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Editorial Team
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Asked: 2026-05-23T13:57:47+00:00

This may sound too trivial for an intermediate Java programmer. But during my process

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This may sound too trivial for an intermediate Java programmer. But during my process of reviewing Java fundamentals, found a question:

Why is narrowing conversion like:

byte b = 13;

will be allowed while

int i = 13;
byte b = i;

will be complained by the compiler?

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1 Answer

  1. Editorial Team

    Because byte b = 13 ; is assignment of a constant. Its value is known at compile time, so the compiler can/should/will whine if assignment of the constant’s value would result in overflow (try byte b = 123456789 ; and see what happens.)

    Once you assign it to a variable, you’re assigning the value of an expression, which, while it may well be invariant, the compiler doesn’t know that. That expression might result in overflow and so the compiler whines.

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