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use crate::{byte_encode::ByteEncode, image::{ColorType, Image, ImageBase, PixelArr, RGB, RGBA}, reader::FileReader, writer::FileWriter};
// extern crate byte_encode_derive;
use byte_encode_derive::ByteEncode;
trait BitmapHeader
{
fn get_width(&self) -> u32;
fn get_height(&self) -> u32;
fn get_bpp(&self) -> u8;
}
#[derive(Clone, ByteEncode)]
struct BITMAPINFOHEADER
{
width: u32,
height: u32,
_color_planes: u16,
bpp: u16,
compression_method: u32,
_image_size: u32,
_horr_res: u32,
_vert_res: u32,
_palette_size: u32,
_important_colors: u32
}
impl BitmapHeader for BITMAPINFOHEADER
{
fn get_width(&self) -> u32 {
self.width
}
fn get_height(&self) -> u32 {
self.height
}
fn get_bpp(&self) -> u8 {
self.bpp as u8
}
}
impl<T: ColorType> Image<T> for BMPImage
{
fn read_image(reader: &mut FileReader) -> Result<ImageBase<T>, String>
{
let magic: [u8; 2] = reader.read_array();
if magic != [0x42, 0x4d]
{
return Err("Not a bitmap!".to_owned());
}
let _file_size: u32 = reader.read();
reader.skip(4);
let _offset: u32 = reader.read();
let header_size: u32 = reader.read();
// println!("File header: {file_size} {offset} {header_size}");
let width: u32;
let height: u32;
let bpp: u8;
if header_size == 12 // BITMAPCOREHEADER
{
width = reader.read::<2, u16>() as u32;
height = reader.read::<2, u16>() as u32;
let _color_planes: u16 = reader.read();
bpp = reader.read::<2, u16>() as u8;
}
else if header_size == 40 // BITMAPINFOHEADER
{
let header: BITMAPINFOHEADER = reader.read();
width = header.get_width();
height = header.get_height();
bpp = header.get_bpp();
if header.compression_method != 0
{
return Err(format!("Bitmap compresssion method {0} not supported", header.compression_method));
}
}
else
{
return Err(format!("Bitmap header size {header_size} not supported yet"));
}
if bpp != 24
{
return Err(format!("bpp {bpp} not supported yet, only 24 is supported"));
}
let row_size = (((bpp as u32) * width + 31)/32) * 4;
let skip: usize = (row_size - width * 3) as usize;
let mut pixel_arr = PixelArr::new(width, height);
for y in (0..height).rev()
{
for x in 0..width
{
let mut pixel = RGBA::<u8>::DEFAULT;
pixel.b = reader.read();
pixel.g = reader.read();
pixel.r = reader.read();
pixel.a = 255;
pixel_arr[(x as usize, y as usize)] = pixel.convert();
}
reader.skip(skip);
}
return Ok(ImageBase
{
bpp,
pixels: pixel_arr,
})
}
fn write_image(image: &ImageBase<T>, writer: &mut FileWriter) -> () {
writer.write_array([0x42, 0x4d] as [u8; 2]);
let row_size = (((24) * image.pixels.width + 31)/32) * 4;
let file_size: u32 = 14 + 12 + row_size*image.pixels.height;
let offset: u32 = 26;
writer.write(file_size as u32);
writer.write_zeros(4);
writer.write(offset as u32);
writer.write(12 as u32); // Header size
writer.write(image.pixels.width as u16);
writer.write(image.pixels.height as u16);
writer.write(1 as u16); // Color planes
writer.write(24 as u16); // bpp
let skip: usize = (row_size - image.pixels.width * 3) as usize;
for y in (0..image.pixels.height).rev()
{
for x in 0..image.pixels.width
{
let pixel: RGB<u8> = image.pixels[(x as usize, y as usize)].clone().convert();
writer.write(pixel.b);
writer.write(pixel.g);
writer.write(pixel.r);
}
writer.write_zeros(skip);
}
writer.flush();
}
}
pub struct BMPImage
{
}
|