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I want to write a simple batch file where i want to setup a environment variable based on the machine architecture. It is as below:

set ARCH=%PROCESSOR_ARCHITECTURE%
echo %ARCH%
if %ARCH%==x86 (
  set JAVA_ROOT=C:\Progra~1\Java\j2re1.4.2_13
) else (
  set JAVA_ROOT=C:\Progra~2\Java\j2re1.4.2_13
)
echo JAVA_ROOT is %JAVA_ROOT%

On 64-bit machine where the architecture is 'AMD64' the JAVA_ROOT will be displayed as 'C:\Progra~2\Java\j2re1.4.2_13' at the echo statement. But when i run an application that uses this file, the first value of JAVA_ROOT would be picked up 'C:\Progra~1\Java\j2re1.4.2_13'. I don't have any idea why it goes in the 'if' part even though i am running this on 64-bit Windows7. When i echoed the

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1  
By the way, if this batch file is intended to be distributed to other people (as opposed to being just for your own PC), assuming that Program Files is in C: is a bad idea. Relying on the fact that Progra~1 is 32-bit and Progra~2 is 64-bit (or vice versa) sounds pretty fishy too. –  bk1e May 20 '10 at 2:13
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2 Answers

Alternative solution which does not rely on x64 specific variables:

IF NOT EXIST %WINDIR%\SysWOW64\regedit.exe GOTO PLATX86
:PLATX64
ECHO PLATFORM IS X64
GOTO PLATDONE
:PLATX86
ECHO PLATFORM IS X86
GOTO PLATDONE
:PLATDONE

It works for me, might work for you as well.

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If you're running the batch file using %SystemRoot%\syswow64\cmd.exe on 64-bit Windows, perhaps because you're starting it from a 32-bit app, then %PROCESSOR_ARCHITECTURE% will be equal to x86, not AMD64. To detect this situation, you can use the %PROCESSOR_ARCHITEW6432% variable. Here's a blog post with more info.

However, if you just want to find the 32-bit Java path, you don't have to worry about that because WOW64 will take care of it for you if you use the %ProgramFiles% variable:

if "%PROCESSOR_ARCHITECTURE%" == "x86" set JAVA_ROOT=%ProgramFiles%\Java\j2re1.4.2_13
if "%PROCESSOR_ARCHITECTURE%" == "AMD64" set JAVA_ROOT=%ProgramFiles(x86)%\Java\j2re1.4.2_13
if not defined JAVA_ROOT (
  echo Unsupported processor architecture.
  exit /b 1
)
if not exist %JAVA_ROOT%\. (
  echo Java 1.4.2_13 is not installed.
  exit /b 1
)

Note that I avoided the if condition ( command ) else ( command ) form for setting JAVA_ROOT. This is because %ProgramFiles(x86)% contains parentheses, which would cause cmd.exe to misparse the if-statement if I used that form. For more complicated commands or more complicated conditions, using call to call a subroutine might be better. (Using a more expressive language would be even better, but that doesn't answer the question.)

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I tried to get value of %PROCESSOR_ARCHITEW6432% by doing 'echo %PROCESSOR_ARCHITEW6432%', but i get 'ECHO is off.' Echo is not off as i do get other echo values. Is it because it is undefined? Can you please show me how to do comparison in batch syntax? –  Sam May 20 '10 at 2:48
    
Yes, it's not defined except for WOW64, as stated by the article I linked to. Are you running your batch file from another program or from a command prompt window? Anyway, it just occurred to me that if you just use %ProgramFiles% and %ProgramFiles(x86)% instead of hardcoding paths, you won't have to worry about the WOW64 case. –  bk1e May 20 '10 at 4:06
    
I am running the batch file from another program. When i run the batch file from command prompt it works fine. But when i run it from another program, it gets architecture as x86. Your other approach doesn't work from me, because of the spaces in the Program files path. I guess if I can find out the syntax to do the comparison and just keep the hard coded paths, my job would be done. I tried the synatx you provided above with the hardcoded paths, and it still goes inside x86 when called through another program –  Sam May 21 '10 at 0:51
    
Did you try adding quotes around the variable when you evaluate it? I.e. "%JAVA_ROOT%" –  bk1e May 21 '10 at 17:27
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