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Imagine you have this function:

void foo(long l) { /* do something with l */}

Now you call it like so at the call site:

foo(65); // here 65 is of type int

Why, (technically) when you specify in the declaration of your function that you are expecting a long and you pass just a number without the L suffix, is it being treated as an int?

Now, I know it is because the C++ Standard says so, however, what is the technical reason that this 65 isn't just promoted to being of type long and so save us the silly error of forgetting L suffix to make it a long explicitly?

I have found this in the C++ Standard:

4.7 Integral conversions [conv.integral]

5 The conversions allowed as integral promotions are excluded from the set of integral conversions.

That a narrowing conversion isn't being done implicitly, I can think with, but here the destination type is obviously wider than the source type.

EDIT

This question is based on a question I saw earlier, which had funny behavior when you didn't specify the L suffix. Example, but perhaps it's a C thing, more than C++?!!

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stackoverflow.com/a/5563131/195488 –  user195488 Mar 18 '13 at 16:12
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I don't follow the question. Surely, the value is promoted to long when passed to the function, unless there's an overload which gives a better or ambiguous match for int? What error are you getting? –  Mike Seymour Mar 18 '13 at 16:16
    
If this is in reference to an earlier question, things get tricky with variadic functions, but I don't see a problem with the code you have here. –  Mat Mar 18 '13 at 16:17
    
@MikeSeymour: I don't think he has an error per se, just wondering why the int does not fill the long. –  user195488 Mar 18 '13 at 16:17
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@Kevin Except when char isn't 8-bit, and both int and long aren't 32-bit and.. all those things exist. Doesn't have much to do with the compiler, but the architecture/platform the compiler is used on. –  Voo Mar 18 '13 at 16:26

5 Answers 5

In C++ objects and values have a type, that is independent on how you use them. Then when you use them, if you need a different type it will be converted appropriately.

The problem in the linked question is that varargs is not type-safe. It assumes that you pass in the correct types and that you decode them for what they are. While processing the caller, the compiler does not know how the callee is going to decode each one of the arguments so it cannot possibly convert them for you. Effectively, varargs is as typesafe as converting to a void* and converting back to a different type, if you get it right you get what you pushed in, if you get it wrong you get trash.

Also note that in this particular case, with inlining the compiler has enough information, but this is just a small case of a general family if errors. Consider the printf family of functions, depending on the contents of the first argument each one of the arguments is processed as a different type. Trying to fix this case at the language level would lead to inconsistencies, where in some cases the compiler does the right thing or the wrong one and it would not be clear to the user when to expect which, including the fact that it could do the right thing today, and the wrong one tomorrow if during refactoring the function definition is moved and not available for inlining, or if the logic of the function changes and the argument is processed as one type or another based on some previous parameter.

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I suppose this another valid reason not to use var_args ever. –  Tony The Lion Mar 18 '13 at 16:32
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@TonyTheLion: As with any other type-unsafe interface (passing void*...) and more so since C++11 with variadic templates offering a type safe alterantive. –  David Rodríguez - dribeas Mar 18 '13 at 16:34

The function in this instance does receive a long, not an int. The compiler automatically converts any argument to the required parameter type if it's possible without losing any information (as here). That's one of the main reasons function prototypes are important.

It's essentially the same as with an expression like (1L + 1) - because the integer 1 is not the right type, it's implicitly converted to a long to perform the calculation, and the result is a long.

If you pass 65L in this function call, no type conversion is necessary, but there's no practical difference - 65L is used either way.

Although not C++, this is the relevant part of the C99 standard, which also explains the var args note:

If the expression that denotes the called function has a type that does include a prototype, the arguments are implicitly converted, as if by assignment, to the types of the corresponding parameters, taking the type of each parameter to be the unqualified version of its declared type. The ellipsis notation in a function prototype declarator causes argument type conversion to stop after the last declared parameter. The default argument promotions are performed on trailing arguments.

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Why, (technically) when you specify in the declaration of your function that you are expecting a long and you pass just a number without the L suffix, is it being treated as an int?

Because the type of a literal is specified only by the form of the literal, not the context in which it is used. For an integer, that is int unless the value is too large for that type, or a suffix is used to specify another type.

Now, I know it is because the C++ Standard says so, however, what is the technical reason that this 65 isn't just promoted to being of type long and so save us the silly error of forgetting L suffix to make it a long explicitly?

The value should be promoted to long whether or not you specify that type explicitly, since the function is declared to take an argument of type long. If that's not happening, perhaps you could give an example of code that fails, and describe how it fails?

UPDATE: the example you give passes the literal to a function taking untyped ellipsis (...) arguments, not a typed long argument. In that case, the function caller has no idea what type is expected, and only the default argument promotions are applied. Specifically, a value of type int remains an int when passed through ellipsis arguments.

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Technically it IS a promotion. See 4.5p1 and the Table of conversion ranks in 4.13. –  Ben Voigt Mar 18 '13 at 16:32
    
@BenVoigt: So it is. I completely misread the definition of promotions. –  Mike Seymour Mar 18 '13 at 16:39

The C standard states:

"The type of an integer constant is the first of the corresponding list in which its value can be represented."

In C89, this list is:

int, long int, unsigned long int

C99 extends that list to include:

long long int, unsigned long long int

As such, when you code is compiled, the literal 65 fits in an int type, and so it's type is accordingly int. The int is then promoted to long when the function is called.

If, for instance, sizeof(int) == 2, and your literal is something like 64000, the type of the value will be a long (assuming sizeof(long) > sizeof(int)).

The suffixes are used to overwrite the default behavior and force the specified literal value to be of a certain type. This can be particularly useful when the integer promotion would be expensive (e.g. as part of an equation in a tight loop).

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sizeof(long) and sizeof(int) are likely to be the same size on 32-bit compilers. see here - ideone.com/xIJuAC –  user195488 Mar 18 '13 at 16:27
    
This question is tagged C++. C++ has a different list. –  Ben Voigt Mar 18 '13 at 16:30
    
@BenVoigt: Learn something new everyday. Thanks for the correction. –  TRISAbits Mar 18 '13 at 17:40
    
Hexadecimal constants which don't fit in int but do fit in unsigned int will be interpreted as unsigned int rather than long. –  supercat Jun 5 '13 at 17:05

We have to have a standard meaning for types because for lower level applications, the type REALLY matters, especially for integral types. Low level operators (such as bitshift, add, ect) rely on the type of the input to determine overflow locations. ((65 << 2) with integers is 260 (0x104), but with a single char it is 4! (0x004)). Sometimes you want this behavior, sometimes you don't. As a programmer, you just need to be able to always know what the compiler is going to do. Thus the design decision was made to make the human explicitly declare the integral types of their constants, with "undecorated" as the most commonly used type, integer.

The compiler does automatically "cast" your constant expressions at compile time, such that the effective value passed to the function is long, but up until the cast it is considered an int for this reason.

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