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I'm using a Windows .bat script and I set JAVA_HOME as C:/Program Files/Java/jdk1.6.0_32 when I do a java -version, it still shows the 1.3

How can I fix this? What am I doing wrong?

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It doesn't give any error btw – user1345883 May 21 '12 at 14:23
1  
Show output of echo %PATH%. – Andrew Logvinov May 21 '12 at 14:23
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That isn't enough. Prepend JAVA_HOME\bin to PATH. – hmjd May 21 '12 at 14:25
up vote 3 down vote accepted

Try %JAVA_HOME%\bin\java -version

If you modify JAVA_HOME, it's usually better to invoke java with an absolute path (using JAVA_HOME) because the new binary is probably not in the path (and then Windows will load the wrong binary).

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Make sure that the PATH environment variable is pointing to %JAVA_HOME%\bin.

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Be sure not to mix the system variable path and the user variable systemp path. I feel OK in calling "java" without the absolute path (when I know how JAVA_HOME and PATH are configured).

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Calling java -version from command line, causes cmd.exe to do the lookup on the "known" directories. "Known" means PATH environment variable. It seems that your PATH contains a java 1.3 bin folder, and not 1.6.

JAVA_HOME is another variable, that is used (for example, and not only) by java wrappers, or by scripts executing some java stuff.

Try doing this:

SET JAVA_HOME=C:/Program Files/Java/jdk1.6.0_32
%JAVA_HOME%/bin/java -version

Add quotes where needed.

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