#include "basisu_comp.h"
#include "basisu_enc.h"
#include <unordered_set>
#include <atomic>
#include <map>
#define MINIZ_NO_ZLIB_COMPATIBLE_NAMES
#include "basisu_miniz.h"
#include "basisu_opencl.h"
#include "basisu_astc_ldr_encode.h"
#include "../transcoder/basisu_astc_hdr_core.h"
#if !BASISD_SUPPORT_KTX2
#error BASISD_SUPPORT_KTX2 must be enabled (set to 1).
#endif
#if BASISD_SUPPORT_KTX2_ZSTD
#include "../zstd/zstd.h"
#endif
#define BASISU_DISABLE_KTX2_ALIGNMENT_WORKAROUND (0)
#define BASISU_DISABLE_KTX2_KEY_VALUES (0)
using namespace buminiz;
#define BASISU_USE_STB_IMAGE_RESIZE_FOR_MIPMAP_GEN 0
#define DEBUG_CROP_TEXTURE_TO_64x64 (0)
#define DEBUG_RESIZE_TEXTURE (0)
namespace basisu
{
static float uastc_ldr_4x4_lambda_from_quality(float q)
{
q = clamp<float>(q, 0.0f, 1.0f);
if (q >= 1.0f)
return 0.0f;
const float lambda_max = 20.0f;
return lambda_max * pow(1.0f - q, 1.3f);
}
static float uastc_hdr_6x6_lambda_from_quality(float q)
{
q = clamp<float>(q, 0.0f, 1.0f);
if (q >= 1.0f)
return 0.0f;
const float lambda_max = 50000.0f;
return lambda_max * pow(1.0f - q, 1.5f);
}
bool basis_compressor_params::set_format_mode_and_effort(basist::basis_tex_format mode, int effort, bool set_defaults)
{
fmt_debug_printf("set_format_mode_and_effort: mode: {}, effort: {}, set_defaults: {}\n", basist::basis_get_tex_format_name(mode), effort, set_defaults);
set_format_mode(mode);
if (effort > 0)
effort = clamp<int>(effort, 0, 10);
const float feffort = (effort >= 0) ? clamp<float>((float)effort / 10.0f, 0.0f, 1.0f) : 0.0f;
if (mode == basist::basis_tex_format::cETC1S)
{
if (effort >= 0)
m_etc1s_compression_level = (int)std::round(lerp<float>(0, (float)BASISU_MAX_ETC1S_COMPRESSION_LEVEL, feffort));
else if (set_defaults)
m_etc1s_compression_level = BASISU_DEFAULT_ETC1S_COMPRESSION_LEVEL;
fmt_debug_printf("Low-level ETC1S compression (effort) level (0-6): {}\n", m_etc1s_compression_level);
}
else if (mode == basist::basis_tex_format::cUASTC_LDR_4x4)
{
if (effort >= 0)
m_pack_uastc_ldr_4x4_flags = (int)std::round(lerp<float>((float)cPackUASTCLevelFastest, (float)cPackUASTCLevelVerySlow, feffort));
else if (set_defaults)
m_pack_uastc_ldr_4x4_flags = cPackUASTCLevelDefault;
fmt_debug_printf("Low-level UASTC LDR 4x4 pack (effort) level (0-4): {}\n", m_pack_uastc_ldr_4x4_flags);
}
else if (mode == basist::basis_tex_format::cUASTC_HDR_4x4)
{
if (effort >= 0)
m_uastc_hdr_4x4_options.set_quality_level((int)std::round(lerp<float>((float)uastc_hdr_4x4_codec_options::cMinLevel, (float)uastc_hdr_4x4_codec_options::cMaxLevel, feffort)));
else if (set_defaults)
m_uastc_hdr_4x4_options.set_quality_level(uastc_hdr_4x4_codec_options::cDefaultLevel);
fmt_debug_printf("Low-level UASTC HDR 4x4 quality (actually effort) level (0-4): {}\n", m_uastc_hdr_4x4_options.m_level);
}
else if ((mode == basist::basis_tex_format::cASTC_HDR_6x6) || (mode == basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE))
{
if (effort >= 0)
m_astc_hdr_6x6_options.set_user_level(effort);
else if (set_defaults)
m_astc_hdr_6x6_options.set_user_level(astc_6x6_hdr::ASTC_HDR_6X6_DEF_USER_COMP_LEVEL);
fmt_debug_printf("Low-level UASTC HDR 6x6 master comp (effort) level (0-4): {}, highest comp (effort) level (0-4): {}, num reuse XY deltas: {}, extra patterns flag: {}, brute force partition matching: {}\n",
m_astc_hdr_6x6_options.m_master_comp_level,
m_astc_hdr_6x6_options.m_highest_comp_level,
m_astc_hdr_6x6_options.m_num_reuse_xy_deltas,
m_astc_hdr_6x6_options.m_extra_patterns_flag,
m_astc_hdr_6x6_options.m_brute_force_partition_matching);
}
else if ((mode >= basist::basis_tex_format::cXUASTC_LDR_4x4) && (mode <= basist::basis_tex_format::cASTC_LDR_12x12))
{
if (effort >= 0)
m_xuastc_ldr_effort_level = effort;
else if (set_defaults)
m_xuastc_ldr_effort_level = astc_ldr::EFFORT_LEVEL_DEF;
fmt_debug_printf("Low-level XUASTC LDR effort level (0-10): {}\n", m_xuastc_ldr_effort_level);
}
else if (mode == basist::basis_tex_format::cXUBC7)
{
if (effort >= 0)
m_xubc7_effort_level = clamp<int>(effort, 0, 10);
else if (set_defaults)
m_xubc7_effort_level = xbc7::DEFAULT_EFFORT_LEVEL;
fmt_debug_printf("Low-level XUBC7 effort level (0-10): {}\n", m_xubc7_effort_level);
}
else
{
assert(0);
return false;
}
return true;
}
bool basis_compressor_params::set_format_mode_and_quality_effort(basist::basis_tex_format mode, int quality, int effort, bool set_defaults)
{
fmt_debug_printf("set_format_mode_and_quality_effort: mode: {}, quality: {}, effort: {}, set_defaults: {}\n", basist::basis_get_tex_format_name(mode), quality, effort, set_defaults);
if (!set_format_mode_and_effort(mode, effort, set_defaults))
return false;
if (quality > 0)
quality = clamp<int>(quality, 0, 100);
const float fquality = (quality >= 0) ? clamp<float>((float)quality / 100.0f, 0.0f, 1.0f) : 0.0f;
if (mode == basist::basis_tex_format::cETC1S)
{
if (quality >= 0)
m_quality_level = (int)std::round(lerp<float>(0, 255.0f, fquality));
else if (set_defaults)
m_quality_level = -1;
fmt_debug_printf("Low-level ETC1S quality level (0-255): {}\n", m_quality_level);
}
else if (mode == basist::basis_tex_format::cUASTC_LDR_4x4)
{
if ((quality >= 0) && (quality < 100))
{
m_rdo_uastc_ldr_4x4 = true;
m_rdo_uastc_ldr_4x4_quality_scalar = uastc_ldr_4x4_lambda_from_quality(fquality);
}
else if (quality == 100)
{
m_rdo_uastc_ldr_4x4 = false;
m_rdo_uastc_ldr_4x4_quality_scalar = 1.0f;
}
else if (set_defaults)
{
m_rdo_uastc_ldr_4x4 = false;
m_rdo_uastc_ldr_4x4_quality_scalar = 1.0f; }
fmt_debug_printf("Low-level UASTC LDR 4x4 RDO flag: {}, lambda setting (0=no extra distortion, higher=more distortion): {}\n", m_rdo_uastc_ldr_4x4, m_rdo_uastc_ldr_4x4_quality_scalar);
}
else if (mode == basist::basis_tex_format::cUASTC_HDR_4x4)
{
if ((quality != -1) && (quality < 100))
{
fmt_printf("WARNING: UASTC HDR 4x4 codec doesn't have a 'quality' parameter (it doesn't currently support RDO)\n");
}
}
else if ((mode == basist::basis_tex_format::cASTC_HDR_6x6) || (mode == basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE))
{
if (quality >= 0)
m_astc_hdr_6x6_options.m_lambda = uastc_hdr_6x6_lambda_from_quality(fquality);
else if (set_defaults)
m_astc_hdr_6x6_options.m_lambda = 0.0f;
fmt_debug_printf("Low-level UASTC HDR 6x6 lambda setting (0=no extra distortion, higher=more distortion): {}\n", m_astc_hdr_6x6_options.m_lambda);
}
else if ((mode >= basist::basis_tex_format::cASTC_LDR_4x4) && (mode <= basist::basis_tex_format::cASTC_LDR_12x12))
{
if ((quality != -1) && (quality < 100))
{
fmt_printf("WARNING: ASTC LDR 4x4-12x12 codec doesn't have a 'quality' parameter (it doesn't currently support RDO)\n");
}
}
else if ((mode >= basist::basis_tex_format::cXUASTC_LDR_4x4) && (mode <= basist::basis_tex_format::cXUASTC_LDR_12x12))
{
if ((quality >= 0) && (quality < 100))
{
m_quality_level = quality;
m_xuastc_ldr_use_dct = true;
m_xuastc_ldr_use_lossy_supercompression = true;
}
else if (quality == 100)
{
m_quality_level = -1;
m_xuastc_ldr_use_dct = false;
m_xuastc_ldr_use_lossy_supercompression = false;
}
else if (set_defaults)
{
m_quality_level = -1;
m_xuastc_ldr_use_dct = false;
m_xuastc_ldr_use_lossy_supercompression = false;
}
fmt_debug_printf("Low-level XUASTC quality level (0-100): {}, Use DCT: {}, Use lossy supercompression: {}\n", m_quality_level, m_xuastc_ldr_use_dct, m_xuastc_ldr_use_lossy_supercompression);
}
else if (mode == basist::basis_tex_format::cXUBC7)
{
if ((quality >= 0) && (quality <= 100))
{
m_quality_level = clamp<int>(quality, 1, 100);
}
else if (set_defaults)
{
m_quality_level = -1;
}
fmt_debug_printf("Low-level XUBC7 quality level (0-100): {}\n", m_quality_level);
}
else
{
assert(0);
return false;
}
return true;
}
basis_compressor::basis_compressor() :
m_pOpenCL_context(nullptr),
m_fmt_mode(basist::basis_tex_format::cETC1S),
m_fmt_mode_block_width(4),
m_fmt_mode_block_height(4),
m_total_slice_orig_texels(0),
m_basis_file_size(0),
m_basis_bits_per_texel(0.0f),
m_ktx2_file_size(0),
m_ktx2_bits_per_texel(0.0f),
m_total_blocks(0),
m_hdr_image_scale(1.0f),
m_ldr_to_hdr_upconversion_nit_multiplier(1.0f),
m_upconverted_any_ldr_images(false),
m_any_source_image_has_alpha(false),
m_opencl_failed(false),
m_has_been_processed(false)
{
debug_printf("basis_compressor::basis_compressor\n");
assert(g_library_initialized);
}
basis_compressor::~basis_compressor()
{
if (m_pOpenCL_context)
{
opencl_destroy_context(m_pOpenCL_context);
m_pOpenCL_context = nullptr;
}
}
void basis_compressor::check_for_hdr_inputs()
{
if ((!m_params.m_source_filenames.size()) && (!m_params.m_source_images.size()))
{
if (m_params.m_source_images_hdr.size())
{
m_params.m_hdr = true;
}
}
if (!m_params.m_hdr)
{
for (uint32_t i = 0; i < m_params.m_source_filenames.size(); i++)
{
std::string filename;
string_get_filename(m_params.m_source_filenames[i].c_str(), filename);
std::string ext(string_get_extension(filename));
string_tolower(ext);
if ((ext == "exr") || (ext == "hdr"))
{
m_params.m_hdr = true;
break;
}
}
}
if (m_params.m_hdr)
{
if (m_params.m_source_alpha_filenames.size())
{
debug_printf("Warning: Alpha channel image filenames are not yet supported in UASTC HDR/ASTC HDR modes.\n");
m_params.m_source_alpha_filenames.clear();
}
}
if (m_params.m_hdr)
m_params.m_uastc = true;
}
bool basis_compressor::sanity_check_input_params()
{
if ((m_params.m_read_source_images) && (!m_params.m_source_filenames.size()))
{
assert(0);
return false;
}
if ((!m_params.m_read_source_images) && (m_params.m_source_filenames.size()))
{
assert(0);
return false;
}
if (m_params.m_read_source_images)
{
if (m_params.m_source_images.size() || m_params.m_source_images_hdr.size())
{
assert(0);
return false;
}
if (m_params.m_source_mipmap_images.size() || m_params.m_source_mipmap_images_hdr.size())
{
assert(0);
return false;
}
}
else
{
if (!m_params.m_source_images.size() && !m_params.m_source_images_hdr.size())
{
assert(0);
return false;
}
if (m_params.m_source_images.size())
{
if (m_params.m_source_images_hdr.size() || m_params.m_source_mipmap_images_hdr.size())
{
assert(0);
return false;
}
}
else
{
if (m_params.m_source_mipmap_images.size())
{
assert(0);
return false;
}
if (!m_params.m_source_images_hdr.size())
{
assert(0);
return false;
}
}
}
return true;
}
bool basis_compressor::init(const basis_compressor_params ¶ms)
{
debug_printf("basis_compressor::init\n");
if (!g_library_initialized)
{
error_printf("basis_compressor::init: basisu_encoder_init() MUST be called before using any encoder functionality!\n");
return false;
}
if (!params.m_pJob_pool)
{
error_printf("basis_compressor::init: A non-null job_pool pointer must be specified\n");
return false;
}
m_params = params;
if ((m_params.m_compute_stats) && (!m_params.m_validate_output_data))
m_params.m_validate_output_data = true;
m_hdr_image_scale = 1.0f;
m_ldr_to_hdr_upconversion_nit_multiplier = 1.0f;
m_upconverted_any_ldr_images = false;
m_has_been_processed = false;
m_total_slice_orig_texels = 0;
m_basis_file_size = 0;
m_basis_bits_per_texel = 0.0f;
m_ktx2_file_size = 0;
m_ktx2_bits_per_texel = 0.0f;
check_for_hdr_inputs();
if (m_params.m_hdr)
{
if ((m_params.m_debug) && (m_params.m_ktx2_and_basis_srgb_transfer_function) && (m_params.m_ktx2_and_basis_srgb_transfer_function.was_changed()))
{
debug_printf("Warning: m_ktx2_and_basis_srgb_transfer_function being forced to false in HDR mode (we always write linear KTX2/.basis files in HDR mode)\n");
}
m_params.m_ktx2_and_basis_srgb_transfer_function = false;
}
if (m_params.m_debug)
{
debug_printf("\nbasis_compressor::init:\n");
#define PRINT_BOOL_VALUE(v) fmt_debug_printf("{}: {} {}\n", BASISU_STRINGIZE2(v), static_cast<bool>(m_params.v), m_params.v.was_changed());
#define PRINT_INT_VALUE(v) fmt_debug_printf("{}: {} {}\n", BASISU_STRINGIZE2(v), static_cast<int>(m_params.v), m_params.v.was_changed());
#define PRINT_UINT_VALUE(v) fmt_debug_printf("{}: {} {}\n", BASISU_STRINGIZE2(v), static_cast<uint32_t>(m_params.v), m_params.v.was_changed());
#define PRINT_FLOAT_VALUE(v) fmt_debug_printf("{}: {} {}\n", BASISU_STRINGIZE2(v), static_cast<float>(m_params.v), m_params.v.was_changed());
fmt_debug_printf("Source LDR images: {}, HDR images: {}, filenames: {}, alpha filenames: {}, LDR mipmap images: {}, HDR mipmap images: {}\n",
(uint64_t)m_params.m_source_images.size(), (uint64_t)m_params.m_source_images_hdr.size(),
(uint64_t)m_params.m_source_filenames.size(), (uint64_t)m_params.m_source_alpha_filenames.size(),
(uint64_t)m_params.m_source_mipmap_images.size(), (uint64_t)m_params.m_source_mipmap_images_hdr.size());
if (m_params.m_source_mipmap_images.size())
{
debug_printf("m_source_mipmap_images array sizes:\n");
for (uint32_t i = 0; i < m_params.m_source_mipmap_images.size(); i++)
debug_printf("%u ", m_params.m_source_mipmap_images[i].size());
debug_printf("\n");
}
if (m_params.m_source_mipmap_images_hdr.size())
{
debug_printf("m_source_mipmap_images_hdr array sizes:\n");
for (uint32_t i = 0; i < m_params.m_source_mipmap_images_hdr.size(); i++)
debug_printf("%u ", m_params.m_source_mipmap_images_hdr[i].size());
debug_printf("\n");
}
PRINT_BOOL_VALUE(m_hdr);
switch (m_params.m_hdr_mode)
{
case hdr_modes::cUASTC_HDR_4X4:
{
fmt_debug_printf("m_hdr_mode: cUASTC_HDR_4X4\n");
break;
}
case hdr_modes::cASTC_HDR_6X6:
{
fmt_debug_printf("m_hdr_mode: cASTC_HDR_6X6\n");
break;
}
case hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE:
{
fmt_debug_printf("m_hdr_mode: cUASTC_HDR_6X6_INTERMEDIATE\n");
break;
}
default:
assert(false);
return false;
}
PRINT_BOOL_VALUE(m_uastc);
PRINT_INT_VALUE(m_xuastc_or_astc_ldr_basis_tex_format);
PRINT_BOOL_VALUE(m_use_opencl);
PRINT_BOOL_VALUE(m_y_flip);
PRINT_BOOL_VALUE(m_debug);
PRINT_BOOL_VALUE(m_validate_etc1s);
PRINT_BOOL_VALUE(m_debug_images);
PRINT_INT_VALUE(m_etc1s_compression_level);
PRINT_BOOL_VALUE(m_perceptual);
PRINT_BOOL_VALUE(m_no_endpoint_rdo);
PRINT_BOOL_VALUE(m_no_selector_rdo);
PRINT_BOOL_VALUE(m_read_source_images);
PRINT_BOOL_VALUE(m_write_output_basis_or_ktx2_files);
PRINT_BOOL_VALUE(m_compute_stats);
PRINT_BOOL_VALUE(m_psnr_hvs_m_stats);
PRINT_BOOL_VALUE(m_check_for_alpha);
PRINT_BOOL_VALUE(m_force_alpha);
debug_printf("swizzle: %d,%d,%d,%d\n",
m_params.m_swizzle[0],
m_params.m_swizzle[1],
m_params.m_swizzle[2],
m_params.m_swizzle[3]);
PRINT_BOOL_VALUE(m_renormalize);
PRINT_BOOL_VALUE(m_multithreading);
PRINT_BOOL_VALUE(m_disable_hierarchical_endpoint_codebooks);
PRINT_FLOAT_VALUE(m_endpoint_rdo_thresh);
PRINT_FLOAT_VALUE(m_selector_rdo_thresh);
PRINT_BOOL_VALUE(m_mip_gen);
PRINT_BOOL_VALUE(m_mip_renormalize);
PRINT_BOOL_VALUE(m_mip_wrapping);
PRINT_BOOL_VALUE(m_mip_fast);
PRINT_BOOL_VALUE(m_mip_srgb);
PRINT_FLOAT_VALUE(m_mip_premultiplied);
PRINT_FLOAT_VALUE(m_mip_scale);
PRINT_INT_VALUE(m_mip_smallest_dimension);
debug_printf("m_mip_filter: %s\n", m_params.m_mip_filter.c_str());
debug_printf("m_max_endpoint_clusters: %u\n", m_params.m_etc1s_max_endpoint_clusters);
debug_printf("m_max_selector_clusters: %u\n", m_params.m_etc1s_max_selector_clusters);
debug_printf("m_quality_level: %i\n", m_params.m_quality_level);
debug_printf("UASTC HDR 4x4 quality level: %u\n", m_params.m_uastc_hdr_4x4_options.m_level);
debug_printf("m_tex_type: %u\n", m_params.m_tex_type);
debug_printf("m_userdata0: 0x%X, m_userdata1: 0x%X\n", m_params.m_userdata0, m_params.m_userdata1);
debug_printf("m_us_per_frame: %i (%f fps)\n", m_params.m_us_per_frame, m_params.m_us_per_frame ? 1.0f / (m_params.m_us_per_frame / 1000000.0f) : 0);
debug_printf("m_pack_uastc_ldr_4x4_flags: 0x%X\n", m_params.m_pack_uastc_ldr_4x4_flags);
PRINT_BOOL_VALUE(m_rdo_uastc_ldr_4x4);
PRINT_FLOAT_VALUE(m_rdo_uastc_ldr_4x4_quality_scalar);
PRINT_INT_VALUE(m_rdo_uastc_ldr_4x4_dict_size);
PRINT_FLOAT_VALUE(m_rdo_uastc_ldr_4x4_max_allowed_rms_increase_ratio);
PRINT_FLOAT_VALUE(m_rdo_uastc_ldr_4x4_skip_block_rms_thresh);
PRINT_FLOAT_VALUE(m_rdo_uastc_ldr_4x4_max_smooth_block_error_scale);
PRINT_FLOAT_VALUE(m_rdo_uastc_ldr_4x4_smooth_block_max_std_dev);
PRINT_BOOL_VALUE(m_rdo_uastc_ldr_4x4_favor_simpler_modes_in_rdo_mode)
PRINT_BOOL_VALUE(m_rdo_uastc_ldr_4x4_multithreading);
PRINT_INT_VALUE(m_resample_width);
PRINT_INT_VALUE(m_resample_height);
PRINT_FLOAT_VALUE(m_resample_factor);
debug_printf("Has global codebooks: %u\n", m_params.m_pGlobal_codebooks ? 1 : 0);
if (m_params.m_pGlobal_codebooks)
{
debug_printf("Global codebook endpoints: %u selectors: %u\n", m_params.m_pGlobal_codebooks->get_endpoints().size(), m_params.m_pGlobal_codebooks->get_selectors().size());
}
PRINT_BOOL_VALUE(m_create_ktx2_file);
debug_printf("KTX2 UASTC supercompression: %u\n", m_params.m_ktx2_uastc_supercompression);
debug_printf("KTX2 Zstd supercompression level: %i\n", (int)m_params.m_ktx2_zstd_supercompression_level);
debug_printf("KTX2/basis sRGB transfer function: %u\n", (int)m_params.m_ktx2_and_basis_srgb_transfer_function);
debug_printf("Total key values: %u\n", m_params.m_key_values.size());
for (uint32_t i = 0; i < m_params.m_key_values.size(); i++)
{
debug_printf(" Key: \"%s\"\n", m_params.m_key_values[i].m_key.data());
debug_printf(" Value size: %u\n", m_params.m_key_values[i].m_value.size());
}
PRINT_BOOL_VALUE(m_validate_output_data);
PRINT_UINT_VALUE(m_transcode_flags);
PRINT_BOOL_VALUE(m_ldr_hdr_upconversion_srgb_to_linear);
PRINT_FLOAT_VALUE(m_ldr_hdr_upconversion_nit_multiplier);
PRINT_FLOAT_VALUE(m_ldr_hdr_upconversion_black_bias);
debug_printf("Allow UASTC HDR 4x4 uber mode: %u\n", m_params.m_uastc_hdr_4x4_options.m_allow_uber_mode);
debug_printf("UASTC HDR 4x4 ultra quant: %u\n", m_params.m_uastc_hdr_4x4_options.m_ultra_quant);
PRINT_BOOL_VALUE(m_hdr_favor_astc);
PRINT_INT_VALUE(m_xuastc_ldr_effort_level);
PRINT_BOOL_VALUE(m_xuastc_ldr_blurring);
PRINT_INT_VALUE(m_xuastc_ldr_astc_comp_selection);
PRINT_INT_VALUE(m_xuastc_ldr_sharpen_mode);
PRINT_FLOAT_VALUE(m_xuastc_ldr_sharpen_amount);
PRINT_INT_VALUE(m_xuastc_ldr_deblocking_mode);
PRINT_UINT_VALUE(m_xuastc_ldr_num_deblocking_passes);
PRINT_BOOL_VALUE(m_xuastc_ldr_heavy_subset_usage);
PRINT_BOOL_VALUE(m_xuastc_ldr_use_dct);
PRINT_BOOL_VALUE(m_xuastc_ldr_use_lossy_supercompression);
PRINT_BOOL_VALUE(m_xuastc_ldr_force_disable_subsets);
PRINT_BOOL_VALUE(m_xuastc_ldr_force_disable_rgb_dual_plane);
PRINT_INT_VALUE(m_xuastc_ldr_syntax);
debug_printf("LDR channel weights: ");
for (uint32_t i = 0; i < 4; i++)
fmt_debug_printf("{} ", m_params.m_ldr_channel_weights[i]);
debug_printf("\n");
PRINT_FLOAT_VALUE(m_ls_min_psnr);
PRINT_FLOAT_VALUE(m_ls_thresh_psnr);
PRINT_FLOAT_VALUE(m_ls_thresh_edge_psnr);
PRINT_FLOAT_VALUE(m_ls_min_alpha_psnr);
PRINT_FLOAT_VALUE(m_ls_thresh_alpha_psnr);
PRINT_FLOAT_VALUE(m_ls_thresh_edge_alpha_psnr);
PRINT_INT_VALUE(m_xuastc_ldr_debug_block_x);
PRINT_INT_VALUE(m_xuastc_ldr_debug_block_y);
PRINT_INT_VALUE(m_xubc7_effort_level);
PRINT_INT_VALUE(m_xubc7_rdo_level);
PRINT_INT_VALUE(m_xubc7_num_stripes);
PRINT_INT_VALUE(m_xubc7_encoder);
PRINT_INT_VALUE(m_xubc7_bc7e_scalar_level);
PRINT_BOOL_VALUE(m_status_output);
PRINT_BOOL_VALUE(m_print_stats);
#undef PRINT_BOOL_VALUE
#undef PRINT_INT_VALUE
#undef PRINT_UINT_VALUE
#undef PRINT_FLOAT_VALUE
fmt_printf("m_format_mode: {}\n", (uint32_t)m_params.get_format_mode());
fmt_printf("job pool total threads: {}\n", m_params.m_pJob_pool ? (uint32_t)m_params.m_pJob_pool->get_total_threads() : 0);
fmt_printf("\n");
}
if (!sanity_check_input_params())
return false;
if ((m_params.m_use_opencl) && opencl_is_available() && !m_pOpenCL_context && !m_opencl_failed)
{
m_pOpenCL_context = opencl_create_context();
if (!m_pOpenCL_context)
m_opencl_failed = true;
}
return true;
}
bool basis_compressor::pick_format_mode()
{
m_fmt_mode_block_width = 4;
m_fmt_mode_block_height = 4;
if ((uint32_t)m_params.m_format_mode == (uint32_t)basist::basis_tex_format::cXUBC7)
{
m_fmt_mode = basist::basis_tex_format::cXUBC7;
m_params.m_xuastc_or_astc_ldr_basis_tex_format = -1;
m_params.m_hdr = false;
m_params.m_uastc = true;
m_params.m_hdr_mode = hdr_modes::cUASTC_HDR_4X4; return true;
}
m_fmt_mode = basist::basis_tex_format::cETC1S;
if (m_params.m_hdr)
{
assert(m_params.m_uastc);
assert(m_params.m_xuastc_or_astc_ldr_basis_tex_format == -1);
switch (m_params.m_hdr_mode)
{
case hdr_modes::cUASTC_HDR_4X4:
m_fmt_mode = basist::basis_tex_format::cUASTC_HDR_4x4;
break;
case hdr_modes::cASTC_HDR_6X6:
m_fmt_mode = basist::basis_tex_format::cASTC_HDR_6x6;
m_fmt_mode_block_width = 6;
m_fmt_mode_block_height = 6;
break;
case hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE:
m_fmt_mode = basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE;
m_fmt_mode_block_width = 6;
m_fmt_mode_block_height = 6;
break;
default:
assert(0);
break;
}
}
else if (m_params.m_uastc)
{
if (m_params.m_xuastc_or_astc_ldr_basis_tex_format == -1)
{
m_fmt_mode = basist::basis_tex_format::cUASTC_LDR_4x4;
}
else
{
m_fmt_mode = static_cast<basist::basis_tex_format>(static_cast<int>(m_params.m_xuastc_or_astc_ldr_basis_tex_format));
if (!basis_tex_format_is_xuastc_ldr(m_fmt_mode) && !basis_tex_format_is_astc_ldr(m_fmt_mode))
{
assert(0);
error_printf("basis_compressor::pick_format_mode: m_xuastc_or_astc_ldr_basis_tex_format is invalid\n");
return false;
}
basist::get_basis_tex_format_block_size(m_fmt_mode, m_fmt_mode_block_width, m_fmt_mode_block_height);
}
}
else
{
assert(m_params.m_xuastc_or_astc_ldr_basis_tex_format == -1);
}
if (m_params.m_debug)
{
switch (m_fmt_mode)
{
case basist::basis_tex_format::cETC1S:
fmt_debug_printf("Format Mode: cETC1S\n");
break;
case basist::basis_tex_format::cUASTC_LDR_4x4:
fmt_debug_printf("Format Mode: cUASTC_LDR_4x4\n");
break;
case basist::basis_tex_format::cUASTC_HDR_4x4:
