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ArrayList<Integer> arrI = new ArrayList<Integer>();
ArrayList arrO = arrI; // Warning
/*  It is ok to add a String as it is an ArrayList of Objects
    but the JVM will know the real type, arrO is an arrayList of
    Integer... 
*/
arrO.add("Hello"); 
/*  How I can get a String in an ArrayList<Integer> ?? 
    Even if the compiler told me that I will get an Integer!
*/
System.out.println(arrI.get(0));

Anybody can explain what's happening here?

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Did you read and understand the warning? The warning told you that by writing this code you are bypassing all the compile time type checks for arrI. –  DJClayworth Nov 14 '11 at 19:17
    
@DJClayworth ok, but the last line is really wierd –  JohnJohnGa Nov 14 '11 at 19:22

3 Answers 3

up vote 3 down vote accepted

The JVM doesn't know the real type, because generics are implemented via type erasure.

In terms of bytecode (and therefore runtime behaviour), your code is equivalent to:

ArrayList arrI = new ArrayList();
ArrayList arrO = arrI;
arrO.add("Hello"); 
System.out.println(arrI.get(0));
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Due to type erasure generics doesn't exist at runtime. In practice that means your arraylist can carry any type of object. Generics is only a programmer conveniance which lets the compiler verify some of your code for correctness.

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At runtime the generics information is lost. It only prevents errors at compile time.

If you try arr1.add("Hello"); it will throw an error at compile time as arr1 has been declared as ArrayList but as arr0 can be assigned arr1 at any point in runtime - it has to allow it.

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