Files
LookingGlass/client/tests/render_test.cpp
2026-07-31 13:13:11 +10:00

566 lines
16 KiB
C++

/**
* Looking Glass
* Copyright © 2017-2026 The Looking Glass Authors
* https://looking-glass.io
*
* This program is free software; you can redistribute it and/or modify it
* under the terms of the GNU General Public License as published by the Free
* Software Foundation; either version 2 of the License, or (at your option)
* any later version.
*
* This program is distributed in the hope that it will be useful, but WITHOUT
* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
* more details.
*
* You should have received a copy of the GNU General Public License along
* with this program; if not, write to the Free Software Foundation, Inc., 59
* Temple Place, Suite 330, Boston, MA 02111-1307 USA
*/
#include <gtest/gtest.h>
extern "C"
{
#include "common/types.h"
#include "interface/test_capture.h"
}
#include <algorithm>
#include <array>
#include <chrono>
#include <cmath>
#include <cstdint>
#include <cstdio>
#include <cstdlib>
#include <cstring>
#include <filesystem>
#include <fstream>
#include <sstream>
#include <string>
#include <thread>
#include <tuple>
#include <vector>
#include <fcntl.h>
#include <signal.h>
#include <sys/types.h>
#include <sys/wait.h>
#include <unistd.h>
namespace
{
constexpr unsigned kWidth = 127;
constexpr unsigned kHeight = 95;
constexpr unsigned kFrameSerial = 4;
struct FormatCase
{
const char * name;
FrameType type;
bool hdr;
bool pq;
};
struct DamageCase
{
const char * name;
};
struct Capture
{
LG_TestCaptureHeader header {};
std::vector<uint8_t> data;
std::filesystem::path directory;
std::filesystem::path path;
std::filesystem::path log;
};
struct RGB
{
float r;
float g;
float b;
};
std::string readText(const std::filesystem::path & path)
{
std::ifstream input(path);
return std::string(
std::istreambuf_iterator<char>(input),
std::istreambuf_iterator<char>());
}
std::filesystem::path makeTempDirectory()
{
std::array<char, 64> value {};
std::snprintf(value.data(), value.size(), "/tmp/lg-render-case.XXXXXX");
char * result = mkdtemp(value.data());
if (!result)
return {};
return result;
}
int runClient(const FormatCase & format, const char * damage,
const std::filesystem::path & capture,
const std::filesystem::path & log)
{
const std::string size = std::to_string(kWidth) + "x" +
std::to_string(kHeight);
const std::string width = "test:width=" + std::to_string(kWidth);
const std::string height = "test:height=" + std::to_string(kHeight);
const std::string formatArg = std::string("test:format=") + format.name;
const std::string damageArg = std::string("test:damage=") + damage;
const std::string count = "test:frameCount=" +
std::to_string(kFrameSerial);
const std::string captureFile = "test:captureFile=" + capture.string();
const std::string captureFrame = "test:captureFrame=" +
std::to_string(kFrameSerial);
std::vector<std::string> args = {
LG_CLIENT_PATH,
"app:transport=test",
"app:renderer=EGL",
width,
height,
formatArg,
damageArg,
"test:frameRate=60",
count,
"test:holdLastFrame=yes",
"test:realtime=no",
captureFile,
captureFrame,
"test:captureDelay=12",
"win:size=" + size,
"win:autoResize=no",
"win:allowResize=no",
"win:quickSplash=yes",
"win:alerts=no",
"win:noScreensaver=no",
"spice:enable=no",
"egl:multisample=no",
"egl:scale=1",
};
std::vector<char *> argv;
argv.reserve(args.size() + 1);
for (std::string & arg : args)
argv.push_back(arg.data());
argv.push_back(nullptr);
const pid_t pid = fork();
if (pid < 0)
return -1;
if (pid == 0)
{
setenv("XDG_CONFIG_HOME", capture.parent_path().c_str(), 1);
setenv("LIBGL_ALWAYS_SOFTWARE", "1", 1);
const int logFd = open(log.c_str(), O_WRONLY | O_CREAT | O_TRUNC, 0600);
