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Recently, I read this article: http://download.oracle.com/javase/tutorial/extra/generics/wildcards.html

My question is, instead of creating a method like this:

public void drawAll(List<? extends Shape> shapes){
    for (Shape s: shapes) {
        s.draw(this);
    }
}

I can create a method like this, and it works fine:

public <T extends Shape> void drawAll(List<T> shapes){
    for (Shape s: shapes) {
        s.draw(this);
    }
}

which way should I use? Is wildcard useful in this case?

Thank you very much

share|improve this question
    
? is a shorthand notation; internally compiler replaces it with a type parameter anyway; when there's compiler error, you'll see the surrogate type parameter, instead of the ? –  irreputable Aug 15 '10 at 18:18
    
thank you very much :) –  Tony Le Aug 16 '10 at 8:06
1  
correction: my previous comment is WRONG. wildcard is more sophisticated than I thought. –  irreputable Aug 23 '10 at 17:46

3 Answers 3

up vote 38 down vote accepted

It depends on what you need to do. You need to use the bounded type parameter if you wanted to do something like this:

public <T extends Shape> void addIfPretty(List<T> shapes, T shape) {
    if (shape.isPretty()) {
       shapes.add(shape);
    }
}

Here we have a List<T> shapes and a T shape, therefore we can safely shapes.add(shape). If it was declared List<? extends Shape>, you can NOT safely add to it (because you may have a List<Square> and a Circle).

So by giving a name to a bounded type parameter, we have the option to use it elsewhere in our generic method. This information is not always required, of course, so if you don't need to know that much about the type (e.g. your drawAll), then just wildcard is sufficient.

Even if you're not referring to the bounded type parameter again, a bounded type parameter is still required if you have multiple bounds. Here's a quote from Angelika Langer's Java Generics FAQs

What is the difference between a wildcard bound and a type parameter bound?

A wildcard can have only one bound, while a type parameter can have several bounds. A wildcard can have a lower or an upper bound, while there is no such thing as a lower bound for a type parameter.

Wildcard bounds and type parameter bounds are often confused, because they are both called bounds and have in part similar syntax. […]

Syntax:

  type parameter bound     T extends Class & Interface1 & … & InterfaceN

  wildcard bound  
      upper bound          ? extends SuperType
      lower bound          ? super   SubType

A wildcard can have only one bound, either a lower or an upper bound. A list of wildcard bounds is not permitted.

A type parameter, in constrast, can have several bounds, but there is no such thing as a lower bound for a type parameter.

Quotes from Effective Java 2nd Edition, Item 28: Use bounded wildcards to increase API flexibility:

For maximum flexibility, use wildcard types on input parameters that represent producers or consumers. […] PECS stands for producer-extends, consumer-super […]

Do not use wildcard types as return types. Rather than providing additional flexibility for your users, it would force them to use wildcard types in client code. Properly used, wildcard types are nearly invisible to users of a class. They cause methods to accept the parameters they should accept and reject those they should reject. If the user of the class has to think about wildcard types, there is probably something wrong with the class's API.

Applying the PECS principle, we can now go back to our addIfPretty example and make it more flexible by writing the following:

public <T extends Shape> void addIfPretty(List<? super T> list, T shape) { … }

Now we can addIfPretty, say, a Circle, to a List<Object>. This is obviously typesafe, and yet our original declaration was not flexible enough to allow it.

Related questions


Summary

  • Do use bounded type parameters/wildcards, they increase flexibility of your API
  • If the type requires several parameters, you have no choice but to use bounded type parameter
  • if the type requires a lowerbound, you have no choice but to use bounded wildcard
  • "Producers" have upperbounds, "consumers" have lowerbounds
  • Do not use wildcard in return types
share|improve this answer
    
Thank you very much, your explanation is very clear and instructive –  Tony Le Aug 16 '10 at 8:02
1  
@Tony: The book also has a short discussion on how to choose between wildcard vs type parameter when there is no bound. Essentially, if the type parameter appears only once in a method declaration, use wildcard. See also the reverse(List<?>) example from JLS java.sun.com/docs/books/jls/third_edition/html/… –  polygenelubricants Aug 16 '10 at 8:17
1  
Thank you very much:) –  Tony Le Aug 23 '10 at 13:07
    
I am getting the UnsupportedOperationException for the following code, <code>public static <T extends Number> void add(List<? super T> list, T num) { list.add(num); }</code> –  Samra Sep 23 '13 at 5:30

In your example you don't really need to use T, since you don't use that type anywhere else.

But if you did something like:

public <T extends Shape> T drawFirstAndReturnIt(List<T> shapes){
    T s = shapes.get(0);
    s.draw(this);
    return s;
}

or like polygenlubricants said, if you want to match the type parameter in the list with another type parameter:

public <T extends Shape> void mergeThenDraw(List<T> shapes1, List<T> shapes2) {
    List<T> mergedList = new ArrayList<T>();
    mergedList.addAll(shapes1);
    mergedList.addAll(shapes2);
    for (Shape s: mergedList) {
        s.draw(this);
    }
}

In the first example you get a bit more type safety then returning just Shape, since you can then pass the result to a function that may take a child of Shape. For example you may pass a List<Square> to my method, and then pass the resulting Square to a method that only takes Squares. If you used '?' you would have to cast the resulting Shape to Square which would not be type safe.

In the second example you ensure that both lists have the same type parameter (which you can't do with '?', since each '?' is different), so that you can create a list that contains all elements from both of them.

share|improve this answer
    
I believe Shape s = ... should be T s = ..., otherwise return s; shouldn't compile. –  polygenelubricants Aug 15 '10 at 15:09
    
Indeed, thanks! –  Andrei Fierbinteanu Aug 15 '10 at 18:33
    
thank you Andrei –  Tony Le Aug 16 '10 at 8:02

The second way is a bit more verbose, but it allows you to refer T inside it:

for (T shape : shapes) {
    ...
}

That's the only difference, as far as I understand.

share|improve this answer
    
thank you Nikita :) –  Tony Le Aug 16 '10 at 8:04

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