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// Copyright 2013 The Flutter Authors. All rights reserved.
// Use of this source code is governed by a BSD-style license that can be
// found in the LICENSE file.
#include <utility>
#include "flutter/display_list/display_list.h"
#include "flutter/display_list/dl_builder.h"
#include "flutter/display_list/dl_op_flags.h"
#include "flutter/display_list/dl_sampling_options.h"
#include "flutter/display_list/skia/dl_sk_canvas.h"
#include "flutter/display_list/skia/dl_sk_conversions.h"
#include "flutter/display_list/skia/dl_sk_dispatcher.h"
#include "flutter/display_list/testing/dl_test_snippets.h"
#include "flutter/display_list/testing/dl_test_surface_provider.h"
#include "flutter/display_list/utils/dl_comparable.h"
#include "flutter/fml/file.h"
#include "flutter/fml/math.h"
#include "flutter/testing/display_list_testing.h"
#include "flutter/testing/testing.h"
#ifdef IMPELLER_SUPPORTS_RENDERING
#include "flutter/impeller/typographer/backends/skia/text_frame_skia.h"
#endif // IMPELLER_SUPPORTS_RENDERING
#include "third_party/skia/include/core/SkBBHFactory.h"
#include "third_party/skia/include/core/SkColorFilter.h"
#include "third_party/skia/include/core/SkColorSpace.h"
#include "third_party/skia/include/core/SkFontMgr.h"
#include "third_party/skia/include/core/SkPictureRecorder.h"
#include "third_party/skia/include/core/SkStream.h"
#include "third_party/skia/include/core/SkSurface.h"
#include "third_party/skia/include/core/SkTypeface.h"
#include "third_party/skia/include/effects/SkGradientShader.h"
#include "third_party/skia/include/effects/SkImageFilters.h"
#include "third_party/skia/include/encode/SkPngEncoder.h"
#include "third_party/skia/include/gpu/GrDirectContext.h"
#include "third_party/skia/include/gpu/GrRecordingContext.h"
#include "third_party/skia/include/gpu/GrTypes.h"
#include "txt/platform.h"
namespace flutter {
namespace testing {
using ClipOp = DlCanvas::ClipOp;
using PointMode = DlCanvas::PointMode;
constexpr int kTestWidth = 200;
constexpr int kTestHeight = 200;
constexpr int kRenderWidth = 100;
constexpr int kRenderHeight = 100;
constexpr int kRenderHalfWidth = 50;
constexpr int kRenderHalfHeight = 50;
constexpr int kRenderLeft = (kTestWidth - kRenderWidth) / 2;
constexpr int kRenderTop = (kTestHeight - kRenderHeight) / 2;
constexpr int kRenderRight = kRenderLeft + kRenderWidth;
constexpr int kRenderBottom = kRenderTop + kRenderHeight;
constexpr int kRenderCenterX = (kRenderLeft + kRenderRight) / 2;
constexpr int kRenderCenterY = (kRenderTop + kRenderBottom) / 2;
constexpr SkScalar kRenderRadius = std::min(kRenderWidth, kRenderHeight) / 2.0;
constexpr SkScalar kRenderCornerRadius = kRenderRadius / 5.0;
constexpr SkPoint kTestCenter = SkPoint::Make(kTestWidth / 2, kTestHeight / 2);
constexpr SkRect kTestBounds2 = SkRect::MakeWH(kTestWidth, kTestHeight);
constexpr SkRect kRenderBounds =
SkRect::MakeLTRB(kRenderLeft, kRenderTop, kRenderRight, kRenderBottom);
// The tests try 3 miter limit values, 0.0, 4.0 (the default), and 10.0
// These values will allow us to construct a diamond that spans the
// width or height of the render box and still show the miter for 4.0
// and 10.0.
// These values were discovered by drawing a diamond path in Skia fiddle
// and then playing with the cross-axis size until the miter was about
// as large as it could get before it got cut off.
