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int x = 5;
System.out.println((x>5)?2.3:2); // OP-> 2.0
System.out.println((x==5)?10:20);// OP-> 10

why in 1st case, the OP converted to 2.0 from 2?

TIA!!

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3 Answers 3

up vote 2 down vote accepted

(x>5)?2.3:2 since you are returning 2.3 or 2.

They should be from the same type. (Since the return type should be the same)

Since 2.3 is double, 2 is converted to double.

If you change for example to:

(x>5)?1:2

Then the output will be 2. Since both are integers and no cast needs to be done.

Writing it with if will look like this:

if(x > 5) 
   return 2.3
else
   return 2

If the return type of the method that includes this code is int you'll get an error.

But if it's double, then you're OK, since 2 will be cast to 2.0.

Read about the this more.

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1  
Thanks Maroun:) its crystal clear now. –  Anushree Acharjee Apr 11 '13 at 8:15

Well, you have the ternary operator ?:: (x>5) ? 2.3 : 2 This operator has exactly one return type - which must match both cases -> therefore return type float for 2.3

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In the Java Language Specification 15.25 you can see why it is happening. The ternary operator has a type. In this concrete case, the second and third operands have types that are convertible to numeric types, so binary numeric promotion is applied.

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