11

I'd like to take a xml file from my classpath to unmarshal it and use it for testing purposes. My problem is to get it as an InputStream. I wrote these lines but I always get a null result.

InputStream is = getClass().getResourceAsStream("WebContent/WEB-INF/classes/testing/"+ COMPLETE_DOCUMENT + ".xml");

of course the path you see in the method argument is the one to my file. I tried several combinations:

WebContent/WEB-INF/classes/testing/
classpath:testing/
classpath*:testing/

but I always get the InputStream = null.

I even tried to switch to

 ClassLoader.getResourceAsStream(...)

but nothing happens. I suppose the path to the resource is somehow wrong, but I can't figure out where. From my servlet.xml I use some resource in the classpath configuring PropertyPlaceholderConfigurer or Jaxb2Marshaller just with the syntax

"classpath:folder/file.xsd"

and it works perfectly. The folder I want to load my xml from is a sibling of the one in the example above. What am I missing?

EDIT : I try to follow the spring ClassPathResource helper class approach and I get a strange behaviour: as I said before I already have some resources loaded from the classpath by some spring beans at the startup. If I use the path to such resources in the code suggested by dardo in as follows:

ClassPathResource cpr = new ClassPathResource("xmlschemas/lrinode.xsd");
InputStream is = cpr.getInputStream();

I Still get a FileNotFound Exception! Of course "xmlschemas/lrinode.xsd" is a xsd I load at the startup successfully. It doesn't work even if I use the full path to the resource, starting from the root of the application.

I'm starting to think I'm missing something trivial.

20

Spring provides a helper class named ClassPathResource

So something like:

ClassPathResource cpr = new ClassPathResource("folder/file.xsd");
InputStream is = cpr.getInputStream();

Should work, hope this helps!

Link to API Doc: http://static.springsource.org/spring/docs/3.0.x/api/org/springframework/core/io/ClassPathResource.html

Sidenote

Also, if you're using it for testing purposes, might want to wire a bean mapped to the xsd.

Might want to look into a JAXB marshaller

http://static.springsource.org/spring-ws/site/reference/html/oxm.html#oxm-jaxb2-xsd

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  • thanks, I'm interested in this helper class. I tried your solution but I still get "java.io.FileNotFoundException: class path resource [testing/sample_complete_document.xml] cannot be opened because it does not exist" exception. The file name is the actual name to the file in my classpath. PS. I already use JAXB2 ^__^ – MaVVamaldo Mar 3 '12 at 11:07
  • Whats the full path if the xml document – dardo Mar 3 '12 at 15:38
  • the fullpath of the xml document is the following: /VirtualResource2/WebContent/WEB-INF/classes/testing/sample_complete_document.xml. Of Course "VirtualResource2" is the name of my web application. – MaVVamaldo Mar 4 '12 at 8:50
  • What is the path before you compile i should have asked, if its under the web-inf folder before you compile it isnt visible to the classpath – dardo Mar 4 '12 at 14:13
  • 1
    If you are using maven, place it in src/main/resources/test.xml then it would be new classpathresource("test.xml") – dardo Mar 4 '12 at 21:12
3

You need a combination you didn't try:

getClass().getResourceAsStream("/testing/"+ COMPLETE_DOCUMENT + ".xml");

The WebContent/WEB-INF/classes directory should already be on the classpath.

The classpath: syntax only works if you're using Spring's ResourceLoader abstraction, which you aren't. Your usage of classpath:folder/file.xsd in your servlet.xml woprks because Spring's passing it through a ServletContextResourceLoader, which resolves classpath: automatically.

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  • thank you for your explanation, now the mist is clearing. Unluckly neither the solution you suggest works in my project. I suppose that the "classes" directory is in the classpath since it is located by the "classpath:" syntax working for the spring context, right? Uh... ok, I admit it. I'm not sure of what a classpath exaclty is. Very embarassing to say. I assume it is everything I can see from the root of my eclipse project in the package explorer. I know it is a variable, but I think eclipse would manage it automatically... – MaVVamaldo Mar 2 '12 at 16:40
  • @maVVamaldo: Make sure you include the leading slash in the path. I added that a few seconds after my initial answer. – skaffman Mar 2 '12 at 16:42
  • for the sake of completeness, this is the exact fragment of code I tried. InputStream is = getClass().getResourceAsStream("/testing/"+ COMPLETE_DOCUMENT + ".xml"); – MaVVamaldo Mar 2 '12 at 16:45
0

When you call Class.getResourceAsStream() with resource name without leading slash, it assumes you are requesting resource relative to a current package (i.e. package of the caller class). To make it an absolute resource path you need to add leading slash to resource name, e.g. in your case "/testing/"+ COMPLETE_DOCUMENT + ".xml"

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