// The X offsets which will be used for tall vertical diamonds are
// expressed in terms of the rendering height to obtain the proper angle
constexpr SkScalar kMiterExtremeDiamondOffsetX = kRenderHeight * 0.04;
constexpr SkScalar kMiter10DiamondOffsetX = kRenderHeight * 0.051;
constexpr SkScalar kMiter4DiamondOffsetX = kRenderHeight * 0.14;
// The Y offsets which will be used for long horizontal diamonds are
// expressed in terms of the rendering width to obtain the proper angle
constexpr SkScalar kMiterExtremeDiamondOffsetY = kRenderWidth * 0.04;
constexpr SkScalar kMiter10DiamondOffsetY = kRenderWidth * 0.051;
constexpr SkScalar kMiter4DiamondOffsetY = kRenderWidth * 0.14;
// Render 3 vertical and horizontal diamonds each
// designed to break at the tested miter limits
// 0.0, 4.0 and 10.0
// Center is biased by 0.5 to include more pixel centers in the
// thin miters
constexpr SkScalar kXOffset0 = kRenderCenterX + 0.5;
constexpr SkScalar kXOffsetL1 = kXOffset0 - kMiter4DiamondOffsetX;
constexpr SkScalar kXOffsetL2 = kXOffsetL1 - kMiter10DiamondOffsetX;
constexpr SkScalar kXOffsetL3 = kXOffsetL2 - kMiter10DiamondOffsetX;
constexpr SkScalar kXOffsetR1 = kXOffset0 + kMiter4DiamondOffsetX;
constexpr SkScalar kXOffsetR2 = kXOffsetR1 + kMiterExtremeDiamondOffsetX;
constexpr SkScalar kXOffsetR3 = kXOffsetR2 + kMiterExtremeDiamondOffsetX;
constexpr SkPoint kVerticalMiterDiamondPoints[] = {
// Vertical diamonds:
// M10 M4 Mextreme
// /\ /|\ /\ top of RenderBounds
// / \ / | \ / \ to
// <----X--+--X----> RenderCenter
// \ / \ | / \ / to
// \/ \|/ \/ bottom of RenderBounds
// clang-format off
SkPoint::Make(kXOffsetL3, kRenderCenterY),
SkPoint::Make(kXOffsetL2, kRenderTop),
SkPoint::Make(kXOffsetL1, kRenderCenterY),
SkPoint::Make(kXOffset0, kRenderTop),
SkPoint::Make(kXOffsetR1, kRenderCenterY),
SkPoint::Make(kXOffsetR2, kRenderTop),
SkPoint::Make(kXOffsetR3, kRenderCenterY),
SkPoint::Make(kXOffsetR2, kRenderBottom),
SkPoint::Make(kXOffsetR1, kRenderCenterY),
SkPoint::Make(kXOffset0, kRenderBottom),
SkPoint::Make(kXOffsetL1, kRenderCenterY),
SkPoint::Make(kXOffsetL2, kRenderBottom),
SkPoint::Make(kXOffsetL3, kRenderCenterY),
// clang-format on
};
const int kVerticalMiterDiamondPointCount =
sizeof(kVerticalMiterDiamondPoints) /
sizeof(kVerticalMiterDiamondPoints[0]);
constexpr SkScalar kYOffset0 = kRenderCenterY + 0.5;
constexpr SkScalar kYOffsetU1 = kXOffset0 - kMiter4DiamondOffsetY;
constexpr SkScalar kYOffsetU2 = kYOffsetU1 - kMiter10DiamondOffsetY;
constexpr SkScalar kYOffsetU3 = kYOffsetU2 - kMiter10DiamondOffsetY;
constexpr SkScalar kYOffsetD1 = kXOffset0 + kMiter4DiamondOffsetY;
constexpr SkScalar kYOffsetD2 = kYOffsetD1 + kMiterExtremeDiamondOffsetY;
constexpr SkScalar kYOffsetD3 = kYOffsetD2 + kMiterExtremeDiamondOffsetY;
const SkPoint kHorizontalMiterDiamondPoints[] = {
// Horizontal diamonds
// Same configuration as Vertical diamonds above but
// rotated 90 degrees
// clang-format off
SkPoint::Make(kRenderCenterX, kYOffsetU3),
SkPoint::Make(kRenderLeft, kYOffsetU2),
SkPoint::Make(kRenderCenterX, kYOffsetU1),
SkPoint::Make(kRenderLeft, kYOffset0),
SkPoint::Make(kRenderCenterX, kYOffsetD1),
SkPoint::Make(kRenderLeft, kYOffsetD2),
SkPoint::Make(kRenderCenterX, kYOffsetD3),
SkPoint::Make(kRenderRight, kYOffsetD2),
SkPoint::Make(kRenderCenterX, kYOffsetD1),
SkPoint::Make(kRenderRight, kYOffset0),
SkPoint::Make(kRenderCenterX, kYOffsetU1),
SkPoint::Make(kRenderRight, kYOffsetU2),
SkPoint::Make(kRenderCenterX, kYOffsetU3),
// clang-format on
};
const int kHorizontalMiterDiamondPointCount =
(sizeof(kHorizontalMiterDiamondPoints) /
sizeof(kHorizontalMiterDiamondPoints[0]));
class SkImageSampling {
public:
static constexpr SkSamplingOptions kNearestNeighbor =
SkSamplingOptions(SkFilterMode::kNearest);
static constexpr SkSamplingOptions kLinear =
SkSamplingOptions(SkFilterMode::kLinear);
static constexpr SkSamplingOptions kMipmapLinear =
SkSamplingOptions(SkFilterMode::kLinear, SkMipmapMode::kLinear);
static constexpr SkSamplingOptions kCubic =
SkSamplingOptions(SkCubicResampler{1 / 3.0f, 1 / 3.0f});
};
static void DrawCheckerboard(DlCanvas* canvas) {
DlPaint p0, p1;
p0.setDrawStyle(DlDrawStyle::kFill);
p0.setColor(DlColor(0xff00fe00)); // off-green
