69

I have the following directory layout:

  • src
    • main
      • java
      • resources
        • sql (scripts for database)
        • spring (configuration)
      • webapp

Within a ServletContextListener class, I want to access the files under the SQL directory and list them. Basically my problem is with the path, because I know that listing files under a directory in a nutshell is:

File folder = new File(path);
File[] listOfFiles = folder.listFiles();

Maybe I could use the ServletContextEvent Object to try and build a path to resources/sql

public void contextInitialized(ServletContextEvent event) {
    event.getServletContext(); //(getRealPath etc.)
}

Does something exist to set that path in a relative, non-hardcoded way? Something like new File("classpath:sql") (preferably spring if possible) or what should I do with the servletContext to point at resources/sql?

59

I'm assuming the contents of src/main/resources/ is copied to WEB-INF/classes/ inside your .war at build time. If that is the case you can just do (substituting real values for the classname and the path being loaded).

URL sqlScriptUrl = MyServletContextListener.class
                       .getClassLoader().getResource("sql/script.sql");
  • Thanks!! this worked for me, with that URL then I build the Path for the new File, and finally get the files in that directory. – whyem Oct 17 '13 at 15:25
  • 2
    You don't need the File. You already have a URL. You can't even assume there is a file or a directory at all. The WAR may not have been unpacked. – user207421 Oct 18 '13 at 21:24
  • What does MyServletContextListener mean here ? – Tejesh Raut Dec 4 '15 at 10:02
  • @TejeshRaut It is a place holder for a class that implements javax.servlet.ServletContextListener. I used that as an example because the question had a snippet from contextInitialized which is a method defined by the ServletContextListener interface. – Dev Dec 5 '15 at 1:24
50

Finally, this is what I did:

private File getFileFromURL() {
    URL url = this.getClass().getClassLoader().getResource("/sql");
    File file = null;
    try {
        file = new File(url.toURI());
    } catch (URISyntaxException e) {
        file = new File(url.getPath());
    } finally {
        return file;
    }
}

...

File folder = getFileFromURL();
File[] listOfFiles = folder.listFiles();
  • 8
    Are you sure of using "/sql" as the parameter? I have problems with a starting slash, Instead "sql" works. – Abdull May 13 '16 at 13:57
  • 1
    Please be aware that you can get a different URL with this.getClass().getResource("/sql")); – ShadowGames Oct 15 '18 at 13:59
  • This won't work on all containers. Tomcat, for example. – user207421 Feb 11 at 23:10
15
import org.springframework.core.io.ClassPathResource;

...

File folder = new ClassPathResource("sql").getFile();
File[] listOfFiles = folder.listFiles();

It is worth noting that this will limit your deployment options, ClassPathResource.getFile() only works if the container has exploded (unzipped) your war file.

3

Just use com.google.common.io.Resources class. Example:

 URL url = Resources.getResource("file name")

After that you have methods like: .getContent(), .getFile(), .getPath() etc

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