if (logFd >= 0)
{
dup2(logFd, STDOUT_FILENO);
dup2(logFd, STDERR_FILENO);
close(logFd);
}
execv(LG_CLIENT_PATH, argv.data());
_exit(127);
}
int status = 0;
const auto deadline =
std::chrono::steady_clock::now() + std::chrono::seconds(20);
while (std::chrono::steady_clock::now() < deadline)
{
const pid_t result = waitpid(pid, &status, WNOHANG);
if (result == pid)
return WIFEXITED(status) ? WEXITSTATUS(status) : 128 + WTERMSIG(status);
if (result < 0)
return -1;
std::this_thread::sleep_for(std::chrono::milliseconds(10));
}
kill(pid, SIGTERM);
if (waitpid(pid, &status, 0) < 0)
return -1;
return 124;
}
Capture produceCapture(const FormatCase & format, const char * damage)
{
Capture result;
result.directory = makeTempDirectory();
if (result.directory.empty())
return result;
result.path = result.directory /
(std::string(format.name) + "-" + damage + ".lgcapture");
result.log = result.directory /
(std::string(format.name) + "-" + damage + ".log");
const int status = runClient(format, damage, result.path, result.log);
EXPECT_EQ(status, 0) << readText(result.log);
if (status != 0)
return result;
std::ifstream input(result.path, std::ios::binary);
EXPECT_TRUE(input.good()) << "capture missing; client log:\n" <<
readText(result.log);
if (!input)
return result;
input.read(reinterpret_cast<char *>(&result.header), sizeof(result.header));
EXPECT_EQ(input.gcount(), static_cast<std::streamsize>(sizeof(result.header)));
EXPECT_EQ(result.header.magic, LG_TEST_CAPTURE_MAGIC);
EXPECT_EQ(result.header.version, LG_TEST_CAPTURE_VERSION);
EXPECT_EQ(result.header.headerSize, sizeof(result.header));
EXPECT_EQ(result.header.frameSerial, kFrameSerial);
EXPECT_EQ(result.header.sourceType, static_cast<uint32_t>(format.type));
EXPECT_EQ(result.header.width, kWidth);
EXPECT_EQ(result.header.height, kHeight);
EXPECT_EQ(result.header.flags & LG_TEST_CAPTURE_HDR,
format.hdr ? static_cast<uint32_t>(LG_TEST_CAPTURE_HDR) : 0u);
EXPECT_EQ(result.header.flags & LG_TEST_CAPTURE_HDR_PQ,
format.pq ? static_cast<uint32_t>(LG_TEST_CAPTURE_HDR_PQ) : 0u);
if (result.header.flags & LG_TEST_CAPTURE_NATIVE_HDR)
{
const std::string clientLog = readText(result.log);
if (format.pq)
{
EXPECT_NE(clientLog.find(
"HDR image description requested (PQ, BT.2020, "
"referenceWhite:203 cd/m² maxLum:1000 cd/m²"),
std::string::npos);
EXPECT_NE(clientLog.find("maxCLL:1000 maxFALL:400"),
std::string::npos);
}
else
EXPECT_NE(clientLog.find(
"HDR image description requested (scRGB, Windows-scRGB)"),
std::string::npos);
}
result.data.resize(result.header.dataSize);
input.read(reinterpret_cast<char *>(result.data.data()), result.data.size());
EXPECT_EQ(input.gcount(), static_cast<std::streamsize>(result.data.size()));
return result;
}
RGB generatedColor(unsigned x, unsigned y, unsigned serial)
{
uint8_t r = static_cast<uint64_t>(x) * 255 / (kWidth - 1);
uint8_t g = static_cast<uint64_t>(y) * 255 / (kHeight - 1);
uint8_t b = ((x / 32) ^ (y / 32)) & 1 ? 0x30 : 0x90;
const unsigned boxSize = std::min({kWidth, kHeight, 64u});
const unsigned boxX = (serial * 7) % (kWidth - boxSize);
const unsigned boxY = (serial * 5) % (kHeight - boxSize);
if (x >= boxX && y >= boxY &&
x < boxX + boxSize && y < boxY + boxSize)
{
const uint32_t color = serial * UINT32_C(2654435761);
r = color >> 16;
g = color >> 8;
b = color;
}
return {
static_cast<float>(r) / 255.0f,
static_cast<float>(g) / 255.0f,
static_cast<float>(b) / 255.0f,
};
}
float linearToPQ(float linear)
{
constexpr float m1 = 2610.0f / 16384.0f;
constexpr float m2 = 2523.0f / 32.0f;
constexpr float c1 = 3424.0f / 4096.0f;
constexpr float c2 = 2413.0f / 128.0f;
constexpr float c3 = 2392.0f / 128.0f;
const float p = std::pow(std::max(linear, 0.0f), m1);
