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If I have

    Float f1 = 5.25f;
    Float f2 = 5.25f;

Then

    f1 == f2 

is false. Though

    f1.equals(f2);

is true. Why is it so, I thought that if the unboxing is executed, then f1 == f2 should compare

f1.floatValue() == f2.floatValue();

the same as

f1.equals(f2); 

should do. What is wrong?

UPDATE: No I see the answer, because Java compares references for Float objects too. I asked the question because I had

    Long l = 15l;
    Long l2 = 15l;

But the

    System.out.println(l == l2);

output was

    true

So I was misleaded, and thought that numeric type objects are compared by value when using ==. But I found, that comparison of small long values will return true, because small long values are cached!

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9  
because they are objects and == compares references. –  njzk2 Mar 3 '14 at 19:38
    
@njzk2 sounds like an answer to me :) –  C.B. Mar 3 '14 at 19:38
2  
There is no reason to unbox, as none of the arguments calls for a primitive comparison –  njzk2 Mar 3 '14 at 19:39
1  
For the same reason that comparing two equal String values with == can return false. Since they are both Float, no unboxing occurs. Why would it? –  David Conrad Mar 3 '14 at 19:39
    
And why would u use Float class instead of primitive float data-type? –  MeetM Mar 3 '14 at 19:40

2 Answers 2

up vote 3 down vote accepted

f1 and f2 are objects.

== compares references.

There is no reason to unbox, as none of the arguments calls for a primitive comparison

If you compare f1 == 3.0f or f1 == f2.floatValue(), there will be unboxing, because one og the operands is a primitive.

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also have to take into account epsilon when comparing floating point numbers in almost any language –  staticx Mar 3 '14 at 19:43

Simply put:

  • == compares the references.
  • .equals compares the values.

The same is true for String(s) and all other objects.

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