Anything related to C and C++ integer promotions, i.e. a class of data-type conversions that happens automatically when an object of integer type appears in certain contexts (e.g. when a value of type `short` is added to an `int` it is automatically promoted to `int` type before performing the ...

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4
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3answers
134 views

C++ - Bit-wise not of uchar produces int

I am surprised by C++'s behavior when applying bit-wise not to an unsigned char. Take the binary value 01010101b, which is 0x55, or 85. Applying bit-wise not on an eight bit representation should ...
29
votes
1answer
2k views

Why is this function call ambiguous?

I'm reading the standard and trying to figure out why this code won't be resolved without a cast. void foo(char c) { } // Way bigger than char void foo(unsigned long int) { } int main() { ...
0
votes
1answer
20 views

Is the promotion to unsigned done on the result or on each operand?

In the following: 2147483647U > -2147483647 - 1 it will evaluate to false because of the conversion/promotion to unsigned. My question is though how it will be promoted? Will the subtraction ...
22
votes
3answers
2k views

How is shift operator evaluated in C?

I recently noticed a (weird) behavior when I conducted operations using shift >> <<! To explain it, let me write this small runnable code that does two operations which are supposed to be ...
0
votes
1answer
40 views

Can you please explain this—“the rules involving mixed types of operands do not apply to the shift operators”

I can't understand the line "The result of the shift has the same type as the thing that got shifted (after the integral promotions)" in the following extract from the C book by Mike Banahan (Section ...
0
votes
4answers
47 views

How possibly can a unary +/- operator cause integral promotion in “-a” or “+a”, 'a' being an arithmetic data type constant/variable?

This seemingly trivial line is taken from the C book my Mike Banahan & Brady (Section 2.8.8.2). I can understand how implicit promotion comes into play in expressions like c=a+b depending on the ...
2
votes
2answers
81 views

How does the integer overflow work in C?

I am a bit confused about how is arithmetic calculations are handled in a fixed point environment. Consider following lines of code: /* unsigned short is 16 bit.*/ unsigned short x = 1000; unsigned ...
1
vote
4answers
76 views

ones complement operator with short int

#include <stdio.h> #include <string.h> main() { short int x=0x55AA; printf("%x ",~x); } Above program gives output : ffffaa55. I was expecting o/p only aa55 as short int is 2 bytes. Can ...
2
votes
4answers
105 views

Does Unary + operator do type conversions?

Till now I was believing that there is no use of unary + operator. But then I came across with following example: char ch; short sh; int i; printf("%d %d %d",sizeof(ch),sizeof(sh),sizeof(i)); // ...
0
votes
0answers
74 views

why sizeof(short + short) has different size than sizeof(short)? [duplicate]

My question: If type short is 2 byte in size, why sizeof(short + short) is 4 byte in size, as the output presented from my program: #include <stdio.h> int main(void) { short n; ...
35
votes
4answers
2k views

Why must a short be converted to an int before arithmetic operations in C and C++?

From the answers I got from this question, it appears that C++ inherited this requirement for conversion of short into int when performing arithmetic operations from C. May I pick your brains as to ...
9
votes
5answers
296 views

Inconsistent behaviour of implicit conversion between unsigned and bigger signed types

Consider following example: #include <stdio.h> int main(void) { unsigned char a = 15; /* one byte */ unsigned short b = 15; /* two bytes */ unsigned int c = 15; /* four bytes */ ...
2
votes
1answer
94 views

Why does adding a constant to an int8_t promote it to a larger type?

In gcc, adding or subtracting a constant to an integral type smaller than int results in an int. #include <cstdint> #include <cstdio> int main() { int8_t wat = 5; printf("%zd\n", ...
0
votes
0answers
41 views

Why does OpenWatcom issue: Warning! W124: Comparison result always 0

With OpenWatcom we (a colleague and myself) receive the following warning: Warning! W124: Comparison result always 0 The code we have is of course part of a larger project, but the piece of code ...
2
votes
2answers
164 views

Why does combining two shifts of a uint8_t produce a different result?

Could someone explain me why: x = x << 1; x = x >> 1; and: x = (x << 1) >> 1; produce different answers in C? x is a *uint8_t* type (unsigned 1-byte long integer). For ...
2
votes
2answers
98 views

Is `uint_fast32_t` guaranteed to be at least as wide as `int`?

