6

Code:

public class CompareTest {

    public static void main(String[] args) {

        ArrayList list =  new ArrayList();
        (list).add(new CompareTest());  


        Arrays.sort(list.toArray()); //Does not throw Exception , why ?
        Collections.sort(list);   //throws ClassCastException
    }

}

As per Java Doc: Arrays#sort

Sorts the specified array of objects into ascending order, according to the natural ordering of its elements. All elements in the array must implement the Comparable interface.

Why does Arrays#sort , doesnt throw ClassCastException as stated by JavaDoc ?

7

Because the source code of Arrays.sort() has this shortcut :

    int nRemaining  = hi - lo;
    if (nRemaining < 2)
        return;  // Arrays of size 0 and 1 are always sorted

So it doesn't bother checking if the elements of the array implement Comparable, because it doesn't have to sort an array that has only one element.

Note that the javadoc doesn't guarantee that a ClassCastException is thrown.

  • Interesting - the same thing was "fixed" in TreeMap in Java 7, but apparently not in Arrays... – assylias Mar 16 '13 at 14:31
  • So javadoc can be deceiving. – Apurv Mar 16 '13 at 14:35
2

Because it has only one element...And the Array.sort() will end without sorting if there are elements less than 2

0

The reason is that list has only one elemnt,the compareTo method never invoked in Arrays.sort,so the element is never cast to Comparable.

but it's invoked anyway in Collections.sort:

public static <T extends Comparable<? super T>> void sort(List<T> list) {
Object[] a = list.toArray();
Arrays.sort(a);
ListIterator<T> i = list.listIterator();
for (int j=0; j<a.length; j++) {
    i.next();
    i.set((T)a[j]);
}
}

all elemnt is casting to T which extends from Comparable

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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