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List<? super Integer> integers = new ArrayList<Number>();
List<? extends Number> integers2 = new ArrayList<Number>();
integers.add( new Integer(4));
integers2.add(new Integer(4));

I'm getting compiler error at last line, may i know why ? even though Integer does extends Number im getting the following error

The method add(capture#3-of ? extends Number) in the type List<capture#3-of ? extends 
 Number> is not applicable for the arguments (Integer)

marked as duplicate by pvpkiran, azro, Tim Castelijns, Michael java Jun 29 '18 at 12:55

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Because List<? extends Number> is not a List<Number>.

List<? extends Number> could be, for example, a List<Double> or a List<Float>:

List<? extends Number> integers2 = new ArrayList<Double>(); //valid

It would not be valid to add an integer to a list of doubles, which is why the compiler prevents you from doing this.

You should probably not be using a wildcard (?) in this situation.

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    i totally get it , but why its throwing the error in compile time, it can also be an INTEGER right – amarnath harish Jun 29 '18 at 12:49
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    this question has been asked and answered many times already. The usual course of action here is to close as duplicate rather than increase fragmentation of information – Tim Castelijns Jun 29 '18 at 12:51
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    @TimCastelijns True enough. I don't know why I went straight into auto-answer mode. Because I have gold badge dupe close privileges, I've made this a community wiki so I don't get rep unfairly from the question no longer being open for new answers – Michael Jun 29 '18 at 12:57
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    @amarnathharish Java is all about pushing problem detection to compile time. Generics are a safe feature that was introduced to move related bug detection to compile time. Java does not wait for the actual type to show up at runtime, it detects that this might lead to an error and throws a compile time error. If you want a List that accepts all numbers, then write List<Number>. It is important to note that ? extends Number does not mean everything that extends is valid and can be mixed. It is still locked to one single explicit type, defined by the caller. – Zabuza Jun 30 '18 at 10:11

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