return std::pow((c1 + c2 * p) / (1.0f + c3 * p), m2);
}
float pqToLinear(float pq)
{
constexpr float m1inv = 16384.0f / 2610.0f;
constexpr float m2inv = 32.0f / 2523.0f;
constexpr float c1 = 3424.0f / 4096.0f;
constexpr float c2 = 2413.0f / 128.0f;
constexpr float c3 = 2392.0f / 128.0f;
const float p = std::pow(std::max(pq, 0.0f), m2inv);
const float d = std::max(p - c1, 0.0f) / (c2 - c3 * p);
return std::pow(d, m1inv);
}
float quantizePQ(float scRGB)
{
constexpr unsigned lutSize = 4096;
const unsigned index = scRGB <= 0.0f ? 0 :
scRGB >= 4.0f ? lutSize :
static_cast<unsigned>(scRGB * (lutSize / 4.0f) + 0.5f);
const float lutScRGB = static_cast<float>(index) * 4.0f / lutSize;
const float pq = linearToPQ(lutScRGB / 125.0f);
const unsigned code = static_cast<unsigned>(pq * 1023.0f + 0.5f);
return static_cast<float>(code) / 1023.0f;
}
uint16_t floatToHalf(float value)
{
uint32_t bits;
std::memcpy(&bits, &value, sizeof(bits));
const uint16_t sign = (bits >> 16) & 0x8000;
int exponent = ((bits >> 23) & 0xff) - 127 + 15;
uint32_t mantissa = bits & 0x7fffff;
if (exponent <= 0)
return sign;
if (exponent >= 31)
return sign | 0x7c00;
mantissa += 0x1000;
if (mantissa & 0x800000)
{
mantissa = 0;
if (++exponent >= 31)
return sign | 0x7c00;
}
return sign | (static_cast<uint16_t>(exponent) << 10) | (mantissa >> 13);
}
float halfToFloat(uint16_t value)
{
const uint32_t sign = static_cast<uint32_t>(value & 0x8000) << 16;
uint32_t exponent = (value >> 10) & 0x1f;
uint32_t mantissa = value & 0x3ff;
uint32_t bits;
if (exponent == 0)
bits = sign;
else if (exponent == 31)
bits = sign | 0x7f800000 | (mantissa << 13);
else
{
exponent = exponent - 15 + 127;
bits = sign | (exponent << 23) | (mantissa << 13);
}
float result;
std::memcpy(&result, &bits, sizeof(result));
return result;
}
RGB toBT2020(RGB value)
{
return {
value.r * 0.6274039f + value.g * 0.3292830f + value.b * 0.0433131f,
value.r * 0.0690973f + value.g * 0.9195404f + value.b * 0.0113623f,
value.r * 0.0163914f + value.g * 0.0880133f + value.b * 0.8955953f,
};
}
RGB toBT709(RGB value)
{
return {
value.r * 1.6604910f + value.g * -0.5876411f + value.b * -0.0728499f,
value.r * -0.1245505f + value.g * 1.1328999f + value.b * -0.0083494f,
value.r * -0.0181508f + value.g * -0.1005789f + value.b * 1.1187297f,
};
}
float linearToSRGB(float value)
{
return value >= 0.0031308f ?
std::pow(std::max(value, 0.0f), 1.0f / 2.4f) * 1.055f - 0.055f :
value * 12.92f;
}
RGB compressAndEncode(RGB value)
{
value.r = std::max(value.r, 0.0f);
value.g = std::max(value.g, 0.0f);
value.b = std::max(value.b, 0.0f);
const float peak = std::max({value.r, value.g, value.b});
if (peak > 0.0f)
{
const float compressed = peak < 0.75f ?
peak : 0.75f + (peak - 0.75f) * 0.25f;
const float scale = compressed / peak;
value.r *= scale;
value.g *= scale;
value.b *= scale;
}
value.r = linearToSRGB(std::clamp(value.r, 0.0f, 1.0f));
value.g = linearToSRGB(std::clamp(value.g, 0.0f, 1.0f));
value.b = linearToSRGB(std::clamp(value.b, 0.0f, 1.0f));
return value;
}
RGB expectedColor(const FormatCase & format, const Capture & capture,
unsigned x, unsigned y)
{
const RGB generated = generatedColor(x, y, kFrameSerial);
if (!format.hdr)
return generated;
if (format.type == FRAME_TYPE_RGBA16F)
{
RGB scRGB = {
halfToFloat(floatToHalf(generated.r * 4.0f)),
halfToFloat(floatToHalf(generated.g * 4.0f)),
halfToFloat(floatToHalf(generated.b * 4.0f)),
};
if (capture.header.flags & LG_TEST_CAPTURE_NATIVE_HDR)
return scRGB;
scRGB.r *= 80.0f / 250.0f;
scRGB.g *= 80.0f / 250.0f;
scRGB.b *= 80.0f / 250.0f;
return compressAndEncode(scRGB);
}
RGB linear709 = {
generated.r * 4.0f,
generated.g * 4.0f,
generated.b * 4.0f,
};
RGB encoded2020 = toBT2020(linear709);
encoded2020.r = quantizePQ(encoded2020.r);