p1.setDrawStyle(DlDrawStyle::kFill);
p1.setColor(DlColor::kBlue());
// Some pixels need some transparency for DstIn testing
p1.setAlpha(128);
int cbdim = 5;
int width = canvas->GetBaseLayerSize().width();
int height = canvas->GetBaseLayerSize().height();
for (int y = 0; y < width; y += cbdim) {
for (int x = 0; x < height; x += cbdim) {
DlPaint& cellp = ((x + y) & 1) == 0 ? p0 : p1;
canvas->DrawRect(SkRect::MakeXYWH(x, y, cbdim, cbdim), cellp);
}
}
}
static void DrawCheckerboard(SkCanvas* canvas) {
DlSkCanvasAdapter dl_canvas(canvas);
DrawCheckerboard(&dl_canvas);
}
static std::shared_ptr<DlImageColorSource> MakeColorSource(
const sk_sp<DlImage>& image) {
return std::make_shared<DlImageColorSource>(image, //
DlTileMode::kRepeat, //
DlTileMode::kRepeat, //
DlImageSampling::kLinear);
}
static sk_sp<SkShader> MakeColorSource(const sk_sp<SkImage>& image) {
return image->makeShader(SkTileMode::kRepeat, //
SkTileMode::kRepeat, //
SkImageSampling::kLinear);
}
// Used to show "INFO" warnings about tests that are omitted on certain
// backends, but only once for the entire test run to avoid warning spam
class OncePerBackendWarning {
public:
explicit OncePerBackendWarning(const std::string& warning)
: warning_(warning) {}
void warn(const std::string& name) {
if (warnings_sent_.find(name) == warnings_sent_.end()) {
warnings_sent_.insert(name);
FML_LOG(INFO) << warning_ << " on " << name;
}
}
private:
std::string warning_;
std::set<std::string> warnings_sent_;
};
// A class to specify how much tolerance to allow in bounds estimates.
// For some attributes, the machinery must make some conservative
// assumptions as to the extent of the bounds, but some of our test
// parameters do not produce bounds that expand by the full conservative
// estimates. This class provides a number of tweaks to apply to the
// pixel bounds to account for the conservative factors.
//
// An instance is passed along through the methods and if any test adds
// a paint attribute or other modifier that will cause a more conservative
// estimate for bounds, it can modify the factors here to account for it.
// Ideally, all tests will be executed with geometry that will trigger
// the conservative cases anyway and all attributes will be combined with
// other attributes that make their output more predictable, but in those
// cases where a given test sequence cannot really provide attributes to
// demonstrate the worst case scenario, they can modify these factors to
// avoid false bounds overflow notifications.
class BoundsTolerance {
public:
BoundsTolerance() = default;
BoundsTolerance(const BoundsTolerance&) = default;
BoundsTolerance addBoundsPadding(SkScalar bounds_pad_x,
SkScalar bounds_pad_y) const {
BoundsTolerance copy = BoundsTolerance(*this);
copy.bounds_pad_.offset(bounds_pad_x, bounds_pad_y);
return copy;
}
BoundsTolerance mulScale(SkScalar scale_x, SkScalar scale_y) const {
BoundsTolerance copy = BoundsTolerance(*this);
copy.scale_.fX *= scale_x;
copy.scale_.fY *= scale_y;
return copy;
}
BoundsTolerance addAbsolutePadding(SkScalar absolute_pad_x,
SkScalar absolute_pad_y) const {
BoundsTolerance copy = BoundsTolerance(*this);
copy.absolute_pad_.offset(absolute_pad_x, absolute_pad_y);
return copy;
}
BoundsTolerance addPostClipPadding(SkScalar absolute_pad_x,
SkScalar absolute_pad_y) const {
BoundsTolerance copy = BoundsTolerance(*this);
copy.clip_pad_.offset(absolute_pad_x, absolute_pad_y);
return copy;
}
BoundsTolerance addDiscreteOffset(SkScalar discrete_offset) const {
BoundsTolerance copy = BoundsTolerance(*this);
copy.discrete_offset_ += discrete_offset;
return copy;
}
BoundsTolerance clip(SkRect clip) const {
BoundsTolerance copy = BoundsTolerance(*this);
if (!copy.clip_.intersect(clip)) {
copy.clip_.setEmpty();
}
return copy;
}
static SkRect Scale(const SkRect& rect, const SkPoint& scales) {
SkScalar outset_x = rect.width() * (scales.fX - 1);
SkScalar outset_y = rect.height() * (scales.fY - 1);
return rect.makeOutset(outset_x, outset_y);
}
bool overflows(SkIRect pix_bounds,
int worst_bounds_pad_x,
int worst_bounds_pad_y) const {
SkRect allowed = SkRect::Make(pix_bounds);
allowed.outset(bounds_pad_.fX, bounds_pad_.fY);
allowed = Scale(allowed, scale_);
