234

I have 5 environments:

 - local (my development machine)
 - dev
 - qc
 - uat
 - live
 - staging

I want different application properties to be used for each environment, so I have the following properties files each which have a different URL for the datasource:

 - application.properties  (containing common properties)
 - application-local.properties
 - application-dev.properties
 - application-qc.properties
 - application-uat.properties
 - application-live.properties

I am using IntelliJ and running my app using bootRun in the Gradle plugin on my local machine. I will be using deploying the same application war file on all other environments which run Tomcat.

I have tried adding:

--spring.profiles.active=local

to the run configuration under script parameters.

I have tried adding

-Dspring.profiles.active=local

to the run configuration under VM options.

Neither work. I keep seeing the INFO message on startup say: No active profile set, falling back to default profiles: default

If I run my app from the windows command line using

gradle bootRun

but I first set the environment variable

set SPRING_PROFILES_ACTIVE=local

Then everything works.

So my question is, how do I activate my local spring boot profile when running bootRun from IntelliJ ?

6
  • 1
    Why are you running the application via gradle there? Wouldn't it be 10 times more convenient to use the run configuration? There's a field where you can set the profiles to enable... Sep 28, 2016 at 6:40
  • 1
    I am using the run configuration in IntelliJ, as explained above. It's not working.
    – dleerob
    Sep 28, 2016 at 6:47
  • 2
    No you're not. What I am talking about is the "Spring Boot run configuration" Run -> Edit configuration > New > Spring Boot. Sep 28, 2016 at 6:50
  • Aah yes, I moved away from Spring Boot run configuration as I needed to expand project.properties into application.properties in my build.gradle and if I used the Spring Boot run configuration, it didn't seem to work. I'll look into resolving that issue and then perhaps I can simply use the active profile field as you suggested
    – dleerob
    Sep 28, 2016 at 6:57
  • 1
    Using the Spring Boot configuration seems more trouble than its worth. The 'Make' simply copies across the resources and doesn't filter/alter them as per by build script. Then telling it to run the 'build' from gradle instead of 'make' simply causes the run to freeze. If I use bootRun instead, along with my environment entry as per below answer, all works fine.
    – dleerob
    Sep 28, 2016 at 7:08

15 Answers 15

355

I added -Dspring.profiles.active=test to VM Options and then re-ran that configuration. It worked perfectly.

This can be set by

  • Choosing Run | Edit Configurations...
  • Go to the Configuration tab
  • Expand the Environment section to reveal VM options
10
  • I was stuck in the same situation but for a Maven project. Thanks for the help. We have set the VM option for each and every test file.
    – Sri9911
    May 7, 2018 at 8:21
  • 2
    It doesn't work for me too. I use gradle and two modules (api and ui)
    – Virkom
    Apr 2, 2020 at 7:19
  • 2
    Doesn't work for me either, also using gradle here.
    – IARI
    Apr 23, 2020 at 11:49
  • 1
    HI, I have the same issue but this fix does not fix the issue. what is meant here by reran the configuration? is it as just as rerunning the task? Jul 6, 2020 at 15:29
  • 2
    Usually, spring.profiles.include is preferrable, because spring.profiles.active also disables other profiles. Deactivating default profiles might be undesired.
    – Christian
    May 14, 2021 at 11:34
121

If you actually make use of spring boot run configurations (currently only supported in the Ultimate Edition) it's easy to pre-configure the profiles in "Active Profiles" setting.

enter image description here

5
  • 2
    Thanks, I'm sure this would work, however I am not using the Spring Boot run configuration, I am using the Gradle run configuration which doesn't have the "Active Profiles" field. My gradle build filters and modifies some of the properties files it copies to the build directory, so I am using the Grade run configuration for this.
    – dleerob
    Sep 30, 2016 at 12:28
  • As an above answer pointed out: if this isn't working for you, ensure that you're passing in the args in your Application.main() eg SpringApplication.run( Application.class, args ); Dec 1, 2016 at 21:13
  • 2
    This feature is supported in the Ultimate edition only. Jul 17, 2017 at 9:27
  • Thanks @JulienMalige for pointing this out. I will edit my answer. Jul 17, 2017 at 9:33
  • You can use a comma separate list of them as you would in the cli so for example default, staging. The far right takes highest precedence so for example foo=bar (default) and foo=baz (staging), will result in foo=baz
    – 8bitme
    Jun 14 at 11:19
35

Spring Boot seems had changed the way of reading the VM options as it evolves. Here's some way to try when you launch an application in Intellij and want to active some profile:

1. Change VM options

Open "Edit configuration" in "Run", and in "VM options", add: -Dspring.profiles.active=local

It actually works with one project of mine with Spring Boot v2.0.3.RELEASE and Spring v5.0.7.RELEASE, but not with another project with Spring Boot v2.1.1.RELEASE and Spring v5.1.3.RELEASE.

Also, when running with Maven or JAR, people mentioned this:

mvn spring-boot:run -Drun.profiles=dev

or

java -jar -Dspring.profiles.active=dev XXX.jar

(See here: how to use Spring Boot profiles)

2. Passing JVM args

It is mentioned somewhere, that Spring changes the way of launching the process of applications if you specify some JVM options; it forks another process and will not pass the arg it received so this does not work. The only way to pass args to it, is:

mvn spring-boot:run -Dspring-boot.run.jvmArguments="..."

