Converts a drawPaint through a rrect clip to a drawRRect in GrDrawContext.
GOLD_TRYBOT_URL= https://gold.skia.org/search?issue=2271053004 Review-Url: https://codereview.chromium.org/2271053004
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gm/rrectclipdrawpaint.cpp
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gm/rrectclipdrawpaint.cpp
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/*
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* Copyright 2016 Google Inc.
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*
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* Use of this source code is governed by a BSD-style license that can be
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* found in the LICENSE file.
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*/
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#include "gm.h"
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#include "SkPath.h"
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#include "SkGradientShader.h"
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// Exercises code in GrDrawContext that attempts to replace a rrect clip/draw paint with draw rrect.
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DEF_SIMPLE_GM(rrect_clip_draw_paint, canvas, 256, 256) {
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SkRRect rrect = SkRRect::MakeRectXY(SkRect::MakeXYWH(10.f, 10.f, 236.f, 236.f), 30.f, 40.f);
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SkPaint p;
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p.setColor(SK_ColorRED);
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SkMatrix zoomOut;
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zoomOut.setScale(0.7f, 0.7f, 128.f, 128.f);
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const SkRect layerRect = SkRect::MakeWH(256.f, 256.f);
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canvas->saveLayer(layerRect, nullptr);
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canvas->clipRRect(rrect, SkRegion::kIntersect_Op, true);
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canvas->drawPaint(p);
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canvas->restore();
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canvas->concat(zoomOut);
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p.setColor(SK_ColorBLUE);
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canvas->saveLayer(layerRect, nullptr);
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canvas->clipRRect(rrect, SkRegion::kIntersect_Op, false);
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canvas->drawPaint(p);
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canvas->restore();
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static constexpr SkPoint kPts[] = {{0.f, 0.f}, {256.f, 256.f}};
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static constexpr SkColor kColors1[] = {SK_ColorCYAN, SK_ColorGREEN};
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p.setShader(SkGradientShader::MakeLinear(kPts, kColors1, nullptr, 2,
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SkShader::kClamp_TileMode));
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canvas->concat(zoomOut);
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canvas->saveLayer(layerRect, nullptr);
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canvas->clipRRect(rrect, SkRegion::kIntersect_Op, true);
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canvas->drawPaint(p);
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canvas->restore();
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static constexpr SkColor kColors2[] = {SK_ColorMAGENTA, SK_ColorGRAY};
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p.setShader(SkGradientShader::MakeRadial({128.f, 128.f}, 128.f, kColors2, nullptr, 2,
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SkShader::kClamp_TileMode));
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canvas->concat(zoomOut);
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canvas->saveLayer(layerRect, nullptr);
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canvas->clipRRect(rrect, SkRegion::kIntersect_Op, false);
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canvas->drawPaint(p);
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canvas->restore();
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}
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@ -364,6 +364,21 @@ public:
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*/
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bool isWideOpen() const { return this->getTopmostGenID() == kWideOpenGenID; }
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/**
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* This method quickly and conservatively determines whether the entire stack is equivalent to
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* intersection with a rrect given a bounds, where the rrect must not contain the entire bounds.
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*
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* @param bounds A bounds on what will be drawn through the clip. The clip only need be
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* equivalent to a intersection with a rrect for draws within the bounds. The
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* returned rrect must intersect the bounds but need not be contained by the
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* bounds.
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* @param rrect If return is true rrect will contain the rrect equivalent to the stack.
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* @param aa If return is true aa will indicate whether the equivalent rrect clip is
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* antialiased.
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* @return true if the stack is equivalent to a single rrect intersect clip, false otherwise.
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*/
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bool isRRect(const SkRect& bounds, SkRRect* rrect, bool* aa) const;
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/**
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* The generation ID has three reserved values to indicate special
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* (potentially ignorable) cases
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@ -32,6 +32,21 @@ public:
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virtual ~GrClip() {}
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/**
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* This method quickly and conservatively determines whether the entire clip is equivalent to
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* intersection with a rrect. This will only return true if the rrect does not fully contain
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* the render target bounds. Moreover, the returned rrect need not be contained by the render
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* target bounds. We assume all draws will be implicitly clipped by the render target bounds.
