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How can I instantiate an object of the class java.lang.Class from a given .java file?

I want to create an application to automatically generate JUnit tests. For that I would need "Method" objects and for "Method" objects I need to have a "Class" object.

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I want to create an application to automatically generate JUnit tests. For that I would need "Method" objects and for "Method" objects I need to have a "Class" object. –  Nice Books Jul 23 '12 at 0:39
    
@NiceBooks You should probably be a little more specific still. What exactly will be the input to your application? The source code you want to generate tests for? –  millimoose Jul 23 '12 at 0:48
    
@millimose For the moment, I am planning to do it from a .java/.class file, but later I want to do it for code (text) as well –  Nice Books Jul 23 '12 at 1:15

2 Answers 2

up vote 6 down vote accepted

java 6 onwards has an api for the compiler: http://www.javabeat.net/2007/04/the-java-6-0-compiler-api/

the link above includes an example.

here's another example - http://www.java2s.com/Code/Java/JDK-6/JavaCompilertoolshowyoucancompileaJavasourcefrominsideaJavaprogram.htm

to load the file once compiled you use a classloader. there's an example at http://tutorials.jenkov.com/java-reflection/dynamic-class-loading-reloading.html and another at http://www.javaworld.com/jw-10-1996/jw-10-indepth.html

you'd think there would be a library to simplify all this. i can't find one, but am still looking.

meanwhile, here's a really nice article from ibm that compiles a function and plots it - http://www.ibm.com/developerworks/java/library/j-jcomp/index.html

found one http://docs.codehaus.org/display/JANINO/Home - this is a library that simplifies the process. i would recommend configuring it to use the javax.tools API (see last sentence in the "what is Janino" paragraph).

sorry for the google snark earlier.


it just struck me that maybe you just want a class object.

if you have a class called MyClass then the associated class is Myclass.class. that's probably obvious, but perhaps that's all you need.

and if you have the class name in a string you can use this method - http://docs.oracle.com/javase/1.4.2/docs/api/java/lang/Class.html#forName(java.lang.String)

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I think you misunderstood the question. You can't instantiate an object from a file or dynamically changeable code. This is not supported by Java. –  Ramazan POLAT Jul 23 '12 at 0:28
    
why can't you use a classloader to load it once compiled? i have to wash the pots from dinner, but when i'm done i'll google that too. –  andrew cooke Jul 23 '12 at 0:30
    
@algorian To expand on andrew's last comment, use an URLClassLoader for classes written to the local file-system, or a custom class-loader for gaining resources from ..byte arrays or whatever. –  Andrew Thompson Jul 23 '12 at 0:34
    
This is like having JavaScript Eval() function in Java. But there is no Eval in Java and there can't be too. Because when you use for example Eval('alert()') you are telling JavaScript to run the code 'alert()' (without quotos). But in Java, there is no way to run a code without compiling it to a .class file. –  Ramazan POLAT Jul 23 '12 at 0:37
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@NiceBooks compiling a .java file not just allows to obtain a java.lang.Class object, it's the only way to do it! The JVM needs the bytecode and the only way of obtaining bytecode is compiling, in fact, that's what "compiling" really means: generating bytecode that can be run by the JVM –  Alonso Dominguez Jul 23 '12 at 0:47

Just don't know whether the question is still burning. I think it's more simple. If you do know the full class String name, why don't you use the Class.forName(className) method to obtain the class Object? For example, if the class name is yakam.yale.MyClass, just call the Class.forName("yakam.yale.MyClass"); and the game is played!

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