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Hi I am trying to do some calculations for a unit converter im creating and have stumbled upon a problem.

out10 = doubleInput / 94605284000000000000000L;

Eclipse says that "The literal of type long is out of range", I didn't even think this was possible, but maybe some f you know how to work around it ?

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Why didn't you think it was possible? Did you believe longs had unlimited size? longs are 64-bit signed integers in java. –  GregS Jan 5 '12 at 1:19
    
Because im not used to using long and double, I don't know what their maximums and minimums are, always used int or real as datatypes in the past –  Ben Reddicliffe Jan 5 '12 at 1:24

3 Answers 3

up vote 3 down vote accepted

You could make it a double literal instead of a long literal, with some loss of accuracy. Assuming doubleInput is also a double, and the output is as well, then there's no reason not to do that. If you need a really big integer constant with perfect accuracy, use a bignum (google it).

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How would I go about changing this from a long literal to a double literal, as both the output and doubleInput are doubles ? –  Ben Reddicliffe Jan 5 '12 at 1:15
2  
Remove the L and add a decimal point. You can also format a double literal in java like 9.46e20D where 20 is whatever the exponent should be for that number in scientific notation. –  Dan Jan 5 '12 at 1:18
    
94605284000000000000000d is a double literal –  Peter V Jan 5 '12 at 1:18
    
Sure, but that's ugly. –  Dan Jan 5 '12 at 1:19
2  
java has a BigInteger class. –  GregS Jan 5 '12 at 1:21

Type long cannot hold such a big value. I suggest you try type BigDecimal, which can hold values of any size.

new BigDecimal("94605284000000000000000") should work.

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In this case, there are basically two steps involved:

  • Parsing the literal to a valid value for that literal type (int in your example).
  • Converting that value to the target type.

See the following expressions.

int z = (int) 2147483647; //Compiles.
int a = (int) 2147483648; //Doesn't compile, because the literal `2147483648` is outside the range of `int`.
int b = (int) 2147483648L;  //Compiles.

In your example, out10 = doubleInput / 94605284000000000000000L;, the compiler first assumes the literal 94605284000000000000000 as an int type which is outside the valid range of int (from -2,147,483,648 to 2147483647). Therefore, it issues a compiler error.

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