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In the following code I have two identical conditional assignment operations, one returns an object of type Double, and the second returns the String "Integer".

double d = 24.0;

Number o = (d % 1 == 0) ? new Double(d).intValue() : new Double(d).doubleValue();
String result = (d % 1 == 0) ? "Integer" : "Double";

System.out.println(o.getClass()); // prints "class java.lang.Double"
System.out.println(result); // Integer

Why are the exact same expressions returning two different things?

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    @RichardTingle And here we all thought that ?: behaved the same as an if statement
    – Cruncher
    Commented Nov 1, 2013 at 15:22
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    I pretty much thought it was a more compact version of a simple if statement! Commented Nov 1, 2013 at 15:22
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    An if statement and the ternary operator ?: are different beasts. The former is a statement and as such has no value; the latter is an expression, and as such has a value, and that value needs a type -- the type chosen is basically the most specific type that applies to both "branches" of the ternary.
    – yshavit
    Commented Nov 1, 2013 at 15:22
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    It makes sense once you understand it, but I can see how easy it would be to get burnt by it Commented Nov 1, 2013 at 15:26

2 Answers 2

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Well, that is because of the JLS specs for the conditional operator:

Otherwise, if the second and third operands have types that are convertible (§5.1.8) to numeric types, then there are several cases:

  • ...
  • Otherwise, binary numeric promotion (§5.6.2) is applied to the operand types, and the type of the conditional expression is the promoted type of the second and third operands.

Numeric promotion is defined here in §5.6.2. It says:

Widening primitive conversion (§5.1.2) is applied to convert either or both operands as specified by the following rules:

  • If either operand is of type double, the other is converted to double.
  • ...
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    Thanks Martijn, very nice catch. Commented Nov 1, 2013 at 15:32
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    @SamuelO'Malley - You could "fix" it to get your expected output by casting both results of the ternary operation to Number, which will eliminate the need for the compiler to do numeric promotion: Number o = (d % 1 == 0) ? (Number)new Double(d).intValue() : (Number)new Double(d).doubleValue();
    – DaoWen
    Commented Nov 1, 2013 at 15:34
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    It's the conditional operator. It happens to be the only ternary operator at the moment, but that's not its name. That's why the link you've got is to "Conditional Operator ? :" rather than "Ternary Operator ? :"
    – Jon Skeet
    Commented Nov 1, 2013 at 15:41
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    @MartijnCourteaux: Yup - it's the equivalent of "unary" and "binary" but for three. It's a pet peeve of mine, and I'm longing for Java and C# to introduce another ternary operator just to make all previous statements about "the ternary operator" ambiguous :)
    – Jon Skeet
    Commented Nov 1, 2013 at 15:52
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    @yshavit: But wouldn't it be more useful to use the name of the operator? Is the most important thing about it really that it just has three operands? My objection is partly that people believe that "the ternary operator" really is its name, when it's just not.
    – Jon Skeet
    Commented Nov 1, 2013 at 16:20
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Well 0.0 is still == to 0

System.out.println(0 == 0.0); // equals true

http://docs.oracle.com/javase/specs/jls/se7/html/jls-15.html#jls-15.25

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  • This question is related to the type of a Boxed primative, not value Commented Nov 1, 2013 at 15:23
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    And yet, Double.valueOf(0).equals(Integer.valueOf(0)) is false -- and that's closer to the OP's situation.
    – yshavit
    Commented Nov 1, 2013 at 15:25
  • The type of a variable can be important to a values behaviour. For example 2/4==0, whereas 2.0/4.0==0.5. As such this is not purely academic Commented Nov 1, 2013 at 15:25
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    Also, note that 0 == 0.0 is only true because the left-hand side is promoted to a double (of value 0.0). If you'd tried to do something like int i = true ? 0 : 0.0 then you'd get a compile-time error, since true ? 0 : 0.0 has a type of double, which can't be assigned to int without explicit casting.
    – yshavit
    Commented Nov 1, 2013 at 15:28

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