allowed.outset(absolute_pad_.fX, absolute_pad_.fY);
if (!allowed.intersect(clip_)) {
allowed.setEmpty();
}
allowed.outset(clip_pad_.fX, clip_pad_.fY);
SkIRect rounded = allowed.roundOut();
int pad_left = std::max(0, pix_bounds.fLeft - rounded.fLeft);
int pad_top = std::max(0, pix_bounds.fTop - rounded.fTop);
int pad_right = std::max(0, pix_bounds.fRight - rounded.fRight);
int pad_bottom = std::max(0, pix_bounds.fBottom - rounded.fBottom);
int allowed_pad_x = std::max(pad_left, pad_right);
int allowed_pad_y = std::max(pad_top, pad_bottom);
if (worst_bounds_pad_x > allowed_pad_x ||
worst_bounds_pad_y > allowed_pad_y) {
FML_LOG(ERROR) << "acceptable bounds padding: " //
<< allowed_pad_x << ", " << allowed_pad_y;
}
return (worst_bounds_pad_x > allowed_pad_x ||
worst_bounds_pad_y > allowed_pad_y);
}
SkScalar discrete_offset() const { return discrete_offset_; }
bool operator==(BoundsTolerance const& other) const {
return bounds_pad_ == other.bounds_pad_ && scale_ == other.scale_ &&
absolute_pad_ == other.absolute_pad_ && clip_ == other.clip_ &&
clip_pad_ == other.clip_pad_ &&
discrete_offset_ == other.discrete_offset_;
}
private:
SkPoint bounds_pad_ = {0, 0};
SkPoint scale_ = {1, 1};
SkPoint absolute_pad_ = {0, 0};
SkRect clip_ = {-1E9, -1E9, 1E9, 1E9};
SkPoint clip_pad_ = {0, 0};
SkScalar discrete_offset_ = 0;
};
template <typename C, typename P, typename I>
struct RenderContext {
C canvas;
P paint;
I image;
};
using SkSetupContext = RenderContext<SkCanvas*, SkPaint&, sk_sp<SkImage>>;
using DlSetupContext = RenderContext<DlCanvas*, DlPaint&, sk_sp<DlImage>>;
using SkRenderContext =
RenderContext<SkCanvas*, const SkPaint&, sk_sp<SkImage>>;
using DlRenderContext =
RenderContext<DlCanvas*, const DlPaint&, sk_sp<DlImage>>;
using SkSetup = const std::function<void(const SkSetupContext&)>;
using SkRenderer = const std::function<void(const SkRenderContext&)>;
using DlSetup = const std::function<void(const DlSetupContext&)>;
using DlRenderer = const std::function<void(const DlRenderContext&)>;
static const SkSetup kEmptySkSetup = [](const SkSetupContext&) {};
static const SkRenderer kEmptySkRenderer = [](const SkRenderContext&) {};
static const DlSetup kEmptyDlSetup = [](const DlSetupContext&) {};
static const DlRenderer kEmptyDlRenderer = [](const DlRenderContext&) {};
using PixelFormat = DlSurfaceProvider::PixelFormat;
using BackendType = DlSurfaceProvider::BackendType;
class RenderResult {
public:
virtual ~RenderResult() = default;
virtual sk_sp<SkImage> image() const = 0;
virtual int width() const = 0;
virtual int height() const = 0;
virtual const uint32_t* addr32(int x, int y) const = 0;
virtual void write(const std::string& path) const = 0;
};
class SkRenderResult final : public RenderResult {
public:
explicit SkRenderResult(const sk_sp<SkSurface>& surface,
bool take_snapshot = false) {
SkImageInfo info = surface->imageInfo();
info = SkImageInfo::MakeN32Premul(info.dimensions());
addr_ = malloc(info.computeMinByteSize() * info.height());
pixmap_.reset(info, addr_, info.minRowBytes());
surface->readPixels(pixmap_, 0, 0);
if (take_snapshot) {
image_ = surface->makeImageSnapshot();
}
}
~SkRenderResult() override { free(addr_); }
sk_sp<SkImage> image() const override { return image_; }
int width() const override { return pixmap_.width(); }
int height() const override { return pixmap_.height(); }
const uint32_t* addr32(int x, int y) const override {
return pixmap_.addr32(x, y);
}
void write(const std::string& path) const {
auto stream = SkFILEWStream(path.c_str());
SkPngEncoder::Options options;
SkPngEncoder::Encode(&stream, pixmap_, options);
stream.flush();
}
private:
sk_sp<SkImage> image_;
SkPixmap pixmap_;
void* addr_ = nullptr;
};
class ImpellerRenderResult final : public RenderResult {
public:
explicit ImpellerRenderResult(sk_sp<DlPixelData> screenshot,
SkRect render_bounds)
: screenshot_(std::move(screenshot)), render_bounds_(render_bounds) {}
~ImpellerRenderResult() override = default;
sk_sp<SkImage> image() const override { return nullptr; };
int width() const override { return screenshot_->width(); };
int height() const override { return screenshot_->height(); }
const uint32_t* addr32(int x, int y) const override {
return screenshot_->addr32(x, y);
}
