Implicit type promotion rules
This post is meant to be used as a FAQ regarding implicit integer promotion in C, particularly implicit promotion caused by the usual arithmetic conversions and/or the integer promotions.
Example 1)
Why does this give a strange, large integer number and not 255?
unsigned char x = 0;
unsigned char y = 1;
printf("%u\n", x - y);
Example 2)
Why does this give "-1 is larger than 0"?
unsigned int a = 1;
signed int b = -2;
if(a + b > 0)
puts("-1 is larger than 0");
Example 3)
Why does changing the type in the above example to short
fix the problem?
unsigned short a = 1;
signed short b = -2;
if(a + b > 0)
puts("-1 is larger than 0"); // will not print
(These examples were intended for a 32 or 64 bit computer with 16 bit short.)
Solution 1:
C was designed to implicitly and silently change the integer types of the operands used in expressions. There exist several cases where the language forces the compiler to either change the operands to a larger type, or to change their signedness.
The rationale behind this is to prevent accidental overflows during arithmetic, but also to allow operands with different signedness to co-exist in the same expression.
Unfortunately, the rules for implicit type promotion cause much more harm than good, to the point where they might be one of the biggest flaws in the C language. These rules are often not even known by the average C programmer and therefore causing all manner of very subtle bugs.
Typically you see scenarios where the programmer says "just cast to type x and it works" - but they don't know why. Or such bugs manifest themselves as rare, intermittent phenomenon striking from within seemingly simple and straight-forward code. Implicit promotion is particularly troublesome in code doing bit manipulations, since most bit-wise operators in C come with poorly-defined behavior when given a signed operand.
Integer types and conversion rank
The integer types in C are char
, short
, int
, long
, long long
and enum
._Bool
/bool
is also treated as an integer type when it comes to type promotions.
All integers have a specified conversion rank. C11 6.3.1.1, emphasis mine on the most important parts:
Every integer type has an integer conversion rank defined as follows:
— No two signed integer types shall have the same rank, even if they have the same representation.
— The rank of a signed integer type shall be greater than the rank of any signed integer type with less precision.
— The rank oflong long int
shall be greater than the rank oflong int
, which shall be greater than the rank ofint
, which shall be greater than the rank ofshort int
, which shall be greater than the rank ofsigned char
.
— The rank of any unsigned integer type shall equal the rank of the corresponding signed integer type, if any.
— The rank of any standard integer type shall be greater than the rank of any extended integer type with the same width.
— The rank of char shall equal the rank of signed char and unsigned char.
— The rank of _Bool shall be less than the rank of all other standard integer types.
— The rank of any enumerated type shall equal the rank of the compatible integer type (see 6.7.2.2).
The types from stdint.h
sort in here too, with the same rank as whatever type they happen to correspond to on the given system. For example, int32_t
has the same rank as int
on a 32 bit system.
Further, C11 6.3.1.1 specifies which types that are regarded as the small integer types (not a formal term):
The following may be used in an expression wherever an
int
orunsigned int
may be used:— An object or expression with an integer type (other than
int
orunsigned int
) whose integer conversion rank is less than or equal to the rank ofint
andunsigned int
.
What this somewhat cryptic text means in practice, is that _Bool
, char
and short
(and also int8_t
, uint8_t
etc) are the "small integer types". These are treated in special ways and subject to implicit promotion, as explained below.
The integer promotions
Whenever a small integer type is used in an expression, it is implicitly converted to int
which is always signed. This is known as the integer promotions or the integer promotion rule.
Formally, the rule says (C11 6.3.1.1):
If an
int
can represent all values of the original type (as restricted by the width, for a bit-field), the value is converted to anint
; otherwise, it is converted to anunsigned int
. These are called the integer promotions.
This means that all small integer types, no matter signedness, get implicitly converted to (signed) int
when used in most expressions.
This text is often misunderstood as: "all small, signed integer types are converted to signed int and all small, unsigned integer types are converted to unsigned int". This is incorrect. The unsigned part here only means that if we have for example an unsigned short
operand, and int
happens to have the same size as short
on the given system, then the unsigned short
operand is converted to unsigned int
. As in, nothing of note really happens. But in case short
is a smaller type than int
, it is always converted to (signed) int
, regardless of it the short was signed or unsigned!
The harsh reality caused by the integer promotions means that almost no operation in C can be carried out on small types like char
or short
. Operations are always carried out on int
or larger types.
This might sound like nonsense, but luckily the compiler is allowed to optimize the code. For example, an expression containing two unsigned char
operands would get the operands promoted to int
and the operation carried out as int
. But the compiler is allowed to optimize the expression to actually get carried out as an 8 bit operation, as would be expected. However, here comes the problem: the compiler is not allowed to optimize out the implicit change of signedness caused by the integer promotion. Because there is no way for the compiler to tell if the programmer is purposely relying on implicit promotion to happen, or if it is unintentional.
This is why example 1 in the question fails. Both unsigned char operands are promoted to type int
, the operation is carried out on type int
, and the result of x - y
is of type int
. Meaning that we get -1
instead of 255
which might have been expected. The compiler may generate machine code that executes the code with 8 bit instructions instead of int
, but it may not optimize out the change of signedness. Meaning that we end up with a negative result, that in turn results in a weird number when printf("%u
is invoked. Example 1 could be fixed by casting the result of the operation back to type unsigned char
.
With the exception of a few special cases like ++
and sizeof
operators, the integer promotions apply to almost all operations in C, no matter if unary, binary (or ternary) operators are used.