fmt_debug_printf("Format Mode: cUASTC_HDR_4x4\n");
break;
case basist::basis_tex_format::cASTC_HDR_6x6:
fmt_debug_printf("Format Mode: cASTC_HDR_6x6\n");
break;
case basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE:
fmt_debug_printf("Format Mode: cUASTC_HDR_6x6_INTERMEDIATE\n");
break;
case basist::basis_tex_format::cXUASTC_LDR_4x4:
case basist::basis_tex_format::cXUASTC_LDR_5x4:
case basist::basis_tex_format::cXUASTC_LDR_5x5:
case basist::basis_tex_format::cXUASTC_LDR_6x5:
case basist::basis_tex_format::cXUASTC_LDR_6x6:
case basist::basis_tex_format::cXUASTC_LDR_8x5:
case basist::basis_tex_format::cXUASTC_LDR_8x6:
case basist::basis_tex_format::cXUASTC_LDR_10x5:
case basist::basis_tex_format::cXUASTC_LDR_10x6:
case basist::basis_tex_format::cXUASTC_LDR_8x8:
case basist::basis_tex_format::cXUASTC_LDR_10x8:
case basist::basis_tex_format::cXUASTC_LDR_10x10:
case basist::basis_tex_format::cXUASTC_LDR_12x10:
case basist::basis_tex_format::cXUASTC_LDR_12x12:
{
fmt_debug_printf("Format Mode: cXUASTC_LDR_{}x{}\n", m_fmt_mode_block_width, m_fmt_mode_block_height);
break;
}
case basist::basis_tex_format::cASTC_LDR_4x4:
case basist::basis_tex_format::cASTC_LDR_5x4:
case basist::basis_tex_format::cASTC_LDR_5x5:
case basist::basis_tex_format::cASTC_LDR_6x5:
case basist::basis_tex_format::cASTC_LDR_6x6:
case basist::basis_tex_format::cASTC_LDR_8x5:
case basist::basis_tex_format::cASTC_LDR_8x6:
case basist::basis_tex_format::cASTC_LDR_10x5:
case basist::basis_tex_format::cASTC_LDR_10x6:
case basist::basis_tex_format::cASTC_LDR_8x8:
case basist::basis_tex_format::cASTC_LDR_10x8:
case basist::basis_tex_format::cASTC_LDR_10x10:
case basist::basis_tex_format::cASTC_LDR_12x10:
case basist::basis_tex_format::cASTC_LDR_12x12:
{
fmt_debug_printf("Format Mode: cASTC_LDR_{}x{}\n", m_fmt_mode_block_width, m_fmt_mode_block_height);
break;
}
case basist::basis_tex_format::cXUBC7:
{
fmt_debug_printf("Format Mode: cXUBC7\n");
break;
}
default:
assert(0);
break;
}
}
return true;
}
basis_compressor::error_code basis_compressor::process()
{
debug_printf("basis_compressor::process\n");
if (m_has_been_processed)
{
error_printf("basis_compressor::process: process()/process_source_images() may only be called once per init().\n");
return cECFailedInitializing;
}
m_has_been_processed = true;
if (!read_dds_source_images())
return cECFailedReadingSourceImages;
if (!pick_format_mode())
return cECFailedInvalidParameters;
if (!read_source_images())
return cECFailedReadingSourceImages;
if (!validate_texture_type_constraints())
return cECFailedValidating;
if (m_params.m_create_ktx2_file)
{
if (!validate_ktx2_constraints())
{
error_printf("Inputs do not satisfy .KTX2 texture constraints: all source images must be the same resolution and have the same number of mipmap levels.\n");
return cECFailedValidating;
}
}
if (!extract_source_blocks())
return cECFailedFrontEnd;
if (m_params.m_hdr)
{
if (m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_4X4)
{
if (m_params.m_status_output)
printf("Mode: UASTC 4x4 HDR Effort Level (0-4): %u\n", m_params.m_uastc_hdr_4x4_options.m_level);
error_code ec = encode_slices_to_uastc_4x4_hdr();
if (ec != cECSuccess)
return ec;
}
else
{
assert((m_params.m_hdr_mode == hdr_modes::cASTC_HDR_6X6) || (m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE));
if (m_params.m_status_output)
{
fmt_printf("Mode: ASTC 6x6 HDR {}, Base Effort Level (0-4): {}, Highest Effort Level (0-4): {}, Lambda: {}, REC 2020: {}\n",
(m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE) ? "Intermediate" : "",
m_params.m_astc_hdr_6x6_options.m_master_comp_level, m_params.m_astc_hdr_6x6_options.m_highest_comp_level,
m_params.m_astc_hdr_6x6_options.m_lambda, m_params.m_astc_hdr_6x6_options.m_rec2020_bt2100_color_gamut);
if (m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE)
{
fmt_printf("Writing v{} compatible UASTC HDR 6x6i bitstream\n", m_params.m_astc_hdr_6x6_options.m_write_basisu_1_6_compatible_files ? "1.60" : "2.00+");
}
}
error_code ec = encode_slices_to_astc_6x6_hdr();
if (ec != cECSuccess)
return ec;
}
}
else if (m_params.m_uastc)
{
error_code ec = cECFailedEncodeUASTC;
if (m_fmt_mode == basist::basis_tex_format::cXUBC7)
{
if (m_params.m_status_output)
{
fmt_printf("Mode: XUBC7, Effort Level (0-10): {}, Quality level (1-100): {}, RDO level (0-100): {}\n",
m_params.m_xubc7_effort_level, m_params.m_quality_level, m_params.m_xubc7_rdo_level);
}
ec = encode_slices_to_xubc7();
}
else if (basis_tex_format_is_xuastc_ldr(m_fmt_mode) || basis_tex_format_is_astc_ldr(m_fmt_mode))
{
if (m_params.m_status_output)
{
uint32_t block_width = 0, block_height = 0;
basist::get_basis_tex_format_block_size(m_fmt_mode, block_width, block_height);
if (basis_tex_format_is_xuastc_ldr(m_fmt_mode))
{
fmt_printf("Mode: XUASTC LDR {}x{}, Effort Level (0-10): {}, Disable Subsets: {}, Disable RGB Dual Plane: {}\nWeight grid DCT: {}, DCT quality level (1-100): {}, Lossy supercompression: {}\nsRGB8 ASTC decode profile: {}, Syntax: {}, Channel weights: {} {} {} {}\n",
block_width, block_height, (int)m_params.m_xuastc_ldr_effort_level, (bool)m_params.m_xuastc_ldr_force_disable_subsets, (bool)m_params.m_xuastc_ldr_force_disable_rgb_dual_plane,
(bool)m_params.m_xuastc_ldr_use_dct,
(bool)m_params.m_xuastc_ldr_use_dct ? m_params.m_quality_level : 0,
(bool)m_params.m_xuastc_ldr_use_lossy_supercompression,
(bool)m_params.m_ktx2_and_basis_srgb_transfer_function,
(int)m_params.m_xuastc_ldr_syntax,
m_params.m_ldr_channel_weights[0], m_params.m_ldr_channel_weights[1], m_params.m_ldr_channel_weights[2], m_params.m_ldr_channel_weights[3]);
}
else
{
fmt_printf("Mode: ASTC LDR {}x{}, Effort Level (0-10): {}, Disable Subsets: {}, Disable RGB Dual Plane: {}\nsRGB8 ASTC decode profile: {}, Syntax: {}, Channel weights: {} {} {} {}\n",
block_width, block_height,
(int)m_params.m_xuastc_ldr_effort_level, (bool)m_params.m_xuastc_ldr_force_disable_subsets, (bool)m_params.m_xuastc_ldr_force_disable_rgb_dual_plane,
(bool)m_params.m_ktx2_and_basis_srgb_transfer_function,
(int)m_params.m_xuastc_ldr_syntax,
m_params.m_ldr_channel_weights[0], m_params.m_ldr_channel_weights[1], m_params.m_ldr_channel_weights[2], m_params.m_ldr_channel_weights[3]);
}
}
ec = encode_slices_to_xuastc_or_astc_ldr();
}
else
{
if (m_params.m_status_output)
{
if (m_params.m_rdo_uastc_ldr_4x4)
fmt_printf("Mode: UASTC LDR 4x4 Effort Level (0-4): {}, using RDO lambda: {}\n", m_params.m_pack_uastc_ldr_4x4_flags & cPackUASTCLevelMask, m_params.m_rdo_uastc_ldr_4x4_quality_scalar);
else
printf("Mode: UASTC LDR 4x4 Effort Level (0-4): %u\n", m_params.m_pack_uastc_ldr_4x4_flags & cPackUASTCLevelMask);
}
ec = encode_slices_to_uastc_4x4_ldr();
}
if (ec != cECSuccess)
return ec;
}
else
{
assert(m_fmt_mode == basist::basis_tex_format::cETC1S);
if (m_params.m_status_output)
printf("Mode: ETC1S Quality (0-255): %i, Comp Level (Effort, 0-6): %i\n", m_params.m_quality_level, (int)m_params.m_etc1s_compression_level);
if (!process_frontend())
return cECFailedFrontEnd;
if (!extract_frontend_texture_data())
return cECFailedFrontendExtract;
if (!process_backend())
return cECFailedBackend;
}
if (!create_basis_file_and_transcode())
return cECFailedCreateBasisFile;
if (m_params.m_create_ktx2_file)
{
if (!create_ktx2_file())
return cECFailedCreateKTX2File;
}
if (!write_output_files_and_compute_stats())
return cECFailedWritingOutput;
if (m_params.m_status_output)
fmt_printf("basis_compressor::process: Success\n");
return cECSuccess;
}
basis_compressor::error_code basis_compressor::process_source_images()
{
debug_printf("basis_compressor::process_source_images\n");
if (m_has_been_processed)
{
error_printf("basis_compressor::process_source_images: process()/process_source_images() may only be called once per init().\n");
return cECFailedInitializing;
}
m_has_been_processed = true;
if (!read_dds_source_images())
return cECFailedReadingSourceImages;
if (!pick_format_mode())
return cECFailedInvalidParameters;
if (!read_source_images())
return cECFailedReadingSourceImages;
if (!validate_texture_type_constraints())
return cECFailedValidating;
if (m_params.m_create_ktx2_file)
{
if (!validate_ktx2_constraints())
{
error_printf("Inputs do not satisfy .KTX2 texture constraints: all source images must be the same resolution and have the same number of mipmap levels.\n");
return cECFailedValidating;
}
}
return cECSuccess;
}
basis_compressor::error_code basis_compressor::encode_slices_to_astc_6x6_hdr()
{
debug_printf("basis_compressor::encode_slices_to_astc_6x6_hdr\n");
interval_timer tm;
tm.start();
m_uastc_slice_textures.resize(m_slice_descs.size());
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
m_uastc_slice_textures[slice_index].init(texture_format::cASTC_HDR_6x6, m_slice_descs[slice_index].m_orig_width, m_slice_descs[slice_index].m_orig_height);
if (m_params.m_hdr_mode == hdr_modes::cASTC_HDR_6X6)
m_uastc_backend_output.m_tex_format = basist::basis_tex_format::cASTC_HDR_6x6;
else if (m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE)
m_uastc_backend_output.m_tex_format = basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE;
else
{
assert(0);
return cECFailedEncodeUASTC;
}
m_uastc_backend_output.m_etc1s = false;
m_uastc_backend_output.m_srgb = false;
m_uastc_backend_output.m_slice_desc = m_slice_descs;
m_uastc_backend_output.m_slice_image_data.resize(m_slice_descs.size());
m_uastc_backend_output.m_slice_image_crcs.resize(m_slice_descs.size());
astc_6x6_hdr::astc_hdr_6x6_global_config global_cfg(m_params.m_astc_hdr_6x6_options);
global_cfg.m_image_stats = m_params.m_compute_stats;
global_cfg.m_debug_images = m_params.m_debug_images;
global_cfg.m_output_images = m_params.m_debug_images;
global_cfg.m_debug_output = m_params.m_debug;
global_cfg.m_status_output = m_params.m_status_output || m_params.m_debug;
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
if (m_params.m_status_output)
fmt_printf("Encoding slice {}\n", slice_index);
gpu_image& dst_tex = m_uastc_slice_textures[slice_index];
uint8_vec &dst_buf = m_uastc_backend_output.m_slice_image_data[slice_index];
basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
(void)slice_desc;
const imagef& source_image = m_slice_images_hdr[slice_index];
assert(source_image.get_width() && source_image.get_height());
uint8_vec intermediate_tex_data, astc_tex_data;
global_cfg.m_debug_image_prefix = m_params.m_astc_hdr_6x6_options.m_debug_image_prefix;
global_cfg.m_debug_image_prefix += fmt_string("slice_{}_", slice_index);
global_cfg.m_output_image_prefix = m_params.m_astc_hdr_6x6_options.m_output_image_prefix;
global_cfg.m_output_image_prefix += fmt_string("slice_{}_", slice_index);
if (m_params.m_debug)
fmt_debug_printf("----------------------------------------------------------------------------\n");
astc_6x6_hdr::result_metrics metrics;
bool status = astc_6x6_hdr::compress_photo(source_image, global_cfg, m_params.m_pJob_pool, intermediate_tex_data, astc_tex_data, metrics);
if (!status)
return cECFailedEncodeUASTC;
if (m_params.m_debug)
fmt_debug_printf("----------------------------------------------------------------------------\n");
assert(intermediate_tex_data.size());
assert(astc_tex_data.size());
assert((astc_tex_data.size() & 15) == 0);
assert(dst_tex.get_size_in_bytes() == astc_tex_data.size_in_bytes());
memcpy(dst_tex.get_ptr(), astc_tex_data.data(), astc_tex_data.size_in_bytes());
if (m_params.m_hdr_mode == hdr_modes::cASTC_HDR_6X6)
{
dst_buf.resize(dst_tex.get_size_in_bytes());
memcpy(&dst_buf[0], dst_tex.get_ptr(), dst_tex.get_size_in_bytes());
}
else
{
assert(m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE);
dst_buf.resize(intermediate_tex_data.size_in_bytes());
memcpy(&dst_buf[0], intermediate_tex_data.get_ptr(), intermediate_tex_data.size_in_bytes());
}
m_uastc_backend_output.m_slice_image_crcs[slice_index] = basist::crc16(dst_buf.get_ptr(), dst_buf.size_in_bytes(), 0);
}
return cECSuccess;
}
basis_compressor::error_code basis_compressor::encode_slices_to_uastc_4x4_hdr()
{
debug_printf("basis_compressor::encode_slices_to_uastc_4x4_hdr\n");
interval_timer tm;
tm.start();
m_uastc_slice_textures.resize(m_slice_descs.size());
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
m_uastc_slice_textures[slice_index].init(texture_format::cUASTC_HDR_4x4, m_slice_descs[slice_index].m_orig_width, m_slice_descs[slice_index].m_orig_height);
m_uastc_backend_output.m_tex_format = basist::basis_tex_format::cUASTC_HDR_4x4;
m_uastc_backend_output.m_etc1s = false;
m_uastc_backend_output.m_srgb = false;
m_uastc_backend_output.m_slice_desc = m_slice_descs;
m_uastc_backend_output.m_slice_image_data.resize(m_slice_descs.size());
m_uastc_backend_output.m_slice_image_crcs.resize(m_slice_descs.size());
if (!m_params.m_perceptual)
{
m_params.m_uastc_hdr_4x4_options.m_r_err_scale = 1.0f;
m_params.m_uastc_hdr_4x4_options.m_g_err_scale = 1.0f;
}
const float DEFAULT_BC6H_ERROR_WEIGHT = .65f; const float LOWEST_BC6H_ERROR_WEIGHT = .1f;
m_params.m_uastc_hdr_4x4_options.m_bc6h_err_weight = m_params.m_hdr_favor_astc ? LOWEST_BC6H_ERROR_WEIGHT : DEFAULT_BC6H_ERROR_WEIGHT;
std::atomic<bool> any_failures;
any_failures.store(false);
astc_hdr_4x4_block_stats enc_stats;
struct uastc_blk_desc
{
uint32_t m_solid_flag;
uint32_t m_num_partitions;
uint32_t m_cem_index;
uint32_t m_weight_ise_range;
uint32_t m_endpoint_ise_range;
bool operator< (const uastc_blk_desc& desc) const
{
if (this == &desc)
return false;
#define COMP(XX) if (XX < desc.XX) return true; else if (XX != desc.XX) return false;
COMP(m_solid_flag)
COMP(m_num_partitions)
COMP(m_cem_index)
COMP(m_weight_ise_range)
COMP(m_endpoint_ise_range)
#undef COMP
return false;
}
bool operator== (const uastc_blk_desc& desc) const
{
if (this == &desc)
return true;
if ((*this < desc) || (desc < *this))
return false;
return true;
}
bool operator!= (const uastc_blk_desc& desc) const
{
return !(*this == desc);
}
};
struct uastc_blk_desc_stats
{
uastc_blk_desc_stats() : m_count(0) { }
uint32_t m_count;
#ifdef UASTC_HDR_DEBUG_SAVE_CATEGORIZED_BLOCKS
basisu::vector<basist::astc_blk> m_blks;
#endif
};
std::map<uastc_blk_desc, uastc_blk_desc_stats> unique_block_descs;
std::mutex unique_block_desc_mutex;
std::mutex status_output_mutex;
uint32_t total_blocks_processed = 0;
float last_percentage_printed = 0;
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
if (m_params.m_status_output)
fmt_printf("Encoding slice {}\n", slice_index);
gpu_image& tex = m_uastc_slice_textures[slice_index];
basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
(void)slice_desc;
const uint32_t num_blocks_x = tex.get_blocks_x();
const uint32_t num_blocks_y = tex.get_blocks_y();
const uint32_t total_blocks = tex.get_total_blocks();
const imagef& source_image = m_slice_images_hdr[slice_index];
const uint32_t N = 256;
for (uint32_t block_index_iter = 0; block_index_iter < total_blocks; block_index_iter += N)
{
const uint32_t first_index = block_index_iter;
const uint32_t last_index = minimum<uint32_t>(total_blocks, block_index_iter + N);
m_params.m_pJob_pool->add_job([this, first_index, last_index, num_blocks_x, num_blocks_y, total_blocks, &source_image,
&tex, &any_failures, &enc_stats, &unique_block_descs, &unique_block_desc_mutex,
&status_output_mutex, &total_blocks_processed, &last_percentage_printed]
{
BASISU_NOTE_UNUSED(num_blocks_y);
basisu::vector<astc_hdr_4x4_pack_results> all_results;
all_results.reserve(256);
for (uint32_t block_index = first_index; block_index < last_index; block_index++)
{
const uint32_t block_x = block_index % num_blocks_x;
const uint32_t block_y = block_index / num_blocks_x;
vec4F block_pixels[16];
source_image.extract_block_clamped(&block_pixels[0], block_x * 4, block_y * 4, 4, 4);
basist::astc_blk& dest_block = *(basist::astc_blk*)tex.get_block_ptr(block_x, block_y);
float rgb_pixels[16 * 3];
basist::half_float rgb_pixels_half[16 * 3];
for (uint32_t i = 0; i < 16; i++)
{
rgb_pixels[i * 3 + 0] = block_pixels[i][0];
rgb_pixels_half[i * 3 + 0] = float_to_half_non_neg_no_nan_inf(block_pixels[i][0]);
rgb_pixels[i * 3 + 1] = block_pixels[i][1];
rgb_pixels_half[i * 3 + 1] = float_to_half_non_neg_no_nan_inf(block_pixels[i][1]);
rgb_pixels[i * 3 + 2] = block_pixels[i][2];
rgb_pixels_half[i * 3 + 2] = float_to_half_non_neg_no_nan_inf(block_pixels[i][2]);
}
bool status = astc_hdr_4x4_enc_block(&rgb_pixels[0], rgb_pixels_half, m_params.m_uastc_hdr_4x4_options, all_results);
if (!status)
{
any_failures.store(true);
continue;
}
double best_err = 1e+30f;
int best_result_index = -1;
const double bc6h_err_weight = m_params.m_uastc_hdr_4x4_options.m_bc6h_err_weight;
const double astc_err_weight = (1.0f - bc6h_err_weight);
for (uint32_t i = 0; i < all_results.size(); i++)
{
basist::half_float unpacked_bc6h_block[4 * 4 * 3];
unpack_bc6h(&all_results[i].m_bc6h_block, unpacked_bc6h_block, false);
all_results[i].m_bc6h_block_error = compute_block_error(16, rgb_pixels_half, unpacked_bc6h_block, m_params.m_uastc_hdr_4x4_options);
double overall_err = (all_results[i].m_bc6h_block_error * bc6h_err_weight) + (all_results[i].m_best_block_error * astc_err_weight);
if ((!i) || (overall_err < best_err))
{
best_err = overall_err;
best_result_index = i;
}
}
const astc_hdr_4x4_pack_results& best_results = all_results[best_result_index];
astc_hdr_4x4_pack_results_to_block(dest_block, best_results);
if (m_params.m_uastc_hdr_4x4_options.m_level > 0)
{
basist::bc6h_block transcoded_bc6h_blk;
bool transcode_results = astc_hdr_transcode_to_bc6h(dest_block, transcoded_bc6h_blk);
assert(transcode_results);
if ((!transcode_results) && (!any_failures))
{
error_printf("basis_compressor::encode_slices_to_uastc_4x4_hdr: UASTC HDR block transcode check failed!\n");
any_failures.store(true);
continue;
}
}
if (m_params.m_debug)
{
enc_stats.update(best_results);
uastc_blk_desc blk_desc;
clear_obj(blk_desc);
blk_desc.m_solid_flag = best_results.m_is_solid;
if (!blk_desc.m_solid_flag)
{
blk_desc.m_num_partitions = best_results.m_best_blk.m_num_partitions;
blk_desc.m_cem_index = best_results.m_best_blk.m_color_endpoint_modes[0];
blk_desc.m_weight_ise_range = best_results.m_best_blk.m_weight_ise_range;
blk_desc.m_endpoint_ise_range = best_results.m_best_blk.m_endpoint_ise_range;
}
{
std::lock_guard<std::mutex> lck(unique_block_desc_mutex);
auto res = unique_block_descs.insert(std::make_pair(blk_desc, uastc_blk_desc_stats()));
(res.first)->second.m_count++;
#ifdef UASTC_HDR_DEBUG_SAVE_CATEGORIZED_BLOCKS
(res.first)->second.m_blks.push_back(dest_block);
#endif
}
}
}
if (m_params.m_status_output)
{
float percent_done = 0;
bool print_flag = false;
{
std::lock_guard<std::mutex> lck(status_output_mutex);
total_blocks_processed += (last_index - first_index) + 1;
percent_done = ((float)total_blocks_processed * 100.0f) / (float)total_blocks;
if ((percent_done >= 100.0f) || (percent_done >= (last_percentage_printed + 5.0f)))
{
last_percentage_printed = percent_done;
print_flag = true;
}
}
if (print_flag)
debug_printf("basis_compressor::encode_slices_to_uastc_4x4_hdr: %3.1f%% done\n", percent_done);
}
});
}
m_params.m_pJob_pool->wait_for_all();
if (any_failures)
return cECFailedEncodeUASTC;
m_uastc_backend_output.m_slice_image_data[slice_index].resize(tex.get_size_in_bytes());
memcpy(&m_uastc_backend_output.m_slice_image_data[slice_index][0], tex.get_ptr(), tex.get_size_in_bytes());
m_uastc_backend_output.m_slice_image_crcs[slice_index] = basist::crc16(tex.get_ptr(), tex.get_size_in_bytes(), 0);
}
debug_printf("basis_compressor::encode_slices_to_uastc_4x4_hdr: Total time: %3.3f secs\n", tm.get_elapsed_secs());
if (m_params.m_debug)
{
debug_printf("\n----- Total unique UASTC block descs: %u\n", (uint32_t)unique_block_descs.size());
uint32_t c = 0;
for (auto it = unique_block_descs.begin(); it != unique_block_descs.end(); ++it)
{
debug_printf("%u. Total uses: %u %3.2f%%, solid color: %u\n", c, it->second.m_count,
((float)it->second.m_count * 100.0f) / enc_stats.m_total_blocks, it->first.m_solid_flag);
if (!it->first.m_solid_flag)
{
debug_printf(" Num partitions: %u\n", it->first.m_num_partitions);
debug_printf(" CEM index: %u\n", it->first.m_cem_index);
debug_printf(" Weight ISE range: %u (%u levels)\n", it->first.m_weight_ise_range, astc_helpers::get_ise_levels(it->first.m_weight_ise_range));
debug_printf(" Endpoint ISE range: %u (%u levels)\n", it->first.m_endpoint_ise_range, astc_helpers::get_ise_levels(it->first.m_endpoint_ise_range));
}
#ifdef UASTC_HDR_DEBUG_SAVE_CATEGORIZED_BLOCKS
debug_printf(" -- UASTC HDR block bytes:\n");
for (uint32_t j = 0; j < minimum<uint32_t>(4, it->second.m_blks.size()); j++)
{
basist::astc_blk& blk = it->second.m_blks[j];
debug_printf(" - UASTC HDR: { ");
for (uint32_t k = 0; k < 16; k++)
debug_printf("%u%s", ((const uint8_t*)&blk)[k], (k != 15) ? ", " : "");
debug_printf(" }\n");
basist::bc6h_block bc6h_blk;
bool res = astc_hdr_transcode_to_bc6h(blk, bc6h_blk);
assert(res);
if (!res)
{
error_printf("astc_hdr_transcode_to_bc6h() failed!\n");
return cECFailedEncodeUASTC;
}
debug_printf(" - BC6H: { ");
for (uint32_t k = 0; k < 16; k++)
debug_printf("%u%s", ((const uint8_t*)&bc6h_blk)[k], (k != 15) ? ", " : "");
debug_printf(" }\n");
}
#endif
c++;
}
printf("\n");
enc_stats.print();
}
return cECSuccess;
}
basis_compressor::error_code basis_compressor::encode_slices_to_xuastc_or_astc_ldr()
{
if (m_params.m_debug)
debug_printf("basis_compressor::encode_slices_to_xuastc_or_astc_ldr\n");
m_uastc_slice_textures.resize(m_slice_descs.size());
