0
votes
3answers
584 views

problems understanding the size_t type and the sizeof operator

void sizeof_test2(); void sizeof_test2() { int array[5]; size_t arr_size = sizeof(array); printf( "sizeof:\n" "array = %d\n" "arr_size = %d\n", sizeof(array), ...
-3
votes
2answers
4k views

c printf size_t

My code compiles, though the printf doesn't display anything? If I take out the formatter part of the printf then it works just fine. #include <stdio.h> size_t MyStrlen(const char *s1) { ...
1
vote
2answers
540 views

Strange behaviour with for loop and size_t

size_t size = sizeof(int); printf("%d\n", size); int i; for (i = 0; i < size; i++) { printf("%d ", i); } The above code (using gcc) outptus 4 0 1 2 3 size_t size = sizeof(int); ...
8
votes
1answer
670 views

printf for size_t

Is there any way to give printf a size_t without either casting it first or generating a compiler warning? (I always compile with -Wall.)
68
votes
7answers
40k views

Clean code to printf size_t in C++ (or: Nearest equivalent of C99's %z in C++)

I have some C++ code that prints a size_t: size_t a; printf("%lu", a); I'd like this to compile without warnings on both 32- and 64-bit architectures. If this were C99, I could use printf("%z", ...
18
votes
8answers
8k views

Cross platform format string for variables of type size_t?

On a cross platform c/c++ project (Win32, Linux, OSX), I need to use the *printf functions to print some variables of type size_t. In some environments size_t's are 8 bytes and on others they are 4. ...