24

Spring Boot 2.2 application with springdoc-openapi-ui (Swagger UI) runs HTTP port. The application is deployed to Kubernetes with Ingress routing HTTPS requests from outside the cluster to the service.

In this case Swagger UI available at https://example.com/api/swagger-ui.html has wrong "Generated server url" - http://example.com/api. While it should be https://example.com/api.

While Swagger UI is accessed by HTTPS, the generated server URL still uses HTTP.

6 Answers 6

30

I had same problem. Below worked for me.

@OpenAPIDefinition( 
    servers = {
       @Server(url = "/", description = "Default Server URL")
    }
) 
@SpringBootApplication
public class App {
    // ...
}
2
  • 1
    This worked out-of-the-box for me, thanks! Although, I annotated a @Configuration bean/class, not the main application class. I like this solution because 1) it is independent from the Spring Boot backend used (Tomcat, Jetty, Undertow), 2) it doesn't have a hard coded URL, 3) it's a "no code" solution, i.e. has no logic to assemble something at runtime.
    – t0r0X
    Commented Sep 8, 2022 at 9:55
  • Thanks! This solution is clean, but I really prefered if was inside properties file. I follow the implementation into OpenAPIService.java then method buildOpenAPIWithOpenAPIDefinition. Is too much complicate to update the springfox source code? Commented Jun 6 at 22:11
10

If the accepted solution doesn't work for you then you can always set the url manually by defining a bean.

@Bean
public OpenAPI customOpenAPI() {
    Server server = new Server();
    server.setUrl("https://example.com/api");
    return new OpenAPI().servers(List.of(server));
}

And the url can be defined via a property and injected here.

0
8

springdoc-openapi FAQ has a section How can I deploy the Doploy springdoc-openapi-ui, behind a reverse proxy?.

The FAQ section can be extended.

Make sure X-Forwarded headers are sent by your proxy (X-Forwarded-For, X-Forwarded-Proto and others).

If you are using Undertow (spring-boot-starter-undertow), set property server.forward-headers-strategy=NATIVE to make a Web server natively handle X-Forwarded headers. Also, consider switching to Undertow if you are not using it.

If you are using Tomcat (spring-boot-starter-tomcat), set property server.forward-headers-strategy=NATIVE and make sure to list IP addresses of all internal proxies to trust in the property server.tomcat.internal-proxies=192\\.168\\.\\d{1,3}\\.\\d{1,3}. By default, IP addresses in 10/8, 192.168/16, 169.254/16 and 127/8 are trusted.

Alternatively, for Tomcat set property server.forward-headers-strategy=FRAMEWORK.

Useful links:

3
  • 2
    the link to the FAQ is broken, the correct one is springdoc.org/… Commented Sep 29, 2020 at 6:14
  • 1
    I am using server.forward-headers-strategy=FRAMEWORK, but still can see generated url is http. Commented Feb 7, 2021 at 18:15
  • Even on setting the property to FRAMEWORK , I am still getting http in the generated server url
    – Kaustubh
    Commented Jul 15, 2021 at 16:50
8

In case you have non-default context path

@Configuration
public class SwaggerConfig {
    
    @Bean
    public OpenAPI openAPI(ServletContext servletContext) {
        Server server = new Server().url(servletContext.getContextPath());
        return new OpenAPI()
                .servers(List.of(server))
                // ...
    }
}
0
1

Make it default to "/" using @Server annotation. This will make the swagger APIs use https

import io.swagger.v3.oas.annotations.OpenAPIDefinition;
import io.swagger.v3.oas.annotations.servers.Server;

@OpenAPIDefinition(servers = {@Server(url = "/", description = "Default Server URL")})
public class FormService implements ApplicationRunner {
....
}
-1

Below worked for me.

@OpenAPIDefinition(servers = {@server(url = "/", description = "Default Server URL")})
@SpringBootApplication
class App{
// ...
}

or

@OpenAPIDefinition(servers = {@server(url = "/", description = "Default Server URL")})
@Configuration
public class OpenAPIConfig {
@Bean
    public OpenAPI customOpenAPI() {
        return new OpenAPI()
                .info(new Info().title("App name")
                        .termsOfService("http://swagger.io/terms/")
                        .license(new License().name("Apache 2.0").url("http://springdoc.org")));
    }
}

Generated server url is HTTP - issue

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.