11

We are using QA-C for MISRA C++ conformance, but the tool spews out an error for code like this:

float a = foo();
float b = bar();
float c = a - b;

As far as I understand, this has no implicit type promotion as everything will happen in float-sized chunks, but the tool tells me that the subtraction causes one. Is there any situation where there might be implicit promotion?

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    Would you mind adding the exact error that it gives you? – Max Langhof Apr 26 at 7:49
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    Consider also this Q&A, maybe, maybe the tool you are using is misinterpreting what's stated in the second part of that answer. – Bob__ Apr 26 at 8:19
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    @Damon that's a non-sequitur; short is promoted to int in this case and yet it makes sense to have short – M.M Apr 26 at 12:06
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    @Damon you already quoted the text that says "integral promotion shall be performed on both" (not "is allowed to happen" or whatever). – M.M Apr 26 at 12:31
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    Please provide the actual error message and actual code that produces that error message. – Yakk - Adam Nevraumont Apr 26 at 13:54
15

There is no implicit promotion involved here.

When conversions involving binary operators are involved, they are called usual arithmetic conversions.

From C++ standard, [expr]/11:

11 Many binary operators that expect operands of arithmetic or enumeration type cause conversions and yield result types in a similar way. The purpose is to yield a common type, which is also the type of the result. This pattern is called the usual arithmetic conversions, which are defined as follows:
...
(11.4) — Otherwise, if either operand is float, the other shall be converted to float.

Since both operands are float in your example, there is no such conversion or promotion.
So this could be a false positive from the tool.

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