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I need to print a formatted string containing scala.Long. java.lang.String.format() is incompatible with scala.Long (compile time) and RichLong (java.util.IllegalFormatConversionException)

Compiler warns about deprecation of Integer on the following working code:

val number:Long = 3243
String.format("%d", new java.lang.Long(number))

Should I change fomatter, data type or something else?

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Is it a typo that you're converting from a long to an Integer? – Kevin Wright Oct 21 '10 at 15:56
up vote 37 down vote accepted

You can try something like:

val number: Long = 3243
"%d".format(number)
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9  
There's also value in explaining why this should be the case. – Kevin Wright Oct 21 '10 at 18:35
    
.format in this case will be the method of StringLike which is implicitly created from string literal. – expert Jul 19 '13 at 1:50

The format method in Scala exists directly on instances of String, so you don't need/want the static class method. You also don't need to manually box the long primitive, let the compiler take care of all that for you!

String.format("%d", new java.lang.Integer(number))

is therefore better written as

"%d".format(number)
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@Bruno's answer is what you should use in most cases.

If you must use a Java method to do the formatting, use

String.format("%d",number.asInstanceOf[AnyRef])

which will box the Long nicely for Java.

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This works. Do you know why this won't cause a runtime error like with my RichLong approach? – Basilevs Oct 21 '10 at 16:42
2  
RichLong is, to Java, just some random class. Java expects to see a boxed primitive integer corresponding to "%d". So of course Java throws a fit when it gets a RichLong. The asInstanceOf[AnyRef] preferentially boxes into the java.lang class, not the Rich class. – Rex Kerr Oct 21 '10 at 18:09

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