Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I have a batch file with following content

echo %~dp0
CD Arvind
echo %~dp0

Even after changing directory value if ~dp0 is same. However if I run this batch file from CSharp program, the value of ~dp0 changes after CD. It now points to new directory. Following is the code that I use:

Directory.SetCurrentDirectory(//Dir where batch file resides);
ProcessStartInfo ProcessInfo;
Process process = new Process();
ProcessInfo = new ProcessStartInfo("mybatfile.bat");
ProcessInfo.UseShellExecute = false;
ProcessInfo.RedirectStandardOutput = true;
process = Process.Start(ProcessInfo);
process.WaitForExit();
ExitCode = process.ExitCode;
process.Close();

Why is there a difference in output on executing same script by different ways? Am I missing some thing here?

share|improve this question
5  
You can replicate the behaviour when you run the batch from cmd via "mybatfile.cmd" (yes, with quotes). That's exactly the invocation you get when running via Process.Start as you can verify by echoing %0 as well. – Joey Aug 27 '12 at 12:03
    
Thanks a loy Joey, your suggestions did the trick. It works for me now. – sunny days Aug 27 '12 at 12:34
    
Well, it was just an observation; I still cannot explain the behaviour :-) – Joey Aug 27 '12 at 12:37
    
This is also happening for me. Under certain circumstances (that I haven't completely pinned down), if I launch "xyz.bat" from the commandline, the "%~dp0" value works OK, but if I launch the same bat file via Java ProcessBuilder "%~dp0" gives the CWD. Using "cmd /c xyz.bat" seems to fix it, but why? – Rich Nov 10 '14 at 13:45

Joey's suggestion helped. Just by replacing

ProcessInfo = new ProcessStartInfo("mybatfile.bat"); 

with

ProcessInfo = new ProcessStartInfo("cmd", "/c " + "mybatfile.bat");

did the trick.

share|improve this answer
5  
Still, I would love to understand what's going on – KooKiz Aug 27 '12 at 12:37

This question started the discussion on this point, and some testing was done to determine why. So, after some debugging inside cmd.exe ... (this is for a 32 bit Windows XP cmd.exe but as the behaviour is consistent on newer system versions, probably the same or similar code is used)

Inside Jeb's answer is stated

It's a problem with the quotes and %~0.
cmd.exe handles %~0 in a special way

and here Jeb is correct.

Inside the current context of the running batch file there is a reference to the current batch file, a "variable" containing the full path and file name of the running batch file.

When a variable is accessed, its value is retrieved from a list of available variables but if the variable requested is %0, and some modifier has been requested (~ is used) then the data in the running batch reference "variable" is used.

But the usage of ~ has another effect in the variables. If the value is quoted, quotes are removed. And here there is a bug in the code. It is coded something like (here simplified assembler to pseudocode)

value = varList[varName]
if (value && value[0] == quote ){
    value = unquote(value)
} else if (varName == '0') {
    value = batchFullName
}

And yes, this means that when the batch file is quoted, the first part of the if is executed and the full reference to the batch file is not used, instead the value retrieved is the string used to reference the batch file when calling it.

What happens then? If when the batch file was called the full path was used, then there will be no problem. But if the full path is not used in the call, any element in the path not present in the batch call needs to be retrieved. This retrieval assumes relative paths.

A simple batch file (test.cmd)

@echo off
echo %~f0

When called using test (no extension, no quotes), we obtain c:\somewhere\test.cmd

When called using "test" (no extension, quotes), we obtain c:\somewhere\test

In the first case, without quotes, the correct internal value is used. In the second case, as the call is quoted, the string used to call the batch file ("test") is unquoted and used. As we are requesting a full path, it is considered a relative reference to something called test.

This is the why. How to solve?

From the C# code

  • Don't use quotes : cmd /c batchfile.cmd

  • If quotes are needed, use the full path in the call to the batch file. That way %0 contains all the needed information.

From the batch file

Batch file can be invoked in any way from any place. The only reliable way to retrieve the information of the current batch file is to use a subroutine. If any modifier (~) is used, the %0 will use the internal "variable" to obtain the data.

