Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Compiling with -Wconversion,

uint32_val = 0x00000C00;
uint_8_val = ((uint32_val >> 8) & 0x000000FF);

gives no warning.

What compiler flag shall I use to get a warning?

share|improve this question
Why it happens, I believe -Wconversion will not warn when the conversion will not result in a value change (which it won't in your case due to the and-mask). From the gcc docs for -Wconversion "Does not warn... or if the value is not changed by the conversion.." Which flag to use? Dunno, I use clang. sry. –  WhozCraig Dec 3 '13 at 16:11
This code should not give warning, but I understand what you want. have you tried this? uint_8_val = ((uint32_val >> 8) & 0x1FF); If it gives warning you are fine, I quess. But my bet goes for you get an error for this. :-) –  Kobor42 Dec 3 '13 at 16:18
Yes, the compiler seems to be smart and evaluates/calculates the expression, and if the end result fits the variable to the left everything is fine. I would still like to have a warning =), but that is more my problem to adapt too it seems. –  temp Dec 3 '13 at 17:26

2 Answers 2

up vote 6 down vote accepted

There is no warning because the expression:

((uint32_val >> 8) & 0x000000FF)

is always convertible to a type that fits in a byte. Your uint32_val is not cast, but takes part in a calculation. The compiler can optimize this, and in this case it is clear the result after bit-wise and-ing with 000000ff will always fit the provided l-value type, hence no warning.

share|improve this answer
Yepp, seems that I am too "typed" of a programmer. But as you and others have explained the compiler seems to optimize as much as possible to fit the variable to the left. If it is unsuccessful it gives a warning (with wconversion). –  temp Dec 3 '13 at 17:19

Your code will compile fine. The type of plain constants is determined to be the best fitting.

You will get warning for this code:

uint32_val = 0x00000C00;
uint_8_val = ((uint32_val >> 8) & 0x000001FF);

Compilers shouldn't enforce coding guidelines. That's two different thing.

share|improve this answer
Since the result of this operation is no longer suitable for a byte-sized l-value, the compiler will be forced to implement an implicit conversion and will warn about it. –  DNT Dec 3 '13 at 16:52

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.