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This number falls into the long range, so why do I get the error:

Exception in thread "main" java.lang.Error: Unresolved compilation problem: 
    The literal 8751475143 of type int is out of range 
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3 Answers 3

up vote 11 down vote accepted

Make it

long n = 8751475143L;

L will make it long literal

by default its int

An integer literal is of type long if it is suffixed with an ASCII letter L or l (ell); otherwise it is of type int (§4.2.1). The suffix L is preferred, because the letter l (ell) is often hard to distinguish from the digit 1 (one). [..]

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Why do you need to do this though? –  mark May 29 '12 at 14:19
2  
+1 First Correct Answer. –  Totero May 29 '12 at 14:20
2  
@mark as per the Java Language Specification: An integer literal is of type long if it is suffixed with an ASCII letter L or l (ell); otherwise it is of type int –  assylias May 29 '12 at 14:22
    
Which is completely different to e.g. C#, where an integer literal without suffix is of the smallest type it would fit into. But the Java approach forces you to make sure you really want to do what you wrote. –  Wormbo May 29 '12 at 14:27
    
Mark - it's just a slightly silly piece of design, like making bytes signed. Remember it, but don't agonise about it too much. –  Neil Coffey May 29 '12 at 14:37

The target of the assignment isn't taken into account when parsing the literal - so you need the L suffix:

long n = 8751475143L;

For the most part - and there are a few notable exceptions - the type of an expression is determined without much reference to its context. So as per section 3.10.1 of the JLS, an integer literal is of type int unless it has an l or L suffix, and the range of an integer literal of type int is of course limited to the range of int itslf.

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All numbers in java are treated as integers, unless you say otherwise (or you use a decimal separator - then they are treated as a floats).

So, if you write

long i = 1234;

java will tread the number 1234 as integer, and do the type-cast to long for you.

However, if you type:

long n = 8751475143;

Java cannot treat 8751475143 as integer, because it's out of range. You need to specify, that what you meant was long, by adding 'L' at the end:

long n = 8751475143L;

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