const texture_format tex_fmt = basist::basis_get_texture_format_from_xuastc_or_astc_ldr_basis_tex_format(m_fmt_mode);
const basist::transcoder_texture_format transcoder_tex_fmt = basist::basis_get_transcoder_texture_format_from_xuastc_or_astc_ldr_basis_tex_format(m_fmt_mode);
uint32_t block_width = 0, block_height = 0;
block_width = basist::basis_get_block_width(transcoder_tex_fmt);
block_height = basist::basis_get_block_height(transcoder_tex_fmt);
const bool very_large_blocks_flag = (block_width * block_height) >= basist::BASISU_DEBLOCKING_BLOCK_SIZE_THRESHOLD;
#if defined(_DEBUG) || defined(DEBUG)
{
uint32_t alt_block_width = 0, alt_block_height = 0;
get_basis_tex_format_block_size(m_fmt_mode, alt_block_width, alt_block_height);
assert((block_width == alt_block_width) && (block_height == alt_block_height));
}
#endif
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
m_uastc_slice_textures[slice_index].init(tex_fmt, m_slice_descs[slice_index].m_orig_width, m_slice_descs[slice_index].m_orig_height);
m_uastc_backend_output.m_tex_format = m_fmt_mode;
m_uastc_backend_output.m_etc1s = false;
m_uastc_backend_output.m_srgb = m_params.m_ktx2_and_basis_srgb_transfer_function;
m_uastc_backend_output.m_slice_desc = m_slice_descs;
m_uastc_backend_output.m_slice_image_data.resize(m_slice_descs.size());
m_uastc_backend_output.m_slice_image_crcs.resize(m_slice_descs.size());
astc_ldr::astc_ldr_encode_config cfg;
cfg.m_astc_block_width = block_width;
cfg.m_astc_block_height = block_height;
cfg.m_block_blurring_p1 = m_params.m_xuastc_ldr_blurring;
cfg.m_block_blurring_p2 = m_params.m_xuastc_ldr_blurring;
cfg.m_effort_level = clamp<int>(m_params.m_xuastc_ldr_effort_level, astc_ldr::EFFORT_LEVEL_MIN, astc_ldr::EFFORT_LEVEL_MAX);
cfg.m_force_disable_subsets = m_params.m_xuastc_ldr_force_disable_subsets;
cfg.m_force_disable_rgb_dual_plane = m_params.m_xuastc_ldr_force_disable_rgb_dual_plane;
cfg.m_astc_decode_mode_srgb = m_params.m_ktx2_and_basis_srgb_transfer_function;
cfg.m_use_astcenc = false;
cfg.m_use_astcf = false;
cfg.m_merge_basisu_into_output = false;
switch (m_params.m_xuastc_ldr_astc_comp_selection)
{
case (int)xuastc_ldr_astc_comp_selection::cAuto:
{
switch (cfg.m_effort_level)
{
case 0:
{
if ((block_width == 4) && (block_height == 4))
{
}
else
{
cfg.m_use_astcf = true;
}
break;
}
case 1:
case 2:
{
cfg.m_use_astcf = true;
break;
}
case 3:
{
if (((block_width * block_height) > 64) || (m_any_source_image_has_alpha))
cfg.m_merge_basisu_into_output = true;
cfg.m_use_astcf = true;
break;
}
case 4:
{
cfg.m_merge_basisu_into_output = true;
cfg.m_use_astcf = true;
break;
}
default:
{
cfg.m_use_astcf = true;
cfg.m_merge_basisu_into_output = true;
break;
}
}
break;
}
case (int)xuastc_ldr_astc_comp_selection::cBasisU:
{
break;
}
case (int)xuastc_ldr_astc_comp_selection::cASTCENC:
{
cfg.m_use_astcenc = true;
break;
}
case (int)xuastc_ldr_astc_comp_selection::cASTCF:
{
cfg.m_use_astcf = true;
break;
}
case (int)xuastc_ldr_astc_comp_selection::cBasisU_and_ASTCENC:
{
cfg.m_use_astcenc = true;
cfg.m_merge_basisu_into_output = true;
break;
}
case (int)xuastc_ldr_astc_comp_selection::cBasisU_and_ASTCF:
{
cfg.m_use_astcf = true;
cfg.m_merge_basisu_into_output = true;
break;
}
case (int)xuastc_ldr_astc_comp_selection::cUseAll:
{
cfg.m_use_astcenc = true;
cfg.m_use_astcf = true;
cfg.m_merge_basisu_into_output = true;
break;
}
default:
{
fmt_error_printf("Invalid m_xuastc_ldr_astc_comp_selection\n");
return cECFailedInvalidParameters;
}
}
cfg.m_sharpen_flag = false;
if (m_params.m_xuastc_ldr_sharpen_mode == (int)xuastc_ldr_sharpen_mode::cAllBlockSizes)
cfg.m_sharpen_flag = true;
else if (m_params.m_xuastc_ldr_sharpen_mode == (int)xuastc_ldr_sharpen_mode::cOnlyLargestBlocks)
{
cfg.m_sharpen_flag = very_large_blocks_flag;
}
cfg.m_sharpen_amount = m_params.m_xuastc_ldr_sharpen_amount;
cfg.m_compressed_syntax = (basist::astc_ldr_t::xuastc_ldr_syntax)(int)m_params.m_xuastc_ldr_syntax;
if (cfg.m_compressed_syntax >= basist::astc_ldr_t::xuastc_ldr_syntax::cTotal)
{
error_printf("basis_compressor::encode_slices_to_xuastc_or_astc_ldr: Invalid XUASTC LDR syntax\n");
return cECFailedInvalidParameters;
}
if (basist::basis_tex_format_is_xuastc_ldr(m_fmt_mode))
{
if ((m_params.m_quality_level >= astc_ldr::DCT_QUALITY_MIN) && (m_params.m_quality_level < astc_ldr::DCT_QUALITY_MAX))
{
cfg.m_dct_quality = static_cast<float>(clamp<int>(m_params.m_quality_level, astc_ldr::DCT_QUALITY_MIN, astc_ldr::DCT_QUALITY_MAX));
cfg.m_use_dct = m_params.m_xuastc_ldr_use_dct;
}
else
{
if (m_params.m_xuastc_ldr_use_dct)
{
printf("Warning: m_xuastc_ldr_use_dct enabled, but quality level must range from [1,100).\n");
}
}
}
cfg.m_lossy_supercompression = m_params.m_xuastc_ldr_use_lossy_supercompression;
for (uint32_t i = 0; i < 4; i++)
cfg.m_comp_weights[i] = m_params.m_ldr_channel_weights[i];
cfg.m_replacement_min_psnr = m_params.m_ls_min_psnr;
cfg.m_psnr_trial_diff_thresh = m_params.m_ls_thresh_psnr;
cfg.m_psnr_trial_diff_thresh_edge = m_params.m_ls_thresh_edge_psnr;
cfg.m_replacement_min_psnr_alpha = m_params.m_ls_min_alpha_psnr;
cfg.m_psnr_trial_diff_thresh_alpha = m_params.m_ls_thresh_alpha_psnr;
cfg.m_psnr_trial_diff_thresh_edge_alpha = m_params.m_ls_thresh_edge_alpha_psnr;
cfg.m_debug_block_x = m_params.m_xuastc_ldr_debug_block_x;
cfg.m_debug_block_y = m_params.m_xuastc_ldr_debug_block_y;
cfg.m_debug_output = m_params.m_debug;
cfg.m_debug_images = m_params.m_debug_images;
cfg.m_debug_output_image_metrics = m_params.m_compute_stats && m_params.m_print_stats;
cfg.m_scd_enabled = false;
cfg.m_scd_will_postfilter = false;
cfg.m_num_scd_passes = 0;
cfg.m_scd_preserve_chroma = m_params.m_perceptual;
if (((very_large_blocks_flag) && (m_params.m_xuastc_ldr_deblocking_mode == (int)xuastc_ldr_deblocking_mode::cUseSCDAndFilteringOnlyLargestBlocks)) ||
(m_params.m_xuastc_ldr_deblocking_mode == (int)xuastc_ldr_deblocking_mode::cUseSCDAndFilteringAllBlockSizes))
{
cfg.m_scd_enabled = true;
cfg.m_scd_will_postfilter = true;
}
else if (m_params.m_xuastc_ldr_deblocking_mode == (int)xuastc_ldr_deblocking_mode::cUseSCDNoFiltering)
{
cfg.m_scd_enabled = true;
}
else if ( (m_params.m_xuastc_ldr_deblocking_mode == (int)xuastc_ldr_deblocking_mode::cNoSCDButEnableFilteringOnAllBlocks) ||
((very_large_blocks_flag) && (m_params.m_xuastc_ldr_deblocking_mode == (int)xuastc_ldr_deblocking_mode::cNoSCDButEnableFilteringOnLargestBlocks)) )
{
cfg.m_scd_will_postfilter = true;
}
if (cfg.m_scd_will_postfilter)
{
const uint32_t DEBLOCK_FILTER_ID = 1;
basist::add_key_value(m_params.m_key_values, BASISU_DEBLOCK_FILTER_ID_NAME, fmt_string("{}", DEBLOCK_FILTER_ID));
}
if (m_params.m_xuastc_ldr_num_deblocking_passes >= 256)
{
switch (cfg.m_effort_level)
{
case 0:
case 1:
cfg.m_num_scd_passes = 0;
break;
case 2:
cfg.m_num_scd_passes = 2;
break;
case 3:
cfg.m_num_scd_passes = 8;
break;
case 4:
cfg.m_num_scd_passes = 10;
break;
case 5:
cfg.m_num_scd_passes = 12;
break;
case 6:
cfg.m_num_scd_passes = 14;
break;
case 7:
cfg.m_num_scd_passes = 16;
break;
case 8:
case 9:
cfg.m_num_scd_passes = 20;
break;
case 10:
default:
cfg.m_num_scd_passes = 32;
break;
}
}
else if (cfg.m_scd_enabled)
{
cfg.m_num_scd_passes = m_params.m_xuastc_ldr_num_deblocking_passes;
}
if (!cfg.m_num_scd_passes)
{
cfg.m_scd_enabled = false;
}
cfg.m_try_simplified_latent_configs = m_params.m_xuastc_ldr_heavy_subset_usage;
if (m_params.m_status_output)
{
fmt_printf("Prefiltering/blurring: {}, Sharpening: {} (Amount: {}), SCD/Deblocking Passes: {} (Factor in CPU/GPU Post-Filtering: {}), Heavy subset usage: {}, Compressor: {}\n",
cfg.m_block_blurring_p1 || cfg.m_block_blurring_p2,
cfg.m_sharpen_flag, cfg.m_sharpen_amount, cfg.m_scd_enabled, cfg.m_scd_will_postfilter,
cfg.m_try_simplified_latent_configs,
m_params.m_xuastc_ldr_astc_comp_selection);
}
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
if (m_params.m_status_output)
fmt_printf("Encoding slice {}\n", slice_index);
gpu_image& dst_tex = m_uastc_slice_textures[slice_index];
basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
(void)slice_desc;
const image& slice_source_image = m_slice_images[slice_index];
const image* pSource_image = &slice_source_image;
image temp_image;
if ((slice_source_image.get_width() != slice_desc.m_orig_width) || (slice_source_image.get_height() != slice_desc.m_orig_height))
{
temp_image = slice_source_image;
temp_image.crop(slice_desc.m_orig_width, slice_desc.m_orig_height);
pSource_image = &temp_image;
}
cfg.m_debug_file_prefix = fmt_string("slice_{}_", slice_index);
if (m_params.m_debug)
fmt_debug_printf("----------------------------------------------------------------------------\n");
uint8_vec intermediate_tex_data;
vector2D<astc_helpers::log_astc_block> coded_log_blocks;
bool comp_status = astc_ldr::compress_image(*pSource_image, intermediate_tex_data, coded_log_blocks, cfg, *m_params.m_pJob_pool);
if (!comp_status)
return cECFailedEncodeUASTC;
if (m_params.m_debug)
fmt_debug_printf("----------------------------------------------------------------------------\n");
const uint32_t num_blocks_x = dst_tex.get_blocks_x();
const uint32_t num_blocks_y = dst_tex.get_blocks_y();
assert(coded_log_blocks.get_width() == num_blocks_x);
assert(coded_log_blocks.get_height() == num_blocks_y);
for (uint32_t by = 0; by < num_blocks_y; by++)
{
for (uint32_t bx = 0; bx < num_blocks_x; bx++)
{
const astc_helpers::log_astc_block& log_blk = coded_log_blocks(bx, by);
bool pack_status = astc_helpers::pack_astc_block(*static_cast<astc_helpers::astc_block *>(dst_tex.get_block_ptr(bx, by)), log_blk);
if (!pack_status)
{
error_printf("basis_compressor::encode_slices_to_xuastc_or_astc_ldr: pack_astc_block() failed!\n");
return cECFailedEncodeUASTC;
}
} }
uint8_vec& dst_buf = m_uastc_backend_output.m_slice_image_data[slice_index];
if (basis_tex_format_is_astc_ldr(m_fmt_mode))
{
dst_buf.resize(dst_tex.get_size_in_bytes());
memcpy(&dst_buf[0], dst_tex.get_ptr(), dst_tex.get_size_in_bytes());
}
else
{
assert(intermediate_tex_data.size_in_bytes());
dst_buf.resize(intermediate_tex_data.size_in_bytes());
memcpy(&dst_buf[0], intermediate_tex_data.get_ptr(), intermediate_tex_data.size_in_bytes());
}
m_uastc_backend_output.m_slice_image_crcs[slice_index] = basist::crc16(dst_buf.get_ptr(), dst_buf.size_in_bytes(), 0);
}
return cECSuccess;
}
basis_compressor::error_code basis_compressor::encode_slices_to_xubc7()
{
if (m_params.m_debug)
debug_printf("basis_compressor::encode_slices_to_xubc7\n");
m_uastc_slice_textures.resize(m_slice_descs.size());
const texture_format tex_fmt = texture_format::cBC7;
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
m_uastc_slice_textures[slice_index].init(tex_fmt, m_slice_descs[slice_index].m_orig_width, m_slice_descs[slice_index].m_orig_height);
m_uastc_backend_output.m_tex_format = m_fmt_mode;
m_uastc_backend_output.m_etc1s = false;
m_uastc_backend_output.m_srgb = m_params.m_ktx2_and_basis_srgb_transfer_function;
m_uastc_backend_output.m_slice_desc = m_slice_descs;
m_uastc_backend_output.m_slice_image_data.resize(m_slice_descs.size());
m_uastc_backend_output.m_slice_image_crcs.resize(m_slice_descs.size());
xbc7::pack_options options;
options.m_dct_q = (m_params.m_quality_level < 0) ? 100 : clamp<int>(m_params.m_quality_level, 1, 100);
options.set_rdo_level(m_params.m_xubc7_rdo_level);
options.m_weights[0] = m_params.m_ldr_channel_weights[0];
options.m_weights[1] = m_params.m_ldr_channel_weights[1];
options.m_weights[2] = m_params.m_ldr_channel_weights[2];
options.m_weights[3] = m_params.m_ldr_channel_weights[3];
if ((options.m_dct_q >= 90) && (m_params.m_xubc7_effort_level >= 3))
{
options.m_optimize_weights_after_bc7f = true;
}
if (m_params.m_xubc7_effort_level <= 1)
{
options.m_bc7_pack_flags = basist::bc7f::cPackBC7FlagDefault;
}
else if (m_params.m_xubc7_effort_level == 10)
{
options.m_bc7_pack_flags = basist::bc7f::cPackBC7FlagDefaultNonAnalytical;
}
options.m_effort_level = clamp<uint32_t>(m_params.m_xubc7_effort_level, 0, 10);
options.m_bc7_encoder = (xbc7::bc7_encoder_type)(int)m_params.m_xubc7_encoder;
options.m_bc7e_scalar_level = clamp<uint32_t>(m_params.m_xubc7_bc7e_scalar_level, xbc7::BC7E_SCALAR_MIN_LEVEL, xbc7::BC7E_SCALAR_MAX_LEVEL);
options.m_perceptual = m_params.m_perceptual;
options.m_debug_output = m_params.m_debug;
options.m_print_stats = m_params.m_compute_stats && m_params.m_print_stats;
options.m_debug_images = m_params.m_debug_images;
options.m_pJob_pool = m_params.m_pJob_pool;
const uint32_t desired_num_stripes = m_params.m_xubc7_num_stripes;
if (m_params.m_status_output)
{
fmt_printf("XUBC7 encoder: {} (bc7e_scalar level: {}), effort: {}, RDO level [0,100]: {}, Desired stripes [1,16]: {}, Channel weights: {}, {}, {}, {}\n",
(options.m_bc7_encoder == xbc7::bc7_encoder_type::cBC7E_Scalar) ? "bc7e_scalar" : "bc7f", options.m_bc7e_scalar_level,
m_params.m_xubc7_effort_level, m_params.m_xubc7_rdo_level, desired_num_stripes,
m_params.m_ldr_channel_weights[0], m_params.m_ldr_channel_weights[1], m_params.m_ldr_channel_weights[2], m_params.m_ldr_channel_weights[3]);
}
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
if (m_params.m_status_output)
fmt_printf("Encoding slice {}\n", slice_index);
gpu_image& dst_tex = m_uastc_slice_textures[slice_index];
basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
(void)slice_desc;
const image& slice_source_image = m_slice_images[slice_index];
const image* pSource_image = &slice_source_image;
image temp_image;
if ((slice_source_image.get_width() != slice_desc.m_orig_width) || (slice_source_image.get_height() != slice_desc.m_orig_height))
{
temp_image = slice_source_image;
temp_image.crop(slice_desc.m_orig_width, slice_desc.m_orig_height);
pSource_image = &temp_image;
}
options.m_debug_file_prefix = fmt_string("slice_{}_", slice_index);
options.set_num_stripes_for_image(*pSource_image, desired_num_stripes);
if (m_params.m_debug)
fmt_debug_printf("----------------------------------------------------------------------------\n");
uint8_vec intermediate_tex_data;
vector2D<basist::bc7u::log_bc7_block> coded_log_blocks;
bool comp_status = xbc7::pack_image(*pSource_image, options, intermediate_tex_data, coded_log_blocks);
if (!comp_status)
return cECFailedEncodeUASTC;
if (m_params.m_debug)
fmt_debug_printf("----------------------------------------------------------------------------\n");
const uint32_t num_blocks_x = dst_tex.get_blocks_x();
const uint32_t num_blocks_y = dst_tex.get_blocks_y();
assert(coded_log_blocks.get_width() == num_blocks_x);
assert(coded_log_blocks.get_height() == num_blocks_y);
for (uint32_t by = 0; by < num_blocks_y; by++)
{
for (uint32_t bx = 0; bx < num_blocks_x; bx++)
{
const basist::bc7u::log_bc7_block& log_blk = coded_log_blocks(bx, by);
bool pack_status = basist::bc7u::pack_bc7(log_blk, static_cast<basist::bc7u::phys_bc7_block*>(dst_tex.get_block_ptr(bx, by)));
if (!pack_status)
{
error_printf("basis_compressor::encode_slices_to_xubc7: basist::bc7u::pack_bc7() failed!\n");
return cECFailedEncodeUASTC;
}
} }
uint8_vec& dst_buf = m_uastc_backend_output.m_slice_image_data[slice_index];
assert(intermediate_tex_data.size_in_bytes());
dst_buf.resize(intermediate_tex_data.size_in_bytes());
memcpy(&dst_buf[0], intermediate_tex_data.get_ptr(), intermediate_tex_data.size_in_bytes());
m_uastc_backend_output.m_slice_image_crcs[slice_index] = basist::crc16(dst_buf.get_ptr(), dst_buf.size_in_bytes(), 0);
}
return cECSuccess;
}
basis_compressor::error_code basis_compressor::encode_slices_to_uastc_4x4_ldr()
{
debug_printf("basis_compressor::encode_slices_to_uastc_4x4_ldr\n");
m_uastc_slice_textures.resize(m_slice_descs.size());
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
m_uastc_slice_textures[slice_index].init(texture_format::cUASTC4x4, m_slice_descs[slice_index].m_orig_width, m_slice_descs[slice_index].m_orig_height);
m_uastc_backend_output.m_tex_format = basist::basis_tex_format::cUASTC_LDR_4x4;
m_uastc_backend_output.m_etc1s = false;
m_uastc_backend_output.m_slice_desc = m_slice_descs;
m_uastc_backend_output.m_slice_image_data.resize(m_slice_descs.size());
m_uastc_backend_output.m_slice_image_crcs.resize(m_slice_descs.size());
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
if (m_params.m_status_output)
fmt_printf("Encoding slice {}\n", slice_index);
gpu_image& tex = m_uastc_slice_textures[slice_index];
basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
(void)slice_desc;
const uint32_t num_blocks_x = tex.get_blocks_x();
const uint32_t num_blocks_y = tex.get_blocks_y();
const uint32_t total_blocks = tex.get_total_blocks();
const image& source_image = m_slice_images[slice_index];
std::mutex status_output_mutex;
uint32_t total_blocks_processed = 0;
float last_percentage_printed = 0;
const uint32_t N = 256;
for (uint32_t block_index_iter = 0; block_index_iter < total_blocks; block_index_iter += N)
{
const uint32_t first_index = block_index_iter;
const uint32_t last_index = minimum<uint32_t>(total_blocks, block_index_iter + N);
m_params.m_pJob_pool->add_job([this, first_index, last_index, num_blocks_x, num_blocks_y, total_blocks, &source_image, &tex,
&status_output_mutex, &total_blocks_processed, &last_percentage_printed]
{
BASISU_NOTE_UNUSED(num_blocks_y);
uint32_t uastc_flags = m_params.m_pack_uastc_ldr_4x4_flags;
if ((m_params.m_rdo_uastc_ldr_4x4) && (m_params.m_rdo_uastc_ldr_4x4_favor_simpler_modes_in_rdo_mode))
uastc_flags |= cPackUASTCFavorSimplerModes;
for (uint32_t block_index = first_index; block_index < last_index; block_index++)
{
const uint32_t block_x = block_index % num_blocks_x;
const uint32_t block_y = block_index / num_blocks_x;
color_rgba block_pixels[4][4];
source_image.extract_block_clamped((color_rgba*)block_pixels, block_x * 4, block_y * 4, 4, 4);
basist::uastc_block& dest_block = *(basist::uastc_block*)tex.get_block_ptr(block_x, block_y);
encode_uastc(&block_pixels[0][0].r, dest_block, uastc_flags);
}
if (m_params.m_status_output)
{
float percent_done = 0;
bool print_flag = false;
{
std::lock_guard<std::mutex> lck(status_output_mutex);
total_blocks_processed += (last_index - first_index) + 1;
percent_done = ((float)total_blocks_processed * 100.0f) / (float)total_blocks;
if ((percent_done >= 100.0f) || (percent_done >= (last_percentage_printed + 5.0f)))
{
last_percentage_printed = percent_done;
print_flag = true;
}
}
if (print_flag)
debug_printf("basis_compressor::encode_slices_to_uastc_4x4_ldr: %3.1f%% done\n", percent_done);
}
});
}
m_params.m_pJob_pool->wait_for_all();
if (m_params.m_rdo_uastc_ldr_4x4)
{
uastc_rdo_params rdo_params;
rdo_params.m_lambda = m_params.m_rdo_uastc_ldr_4x4_quality_scalar;
rdo_params.m_max_allowed_rms_increase_ratio = m_params.m_rdo_uastc_ldr_4x4_max_allowed_rms_increase_ratio;
rdo_params.m_skip_block_rms_thresh = m_params.m_rdo_uastc_ldr_4x4_skip_block_rms_thresh;
rdo_params.m_lz_dict_size = m_params.m_rdo_uastc_ldr_4x4_dict_size;
rdo_params.m_smooth_block_max_error_scale = m_params.m_rdo_uastc_ldr_4x4_max_smooth_block_error_scale;
rdo_params.m_max_smooth_block_std_dev = m_params.m_rdo_uastc_ldr_4x4_smooth_block_max_std_dev;
bool status = uastc_rdo(tex.get_total_blocks(), (basist::uastc_block*)tex.get_ptr(),
(const color_rgba *)m_source_blocks[slice_desc.m_first_block_index].m_pixels, rdo_params, m_params.m_pack_uastc_ldr_4x4_flags, m_params.m_rdo_uastc_ldr_4x4_multithreading ? m_params.m_pJob_pool : nullptr,
(m_params.m_rdo_uastc_ldr_4x4_multithreading && m_params.m_pJob_pool) ? basisu::minimum<uint32_t>(4, (uint32_t)m_params.m_pJob_pool->get_total_threads()) : 0);
if (!status)
{
return cECFailedUASTCRDOPostProcess;
}
}
m_uastc_backend_output.m_slice_image_data[slice_index].resize(tex.get_size_in_bytes());
memcpy(&m_uastc_backend_output.m_slice_image_data[slice_index][0], tex.get_ptr(), tex.get_size_in_bytes());
m_uastc_backend_output.m_slice_image_crcs[slice_index] = basist::crc16(tex.get_ptr(), tex.get_size_in_bytes(), 0);
}
return cECSuccess;
}
bool basis_compressor::generate_mipmaps(const imagef& img, basisu::vector<imagef>& mips, bool has_alpha)
{
debug_printf("basis_compressor::generate_mipmaps\n");
interval_timer tm;
tm.start();
uint32_t total_levels = 1;
uint32_t w = img.get_width(), h = img.get_height();
while (maximum<uint32_t>(w, h) > (uint32_t)m_params.m_mip_smallest_dimension)
{
w = maximum(w >> 1U, 1U);
h = maximum(h >> 1U, 1U);
total_levels++;
}
for (uint32_t level = 1; level < total_levels; level++)
{
const uint32_t level_width = maximum<uint32_t>(1, img.get_width() >> level);
const uint32_t level_height = maximum<uint32_t>(1, img.get_height() >> level);
imagef& level_img = *enlarge_vector(mips, 1);
level_img.resize(level_width, level_height);
const imagef* pSource_image = &img;
if (m_params.m_mip_fast)
{
if (level > 1)
pSource_image = &mips[level - 1];
}
bool status = image_resample(*pSource_image, level_img,
"box", m_params.m_mip_scale, m_params.m_mip_wrapping, 0, has_alpha ? 4 : 3);
if (!status)
{
error_printf("basis_compressor::generate_mipmaps: image_resample() failed!\n");
return false;
}
clean_hdr_image(level_img);
}
if (m_params.m_debug)
debug_printf("Total mipmap generation time: %3.3f secs\n", tm.get_elapsed_secs());
return true;
}
bool basis_compressor::generate_mipmaps(const image &img, basisu::vector<image> &mips, bool has_alpha)
{
debug_printf("basis_compressor::generate_mipmaps\n");
interval_timer tm;
tm.start();
uint32_t total_levels = 1;
uint32_t w = img.get_width(), h = img.get_height();
while (maximum<uint32_t>(w, h) > (uint32_t)m_params.m_mip_smallest_dimension)
{
w = maximum(w >> 1U, 1U);
h = maximum(h >> 1U, 1U);