void write(const std::string& path) const override {
screenshot_->write(path);
}
const SkRect& render_bounds() const { return render_bounds_; }
private:
const sk_sp<DlPixelData> screenshot_;
SkRect render_bounds_;
};
struct RenderJobInfo {
int width = kTestWidth;
int height = kTestHeight;
DlColor bg = DlColor::kTransparent();
SkScalar scale = SK_Scalar1;
SkScalar opacity = SK_Scalar1;
};
struct JobRenderer {
virtual void Render(SkCanvas* canvas, const RenderJobInfo& info) = 0;
virtual bool targets_impeller() const { return false; }
};
struct MatrixClipJobRenderer : public JobRenderer {
public:
const SkMatrix& setup_matrix() const {
FML_CHECK(is_setup_);
return setup_matrix_;
}
const SkIRect& setup_clip_bounds() const {
FML_CHECK(is_setup_);
return setup_clip_bounds_;
}
protected:
bool is_setup_ = false;
SkMatrix setup_matrix_;
SkIRect setup_clip_bounds_;
};
struct SkJobRenderer : public MatrixClipJobRenderer {
explicit SkJobRenderer(const SkSetup& sk_setup,
const SkRenderer& sk_render,
const SkRenderer& sk_restore,
const sk_sp<SkImage>& sk_image)
: sk_setup_(sk_setup),
sk_render_(sk_render),
sk_restore_(sk_restore),
sk_image_(sk_image) {}
void Render(SkCanvas* canvas, const RenderJobInfo& info) override {
FML_DCHECK(info.opacity == SK_Scalar1);
SkPaint paint;
sk_setup_({canvas, paint, sk_image_});
setup_paint_ = paint;
setup_matrix_ = canvas->getTotalMatrix();
setup_clip_bounds_ = canvas->getDeviceClipBounds();
is_setup_ = true;
sk_render_({canvas, paint, sk_image_});
sk_restore_({canvas, paint, sk_image_});
}
sk_sp<SkPicture> MakePicture(const RenderJobInfo& info) {
SkPictureRecorder recorder;
SkRTreeFactory rtree_factory;
SkCanvas* cv = recorder.beginRecording(kTestBounds2, &rtree_factory);
Render(cv, info);
return recorder.finishRecordingAsPicture();
}
const SkPaint& setup_paint() const {
FML_CHECK(is_setup_);
return setup_paint_;
}
private:
const SkSetup sk_setup_;
const SkRenderer sk_render_;
const SkRenderer sk_restore_;
sk_sp<SkImage> sk_image_;
SkPaint setup_paint_;
};
struct DlJobRenderer : public MatrixClipJobRenderer {
explicit DlJobRenderer(const DlSetup& dl_setup,
const DlRenderer& dl_render,
const DlRenderer& dl_restore,
const sk_sp<DlImage>& dl_image)
: dl_setup_(dl_setup),
dl_render_(dl_render),
dl_restore_(dl_restore),
dl_image_(dl_image) {}
void Render(SkCanvas* sk_canvas, const RenderJobInfo& info) override {
DlSkCanvasAdapter canvas(sk_canvas);
Render(&canvas, info);
}
void Render(DlCanvas* canvas, const RenderJobInfo& info) {
FML_DCHECK(info.opacity == SK_Scalar1);
DlPaint paint;
dl_setup_({canvas, paint, dl_image_});
setup_paint_ = paint;
setup_matrix_ = canvas->GetTransform();
setup_clip_bounds_ = canvas->GetDestinationClipBounds().roundOut();
is_setup_ = true;
dl_render_({canvas, paint, dl_image_});
dl_restore_({canvas, paint, dl_image_});
}
sk_sp<DisplayList> MakeDisplayList(const RenderJobInfo& info) {
DisplayListBuilder builder(kTestBounds2);
Render(&builder, info);
return builder.Build();
}
const DlPaint& setup_paint() const {
FML_CHECK(is_setup_);
return setup_paint_;
}
bool targets_impeller() const override {
return dl_image_->impeller_texture() != nullptr;
}
private:
const DlSetup dl_setup_;
const DlRenderer dl_render_;
const DlRenderer dl_restore_;
const sk_sp<DlImage> dl_image_;
DlPaint setup_paint_;
};
struct SkPictureJobRenderer : public JobRenderer {
explicit SkPictureJobRenderer(sk_sp<SkPicture> picture)
: picture_(std::move(picture)) {}
void Render(SkCanvas* canvas, const RenderJobInfo& info) {
FML_DCHECK(info.opacity == SK_Scalar1);
picture_->playback(canvas);
}
private:
sk_sp<SkPicture> picture_;
};
struct DisplayListJobRenderer : public JobRenderer {
explicit DisplayListJobRenderer(sk_sp<DisplayList> display_list)
: display_list_(std::move(display_list)) {}
void Render(SkCanvas* canvas, const RenderJobInfo& info) {
DlSkCanvasAdapter(canvas).DrawDisplayList(display_list_, info.opacity);
}
private:
sk_sp<DisplayList> display_list_;
};
class RenderEnvironment {
public:
RenderEnvironment(const DlSurfaceProvider* provider, PixelFormat format)
: provider_(provider), format_(format) {
if (provider->supports(format)) {
surface_1x_ =
provider->MakeOffscreenSurface(kTestWidth, kTestHeight, format);