@echo off
    setlocal enableextensions disabledelayedexpansion

    call :getCurrentBatch batch
    echo %batch%

    exit /b

:getCurrentBatch variableName
    set "%~1=%~f0"
    goto :eof

This will echo to console the full path to the current batch file independtly of how you call the file, with or without quotes.

note: Why does it work? Why the %~f0 reference inside a subroutine return a different value? The data accessed from inside the subroutine is not the same. When the call is executed, a new batch file context is created in memory, and the internal "variable" is used to initialize this context.

share|improve this answer

I'll try to explain why this behaves so oddly. A rather technical and long-winded story, I'll try to keep it condense. Starting point for this problem is:

   ProcessInfo.UseShellExecute = false;

You'll see that if you omit this statement or assign true that it works as you expected.

Windows provides two basic ways to start programs, ShellExecuteEx() and CreateProcess(). The UseShellExecute property selects between those two. The former is the "smart and friendly" version, it knows a lot about the way the shell works for example. Which is why you can, say, pass the path to an arbitrary file like "foo.doc". It knows how to look up the file association for .doc files and find the .exe file that knows how to open foo.doc.

CreateProcess() is the low-level winapi function, there's very little glue between it and the native kernel function (NtCreateProcess). Note the first two arguments of the function, lpApplicationName and lpCommandLine, you can easily match them to the two ProcessStartInfo properties.

What is not so visible that CreateProcess() provides two distinct ways to start a program. The first one is where you leave lpApplicationName set to an empty string and use lpCommandLine to provide the entire command line. That makes CreateProcess friendly, it automatically expands the application name to the full path after it has located the executable. So, for example, "cmd.exe" gets expanded to "c:\windows\system32\cmd.exe". But it does not do this when you use the lpApplicationName argument, it passes the string as-is.

This quirk has an effect on programs that depend on the exact way the command line is specified. Particularly so for C programs, they assume that argv[0] contains the path to their executable file. And it has an effect on %~dp0, it too uses that argument. And flounders in your case since the path it works with is just "mybatfile.bat" instead of, say, "c:\temp\mybatfile.bat". Which makes it return the current directory instead of "c:\temp".

So what your are supposed to do, and this is totally under-documented in the .NET Framework documentation, is that it is now up to you to pass the full path name to the file. So the proper code should look like:

   string path = @"c:\temp";   // Dir where batch file resides
   Directory.SetCurrentDirectory(path);
   string batfile = System.IO.Path.Combine(path, "mybatfile.bat");
   ProcessStartInfo = new ProcessStartInfo(batfile);

And you'll see that %~dp0 now expands as you expected. It is using path instead of the current directory.

share|improve this answer
    
What is the correct workaround if you don't know the full path (i.e. you want a %PATH% lookup)? Do you need to do a manual %PATH% lookup in C#? – Rich Nov 10 '14 at 17:53
1  
Erm, yes. Using cmd.exe /c gets to be pretty attractive of course :) – Hans Passant Nov 10 '14 at 18:04

It's a problem with the quotes and %~0.

cmd.exe handles %~0 in a special way (other than %~1).
It checks if %0 is a relative filename, then it prepend it with the start directory.

If there a file can be found it will use this combination, else it prepends it with the actual directory.
But when the name begins with a quote it seems to fail to remove the quotes, before prepending the directory.

That's the cause why cmd /c myBatch.bat works, as then myBatch.bat is called without quotes.
You could also start the batch with a full qualified path, then it also works.

Or you save the full path in your batch, before changing the directory.

A small test.bat can demonstrate the problems of cmd.exe

@echo off
setlocal
echo %~fx0 %~fx1
cd ..
echo %~fx0 %~fx1

Call it via (in C:\temp)

test test

The output should be

C:\temp\test.bat C:\temp\test
C:\temp\test.bat C:\test

So, cmd.exe was able to find test.bat, but only for %~fx0 it will prepend the start directory.

In the case of calling it via

"test" "test"

It fails with

C:\temp\test C:\temp\test
C:\test C:\test

cmd.exe isn't able to find the batch file even before the directory was changed, it can't expand the name to the full name of c:\temp\test.bat

share|improve this answer
    
So it would seem that both C#'s "ProcessStartInfo" and Java's "ProcessBuilder" are adding quotes to the executable name, or the underlying O/S mechanism that they share is doing that. Is that controllable? – Rich Nov 10 '14 at 16:13
    
@Rich, there is a bug in the quote management of cmd. See here. Use full paths on the call or add code in the batch file to ensure you get the correct values. – MC ND Nov 10 '14 at 20:02

Command line interpreter cmd.exe has a bug in code on getting path of batch file if the batch file was called with double quotes and with a path relative to current working directory.