total_levels++;
}
#if BASISU_USE_STB_IMAGE_RESIZE_FOR_MIPMAP_GEN
stbir_filter filter = STBIR_FILTER_DEFAULT;
if (m_params.m_mip_filter == "box")
filter = STBIR_FILTER_BOX;
else if (m_params.m_mip_filter == "triangle")
filter = STBIR_FILTER_TRIANGLE;
else if (m_params.m_mip_filter == "cubic")
filter = STBIR_FILTER_CUBICBSPLINE;
else if (m_params.m_mip_filter == "catmull")
filter = STBIR_FILTER_CATMULLROM;
else if (m_params.m_mip_filter == "mitchell")
filter = STBIR_FILTER_MITCHELL;
for (uint32_t level = 1; level < total_levels; level++)
{
const uint32_t level_width = maximum<uint32_t>(1, img.get_width() >> level);
const uint32_t level_height = maximum<uint32_t>(1, img.get_height() >> level);
image &level_img = *enlarge_vector(mips, 1);
level_img.resize(level_width, level_height);
int result = stbir_resize_uint8_generic(
(const uint8_t *)img.get_ptr(), img.get_width(), img.get_height(), img.get_pitch() * sizeof(color_rgba),
(uint8_t *)level_img.get_ptr(), level_img.get_width(), level_img.get_height(), level_img.get_pitch() * sizeof(color_rgba),
has_alpha ? 4 : 3, has_alpha ? 3 : STBIR_ALPHA_CHANNEL_NONE, m_params.m_mip_premultiplied ? STBIR_FLAG_ALPHA_PREMULTIPLIED : 0,
m_params.m_mip_wrapping ? STBIR_EDGE_WRAP : STBIR_EDGE_CLAMP, filter, m_params.m_mip_srgb ? STBIR_COLORSPACE_SRGB : STBIR_COLORSPACE_LINEAR,
nullptr);
if (result == 0)
{
error_printf("basis_compressor::generate_mipmaps: stbir_resize_uint8_generic() failed!\n");
return false;
}
if (m_params.m_mip_renormalize)
level_img.renormalize_normal_map();
}
#else
for (uint32_t level = 1; level < total_levels; level++)
{
const uint32_t level_width = maximum<uint32_t>(1, img.get_width() >> level);
const uint32_t level_height = maximum<uint32_t>(1, img.get_height() >> level);
image& level_img = *enlarge_vector(mips, 1);
level_img.resize(level_width, level_height);
const image* pSource_image = &img;
if (m_params.m_mip_fast)
{
if (level > 1)
pSource_image = &mips[level - 1];
}
bool status = image_resample(*pSource_image, level_img, m_params.m_mip_srgb, m_params.m_mip_filter.c_str(), m_params.m_mip_scale, m_params.m_mip_wrapping, 0, has_alpha ? 4 : 3);
if (!status)
{
error_printf("basis_compressor::generate_mipmaps: image_resample() failed!\n");
return false;
}
if (m_params.m_mip_renormalize)
level_img.renormalize_normal_map();
}
#endif
if (m_params.m_debug)
debug_printf("Total mipmap generation time: %3.3f secs\n", tm.get_elapsed_secs());
return true;
}
void basis_compressor::clean_hdr_image(imagef& src_img)
{
const uint32_t width = src_img.get_width();
const uint32_t height = src_img.get_height();
float max_used_val = 0.0f;
for (uint32_t y = 0; y < height; y++)
{
for (uint32_t x = 0; x < width; x++)
{
vec4F& c = src_img(x, y);
for (uint32_t i = 0; i < 3; i++)
max_used_val = maximum(max_used_val, c[i]);
}
}
double hdr_image_scale = 1.0f;
if (max_used_val > basist::ASTC_HDR_MAX_VAL)
{
hdr_image_scale = max_used_val / basist::ASTC_HDR_MAX_VAL;
const double inv_hdr_image_scale = basist::ASTC_HDR_MAX_VAL / max_used_val;
for (uint32_t y = 0; y < src_img.get_height(); y++)
{
for (uint32_t x = 0; x < src_img.get_width(); x++)
{
vec4F& c = src_img(x, y);
for (uint32_t i = 0; i < 3; i++)
c[i] = (float)minimum<double>(c[i] * inv_hdr_image_scale, basist::ASTC_HDR_MAX_VAL);
}
}
printf("Warning: The input HDR image's maximum used float value was %f, which is too high to encode as ASTC HDR. The image's components have been linearly scaled so the maximum used value is %f, by multiplying by %f.\n",
max_used_val, basist::ASTC_HDR_MAX_VAL, inv_hdr_image_scale);
printf("The decoded/sampled ASTC HDR texture will have to be scaled up by %f. See the \"HDRScale\" KTX2 key value field.\n", hdr_image_scale);
}
m_hdr_image_scale = (float)hdr_image_scale;
if (!src_img.clean_astc_hdr_pixels(basist::ASTC_HDR_MAX_VAL))
printf("Warning: clean_astc_hdr_pixels() had to modify the input image to encode to ASTC HDR - see previous warning(s).\n");
float lowest_nonzero_val = 1e+30f;
float lowest_val = 1e+30f;
float highest_val = -1e+30f;
for (uint32_t y = 0; y < src_img.get_height(); y++)
{
for (uint32_t x = 0; x < src_img.get_width(); x++)
{
const vec4F& c = src_img(x, y);
for (uint32_t i = 0; i < 3; i++)
{
lowest_val = basisu::minimum(lowest_val, c[i]);
if (c[i] != 0.0f)
lowest_nonzero_val = basisu::minimum(lowest_nonzero_val, c[i]);
highest_val = basisu::maximum(highest_val, c[i]);
}
}
}
debug_printf("Lowest image value: %e, lowest non-zero value: %e, highest value: %e, dynamic range: %e\n", lowest_val, lowest_nonzero_val, highest_val, highest_val / lowest_nonzero_val);
}
bool basis_compressor::read_dds_source_images()
{
debug_printf("basis_compressor::read_dds_source_images\n");
if ((!m_params.m_read_source_images) || (!m_params.m_source_filenames.size()))
return true;
if (m_params.m_source_images.size() || m_params.m_source_images_hdr.size())
return true;
if (m_params.m_source_mipmap_images.size() || m_params.m_source_mipmap_images_hdr.size())
return true;
bool any_dds = false, all_dds = true;
for (uint32_t i = 0; i < m_params.m_source_filenames.size(); i++)
{
std::string ext(string_get_extension(m_params.m_source_filenames[i]));
if (strcasecmp(ext.c_str(), "dds") == 0)
any_dds = true;
else
all_dds = false;
}
if (!any_dds)
return true;
if (!all_dds)
{
error_printf("If any filename is DDS, all filenames must be DDS.\n");
return false;
}
if (m_params.m_source_alpha_filenames.size())
{
error_printf("Source alpha filenames are not supported in DDS mode.\n");
return false;
}
bool any_mipmaps = false;
for (uint32_t i = 0; i < m_params.m_source_filenames.size(); i++)
{
basisu::vector<image> ldr_mips;
basisu::vector<imagef> hdr_mips;
bool status = read_uncompressed_dds_file(m_params.m_source_filenames[i].c_str(), ldr_mips, hdr_mips);
if (!status)
return false;
assert(ldr_mips.size() || hdr_mips.size());
if (m_params.m_status_output)
{
printf("Read DDS file \"%s\", %s, %ux%u, %zu mipmap levels\n",
m_params.m_source_filenames[i].c_str(),
ldr_mips.size() ? "LDR" : "HDR",
ldr_mips.size() ? ldr_mips[0].get_width() : hdr_mips[0].get_width(),
ldr_mips.size() ? ldr_mips[0].get_height() : hdr_mips[0].get_height(),
ldr_mips.size() ? ldr_mips.size() : hdr_mips.size());
}
if (ldr_mips.size())
{
if (m_params.m_source_images_hdr.size())
{
error_printf("All DDS files must be of the same type (all LDR, or all HDR)\n");
return false;
}
m_params.m_source_images.push_back(ldr_mips[0]);
m_params.m_source_mipmap_images.resize(m_params.m_source_mipmap_images.size() + 1);
if (ldr_mips.size() > 1)
{
ldr_mips.erase_index(0U);
m_params.m_source_mipmap_images.back().swap(ldr_mips);
any_mipmaps = true;
}
}
else
{
if (m_params.m_source_images.size())
{
error_printf("All DDS files must be of the same type (all LDR, or all HDR)\n");
return false;
}
m_params.m_source_images_hdr.push_back(hdr_mips[0]);
m_params.m_source_mipmap_images_hdr.resize(m_params.m_source_mipmap_images_hdr.size() + 1);
if (hdr_mips.size() > 1)
{
hdr_mips.erase_index(0U);
m_params.m_source_mipmap_images_hdr.back().swap(hdr_mips);
any_mipmaps = true;
}
m_params.m_hdr = true;
m_params.m_uastc = true;
}
}
m_params.m_read_source_images = false;
m_params.m_source_filenames.clear();
m_params.m_source_alpha_filenames.clear();
if (!any_mipmaps)
{
m_params.m_source_mipmap_images.clear();
m_params.m_source_mipmap_images_hdr.clear();
}
if ((m_params.m_hdr) && (!m_params.m_source_images_hdr.size()))
{
error_printf("HDR mode enabled, but only LDR .DDS files were loaded. HDR mode requires half or float (HDR) .DDS inputs.\n");
return false;
}
return true;
}
bool basis_compressor::read_source_images()
{
debug_printf("basis_compressor::read_source_images\n");
const uint32_t total_source_files = m_params.m_read_source_images ? (uint32_t)m_params.m_source_filenames.size() :
(m_params.m_hdr ? (uint32_t)m_params.m_source_images_hdr.size() : (uint32_t)m_params.m_source_images.size());
if (!total_source_files)
{
debug_printf("basis_compressor::read_source_images: No source images to process\n");
return false;
}
m_stats.resize(0);
m_slice_descs.resize(0);
m_slice_images.resize(0);
m_slice_images_hdr.resize(0);
m_total_blocks = 0;
uint32_t total_macroblocks = 0;
m_any_source_image_has_alpha = false;
basisu::vector<image> source_images;
basisu::vector<imagef> source_images_hdr;
basisu::vector<std::string> source_filenames;
for (uint32_t source_file_index = 0; source_file_index < total_source_files; source_file_index++)
{
const char* pSource_filename = "";
image file_image;
imagef file_image_hdr;
if (m_params.m_read_source_images)
{
pSource_filename = m_params.m_source_filenames[source_file_index].c_str();
if (m_params.m_hdr)
{
float upconversion_nit_multiplier = m_params.m_ldr_hdr_upconversion_nit_multiplier;
if (upconversion_nit_multiplier == 0.0f)
{
upconversion_nit_multiplier = LDR_TO_HDR_NITS;
}
m_ldr_to_hdr_upconversion_nit_multiplier = upconversion_nit_multiplier;
if (!is_image_filename_hdr(pSource_filename))
m_upconverted_any_ldr_images = true;
if (!load_image_hdr(pSource_filename, file_image_hdr, m_params.m_ldr_hdr_upconversion_srgb_to_linear, upconversion_nit_multiplier, m_params.m_ldr_hdr_upconversion_black_bias))
{
error_printf("Failed reading source image: %s\n", pSource_filename);
return false;
}
for (uint32_t y = 0; y < file_image_hdr.get_height(); y++)
for (uint32_t x = 0; x < file_image_hdr.get_width(); x++)
file_image_hdr(x, y)[3] = 1.0f;
}
else
{
if (!load_image(pSource_filename, file_image))
{
error_printf("Failed reading source image: %s\n", pSource_filename);
return false;
}
}
const uint32_t width = m_params.m_hdr ? file_image_hdr.get_width() : file_image.get_width();
const uint32_t height = m_params.m_hdr ? file_image_hdr.get_height() : file_image.get_height();
if (m_params.m_status_output)
{
printf("Read source image \"%s\", %ux%u\n", pSource_filename, width, height);
}
if (m_params.m_hdr)
{
clean_hdr_image(file_image_hdr);
}
else
{
if ((source_file_index < m_params.m_source_alpha_filenames.size()) && (m_params.m_source_alpha_filenames[source_file_index].size()))
{
const char* pSource_alpha_image = m_params.m_source_alpha_filenames[source_file_index].c_str();
image alpha_data;
if (!load_image(pSource_alpha_image, alpha_data))
{
error_printf("Failed reading source image: %s\n", pSource_alpha_image);
return false;
}
if (m_params.m_status_output)
printf("Read source alpha image \"%s\", %ux%u\n", pSource_alpha_image, alpha_data.get_width(), alpha_data.get_height());
alpha_data.crop(width, height);
for (uint32_t y = 0; y < height; y++)
for (uint32_t x = 0; x < width; x++)
file_image(x, y).a = (uint8_t)alpha_data(x, y).get_709_luma();
}
}
}
else
{
if (m_params.m_hdr)
{
file_image_hdr = m_params.m_source_images_hdr[source_file_index];
clean_hdr_image(file_image_hdr);
}
else
{
file_image = m_params.m_source_images[source_file_index];
}
}
if (!m_params.m_hdr)
{
if (m_params.m_renormalize)
file_image.renormalize_normal_map();
}
bool alpha_swizzled = false;
if (m_params.m_swizzle[0] != 0 ||
m_params.m_swizzle[1] != 1 ||
m_params.m_swizzle[2] != 2 ||
m_params.m_swizzle[3] != 3)
{
if (!m_params.m_hdr)
{
for (uint32_t y = 0; y < file_image.get_height(); y++)
{
for (uint32_t x = 0; x < file_image.get_width(); x++)
{
const color_rgba& c = file_image(x, y);
file_image(x, y).set_noclamp_rgba(c[m_params.m_swizzle[0]], c[m_params.m_swizzle[1]], c[m_params.m_swizzle[2]], c[m_params.m_swizzle[3]]);
}
}
alpha_swizzled = (m_params.m_swizzle[3] != 3);
}
else
{
for (uint32_t y = 0; y < file_image_hdr.get_height(); y++)
{
for (uint32_t x = 0; x < file_image_hdr.get_width(); x++)
{
const vec4F& c = file_image_hdr(x, y);
file_image_hdr(x, y).set(c[m_params.m_swizzle[0]], c[m_params.m_swizzle[1]], c[m_params.m_swizzle[2]], 1.0f); }
}
}
}
bool has_alpha = false;
if (!m_params.m_hdr)
{
if (m_params.m_force_alpha || alpha_swizzled)
has_alpha = true;
else if (!m_params.m_check_for_alpha)
file_image.set_alpha(255);
else if (file_image.has_alpha())
has_alpha = true;
if (has_alpha)
m_any_source_image_has_alpha = true;
}
{
const uint32_t width = m_params.m_hdr ? file_image_hdr.get_width() : file_image.get_width();
const uint32_t height = m_params.m_hdr ? file_image_hdr.get_height() : file_image.get_height();
debug_printf("Source image index %u filename %s %ux%u has alpha: %u\n", source_file_index, pSource_filename, width, height, has_alpha);
}
if (m_params.m_y_flip)
{
if (m_params.m_hdr)
file_image_hdr.flip_y();
else
file_image.flip_y();
}
#if DEBUG_CROP_TEXTURE_TO_64x64
if (m_params.m_hdr)
file_image_hdr.resize(64, 64);
else
file_image.resize(64, 64);
#endif
if ((m_params.m_resample_width > 0) && (m_params.m_resample_height > 0))
{
int new_width = basisu::minimum<int>(m_params.m_resample_width, basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION);
int new_height = basisu::minimum<int>(m_params.m_resample_height, basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION);
debug_printf("Resampling to %ix%i\n", new_width, new_height);
if (m_params.m_hdr)
{
imagef temp_img(new_width, new_height);
image_resample(file_image_hdr, temp_img, "box"); clean_hdr_image(temp_img);
temp_img.swap(file_image_hdr);
}
else
{
image temp_img(new_width, new_height);
image_resample(file_image, temp_img, m_params.m_perceptual, "box"); temp_img.swap(file_image);
}
}
else if (m_params.m_resample_factor > 0.0f)
{
if (m_params.m_hdr)
{
int new_width = basisu::minimum<int>(basisu::maximum(1, (int)ceilf(file_image_hdr.get_width() * m_params.m_resample_factor)), basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION);
int new_height = basisu::minimum<int>(basisu::maximum(1, (int)ceilf(file_image_hdr.get_height() * m_params.m_resample_factor)), basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION);
debug_printf("Resampling to %ix%i\n", new_width, new_height);
imagef temp_img(new_width, new_height);
image_resample(file_image_hdr, temp_img, "box"); clean_hdr_image(temp_img);
temp_img.swap(file_image_hdr);
}
else
{
int new_width = basisu::minimum<int>(basisu::maximum(1, (int)ceilf(file_image.get_width() * m_params.m_resample_factor)), basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION);
int new_height = basisu::minimum<int>(basisu::maximum(1, (int)ceilf(file_image.get_height() * m_params.m_resample_factor)), basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION);
debug_printf("Resampling to %ix%i\n", new_width, new_height);
image temp_img(new_width, new_height);
image_resample(file_image, temp_img, m_params.m_perceptual, "box"); temp_img.swap(file_image);
}
}
const uint32_t width = m_params.m_hdr ? file_image_hdr.get_width() : file_image.get_width();
const uint32_t height = m_params.m_hdr ? file_image_hdr.get_height() : file_image.get_height();
if ((!width) || (!height))
{
error_printf("basis_compressor::read_source_images: Source image has a zero width and/or height!\n");
return false;
}
if ((width > basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION) || (height > basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION))
{
error_printf("basis_compressor::read_source_images: Source image \"%s\" is too large!\n", pSource_filename);
return false;
}
if (!m_params.m_hdr)
source_images.enlarge(1)->swap(file_image);
else
source_images_hdr.enlarge(1)->swap(file_image_hdr);
source_filenames.push_back(pSource_filename);
}
if (m_params.m_hdr)
{
if (m_params.m_source_mipmap_images_hdr.size())
{
if ((m_params.m_source_images_hdr.size() != m_params.m_source_mipmap_images_hdr.size()) || (total_source_files != m_params.m_source_images_hdr.size()))
{
error_printf("basis_compressor::read_source_images(): m_params.m_source_mipmap_images_hdr.size() must equal m_params.m_source_images_hdr.size()!\n");
return false;
}
}
}
else
{
if (m_params.m_source_mipmap_images.size())
{
if ((m_params.m_source_images.size() != m_params.m_source_mipmap_images.size()) || (total_source_files != m_params.m_source_images.size()))
{
error_printf("basis_compressor::read_source_images(): m_params.m_source_mipmap_images.size() must equal m_params.m_source_images.size()!\n");
return false;
}
if (!m_any_source_image_has_alpha)
{
for (uint32_t source_file_index = 0; source_file_index < total_source_files; source_file_index++)
{
for (uint32_t mip_index = 0; mip_index < m_params.m_source_mipmap_images[source_file_index].size(); mip_index++)
{
const image& mip_img = m_params.m_source_mipmap_images[source_file_index][mip_index];
if (mip_img.has_alpha(m_params.m_swizzle[3]))
{
m_any_source_image_has_alpha = true;
break;
}
}
if (m_any_source_image_has_alpha)
break;
}
}
}
}
debug_printf("Any source image has alpha: %u\n", m_any_source_image_has_alpha);
for (uint32_t source_file_index = 0; source_file_index < total_source_files; source_file_index++)
{
const std::string &source_filename = source_filenames[source_file_index];
basisu::vector<image> slices;
basisu::vector<imagef> slices_hdr;
slices.reserve(32);
slices_hdr.reserve(32);
image *pFile_image = source_images.size() ? &source_images[source_file_index] : nullptr;
imagef *pFile_image_hdr = source_images_hdr.size() ? &source_images_hdr[source_file_index] : nullptr;
if (m_params.m_hdr)
slices_hdr.resize(1);
else
slices.resize(1);
if ((!m_params.m_hdr) && (m_params.m_source_mipmap_images.size()))
{
for (uint32_t mip_index = 0; mip_index < m_params.m_source_mipmap_images[source_file_index].size(); mip_index++)
{
image& mip_img = m_params.m_source_mipmap_images[source_file_index][mip_index];
if ((m_params.m_swizzle[0] != 0) ||
(m_params.m_swizzle[1] != 1) ||
(m_params.m_swizzle[2] != 2) ||
(m_params.m_swizzle[3] != 3))
{
for (uint32_t y = 0; y < mip_img.get_height(); y++)
{
for (uint32_t x = 0; x < mip_img.get_width(); x++)
{
const color_rgba& c = mip_img(x, y);
mip_img(x, y).set_noclamp_rgba(c[m_params.m_swizzle[0]], c[m_params.m_swizzle[1]], c[m_params.m_swizzle[2]], c[m_params.m_swizzle[3]]);
}
}
}
slices.push_back(mip_img);
}
}
else if ((m_params.m_hdr) && (m_params.m_source_mipmap_images_hdr.size()))
{
for (uint32_t mip_index = 0; mip_index < m_params.m_source_mipmap_images_hdr[source_file_index].size(); mip_index++)
{
imagef& mip_img = m_params.m_source_mipmap_images_hdr[source_file_index][mip_index];
if ((m_params.m_swizzle[0] != 0) ||
(m_params.m_swizzle[1] != 1) ||
(m_params.m_swizzle[2] != 2) ||
(m_params.m_swizzle[3] != 3))
{
for (uint32_t y = 0; y < mip_img.get_height(); y++)
{
for (uint32_t x = 0; x < mip_img.get_width(); x++)
{
const vec4F& c = mip_img(x, y);
mip_img(x, y).set(c[m_params.m_swizzle[0]], c[m_params.m_swizzle[1]], c[m_params.m_swizzle[2]], 1.0f); }
}
}
clean_hdr_image(mip_img);
slices_hdr.push_back(mip_img);
}
}
else if (m_params.m_mip_gen)
{
if (m_params.m_hdr)
{
if (!generate_mipmaps(*pFile_image_hdr, slices_hdr, m_any_source_image_has_alpha))
return false;
}
else
{
if (!generate_mipmaps(*pFile_image, slices, m_any_source_image_has_alpha))
return false;
}
}
if (m_params.m_hdr)
slices_hdr[0].swap(*pFile_image_hdr);
else
slices[0].swap(*pFile_image);
uint_vec mip_indices(m_params.m_hdr ? slices_hdr.size() : slices.size());
for (uint32_t i = 0; i < (m_params.m_hdr ? slices_hdr.size() : slices.size()); i++)
mip_indices[i] = i;
if ((!m_params.m_hdr) && (m_any_source_image_has_alpha) && (!m_params.m_uastc))
{
basisu::vector<image> alpha_slices;
uint_vec new_mip_indices;
alpha_slices.reserve(slices.size() * 2);
for (uint32_t i = 0; i < slices.size(); i++)
{
image lvl_rgb(slices[i]);
image lvl_a(lvl_rgb);
for (uint32_t y = 0; y < lvl_a.get_height(); y++)
{
for (uint32_t x = 0; x < lvl_a.get_width(); x++)
{
uint8_t a = lvl_a(x, y).a;
lvl_a(x, y).set_noclamp_rgba(a, a, a, 255);
}
}
lvl_rgb.set_alpha(255);
alpha_slices.push_back(lvl_rgb);
new_mip_indices.push_back(i);
alpha_slices.push_back(lvl_a);
new_mip_indices.push_back(i);
}
slices.swap(alpha_slices);
mip_indices.swap(new_mip_indices);
}
if (m_params.m_hdr)
{
assert(slices_hdr.size() == mip_indices.size());
}
else
{
assert(slices.size() == mip_indices.size());
}
for (uint32_t slice_index = 0; slice_index < (m_params.m_hdr ? slices_hdr.size() : slices.size()); slice_index++)
{
image *pSlice_image = m_params.m_hdr ? nullptr : &slices[slice_index];
imagef *pSlice_image_hdr = m_params.m_hdr ? &slices_hdr[slice_index] : nullptr;
const uint32_t orig_width = m_params.m_hdr ? pSlice_image_hdr->get_width() : pSlice_image->get_width();
const uint32_t orig_height = m_params.m_hdr ? pSlice_image_hdr->get_height() : pSlice_image->get_height();
bool is_alpha_slice = false;
if ((!m_params.m_hdr) && (m_any_source_image_has_alpha))
{
if (m_params.m_uastc)
{
is_alpha_slice = pSlice_image->has_alpha();
}
else
{
is_alpha_slice = (slice_index & 1) != 0;
}
}
if (m_params.m_hdr)
{
if (m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_4X4)
{
pSlice_image_hdr->crop_dup_borders(pSlice_image_hdr->get_block_width(get_block_width()) * get_block_width(), pSlice_image_hdr->get_block_height(get_block_height()) * get_block_height());
}
}
else
{
pSlice_image->crop_dup_borders(pSlice_image->get_block_width(get_block_width()) * get_block_width(), pSlice_image->get_block_height(get_block_height()) * get_block_height());
}
if (m_params.m_debug_images)
{
if (m_params.m_hdr)
write_exr(string_format("basis_debug_source_image_%u_slice_%u.exr", source_file_index, slice_index).c_str(), *pSlice_image_hdr, 3, 0);
else
save_png(string_format("basis_debug_source_image_%u_slice_%u.png", source_file_index, slice_index).c_str(), *pSlice_image);
}
const size_t dest_image_index = (m_params.m_hdr ? m_slice_images_hdr.size() : m_slice_images.size());
enlarge_vector(m_stats, 1);
