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Editorial Team
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Asked: 2026-05-13T16:08:57+00:00

If compiler is able to implicitly convert integer literal into byte type and assign

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If compiler is able to implicitly convert integer literal into byte type and assign the result to b ( b = 100; ), why can’t it also implicitly assign the result of an expression a+100 ( result is of type integer ) to b?

        byte a = 10;
        byte b = a; //ok
        b = 100; //ok
        b = a + 100;//error - explicit cast needed
        b = (byte)(a + 100); // ok

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1 Answer

  1. Editorial Team

    It’s all about static type safety – whether, at compile time, we can safety know the type of an expression. With a literal, the compiler can correctly tell that if it can be converted to a byte. In byte a = 20, 20 is convertible, so it all goes through fine. byte a = 257 won’t work (257 can’t be converted).

    In the case byte b = a, then we already know a is a byte, so type safety is assured. b = 100 is again fine (it’s statically known that 100 is convertible).

    In b = a + 100, it is not statically known if a + 100 is a byte. a could contain 200, so a + 100 is not representable as a byte. Hence the compiler forces you to tell it “Yes, a + 100 is always a byte” via a cast, by appealing to your higher level programmer knowledge.

    Some types of more advanced type systems don’t suffer from this problem, but come with their own problems that most programmers won’t like.

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