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This says the range of long in Java is -9,223,372,036,854,775,808 to 9,223,372,036,854,775,807. But when I do something like this in my eclipse

long i = 12345678910;

it shows me "The literal 12345678910 of type int is out of range" error.There are 2 questions.

1) How do I initialize the long with the value 12345678910?

2) Are all numeric literals by default of type int?

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3 Answers

up vote 95 down vote accepted
  1. You should add L: long i = 12345678910L;.
  2. Yes.

BTW: it doesn't have to be an upper case L, but lower case is confused with 1 many times :).

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  1. You need to add the L character to the end of the number to make Java recognize it as a long.

    long i = 12345678910L;
    
  2. Yes.

See Primitive Data Types which says "An integer literal is of type long if it ends with the letter L or l; otherwise it is of type int."

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You need to add uppercase L at the end like so

long i = 12345678910L;

Same goes true for float with 3.0f

Which should answer both of your questions

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