8
long val = 5000000000;

The error during this assignment is "The literal 5000000000 of type int is out of range". Why does the compiler by default assumes the literal to be int??

18

You can use:

long val = 5000000000L;

Check it here

  • 1
    Oops did not see this answer when I wrote my answer. – MansoorShaikh Sep 12 '13 at 6:13
  • +1 , @MansoorShaikh No issues,Just explain in brief why you added L,then your answer should be valid :) – Suresh Atta Sep 12 '13 at 6:17
4

There is aspecific suffixes for long i.e L. If there is no suffix, then 5000000000 assumed to be an int type. And 5000000000 is out of int range, causing the erro. So you need to add L at the end of 5000000000 for it to be treated as a long value. Change your declaration from

long val = 5000000000;

to

long val = 5000000000L;
3

Add the letter L at the end of your number as shown below

long val = 5000000000L;

0

long: The long data type is a 64-bit signed two's complement integer. It has a minimum value of -9,223,372,036,854,775,808 and a maximum value of 9,223,372,036,854,775,807 (inclusive).

You should append 'l' or 'L' to the value explicitly used to initialize the variable; even as small as 0.

 long val = 0L;

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