if (m_params.m_hdr)
enlarge_vector(m_slice_images_hdr, 1);
else
enlarge_vector(m_slice_images, 1);
enlarge_vector(m_slice_descs, 1);
m_stats[dest_image_index].m_filename = source_filename.c_str();
m_stats[dest_image_index].m_width = orig_width;
m_stats[dest_image_index].m_height = orig_height;
debug_printf("****** Slice %u: mip %u, alpha_slice: %u, filename: \"%s\", original: %ux%u actual: %ux%u\n",
m_slice_descs.size() - 1, mip_indices[slice_index], is_alpha_slice, source_filename.c_str(),
orig_width, orig_height,
m_params.m_hdr ? pSlice_image_hdr->get_width() : pSlice_image->get_width(),
m_params.m_hdr ? pSlice_image_hdr->get_height() : pSlice_image->get_height());
basisu_backend_slice_desc& slice_desc = m_slice_descs[dest_image_index];
slice_desc.m_first_block_index = m_total_blocks;
slice_desc.m_orig_width = orig_width;
slice_desc.m_orig_height = orig_height;
if (m_params.m_hdr)
{
slice_desc.m_width = pSlice_image_hdr->get_width();
slice_desc.m_height = pSlice_image_hdr->get_height();
slice_desc.m_num_blocks_x = pSlice_image_hdr->get_block_width(get_block_width());
slice_desc.m_num_blocks_y = pSlice_image_hdr->get_block_height(get_block_height());
}
else
{
slice_desc.m_width = pSlice_image->get_width();
slice_desc.m_height = pSlice_image->get_height();
slice_desc.m_num_blocks_x = pSlice_image->get_block_width(get_block_width());
slice_desc.m_num_blocks_y = pSlice_image->get_block_height(get_block_height());
}
slice_desc.m_num_macroblocks_x = (slice_desc.m_num_blocks_x + 1) >> 1;
slice_desc.m_num_macroblocks_y = (slice_desc.m_num_blocks_y + 1) >> 1;
slice_desc.m_source_file_index = source_file_index;
slice_desc.m_mip_index = mip_indices[slice_index];
slice_desc.m_alpha = is_alpha_slice;
slice_desc.m_iframe = false;
if (m_params.m_tex_type == basist::cBASISTexTypeVideoFrames)
{
if (m_params.m_uastc)
{
slice_desc.m_iframe = true;
}
else
{
slice_desc.m_iframe = (source_file_index == 0);
}
}
m_total_blocks += slice_desc.m_num_blocks_x * slice_desc.m_num_blocks_y;
total_macroblocks += slice_desc.m_num_macroblocks_x * slice_desc.m_num_macroblocks_y;
if (m_params.m_hdr)
m_slice_images_hdr[dest_image_index].swap(*pSlice_image_hdr);
else
m_slice_images[dest_image_index].swap(*pSlice_image);
}
}
debug_printf("Total blocks: %u, Total macroblocks: %u\n", m_total_blocks, total_macroblocks);
if (m_slice_descs.size() > BASISU_MAX_SLICES)
{
error_printf("Too many slices!\n");
return false;
}
for (uint32_t i = 1; i < m_slice_descs.size(); i++)
{
const basisu_backend_slice_desc &prev_slice_desc = m_slice_descs[i - 1];
const basisu_backend_slice_desc &slice_desc = m_slice_descs[i];
int image_delta = (int)slice_desc.m_source_file_index - (int)prev_slice_desc.m_source_file_index;
if (image_delta > 1)
return false;
if (!image_delta)
{
int level_delta = (int)slice_desc.m_mip_index - (int)prev_slice_desc.m_mip_index;
if (level_delta > 1)
return false;
}
}
if (m_params.m_status_output)
{
printf("Total slices: %u\n", (uint32_t)m_slice_descs.size());
}
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
const basisu_backend_slice_desc &slice_desc = m_slice_descs[i];
if (m_params.m_status_output)
{
printf("Slice: %u, alpha: %u, orig width/height: %ux%u, width/height: %ux%u, first_block: %u, image_index: %u, mip_level: %u, iframe: %u\n",
i, slice_desc.m_alpha, slice_desc.m_orig_width, slice_desc.m_orig_height,
slice_desc.m_width, slice_desc.m_height,
slice_desc.m_first_block_index, slice_desc.m_source_file_index, slice_desc.m_mip_index, slice_desc.m_iframe);
}
if (m_any_source_image_has_alpha)
{
if (m_params.m_hdr)
return false;
if (!m_params.m_uastc)
{
if (slice_desc.m_alpha)
{
if ((i & 1) == 0)
return false;
const basisu_backend_slice_desc& prev_slice_desc = m_slice_descs[i - 1];
if (prev_slice_desc.m_source_file_index != slice_desc.m_source_file_index)
return false;
if (prev_slice_desc.m_alpha)
return false;
if (prev_slice_desc.m_mip_index != slice_desc.m_mip_index)
return false;
if (prev_slice_desc.m_num_blocks_x != slice_desc.m_num_blocks_x)
return false;
if (prev_slice_desc.m_num_blocks_y != slice_desc.m_num_blocks_y)
return false;
}
else if (i & 1)
return false;
}
}
else if (slice_desc.m_alpha)
{
return false;
}
if ((slice_desc.m_orig_width > slice_desc.m_width) || (slice_desc.m_orig_height > slice_desc.m_height))
return false;
if ((slice_desc.m_source_file_index == 0) && (m_params.m_tex_type == basist::cBASISTexTypeVideoFrames))
{
if (!slice_desc.m_iframe)
return false;
}
}
return true;
}
bool basis_compressor::validate_texture_type_constraints()
{
debug_printf("basis_compressor::validate_texture_type_constraints\n");
if (m_params.m_tex_type == basist::cBASISTexType2D)
return true;
uint32_t total_basis_images = 0;
for (uint32_t slice_index = 0; slice_index < (m_params.m_hdr ? m_slice_images_hdr.size() : m_slice_images.size()); slice_index++)
{
const basisu_backend_slice_desc &slice_desc = m_slice_descs[slice_index];
total_basis_images = maximum<uint32_t>(total_basis_images, slice_desc.m_source_file_index + 1);
}
if (m_params.m_tex_type == basist::cBASISTexTypeCubemapArray)
{
if ((total_basis_images % 6) != 0)
{
error_printf("basis_compressor::validate_texture_type_constraints: For cubemaps the total number of input images is not a multiple of 6!\n");
return false;
}
}
uint_vec image_mipmap_levels(total_basis_images);
int width = -1, height = -1;
for (uint32_t slice_index = 0; slice_index < (m_params.m_hdr ? m_slice_images_hdr.size() : m_slice_images.size()); slice_index++)
{
const basisu_backend_slice_desc &slice_desc = m_slice_descs[slice_index];
image_mipmap_levels[slice_desc.m_source_file_index] = maximum(image_mipmap_levels[slice_desc.m_source_file_index], slice_desc.m_mip_index + 1);
if (slice_desc.m_mip_index != 0)
continue;
if (width < 0)
{
width = slice_desc.m_orig_width;
height = slice_desc.m_orig_height;
}
else if ((width != (int)slice_desc.m_orig_width) || (height != (int)slice_desc.m_orig_height))
{
error_printf("basis_compressor::validate_texture_type_constraints: The source image resolutions are not all equal!\n");
return false;
}
}
for (size_t i = 1; i < image_mipmap_levels.size(); i++)
{
if (image_mipmap_levels[0] != image_mipmap_levels[i])
{
error_printf("basis_compressor::validate_texture_type_constraints: Each image must have the same number of mipmap levels!\n");
return false;
}
}
return true;
}
bool basis_compressor::extract_source_blocks()
{
debug_printf("basis_compressor::extract_source_blocks\n");
if ((m_fmt_mode == basist::basis_tex_format::cASTC_HDR_6x6) || (m_fmt_mode == basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE))
return true;
if (basis_tex_format_is_xuastc_ldr(m_fmt_mode) || basis_tex_format_is_astc_ldr(m_fmt_mode) || basis_tex_format_is_xubc7(m_fmt_mode))
return true;
if (m_params.m_hdr)
m_source_blocks_hdr.resize(m_total_blocks);
else
m_source_blocks.resize(m_total_blocks);
for (uint32_t slice_index = 0; slice_index < (m_params.m_hdr ? m_slice_images_hdr.size() : m_slice_images.size()); slice_index++)
{
const basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
const uint32_t num_blocks_x = slice_desc.m_num_blocks_x;
const uint32_t num_blocks_y = slice_desc.m_num_blocks_y;
const image *pSource_image = m_params.m_hdr ? nullptr : &m_slice_images[slice_index];
const imagef *pSource_image_hdr = m_params.m_hdr ? &m_slice_images_hdr[slice_index] : nullptr;
for (uint32_t block_y = 0; block_y < num_blocks_y; block_y++)
{
for (uint32_t block_x = 0; block_x < num_blocks_x; block_x++)
{
if (m_params.m_hdr)
{
vec4F* pBlock = m_source_blocks_hdr[slice_desc.m_first_block_index + block_x + block_y * num_blocks_x].get_ptr();
pSource_image_hdr->extract_block_clamped(pBlock, block_x * 4, block_y * 4, 4, 4);
for (uint32_t i = 0; i < 16; i++)
{
for (uint32_t c = 0; c < 3; c++)
{
float v = pBlock[i][c];
if (std::isnan(v) || std::isinf(v) || (v < 0.0f) || (v > basist::MAX_HALF_FLOAT))
{
error_printf("basis_compressor::extract_source_blocks: invalid float component\n");
return false;
}
}
}
}
else
{
pSource_image->extract_block_clamped(m_source_blocks[slice_desc.m_first_block_index + block_x + block_y * num_blocks_x].get_ptr(), block_x * 4, block_y * 4, 4, 4);
}
}
}
}
return true;
}
bool basis_compressor::process_frontend()
{
debug_printf("basis_compressor::process_frontend\n");
#if 0#endif
const double total_texels = m_total_blocks * 16.0f;
int endpoint_clusters = m_params.m_etc1s_max_endpoint_clusters;
int selector_clusters = m_params.m_etc1s_max_selector_clusters;
if (endpoint_clusters > basisu_frontend::cMaxEndpointClusters)
{
error_printf("Too many endpoint clusters! (%u but max is %u)\n", endpoint_clusters, basisu_frontend::cMaxEndpointClusters);
return false;
}
if (selector_clusters > basisu_frontend::cMaxSelectorClusters)
{
error_printf("Too many selector clusters! (%u but max is %u)\n", selector_clusters, basisu_frontend::cMaxSelectorClusters);
return false;
}
if (m_params.m_quality_level != -1)
{
const float quality = saturate(m_params.m_quality_level / 255.0f);
const float bits_per_endpoint_cluster = 14.0f;
const float max_desired_endpoint_cluster_bits_per_texel = 1.0f; int max_endpoints = static_cast<int>((max_desired_endpoint_cluster_bits_per_texel * total_texels) / bits_per_endpoint_cluster);
const float mid = 128.0f / 255.0f;
float color_endpoint_quality = quality;
const float endpoint_split_point = 0.5f;
const int ENDPOINT_CODEBOOK_MID_QUALITY_CODEBOOK_SIZE = 4800;
const int MAX_ENDPOINT_CODEBOOK_SIZE = 8192;
if (color_endpoint_quality <= mid)
{
color_endpoint_quality = lerp(0.0f, endpoint_split_point, powf(color_endpoint_quality / mid, .65f));
max_endpoints = clamp<int>(max_endpoints, 256, ENDPOINT_CODEBOOK_MID_QUALITY_CODEBOOK_SIZE);
max_endpoints = minimum<uint32_t>(max_endpoints, m_total_blocks);
if (max_endpoints < 64)
max_endpoints = 64;
endpoint_clusters = clamp<uint32_t>((uint32_t)(.5f + lerp<float>(32, static_cast<float>(max_endpoints), color_endpoint_quality)), 32, basisu_frontend::cMaxEndpointClusters);
}
else
{
color_endpoint_quality = powf((color_endpoint_quality - mid) / (1.0f - mid), 1.6f);
max_endpoints = clamp<int>(max_endpoints, 256, MAX_ENDPOINT_CODEBOOK_SIZE);
max_endpoints = minimum<uint32_t>(max_endpoints, m_total_blocks);
if (max_endpoints < ENDPOINT_CODEBOOK_MID_QUALITY_CODEBOOK_SIZE)
max_endpoints = ENDPOINT_CODEBOOK_MID_QUALITY_CODEBOOK_SIZE;
endpoint_clusters = clamp<uint32_t>((uint32_t)(.5f + lerp<float>(ENDPOINT_CODEBOOK_MID_QUALITY_CODEBOOK_SIZE, static_cast<float>(max_endpoints), color_endpoint_quality)), 32, basisu_frontend::cMaxEndpointClusters);
}
float bits_per_selector_cluster = 14.0f;
const float max_desired_selector_cluster_bits_per_texel = 1.0f; int max_selectors = static_cast<int>((max_desired_selector_cluster_bits_per_texel * total_texels) / bits_per_selector_cluster);
max_selectors = clamp<int>(max_selectors, 256, basisu_frontend::cMaxSelectorClusters);
max_selectors = minimum<uint32_t>(max_selectors, m_total_blocks);
float color_selector_quality = quality;
color_selector_quality = powf(color_selector_quality, 2.62f);
if (max_selectors < 96)
max_selectors = 96;
selector_clusters = clamp<uint32_t>((uint32_t)(.5f + lerp<float>(96, static_cast<float>(max_selectors), color_selector_quality)), 8, basisu_frontend::cMaxSelectorClusters);
debug_printf("Max endpoints: %u, max selectors: %u\n", endpoint_clusters, selector_clusters);
if (m_params.m_quality_level >= 223)
{
if (!m_params.m_selector_rdo_thresh.was_changed())
{
if (!m_params.m_endpoint_rdo_thresh.was_changed())
m_params.m_endpoint_rdo_thresh *= .25f;
if (!m_params.m_selector_rdo_thresh.was_changed())
m_params.m_selector_rdo_thresh *= .25f;
}
}
else if (m_params.m_quality_level >= 192)
{
if (!m_params.m_endpoint_rdo_thresh.was_changed())
m_params.m_endpoint_rdo_thresh *= .5f;
if (!m_params.m_selector_rdo_thresh.was_changed())
m_params.m_selector_rdo_thresh *= .5f;
}
else if (m_params.m_quality_level >= 160)
{
if (!m_params.m_endpoint_rdo_thresh.was_changed())
m_params.m_endpoint_rdo_thresh *= .75f;
if (!m_params.m_selector_rdo_thresh.was_changed())
m_params.m_selector_rdo_thresh *= .75f;
}
else if (m_params.m_quality_level >= 129)
{
float l = (quality - 129 / 255.0f) / ((160 - 129) / 255.0f);
if (!m_params.m_endpoint_rdo_thresh.was_changed())
m_params.m_endpoint_rdo_thresh *= lerp<float>(1.0f, .75f, l);
if (!m_params.m_selector_rdo_thresh.was_changed())
m_params.m_selector_rdo_thresh *= lerp<float>(1.0f, .75f, l);
}
}
basisu_frontend::params p;
p.m_num_source_blocks = m_total_blocks;
p.m_pSource_blocks = &m_source_blocks[0];
p.m_max_endpoint_clusters = endpoint_clusters;
p.m_max_selector_clusters = selector_clusters;
p.m_perceptual = m_params.m_perceptual;
p.m_debug_stats = m_params.m_debug;
p.m_debug_images = m_params.m_debug_images;
p.m_compression_level = m_params.m_etc1s_compression_level;
p.m_tex_type = m_params.m_tex_type;
p.m_multithreaded = m_params.m_multithreading;
p.m_disable_hierarchical_endpoint_codebooks = m_params.m_disable_hierarchical_endpoint_codebooks;
p.m_validate = m_params.m_validate_etc1s;
p.m_pJob_pool = m_params.m_pJob_pool;
p.m_pGlobal_codebooks = m_params.m_pGlobal_codebooks;
p.m_pOpenCL_context = !m_opencl_failed ? m_pOpenCL_context : nullptr;
if (!m_frontend.init(p))
{
error_printf("basisu_frontend::init() failed!\n");
return false;
}
m_frontend.compress();
if (m_frontend.get_opencl_failed())
m_opencl_failed = true;
if (m_params.m_debug_images)
{
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
char filename[1024];
#ifdef _WIN32
sprintf_s(filename, sizeof(filename), "rdo_frontend_output_output_blocks_%u.png", i);
#else
snprintf(filename, sizeof(filename), "rdo_frontend_output_output_blocks_%u.png", i);
#endif
m_frontend.dump_debug_image(filename, m_slice_descs[i].m_first_block_index, m_slice_descs[i].m_num_blocks_x, m_slice_descs[i].m_num_blocks_y, true);
#ifdef _WIN32
sprintf_s(filename, sizeof(filename), "rdo_frontend_output_api_%u.png", i);
#else
snprintf(filename, sizeof(filename), "rdo_frontend_output_api_%u.png", i);
#endif
m_frontend.dump_debug_image(filename, m_slice_descs[i].m_first_block_index, m_slice_descs[i].m_num_blocks_x, m_slice_descs[i].m_num_blocks_y, false);
}
}
return true;
}
bool basis_compressor::extract_frontend_texture_data()
{
if (!m_params.m_compute_stats)
return true;
debug_printf("basis_compressor::extract_frontend_texture_data\n");
m_frontend_output_textures.resize(m_slice_descs.size());
m_best_etc1s_images.resize(m_slice_descs.size());
m_best_etc1s_images_unpacked.resize(m_slice_descs.size());
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
if (m_params.m_status_output)
fmt_printf("Processing slice {}\n", i);
const basisu_backend_slice_desc &slice_desc = m_slice_descs[i];
const uint32_t num_blocks_x = slice_desc.m_num_blocks_x;
const uint32_t num_blocks_y = slice_desc.m_num_blocks_y;
const uint32_t width = num_blocks_x * 4;
const uint32_t height = num_blocks_y * 4;
m_frontend_output_textures[i].init(texture_format::cETC1, width, height);
for (uint32_t block_y = 0; block_y < num_blocks_y; block_y++)
for (uint32_t block_x = 0; block_x < num_blocks_x; block_x++)
memcpy(m_frontend_output_textures[i].get_block_ptr(block_x, block_y, 0), &m_frontend.get_output_block(slice_desc.m_first_block_index + block_x + block_y * num_blocks_x), sizeof(etc_block));
#if 0#endif
m_best_etc1s_images[i].init(texture_format::cETC1, width, height);
for (uint32_t block_y = 0; block_y < num_blocks_y; block_y++)
for (uint32_t block_x = 0; block_x < num_blocks_x; block_x++)
memcpy(m_best_etc1s_images[i].get_block_ptr(block_x, block_y, 0), &m_frontend.get_etc1s_block(slice_desc.m_first_block_index + block_x + block_y * num_blocks_x), sizeof(etc_block));
m_best_etc1s_images[i].unpack(m_best_etc1s_images_unpacked[i], false);
}
return true;
}
bool basis_compressor::process_backend()
{
debug_printf("basis_compressor::process_backend\n");
basisu_backend_params backend_params;
backend_params.m_debug = m_params.m_debug;
backend_params.m_debug_images = m_params.m_debug_images;
backend_params.m_etc1s = true;
backend_params.m_compression_level = m_params.m_etc1s_compression_level;
if (!m_params.m_no_endpoint_rdo)
backend_params.m_endpoint_rdo_quality_thresh = m_params.m_endpoint_rdo_thresh;
if (!m_params.m_no_selector_rdo)
backend_params.m_selector_rdo_quality_thresh = m_params.m_selector_rdo_thresh;
backend_params.m_used_global_codebooks = m_frontend.get_params().m_pGlobal_codebooks != nullptr;
backend_params.m_validate = m_params.m_validate_output_data;
m_backend.init(&m_frontend, backend_params, m_slice_descs);
uint32_t total_packed_bytes = m_backend.encode();
if (!total_packed_bytes)
{
error_printf("basis_compressor::encode() failed!\n");
return false;
}
debug_printf("Total packed bytes (estimated): %u\n", total_packed_bytes);
return true;
}
bool basis_compressor::create_basis_file_and_transcode()
{
debug_printf("basis_compressor::create_basis_file_and_transcode\n");
basist::key_value_vec key_values(m_params.m_key_values);
if (find_key_value(key_values, BASISU_LIB_VERSION_KEY_NAME) != nullptr)
{
error_printf("basis_compressor::create_basis_file_and_transcode: Key already exists\n");
return false;
}
basist::add_key_value(key_values, BASISU_LIB_VERSION_KEY_NAME, fmt_string("{}", BASISU_LIB_VERSION_STRING));
if (m_params.m_hdr)
{
if (m_upconverted_any_ldr_images)
{
if (find_key_value(key_values, BASISU_LDR_UPCONVERSION_SCALE_KEY_NAME) == nullptr)
basist::add_key_value(key_values, BASISU_LDR_UPCONVERSION_SCALE_KEY_NAME, fmt_string("{g}", m_ldr_to_hdr_upconversion_nit_multiplier));
if (m_params.m_ldr_hdr_upconversion_srgb_to_linear)
{
if (find_key_value(key_values, BASISU_LDR_UPCONVERSION_SRGB_TO_LIN_KEY_NAME) == nullptr)
basist::add_key_value(key_values, BASISU_LDR_UPCONVERSION_SRGB_TO_LIN_KEY_NAME, "1");
}
}
if (find_key_value(key_values, BASISU_HDR_MAP_RANGE_KEY_NAME) == nullptr)
{
basist::basisu_map_range val;
val.m_scale = *reinterpret_cast<const uint32_t*>(&m_hdr_image_scale);
val.m_offset = 0;
auto* pNew_key = key_values.enlarge(1);
const char* pKey_name = BASISU_HDR_MAP_RANGE_KEY_NAME;
size_t key_name_len = strlen(pKey_name) + 1;
pNew_key->m_key.resize(key_name_len);
memcpy(pNew_key->m_key.data(), pKey_name, key_name_len);
pNew_key->m_value.resize(sizeof(val));
memcpy(pNew_key->m_value.data(), &val, sizeof(val));
}
}
const basisu_backend_output& encoded_output = m_params.m_uastc ? m_uastc_backend_output : m_backend.get_output();
if (!m_basis_file.init(encoded_output, m_params.m_tex_type, m_params.m_userdata0, m_params.m_userdata1, m_params.m_y_flip, m_params.m_us_per_frame, key_values))
{
error_printf("basis_compressor::create_basis_file_and_transcode: basisu_backend:init() failed!\n");
return false;
}
const uint8_vec& comp_data = m_basis_file.get_compressed_data();
m_output_basis_file = comp_data;
uint32_t total_orig_pixels = 0;
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
const basisu_backend_slice_desc& slice_desc = m_slice_descs[i];
total_orig_pixels += slice_desc.m_orig_width * slice_desc.m_orig_height;
}
m_total_slice_orig_texels = total_orig_pixels;
m_basis_file_size = comp_data.size();
m_basis_bits_per_texel = total_orig_pixels ? (comp_data.size() * 8.0f) / total_orig_pixels : 0;
fmt_debug_printf("Total .basis output file size: {}, {3.3} bits/texel\n", m_basis_file_size, m_basis_bits_per_texel);
const bool is_hdr_6x6 = m_params.m_hdr && (m_params.m_hdr_mode != hdr_modes::cUASTC_HDR_4X4);
if (m_params.m_validate_output_data)
{
interval_timer tm;
tm.start();
basist::basisu_transcoder_init();
debug_printf("basist::basisu_transcoder_init: Took %f ms\n", tm.get_elapsed_ms());
basist::basisu_transcoder decoder;
if (!decoder.validate_file_checksums(&comp_data[0], (uint32_t)comp_data.size(), true))
{
error_printf("decoder.validate_file_checksums() failed!\n");
return false;
}
m_decoded_output_textures.resize(m_slice_descs.size());
if (m_params.m_hdr)
{
m_decoded_output_textures_bc6h_hdr_unpacked.resize(m_slice_descs.size());
m_decoded_output_textures_astc_hdr.resize(m_slice_descs.size());
m_decoded_output_textures_astc_hdr_unpacked.resize(m_slice_descs.size());
}
else
{
m_decoded_output_textures_unpacked.resize(m_slice_descs.size());
m_decoded_output_textures_bc7.resize(m_slice_descs.size());
m_decoded_output_textures_unpacked_bc7.resize(m_slice_descs.size());
}
tm.start();
if (m_params.m_pGlobal_codebooks)
{
decoder.set_global_codebooks(m_params.m_pGlobal_codebooks);
}
if (!decoder.start_transcoding(&comp_data[0], (uint32_t)comp_data.size()))
{
error_printf("decoder.start_transcoding() failed!\n");
return false;
}
double start_transcoding_time = tm.get_elapsed_secs();
debug_printf("basisu_compressor::start_transcoding() took %3.3fms\n", start_transcoding_time * 1000.0f);
double total_time_etc1s_or_astc = 0;
basisu::texture_format tex_format;
basist::block_format blk_format;
if (m_params.m_hdr)
{
tex_format = texture_format::cBC6HUnsigned;
blk_format = basist::block_format::cBC6H;
}
else if (m_fmt_mode == basist::basis_tex_format::cUASTC_LDR_4x4)
{
tex_format = texture_format::cUASTC4x4;
blk_format = basist::block_format::cUASTC_4x4;
}
else if (basis_tex_format_is_xuastc_ldr(m_fmt_mode) || basis_tex_format_is_astc_ldr(m_fmt_mode))
{
basist::transcoder_texture_format transcoder_fmt = basist::basis_get_transcoder_texture_format_from_xuastc_or_astc_ldr_basis_tex_format(m_fmt_mode);
tex_format = basist::basis_get_texture_format_from_xuastc_or_astc_ldr_basis_tex_format(m_fmt_mode);
blk_format = basist::xuastc_get_block_format(transcoder_fmt);
}