Create a directory C:\Temp\TestDir. Create inside this directory a file with name PathTest.bat and copy & paste into this batch file the following code:

@echo off
set "StartIn=%CD%"
set "BatchPath=%~dp0"
echo Batch path before changing working directory is: %~dp0
cd ..
echo Batch path after  changing working directory is: %~dp0
echo Saved path after  changing working directory is: %BatchPath%
cd "%StartIn%"
echo Batch path after restoring working directory is: %~dp0

Next open a command prompt window and set working directory to C:\Temp\TestDir using the command:

cd /D C:\Temp\TestDir

Now call Test.bat in following ways:

  1. PathTest
  2. PathTest.bat
  3. .\PathTest
  4. .\PathTest.bat
  5. ..\TestDir\PathTest
  6. ..\TestDir\PathTest.bat
  7. \Temp\TestDir\PathTest
  8. \Temp\TestDir\PathTest.bat
  9. C:\Temp\TestDir\PathTest
  10. C:\Temp\TestDir\PathTest.bat

Output is four times C:\Temp\TestDir\ as expected for all 10 test cases.

The test cases 7 and 8 start the batch file with a path relative to root directory of current drive.

Now let us look on results on doing the same as before, but with using double quotes around batch file name.

  1. "PathTest"
  2. "PathTest.bat"
  3. ".\PathTest"
  4. ".\PathTest.bat"
  5. "..\TestDir\PathTest"
  6. "..\TestDir\PathTest.bat"
  7. "\Temp\TestDir\PathTest"
  8. "\Temp\TestDir\PathTest.bat"
  9. "C:\Temp\TestDir\PathTest"
  10. "C:\Temp\TestDir\PathTest.bat"

Output is four times C:\Temp\TestDir\ as expected for the test cases 5 to 10.

But for the test cases 1 to 4 the second output line is just C:\Temp\ instead of C:\Temp\TestDir\.

Now use cd .. to change working directory to C:\Temp and run PathTest.bat as follows:

  1. "TestDir\PathTest.bat"
  2. ".\TestDir\PathTest.bat"
  3. "\Temp\TestDir\PathTest.bat"
  4. "C:\Temp\TestDir\PathTest.bat"

The result for second output for the test cases 1 and 2 is C:\TestDir\ which does not exist at all.

Starting the batch file without the double quotes produces for all 4 test cases the right output.

This makes it very clear that the behavior is caused by a bug.

Whenever a batch file is started with double quotes and with a path relative to current working directory on start, %~dp0 is not reliable on getting the path of batch file when current working directory is changed during batch execution.

This bug is also reported to Microsoft according to Windows shell bug with how %~dp0 is resolved.

It is possible to workaround this bug by assigning the path of the batch file immediately to an environment variable as demonstrated with the code above before changing the working directory.

And then reference the value of this variable wherever path of batch file is needed with using double quotes where required. Something like %BatchPath% is always better readable as %~dp0.

Another workaround is starting the batch file always with full path (and with file extension) on using double quotes as class Process does.

share|improve this answer
1  
Yes, there is a bug. If interested, see my answer. – MC ND Nov 10 '14 at 19:57

Each new line in your batch called by your ProcessStart is independently considered as a new cmd command.

For example, if you give it a try like this:

echo %~dp0 && CD Arvind && echo %~dp0

It works.

share|improve this answer
1  
Not for the reason you think it does. It's just that %~dp0 gets replaced by the actual values prior to execution of the line, thus the second echo already outputs static text before the cd even ran. – Joey Aug 27 '12 at 12:39
    
@Joey : so the ProcessStart or the double quote execution makes the script to be executed line by line, and not as a whole, thus the replacement of %~dp0 which gives different values in the 2 different cases ? – LaGrandMere Aug 27 '12 at 12:45
1  
Batch files are always executed line by line and they are always executed by a single instance of cmd. Your alleged solution is just an artifact of how variable expansion is done. – Joey Aug 27 '12 at 12:50
    
@Joey : Ok, no problem about me being wrong, just trying to understand :) so the explanation would be that the variable replacements are done before the execution of the whole script in one case, and only before each line execution on the other case ? I'm currently looking on the internet for a reason about this behaviour, but can't find anything :/ – LaGrandMere Aug 27 '12 at 12:57

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.