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I am working on a java web application, managed by maven2. From time to time, we did some changes, and want to do new releases, of course with new version number. In the homepage (jsp), there is text like

<b>version:</b> 2.3.3...

Is it possible, every time I do a new release, I only change the <version/> in pom.xml, and version number in jsp can be automatically filled by this maven ${project.version}?

I tried maven profile, however it doesn't seem to work.

any ideas?

Thank you.

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btw, I used resources filtering and maven profile for other configuration files, e.g. those spring xmls, they are working. but for jsp, didn't work. –  Kent Oct 6 '09 at 11:37
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6 Answers

up vote 3 down vote accepted

It's maybe stupid but I'd use a .properties file like in this example instead of filtering directly the JSP.

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Well, finally I did in this way. I added an entry in an existing property file and let mvn fill the version. and added an autostarting servlet. When the application context starts, the servlet read prop file and set a system property, say, "myVersion", so that jsp can retrieve by name. using maven resources plugin copy-resources goal works as well. However I also feel filtering jsp as resources not so clean. we used apache-tiles for layout, that is, in some jsps, there are already ${ ...} for tiles. It can be confusing if some ${} for maven added. Thank you guys for those comments. Kent –  Kent Oct 6 '09 at 13:25
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You can use project filtering to process the JSP as it is copied to the target location. If the JSP is specified with ${project.version}, and the containing folder is specified as a filter location the value should be substituted into the JSP as it is packaged.

For example, adding this to your POM enables filtering for src/main/resources:

<resources>
  <resource>
    <directory>src/main/resources</directory>
    <filtering>true</filtering>
  </resource>
</resources>

Update: for war packaging, you may need to configure the war plugin to do its filtering. See the Filtering section of the war-plugin's documentation for more details and examples.

Essentially the process is the same, but it is defined below the war plugin, so you'd have something like this:

<plugins>
  <plugin>
    <groupId>org.apache.maven.plugins</groupId>
    <artifactId>maven-war-plugin</artifactId>
    <version>2.0</version>
    <configuration>
      <webResources>
        <resource>
          <directory>src/main/resources</directory>
          <filtering>true</filtering>
        </resource>
      </webResources>
    </configuration>
  </plugin>
</plugins>
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Glad to help. This works for any properties set at filter time –  Rich Seller Oct 6 '09 at 11:27
    
sorry, just now I was checking the wrong file, and thought it was working. I added: <resource> <directory>src/main/webapp</directory> <filtering>true</filtering> </resource> and under src/main/resources, there is a test.jsp, which with ${project.version}. The version number is not assigned to ${...} after I run mvn clean package. Did I do something wrong? –  Kent Oct 6 '09 at 11:34
    
In your comment you are filtering src/main/webapp but the JSP is in src/main/resources, are you sure the configuration matches up? –  Rich Seller Oct 6 '09 at 12:09
    
Thanks for the comment. our project structure is: src/main/webapp/css, images... | src/main/webapp/WEB-INF/jsp/here are jsps | src/main/resource/property files, xml conf files etc. | src/main/java/java.packages.and.sourcecodes | now I found the problem is, if I look jsp pages as resources too, there are two resources directories, and two different target outputs for each. :src/main/resources/*.* -> target/../WEB-INF/classes/*.* | .../jsp/*.jsp ->target/../WEB-INF/jsp/*.jsp. maybe resource plugin 'copy-resources' can help? –  Kent Oct 6 '09 at 12:33
    
I updated my answer with details for setting up filtering in the war plugin –  Rich Seller Oct 6 '09 at 14:29
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It make a while this post have been created, but I hope it would help. It will get properties generated from Maven :

<%@ page import="java.util.*"%>
<%
    java.io.InputStream inputStream = getServletContext().getResourceAsStream("/META-INF/maven/com.filhetallard.fam.ged/famdox/pom.properties");
    Properties mavenProperties= new Properties();
    mavenProperties.load(inputStream );
    String version = (String) mavenProperties.get("version");
    String name = (String) mavenProperties.get("artifactId");

%><html xmlns="http://www.w3.org/1999/xhtml" xml:lang="fr" lang="fr">
<head> 
    <title>Application <%= name %> v<%= version %></title>

Unfortunately, there is some drawbacks :

  • you had to explicitely write groupId and artifactId in your code
  • if you deploy your web-app directly from target/ to your server, it won't find the file because this one is in maven-archiver directory, not in META-INF, before packaging.

Regards.

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I use this plugin,

http://code.google.com/p/maven-substitute-plugin/

You can do something like this in Java,

   public final static String projectVersion = "@PROJECT_VERSION@";

and it's trivial to pass this value to JSP.

