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Why does this code compile

final ArrayList<?> dp1 = new ArrayList<String>();

But this doesn't

final ArrayList<ArrayList<?>> dp2 = new ArrayList<ArrayList<String>>();
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marked as duplicate by Andy Thomas, McDowell, Paul Bellora, FDinoff, Makoto May 24 '13 at 15:12

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

6  
see: stackoverflow.com/q/440262/630384 – DHall May 24 '13 at 14:29
1  
The 'why' is a little more complicated. But, this will compile: final ArrayList<? extends List<?>> dp2 = new ArrayList<ArrayList<String>>(); – Sheldon Warkentin May 24 '13 at 14:30
up vote 6 down vote accepted

In

final ArrayList<?> dp1 = new ArrayList<String>();

The type argument ? is a wildcard which is a superset (not super-type) of String. So, ArrayList<?> is super type of ArrayList<String>.

But in

final ArrayList<ArrayList<?>> dp2 = new ArrayList<ArrayList<String>>();

The type argument ArrayList<?> (a parameterized type where ? just stands for some unkown type, and doesn't have anything to do with String) is not a wildcard, the wildcard would be ? extends ArrayList<?>, with an upper bound ArrayList<?>, which actually is a supertype of ArrayList<String>.

You can read about the rules regarding super/sub set/type in parameterized type here.

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It's quite complicated to understand, but in summary in your first code, String extends ? but the second one doesn't compile because ArrayList<String> does not directly inherit from ArrayList<?> you can look here if you want all the details. If you want your second example to compile you have to modify it to this :

final ArrayList<? extends ArrayList<?>> dp2 = new ArrayList<ArrayList<String>>();
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Does it imply - if I have class P { } and class C extends P { } then I can do ArrayList<P> a = new ArrayList<C>();? – Bhesh Gurung May 24 '13 at 16:27

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