Again, this is for Maven. https://docs.spring.io/spring-boot/docs/current/maven-plugin/examples/run-debug.html

3. Setting (application) env var

What works for me for the second project, was setting the environment variable, as mentioned in some answer above: "Edit configuration" - "Environment variable", and:

SPRING_PROFILES_ACTIVE=local
5
  • 2
    The env var should actually be SPRING_PROFILES_ACTIVE.
    – Josh M.
    May 31, 2019 at 12:23
  • 1
    I added it in "Run configuration" of IDEA "VM options" like "spring.profiles.active" and it works. Maybe another form like urs is used system-wide in system properties?
    – WesternGun
    May 31, 2019 at 12:54
  • If you're adding it to ~/.profile or similar, you have to use SPRING_PROFILES_ACTIVE -- spring.profiles.active likely only works as an argument on the command line.
    – Josh M.
    Jun 1, 2019 at 1:42
  • 1
    Ah.. so you mean the same as I suspected; real system env not just the application env. OK I make an edit.
    – WesternGun
    Jun 2, 2019 at 15:46
  • This answer is very concise and complete
    – absentia
    Nov 10, 2020 at 1:47
23

Tested with IntelliJ Community edition 2021.x

You can create Multiple configurations, one each for a specific profile, In my case below, I have created a dev config with dev profile environment variable.

  1. Goto Run > Edit Configuration
  2. Choose the configuration you want to edit, in the left under Application.
  3. On the right side > Under Environment Variable, update spring.profiles.active=<your profile name> example spring.profiles.active=dev (observer:- the variable should be without -D flag)
  4. Save the changes and Run the Spring boot app with the same configuration.

Note:- You can also create a new configuration or copy existing in step 2 above, using the option available in the same panel.

enter image description here

1
  • 1
    This answer worked for me, I'm using the gradle bootRun configuration on Spring Boot 2.4.2 and the other answers would not change my active profile. Thanks! May 12 at 18:19
17

Try add this command in your build.gradle

enter image description here

So for running configure that shape:

enter image description here

1
11

For Spring Boot 2.1.0 and later you can use

mvn spring-boot:run -Dspring-boot.run.profiles=foo,bar

2
  • 2
    In your commandline will be spring-boot:run -Dspring-boot.run.profiles=local
    – Mr. K.
    Mar 27, 2019 at 21:25
  • with spring-boot:run this is the answer
    – kakabali
    Jun 4, 2020 at 15:59
10

I ended up adding the following to my build.gradle:

bootRun {
  environment SPRING_PROFILES_ACTIVE: environment.SPRING_PROFILES_ACTIVE ?: "local"
}

test {
  environment SPRING_PROFILES_ACTIVE: environment.SPRING_PROFILES_ACTIVE ?: "test"
}

So now when running bootRun from IntelliJ, it defaults to the "local" profile.

On our other environments, we will simply set the 'SPRING_PROFILES_ACTIVE' environment variable in Tomcat.

I got this from a comment found here: https://github.com/spring-projects/spring-boot/pull/592

6

A probable cause could be that you do not pass the command line parameters into the applications main method. I made the same mistake some weeks ago.

public static final void main(String... args) {
    SpringApplication.run(Application.class, args);
}
2
  • Thanks for the reply and suggestion, however I am passing the arguments in.
    – dleerob
    Sep 30, 2016 at 12:26
  • This actually fixed my problem. For some reason when I created the project using Gradle, it didn't auto-generate my Application class so did it by hand from memory. Missed the args step, and so the "Active Profiles" box in the run configuration didn't work -- I had to manually pass in -Dspring.profiles.active in the VM options box. Dec 1, 2016 at 21:11
3

I use the Intellij Community Edition. Go to the "Run/Debug Configurations" > Runner tab > Environment variables > click button "...". Add: SPRING_PROFILES_ACTIVE = local

spring.profiles.active

3

In my case I used below configuration at VM options in IntelliJ , it was not picking the local configurations but after a restart of IntelliJ it picked configuration details from IntelliJ and service started running.

-Dspring.profiles.active=local
0

Try this. Edit your build.gradle file as followed.

ext { profile = project.hasProperty('profile') ? project['profile'] : 'local' }
0

Replace your profile name with BE

You can try the above way to activate a profile

0
0

So for resuming...

If you have the IntelliJ Ultimate the correct answer is the one provided by Daniel Bubenheim

But if you don't, create in Run->Edit Configurations and in Configuration tab add the next Environment variable:

SPRING_PROFILES_ACTIVE=profilename

And to execute the jar do:

java -jar -Dspring.profiles.active=profilename XXX.jar
0

Here are 2 ways

  1. Using gradle project property

In build.gradle, add

bootRun{
//https://github.com/spring-projects/spring-boot/pull/592#issuecomment-880263914
    if (project.hasProperty('profiles')) {
        environment SPRING_PROFILES_ACTIVE: profiles
    } else {
        def profiles = 'dev'
        environment SPRING_PROFILES_ACTIVE: profiles
    }
}

In intellij gradle configuration, change the value "test" in "-Pprofiles" as appropriate to environment you want to run

enter image description here

  1. Using environment property

Follow answer by @Hubert https://stackoverflow.com/a/39749545/3333878

And configure the run configuration as

enter image description here

-4

Set -Dspring.profiles.active=local under program arguments.

4
  • I have removed the quotes from my question above. I am not actually using quotes, I was just trying to show exactly what I was putting into the run configuration fields
    – dleerob
    Sep 28, 2016 at 6:09
  • 5
    you mean VM options! Apr 20, 2017 at 15:15
  • This answer is very misleading as program arguments won't be recognized by the application!
    – yuranos
    Dec 26, 2018 at 17:02
  • This answer will not work, as mentioned by other folks, it should be under VM Options in IntelliJ Idea and not in the program arguments Feb 8, 2019 at 9:51

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