Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I have a unit test that needs to work with XML file located in src/test/resources/abc.xml. What is the easiest way just to get the content of the file into String?

share|improve this question
2  
possible duplicate of What is simplest way to read a file into String in java – Nikita Rybak Oct 8 '10 at 14:12
2  
    
@Nikita, was going to vote to close despite my answer, but those questions don't mention getResourceAsStream() which I believe is the right approach for the OP's question. – Kirk Woll Oct 8 '10 at 14:17
    
@kirk, getResourceAsStream caches the file in the classloader. That is unnecessary. – Thorbjørn Ravn Andersen Oct 8 '10 at 16:13
    
@Thorbjørn, where is your reference for that? In any case, it certainly is convenient and portable which may in fact be necessary. – Kirk Woll Oct 8 '10 at 17:12
up vote 84 down vote accepted

Finally I found a neat solution:

package com.example;
import org.apache.commons.io.IOUtils;
public class FooTest {
  @Test 
  public void shouldWork() throws Exception {
    String xml = IOUtils.toString(
      this.getClass().getResourceAsStream("abc.xml"),
      "UTF-8"
    );
  }
}

Works perfectly. File src/test/resources/com/example/abc.xml is loaded (I'm using Maven).

If you replace "abc.xml" with, say, "/foo/test.xml", this resource will be loaded: src/test/resources/foo/test.xml

share|improve this answer
4  
Can do this as simply without external library dependency. – Glen Best Nov 5 '12 at 6:35
    
Should we close InputStream in this case? – dbf Mar 14 '14 at 12:23
    
@dbf good question... I think we should, but since it's a unit test, we don't really care :) – yegor256 Mar 14 '14 at 12:37
    
In which path have you stored "abc.xml"? – Benny Neugebauer Mar 26 '14 at 16:55
2  
@yegor256 since it's a unit test closing resources is particularly important. "Unit" tests should be fast and self contained, leaving resources open, potentially for the duration of the test run, means at best your tests run slower, and at worst fail in difficult-to-diagnose ways. – dimo414 May 27 '14 at 7:24

Assume UTF8 encoding in file - if not, just leave out the "UTF8" argument & will use the default charset for the underlying operating system in each case.

Quick way in JSE 6 - Simple & no 3rd party library!

import java.io.File;
public class FooTest {
  @Test public void readXMLToString() throws Exception {
        java.net.URL url = MyClass.class.getResource("test/resources/abc.xml");
        //Z means: "The end of the input but for the final terminator, if any"
        String xml = new java.util.Scanner(new File(url.toURI()),"UTF8").useDelimiter("\\Z").next();
  }
}

Quick way in JSE 7 (the future)

public class FooTest {
  @Test public void readXMLToString() throws Exception {
        java.net.URL url = MyClass.class.getResource("test/resources/abc.xml");
        java.nio.file.Path resPath = java.nio.file.Paths.get(url.toURI());
        String xml = new String(java.nio.file.Files.readAllBytes(resPath), "UTF8"); 
  }

Neither intended for enormous files though.

share|improve this answer
    
the 2nd example doesn't work, readAllBytes doesn't seem to accept URL... the closest I got to make it work is String xml = new String(java.nio.file.Files.readAllBytes(Paths.get(url.toURI())), "UTF8"); – Eran Medan Jun 13 '13 at 20:06
    
It does work - needs an argument of type Path. That's why I called it resPath. :) – Glen Best Jun 15 '13 at 0:36
    
Oh, right :) oops – Eran Medan Jun 15 '13 at 2:20
    
Am I missing something? You create the variable url and don't use it, and use a variable resPath without having creating it. Seems important to include the magic that makes it work. – roundar Aug 6 '13 at 2:14
1  
The above reads the file contents directly into a string in memory. So, for example, if you have 4GB of memory, then a file of somewhere between 1-4GB probably classifies as "enormous" because it will consume a very significant proportation of memory resources (page swapping to disk, aside). For large files, better to stream - read in chunks, not all at once. – Glen Best Nov 6 '13 at 3:19