encoded2020.g = quantizePQ(encoded2020.g);
encoded2020.b = quantizePQ(encoded2020.b);
if (capture.header.flags & LG_TEST_CAPTURE_NATIVE_HDR)
return encoded2020;
RGB linear2020 = {
pqToLinear(encoded2020.r) * (10000.0f / 250.0f),
pqToLinear(encoded2020.g) * (10000.0f / 250.0f),
pqToLinear(encoded2020.b) * (10000.0f / 250.0f),
};
return compressAndEncode(toBT709(linear2020));
}
RGB capturedColor(const Capture & capture, unsigned x, unsigned y)
{
const bool bottomUp =
capture.header.flags & LG_TEST_CAPTURE_BOTTOM_UP;
const unsigned row = bottomUp ? capture.header.height - 1 - y : y;
const uint8_t * pixel =
capture.data.data() + row * capture.header.stride;
switch (capture.header.captureFormat)
{
case LG_TEST_CAPTURE_RGBA8:
pixel += x * 4;
return {
pixel[0] / 255.0f,
pixel[1] / 255.0f,
pixel[2] / 255.0f,
};
case LG_TEST_CAPTURE_RGB10_A2:
{
uint32_t packed;
std::memcpy(&packed, pixel + x * sizeof(packed), sizeof(packed));
return {
static_cast<float>( packed & 0x3ff) / 1023.0f,
static_cast<float>((packed >> 10) & 0x3ff) / 1023.0f,
static_cast<float>((packed >> 20) & 0x3ff) / 1023.0f,
};
}
case LG_TEST_CAPTURE_RGBA32F:
{
std::array<float, 4> value;
std::memcpy(value.data(), pixel + x * sizeof(value), sizeof(value));
return {value[0], value[1], value[2]};
}
default:
ADD_FAILURE() << "Unknown capture format: " <<
capture.header.captureFormat;
return {};
}
}
void compareReference(const FormatCase & format, const Capture & capture)
{
float maxError = 0.0f;
unsigned maxX = 0;
unsigned maxY = 0;
RGB maxActual {};
RGB maxExpected {};
for (unsigned y = 0; y < capture.header.height; ++y)
for (unsigned x = 0; x < capture.header.width; ++x)
{
const RGB actual = capturedColor(capture, x, y);
const RGB expected = expectedColor(format, capture, x, y);
const float error = std::max({
std::abs(actual.r - expected.r),
std::abs(actual.g - expected.g),
std::abs(actual.b - expected.b),
});
if (error > maxError)
{
maxError = error;
maxX = x;
maxY = y;
maxActual = actual;
maxExpected = expected;
}
}
const float tolerance = format.hdr ? 0.012f : 0.006f;
EXPECT_LE(maxError, tolerance)
<< "max error at (" << maxX << ", " << maxY << ")"
<< "\nactual: " << maxActual.r << ", " << maxActual.g << ", "
<< maxActual.b
<< "\nexpected: " << maxExpected.r << ", " << maxExpected.g << ", "
<< maxExpected.b
<< "\ncapture retained at: " << capture.path;
}
using RenderCase = std::tuple<FormatCase, DamageCase>;
class RenderPipelineTest : public testing::TestWithParam<RenderCase>
{
};
TEST_P(RenderPipelineTest, MatchesReference)
{
const FormatCase & format = std::get<0>(GetParam());
const DamageCase & damage = std::get<1>(GetParam());
Capture capture = produceCapture(format, damage.name);
ASSERT_FALSE(capture.data.empty()) << "artifacts: " << capture.directory;
compareReference(format, capture);
if (!testing::Test::HasFailure())
std::filesystem::remove_all(capture.directory);
}
std::string renderCaseName(
const testing::TestParamInfo<RenderCase> & info)
{
return std::string(std::get<0>(info.param).name) + "_" +
std::get<1>(info.param).name;
}
INSTANTIATE_TEST_SUITE_P(FormatDamageMatrix, RenderPipelineTest,
testing::Combine(
testing::Values(
FormatCase {"bgra", FRAME_TYPE_BGRA, false, false},
FormatCase {"rgba", FRAME_TYPE_RGBA, false, false},
FormatCase {"bgr32", FRAME_TYPE_BGR_32, false, false},
FormatCase {"rgb24", FRAME_TYPE_RGB_24, false, false},
FormatCase {"rgba10", FRAME_TYPE_RGBA10, true, true },
FormatCase {"rgba16f", FRAME_TYPE_RGBA16F, true, false}
),
testing::Values(
DamageCase {"full"},
DamageCase {"moving"},
DamageCase {"overlap"},
DamageCase {"max"},
DamageCase {"invalid"},
DamageCase {"null"},
DamageCase {"zero"}
)
),
renderCaseName);
} // namespace