I'm currently trying to make it where an array holds rgba data (0x00000000 → 0xFFFFFFFF) and when I put a value over 2,147,483,647 it overflows, I'm assuming because of some possible conversion (maybe unsigned → signed).

Here's my code:

int main(int argc, char* args[]) {
    uint32_t *background = new uint32_t[1920*1080];

    background[100] = 0xFF0000FF; //red, 4278190335
    printf("%d, ", background[100]);

    return 0;
}

Here's the output:

-16776961

I'm still somewhat new to C++ so if I'm being oblivious to something please point it out.

First, a quick note:

uint32_t *background = new uint32_t[1920*1080];

Here, background isn't an array (in the stack), rather, you are allocating memory (containing an array) and saving a pointer to the first element. You will need to delete the memory. In C++, it is much easier to use a std::vector:

// at the top: #include <vector>
std::vector<uint32_t> background(1920*1080);

Which will get deallocated automatically (so you don't have to worry about it). Another option is using an array, but in this case, you better not, because it is quite a lot of memory you have there (8 MiB), which may break your stack.

Now, if you want to use printf to print an unsigned int, you need to use %u (or %x if you want it in hexadecimal):

printf("%u, ", background[100]); // or...
printf("%x, ", background[100]);

However, in your code you are using uint32_t, which is a fixed-with type. For this, you would need to use:

// at the top: #include <cinttypes>
printf("%" PRIu32 ", ", background[100]); // or...
printf("%" PRIx32 ", ", background[100]); 

Further, a final note as @Someprogrammerdude commented, you can use std::cout in C++ instead:

// at the top: #include <iostream>
std::cout << background[100] << std::endl; // or...
std::cout << std::hex << background[100] << std::dec << std::endl;
  • 1
    new uint32_t[1920*1080] definitely allocates an array. You still save a pointer to the first element of the array, that part is true, and indeed you need to delete [] it. This rule becomes important when the array members have constructors - if it was merely a memory allocation, constructors would not have been called, but they are. – MSalters Oct 19 at 7:06
  • 1
    @MSalters The comment was intended to explain that it isn't an array variable vs. a pointer, which requires more work. Indeed, technically, new here still allocates an array of objects according to the standard, so I have edited it to be more precise, but IMO that is irrelevant for beginners: the important part is that they know which type of variable they are defining (which is seems OP doesn't, since it is not deallocated). – Acorn Oct 19 at 7:19
  • I figured I may have messed up somewhere along the print statement so thanks for catching that, also something I failed to mention in the original post is that I'm messing around with a visual API that requires a 32-bit array to make a sort of texture for the screen so this basically eliminates me using a vector unless there's some way to cast a vector as an array. – Pixel Oct 19 at 11:05
  • 1
    @Pixel std::vector<uint32_t> has a .data member function which will give you a uint32_t* which points to the beginning of the vector's data – Dexter CD Oct 19 at 11:23

Change this:

printf("%d, ", background[100]);

to this:

// #include <cinttypes>
printf("%" PRIu32 "", background[100]);

since you want to print a uint32_t, not an int.

PS: Since this is C++, I strongly suggest using std::cout, which will take care automatically for these issues.

PPS: Since you used new [], don't forget to delete [] afterwards.

It is important to understand the difference between numeric data and its representation when you output it. There is no overflow here. The data is just being printed as a signed value. You are assigning it correctly with the hex literal. You should also print it out as hex rather than as decimal.

  • 1
    Actually the hex literal should have an U suffix, to make it clear that it's an unsigned literal. As for printing hex rather than decimal, why do you think hex should be printed? If the decimal representation of the value is needed. PRIu32 (unquoted, no %) is correct. – MSalters Oct 19 at 7:57
  • @MSalters My recommendation to print hex is because it makes sense for human consumption in this context. With 0xFF0000FF, the value of each color channel and alpha channel are clear. With 4278190335 the meaning is not at all obvious. – Code-Apprentice Oct 19 at 8:01

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