The C standard specifies that integer operands smaller than int will be promoted to int before any arithmetic operations are performed upon them. As a consequence, operations upon two unsigned values ...
2
votes
3answers
103 views

Still Questions on integer promotion, conversions in C

This topic has been heavily discussed in many context. When I search and read some of posts. I was confused by following post. Signed to unsigned conversion in C - is it always safe? The following ...
8
votes
6answers
823 views

Why does C/C++ automatically convert char/wchar_t/short/bool/enum types to int?

So, if I understood it well, integral promotion provides that: char, wchar_t, bool, enum, short types ALWAYS are converted to int (or unsigned int). Then, if there are different types in an ...
7
votes
1answer
141 views

Why is (int64_t)-1 + (uint32_t)0 signed?

Why is (int64_t)-1 + (uint32_t)0 signed in C? It looks like it's int64_t, but my intuition would say uint64_t. FYI When I run #include <stdint.h> #include <stdio.h> #define BIT_SIZE(x) ...
6
votes
2answers
150 views

Which integral promotions do take place when printing a char?

I recently read that unsigned char x=1; printf("%u",x); invokes undefined behaviour since due to the format specifier %u, printf expects an unsigned int. But still I would like to understand what ...
3
votes
1answer
157 views

Bitwise negation of unsigned char

This is a question relating the c99 standard and concerns integer promotions and bitwise negations of unsigned char. In section 6.5.3.3 it states that: The integer promotions are performed on the ...
1
vote
1answer
135 views

Compiler independent expression arithmetic conversions and integer promotions

Assume we have an assignment using variables of the following types: uint64 = uint16 + uint16 + uint32 + uint64 Assume we know that the resulting r-value fits inside a uint64 as long as all the work ...
3
votes
1answer
423 views

Is unsigned char always promoted to int?

Suppose the following: unsigned char foo = 3; unsigned char bar = 5; unsigned int shmoo = foo + bar; Are foo and bar values guaranteed to be promoted to int values for the evaluation of the ...
0
votes
1answer
97 views

Why is “int sum=ch1+ch2+ch2” not giving overflow when right-side operands are character variables & result >255? [duplicate]

In this program I am attempting to assign the result of the addition of character variables to an integer variable.I have made sure that the size of the addition is greater than 255.So I expect an ...
4
votes
1answer
534 views

Integer promotion, signed/unsigned, and printf

I was looking through C++ Integer Overflow and Promotion, tried to replicate it, and finally ended up with this: #include <iostream> #include <stdio.h> using namespace std; int main() { ...
3
votes
5answers
231 views

Widening of integral types?

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 ...
4
votes
3answers
596 views

Integer promotion - what are the steps

This code prints B2 short a=-5; unsigned short b=-5u; if(a==b) printf("A1"); else printf("B2"); I read about integer promotion but it's still unclear to me, how does it work in the example ...
17
votes
1answer
501 views

Why isn't common_type<long, unsigned long>::type = long long?

common_type<long, unsigned long>::type is unsigned long because concerning the operands after integral promotion the standard says... [...] if the operand that has unsigned integer type has ...
3
votes
4answers
4k views

Does one double promote every int in the equation to double?

Does the presence of one floating-point data type (e.g. double) ensure that all +, -, *, /, %, etc math operations assume double operands? If the story is more complicated than that, is there a ...
3
votes
3answers
496 views

Integer promotion for `long` and `size_t` when sent through ellipsis?

View this question from the perspective of someone implementing printf. Since the arguments of printf are passed through an ellipsis (...), they get integer promoted. I know that char, short and int ...
9
votes
3answers
331 views

Do integer promotions always happen when evaluating an expression? [duplicate]

Possible Duplicate: C integer overflow behaviour when assigning to larger-width integers I haven't found a clear answer on this in my googling. Say you have two expressions: int16_t a16 = ...
13
votes
2answers
675 views

Is char default-promoted?

