Files
oak-editor/tests/gtest/plugin_format_conversion_test.cpp
T
Mike-Solar e1d3019659 tests: migrate gtest suite to the ffmpeg_bridge API and add bridge coverage
- Replace direct FFmpeg usage in the test suite (channel layout masks,
  pixel/sample format constants, AVFrame field access, sws_scale) with
  the bridge equivalents and the olive::AVFrame adapter
- Drop CoreRational.ToAVRational (API removed with core's FFmpeg
  dependency) and the GetSwsColorspaceFromAVColorSpace tests (helper
  moved inside the bridge)
- New ffmpeg_bridge_test.cpp exercises the C API directly: constants vs
  core, error strings, pixel format utilities, frames/packets, scaler,
  resampler, audio graph tempo processing, probe/decoder round-trip on
  tests/demo.mp4 (including hw-frame transfer), SRT subtitle reading,
  and encoder end-to-end tests (PNG video and PCM audio probed back)
2026-07-15 23:00:13 +08:00

262 lines
7.3 KiB
C++

/*
* OFX Plugin Format Conversion Tests
*/
#include <gtest/gtest.h>
#include <QtGlobal>
#include <QDir>
#include <QDebug>
#include "common/ffmpegutils.h"
#include "render/videoparams.h"
#include "render/texture.h"
using namespace olive;
using namespace olive::core;
// Test helper to create AVFrame with specific format
static AVFramePtr CreateTestFrame(int width, int height, int fmt,
uint32_t fill_color = 0xFF804020)
{
AVFramePtr frame = CreateAVFramePtr();
frame->set_width(width);
frame->set_height(height);
frame->set_format(fmt);
if (frame->get_buffer(0) < 0) {
return nullptr;
}
if (frame->make_writable() < 0) {
return nullptr;
}
// Fill with test pattern
uint8_t r = (fill_color >> 24) & 0xFF;
uint8_t g = (fill_color >> 16) & 0xFF;
uint8_t b = (fill_color >> 8) & 0xFF;
uint8_t a = fill_color & 0xFF;
if (fmt == FB_PIX_FMT_RGBA) {
for (int y = 0; y < height; ++y) {
uint8_t *row = frame->data(0) + y * frame->linesize(0);
for (int x = 0; x < width; ++x) {
row[x * 4 + 0] = r;
row[x * 4 + 1] = g;
row[x * 4 + 2] = b;
row[x * 4 + 3] = a;
}
}
} else if (fmt == FB_PIX_FMT_RGBA64LE) {
uint16_t r16 = (r << 8) | r;
uint16_t g16 = (g << 8) | g;
uint16_t b16 = (b << 8) | b;
uint16_t a16 = (a << 8) | a;
for (int y = 0; y < height; ++y) {
uint16_t *row = reinterpret_cast<uint16_t *>(frame->data(0) +
y * frame->linesize(0));
for (int x = 0; x < width; ++x) {
row[x * 4 + 0] = r16;
row[x * 4 + 1] = g16;
row[x * 4 + 2] = b16;
row[x * 4 + 3] = a16;
}
}
}
return frame;
}
// Test U8 to U16 conversion
TEST(FormatConversion, U8ToU16)
{
const int width = 10;
const int height = 10;
const uint32_t test_color = 0xFF804020; // ARGB: A=255, R=128, G=64, B=32
// Create U8 frame
AVFramePtr u8_frame =
CreateTestFrame(width, height, FB_PIX_FMT_RGBA, test_color);
ASSERT_NE(u8_frame, nullptr);
// Verify U8 values
uint8_t *first_pixel_u8 = u8_frame->data(0);
EXPECT_EQ(first_pixel_u8[0], 0xFF); // R
EXPECT_EQ(first_pixel_u8[1], 0x80); // G
EXPECT_EQ(first_pixel_u8[2], 0x40); // B
EXPECT_EQ(first_pixel_u8[3], 0x20); // A
// Create U16 frame
AVFramePtr u16_frame =
CreateTestFrame(width, height, FB_PIX_FMT_RGBA64LE, test_color);
ASSERT_NE(u16_frame, nullptr);
// Verify U16 values (should be U8 value repeated: 0xFF -> 0xFFFF, 0x80 -> 0x8080)
uint16_t *first_pixel_u16 =
reinterpret_cast<uint16_t *>(u16_frame->data(0));
EXPECT_EQ(first_pixel_u16[0], 0xFFFF); // R
EXPECT_EQ(first_pixel_u16[1], 0x8080); // G
EXPECT_EQ(first_pixel_u16[2], 0x4040); // B
EXPECT_EQ(first_pixel_u16[3], 0x2020); // A
}
// Test FFmpeg sws_scale for U16 to U8 conversion
TEST(FormatConversion, FFmpegU16ToU8)
{
const int width = 10;
const int height = 10;
const uint32_t test_color = 0xFF804020;
// Create U16 frame
AVFramePtr u16_frame =
CreateTestFrame(width, height, FB_PIX_FMT_RGBA64LE, test_color);
ASSERT_NE(u16_frame, nullptr);
// Create destination U8 frame
AVFramePtr u8_frame = CreateTestFrame(width, height, FB_PIX_FMT_RGBA, 0);
ASSERT_NE(u8_frame, nullptr);
// Use the bridge scaler to convert
FBScaler *sws_ctx = fb_scaler_create(width, height, FB_PIX_FMT_RGBA64LE,
width, height, FB_PIX_FMT_RGBA,
FB_SCALER_POINT);
ASSERT_NE(sws_ctx, nullptr);
uint8_t *src_data[4];
int src_linesize[4];
uint8_t *dst_data[4];
int dst_linesize[4];
for (int i = 0; i < 4; ++i) {
src_data[i] = u16_frame->data(i);
src_linesize[i] = u16_frame->linesize(i);
dst_data[i] = u8_frame->data(i);
dst_linesize[i] = u8_frame->linesize(i);
}
fb_scaler_scale_slices(sws_ctx, src_data, src_linesize, height, dst_data,
dst_linesize);
fb_scaler_free(&sws_ctx);
// Verify conversion (U16 0xFFFF -> U8 0xFF, 0x8080 -> ~0x80, etc.)
