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I understand in

Comparator < ? super T> comp

It returns the maximum element of the given collection, according to the order induced by the specified comparator. But I don't understand the the purpose of the

super T

Could anyone possibly explain?

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2 Answers 2

up vote 2 down vote accepted

In here < ? super T> means generics - NOT comparisons.

It means you have a Comparator with a generic type of ? super T (something that extends super typed by T), as explained in this thread

comp is the variable name (binding).

So basically in here Comparator < ? super T> is a type and comp is an identifier (variable name), that is of type Comparator <? super T>


For more info: Java Generics

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Thanks for the exploitation +1 –  Marcello Dec 9 '12 at 10:14

The term ? super T means "unknown type that is, or is a super class of, T", which in generics parlance means its lower bound is T.

This signature is used because T may be assigned to, and compared with, any variable whose type is, or is a super class of, T. Ie if a Comparator can accept a super class of T in its comoate() method, you can pass in a T.

This follows the PECS mnemonic: "Producer Extends, Consumer Super", which means that producers of things should work with things that have an upper bound ( ? extends T) and consumers (like comparator implementations that use things) should eork with lower bounds ( ? super T).

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Thanks for the exploitation +1 –  Marcello Dec 9 '12 at 10:15

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