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I am trying to figure out how to compare two items within a T[] array, here is what I have:

public static <T extends Comparable< ? super T>> T getLargest(T [] a, int low, 
               int high){
    if(low>high)
            throw new IllegalArgumentException();
    T[] arrCopy = (T[]) new Object[high-low];
    for(int i=low;i<high;i++){
        if(a[i].compareTo(a[i-1])>0)
            arrCopy[i]=a[i];
        else
            arrCopy[i]=a[i+1];
    }
    return arrCopy[0];
}

and then I get the error: Exception in thread "main" java.lang.ClassCastException: [Ljava.lang.Object; cannot be cast to [Ljava.lang.Comparable;

Any ideas on how I can resolve this? Thanks in advanced!

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You're missing a "throws" clause in your method header, specifically a "throws IllegalArgumentException". –  0xCAFEBABE Oct 17 '11 at 15:20
    
@0xCAFEBABE IllegalArgumentException is a runtime exception and does not need to be declared –  Sean Patrick Floyd Oct 17 '11 at 15:24
    
Thanks, I did not know that. –  0xCAFEBABE Oct 17 '11 at 15:26
4  
That must be the most roundabout version to implement a max() method ever thought of xX You obviously don't need any array here. –  Voo Oct 17 '11 at 15:26
    
@Voo: i don't think it implements maximum –  newacct Oct 17 '11 at 21:55
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6 Answers 6

up vote 5 down vote accepted

You can assign the array like this:

@SuppressWarnings("unchecked")
T[] arrCopy = (T[]) Array.newInstance(a.getClass().getComponentType(), high-low);

Although the unchecked warning is necessary, this should actually be safe.

Btw, if you want to find the largest element in an array, here's a oneliner:

public static <T extends Comparable<T>> T max(final T[] data) {
    return Collections.max(Arrays.asList(data));
}

For the complete problem you can use one of these two (they are equivalent):

public static <T extends Comparable<T>> T maxA(final T[] data,int from, int to) {
    return Collections.max(Arrays.asList(Arrays.copyOfRange(data, from, to)));
}
public static <T extends Comparable<T>> T maxB(final T[] data,int from, int to) {
    return Collections.max(Arrays.asList(data).subList(from, to));
}
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Thanks, that would work perfectly, but I need to give the slice in the array where I want to look the largest number, int low and int high. –  randomizertech Oct 17 '11 at 15:34
    
@fgualda87 ok, combine my oneliner with Arrays.copyOfRange(), see my update –  Sean Patrick Floyd Oct 17 '11 at 15:35
2  
I think List.subList is preferable, as it doesn't copy any data - it's just a view. –  Puce Oct 17 '11 at 15:44
    
@Puce in princible, yes, but Arrays.copyOfRange() uses System.arrayCopy() which uses native system routines and is extremely fast –  Sean Patrick Floyd Oct 17 '11 at 15:46
1  
@Sean Patrick Floyd: a fast copy implementation is still slower and takes more memory than just a view, which doesn't copy at all. –  Puce Oct 17 '11 at 15:50
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not sure why you create an entire new array when you only care about 1 object, but the issue has nothing to do with generics. you can't cast an Object[] to some more specific type like String[], just like you can't write String s = new Object().

seeing as you only care about the largest value, it would make much more sense to only track 1 value (the biggest value seen so far), not the entire array.

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You get the error here:

T[] arrCopy = (T[]) new Object[high-low];

You cannot cast the mother object of all objects (java.lang.object) to anything that has java.lang.comparable as the lowest common denominator, so the exception is thrown. An object (as in java.lang.object) does not implement java.lang.comparable.

In your specific example, you would need to create an array of T (or at the very least java.lang.comparable).

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You actually cannot construct arrays of type T. For example, have a look at how java.util.ArrayList is implemented. –  Dilum Ranatunga Oct 17 '11 at 15:33
    
@DilumRanatunga true, but given an existing array, you can access it's component type (see my answer) –  Sean Patrick Floyd Oct 17 '11 at 15:40
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There's no reason to assume that an array of Object instances is fit for treatment as an array of Comparable instances. You're forcibly casting Object down to T, which we expect extends Comparable, but that unchecked assignment isn't even necessary here.

Instead, consider an implementation that does not copy any of the array:

public static <T extends Comparable<? super T>>
T getLargest(T[] a, int first, int last)
{
  // Don't tolerate an empty range:
  if (first >= last)
    throw new IllegalArgumentException();
  // Eventually checked by subsequent use of array index operator:
  if (first < 0 || first >= a.length ||
      last < 0 || last >= a.length)
    throw new IndexOutOfBoundsException();

  T largest = a[first];
  while (++first != last)
  {
    final T candidate = a[first];
    if (candidate.compareTo(largest) > 0)
      largest = candidate;
  }
  return largest;
}

Alternately, use Collections#max(), supplying your array viewed as a List after passing it through Arrays#asList().

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Use:

public static <T extends Comparable<? super T>> T max(final T[] data, int fromIndex, 
               int toIndex) {
    return Collections.max(Arrays.asList(data).subList(fromIndex, toIndex));
}
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Just change new Object[high-low]; to new Comparable[high-low];. Generics are erased to their lower bound, so T is erased to Comparable.

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