This may be a silly question, but could someone please provide a standard reference for C++11 and C11: Is char default-promoted to int? Here's a little background: Both C and C++ have notions of ...
4
votes
4answers
321 views

Why does unary minus perform integral promotion?

const auto min = -std::numeric_limits<T>::max(); T x = min; // conversion from 'const int' to 'short', possible loss of data T is a template argument, a short in this case. Unary minus ...
5
votes
2answers
671 views

Integer promotion with the operator <<

Similar to the question Bitshift and integer promotion?, I have a question about integer promotion when using left bitshifts. unsigned int test(void) { unsigned char value8; unsigned int ...
2
votes
1answer
278 views

GCC, weird integer promotion scheme

I'm working with GCC v4.4.5 and I've notived a default integer promotion scheme I didn't expected. To activate enough warnings to prevent implicit bugs I activated the option -Wconversion and since ...
4
votes
1answer
1k views

Integral promotion

When is it ever the case that a signed integer cannot represent all the values of the original type with regards to integer promotion? From the text K&R, C Programming Language, 2nd Ed. p. 174 ...
0
votes
2answers
225 views

The width of int data type on a machine

Is it right to say that the width of int data type depends on the data width of the ALU ? For example is it right to say that a 32-bit processor will have int data type as 32-bit wide? Similarly for ...
4
votes
2answers
2k views

MISRA C:2004, error with bit shifting

I'm using IAR Workbench compiler with MISRA C:2004 checking on. The fragment is: #define UNS_32 unsigned int UNS_32 arg = 3U; UNS_32 converted_arg = (UNS_32) arg; /* Error line --> */ UNS_32 ...
9
votes
2answers
537 views

Using low bitsize integral types like `Int8` and what they are for

Recently I've learned that every computation cycle performs on machine words which on most contemporary processors and OS'es are either 32-bit or 64-bit. So what are the benefits of using the smaller ...
1
vote
3answers
484 views

Usual arithmetic conversions in C : Whats the rationale behind this particular rule

From k&R C First, if either operand is long double, the other is converted to long double. Otherwise, if either operand is double, the other is converted to ...
3
votes
3answers
2k views

type promotion in C

I am quite confused by the following code: #include <stdio.h> #include <stdint.h> int main(int argc, char ** argv) { uint16_t a = 413; uint16_t b = 64948; fprintf(stdout, ...
1
vote
1answer
218 views

Reading a signed char as unsigned - Type Promotion

Consider this little program: #include <stdio.h> int main() { char c = 0xFF; printf("%d\n", c); return 0; } Its output is -1, as expected (considering char is signed in my ...
5
votes
4answers
708 views

storing signed short in the lower 16 bits of a an unsigned int

I'm programming C on an embedded system. The processor architecture is 32 bits (sizeof(int) is 32 bits, sizeof(short) is 16 bits). There is a 32-bit variable that is a memory-mapped control register ...
3
votes
5answers
2k views

Adding unsigned integers in C

Here are two very simple programs. I would expect to get the same output, but I don't. I can't figure out why. The first outputs 251. The second outputs -5. I can understand why the 251. However, I ...
1
vote
5answers
185 views

Is there a way to prove integral promotion to int?

In pure ansi C, is there any way to show that, given char c1 = 1, c2 = 2; the type of the following: c1 + c2 is int? Thanks. NOTE: I know that according to standards it is, but in C++ you can ...
15
votes
3answers
700 views

Integer Overflow - Why not [duplicate]

Possible Duplicate: Addition of two chars produces int Given the following C++ code: unsigned char a = 200; unsigned char b = 100; unsigned char c = (a + b) / 2; The output is 150 as ...
4
votes
5answers
2k views

Truncating an int to char - is it defined?

unsigned char a, b; b = something(); a = ~b; A static analyzer complained of truncation in the last line, presumably because b is promoted to int before its bits are flipped and the result will be ...
1
vote
1answer
2k views

Understanding getopt() example. Comparison of int to char

Hello all I hope you can help me understand why getopt used an int and the handling of the optopt variable in getopt. Pretty new to C++. Looking at getopt, optopt is defined as an integer. ...
16
votes
3answers
4k views

Addition of two chars produces int

I've made a simple program and compiled it with GCC 4.4/4.5 as follows: int main () { char u = 10; char x = 'x'; char i = u + x; return 0; } g++ -c -Wconversion a.cpp And I've got the ...
5
votes
2answers
861 views

What's the difference between integer promotions and integer conversions in C++

Section 4.5 of the C++ standard (integer promotion) talks about specific cases of converting integral types to types with a higher rank. Section 4.7 of the C++ standard (integral conversions) ...