surface_2x_ = provider->MakeOffscreenSurface(kTestWidth * 2,
kTestHeight * 2, format);
}
}
static RenderEnvironment Make565(const DlSurfaceProvider* provider) {
return RenderEnvironment(provider, PixelFormat::k565PixelFormat);
}
static RenderEnvironment MakeN32(const DlSurfaceProvider* provider) {
return RenderEnvironment(provider, PixelFormat::kN32PremulPixelFormat);
}
void init_ref(SkSetup& sk_setup,
SkRenderer& sk_renderer,
DlSetup& dl_setup,
DlRenderer& dl_renderer,
DlRenderer& imp_renderer,
DlColor bg = DlColor::kTransparent()) {
SkJobRenderer sk_job(sk_setup, sk_renderer, kEmptySkRenderer, kTestSkImage);
RenderJobInfo info = {
.bg = bg,
};
ref_sk_result_ = getResult(info, sk_job);
DlJobRenderer dl_job(dl_setup, dl_renderer, kEmptyDlRenderer, kTestDlImage);
ref_dl_result_ = getResult(info, dl_job);
ref_dl_paint_ = dl_job.setup_paint();
ref_matrix_ = dl_job.setup_matrix();
ref_clip_bounds_ = dl_job.setup_clip_bounds();
ASSERT_EQ(sk_job.setup_matrix(), ref_matrix_);
ASSERT_EQ(sk_job.setup_clip_bounds(), ref_clip_bounds_);
if (provider_->supports_impeller()) {
test_impeller_image_ = makeTestImpellerImage(provider_);
DlJobRenderer imp_job(dl_setup, imp_renderer, kEmptyDlRenderer,
test_impeller_image_);
ref_impeller_result_ = getImpellerResult(info, imp_job);
}
}
std::unique_ptr<RenderResult> getResult(const RenderJobInfo& info,
JobRenderer& renderer) const {
auto surface = getSurface(info.width, info.height);
FML_DCHECK(surface != nullptr);
auto canvas = surface->getCanvas();
canvas->clear(ToSk(info.bg));
int restore_count = canvas->save();
canvas->scale(info.scale, info.scale);
renderer.Render(canvas, info);
canvas->restoreToCount(restore_count);
if (GrDirectContext* dContext =
GrAsDirectContext(surface->recordingContext())) {
dContext->flushAndSubmit(surface.get(), GrSyncCpu::kYes);
}
return std::make_unique<SkRenderResult>(surface);
}
std::unique_ptr<RenderResult> getResult(sk_sp<DisplayList> dl) const {
DisplayListJobRenderer job(std::move(dl));
RenderJobInfo info = {};
return getResult(info, job);
}
std::unique_ptr<ImpellerRenderResult> getImpellerResult(
const RenderJobInfo& info,
DlJobRenderer& renderer) const {
FML_DCHECK(info.scale == SK_Scalar1);
DisplayListBuilder builder;
builder.Clear(info.bg);
auto render_dl = renderer.MakeDisplayList(info);
builder.DrawDisplayList(render_dl);
auto dl = builder.Build();
auto snap = provider_->ImpellerSnapshot(dl, kTestWidth, kTestHeight);
return std::make_unique<ImpellerRenderResult>(std::move(snap),
render_dl->bounds());
}
const DlSurfaceProvider* provider() const { return provider_; }
bool valid() const { return provider_->supports(format_); }
const std::string backend_name() const { return provider_->backend_name(); }
bool supports_impeller() const { return provider_->supports_impeller(); }
PixelFormat format() const { return format_; }
const DlPaint& ref_dl_paint() const { return ref_dl_paint_; }
const SkMatrix& ref_matrix() const { return ref_matrix_; }
const SkIRect& ref_clip_bounds() const { return ref_clip_bounds_; }
const RenderResult* ref_sk_result() const { return ref_sk_result_.get(); }
const RenderResult* ref_dl_result() const { return ref_dl_result_.get(); }
const ImpellerRenderResult* ref_impeller_result() const {
return ref_impeller_result_.get();
}
const sk_sp<SkImage> sk_image() const { return kTestSkImage; }
const sk_sp<DlImage> dl_image() const { return kTestDlImage; }
const sk_sp<DlImage> impeller_image() const { return test_impeller_image_; }
private:
sk_sp<SkSurface> getSurface(int width, int height) const {
FML_DCHECK(valid());
FML_DCHECK(surface_1x_ != nullptr);
FML_DCHECK(surface_2x_ != nullptr);
if (width == kTestWidth && height == kTestHeight) {
return surface_1x_->sk_surface();
}
if (width == kTestWidth * 2 && height == kTestHeight * 2) {
return surface_2x_->sk_surface();
}
FML_LOG(ERROR) << "Test surface size (" << width << " x " << height
<< ") not supported.";
FML_DCHECK(false);
return nullptr;
}
const DlSurfaceProvider* provider_;
const PixelFormat format_;
std::shared_ptr<DlSurfaceInstance> surface_1x_;
std::shared_ptr<DlSurfaceInstance> surface_2x_;
DlPaint ref_dl_paint_;
SkMatrix ref_matrix_;
SkIRect ref_clip_bounds_;
std::unique_ptr<RenderResult> ref_sk_result_;
