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decode_png: Implement Adam7 interlacing support
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@ -72,6 +72,13 @@ local samples = {
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truecolor = 3
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truecolor = 3
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}
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}
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local adam7_passes = {
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x_min = { 0, 4, 0, 2, 0, 1, 0 },
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y_min = { 0, 0, 4, 0, 2, 0, 1 },
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x_step = { 8, 8, 4, 4, 2, 2, 1 },
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y_step = { 8, 8, 8, 4, 4, 2, 2 },
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}
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(...).decode_png = function(stream)
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(...).decode_png = function(stream)
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local chunk_crc
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local chunk_crc
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local function read(n)
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local function read(n)
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@ -125,7 +132,6 @@ local samples = {
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local interlace_method = byte()
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local interlace_method = byte()
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assert(interlace_method <= 1, "unsupported interlace method")
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assert(interlace_method <= 1, "unsupported interlace method")
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local adam7 = interlace_method == 1
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local adam7 = interlace_method == 1
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assert(not adam7, "adam7 interlacing not supported yet")
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check_crc() -- IHDR CRC
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check_crc() -- IHDR CRC
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local palette
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local palette
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@ -205,13 +211,23 @@ local samples = {
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(64 bits required, packing non-mantissa bits isn't practical) => separate table with alpha values
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(64 bits required, packing non-mantissa bits isn't practical) => separate table with alpha values
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]]
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]]
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local data = {}
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local data = {}
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local alpha_data = {}
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local alpha_data = color_type.color == "truecolor" and bit_depth == 16 and {} or nil
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if adam7 then
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-- Allocate space in list part in order to not fill the hash part later
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for i = 1, width * height do
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data[i] = false
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if alpha_data then
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alpha_data[i] = false
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end
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end
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end
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local bits_per_pixel = (samples[color_type.color] + (color_type.alpha and 1 or 0)) * bit_depth
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local bits_per_pixel = (samples[color_type.color] + (color_type.alpha and 1 or 0)) * bit_depth
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local bytes_per_pixel = math.ceil(bits_per_pixel / 8)
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local bytes_per_pixel = math.ceil(bits_per_pixel / 8)
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local scanline_bytecount = math.ceil(width * bits_per_pixel / 8)
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local previous_scanline
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local previous_scanline
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for y = 0, height - 1 do
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local idat_base_index = 1
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local idat_base_index = y * (scanline_bytecount + 1) + 1
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local function read_scanline(x_min, x_step, y)
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local scanline_width = math.ceil((width - x_min) / x_step)
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local scanline_bytecount = math.ceil(scanline_width * bits_per_pixel / 8)
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local filtering = idat_content:byte(idat_base_index)
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local filtering = idat_content:byte(idat_base_index)
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local scanline = {}
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local scanline = {}
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for i = 1, scanline_bytecount do
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for i = 1, scanline_bytecount do
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@ -262,7 +278,7 @@ local samples = {
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local low = 2^(-bit % 8)
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local low = 2^(-bit % 8)
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return floor(byte / low) % (2^bit_depth)
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return floor(byte / low) % (2^bit_depth)
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end
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end
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for x = 0, width - 1 do
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for x = x_min, width - 1, x_step do
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local data_index = y * width + x + 1
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local data_index = y * width + x + 1
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if color_type.color == "palette" then
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if color_type.color == "palette" then
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local palette_index = sample()
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local palette_index = sample()
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@ -303,6 +319,23 @@ local samples = {
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-- Each byte of the scanline must have been read from
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-- Each byte of the scanline must have been read from
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assert(bit >= #scanline * 8 - 7)
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assert(bit >= #scanline * 8 - 7)
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previous_scanline = scanline
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previous_scanline = scanline
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idat_base_index = idat_base_index + scanline_bytecount + 1
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end
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if adam7 then
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for pass = 1, 7 do
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local x_min, y_min = adam7_passes.x_min[pass], adam7_passes.y_min[pass]
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if x_min < width and y_min < height then -- Non-empty pass
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local x_step, y_step = adam7_passes.x_step[pass], adam7_passes.y_step[pass]
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previous_scanline = nil -- Filtering doesn't use scanlines of previous passes
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for y = y_min, height - 1, y_step do
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read_scanline(x_min, x_step, y)
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end
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end
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end
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else
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for y = 0, height - 1 do
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read_scanline(0, 1, y)
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end
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end
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end
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return {
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return {
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width = width,
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width = width,
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@ -310,7 +343,7 @@ local samples = {
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color_type = color_type,
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color_type = color_type,
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source_gamma = source_gamma,
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source_gamma = source_gamma,
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data = data,
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data = data,
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alpha_data = next(alpha_data) and alpha_data
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alpha_data = alpha_data
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}
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}
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end
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end
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