14

I have the following file

/app/menus/menu1.yml

and I'd like to read it's contents

--

short answer:

fileContent = play.vfs.VirtualFile.fromRelativePath("/app/menus/menu1.yml").contentAsString();
16

PlayFramework is built using the Java language.

In your code, there is no restriction about the usage of the java API. So, your file can be read using the standard java code, if you know the file absolute path:

java.io.File yourFile = new java.io.File("/path/app/menus/menu1.yml");
java.io.FileReader fr = new java.io.FileReader(yourFile);
// etc.

If you want to access a File in a relative path from your Play application, your can use the play "VirtualFile" class: http://www.playframework.org/documentation/api/1.1/play/vfs/VirtualFile.html

VirtualFile vf = VirtualFile.fromRelativePath("/app/menus/menu1.yml");
File realFile = vf.getRealFile();
FileReader fr = new FileReader(realFile);
// etc.
3
  • 2
    VirtualFile.fromRelativePath is undefined for play 2.1. What to use instead? – MyTitle Apr 17 '13 at 16:35
  • @MyTitle, any answer here? How about for Play 2.2? – Kevin Meredith Oct 29 '13 at 20:34
  • What is the correct answer if the file is in a module? – Name is carl Jul 4 '14 at 8:06
11

For Play 2.0 in Scala you want to use Play.getFile(relativePath: String)

1
  • 1
    As a Java developer you would use: Play.application().getFile(String filename) – lex82 May 5 '14 at 17:54
2

Play includes the SnakeYAML parser. From their docs:

Yaml yaml = new Yaml();
String document = "\n- Hesperiidae\n- Papilionidae\n- Apatelodidae\n- Epiplemidae";
List<String> list = (List<String>) yaml.load(document);
System.out.println(list);

['Hesperiidae', 'Papilionidae', 'Apatelodidae', 'Epiplemidae']

There is also a version of Yaml.load that takes an InputStream, which is demonstrated in this sample code: http://code.google.com/p/snakeyaml/source/browse/src/test/java/examples/LoadExampleTest.java

1
  • thanks for the tip, that was going to be precisely my next question ;-) – opensas Dec 23 '10 at 17:00
1

From Play 2.6 this is now in Environment. And I suggest using either .getExistingFile which returns an option in case file does not exist. Or .resource which returns a URL to anything in the classpath only.

https://www.playframework.com/documentation/2.6.x/api/scala/index.html#play.api.Environment

 class Someclass @Inject (environment: play.api.Environment) {
 // ...

 environment.getExistingFile("data/data.xml").fold{
   // NO FILE. PANIC
 }{ file =>
   // Do something magic with file
 }

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