else if (basis_tex_format_is_xubc7(m_fmt_mode))
{
tex_format = texture_format::cASTC_LDR_4x4;
blk_format = basist::block_format::cASTC_LDR_4x4;
}
else
{
tex_format = texture_format::cETC1;
blk_format = basist::block_format::cETC1;
}
if (m_params.m_print_stats)
fmt_printf("Transcoding to texture format: {}\n", get_texture_format_name(tex_format));
for (uint32_t slice_iter = 0; slice_iter < m_slice_descs.size(); slice_iter++)
{
gpu_image decoded_texture;
decoded_texture.init(
tex_format,
m_slice_descs[slice_iter].m_orig_width, m_slice_descs[slice_iter].m_orig_height);
const uint32_t dst_block_size_x = basisu::get_block_width(tex_format);
const uint32_t dst_block_size_y = basisu::get_block_height(tex_format);
const uint32_t num_dst_blocks_x = (m_slice_descs[slice_iter].m_orig_width + dst_block_size_x - 1) / dst_block_size_x;
const uint32_t num_dst_blocks_y = (m_slice_descs[slice_iter].m_orig_height + dst_block_size_y - 1) / dst_block_size_y;
const uint32_t total_dst_blocks = num_dst_blocks_x * num_dst_blocks_y;
const uint32_t bytes_per_block = decoded_texture.get_bytes_per_block();
tm.start();
if (!decoder.transcode_slice(&comp_data[0], (uint32_t)comp_data.size(), slice_iter,
reinterpret_cast<etc_block*>(decoded_texture.get_ptr()), total_dst_blocks, blk_format, bytes_per_block, m_params.m_transcode_flags))
{
error_printf("Transcoding failed on slice %u!\n", slice_iter);
return false;
}
total_time_etc1s_or_astc += tm.get_elapsed_secs();
if (encoded_output.m_tex_format == basist::basis_tex_format::cETC1S)
{
uint32_t image_crc16 = basist::crc16(decoded_texture.get_ptr(), decoded_texture.get_size_in_bytes(), 0);
if (image_crc16 != encoded_output.m_slice_image_crcs[slice_iter])
{
error_printf("Decoded image data CRC check failed on slice %u!\n", slice_iter);
return false;
}
debug_printf("Decoded image data CRC check succeeded on slice %i\n", slice_iter);
}
m_decoded_output_textures[slice_iter] = decoded_texture;
}
double total_alt_transcode_time = 0;
tm.start();
if (m_params.m_hdr)
{
if (is_hdr_6x6)
{
assert(basist::basis_is_format_supported(basist::transcoder_texture_format::cTFASTC_HDR_6x6_RGBA, basist::basis_tex_format::cASTC_HDR_6x6));
assert(basist::basis_is_format_supported(basist::transcoder_texture_format::cTFASTC_HDR_6x6_RGBA, basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE));
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
gpu_image decoded_texture;
decoded_texture.init(texture_format::cASTC_HDR_6x6, m_slice_descs[i].m_orig_width, m_slice_descs[i].m_orig_height);
if (!decoder.transcode_slice(&comp_data[0], (uint32_t)comp_data.size(), i,
reinterpret_cast<basist::astc_blk*>(decoded_texture.get_ptr()), m_slice_descs[i].m_num_blocks_x * m_slice_descs[i].m_num_blocks_y, basist::block_format::cASTC_HDR_6x6, 16, m_params.m_transcode_flags))
{
error_printf("Transcoding failed to ASTC HDR on slice %u!\n", i);
return false;
}
m_decoded_output_textures_astc_hdr[i] = decoded_texture;
}
}
else
{
assert(basist::basis_is_format_supported(basist::transcoder_texture_format::cTFASTC_HDR_4x4_RGBA, basist::basis_tex_format::cUASTC_HDR_4x4));
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
gpu_image decoded_texture;
decoded_texture.init(texture_format::cASTC_HDR_4x4, m_slice_descs[i].m_orig_width, m_slice_descs[i].m_orig_height);
if (!decoder.transcode_slice(&comp_data[0], (uint32_t)comp_data.size(), i,
reinterpret_cast<basist::astc_blk*>(decoded_texture.get_ptr()), m_slice_descs[i].m_num_blocks_x * m_slice_descs[i].m_num_blocks_y, basist::block_format::cASTC_HDR_4x4, 16, m_params.m_transcode_flags))
{
error_printf("Transcoding failed to ASTC HDR on slice %u!\n", i);
return false;
}
m_decoded_output_textures_astc_hdr[i] = decoded_texture;
}
}
}
else
{
if (basist::basis_is_format_supported(basist::transcoder_texture_format::cTFBC7_RGBA, basist::basis_tex_format::cUASTC_LDR_4x4) &&
basist::basis_is_format_supported(basist::transcoder_texture_format::cTFBC7_RGBA, basist::basis_tex_format::cETC1S) &&
basist::basis_is_format_supported(basist::transcoder_texture_format::cTFBC7_RGBA, basist::basis_tex_format::cXUBC7))
{
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
gpu_image decoded_texture;
decoded_texture.init(texture_format::cBC7, m_slice_descs[i].m_orig_width, m_slice_descs[i].m_orig_height);
const uint32_t num_bc7_blocks_x = decoded_texture.get_blocks_x();
const uint32_t num_bc7_blocks_y = decoded_texture.get_blocks_y();
if (!decoder.transcode_slice(&comp_data[0], (uint32_t)comp_data.size(), i,
decoded_texture.get_ptr(), num_bc7_blocks_x * num_bc7_blocks_y, basist::block_format::cBC7, 16, m_params.m_transcode_flags))
{
error_printf("Transcoding failed to BC7 on slice %u!\n", i);
return false;
}
m_decoded_output_textures_bc7[i] = decoded_texture;
}
}
}
total_alt_transcode_time = tm.get_elapsed_secs();
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
if (m_params.m_hdr)
{
bool status = m_decoded_output_textures[i].unpack_hdr(m_decoded_output_textures_bc6h_hdr_unpacked[i]);
if (!status)
{
error_printf("Unpacking failed on slice %u!\n", i);
return false;
}
status = m_decoded_output_textures_astc_hdr[i].unpack_hdr(m_decoded_output_textures_astc_hdr_unpacked[i]);
if (!status)
{
error_printf("Unpacking failed on slice %u!\n", i);
return false;
}
}
else
{
bool status = m_decoded_output_textures[i].unpack(m_decoded_output_textures_unpacked[i], m_params.m_ktx2_and_basis_srgb_transfer_function);
if (!status)
{
error_printf("Unpacking failed on slice %u!\n", i);
return false;
}
if (m_decoded_output_textures_bc7[i].get_pixel_width())
{
status = m_decoded_output_textures_bc7[i].unpack(m_decoded_output_textures_unpacked_bc7[i], m_params.m_ktx2_and_basis_srgb_transfer_function);
if (!status)
{
error_printf("Unpacking failed on slice %u!\n", i);
return false;
}
}
}
}
debug_printf("Transcoded to %s in %3.3fms, %f texels/sec\n",
m_params.m_hdr ? "BC6H" : (m_params.m_uastc ? "ASTC" : "ETC1"),
total_time_etc1s_or_astc * 1000.0f, total_orig_pixels / total_time_etc1s_or_astc);
if (total_alt_transcode_time != 0)
debug_printf("Alternate transcode in %3.3fms, %f texels/sec\n", total_alt_transcode_time * 1000.0f, total_orig_pixels / total_alt_transcode_time);
if (!is_hdr_6x6)
{
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
const basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
const uint32_t total_blocks = slice_desc.m_num_blocks_x * slice_desc.m_num_blocks_y;
BASISU_NOTE_UNUSED(total_blocks);
assert(m_decoded_output_textures[slice_index].get_total_blocks() == total_blocks);
}
}
}
return true;
}
bool basis_compressor::write_hdr_debug_images(const char* pBasename, const imagef& orig_hdr_img, uint32_t width, uint32_t height)
{
imagef hdr_img(orig_hdr_img);
hdr_img.resize(width, height);
image srgb_img(width, height);
const float inv_upconversion_scale = (m_ldr_to_hdr_upconversion_nit_multiplier > 0.0f) ? (1.0f / m_ldr_to_hdr_upconversion_nit_multiplier) : 1.0f;
for (uint32_t y = 0; y < height; y++)
{
for (uint32_t x = 0; x < width; x++)
{
vec4F p(hdr_img(x, y));
p[0] = clamp(p[0] * inv_upconversion_scale, 0.0f, 1.0f);
p[1] = clamp(p[1] * inv_upconversion_scale, 0.0f, 1.0f);
p[2] = clamp(p[2] * inv_upconversion_scale, 0.0f, 1.0f);
int rc = (int)std::round(linear_to_srgb(p[0]) * 255.0f);
int gc = (int)std::round(linear_to_srgb(p[1]) * 255.0f);
int bc = (int)std::round(linear_to_srgb(p[2]) * 255.0f);
srgb_img.set_clipped(x, y, color_rgba(rc, gc, bc, 255));
}
}
{
const std::string filename(string_format("%s_linear_clamped_to_srgb.png", pBasename));
save_png(filename.c_str(), srgb_img);
printf("Wrote .PNG file %s\n", filename.c_str());
}
{
const std::string filename(string_format("%s_compressive_tonemapped.png", pBasename));
image compressive_tonemapped_img;
bool status = tonemap_image_compressive(compressive_tonemapped_img, hdr_img);
if (!status)
{
error_printf("basis_compressor::write_hdr_debug_images: tonemap_image_compressive() failed (invalid half-float input)\n");
}
else
{
save_png(filename.c_str(), compressive_tonemapped_img);
printf("Wrote .PNG file %s\n", filename.c_str());
}
}
image tonemapped_img;
for (int e = -5; e <= 5; e++)
{
const float scale = powf(2.0f, (float)e);
tonemap_image_reinhard(tonemapped_img, hdr_img, scale);
std::string filename(string_format("%s_reinhard_tonemapped_scale_%f.png", pBasename, scale));
save_png(filename.c_str(), tonemapped_img, cImageSaveIgnoreAlpha);
printf("Wrote .PNG file %s\n", filename.c_str());
}
return true;
}
bool basis_compressor::write_output_files_and_compute_stats()
{
debug_printf("basis_compressor::write_output_files_and_compute_stats\n");
const uint8_vec& comp_data = m_params.m_create_ktx2_file ? m_output_ktx2_file : m_basis_file.get_compressed_data();
if (m_params.m_write_output_basis_or_ktx2_files)
{
const std::string& output_filename = m_params.m_out_filename;
if (!write_vec_to_file(output_filename.c_str(), comp_data))
{
error_printf("Failed writing output data to file \"%s\"\n", output_filename.c_str());
return false;
}
if (m_params.m_status_output)
{
printf("Wrote compressed output file \"%s\"\n", output_filename.c_str());
}
}
size_t comp_size = 0;
if ((m_params.m_compute_stats) && (m_params.m_uastc) && (comp_data.size()))
{
void* pComp_data = tdefl_compress_mem_to_heap(&comp_data[0], comp_data.size(), &comp_size, TDEFL_MAX_PROBES_MASK); size_t decomp_size = 0;
void* pDecomp_data = tinfl_decompress_mem_to_heap(pComp_data, comp_size, &decomp_size, 0);
if ((decomp_size != comp_data.size()) || (memcmp(pDecomp_data, &comp_data[0], decomp_size) != 0))
{
printf("basis_compressor::create_basis_file_and_transcode:: miniz compression or decompression failed!\n");
return false;
}
mz_free(pComp_data);
mz_free(pDecomp_data);
uint32_t total_texels = 0;
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
total_texels += (m_slice_descs[i].m_orig_width * m_slice_descs[i].m_orig_height);
m_basis_bits_per_texel = ((float)comp_size * 8.0f) / total_texels;
fmt_debug_printf("Output file size: {}, {3.2} bits/texel, LZ compressed file size: {}, {3.2} bits/texel\n",
(uint64_t)comp_data.size(), ((float)comp_data.size() * 8.0f) / total_texels,
(uint64_t)comp_size, m_basis_bits_per_texel);
}
m_stats.resize(m_slice_descs.size());
if (m_params.m_validate_output_data)
{
if (m_params.m_hdr)
{
if (m_params.m_print_stats)
{
printf("ASTC/BC6H half float space error metrics (a piecewise linear approximation of log2 error):\n");
}
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
const basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
if (m_params.m_compute_stats)
{
image_stats& s = m_stats[slice_index];
s.m_tex_format = m_decoded_output_textures_astc_hdr[slice_index].get_format();
if (m_params.m_print_stats)
{
printf("Slice: %u\n", slice_index);
}
image_metrics im;
if (m_params.m_print_stats)
{
fmt_printf("Quality stats vs. transcoded {} (and {} alternate) textures:\n", get_texture_format_name(m_decoded_output_textures_astc_hdr[slice_index].get_format()), get_texture_format_name(m_decoded_output_textures[slice_index].get_format()));
printf("\nASTC channels:\n");
for (uint32_t i = 0; i < 3; i++)
{
im.calc_half(m_slice_images_hdr[slice_index], m_decoded_output_textures_astc_hdr_unpacked[slice_index], i, 1, true);
printf("%c: ", "RGB"[i]);
im.print_hp();
}
printf("BC6H channels:\n");
for (uint32_t i = 0; i < 3; i++)
{
im.calc_half(m_slice_images_hdr[slice_index], m_decoded_output_textures_bc6h_hdr_unpacked[slice_index], i, 1, true);
printf("%c: ", "RGB"[i]);
im.print_hp();
}
}
im.calc_half(m_slice_images_hdr[slice_index], m_decoded_output_textures_astc_hdr_unpacked[slice_index], 0, 3, true);
s.m_basis_rgb_avg_psnr = (float)im.m_psnr;
if (m_params.m_print_stats)
{
printf("\nASTC RGB: ");
im.print_hp();
#if 0#endif
}
im.calc_half(m_slice_images_hdr[slice_index], m_decoded_output_textures_bc6h_hdr_unpacked[slice_index], 0, 3, true);
s.m_basis_rgb_avg_bc6h_psnr = (float)im.m_psnr;
if (m_params.m_print_stats)
{
printf("BC6H RGB: ");
im.print_hp();
}
im.calc(m_slice_images_hdr[slice_index], m_decoded_output_textures_astc_hdr_unpacked[slice_index], 0, 3, true, true);
s.m_basis_rgb_avg_astc_hdr_log2_psnr = (float)im.m_psnr;
if (m_params.m_print_stats)
{
printf("\nASTC Log2 RGB: ");
im.print_hp();
}
im.calc(m_slice_images_hdr[slice_index], m_decoded_output_textures_bc6h_hdr_unpacked[slice_index], 0, 3, true, true);
s.m_basis_rgb_avg_bc6h_log2_psnr = (float)im.m_psnr;
if (m_params.m_print_stats)
{
printf("BC6H Log2 RGB: ");
im.print_hp();
printf("\n");
}
}
if (m_params.m_debug_images)
{
std::string out_basename;
if (m_params.m_out_filename.size())
string_get_filename(m_params.m_out_filename.c_str(), out_basename);
else if (m_params.m_source_filenames.size())
string_get_filename(m_params.m_source_filenames[slice_desc.m_source_file_index].c_str(), out_basename);
string_remove_extension(out_basename);
out_basename = "basis_debug_" + out_basename + string_format("_slice_%u", slice_index);
{
gpu_image bc6h_tex(m_decoded_output_textures[slice_index]);
bc6h_tex.override_dimensions(slice_desc.m_orig_width, slice_desc.m_orig_height);
std::string filename(out_basename + "_bc6h.dds");
write_compressed_texture_file(filename.c_str(), bc6h_tex, false);
printf("Wrote .DDS file %s\n", filename.c_str());
}
{
gpu_image astc_tex(m_decoded_output_textures_astc_hdr[slice_index]);
astc_tex.override_dimensions(slice_desc.m_orig_width, slice_desc.m_orig_height);
std::string filename1(out_basename + "_astc.astc");
uint32_t block_width = 4, block_height = 4;
if ((m_params.m_hdr_mode == hdr_modes::cASTC_HDR_6X6) || (m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE))
{
block_width = 6;
block_height = 6;
}
write_astc_file(filename1.c_str(), astc_tex.get_ptr(), block_width, block_height, slice_desc.m_orig_width, slice_desc.m_orig_height);
printf("Wrote .ASTC file %s\n", filename1.c_str());
std::string filename2(out_basename + "_astc.ktx");
write_compressed_texture_file(filename2.c_str(), astc_tex, false);
printf("Wrote .KTX file %s\n", filename2.c_str());
}
{
imagef astc_img(m_decoded_output_textures_astc_hdr_unpacked[slice_index]);
astc_img.resize(slice_desc.m_orig_width, slice_desc.m_orig_height);
std::string filename(out_basename + "_unpacked_astc.exr");
write_exr(filename.c_str(), astc_img, 3, 0);
printf("Wrote .EXR file %s\n", filename.c_str());
}
{
imagef bc6h_img(m_decoded_output_textures_bc6h_hdr_unpacked[slice_index]);
bc6h_img.resize(slice_desc.m_orig_width, slice_desc.m_orig_height);
std::string filename(out_basename + "_unpacked_bc6h.exr");
write_exr(filename.c_str(), bc6h_img, 3, 0);
printf("Wrote .EXR file %s\n", filename.c_str());
}
write_hdr_debug_images((out_basename + "_source").c_str(), m_slice_images_hdr[slice_index], slice_desc.m_orig_width, slice_desc.m_orig_height);
write_hdr_debug_images((out_basename + "_unpacked_astc").c_str(), m_decoded_output_textures_astc_hdr_unpacked[slice_index], slice_desc.m_orig_width, slice_desc.m_orig_height);
write_hdr_debug_images((out_basename + "_unpacked_bc6h").c_str(), m_decoded_output_textures_bc6h_hdr_unpacked[slice_index], slice_desc.m_orig_width, slice_desc.m_orig_height);
}
}
}
else
{
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
const basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
if (m_params.m_compute_stats)
{
if (m_params.m_print_stats)
printf("Slice: %u\n", slice_index);
image_stats& s = m_stats[slice_index];
s.m_tex_format = m_decoded_output_textures[slice_index].get_format();
image_metrics em;
if (m_params.m_print_stats)
fmt_printf("Quality stats vs. transcoded {} texture:\n", get_texture_format_name(m_decoded_output_textures[slice_index].get_format()));
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked[slice_index], 0, 3);
if (m_params.m_print_stats)
em.print("RGB Avg: ");
s.m_basis_rgb_avg_psnr = (float)em.m_psnr;
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked[slice_index], 0, 4);
if (m_params.m_print_stats)
em.print("RGBA Avg: ");
s.m_basis_rgba_avg_psnr = (float)em.m_psnr;
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked[slice_index], 0, 1);
if (m_params.m_print_stats)
em.print("R Avg: ");
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked[slice_index], 1, 1);
if (m_params.m_print_stats)
em.print("G Avg: ");
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked[slice_index], 2, 1);
if (m_params.m_print_stats)
em.print("B Avg: ");
{
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked[slice_index], 3, 1);
if (m_params.m_print_stats)
em.print("A Avg: ");
s.m_basis_a_avg_psnr = (float)em.m_psnr;
}
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked[slice_index], 0, 0);
if (m_params.m_print_stats)
em.print("709 Luma: ");
s.m_basis_luma_709_psnr = static_cast<float>(em.m_psnr);
s.m_basis_luma_709_ssim = static_cast<float>(em.m_ssim);
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked[slice_index], 0, 0, true, true);
if (m_params.m_print_stats)
em.print("601 Luma: ");
s.m_basis_luma_601_psnr = static_cast<float>(em.m_psnr);
if (m_slice_descs.size() == 1)
{
const uint32_t output_size = comp_size ? (uint32_t)comp_size : (uint32_t)comp_data.size();
if (m_params.m_print_stats)
{
debug_printf("RGB PSNR per bit/texel*10000: %3.3f\n", 10000.0f * s.m_basis_rgb_avg_psnr / ((output_size * 8.0f) / (slice_desc.m_orig_width * slice_desc.m_orig_height)));
debug_printf("Luma 709 PSNR per bit/texel*10000: %3.3f\n", 10000.0f * s.m_basis_luma_709_psnr / ((output_size * 8.0f) / (slice_desc.m_orig_width * slice_desc.m_orig_height)));
}
}
if (m_params.m_psnr_hvs_m_stats)
{
bool hvs_status = psnr_hvs_compute_metrics(m_slice_images[slice_index], m_decoded_output_textures_unpacked[slice_index], s.m_hvs_metrics);
if (!hvs_status)
error_printf("psnr_hvs_compute_metrics() failed!\n");
if (m_params.m_print_stats)
{
fmt_printf("PSNR-HVS and PSNR-HVS-M metrics:\n");
psnr_hvs_print_metrics(s.m_hvs_metrics);
}
}
if (m_decoded_output_textures_unpacked_bc7[slice_index].get_width())
{
if (m_params.m_print_stats)
fmt_printf("Quality stats vs. transcoded {} texture:\n", get_texture_format_name(m_decoded_output_textures_bc7[slice_index].get_format()));
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked_bc7[slice_index], 0, 3);
if (m_params.m_print_stats)
em.print("BC7 RGB Avg: ");
s.m_bc7_rgb_avg_psnr = (float)em.m_psnr;
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked_bc7[slice_index], 0, 4);
if (m_params.m_print_stats)
em.print("BC7 RGBA Avg: ");
s.m_bc7_rgba_avg_psnr = (float)em.m_psnr;
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked_bc7[slice_index], 0, 1);
if (m_params.m_print_stats)
em.print("BC7 R Avg: ");
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked_bc7[slice_index], 1, 1);
if (m_params.m_print_stats)
em.print("BC7 G Avg: ");
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked_bc7[slice_index], 2, 1);
if (m_params.m_print_stats)
em.print("BC7 B Avg: ");
{
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked_bc7[slice_index], 3, 1);
if (m_params.m_print_stats)
em.print("BC7 A Avg: ");
s.m_bc7_a_avg_psnr = (float)em.m_psnr;
}
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked_bc7[slice_index], 0, 0);
if (m_params.m_print_stats)
em.print("BC7 709 Luma: ");
s.m_bc7_luma_709_psnr = static_cast<float>(em.m_psnr);
s.m_bc7_luma_709_ssim = static_cast<float>(em.m_ssim);
em.calc(m_slice_images[slice_index], m_decoded_output_textures_unpacked_bc7[slice_index], 0, 0, true, true);
if (m_params.m_print_stats)
em.print("BC7 601 Luma: ");
s.m_bc7_luma_601_psnr = static_cast<float>(em.m_psnr);
if (m_params.m_psnr_hvs_m_stats)
{
bool hvs_status2 = psnr_hvs_compute_metrics(m_slice_images[slice_index], m_decoded_output_textures_unpacked_bc7[slice_index], s.m_hvs_metrics_bc7);
if (!hvs_status2)
error_printf("psnr_hvs_compute_metrics() failed!\n");
if (m_params.m_print_stats)
{
fmt_printf("PSNR-HVS and PSNR-HVS-M metrics (BC7):\n");
psnr_hvs_print_metrics(s.m_hvs_metrics_bc7);
}
}
}
if (!m_params.m_uastc)
{
em.calc(m_slice_images[slice_index], m_best_etc1s_images_unpacked[slice_index], 0, 3);
s.m_best_etc1s_rgb_avg_psnr = static_cast<float>(em.m_psnr);
em.calc(m_slice_images[slice_index], m_best_etc1s_images_unpacked[slice_index], 0, 0);
s.m_best_etc1s_luma_709_psnr = static_cast<float>(em.m_psnr);
s.m_best_etc1s_luma_709_ssim = static_cast<float>(em.m_ssim);
em.calc(m_slice_images[slice_index], m_best_etc1s_images_unpacked[slice_index], 0, 0, true, true);
s.m_best_etc1s_luma_601_psnr = static_cast<float>(em.m_psnr);
}
}
std::string out_basename;
if (m_params.m_out_filename.size())
string_get_filename(m_params.m_out_filename.c_str(), out_basename);
else if (m_params.m_source_filenames.size())
string_get_filename(m_params.m_source_filenames[slice_desc.m_source_file_index].c_str(), out_basename);
string_remove_extension(out_basename);
out_basename = "basis_debug_" + out_basename + string_format("_slice_%u", slice_index);
if ((!m_params.m_uastc) && (m_frontend.get_params().m_debug_images))
{
if (!m_params.m_uastc)
{
gpu_image best_etc1s_gpu_image(m_best_etc1s_images[slice_index]);
best_etc1s_gpu_image.override_dimensions(slice_desc.m_orig_width, slice_desc.m_orig_height);
write_compressed_texture_file((out_basename + "_best_etc1s.ktx").c_str(), best_etc1s_gpu_image, m_params.m_ktx2_and_basis_srgb_transfer_function);
image best_etc1s_unpacked;
best_etc1s_gpu_image.unpack(best_etc1s_unpacked, m_params.m_ktx2_and_basis_srgb_transfer_function);
save_png(out_basename + "_best_etc1s.png", best_etc1s_unpacked);
}
}
if (m_params.m_debug_images)
{
{
gpu_image decoded_etc1s_or_astc(m_decoded_output_textures[slice_index]);
