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By "local filename" I mean that resource file is located in the same directory as class file. In the case below this is JUnitRunner.class file. Java's getResource() file can handle this if path does not start with /'

I can't figure out, how to do the same ClassPathXmlApplicationContext constructor?


package springtests;

import java.io.File;
import java.net.URISyntaxException;
import java.net.URL;

import org.junit.Test;
import org.slf4j.Logger;
import org.slf4j.LoggerFactory;
import org.springframework.context.support.ClassPathXmlApplicationContext;

public class JUnitRunner {

    private final static Logger log = LoggerFactory.getLogger(JUnitRunner.class);

    @Test
    public void test() throws URISyntaxException {

        String filename = "test01.xml";

        URL url = getClass().getResource(filename);


        File file = new File(url.toURI());
        log.info("File exists: {}", file.exists());

        try {
            new ClassPathXmlApplicationContext(filename);
        }
        catch(Exception e) {
            log.error("Can't load context", e);
        }

    }
}

the output follows

15:32:27,375 3    [main] INFO  springtests.JUnitRunner  - File exists: true
15:32:27,422 50   [main] INFO  org.springframework.context.support.ClassPathXmlApplicationContext  - Refreshing org.springframework.context.support.ClassPathXmlApplicationContext@ee3aa7: startup date [Thu Nov 01 15:32:27 MSK 2012]; root of context hierarchy
15:32:27,475 103  [main] INFO  org.springframework.beans.factory.xml.XmlBeanDefinitionReader  - Loading XML bean definitions from class path resource [test01.xml]
15:32:27,477 105  [main] ERROR springtests.JUnitRunner  - Can't load context
org.springframework.beans.factory.BeanDefinitionStoreException: IOException parsing XML document from class path resource [test01.xml]; nested exception is java.io.FileNotFoundException: class path resource [test01.xml] cannot be opened because it does not exist
    at org.springframework.beans.factory.xml.XmlBeanDefinitionReader.loadBeanDefinitions(XmlBeanDefinitionReader.java:341)
    at org.springframework.beans.factory.xml.XmlBeanDefinitionReader.loadBeanDefinitions(XmlBeanDefinitionReader.java:302)

...

UPDATE

XML file is located in the same folder as class file. It is visible from the fact that getResource() see it.

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where you placed test01.xml? If you're using maven, can you put it, for example, in folder test/resources/test01.xml and try again your test? –  user1516873 Nov 1 '12 at 12:57
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4 Answers 4

up vote 1 down vote accepted

so, your xml file in package springtests and correct creation of AppContext should be

new ClassPathXmlApplicationContext("springtests/test01.xml");
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this is absolute path, from the root; is it possible to use relative path, from the class location? –  Dims Nov 1 '12 at 13:06
    
you can use FileSystemXmlApplicationContext() in that case. –  user1516873 Nov 1 '12 at 13:13
    
How? Via Java resources API? not beautiful –  Dims Nov 1 '12 at 13:14
    
static.springsource.org/spring/docs/3.0.x/javadoc-api/org/… you can set path relative to VM working directory or absolute path. –  user1516873 Nov 1 '12 at 13:19
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I don't properly understand what is that you're asking, but have you tried:

new ClassPathXmlApplicationContext("classpath*:test01.xml");

That will search in all the classpath for test01.xml. You can read more about this in the Spring resources documentation page.

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I want to use specific place -- the same as class file. –  Dims Nov 1 '12 at 13:01
2  
@Augusto for ClassPath XMLApplicationContext set "classpath*" part isn't nessesary –  user1516873 Nov 1 '12 at 13:08
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It might need to configure DocumentBuilderFactory. Reference

Example :

@BeforeClass
public static void init() {
    System.setProperty("javax.xml.parsers.DocumentBuilderFactory", "com.sun.org.apache.xerces.internal.jaxp.DocumentBuilderFactoryImpl");
}
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It is possible to load an applicationcontext from a location relative to the current Class.

This is all you need to do to make it happen:

URL resourceUrl = JUnitRunner.class.getResource("test01.xml");
ApplicationContext applicationContext = new GenericXmlApplicationContext(new UrlResource(resourceUrl ));
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