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From Programming Scala book I read that in following code configFilePath constant will be type of Unit:

scala> val configFilePath = if (configFile.exists()) {
| configFile.getAbsolutePath()
| }
configFilePath: Unit = ()

But when I execute this code in REPL I get result of type Any. Why?

The book examples use Scala 2.8, and I use Scala 2.10.

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It's not an if statement, it's an if expression. If it were a statement, it wouldn't have a return type, since statements don't return anything. –  Jörg W Mittag May 8 '13 at 9:45

3 Answers 3

up vote 6 down vote accepted

if (cond) { expr } returns common base type of Unit and type of expr, just like if (cond) { expr } else { () }.

It is AnyVal for Int, Char and so on, Unit for Unit and Any for AnyRef:

scala> if ( false ) 1
res0: AnyVal = ()

scala> val r = if ( false ) { () }
r: Unit = ()

scala> if ( false ) ""
res1: Any = ()
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As always, an if statement evaluates a logical condition and has to return a logical result. Therefore: scala.Boolean. But the value is not in a return per say. The result of the evaluation is used in execution, but as you are doing it:

val configFilePath = if (configFile.exists()) {
    configFile.getAbsolutePath();// say this returns a String.
};

But what if that configFile.exists() returns false? Nothing will be placed into that variable, therefore the compiler will infer the type to Any, which makes sense since you provided no way to conclude the type.

Also, you are probably better off using match.

val configFilePath = configFile.exists match {
    case true => Some { configFile.getAbsolutePath }
    case false => None
};

The above is deterministic and should return an Option[ReturnType], which is the default Scala way of handling such things.

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yes, I understand it. But why in book written that return type will be Unit and when I execute this in REPL i get Any? You think is just typo in book? Or something changed since Scala 2.8 (Book use Scala 2.8, I use 2.10)? –  MyTitle May 8 '13 at 9:25
    
Nice answer, I just wanted to add that the result of configFile.getAbsolutePath() needs to be wrapped in Some() for the return-type to be Option[String]. Otherwise the type-inference will take a common supertype of String and Option and again return Any. –  Jens Egholm May 8 '13 at 9:32
    
@MyTitle: same result (Any) on 2.8.2.final. Maybe it's about runtime type, not inferred type... –  senia May 8 '13 at 9:36

The if statement takes a statement/closure/variable. When using closures, the final statement is used to infer the type. Since configFile.getAbsolutePath() is a function evaluating to String. Unit subclasses Any meaning either of the following works:

val configFilePath:Any = if (configFile.exists()) {configFile.getAbsolutePath()}

and

val configFilePath:Unit = if (configFile.exists()) {configFile.getAbsolutePath()}

Edit

The case may be that the condition is evaluating to false for instance

val map = Map(1 -> "1")
val result = if(map.get(2)=="1") "Whoopie!"

result here would be type Any = () since there is no else and the value either doesn't exist or the value is not equal to 1 This would be more appropriate if you wish for the type to be String

val configFilePath = if (configFile.exists()) {configFile.getAbsolutePath()} else ""
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configFile.getAbsolutePath() is a function evaluating to Unit - it's evaluated to String –  MyTitle May 8 '13 at 9:40
    
And it's not a function. –  Jörg W Mittag May 8 '13 at 9:44
    
I've edited my answer to reflect other possibilities. configFile.getAbsolutePath() is a function unless I'm missing something. –  korefn May 8 '13 at 9:50
    
It's a method, not a function. –  Jörg W Mittag May 8 '13 at 10:44
    
Oh, and if is not a statement, it's an expression. If it were a statement, it wouldn't have a return value, that's the definition of "statement". –  Jörg W Mittag May 8 '13 at 10:45

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