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I have the following C code:

a = (b == B1) ? A1 : A2;

a, b, A1, A2 and B1 are all of type unsigned char. A1, A2 and B1 are all constants.

When compiling under VC++ I see the following warning:

warning C4244: '=' : conversion from 'int ' to 'unsigned char ', possible loss of data

I don't understand this warning - none of the variables are of type int. Presumably some kind of implicit conversion is happening, but why?

Strangely, the following code (which is functionally identical) compiles with no warnings:

if (b == B1) {
  a = A1;
} else {
  a = A2;
}

So far as I'm aware, the two code extracts should be identical.

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With #define A1 42, the type of A1 is int, not unsigned char. Just saying. Anyway ... I'm inclined to think you are compiling with a C++ compiler and the question is mis-tagged. –  pmg May 24 '11 at 18:11
    
@pmg - the constants are #defined with casts - see my comment on Paulo's answer below. I don't know whether MS VC++ does anything different when compiling C rather than C++ code, so I don't know if that makes a difference or not. –  sam May 24 '11 at 18:32
    
Well then, your compiler is trying to be more helpful than it really needs to :) The warning about assigning an int to an unsigned char isn't required by C. –  pmg May 24 '11 at 19:10
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3 Answers

up vote 3 down vote accepted

In C language arithmetic arguments of ternary ?: operator are subjected to usual arithmetic conversions, i.e. they are promoted to int before any further computations are performed. It doesn't really matter whether they are constants or not. What matters is that they have type unsigned char (as you said) and unsigned char under ?: is always promoted first. Basically, C language never performs any computations in types smaller than int. Everything smaller is converted to int first.

This is what happens in your case as well. Basically, your

a = (b == B1) ? A1 : A2;

is interpreted by C language as

a = ((int) b == (int) B1) ? (int) A1 : (int) A2;

and this is why you get the warning. Again, the fact that A1 and A2 are constants plays no role whatsoever.

The

a = A1;

does not subject the right-hand side to integral promotion, which is why there's no warning here. Moreover, in this trivial case (direct assignment) even if A1 was explicitly declared as an int constant, most compilers would not issue a warning if they could see that the constant is in range of the target type unsigned char. The case with ?: is more complicated, so the compilers might revert to the generic behavior and issue a warning.

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Thanks - I've now found the relevant part of the C99 standard that details this behaviour. 6.5.15, p5: "If both the second and third operands have arithmetic type, the result type that would be determined by the usual arithmetic conversions, were they applied to those two operands, is the type of the result." –  sam May 24 '11 at 19:14
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Although functionally the same, both codes are not quite equals.

You see, when you use a ternary operator, that is the condition ? true_value : false_value, the compiler tries to infer between the values the best possible type.

Because A1 and A2 are constant (as you state in the O.P.) the compiler replaces their position by their actual values, ignoring completely the data type, rendering both as integers.

Hence the need to cast the result, as such:

a = (unsigned char)((b == B1) ? A1 : A2);
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That makes sense. Slightly odd/irritating because the constants are #defined explicitly with a cast (e.g. #define A1 ((unsigned char)0x01)) - but I guess the compiler is still free to just look at the values, as you suggest.. –  sam May 24 '11 at 18:15
    
Well, this answer is incorrect. Firstly, the OP explicitly stated that the constants have unsigned char type, i.e. they are declared with a cast. The compiler does not ignore the type, but rather promotes the operands to the larger type. –  AndreyT May 24 '11 at 18:37
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  a = (unsigned char)((b == B1) ? A1 : A2);

I believe this is because there is no rvalues in the sub statements -- they get auto converted to int in the lexer. The code above should solve the warning message and have no effect on the resulting code.

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