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What's the most efficient way of getting the class(es) created on a .java file? I have the .java file path and I need to get the class full name.

I can only remember:

  1. Compile it with JavaCompiler
  2. Using the file text to parse it with Eclipse ASTParser (or another)
  3. Infer the class name through part of the file path, but I don't know if this works for every cases
  4. Somehow, use a tool like javap (dind't really thought about this one)

EDIT

I have this file, located at C:\myfolder\MyClass.java (let's ignore package and folder association conventions):

package mypackage.mysubpackage;

public class MyClass 
{
    // my class implementation here

    public class MyInnerClass 
    {
        // my inner class implementation here
    } 
}

The full name of the classes declared in this file are:

  1. mypackage.mysubpackage.MyClass
  2. mypackage.mysubpackage.MyClass.MyInnerClass (I don't know if this one it's correct, but let's pretend it is)

How can I get those class when I only have the .java file path (C:\myfolder\MyClass.java) ?

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when you say you have the path, i assume you don't have the file name, right? –  Stephan Dec 13 '12 at 14:03
    
@rnunes please check my updated post. –  jWeaver Dec 13 '12 at 14:07
    
@Stephan: I have the .java full path. I'm going to edit the question now to make it more clear. –  rnunes Dec 13 '12 at 14:09
    
@rnunes you better do. –  jWeaver Dec 13 '12 at 14:14
1  
You already have made a wrong assumption: a single .java file can contain more than one class (it can contain a maximum of one public class, but many more classes in general, like inner classes or package access classes for example). The only reliable way to obtain all these class names is to parse the .java file properly and completely. –  Durandal Dec 13 '12 at 15:35
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5 Answers

up vote 1 down vote accepted

The only way to reliably obtain the names of the classes (mind that it may also define interfaces) files a .java file declares would be to really parse the java language contained in that file.

And even then you will need to know which compiler will be/has been used to compile the .java file, as a java compiler could use any naming convention it likes for anonymous classes (the Oracle compiler uses $1, $2..., but there is no strict need to mimic that behavior).

Considering these obstacles I believe its very hard to do from the .java files contents and simply impossible with the .java files path alone.

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i belive, whatsoever would be class/interface, all will end with class extension. AFAIC, he wanted to list all class name. I really don't know, whether he was asking, whether is it possible or not or himself consfused about his question. Nevertheless, he got the solution. We got relief. –  jWeaver Dec 13 '12 at 16:31
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The most effective way is Class.forName().getName()

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But Class.forname(string) needs the "the fully qualified name of the desired class", and I only have the .java file path. See docs.oracle.com/javase/1.4.2/docs/api/java/lang/… –  rnunes Dec 13 '12 at 13:17
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I have the .java file path and I need to get the class full name.

Which means, you know the path of .java file and you want the class name of each class file.

class Filter {

public static void main(String[] a) {
    Filter f = new Filter();
    String dirName = "D:\\Yourfolder\\";  // assuming your java file are located in D:\Yourfolder\
    f.finder(dirName);  // call the method for listing all the class file
}

public File[] finder(String dirName) {

    File dir = new File(dirName);

    return dir.listFiles(new FilenameFilter() {

        public boolean accept(File dir, String filename) {
            if(filename.endsWith(".class"))
            {
            System.out.println(filename);
            }
            return filename.endsWith(".class");

        }
    });

}

}

Replace dirName with your .java directory path.

share|improve this answer
    
No, all I have is a .java file path, and you're using a reference to a Class object (java.lang.String.class) –  rnunes Dec 13 '12 at 13:49
    
Even after the edit, it's not that, that we'll only give me the path of .class files. I'll edit the question, to make it more clear. –  rnunes Dec 13 '12 at 14:09
    
This should work, although only if the .class are in the same directory as the .java files (-d option, javac) –  Stephan Dec 13 '12 at 14:13
1  
so basically what you're saying is that the .class file doesn't exist. Then why all the fuss? "MyClass" should be enough! If this is not the case then you really need to rephrase the question better. –  Stephan Dec 13 '12 at 15:02
1  
@munes if you have the full path (taken that in compilation you do not specify a different path for the compiled files), then you also have the full class name. i still don't get what you're banging about –  Stephan Dec 13 '12 at 15:36
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To get the name of the class file Try this

      void printClassName(String classname) 


        {

          System.out.println("The class name " + classname +" is " + classname.getClass().getName());

        }
share|improve this answer
    
No, that code just prints the string you've passed and the name of String.class –  rnunes Dec 13 '12 at 13:47
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One approach is to scan the directory tree where your Java source files are located, and for each file ending in ".java", you take its full folder path as a String and convert each dir separator to a '.' character. This will give you the fully qualified class name (FQCN). For example, if the path is: com\foo\fee\Foo.java, that becomes com.foo.fee.Foo.

Of course, this does not give you inner or nested classes and other advanced things, but these are created when you compile.

I have seen this kind of directory scanning in many frameworks, even Spring.

I am working on this in Groovy, so far I have:

File file = new File(rootSourcePath)

file.eachFileRecurse(FILES){
    def path =it.getAbsolutePath()
    println path

    if(path.endsWith(".java")){
           // to do the conversion here
    }
}

Hope this interpreted your question correctly.

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