20

I know unsigned int can't hold negative values. But the following code compiles without any errors/warnings.

unsigned int a = -10;

When I print the variable a, I get a wrong value printed. If unsigned variables can't hold signed values, why do compilers allow them to compile without giving any error/warning?

Any thoughts?

Edit

Compiler : VC++ compiler

Solution

Need to use the warning level 4.

0
16

Microsoft Visual C++:

warning C4245: 'initializing' : conversion from 'int' to 'unsigned int', signed/unsigned mismatch

On warning level 4.

G++

Gives me the warning:

warning: converting of negative value -0x00000000a' to unsigned int'

Without any -W directives.

GCC

You must use:

gcc main.c -Wconversion

Which will give the warning:

warning: negative integer implicitly converted to unsigned type

Note that -Wall will not enable this warning.


Maybe you just need to turn your warning levels up.

3
  • Yes that's the issue. I made the warning level up and I am getting warning now. – Navaneeth K N Apr 19 '09 at 17:07
  • Ah, you are right. I edited my post with the correct information. I used g++ because he was using C++, and it turns out g++ doesn't even need -Wall or -Wconversion. However, when using just GCC, you do need -Wconversion (not -Wall) like you suggested. Thanks :) – GManNickG Apr 19 '09 at 17:30
  • Just to note, clang uses -Wconversion to raise this warning. – gerowam Jul 14 '18 at 14:15
14

Converting a signed int to an unsigned int is something known in the C standard as a "Usual arithmetic conversion", so it's not an error.

The reason compilers often don't issue a warning on this by default is because it's so commonly done in code there would be far too many 'false positive' warnings issued in general. There is an awful lot of code out there that works with signed int values to deal with things that are inherently unsigned (calculating buffer sizes for example). It's also very common to mix signed and unsigned values in expressions.

That's not to say that these silent conversions aren't responsible for bugs. So, it might not be a bad idea to enable the warning for new code so it's 'clean' from the start. However, I think you'd probably find it rather overwhelming to deal with the warnings issued by existing code.

0
2

-10 is parsed as an integer value, and assigning int to unsigned int is allowed. To know you are doing something wrong the compiler has to check whether your integer (-10) is negative or positive. As it is more than a type check, I guess it has been disabled for performance issues.

2

I am using g++ 4.9.2 and need to use -Wsign-conversion to make this warning appear.

gcc.gnu.org: Warnings about conversions between signed and unsigned integers are disabled by default in C++ unless -Wsign-conversion is explicitly enabled.

1
  • 1
    I am using g++ 9.3.0 and none of the above answers triggered the warning. This should be the right answer. – s.ouchene Jun 1 '20 at 13:25
1

For gcc compiler you can add

gcc -Wconversion ...

And this will produce the following warning

warning: converting negative value '-0x0000000000000000a' to 'unsigned int'

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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