers? possible?

set cpp="C:\temp\lib.dll"
echo %cpp% 
"C:\temp\lib.dll"
echo %~dpcpp
"C:\temp\" > doesn't work
share|improve this question
up vote 0 down vote accepted

Tested: demo.bat

@echo off
echo "Setting cpp"
set cpp="C:\temp\lib.dll"

echo "Calling JustGetPath"
call :JustGetPath %cpp%

echo "Returning result"
echo %_RESULT%

echo "Quitting"
goto :eof

:JustGetPath
echo "  +JustGetPath( %1 )"
set _RESULT=%~dp1

echo "  -JustGetPath()"
GOTO :eof

:eof

Outputs the following when run:

"Setting cpp"
"Calling JustGetPath"
"  +JustGetPath( C:\temp\lib.dll )"
"  -JustGetPath()"
"Returning result"
C:\temp\
"Quitting"

See also: http://ss64.com/nt/call.html

share|improve this answer

You can use the for command, like so:

set cpp="C:\temp\lib.dll" 

:: Print the full path and file name:
echo %cpp%  

:: Print just the path:
for %%P in (%cpp%) do echo %%~dpP
share|improve this answer
    
I tried this without success - admittedly it was on WINE on Linux so perhaps the interpreter hadn't been fully compatible with Microsoft Windows... – PP. Jun 3 '10 at 15:17
    
@PP: Hmmmm, this works on my XP, Windows 7, Server 2003 and Server 2008 boxes. – Patrick Cuff Jun 3 '10 at 16:29
    
works on win7, i like this but learning the CALL way was a mind opener for me, so i give it the V – yoshco Jun 6 '10 at 8:29

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