3
votes
4answers
92 views

unsigned int data types in c

Please help me in differentiating these codes in C: Code 1: #include<stdio.h> #include <stdint.h> uint8_t fb(int a) { return -3; } int main() { int a = fb(-3); ...
9
votes
5answers
273 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 */ ...
3
votes
4answers
97 views

Why bother using a float / double literal when not needed?

Why use a double or float literal when you need an integral value and an integer literal will be implicitly cast to a double/float anyway? And when a fractional value is needed, why bother adding the ...
5
votes
2answers
181 views

Is there a way to stop implicit pointer conversions to void *

I need to find all such places in my source code where a pointer of any type is implicitly converted to void * or a way to stop these implicit conversions. For example: int * to void * char * to ...
1
vote
1answer
55 views

Compile-time and run-time costs of implicit float conversions

Let's say I have the following C struct: typedef struct { float a, b; } Floats; I then have a function that will create instances of this struct: Floats createFloats(float aVal, float bVal) { ...
2
votes
1answer
35 views

Array indexing and usual arithmetic conversion

In C, when I use an integer as an array index, does this trigger usual arithmetic conversion rules to convert the array index to some integer type? If so, which integer type does it get converted to? ...
6
votes
2answers
248 views

Why is this happening with the sizeof operator?

What's really happening here? The output now is "False". #include <stdio.h> int main() { if (sizeof(int) > any_negative_integer) printf("True"); else ...
2
votes
4answers
137 views

Implicit conversion confusion between signed and unsigned when reading K&R book

I am learning the c language using the K&R book. In the second chapter book, the author talks about implicit conversion. There book says this: Conversion rules are more complicated when ...
2
votes
3answers
44 views

C Treament when Casting Comparison Values

Someone was talking with me about wraparound in C (0xffff + 0x0001 = 0x0000), and it led me to the following situation: int main() { unsigned int a; for (a = 0; a > -1; a++) printf("%d\n", ...
1
vote
2answers
84 views

unsigned int and double conversion order

I'm confused by unsigned int and double conversion order. I thought that when evaluating an expression, the intermediate type is the one with the biggest cardinality of the representing set, but here ...
0
votes
1answer
82 views

How to create a complex type of a existing function?

I am just beginning C programming (not C++) and I have to convert the quadratic formula for adressing complex roots, and for printing these. The normal quadratic equation is as follows (for ...
7
votes
2answers
153 views

Why no warning when uint32 casts to uint8 with gcc C

Compiling with -Wconversion, uint32_val = 0x00000C00; uint_8_val = ((uint32_val >> 8) & 0x000000FF); gives no warning. What compiler flag shall I use to get a warning?
2
votes
4answers
154 views

Strange GCC short int conversion warning

I have a bit of C code, which goes exactly like this: short int fun16(void){ short int a = 2; short int b = 2; return a+b; } When I try to compile it with GCC, I get the warning: ...
0
votes
1answer
234 views

Why do I get a negative number by multiplying two short ints?

I had an assignment where i had the following code excerpt: /*OOOOOHHHHH I've just noticed instead of an int here should be an *short int* I will just left it as it is because too many users saw it ...
3
votes
3answers
168 views

Implicit conversion during assignment in C?

Do we need a cast in this situation?: #include <stdio.h> #include <stdint.h> int main(){ // Say we're working with 32-bit variables. uint32_t a = 123456789; uint32_t b = 5123412; ...
5
votes
2answers
244 views

Integer conversions(narrowing, widening), undefined behaviour

It was pretty difficult for me to find information on this subject in manner that I could easily understand, so I'm asking for a review of what I have found.It's all about conversion and conversion ...
0
votes
1answer
295 views

What does implicit conversion from double to int64_t in C/C++

Could someone shed a light on the way this code behaves: double x = 9223371036854; int64_t y1 = /* trunc */ (x * 1000000); int64_t y2 = round(x * 1000000); cout << y1 << " <= " ...
1
vote
2answers
140 views

Resolving a conversion warning in a compound assignment

In my code I have a lot of variable <<= 1; sentences where variable is of type uint16_t. The compiler is spitting a warning saying conversion to 'uint16_t' from 'int' may alter its value ...
0
votes
1answer
121 views

Is there any way to have gcc issue warnings for implicit enum to int conversion in C?

Is there any way to have gcc issue warnings for implicit enum to int (or vice versa) conversion in C (not C++). I find that the implicit conversions can be a little bit sloppy, and I spend a long ...
12
votes
4answers
785 views

Why can a string literal be implicitly converted to char* only in certain case? [duplicate]

void f(char* p) {} int main() { f("Hello"); // OK auto p = "Hello"; f(p); // error C2664: 'void f(char *)' : cannot convert parameter 1 // from 'const char *' to 'char *' } ...
2
votes
2answers
534 views

Conversion from void to MPI_Aint

I have some trouble to convert some variable from void* to MPI_Aint. Here is some part of the code : C: void myfunc_(MPI_Aint *out_ptr, ...) ... void *ptr = mmap(...) ... *out_ptr = (MPI_Aint) ptr; ...
2
votes
0answers
253 views

Why does implicit conversion from non-const to const not happen here? [duplicate]

Possible Duplicate: why isnt it legal to convert (pointer to pointer to non-const) to a (pointer to pointer to a const) Double pointer const-correctness warnings in C I'm passing a ...
1
vote
4answers
4k views

Printing int type with %lu - C+XINU

I have a given code, in my opinion there is something wrong with that code: I compile under XINU. The next variables are relevant : unsigned long ularray[]; int num; char str[100]; There is a ...
2
votes
0answers
48 views

const correctness for execv's argv parameter [duplicate]

Possible Duplicate: Double pointer const-correctness warnings in C Look at the table here: http://pubs.opengroup.org/onlinepubs/009695399/functions/exec.html We see that the following is ...
6
votes
1answer
119 views

Why do C implicit conversions operate like they do?

When an integer number is out of the type's range, the max value + 1 is added / subtracted (depends on which part of the range the number was). For example, unsigned short num = 65537; num will ...
0
votes
3answers
132 views

Implicit types for numbers in C

What are the implicit types for numbers in C? If, for example, I have a decimal number in a calculation, is the decimal always treated as a double? If I have a non-decimal number, is it always treated ...
9
votes
3answers
739 views

Does an observable difference exist using `unsigned long` and `unsigned int` in C (or C++) when both are 32 bits wide?

I'm using an MPC56XX (embedded systems) with a compiler for which an int and a long are both 32 bits wide. In a required software package we had the following definitions for 32-bit wide types: ...
2
votes
3answers
222 views

Whether Compiler generates a Implicitly converted code before creating an object code?

I installed frama-c in my system. What it does it, it converts all my code into more expanded form with all the implicit conversions of C.. (E.g) //My Actual Code if(opTab ==NULL || symTab ==NULL ...
17
votes
1answer
3k views

Double pointer const-correctness warnings in C

A pointer to non-const data can be implicitly converted to a pointer to const data of the same type: int *x = NULL; int const *y = x; Adding additional const qualifiers to match the ...
3
votes
5answers
1k views

Implicit conversion in C?

What's going on here: printf("result = %d\n", 1); printf("result = %f\n", 1); outputs: result = 1 result = 0.000000 If I ensure the type of these variables before trying to print them, it works ...