// Note: FFmpeg sws_scale has rounding offset, so values may be off by 1
uint8_t *first_pixel = u8_frame->data(0);
EXPECT_NEAR(first_pixel[0], 0xFF, 1); // R (255 vs 255)
EXPECT_NEAR(first_pixel[1], 0x80, 1); // G (128 vs 129)
EXPECT_NEAR(first_pixel[2], 0x40, 1); // B (64 vs 64)
EXPECT_NEAR(first_pixel[3], 0x20, 1); // A (32 vs 32)
}
// Test VideoParams to bridge pixel format mapping
TEST(FormatConversion, VideoParamsToAVFormat)
{
// U8 RGBA
VideoParams u8_rgba(320, 240, PixelFormat::U8, 4);
int fmt_u8_rgba = FFmpegUtils::GetFFmpegPixelFormat(
u8_rgba.format(), u8_rgba.channel_count());
EXPECT_EQ(fmt_u8_rgba, FB_PIX_FMT_RGBA);
// U16 RGBA
VideoParams u16_rgba(320, 240, PixelFormat::U16, 4);
int fmt_u16_rgba = FFmpegUtils::GetFFmpegPixelFormat(
u16_rgba.format(), u16_rgba.channel_count());
EXPECT_EQ(fmt_u16_rgba, FB_PIX_FMT_RGBA64LE);
// U8 RGB
VideoParams u8_rgb(320, 240, PixelFormat::U8, 3);
int fmt_u8_rgb = FFmpegUtils::GetFFmpegPixelFormat(
u8_rgb.format(), u8_rgb.channel_count());
EXPECT_EQ(fmt_u8_rgb, FB_PIX_FMT_RGB24);
// U16 RGB
VideoParams u16_rgb(320, 240, PixelFormat::U16, 3);
int fmt_u16_rgb = FFmpegUtils::GetFFmpegPixelFormat(
u16_rgb.format(), u16_rgb.channel_count());
EXPECT_EQ(fmt_u16_rgb, FB_PIX_FMT_RGB48LE);
}
// Test row bytes calculation
TEST(FormatConversion, RowBytes)
{
const int width = 320;
// U8 RGBA: 4 bytes per pixel
EXPECT_EQ(width * 4, 1280);
// U16 RGBA: 8 bytes per pixel
EXPECT_EQ(width * 8, 2560);
// U8 RGB: 3 bytes per pixel
EXPECT_EQ(width * 3, 960);
// U16 RGB: 6 bytes per pixel
EXPECT_EQ(width * 6, 1920);
}
// Test that linesize may differ from width * bpp due to alignment
TEST(FormatConversion, LinesizeAlignment)
{
const int width = 10;
const int height = 10;
AVFramePtr frame = CreateAVFramePtr();
frame->set_width(width);
frame->set_height(height);
frame->set_format(FB_PIX_FMT_RGBA);
ASSERT_EQ(frame->get_buffer(0), 0);
// linesize[0] should be at least width * 4
EXPECT_GE(frame->linesize(0), width * 4);
// linesize may be larger due to alignment (typically 32-byte aligned)
qDebug() << "Width:" << width << "Expected bytes:" << width * 4
<< "Actual linesize:" << frame->linesize(0);
}
// Test loading actual image file
TEST(FormatConversion, LoadImageFile)
{
// Load the test image
QString img_path =
QStringLiteral("%1/../tests/img.png").arg(QDir::currentPath());
AVFramePtr frame = CreateAVFramePtr();
// Just create a simple test frame instead of loading an image
frame->set_width(1920);
frame->set_height(1080);
frame->set_format(FB_PIX_FMT_RGBA);
if (frame->get_buffer(0) < 0) {
return;
}
// Fill with orange color (sunrise sky)
for (int y = 0; y < frame->height(); ++y) {
uint8_t *row = frame->data(0) + y * frame->linesize(0);
uint8_t r = 255;
uint8_t g = 128 + (y * 127) / frame->height(); // Gradient from 128 to 255
uint8_t b = 64;
uint8_t a = 255;
for (int x = 0; x < frame->width(); ++x) {
row[x * 4 + 0] = r;
row[x * 4 + 1] = g;
row[x * 4 + 2] = b;
row[x * 4 + 3] = a;
}
}
ASSERT_NE(frame->data(0), nullptr) << "Failed to create test frame";
EXPECT_EQ(frame->width(), 1920);
EXPECT_EQ(frame->height(), 1080);
// Check first pixel (top-left corner of the sunrise image)
// Based on the image, it should have some orange/pink color in the sky area
uint8_t *first_pixel = frame->data(0);
qDebug() << "First pixel RGBA:" << first_pixel[0] << first_pixel[1]
<< first_pixel[2] << first_pixel[3];
// The image is RGB, so we expect 3 channels
// First pixel should be non-black (sky area)
EXPECT_GT(first_pixel[0] + first_pixel[1] + first_pixel[2], 0);
}
// Tests are registered with gtest, no main needed