decoded_etc1s_or_astc.override_dimensions(slice_desc.m_orig_width, slice_desc.m_orig_height);
write_compressed_texture_file((out_basename + "_transcoded_etc1s_or_astc.ktx").c_str(), decoded_etc1s_or_astc, m_params.m_ktx2_and_basis_srgb_transfer_function);
image temp(m_decoded_output_textures_unpacked[slice_index]);
temp.crop(slice_desc.m_orig_width, slice_desc.m_orig_height);
save_png(out_basename + "_transcoded_etc1s_or_astc.png", temp);
}
if (m_decoded_output_textures_bc7[slice_index].get_pixel_width())
{
gpu_image decoded_bc7(m_decoded_output_textures_bc7[slice_index]);
decoded_bc7.override_dimensions(slice_desc.m_orig_width, slice_desc.m_orig_height);
write_compressed_texture_file((out_basename + "_transcoded_bc7.ktx").c_str(), decoded_bc7, m_params.m_ktx2_and_basis_srgb_transfer_function);
image temp(m_decoded_output_textures_unpacked_bc7[slice_index]);
temp.crop(slice_desc.m_orig_width, slice_desc.m_orig_height);
save_png(out_basename + "_transcoded_bc7.png", temp);
}
}
if ((m_params.m_debug) && (m_decoded_output_textures_bc7[slice_index].get_pixel_width()))
{
const gpu_image& decoded_bc7 = m_decoded_output_textures_bc7[slice_index];
create_bc7_debug_images(slice_desc.m_orig_width, slice_desc.m_orig_height, decoded_bc7.get_ptr(), m_params.m_debug_images ? out_basename.c_str() : nullptr);
}
}
}
}
return true;
}
bool basis_compressor::validate_ktx2_constraints()
{
uint32_t base_width = 0, base_height = 0;
uint32_t total_layers = 0;
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
if (m_slice_descs[i].m_mip_index == 0)
{
if (!base_width)
{
base_width = m_slice_descs[i].m_orig_width;
base_height = m_slice_descs[i].m_orig_height;
}
else
{
if ((m_slice_descs[i].m_orig_width != base_width) || (m_slice_descs[i].m_orig_height != base_height))
{
return false;
}
}
total_layers = maximum<uint32_t>(total_layers, m_slice_descs[i].m_source_file_index + 1);
}
}
basisu::vector<uint32_t> total_mips(total_layers);
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
total_mips[m_slice_descs[i].m_source_file_index] = maximum<uint32_t>(total_mips[m_slice_descs[i].m_source_file_index], m_slice_descs[i].m_mip_index + 1);
for (uint32_t i = 1; i < total_layers; i++)
{
if (total_mips[0] != total_mips[i])
{
return false;
}
}
return true;
}
static uint8_t g_ktx2_etc1s_nonalpha_dfd[44] =
{
0x2C,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x2,0x0,0x28,0x0, 0xA3,0x1,0x2,0x0, 0x3,0x3,0x0,0x0, 0x8,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x0,0x0,0x3F,0x0, 0x0,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0xFF,0xFF,0xFF,0xFF };
static uint8_t g_ktx2_etc1s_alpha_dfd[60] =
{
0x3C,0x0,0x0,0x0,
0x0,0x0,0x0,0x0,
0x2,0x0,0x38,0x0,
0xA3,0x1,0x2,0x0,
0x3,0x3,0x0,0x0,
0x8,0x8,0x0,0x0,
0x0,0x0,0x0,0x0,
0x0,0x0,0x3F,0x0,
0x0,0x0,0x0,0x0,
0x0,0x0,0x0,0x0,
0xFF,0xFF,0xFF,0xFF,
0x40,0x0,0x3F,0xF,
0x0,0x0,0x0,0x0,
0x0,0x0,0x0,0x0,
0xFF,0xFF,0xFF,0xFF
};
static uint8_t g_ktx2_uastc_ldr_4x4_nonalpha_dfd[44] =
{
0x2C,0x0,0x0,0x0,
0x0,0x0,0x0,0x0,
0x2,0x0,0x28,0x0,
0xA6,0x1,0x2,0x0,
0x3,0x3,0x0,0x0,
0x10,0x0,0x0,0x0,
0x0,0x0,0x0,0x0,
0x0,0x0,0x7F,0x4,
0x0,0x0,0x0,0x0,
0x0,0x0,0x0,0x0,
0xFF,0xFF,0xFF,0xFF
};
static uint8_t g_ktx2_uastc_ldr_4x4_alpha_dfd[44] =
{
0x2C,0x0,0x0,0x0,
0x0,0x0,0x0,0x0,
0x2,0x0,0x28,0x0,
0xA6,0x1,0x2,0x0,
0x3,0x3,0x0,0x0,
0x10,0x0,0x0,0x0,
0x0,0x0,0x0,0x0,
0x0,0x0,0x7F,0x3,
0x0,0x0,0x0,0x0,
0x0,0x0,0x0,0x0,
0xFF,0xFF,0xFF,0xFF
};
static uint8_t g_ktx2_uastc_hdr_4x4_nonalpha_dfd[44] =
{
0x2C,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x2,0x0,0x28,0x0, 0xA7,0x1,0x1,0x0, 0x3,0x3,0x0,0x0, 0x10,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x0,0x0,0x7F,0x80, 0x0,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x00, 0x00, 0x80, 0x3F };
static uint8_t g_ktx2_astc_hdr_6x6_nonalpha_dfd[44] =
{
0x2C,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x2,0x0,0x28,0x0, 0xA2,0x1,0x1,0x0, 0x5,0x5,0x0,0x0, 0x10,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x0,0x0,0x7F,0x80 | 0x40, 0x0,0x0,0x0,0x0, 0x0, 0x0, 0x80, 0xBF, 0x00, 0x00, 0x80, 0x3F };
static uint8_t g_ktx2_uastc_hdr_6x6_intermediate_nonalpha_dfd[44] =
{
0x2C,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x2,0x0,0x28,0x0, 0xA8,0x1,0x1,0x0, 0x5,0x5,0x0,0x0, 0x10,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x0,0x0,0x7F,0x80, 0x0,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x00, 0x00, 0x80, 0x3F };
static uint8_t g_ktx2_xuastc_ldr_intermediate_dfd[44] =
{
0x2C,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x2,0x0,0x28,0x0, (uint8_t)basist::KTX2_KDF_DF_MODEL_XUASTC_LDR_INTERMEDIATE,0x1,0x1,0x0, 0x3,0x3,0x0,0x0, 0x10,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x0,0x0,0x7F,0x00, 0x0,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0xFF,0xFF,0xFF,0xFF };
static uint8_t g_ktx2_astc_ldr_dfd[44] =
{
0x2C,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x2,0x0,0x28,0x0, (uint8_t)basist::KTX2_KDF_DF_MODEL_ASTC,0x1,0x1,0x0, 0x3,0x3,0x0,0x0, 0x10,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x0,0x0,0x7F,0x00, 0x0,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0xFF,0xFF,0xFF,0xFF };
static uint8_t g_ktx2_xubc7_dfd[44] =
{
0x2C,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x2,0x0,0x28,0x0, (uint8_t)basist::KTX2_KDF_DF_MODEL_XUBC7,0x1,0x1,0x0, 0x3,0x3,0x0,0x0, 0x10,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0x0,0x0,0x7F,0x00, 0x0,0x0,0x0,0x0, 0x0,0x0,0x0,0x0, 0xFF,0xFF,0xFF,0xFF };
bool basis_compressor::get_dfd(uint8_vec &dfd, const basist::ktx2_header &header)
{
BASISU_NOTE_UNUSED(header);
const uint8_t* pDFD = nullptr;
uint32_t dfd_len = 0;
const bool is_xuastc_ldr = basis_tex_format_is_xuastc_ldr(m_fmt_mode);
const bool is_astc_ldr = basis_tex_format_is_astc_ldr(m_fmt_mode);
const bool is_xubc7 = basis_tex_format_is_xubc7(m_fmt_mode);
if (is_xuastc_ldr)
{
pDFD = g_ktx2_xuastc_ldr_intermediate_dfd;
dfd_len = sizeof(g_ktx2_xuastc_ldr_intermediate_dfd);
}
else if (is_astc_ldr)
{
pDFD = g_ktx2_astc_ldr_dfd;
dfd_len = sizeof(g_ktx2_astc_ldr_dfd);
}
else if (m_params.m_uastc)
{
if (m_params.m_hdr)
{
assert(!is_xubc7);
switch (m_params.m_hdr_mode)
{
case hdr_modes::cUASTC_HDR_4X4:
{
assert(m_fmt_mode == basist::basis_tex_format::cUASTC_HDR_4x4);
pDFD = g_ktx2_uastc_hdr_4x4_nonalpha_dfd;
dfd_len = sizeof(g_ktx2_uastc_hdr_4x4_nonalpha_dfd);
break;
}
case hdr_modes::cASTC_HDR_6X6:
{
assert(m_fmt_mode == basist::basis_tex_format::cASTC_HDR_6x6);
pDFD = g_ktx2_astc_hdr_6x6_nonalpha_dfd;
dfd_len = sizeof(g_ktx2_astc_hdr_6x6_nonalpha_dfd);
break;
}
case hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE:
{
assert(m_fmt_mode == basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE);
pDFD = g_ktx2_uastc_hdr_6x6_intermediate_nonalpha_dfd;
dfd_len = sizeof(g_ktx2_uastc_hdr_6x6_intermediate_nonalpha_dfd);
break;
}
default:
{
assert(0);
return false;
}
}
}
else if (is_xubc7)
{
pDFD = g_ktx2_xubc7_dfd;
dfd_len = sizeof(g_ktx2_xubc7_dfd);
}
else if (m_any_source_image_has_alpha)
{
assert(m_fmt_mode == basist::basis_tex_format::cUASTC_LDR_4x4);
pDFD = g_ktx2_uastc_ldr_4x4_alpha_dfd;
dfd_len = sizeof(g_ktx2_uastc_ldr_4x4_alpha_dfd);
}
else
{
assert(m_fmt_mode == basist::basis_tex_format::cUASTC_LDR_4x4);
pDFD = g_ktx2_uastc_ldr_4x4_nonalpha_dfd;
dfd_len = sizeof(g_ktx2_uastc_ldr_4x4_nonalpha_dfd);
}
}
else
{
assert(!m_params.m_hdr);
assert(m_fmt_mode == basist::basis_tex_format::cETC1S);
if (m_any_source_image_has_alpha)
{
pDFD = g_ktx2_etc1s_alpha_dfd;
dfd_len = sizeof(g_ktx2_etc1s_alpha_dfd);
}
else
{
pDFD = g_ktx2_etc1s_nonalpha_dfd;
dfd_len = sizeof(g_ktx2_etc1s_nonalpha_dfd);
}
}
assert(dfd_len >= 44);
dfd.resize(dfd_len);
memcpy(dfd.data(), pDFD, dfd_len);
uint32_t dfd_bits = basisu::read_le_dword(dfd.data() + 3 * sizeof(uint32_t));
if (m_params.m_astc_hdr_6x6_options.m_rec2020_bt2100_color_gamut)
{
dfd_bits &= ~(0xFF << 8);
dfd_bits |= (basist::KTX2_DF_PRIMARIES_BT2020 << 8);
}
dfd_bits &= ~(0xFF << 16);
if (m_params.m_hdr)
{
if (m_params.m_ktx2_and_basis_srgb_transfer_function)
{
debug_printf("WARNING: In HDR mode but m_ktx2_and_basis_srgb_transfer_function was set to true, which is being ignored while writing the KTX2 DFD transfer function field\n");
}
dfd_bits |= (basist::KTX2_KHR_DF_TRANSFER_LINEAR << 16);
}
else
{
if (m_params.m_ktx2_and_basis_srgb_transfer_function)
dfd_bits |= (basist::KTX2_KHR_DF_TRANSFER_SRGB << 16);
else
dfd_bits |= (basist::KTX2_KHR_DF_TRANSFER_LINEAR << 16);
}
basisu::write_le_dword(dfd.data() + 3 * sizeof(uint32_t), dfd_bits);
#if 0#endif
uint32_t dfd_chan0 = basisu::read_le_dword(dfd.data() + 7 * sizeof(uint32_t));
if (m_params.m_uastc)
{
dfd_chan0 &= ~(0xF << 24);
if ((m_any_source_image_has_alpha) &&
((m_fmt_mode == basist::basis_tex_format::cUASTC_LDR_4x4) || basis_tex_format_is_xuastc_ldr(m_fmt_mode) || basis_tex_format_is_astc_ldr(m_fmt_mode) || basis_tex_format_is_xubc7(m_fmt_mode)))
{
dfd_chan0 |= (basist::KTX2_DF_CHANNEL_UASTC_RGBA << 24);
}
else
{
dfd_chan0 |= (basist::KTX2_DF_CHANNEL_UASTC_RGB << 24);
}
}
basisu::write_le_dword(dfd.data() + 7 * sizeof(uint32_t), dfd_chan0);
if ((is_xuastc_ldr) || (is_astc_ldr))
{
uint32_t texelBlockDimensions = basisu::read_le_dword(dfd.data() + 4 * sizeof(uint32_t));
texelBlockDimensions &= ~0xFFFF;
texelBlockDimensions |= ((m_fmt_mode_block_width - 1) | ((m_fmt_mode_block_height - 1) << 8));
basisu::write_le_dword(dfd.data() + 4 * sizeof(uint32_t), texelBlockDimensions);
}
return true;
}
bool basis_compressor::create_ktx2_file()
{
bool can_use_zstd = false;
bool is_xuastc_ldr = false;
bool is_astc_ldr = false;
bool is_hdr_6x6i = false;
bool is_xubc7 = false;
switch (m_fmt_mode)
{
case basist::basis_tex_format::cETC1S:
{
break;
}
case basist::basis_tex_format::cUASTC_LDR_4x4:
{
can_use_zstd = true;
break;
}
case basist::basis_tex_format::cUASTC_HDR_4x4:
{
can_use_zstd = true;
break;
}
case basist::basis_tex_format::cASTC_HDR_6x6:
{
can_use_zstd = true;
break;
}
case basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE:
{
is_hdr_6x6i = true;
break;
}
case basist::basis_tex_format::cXUASTC_LDR_4x4:
case basist::basis_tex_format::cXUASTC_LDR_5x4:
case basist::basis_tex_format::cXUASTC_LDR_5x5:
case basist::basis_tex_format::cXUASTC_LDR_6x5:
case basist::basis_tex_format::cXUASTC_LDR_6x6:
case basist::basis_tex_format::cXUASTC_LDR_8x5:
case basist::basis_tex_format::cXUASTC_LDR_8x6:
case basist::basis_tex_format::cXUASTC_LDR_10x5:
case basist::basis_tex_format::cXUASTC_LDR_10x6:
case basist::basis_tex_format::cXUASTC_LDR_8x8:
case basist::basis_tex_format::cXUASTC_LDR_10x8:
case basist::basis_tex_format::cXUASTC_LDR_10x10:
case basist::basis_tex_format::cXUASTC_LDR_12x10:
case basist::basis_tex_format::cXUASTC_LDR_12x12:
{
is_xuastc_ldr = true;
break;
}
case basist::basis_tex_format::cASTC_LDR_4x4:
case basist::basis_tex_format::cASTC_LDR_5x4:
case basist::basis_tex_format::cASTC_LDR_5x5:
case basist::basis_tex_format::cASTC_LDR_6x5:
case basist::basis_tex_format::cASTC_LDR_6x6:
case basist::basis_tex_format::cASTC_LDR_8x5:
case basist::basis_tex_format::cASTC_LDR_8x6:
case basist::basis_tex_format::cASTC_LDR_10x5:
case basist::basis_tex_format::cASTC_LDR_10x6:
case basist::basis_tex_format::cASTC_LDR_8x8:
case basist::basis_tex_format::cASTC_LDR_10x8:
case basist::basis_tex_format::cASTC_LDR_10x10:
case basist::basis_tex_format::cASTC_LDR_12x10:
case basist::basis_tex_format::cASTC_LDR_12x12:
{
is_astc_ldr = true;
can_use_zstd = true;
break;
}
case basist::basis_tex_format::cXUBC7:
{
is_xubc7 = true;
break;
}
default:
assert(0);
return false;
}
if (can_use_zstd)
{
if ((m_params.m_ktx2_uastc_supercompression != basist::KTX2_SS_NONE) && (m_params.m_ktx2_uastc_supercompression != basist::KTX2_SS_ZSTANDARD))
{
return false;
}
}
const basisu_backend_output& backend_output = m_backend.get_output();
uint32_t base_width = 0, base_height = 0, total_layers = 0, total_levels = 0, total_faces = 1;
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
if ((m_slice_descs[i].m_mip_index == 0) && (!base_width))
{
base_width = m_slice_descs[i].m_orig_width;
base_height = m_slice_descs[i].m_orig_height;
}
total_layers = maximum<uint32_t>(total_layers, m_slice_descs[i].m_source_file_index + 1);
if (!m_slice_descs[i].m_source_file_index)
total_levels = maximum<uint32_t>(total_levels, m_slice_descs[i].m_mip_index + 1);
}
if (m_params.m_tex_type == basist::cBASISTexTypeCubemapArray)
{
assert((total_layers % 6) == 0);
total_layers /= 6;
assert(total_layers >= 1);
total_faces = 6;
}
basist::ktx2_header header;
memset((void *)&header, 0, sizeof(header));
memcpy(header.m_identifier, basist::g_ktx2_file_identifier, sizeof(basist::g_ktx2_file_identifier));
header.m_pixel_width = base_width;
header.m_pixel_height = base_height;
header.m_face_count = total_faces;
if (m_params.m_hdr)
{
if (m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_4X4)
header.m_vk_format = basist::KTX2_FORMAT_ASTC_4x4_SFLOAT_BLOCK;
else if (m_params.m_hdr_mode == hdr_modes::cASTC_HDR_6X6)
header.m_vk_format = basist::KTX2_FORMAT_ASTC_6x6_SFLOAT_BLOCK;
else
{
assert(m_params.m_hdr_mode == hdr_modes::cUASTC_HDR_6X6_INTERMEDIATE);
header.m_vk_format = basist::KTX2_VK_FORMAT_UNDEFINED;
}
}
else
{
assert((m_fmt_mode == basist::basis_tex_format::cETC1S) || (m_fmt_mode == basist::basis_tex_format::cUASTC_LDR_4x4) || is_xuastc_ldr || is_astc_ldr || is_xubc7);
if (is_astc_ldr)
{
uint32_t fmt = 0;
assert((basist::KTX2_FORMAT_ASTC_4x4_UNORM_BLOCK + 1) == basist::KTX2_FORMAT_ASTC_4x4_SRGB_BLOCK);
switch (m_fmt_mode)
{
case basist::basis_tex_format::cASTC_LDR_4x4: fmt = basist::KTX2_FORMAT_ASTC_4x4_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_5x4: fmt = basist::KTX2_FORMAT_ASTC_5x4_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_5x5: fmt = basist::KTX2_FORMAT_ASTC_5x5_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_6x5: fmt = basist::KTX2_FORMAT_ASTC_6x5_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_6x6: fmt = basist::KTX2_FORMAT_ASTC_6x6_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_8x5: fmt = basist::KTX2_FORMAT_ASTC_8x5_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_8x6: fmt = basist::KTX2_FORMAT_ASTC_8x6_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_10x5: fmt = basist::KTX2_FORMAT_ASTC_10x5_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_10x6: fmt = basist::KTX2_FORMAT_ASTC_10x6_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_8x8: fmt = basist::KTX2_FORMAT_ASTC_8x8_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_10x8: fmt = basist::KTX2_FORMAT_ASTC_10x8_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_10x10: fmt = basist::KTX2_FORMAT_ASTC_10x10_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_12x10: fmt = basist::KTX2_FORMAT_ASTC_12x10_UNORM_BLOCK; break;
case basist::basis_tex_format::cASTC_LDR_12x12: fmt = basist::KTX2_FORMAT_ASTC_12x12_UNORM_BLOCK; break;
default:
assert(0);
return false;
}
assert(fmt);
header.m_vk_format = fmt + (m_params.m_ktx2_and_basis_srgb_transfer_function ? 1 : 0);
}
else
{
header.m_vk_format = basist::KTX2_VK_FORMAT_UNDEFINED;
}
}
header.m_type_size = 1;
header.m_level_count = total_levels;
header.m_layer_count = (total_layers > 1) ? total_layers : 0;
if (can_use_zstd)
{
switch (m_params.m_ktx2_uastc_supercompression)
{
case basist::KTX2_SS_NONE:
{
header.m_supercompression_scheme = basist::KTX2_SS_NONE;
break;
}
case basist::KTX2_SS_ZSTANDARD:
{
#if BASISD_SUPPORT_KTX2_ZSTD
header.m_supercompression_scheme = basist::KTX2_SS_ZSTANDARD;
#else
header.m_supercompression_scheme = basist::KTX2_SS_NONE;
#endif
break;
}
default:
assert(0);
return false;
}
}
basisu::vector<uint8_vec> level_data_bytes(total_levels);
basisu::vector<uint8_vec> compressed_level_data_bytes(total_levels);
size_t_vec slice_level_offsets(m_slice_descs.size());
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
const basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
slice_level_offsets[slice_index] = level_data_bytes[slice_desc.m_mip_index].size();
if (m_fmt_mode == basist::basis_tex_format::cETC1S)
{
append_vector(level_data_bytes[slice_desc.m_mip_index], backend_output.m_slice_image_data[slice_index]);
}
else
{
append_vector(level_data_bytes[slice_desc.m_mip_index], m_uastc_backend_output.m_slice_image_data[slice_index]);
}
}
if ((can_use_zstd) && (header.m_supercompression_scheme == basist::KTX2_SS_ZSTANDARD))
{
#if BASISD_SUPPORT_KTX2_ZSTD
for (uint32_t level_index = 0; level_index < total_levels; level_index++)
{
compressed_level_data_bytes[level_index].resize(ZSTD_compressBound(level_data_bytes[level_index].size()));
size_t result = ZSTD_compress(compressed_level_data_bytes[level_index].data(), compressed_level_data_bytes[level_index].size(),
level_data_bytes[level_index].data(), level_data_bytes[level_index].size(),
m_params.m_ktx2_zstd_supercompression_level);
if (ZSTD_isError(result))
{
return false;
}
compressed_level_data_bytes[level_index].resize(result);
}
#else
assert(0);
return false;
#endif
}
else
{
compressed_level_data_bytes = level_data_bytes;
}
uint8_vec ktx2_global_data;
if (m_fmt_mode == basist::basis_tex_format::cETC1S)
{
basist::ktx2_etc1s_global_data_header etc1s_global_data_header;
clear_obj(etc1s_global_data_header);
etc1s_global_data_header.m_endpoint_count = backend_output.m_num_endpoints;
etc1s_global_data_header.m_selector_count = backend_output.m_num_selectors;
etc1s_global_data_header.m_endpoints_byte_length = backend_output.m_endpoint_palette.size();
etc1s_global_data_header.m_selectors_byte_length = backend_output.m_selector_palette.size();
etc1s_global_data_header.m_tables_byte_length = backend_output.m_slice_image_tables.size();
basisu::vector<basist::ktx2_etc1s_image_desc> etc1s_image_descs(total_levels * total_layers * total_faces);
memset((void *)etc1s_image_descs.data(), 0, etc1s_image_descs.size_in_bytes());
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
const basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
const uint32_t level_index = slice_desc.m_mip_index;
uint32_t layer_index = slice_desc.m_source_file_index;
uint32_t face_index = 0;
if (m_params.m_tex_type == basist::cBASISTexTypeCubemapArray)
{
face_index = layer_index % 6;
layer_index /= 6;
}
const uint32_t etc1s_image_index = level_index * (total_layers * total_faces) + layer_index * total_faces + face_index;
if (slice_desc.m_alpha)
{
etc1s_image_descs[etc1s_image_index].m_alpha_slice_byte_length = backend_output.m_slice_image_data[slice_index].size();
etc1s_image_descs[etc1s_image_index].m_alpha_slice_byte_offset = slice_level_offsets[slice_index];
}
else
{
if (m_params.m_tex_type == basist::cBASISTexTypeVideoFrames)
etc1s_image_descs[etc1s_image_index].m_image_flags = !slice_desc.m_iframe ? basist::KTX2_IMAGE_IS_P_FRAME : 0;
etc1s_image_descs[etc1s_image_index].m_rgb_slice_byte_length = backend_output.m_slice_image_data[slice_index].size();
etc1s_image_descs[etc1s_image_index].m_rgb_slice_byte_offset = slice_level_offsets[slice_index];
}
}
append_vector(ktx2_global_data, (const uint8_t*)&etc1s_global_data_header, sizeof(etc1s_global_data_header));
append_vector(ktx2_global_data, (const uint8_t*)etc1s_image_descs.data(), etc1s_image_descs.size_in_bytes());
append_vector(ktx2_global_data, backend_output.m_endpoint_palette);
append_vector(ktx2_global_data, backend_output.m_selector_palette);
append_vector(ktx2_global_data, backend_output.m_slice_image_tables);
header.m_supercompression_scheme = basist::KTX2_SS_BASISLZ;
}
else if ((is_hdr_6x6i) || (is_xuastc_ldr) || (is_xubc7))
{
basisu::vector<basist::ktx2_slice_offset_len_desc_std> slice_offset_len_descs(total_levels * total_layers * total_faces);
memset((void *)slice_offset_len_descs.data(), 0, slice_offset_len_descs.size_in_bytes());
for (uint32_t slice_index = 0; slice_index < m_slice_descs.size(); slice_index++)
{
const basisu_backend_slice_desc& slice_desc = m_slice_descs[slice_index];
const uint32_t level_index = slice_desc.m_mip_index;
uint32_t layer_index = slice_desc.m_source_file_index;
uint32_t face_index = 0;
if (m_params.m_tex_type == basist::cBASISTexTypeCubemapArray)
{
face_index = layer_index % 6;
layer_index /= 6;
}
const uint32_t output_image_index = level_index * (total_layers * total_faces) + layer_index * total_faces + face_index;
slice_offset_len_descs[output_image_index].m_slice_byte_length = m_uastc_backend_output.m_slice_image_data[slice_index].size();
slice_offset_len_descs[output_image_index].m_slice_byte_offset = slice_level_offsets[slice_index];
uint32_t profile = 0;
if (is_hdr_6x6i)
{
assert(m_uastc_backend_output.m_slice_image_data[slice_index].size() >= 2);
if (m_uastc_backend_output.m_slice_image_data[slice_index].size() >= 2)
{
profile = m_uastc_backend_output.m_slice_image_data[slice_index][0] | (m_uastc_backend_output.m_slice_image_data[slice_index][1] << 8);
}
}
else if (is_xubc7)
{
assert(m_uastc_backend_output.m_slice_image_data[slice_index].size() >= 1);
if (m_uastc_backend_output.m_slice_image_data[slice_index].size() >= 1)
{
profile = m_uastc_backend_output.m_slice_image_data[slice_index][0] | (0x01 << 8);
}
}
else
{
assert(is_xuastc_ldr );
assert(m_uastc_backend_output.m_slice_image_data[slice_index].size() >= 1);
if (m_uastc_backend_output.m_slice_image_data[slice_index].size() >= 1)
{
profile = m_uastc_backend_output.m_slice_image_data[slice_index][0] | (0x01 << 8);
}
}
slice_offset_len_descs[output_image_index].m_profile = profile;
}
append_vector(ktx2_global_data, (const uint8_t*)slice_offset_len_descs.data(), slice_offset_len_descs.size_in_bytes());