The usual arithmetic conversions
Whenever a binary operation (an operation with 2 operands) is done in C, both operands of the operator have to be of the same type. Therefore, in case the operands are of different types, C enforces an implicit conversion of one operand to the type of the other operand. The rules for how this is done are named the usual artihmetic conversions (sometimes informally referred to as "balancing"). These are specified in C11 6.3.18:
(Think of this rule as a long, nested if-else if
statement and it might be easier to read :) )
6.3.1.8 Usual arithmetic conversions
Many operators that expect operands of arithmetic type cause conversions and yield result types in a similar way. The purpose is to determine a common real type for the operands and result. For the specified operands, each operand is converted, without change of type domain, to a type whose corresponding real type is the common real type. Unless explicitly stated otherwise, the common real type is also the corresponding real type of the result, whose type domain is the type domain of the operands if they are the same, and complex otherwise. This pattern is called the usual arithmetic conversions:
- First, if the corresponding real type of either operand is
long double
, the other operand is converted, without change of type domain, to a type whose corresponding real type islong double
.- Otherwise, if the corresponding real type of either operand is
double
, the other operand is converted, without change of type domain, to a type whose corresponding real type isdouble
.- Otherwise, if the corresponding real type of either operand is
float
, the other operand is converted, without change of type domain, to a type whose corresponding real type is float.Otherwise, the integer promotions are performed on both operands. Then the following rules are applied to the promoted operands:
- If both operands have the same type, then no further conversion is needed.
- Otherwise, if both operands have signed integer types or both have unsigned integer types, the operand with the type of lesser integer conversion rank is converted to the type of the operand with greater rank.
- Otherwise, if the operand that has unsigned integer type has rank greater or equal to the rank of the type of the other operand, then the operand with signed integer type is converted to the type of the operand with unsigned integer type.
- Otherwise, if the type of the operand with signed integer type can represent all of the values of the type of the operand with unsigned integer type, then the operand with unsigned integer type is converted to the type of the operand with signed integer type.
- Otherwise, both operands are converted to the unsigned integer type corresponding to the type of the operand with signed integer type.
Notable here is that the usual arithmetic conversions apply to both floating point and integer variables. In case of integers, we can also note that the integer promotions are invoked from within the usual arithmetic conversions. And after that, when both operands have at least the rank of int
, the operators are balanced to the same type, with the same signedness.
This is the reason why a + b
in example 2 gives a strange result. Both operands are integers and they are at least of rank int
, so the integer promotions do not apply. The operands are not of the same type - a
is unsigned int
and b
is signed int
. Therefore the operator b
is temporarily converted to type unsigned int
. During this conversion it loses the sign information and ends up as a large value.
The reason why changing type to short
in example 3 fixes the problem, is because short
is a small integer type. Meaning that both operands are integer promoted to type int
which is signed. After integer promotion, both operands have the same type (int
), no further conversion is needed. And then the operation can be carried out on a signed type as expected.
Solution 2:
According to the previous post, I want to give more information about each example.
Example 1)
int main(){
unsigned char x = 0;
unsigned char y = 1;
printf("%u\n", x - y);
printf("%d\n", x - y);
}
Since unsigned char is smaller than int, we apply the integer promotion on them, then we have (int)x-(int)y = (int)(-1) and unsigned int (-1) = 4294967295.
The output from the above code:(same as what we expected)
4294967295
-1
How to fix it?
I tried what the previous post recommanded, but it doesn't really work. Here is the code based on the previous post:
change one of them to unsigned int
int main(){
unsigned int x = 0;
unsigned char y = 1;
printf("%u\n", x - y);
printf("%d\n", x - y);
}
Since x is already an unsigned integer, we only apply the integer promotion to y. Then we get (unsigned int)x-(int)y. Since they still don't have the same type, we apply the usual arithmetic converions, we get (unsigned int)x-(unsigned int)y = 4294967295.
The output from the above code:(same as what we expected):
4294967295
-1
Similarly, the following code gets the same result:
int main(){
unsigned char x = 0;
unsigned int y = 1;
printf("%u\n", x - y);
printf("%d\n", x - y);
}
change both of them to unsigned int
int main(){
unsigned int x = 0;
unsigned int y = 1;
printf("%u\n", x - y);
printf("%d\n", x - y);
}
Since both of them are unsigned int, no integer promotion is needed. By the usual arithmetic converison(have the same type), (unsigned int)x-(unsigned int)y = 4294967295.
The output from the above code:(same as what we expected):
4294967295
-1
One of possible ways to fix the code:(add a type cast in the end)
int main(){
unsigned char x = 0;
unsigned char y = 1;
printf("%u\n", x - y);
printf("%d\n", x - y);
unsigned char z = x-y;
printf("%u\n", z);
}
The output from the above code:
4294967295
-1
255
Example 2)
int main(){
unsigned int a = 1;
signed int b = -2;
if(a + b > 0)
puts("-1 is larger than 0");
printf("%u\n", a+b);
}
Since both of them are integers, no integer promotion is needed. By the usual arithmetic conversion, we get (unsigned int)a+(unsigned int)b = 1+4294967294 = 4294967295.
The output from the above code:(same as what we expected)
-1 is larger than 0
4294967295
How to fix it?
int main(){
unsigned int a = 1;
signed int b = -2;
signed int c = a+b;
if(c < 0)
puts("-1 is smaller than 0");
printf("%d\n", c);
}
The output from the above code:
-1 is smaller than 0
-1
Example 3)
int main(){
unsigned short a = 1;
signed short b = -2;
if(a + b < 0)
puts("-1 is smaller than 0");
printf("%d\n", a+b);
}
The last example fixed the problem since a and b both converted to int due to the integer promotion.
The output from the above code:
-1 is smaller than 0
-1
If I got some concepts mixed up, please let me know. Thanks~