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I need to use a .bat file to launch my Java program. The java program has detected java is available (the icon is the java one), however, I am slightly unsure of the script command to launch the app.

Is there a way to explicitly say where javaw.exe is located?

I have:

cd C:\My_Jar_Folder
java -jar My_Program.jar 1000 32
pause

but it cant't find "java", so I would like to explicitly tell it where the bin folder is. This is on server 2008

EDIT: Solved, created a new environment variable, key "PATH" and value "C:\Program Files (x86)\Java\jre6\bin"

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Try to use $JAVA_HOME\jre\bin\java.exe –  Stephan Apr 4 '12 at 10:31
    
Hi Stephan, it says it cannot find the path. What does the path look like for server 2008? I can add it if I know the correct format for server 2008. –  mezamorphic Apr 4 '12 at 10:36
    
Assure that JAVA_HOME is set. wso2.org/project/wsas/java/1.1/docs/setting-java-home.html –  Stephan Apr 4 '12 at 10:37
    
I guess @Stephan meant %JAVA_HOME% instead of $JAVA_HOME. –  adarshr Apr 4 '12 at 10:59
    
Thats right, sorry for the mistake. –  Stephan Apr 4 '12 at 10:59

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