Right to the point:

    ClassLoader classLoader = getClass().getClassLoader();
    File file = new File(classLoader.getResource("file/test.xml").getFile());
share|improve this answer
    
Works for me when using junit test and want to setup test by loading xls file into byte[] form. – Mubasher Mar 14 at 10:29

First make sure that abc.xml is being copied to your output directory. Then you should use getResourceAsStream():

InputStream inputStream = 
    Thread.currentThread().getContextClassLoader().getResourceAsStream("test/resources/abc.xml");

Once you have the InputStream, you just need to convert it into a string. This resource spells it out: http://www.kodejava.org/examples/266.html. However, I'll excerpt the relevent code:

public String convertStreamToString(InputStream is) throws IOException {
    if (is != null) {
        Writer writer = new StringWriter();

        char[] buffer = new char[1024];
        try {
            Reader reader = new BufferedReader(
                    new InputStreamReader(is, "UTF-8"));
            int n;
            while ((n = reader.read(buffer)) != -1) {
                writer.write(buffer, 0, n);
            }
        } finally {
            is.close();
        }
        return writer.toString();
    } else {        
        return "";
    }
}
share|improve this answer
    
What is your output directory? – yegor256 Oct 8 '10 at 14:42
    
@Vincenzo, usually "classes" though perhaps "bin". i.e. wherever you are compiling your classes to. Most IDEs already copy resource files such as xml files to that directory so you should probably take a quick peak and see if it's already there. – Kirk Woll Oct 8 '10 at 14:47
    
Looks like too much code in your case. I would better use some apache.commons.io.* class for file reading, and java.lang.Class.getResource(). What do you think? – yegor256 Oct 11 '10 at 11:39
    
A nice way to test it would be if you write the test cases in a ".properties" file with testKey = value and then you can load the InputStream directly. Example: Properties properties = new Properties(); properties.load(inputStream); String testCase = properties.getProperty("testKey"); – Benny Neugebauer Mar 26 '14 at 17:13

You can try doing:

String myResource = IOUtils.toString(this.getClass().getResourceAsStream("yourfile.xml")).replace("\n","");
share|improve this answer
    
Why are you stripping new lines? – zudduz May 19 at 19:02
    
@zudduz i'm sorry i don't remember, this was 2 years ago – Guido Celada May 20 at 13:53

Here's what i used to get the text files with text. I used commons' IOUtils and guava's Resources.

public static String getString(String path) throws IOException {
    try (InputStream stream = Resources.getResource(path).openStream()) {
        return IOUtils.toString(stream);
    }
}
share|improve this answer

One solution, which worked for me with the use of Google Guava:

import com.google.common.base.Charsets;
import com.google.common.io.Resources;

public String readResource(final String fileName, Charset charset) throws Exception {
        try {
            return Resources.toString(Resources.getResource(fileName), charset);
        } catch (IOException e) {
            throw new IllegalArgumentException(e);
        }
}

Usage:

String fixture = this.readResource("filename.txt", Charsets.UTF_8)
share|improve this answer

You can use a Junit Rule to create this temporary folder for your test:

@Rule public TemporaryFolder temporaryFolder = new TemporaryFolder(); File file = temporaryFolder.newFile(".src/test/resources/abc.xml");

share|improve this answer

I use the simplest way

private static String getResource(String resourceName) {
    try {
        return new String(Files.
                readAllBytes(Paths.
                        get(<Your Class Name>.class.
                                getResource("/" + resourceName).toURI())));
    } catch (URISyntaxException | IOException ex) {
        LOGGER.log(Level.SEVERE, "Not able to load resource " + resourceName, ex);
        return "";
    }
}

Other alternative is

InputStream stream = this.getClass().getResourceAsStream("/your/resource.xml");
String xml = new Scanner(stream).
            useDelimiter("\\Z").next();
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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