std::unique_ptr<RenderResult> ref_dl_result_;
std::unique_ptr<ImpellerRenderResult> ref_impeller_result_;
sk_sp<DlImage> test_impeller_image_;
static const sk_sp<SkImage> kTestSkImage;
static const sk_sp<DlImage> kTestDlImage;
static const sk_sp<SkImage> makeTestSkImage() {
sk_sp<SkSurface> surface = SkSurfaces::Raster(
SkImageInfo::MakeN32Premul(kRenderWidth, kRenderHeight));
DrawCheckerboard(surface->getCanvas());
return surface->makeImageSnapshot();
}
static const sk_sp<DlImage> makeTestImpellerImage(
const DlSurfaceProvider* provider) {
FML_DCHECK(provider->supports_impeller());
DisplayListBuilder builder(SkRect::MakeWH(kRenderWidth, kRenderHeight));
DrawCheckerboard(&builder);
return provider->MakeImpellerImage(builder.Build(), //
kRenderWidth, kRenderHeight);
}
};
const sk_sp<SkImage> RenderEnvironment::kTestSkImage = makeTestSkImage();
const sk_sp<DlImage> RenderEnvironment::kTestDlImage =
DlImage::Make(kTestSkImage);
class CaseParameters {
public:
explicit CaseParameters(std::string info)
: CaseParameters(std::move(info), kEmptySkSetup, kEmptyDlSetup) {}
CaseParameters(std::string info, SkSetup& sk_setup, DlSetup& dl_setup)
: CaseParameters(std::move(info),
sk_setup,
dl_setup,
kEmptySkRenderer,
kEmptyDlRenderer,
DlColor(SK_ColorTRANSPARENT),
false,
false,
false) {}
CaseParameters(std::string info,
SkSetup& sk_setup,
DlSetup& dl_setup,
SkRenderer& sk_restore,
DlRenderer& dl_restore,
DlColor bg,
bool has_diff_clip,
bool has_mutating_save_layer,
bool fuzzy_compare_components)
: info_(std::move(info)),
bg_(bg),
sk_setup_(sk_setup),
dl_setup_(dl_setup),
sk_restore_(sk_restore),
dl_restore_(dl_restore),
has_diff_clip_(has_diff_clip),
has_mutating_save_layer_(has_mutating_save_layer),
fuzzy_compare_components_(fuzzy_compare_components) {}
CaseParameters with_restore(SkRenderer& sk_restore,
DlRenderer& dl_restore,
bool mutating_layer,
bool fuzzy_compare_components = false) {
return CaseParameters(info_, sk_setup_, dl_setup_, sk_restore, dl_restore,
bg_, has_diff_clip_, mutating_layer,
fuzzy_compare_components);
}
CaseParameters with_bg(DlColor bg) {
return CaseParameters(info_, sk_setup_, dl_setup_, sk_restore_, dl_restore_,
bg, has_diff_clip_, has_mutating_save_layer_,
fuzzy_compare_components_);
}
CaseParameters with_diff_clip() {
return CaseParameters(info_, sk_setup_, dl_setup_, sk_restore_, dl_restore_,
bg_, true, has_mutating_save_layer_,
fuzzy_compare_components_);
}
std::string info() const { return info_; }
DlColor bg() const { return bg_; }
bool has_diff_clip() const { return has_diff_clip_; }
bool has_mutating_save_layer() const { return has_mutating_save_layer_; }
bool fuzzy_compare_components() const { return fuzzy_compare_components_; }
SkSetup sk_setup() const { return sk_setup_; }
DlSetup dl_setup() const { return dl_setup_; }
SkRenderer sk_restore() const { return sk_restore_; }
DlRenderer dl_restore() const { return dl_restore_; }
private:
const std::string info_;
const DlColor bg_;
const SkSetup sk_setup_;
const DlSetup dl_setup_;
const SkRenderer sk_restore_;
const DlRenderer dl_restore_;
const bool has_diff_clip_;
const bool has_mutating_save_layer_;
const bool fuzzy_compare_components_;
};
class TestParameters {
public:
TestParameters(const SkRenderer& sk_renderer,
const DlRenderer& dl_renderer,
const DisplayListAttributeFlags& flags)
: TestParameters(sk_renderer, dl_renderer, dl_renderer, flags) {}
TestParameters(const SkRenderer& sk_renderer,
const DlRenderer& dl_renderer,
const DlRenderer& imp_renderer,
const DisplayListAttributeFlags& flags)
: sk_renderer_(sk_renderer),
dl_renderer_(dl_renderer),
imp_renderer_(imp_renderer),
flags_(flags) {}
bool uses_paint() const { return !flags_.ignores_paint(); }
bool uses_gradient() const { return flags_.applies_shader(); }
bool impeller_compatible(const DlPaint& paint) const {
if (is_draw_text_blob()) {
// Non-color text is rendered as paths
if (paint.getColorSourcePtr() && !paint.getColorSourcePtr()->asColor()) {
return false;
}
// Non-filled text (stroke or stroke and fill) is rendered as paths
if (paint.getDrawStyle() != DlDrawStyle::kFill) {
return false;
}
}
return true;
}
bool should_match(const RenderEnvironment& env,
const CaseParameters& caseP,
const DlPaint& attr,
