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I just wonder why this compiles? and what does it mean since it does compile?

System.out.println(0xp0); // p?

OUTPUT:

0.0
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For me this does not compile, with javac 1.7.0_02. Only 0x0p0 does. –  Thom Wiggers Jul 25 '12 at 14:14
    
@TheGuyOfDoom I am using 1.7.0_05. –  Eng.Fouad Jul 25 '12 at 14:15
    
I'm by the way on the Sun JDK. that might be relevant. –  Thom Wiggers Jul 25 '12 at 14:16
    
See also: stackoverflow.com/questions/8603232/p-in-constant-declaration (I found the answers here to be clearer to the layman) –  Jonathan Newmuis Jul 25 '12 at 14:18
    
Have a looking in the Double class for examples like public static final double MAX_VALUE = 0x1.fffffffffffffP+1023; and public static final double MIN_NORMAL = 0x1.0p-1022; –  Peter Lawrey Jul 25 '12 at 14:18
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2 Answers

up vote 8 down vote accepted

It's a floating point hex literal.

For hexadecimal floating-point literals, at least one digit is required (in either the whole number or the fraction part), and the exponent is mandatory, and the float type suffix is optional. The exponent is indicated by the ASCII letter p or P followed by an optionally signed integer.

See the specification here.

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+1 Well, first time I know about floating point hex. –  Eng.Fouad Jul 25 '12 at 14:21
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The JLS explains it:

HexadecimalFloatingPointLiteral:
    HexSignificand BinaryExponent FloatTypeSuffixopt

HexSignificand:
    HexNumeral
    HexNumeral .
    0 x HexDigitsopt . HexDigits
    0 X HexDigitsopt . HexDigits

BinaryExponent:
    BinaryExponentIndicator SignedInteger

BinaryExponentIndicator:one of
    p P

Based on the above, I would expect a mandatory .HexDigit before the p, though.

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