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I'm unable to run Apache Tomcat on my Windows 7 machine.

Environment variables are setup as:

set JAVA_HOME=C:\Program Files\Java\jdk1.8.0_111 set CATALINA_HOME=C:\Program Files\apache-tomcat-7.0.75-windows-x64\apache-tomcat-7.0.75 set PATH=%PATH%;%JAVA_HOME%\bin;%CATALINA_HOME%\bin

When I run startup.bat, I got the message:

Using CATALINA_BASE: "C:\Program Files\apache-tomcat-7.0.56" and the tomcat console closes instantly.

  • When you run startup.bat, do you just double-click it, or do you run it from command-line? If you double-click, then yeah it'll close on error, but running from command-line shouldn't do that. – Andreas Jan 26 '17 at 19:31
  • Also, just in case there is another Java version already on the PATH, you should add %JAVA_HOME%\bin and %CATALINA_HOME%\bin to the beginning of the PATH, not the end. – Andreas Jan 26 '17 at 19:34
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Your environment variables are not well configured or are not being used. You have intended to set the tomcat to

 C:\Program Files\apache-tomcat-7.0.75-windows-x64\apache-tomcat-7.0.75 

but the error message points to

 C:\Program Files\apache-tomcat-7.0.56

I suggest to review the configuration of the variables, and start tomcat from command line to see all errors.

Alternatively you can set the content of environment variables in %TOMCAT_HOME%\bin\setenv.bat

 set JAVA_HOME=C:\Program Files\Java\jdk1.8.0_111
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It seems you have two different versions of Apache Tomcat in your Windows machine.

The environment variable CATALINA_HOME has been set to point apache-tomcat-7.0.75, where as the error has apache-tomcat-7.0.56 in the message.

Can you please confirm in case two different versions do not exist in your machine.

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