const MatrixClipJobRenderer& renderer) const {
if (caseP.has_mutating_save_layer()) {
return false;
}
if (env.ref_clip_bounds() != renderer.setup_clip_bounds() ||
caseP.has_diff_clip()) {
return false;
}
if (env.ref_matrix() != renderer.setup_matrix() && !flags_.is_flood()) {
return false;
}
if (flags_.ignores_paint()) {
return true;
}
const DlPaint& ref_attr = env.ref_dl_paint();
if (flags_.applies_anti_alias() && //
ref_attr.isAntiAlias() != attr.isAntiAlias()) {
if (renderer.targets_impeller()) {
// Impeller only does MSAA, ignoring the AA attribute
// https://github.com/flutter/flutter/issues/104721
} else {
return false;
}
}
if (flags_.applies_color() && //
ref_attr.getColor() != attr.getColor()) {
return false;
}
if (flags_.applies_blend() && //
ref_attr.getBlendMode() != attr.getBlendMode()) {
return false;
}
if (flags_.applies_color_filter() && //
(ref_attr.isInvertColors() != attr.isInvertColors() ||
NotEquals(ref_attr.getColorFilter(), attr.getColorFilter()))) {
return false;
}
if (flags_.applies_mask_filter() && //
NotEquals(ref_attr.getMaskFilter(), attr.getMaskFilter())) {
return false;
}
if (flags_.applies_image_filter() && //
ref_attr.getImageFilter() != attr.getImageFilter()) {
return false;
}
if (flags_.applies_shader() && //
NotEquals(ref_attr.getColorSource(), attr.getColorSource())) {
return false;
}
bool is_stroked = flags_.is_stroked(attr.getDrawStyle());
if (flags_.is_stroked(ref_attr.getDrawStyle()) != is_stroked) {
return false;
}
DisplayListSpecialGeometryFlags geo_flags =
flags_.WithPathEffect(attr.getPathEffect().get(), is_stroked);
if (flags_.applies_path_effect() && //
ref_attr.getPathEffect() != attr.getPathEffect()) {
if (renderer.targets_impeller()) {
// Impeller ignores DlPathEffect objects:
// https://github.com/flutter/flutter/issues/109736
} else {
switch (attr.getPathEffect()->type()) {
case DlPathEffectType::kDash: {
if (is_stroked && !ignores_dashes()) {
return false;
}
break;
}
}
}
}
if (!is_stroked) {
return true;
}
if (ref_attr.getStrokeWidth() != attr.getStrokeWidth()) {
return false;
}
if (geo_flags.may_have_end_caps() && //
getCap(ref_attr, geo_flags) != getCap(attr, geo_flags)) {
return false;
}
if (geo_flags.may_have_joins()) {
if (ref_attr.getStrokeJoin() != attr.getStrokeJoin()) {
return false;
}
if (ref_attr.getStrokeJoin() == DlStrokeJoin::kMiter) {
SkScalar ref_miter = ref_attr.getStrokeMiter();
SkScalar test_miter = attr.getStrokeMiter();
// miter limit < 1.4 affects right angles
if (geo_flags.may_have_acute_joins() || //
ref_miter < 1.4 || test_miter < 1.4) {
if (ref_miter != test_miter) {
return false;
}
}
}
}
return true;
}
DlStrokeCap getCap(const DlPaint& attr,
DisplayListSpecialGeometryFlags geo_flags) const {
DlStrokeCap cap = attr.getStrokeCap();
if (geo_flags.butt_cap_becomes_square() && cap == DlStrokeCap::kButt) {
return DlStrokeCap::kSquare;
}
return cap;
}
const BoundsTolerance adjust(const BoundsTolerance& tolerance,
const DlPaint& paint,
const SkMatrix& matrix) const {
if (is_draw_text_blob() && tolerance.discrete_offset() > 0) {
// drawTextBlob needs just a little more leeway when using a
// discrete path effect.
return tolerance.addBoundsPadding(2, 2);
}
if (is_draw_line()) {
return lineAdjust(tolerance, paint, matrix);
}
if (is_draw_arc_center()) {
if (paint.getDrawStyle() != DlDrawStyle::kFill &&
paint.getStrokeJoin() == DlStrokeJoin::kMiter) {
// the miter join at the center of an arc does not really affect
// its bounds in any of our test cases, but the bounds code needs
// to take it into account for the cases where it might, so we
// relax our tolerance to reflect the miter bounds padding.
SkScalar miter_pad =
paint.getStrokeMiter() * paint.getStrokeWidth() * 0.5f;
return tolerance.addBoundsPadding(miter_pad, miter_pad);
}
}
return tolerance;
}
const BoundsTolerance lineAdjust(const BoundsTolerance& tolerance,
const DlPaint& paint,
const SkMatrix& matrix) const {
SkScalar adjust = 0.0;
SkScalar half_width = paint.getStrokeWidth() * 0.5f;
if (tolerance.discrete_offset() > 0) {
// When a discrete path effect is added, the bounds calculations must
// allow for miters in any direction, but a horizontal line will not
// have miters in the horizontal direction, similarly for vertical