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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43 views

uint16_t subtraction GCC compilation error

I have the following program #include <stdio.h> #include <stdlib.h> #include <inttypes.h> int main(void) { uint16_t o = 100; uint32_t i1 = 30; uint32_t i2 = 20; o ...
2
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1answer
63 views

uint8_t operations, when do they overflow?

I'm not sure when I have to worry about overflows when using unsigned chars. This case is clear: uint8_t a = 3; uint8_t b = 6; uint8_t c = a - b; // c is 253 However, what happens here: float d = ...
1
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3answers
68 views

Char and int16 array element both shown as 32bit hex?

In the example below: int main(int argc, char *argv[]) { int16_t array1[] = {0xffff,0xffff,0xffff,0xffff}; char array2[] = {0xff,0xff,0xff,0xff}; printf("Char size: %d \nint16_t size: %d ...
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3answers
70 views

Promotion when evaluating constant integer expressions in preprocessor directives - GCC

NOTE: See my edits below. ORIGINAL QUESTION: Came across some curious behaviour which I cannot reconcile: #if -5 < 0 #warning Good, -5 is less than 0. #else #error BAD, -5 is NOT less than 0. ...
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2answers
45 views

How to override integral promotion rule for enum?

This is closely related to Are C++ enums signed or unsigned?. According to JavaMan's answer, an enum is neither signed nor unsigned. But it does follow integral promotion rules. I'm working with a ...
0
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0answers
29 views

Integer promotion with hex constants

I have some code here: #include <stdio.h> int main () { char foo = 0xE7; if (foo == 0xE7) printf ("true\n"); else printf ("false\n"); return 0; } That prints "false". I'm ...
5
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4answers
180 views

What is going on with bitwise operators and integer promotion?

I have a simple program. Notice that I use an unsigned fixed-width integer 1 byte in size. #include <cstdint> #include <iostream> #include <limits> int main() { uint8_t x = 12; ...
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1answer
67 views

If I want to promote a char to an int, should I use static_cast<int>(char variable) or +(char variable) and why?

This question is a little subjective, but I believe it may lead to some constructive answers. Assume I have char x; and I want to promote it to an integral so I can access it's numeric value. Which ...
4
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1answer
89 views

Operator precedence and automatic promotion (to avoid overflow)

Finding the size of some data in bytes is a common operation. Contrived example: char *buffer_size(int x, int y, int chan_count, int chan_size) { size_t buf_size = x * y * chan_count * ...
0
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1answer
54 views

Integer promotions, value bits, and multiplying [duplicate]

If we multiply two uint32_t types and they type inton this system has 63 value bits and one sign bit, then those values are converted to int( integer promotions ), multiplied, and converted back to ...
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2answers
501 views

Why auto is deduced to int instead of uint16_t

I have the following code: uint16_t getLastMarker(const std::string &number); ... const auto msgMarker = getLastMarker(msg.number) + static_cast<uint16_t>(1); ...
2
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1answer
46 views

Is unary minus equivalent to binop minus? [duplicate]

My C compiler gave a warning when using unary minus on an unsigned value, so I fixed the warning by doing a subtraction from 0 instead. Now I wonder if the current code is equivalent to the original ...
23
votes
4answers
843 views

Why are integer types promoted during addition in C?

So we had a field issue, and after days of debugging, narrowed down the problem to this particular bit of code, where the processing in a while loop wasn't happening : // heavily redacted code // ...
1
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1answer
33 views

How does Objective-C handle bitmasking when arguments are not the same size?

When coding in Objective-C, what should the compiler do when it bitwise ANDs (or performs other bitwise operations) on two variables of different size? For example, lets say I have some variables as ...
3
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1answer
91 views

Using unsigned int instead of unsigned short changes behaviour

I am attempting the htoi(char*) function from The C Programming Language by K&R (Excercise 2-3, pg. 43). The function is meant to convert a hexadecimal string to base 10. I believe I have it ...
0
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1answer
38 views

In java why prefix increment or decrement operator does not require cast in case of byte

In java Suppose i have following code snippet byte b = 127; b=-b ;//(which require a cast due to numeric promotion) b=++b; //does not require cast
2
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3answers
130 views

When does a type get promoted to an unsigned int?

This article says: If all values of the original type can be represented as an int, the value of the smaller type is converted to an int; otherwise, it is converted to an unsigned int All ...
1
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1answer
188 views

Are the “usual arithmetic conversions” and the “integer promotions” the same thing?

Are the "usual arithmetic conversions" and the "integer promotions" the same thing? I have read that the "usual arithmetic conversions" are used to make the operands of an expression the same type, ...
1
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2answers
1k views

Signed/Unsigned int, short and char

I am trying to understand the output of the code given at : http://phrack.org/issues/60/10.html Quoting it here for reference: #include <stdio.h> int main(void){ int l; short ...
2
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2answers
135 views

Integral promotion/conversion: why should I care about the name of the resulting type?

I have been trying to wrap my head around the C99 rules of integral promotion and usual arithmetic conversions of integral types. After burning a few neurons, I came out with a set of rules of my own, ...
0
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1answer
81 views

Why no promotion when adding ints to List<Double>

in Java I created an ArrayList of Double and I invoked the method list.add(1), however, I get an error. If I can assign an int to a double variable like this: double num = 1; due to automatic ...
0
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3answers
129 views

Compiler warnings conversion

We are compiling using gcc with -Wconversion enabled. I get following warnings when I left shift result returned by isBitSet function below. warning: conversion to 'u_int16_t {aka short unsigned ...
4
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4answers
326 views

What happens when a integer overflow occurs in a C expression?

I have the following C code: uint8_t firstValue = 111; uint8_t secondValue = 145; uint16_t temp = firstValue + secondValue; if (temp > 0xFF) { return true; } return false; This is the ...
2
votes
3answers
172 views

bit representation of unsigned int a = -1

What is the bit representation of unsigned int x =-1; Can we assign unsigned int with a negative integer? #include<stdio.h> int main(){ unsigned int x = -1; int y = ~0; if(x == ...
7
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3answers
313 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 ...
32
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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
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1answer
31 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 ...
23
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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
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1answer
68 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
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4answers
80 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
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2answers
179 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
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4answers
106 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 ...
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4answers
1k 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
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0answers
82 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; ...
45
votes
4answers
3k 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 ...
11
votes
5answers
418 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
128 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", ...
1
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0answers
59 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
310 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 ...
4
votes
2answers
146 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
133 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 ...
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6answers
1k 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 ...
9
votes
1answer
276 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) ...
7
votes
2answers
179 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
314 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
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1answer
174 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
788 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 ...
60
votes
5answers
14k views

Type conversion - unsigned to signed int/char

I tried the to execute the below program: #include <stdio.h> int main() { signed char a = -5; unsigned char b = -5; int c = -5; unsigned int d = -5; if (a == b) ...
0
votes
1answer
104 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 ...
5
votes
1answer
714 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() { ...