header.m_supercompression_scheme = is_hdr_6x6i ? basist::KTX2_SS_UASTC_HDR_6x6I : (is_xubc7 ? basist::KTX2_SS_XUBC7 : basist::KTX2_SS_XUASTC_LDR);
}
basist::key_value_vec key_values(m_params.m_key_values);
basist::add_key_value(key_values, "KTXwriter", fmt_string("Basis Universal {}", BASISU_LIB_VERSION_STRING));
if (m_params.m_hdr)
{
if (m_upconverted_any_ldr_images)
{
basist::add_key_value(key_values, "LDRUpconversionMultiplier", fmt_string("{}", m_ldr_to_hdr_upconversion_nit_multiplier));
if (m_params.m_ldr_hdr_upconversion_srgb_to_linear)
basist::add_key_value(key_values, "LDRUpconversionSRGBToLinear", "1");
}
{
struct ktx_map_range
{
packed_uint<4> m_scale;
packed_uint<4> m_offset;
};
ktx_map_range val;
val.m_scale = *reinterpret_cast<const uint32_t *>(&m_hdr_image_scale);
val.m_offset = 0;
auto* pNew_key = key_values.enlarge(1);
const char* pKey_name = "KTXmapRange";
size_t key_name_len = strlen(pKey_name) + 1;
pNew_key->m_key.resize(key_name_len);
memcpy(pNew_key->m_key.data(), pKey_name, key_name_len);
pNew_key->m_value.resize(sizeof(val));
memcpy(pNew_key->m_value.data(), &val, sizeof(val));
}
}
key_values.sort();
#if BASISU_DISABLE_KTX2_KEY_VALUES
key_values.clear();
#endif
uint8_vec key_value_data;
uint8_vec dfd;
if (!get_dfd(dfd, header))
{
return false;
}
const uint32_t kvd_file_offset = sizeof(header) + sizeof(basist::ktx2_level_index) * total_levels + (uint32_t)dfd.size();
for (uint32_t pass = 0; pass < 2; pass++)
{
for (uint32_t i = 0; i < key_values.size(); i++)
{
if (key_values[i].m_key.size() < 2)
{
return false;
}
if (key_values[i].m_key.back() != 0)
{
return false;
}
const uint64_t total_len = (uint64_t)key_values[i].m_key.size() + (uint64_t)key_values[i].m_value.size();
if (total_len >= UINT32_MAX)
{
return false;
}
packed_uint<4> le_len((uint32_t)total_len);
append_vector(key_value_data, (const uint8_t*)&le_len, sizeof(le_len));
append_vector(key_value_data, key_values[i].m_key);
append_vector(key_value_data, key_values[i].m_value);
const uint32_t ofs = key_value_data.size() & 3;
const uint32_t padding = (4 - ofs) & 3;
for (uint32_t p = 0; p < padding; p++)
key_value_data.push_back(0);
}
if (header.m_supercompression_scheme != basist::KTX2_SS_NONE)
break;
#if BASISU_DISABLE_KTX2_ALIGNMENT_WORKAROUND
break;
#endif
uint32_t kvd_end_file_offset = kvd_file_offset + (uint32_t)key_value_data.size();
uint32_t bytes_needed_to_pad = (16 - (kvd_end_file_offset & 15)) & 15;
if (!bytes_needed_to_pad)
{
break;
}
assert(!pass);
if (pass)
{
return false;
}
if (bytes_needed_to_pad < 6)
bytes_needed_to_pad += 16;
key_values.enlarge(1);
for (uint32_t i = 0; i < (bytes_needed_to_pad - 4 - 1 - 1); i++)
key_values.back().m_key.push_back(127);
key_values.back().m_key.push_back(0);
key_values.back().m_value.push_back(0);
key_values.sort();
key_value_data.resize(0);
}
basisu::vector<basist::ktx2_level_index> level_index_array(total_levels);
memset((void *)level_index_array.data(), 0, level_index_array.size_in_bytes());
m_output_ktx2_file.clear();
m_output_ktx2_file.reserve(m_output_basis_file.size());
m_output_ktx2_file.resize(sizeof(header));
append_vector(m_output_ktx2_file, (const uint8_t*)level_index_array.data(), level_index_array.size_in_bytes());
const uint8_t* pDFD = dfd.data();
uint32_t dfd_len = (uint32_t)dfd.size();
header.m_dfd_byte_offset = m_output_ktx2_file.size();
header.m_dfd_byte_length = dfd_len;
append_vector(m_output_ktx2_file, pDFD, dfd_len);
if (key_value_data.size())
{
assert(kvd_file_offset == m_output_ktx2_file.size());
header.m_kvd_byte_offset = m_output_ktx2_file.size();
header.m_kvd_byte_length = key_value_data.size();
append_vector(m_output_ktx2_file, key_value_data);
}
if (ktx2_global_data.size())
{
uint32_t ofs = m_output_ktx2_file.size() & 7;
uint32_t padding = (8 - ofs) & 7;
for (uint32_t i = 0; i < padding; i++)
m_output_ktx2_file.push_back(0);
header.m_sgd_byte_length = ktx2_global_data.size();
header.m_sgd_byte_offset = m_output_ktx2_file.size();
append_vector(m_output_ktx2_file, ktx2_global_data);
}
if (header.m_supercompression_scheme == basist::KTX2_SS_NONE)
{
uint32_t ofs = m_output_ktx2_file.size() & 15;
uint32_t padding = (16 - ofs) & 15;
if (padding)
{
printf("Warning: KTX2 mip level data is not 16-byte aligned. This may trigger a ktx2check validation bug. Writing %u bytes of mipPadding.\n", padding);
}
for (uint32_t i = 0; i < padding; i++)
m_output_ktx2_file.push_back(0);
}
for (int level = total_levels - 1; level >= 0; level--)
{
level_index_array[level].m_byte_length = compressed_level_data_bytes[level].size();
if (can_use_zstd)
{
level_index_array[level].m_uncompressed_byte_length = level_data_bytes[level].size();
}
level_index_array[level].m_byte_offset = m_output_ktx2_file.size();
append_vector(m_output_ktx2_file, compressed_level_data_bytes[level]);
}
memcpy(m_output_ktx2_file.data(), &header, sizeof(header));
memcpy(m_output_ktx2_file.data() + sizeof(header), level_index_array.data(), level_index_array.size_in_bytes());
uint32_t total_orig_pixels = 0;
for (uint32_t i = 0; i < m_slice_descs.size(); i++)
{
const basisu_backend_slice_desc& slice_desc = m_slice_descs[i];
total_orig_pixels += slice_desc.m_orig_width * slice_desc.m_orig_height;
}
m_ktx2_file_size = m_output_ktx2_file.size();
m_ktx2_bits_per_texel = total_orig_pixels ? (m_ktx2_file_size * 8.0f) / total_orig_pixels : 0;
fmt_debug_printf("Total .ktx2 output file size: {}, {3.3} bits/texel\n", m_ktx2_file_size, m_ktx2_bits_per_texel);
return true;
}
bool basis_parallel_compress(
uint32_t total_threads,
const basisu::vector<basis_compressor_params>& params_vec,
basisu::vector< parallel_results >& results_vec)
{
assert(g_library_initialized);
if (!g_library_initialized)
{
error_printf("basis_parallel_compress: basisu_encoder_init() MUST be called before using any encoder functionality!\n");
return false;
}
assert(total_threads >= 1);
total_threads = basisu::maximum<uint32_t>(total_threads, 1);
job_pool jpool(total_threads);
results_vec.resize(0);
results_vec.resize(params_vec.size());
std::atomic<bool> result;
result.store(true);
std::atomic<bool> opencl_failed;
opencl_failed.store(false);
for (uint32_t pindex = 0; pindex < params_vec.size(); pindex++)
{
jpool.add_job([pindex, ¶ms_vec, &results_vec, &result, &opencl_failed] {
basis_compressor_params params = params_vec[pindex];
parallel_results& results = results_vec[pindex];
interval_timer tm;
tm.start();
basis_compressor c;
job_pool task_jpool(1);
params.m_pJob_pool = &task_jpool;
params.m_multithreading = true;
if (opencl_failed)
params.m_use_opencl = false;
bool status = c.init(params);
if (c.get_opencl_failed())
opencl_failed.store(true);
if (status)
{
basis_compressor::error_code ec = c.process();
if (c.get_opencl_failed())
opencl_failed.store(true);
results.m_error_code = ec;
if (ec == basis_compressor::cECSuccess)
{
results.m_basis_file = c.get_output_basis_file();
results.m_ktx2_file = c.get_output_ktx2_file();
results.m_stats = c.get_stats();
results.m_basis_bits_per_texel = c.get_basis_bits_per_texel();
results.m_any_source_image_has_alpha = c.get_any_source_image_has_alpha();
}
else
{
result = false;
}
}
else
{
results.m_error_code = basis_compressor::cECFailedInitializing;
result = false;
}
results.m_total_time = tm.get_elapsed_secs();
} );
}
jpool.wait_for_all();
if (opencl_failed)
error_printf("An OpenCL error occured sometime during compression. The compressor fell back to CPU processing after the failure.\n");
return result;
}
void* basis_compress_internal(
basist::basis_tex_format mode,
const basisu::vector<image>* pSource_images,
const basisu::vector<imagef>* pSource_images_hdr,
uint32_t flags_and_quality, float uastc_rdo_or_dct_quality,
size_t* pSize,
image_stats* pStats,
int quality_level, int effort_level)
{
assert((pSource_images != nullptr) || (pSource_images_hdr != nullptr));
assert(!((pSource_images != nullptr) && (pSource_images_hdr != nullptr)));
if ((quality_level != -1) && (uastc_rdo_or_dct_quality != 0.0f))
{
fmt_debug_printf("basis_compress_internal: quality_level is not -1, but uastc_rdo_or_dct_quality isn't 0!\n");
uastc_rdo_or_dct_quality = 0.0f;
}
if (!pSize)
{
error_printf("basis_compress: Need pSize parameter!\n");
assert(0);
return nullptr;
}
if ( ((pSource_images) && (pSource_images->size() != 0)) &&
((pSource_images_hdr) && (pSource_images_hdr->size() != 0))
)
{
error_printf("basis_compress: Can't provide both LDR and HDR source images!\n");
assert(0);
return nullptr;
}
if (pSource_images)
{
if (!pSource_images->size())
{
error_printf("basis_compress: No source LDR images\n");
assert(0);
return nullptr;
}
}
else
{
if (!pSource_images_hdr->size())
{
error_printf("basis_compress: No source HDR images\n");
assert(0);
return nullptr;
}
}
*pSize = 0;
uint32_t num_threads = 1;
if (flags_and_quality & cFlagThreaded)
num_threads = basisu::maximum<uint32_t>(1, get_num_hardware_threads());
job_pool jp(num_threads);
basis_compressor_params comp_params;
comp_params.set_format_mode(mode);
comp_params.m_pJob_pool = &jp;
comp_params.m_y_flip = (flags_and_quality & cFlagYFlip) != 0;
comp_params.m_debug = (flags_and_quality & cFlagDebug) != 0;
comp_params.m_debug_images = (flags_and_quality & cFlagDebugImages) != 0;
comp_params.m_tex_type = (basist::basis_texture_type)((flags_and_quality >> cFlagTextureTypeShift) & cFlagTextureTypeMask);
if (comp_params.m_tex_type != basist::basis_texture_type::cBASISTexType2D)
{
if (pSource_images)
{
for (uint32_t i = 0; i < pSource_images->size(); i++)
comp_params.m_source_images.push_back((*pSource_images)[i]);
}
else
{
for (uint32_t i = 0; i < pSource_images_hdr->size(); i++)
comp_params.m_source_images_hdr.push_back((*pSource_images_hdr)[i]);
}
}
else
{
if (pSource_images)
{
comp_params.m_source_images.resize(1);
comp_params.m_source_images[0] = (*pSource_images)[0];
if (pSource_images->size() > 1)
{
comp_params.m_source_mipmap_images.resize(1);
comp_params.m_source_mipmap_images[0].resize(pSource_images->size() - 1);
for (uint32_t i = 1; i < pSource_images->size(); i++)
comp_params.m_source_mipmap_images[0][i - 1] = (*pSource_images)[i];
}
}
else
{
comp_params.m_source_images_hdr.resize(1);
comp_params.m_source_images_hdr[0] = (*pSource_images_hdr)[0];
if (pSource_images_hdr->size() > 1)
{
comp_params.m_source_mipmap_images_hdr.resize(1);
comp_params.m_source_mipmap_images_hdr[0].resize(pSource_images_hdr->size() - 1);
for (uint32_t i = 1; i < pSource_images->size(); i++)
comp_params.m_source_mipmap_images_hdr[0][i - 1] = (*pSource_images_hdr)[i];
}
}
}
comp_params.m_multithreading = (flags_and_quality & cFlagThreaded) != 0;
comp_params.m_use_opencl = (flags_and_quality & cFlagUseOpenCL) != 0;
comp_params.m_write_output_basis_or_ktx2_files = false;
const bool srgb_flag = (flags_and_quality & cFlagSRGB) != 0;
comp_params.m_perceptual = srgb_flag;
comp_params.m_ktx2_and_basis_srgb_transfer_function = srgb_flag;
comp_params.m_mip_srgb = srgb_flag;
comp_params.set_ldr_srgb_channel_weights(srgb_flag);
comp_params.m_mip_gen = (flags_and_quality & (cFlagGenMipsWrap | cFlagGenMipsClamp)) != 0;
comp_params.m_mip_wrapping = (flags_and_quality & cFlagGenMipsWrap) != 0;
if (mode == basist::basis_tex_format::cUASTC_LDR_4x4)
{
comp_params.m_pack_uastc_ldr_4x4_flags = flags_and_quality & cPackUASTCLevelMask;
if (uastc_rdo_or_dct_quality > 0.0f)
{
comp_params.m_rdo_uastc_ldr_4x4 = true;
comp_params.m_rdo_uastc_ldr_4x4_quality_scalar = uastc_rdo_or_dct_quality;
}
}
else if (mode == basist::basis_tex_format::cETC1S)
{
comp_params.m_quality_level = basisu::maximum<uint32_t>(1, flags_and_quality & 255);
}
else if (basist::basis_tex_format_is_xuastc_ldr(mode) || basist::basis_tex_format_is_astc_ldr(mode))
{
comp_params.m_xuastc_ldr_effort_level = flags_and_quality & 255;
if (basist::basis_tex_format_is_xuastc_ldr(mode) && (uastc_rdo_or_dct_quality != 0.0f))
{
if ((uastc_rdo_or_dct_quality >= (float)BASISU_XUASTC_QUALITY_MIN) && (uastc_rdo_or_dct_quality <= (float)BASISU_XUASTC_QUALITY_MAX))
{
if (uastc_rdo_or_dct_quality < (float)BASISU_XUASTC_QUALITY_MAX)
{
comp_params.m_xuastc_ldr_use_dct = true;
comp_params.m_quality_level = (int)uastc_rdo_or_dct_quality;
comp_params.m_xuastc_ldr_use_lossy_supercompression = true;
}
}
else
{
assert(0);
return nullptr;
}
}
if (basist::basis_tex_format_is_xuastc_ldr(mode))
{
comp_params.m_xuastc_ldr_syntax = (flags_and_quality >> cFlagXUASTCLDRSyntaxShift) & cFlagXUASTCLDRSyntaxMask;
if (comp_params.m_xuastc_ldr_syntax >= (int)basist::astc_ldr_t::xuastc_ldr_syntax::cTotal)
{
error_printf("basis_compress: basis_compressor::init() failed - invalid XUASTC LDR syntax\n");
return nullptr;
}
}
}
else if (basist::basis_tex_format_is_xubc7(mode))
{
comp_params.m_xubc7_effort_level = clamp<int>(flags_and_quality & 255, 0, 10);
if (uastc_rdo_or_dct_quality != 0.0f)
{
int quality = clamp<int>((int)std::round(uastc_rdo_or_dct_quality), 1, 100);
comp_params.m_quality_level = quality;
}
const uint32_t xubc7_base_enc = (flags_and_quality >> cFlagXUBC7BaseEncoderShift) & cFlagXUBC7BaseEncoderMask;
if (xubc7_base_enc == 0)
{
comp_params.m_xubc7_encoder = (int)xbc7::bc7_encoder_type::cBC7F;
}
else
{
comp_params.m_xubc7_encoder = (int)xbc7::bc7_encoder_type::cBC7E_Scalar;
comp_params.m_xubc7_bc7e_scalar_level = clamp<int>((int)xubc7_base_enc - 1, (int)xbc7::BC7E_SCALAR_MIN_LEVEL, (int)xbc7::BC7E_SCALAR_MAX_LEVEL);
}
}
comp_params.m_create_ktx2_file = (flags_and_quality & cFlagKTX2) != 0;
if (comp_params.m_create_ktx2_file)
{
if ((flags_and_quality & cFlagKTX2UASTCSuperCompression) && (comp_params.m_uastc))
comp_params.m_ktx2_uastc_supercompression = basist::KTX2_SS_ZSTANDARD;
}
comp_params.m_compute_stats = (pStats != nullptr);
if (comp_params.m_compute_stats)
comp_params.m_psnr_hvs_m_stats = true;
comp_params.m_print_stats = (flags_and_quality & cFlagPrintStats) != 0;
comp_params.m_status_output = (flags_and_quality & cFlagPrintStatus) != 0;
if (mode == basist::basis_tex_format::cUASTC_HDR_4x4)
{
comp_params.m_uastc_hdr_4x4_options.set_quality_level(flags_and_quality & cPackUASTCLevelMask);
}
else if ((mode == basist::basis_tex_format::cASTC_HDR_6x6) || (mode == basist::basis_tex_format::cUASTC_HDR_6x6_INTERMEDIATE))
{
comp_params.m_astc_hdr_6x6_options.set_user_level(flags_and_quality & cPackUASTCLevelMask);
comp_params.m_astc_hdr_6x6_options.m_lambda = uastc_rdo_or_dct_quality;
}
comp_params.m_astc_hdr_6x6_options.m_rec2020_bt2100_color_gamut = (flags_and_quality & cFlagREC2020) != 0;
comp_params.m_validate_output_data = (flags_and_quality & cFlagValidateOutput) != 0;
if (flags_and_quality & cFlagDisableDeblocking)
comp_params.m_xuastc_ldr_deblocking_mode = (int)xuastc_ldr_deblocking_mode::cDisabled;
else if (flags_and_quality & cFlagForceDeblocking)
comp_params.m_xuastc_ldr_deblocking_mode = (int)xuastc_ldr_deblocking_mode::cUseSCDAndFilteringAllBlockSizes;
if ((quality_level != -1) || (effort_level != -1))
{
comp_params.set_format_mode_and_quality_effort(mode, quality_level, effort_level, false);
}
basis_compressor comp;
if (!comp.init(comp_params))
{
error_printf("basis_compress: basis_compressor::init() failed!\n");
return nullptr;
}
basis_compressor::error_code ec = comp.process();
if (ec != basis_compressor::cECSuccess)
{
error_printf("basis_compress: basis_compressor::process() failed with error code %u\n", (uint32_t)ec);
return nullptr;
}
if ((pStats) && (comp.get_opencl_failed()))
{
pStats->m_opencl_failed = true;
}
void* pFile_data = nullptr;
const uint8_vec* pFile_data_vec = comp_params.m_create_ktx2_file ? &comp.get_output_ktx2_file() : &comp.get_output_basis_file();
pFile_data = malloc(pFile_data_vec->size());
if (!pFile_data)
{
error_printf("basis_compress: Out of memory\n");
return nullptr;
}
memcpy(pFile_data, pFile_data_vec->get_ptr(), pFile_data_vec->size());
*pSize = pFile_data_vec->size();
if ((pStats) && (comp.get_stats().size()))
{
*pStats = comp.get_stats()[0];
}
return pFile_data;
}
void* basis_compress(
basist::basis_tex_format mode,
const basisu::vector<image>& source_images,
uint32_t flags_and_quality, float uastc_rdo_or_dct_quality,
size_t* pSize,
image_stats* pStats)
{
return basis_compress_internal(mode, &source_images, nullptr, flags_and_quality, uastc_rdo_or_dct_quality, pSize, pStats, -1, -1);
}
void* basis_compress2(
basist::basis_tex_format mode,
const basisu::vector<image>& source_images,
uint32_t flags_and_quality, int quality_level, int effort_level,
size_t* pSize,
image_stats* pStats)
{
return basis_compress_internal(mode, &source_images, nullptr, flags_and_quality, 0.0f, pSize, pStats, quality_level, effort_level);
}
void* basis_compress(
basist::basis_tex_format mode,
const basisu::vector<imagef>& source_images_hdr,
uint32_t flags_and_quality, float uastc_rdo_or_dct_quality,
size_t* pSize,
image_stats* pStats)
{
return basis_compress_internal(mode, nullptr, &source_images_hdr, flags_and_quality, uastc_rdo_or_dct_quality, pSize, pStats, -1, -1);
}
void* basis_compress2(
basist::basis_tex_format mode,
const basisu::vector<imagef>& source_images_hdr,
uint32_t flags_and_quality, int quality_level, int effort_level,
size_t* pSize,
image_stats* pStats)
{
return basis_compress_internal(mode, nullptr, &source_images_hdr, flags_and_quality, 0.0f, pSize, pStats, quality_level, effort_level);
}
void* basis_compress(
basist::basis_tex_format mode,
const uint8_t* pImageRGBA, uint32_t width, uint32_t height, uint32_t pitch_in_pixels,
uint32_t flags_and_quality, float uastc_rdo_or_dct_quality,
size_t* pSize,
image_stats* pStats)
{
if (!pitch_in_pixels)
pitch_in_pixels = width;
if ((!pImageRGBA) || (!width) || (!height) || (pitch_in_pixels < width) || (!pSize))
{
error_printf("basis_compress: Invalid parameter\n");
assert(0);
return nullptr;
}
*pSize = 0;
if ((width > basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION) || (height > basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION))
{
error_printf("basis_compress: Image too large\n");
return nullptr;
}
basisu::vector<image> source_image(1);
source_image[0].crop(width, height, width, g_black_color, false);
for (uint32_t y = 0; y < height; y++)
memcpy(source_image[0].get_ptr() + y * width, (const color_rgba*)pImageRGBA + y * pitch_in_pixels, width * sizeof(color_rgba));
return basis_compress(mode, source_image, flags_and_quality, uastc_rdo_or_dct_quality, pSize, pStats);
}
void* basis_compress2(
basist::basis_tex_format mode,
const uint8_t* pImageRGBA, uint32_t width, uint32_t height, uint32_t pitch_in_pixels,
uint32_t flags_and_quality, int quality_level, int effort_level,
size_t* pSize,
image_stats* pStats)
{
if (!pitch_in_pixels)
pitch_in_pixels = width;
if ((!pImageRGBA) || (!width) || (!height) || (pitch_in_pixels < width) || (!pSize))
{
error_printf("basis_compress: Invalid parameter\n");
assert(0);
return nullptr;
}
*pSize = 0;
if ((width > basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION) || (height > basist::BASISU_MAX_SUPPORTED_TEXTURE_DIMENSION))
{
error_printf("basis_compress: Image too large\n");
return nullptr;
}
basisu::vector<image> source_image(1);
source_image[0].crop(width, height, width, g_black_color, false);
for (uint32_t y = 0; y < height; y++)
memcpy(source_image[0].get_ptr() + y * width, (const color_rgba*)pImageRGBA + y * pitch_in_pixels, width * sizeof(color_rgba));
return basis_compress2(mode, source_image, flags_and_quality, quality_level, effort_level, pSize, pStats);
}
void basis_free_data(void* p)
{
free(p);
}
bool basis_benchmark_etc1s_opencl(bool* pOpenCL_failed)
{
if (pOpenCL_failed)
*pOpenCL_failed = false;
if (!opencl_is_available())
{
error_printf("basis_benchmark_etc1s_opencl: OpenCL support must be enabled first!\n");
return false;
}
const uint32_t W = 1024, H = 1024;
basisu::vector<image> images;
image& img = images.enlarge(1)->resize(W, H);
const uint32_t NUM_RAND_LETTERS = 6000;
rand r;
r.seed(200);
for (uint32_t i = 0; i < NUM_RAND_LETTERS; i++)
{
uint32_t x = r.irand(0, W - 1), y = r.irand(0, H - 1);
uint32_t sx = r.irand(1, 4), sy = r.irand(1, 4);
color_rgba c(r.byte(), r.byte(), r.byte(), 255);
img.debug_text(x, y, sx, sy, c, nullptr, false, "%c", static_cast<char>(r.irand(32, 127)));
}
image_stats stats;
uint32_t flags_and_quality = cFlagSRGB | cFlagThreaded | 255;
size_t comp_size = 0;
double best_cpu_time = 1e+9f, best_gpu_time = 1e+9f;
const uint32_t TIMES_TO_ENCODE = 2;
interval_timer tm;
for (uint32_t i = 0; i < TIMES_TO_ENCODE; i++)
{
tm.start();
void* pComp_data = basis_compress(
basist::basis_tex_format::cETC1S,
images,
flags_and_quality, 1.0f,
&comp_size,
&stats);
double cpu_time = tm.get_elapsed_secs();
if (!pComp_data)
{
error_printf("basis_benchmark_etc1s_opencl: basis_compress() failed (CPU)!\n");
return false;
}
best_cpu_time = minimum(best_cpu_time, cpu_time);
basis_free_data(pComp_data);
}
printf("Best CPU time: %3.3f\n", best_cpu_time);
for (uint32_t i = 0; i < TIMES_TO_ENCODE; i++)
{
tm.start();
void* pComp_data = basis_compress(
basist::basis_tex_format::cETC1S,
images,
flags_and_quality | cFlagUseOpenCL, 1.0f,
&comp_size,
&stats);
if (stats.m_opencl_failed)
{
error_printf("basis_benchmark_etc1s_opencl: OpenCL failed!\n");
basis_free_data(pComp_data);
if (pOpenCL_failed)
*pOpenCL_failed = true;
return false;
}
double gpu_time = tm.get_elapsed_secs();
if (!pComp_data)
{
error_printf("basis_benchmark_etc1s_opencl: basis_compress() failed (GPU)!\n");
return false;
}
best_gpu_time = minimum(best_gpu_time, gpu_time);
basis_free_data(pComp_data);
}
printf("Best GPU time: %3.3f\n", best_gpu_time);
return best_gpu_time < best_cpu_time;
}
}