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I've come across this code in one of the projects I'm working on

(This is in Java)

if (Boolean.TRUE.equals(foo.isBar()))

Foo#isBar() is defined as boolean isBar(), so it can't return null

Is there really any reason why it should be written that way? I myself would just write

if (foo.isBar())

, but perhaps I'm missing something subtle.

Thanks

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6  
perhaps foo.isBar() could return null? –  Kevin DiTraglia Oct 8 '12 at 3:56
    
@KDiTraglia No, isBar() returns boolean (NOT Boolean) –  user1508893 Oct 8 '12 at 3:58

5 Answers 5

up vote 5 down vote accepted

Since isBar returns a primitive boolean, there is no semantic difference. Additionally, the second way is more concise, more clear, and more efficient, since the result won't have to be autboxed for the call and then have the original boolean extracted again. Given all that, there is no reason to use the first method, and several to use the second, so use the second. I give a great deal of leeway to fellow coders, but I would sit down and have a chat with anyone who added something like that to professional code.

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+1 Is similar to if (true == foo.isBar()) or if (isTrue(foo.isBar())) They are needlessly verbose. I am not sure why some people prefer this. Perhaps some people prefer something which read more like English and find this reassuring. –  Peter Lawrey Oct 8 '12 at 6:22

I hope foo.isBar() returns a boolean. In that case you can always write if (foo.isBar()). If you foo.isBar() returns Boolean then it can be either Boolean.TRUE, Boolean.FALSE or NULL. In that case if (Boolean.TRUE.equals(foo.isBar())) makes sure the if block is executed in one scenario(TRUE) and omitted in remaining 2.

Over and above if (foo.isBar()) will fail, when foo.isBar() returns Boolean NULL.

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I would suspect "old legacy code with no good reason" - and in fact, I would contend it is worse. (I wonder how ints are compared ..)

The code that uses TRUE.equals requires a boxing conversion, an additional method call (and everything inside) and, in the end, it just looks sloppy.


The only reason I am aware of is if foo.isBar was typed as returning Boolean (not boolean) and where it may return null:

Boolean b = null;

// throws an exception when it tries to unbox b because it is null
boolean isTrue1 = (boolean)b;

// evaluates to false
boolean isTrue2 = Boolean.TRUE.equals(b);

// evaluates to false as well
boolean isTrue3 = b != null ? (boolean)b : false;
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isBar() returns a boolean (primitive value) –  user1508893 Oct 8 '12 at 3:59
    
@user1508893 Then I would say "there is no good reason". –  user166390 Oct 8 '12 at 4:00
    
yes, for some reason one sees a lot of these in pre-java5 code. Or written by programmers who did a lot of C coding in the past. –  Denis Tulskiy Oct 8 '12 at 4:19

Some people believe (myself not being one of them) that being overly explicit makes boolean conditions more readable. For example using

if(foo == true) instead of if(foo)

perhaps this is a similar case?

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I've heard of such viewpoints, though I disagree that they make anything more clear (especially those that already have a verb, like this isBar); but in any case Boolean.TRUE.equals(isBar) is a great deal more awkward and less clear than simply isBar. –  Kevin Oct 8 '12 at 4:15

in the first condition you are checking for the equality of Boolean object corresponding to true. and you are using the first condition in your code because your java version doesn't support autounboxing hence you need to use the boolean object.

What is the difference between Boolean.TRUE and true in Java?

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I know the difference between the two. I just wasn't sure why someone would do that since isBar() returns a primitive boolean –  user1508893 Oct 8 '12 at 4:07
    
if it returns primitive than there is no reason. –  rbhawsar Oct 8 '12 at 4:08

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