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I tried this plugin and it was very poorly documented, buggy and seems unmaintained. –  damd Sep 19 '12 at 14:58
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In http://mojo.codehaus.org/jspc/jspc-maven-plugin/usage.html

It states this:
Non-WAR Projects

You can also use this plugin with non-war projects, for instance to validate JSPs. They will be compiled, but not included in your final artifact, and no web.xml file will be generated or modified.

If you want to just validate and compile your JSPs without actually including the generated code in your war project, you can also use set the includeInProject parameter to false.

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I wanted to do this very same thing but I was not satisfied with any of the existing solutions, including using the Maven filtering approach, which is ok, but I am trying to move away from modifying existing code files during the build process so I ruled that approach out, although it is a reasonable approach.

The way I get my Maven project version into my JSP file is based on a similar approach to the one from here except that I don't create a Version.java file, instead I just have Maven write the version out to a properties file, such as "version.properties" like this:

version.properties:

app.version = 0.1

and have Maven put it on the classpath, for instance, in src/main/resources like this:

    <plugin>
    <groupId>org.apache.maven.plugins</groupId>
    <artifactId>maven-antrun-plugin</artifactId>
    <version>1.7</version>
    <executions>
          <execution>
            <goals>
              <goal>run</goal>
            </goals>
            <phase>generate-sources</phase>
            <configuration>
            <!-- Idea from link: http://stackoverflow.com/questions/2469922/generate-a-version-java-file-in-maven -->
              <target>
                <property name="resources.dir" value="${project.build.sourceDirectory}/../resources" />
                <property name="version.filename" value="version.properties" />
                <property name="buildtime" value="${maven.build.timestamp}" />
                <echo message="Writing project version string to ${resources.dir}/${version.filename} ..." />
                <echo file="${resources.dir}/${version.filename}" message="app.version = ${project.version}${line.separator}" />
              </target>
            </configuration>
          </execution>
        </executions>
  </plugin>

Also, if you are using Spring Framework 3.x+ then you can add the following configuration to load properties in version.properties if it exists, otherwise just show "v0.0" or whatever:

@Configuration
@EnableWebMvc
@EnableAspectJAutoProxy(proxyTargetClass = true)
public class WebHomeConfig extends WebMvcConfigurerAdapter implements
    ApplicationContextAware {

  private ApplicationContext _appContext;


  /*
   * (non-Javadoc)
   * 
   * @see
   * org.springframework.context.ApplicationContextAware#setApplicationContext
   * (org.springframework.context.ApplicationContext)
   */
  @Override
  public void setApplicationContext(ApplicationContext appContext)
      throws BeansException {
    _appContext = appContext;
  }

  @Bean
  public ViewResolver getViewResolver() {
    InternalResourceViewResolver resolver = new InternalResourceViewResolver();
    resolver.setPrefix("/WEB-INF/views/");
    resolver.setSuffix(".jsp");
    resolver.getAttributesMap().put("appVersion", appVersion);
    return resolver;
  }


  /**
   * Since we don't have any controller logic, simpler to just define
   * controller for page using View Controller. Note: had to extend
   * WebMvcConfigurerAdapter to get this functionality
   * 
   * @param registry
   */
  @Override
  public void addViewControllers(ViewControllerRegistry registry) {
    registry.addViewController("/").setViewName("home");
  }

  /**
   * The application version.
   */
  @Value("${app.version:0.0}")
  protected String appVersion;

  @Bean
  public static PropertySourcesPlaceholderConfigurer configurer() {
    PropertySourcesPlaceholderConfigurer configurer = new PropertySourcesPlaceholderConfigurer();

    configurer.setIgnoreResourceNotFound(true);
    configurer.setLocations(new Resource[] {
        new ClassPathResource("version.properties")});
    return configurer;
  }

}

And finally, in your /WEB-INF/views/home.jsp you can have something like:

<%@page contentType="text/html" pageEncoding="UTF-8"%>
<!DOCTYPE HTML PUBLIC "-//W3C//DTD HTML 4.01 Transitional//EN"
   "http://www.w3.org/TR/html4/loose.dtd">

<html>
    <head>
        <meta http-equiv="Content-Type" content="text/html; charset=UTF-8">
        <title>Service Status</title>
    </head>
    <body>
        <h1>Service API</h1>
        <p>The service is up and running! (v${appVersion})</p>
    </body>
</html>

And this would of course render as:

The service is up and running! (v0.1)

NOTE: If you don't use the JavaConfig classes to configure Spring Framework then you can do the same thing with Spring XML configuration.

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