19

I use maven plugin to set the main class like this :

<plugin>
<groupId>org.springframework.boot</groupId>
<artifactId>spring-boot-maven-plugin</artifactId>
<configuration>
    <mainClass>com.myapp.main.MainClass</mainClass>
</configuration>
</plugin>

But sometimes I want run my app with another main class. What is the command line arguments to do this?

java -jar myapp-1.0.jar ...

Thx

  • 1
    +1. I have the same question (I settled for writing my own "master" Main class which looks at the first argument and then dispatches somewhere else, so that you can get a nice command line without full class names and weird -D stuff, but would be good to know when you want to run any classes that you did not think of ahead of time). – Thilo Jun 20 '14 at 8:19
  • possible duplicate of Multiple runnable classes inside JAR, how to run them? – Vinay Lodha Jun 20 '14 at 8:31
  • Vinay Lodha, no it's not working: Exception in thread "main" java.lang.NoClassDefFoundError: org/springframework/beans/BeansException – etig Jun 20 '14 at 8:38
7

There's a launcher for that in Spring Boot already. You need to build the jar with that as the Main-Class (by setting the layout in the build config).

| improve this answer | |
  • 1
    And you want to set the layout to "ZIP" to get the PropertyLauncher. – Thilo Jan 29 '15 at 4:46
  • I know this is a old post but still had a question. So do you need to build 2 different jars with different mains? or can it be specified as a command line parameter in the same jar? – amitection Aug 29 '16 at 12:25
  • Did you see this: docs.spring.io/spring-boot/docs/1.4.0.RELEASE/reference/…? – Dave Syer Aug 30 '16 at 7:30
43

Following command will do the trick:

java -cp my-app.jar -Dloader.main=myApplicationClass org.springframework.boot.loader.PropertiesLauncher
| improve this answer | |
  • 4
    IMO this is the best solution for those that don't want to mess w/ their maven configs. – Roy Truelove Jan 17 '17 at 22:46
  • Works great, thanks - note for others that myApplicationClass would be your package qualified class, and you just don't touch the spring package at the end :). – John Humphreys - w00te Feb 17 at 4:45
  • Best solution! also little bit of explenation about the PropertiesLauncher will be nice – Tal Avissar Mar 27 at 17:20
3

Executing from Windows PowerShell I needed this format (with the quotes):

java -cp .\myjarfile.jar -D"loader.main=com.app.etc.FullyQualifiedMainClass" org.springframework.boot.loader.PropertiesLauncher

To clarify the accepted answer: You can directly modify the loader.main property in the jar's META-INF/MANIFEST.MF file, if you're ok with a more static solution.

| improve this answer | |

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