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*
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* @param rtBounds The bounds of the render target that the clip will be applied to.
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* @param rrect If return is true rrect will contain the rrect equivalent to the clip within
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* rtBounds.
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* @param aa If return is true aa will indicate whether the rrect clip is antialiased.
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* @return true if the clip is equivalent to a single rrect, false otherwise.
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*
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*/
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virtual bool isRRect(const SkRect& rtBounds, SkRRect* rrect, bool* aa) const = 0;
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/**
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* This is the maximum distance that a draw may extend beyond a clip's boundary and still count
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* count as "on the other side". We leave some slack because floating point rounding error is
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@ -122,6 +137,7 @@ private:
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bool apply(GrContext*, GrDrawContext*, bool, bool, GrAppliedClip*) const final {
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return true;
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}
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bool isRRect(const SkRect&, SkRRect*, bool*) const override { return false; };
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};
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#endif
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@ -862,6 +862,50 @@ void SkClipStack::getConservativeBounds(int offsetX,
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}
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}
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bool SkClipStack::isRRect(const SkRect& bounds, SkRRect* rrect, bool* aa) const {
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// We limit to 5 elements. This means the back element will be bounds checked at most 4 times if
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// it is an rrect.
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int cnt = fDeque.count();
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if (!cnt || cnt > 5) {
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return false;
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}
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const Element* back = static_cast<const Element*>(fDeque.back());
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if (back->getType() != SkClipStack::Element::kRect_Type &&
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back->getType() != SkClipStack::Element::kRRect_Type) {
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return false;
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}
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if (back->getOp() == SkRegion::kReplace_Op) {
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*rrect = back->asRRect();
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*aa = back->isAA();
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return true;
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}
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if (back->getOp() == SkRegion::kIntersect_Op) {
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SkRect backBounds;
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if (!backBounds.intersect(bounds, back->asRRect().rect())) {
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return false;
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}
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if (cnt > 1) {
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SkDeque::Iter iter(fDeque, SkDeque::Iter::kBack_IterStart);
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SkAssertResult(static_cast<const Element*>(iter.prev()) == back);
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while (const Element* prior = (const Element*)iter.prev()) {
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if ((prior->getOp() != SkRegion::kIntersect_Op &&
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prior->getOp() != SkRegion::kReplace_Op) ||
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!prior->contains(backBounds)) {
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return false;
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}
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if (prior->getOp() == SkRegion::kReplace_Op) {
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break;
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}
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}
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}
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*rrect = back->asRRect();
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*aa = back->isAA();
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return true;
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}
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return false;
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}
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int32_t SkClipStack::GetNextGenID() {
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// TODO: handle overflow.
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return sk_atomic_inc(&gGenID);
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@ -41,6 +41,27 @@ bool GrClipStackClip::quickContains(const SkRRect& rrect) const {
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SkIntToScalar(fOrigin.fY)));
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}
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bool GrClipStackClip::isRRect(const SkRect& origRTBounds, SkRRect* rr, bool* aa) const {
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if (!fStack) {
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return false;
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}
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const SkRect* rtBounds = &origRTBounds;
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SkRect tempRTBounds;
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bool origin = fOrigin.fX || fOrigin.fY;
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if (origin) {
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tempRTBounds = origRTBounds;
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tempRTBounds.offset(SkIntToScalar(fOrigin.fX), SkIntToScalar(fOrigin.fY));
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rtBounds = &tempRTBounds;
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}
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if (fStack->isRRect(*rtBounds, rr, aa)) {
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if (origin) {
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rr->offset(-SkIntToScalar(fOrigin.fX), -SkIntToScalar(fOrigin.fY));
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}
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return true;
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}
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return false;
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}
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void GrClipStackClip::getConservativeBounds(int width, int height, SkIRect* devResult,
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bool* isIntersectionOfRects) const {
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if (!fStack) {
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bool apply(GrContext*, GrDrawContext*, bool useHWAA, bool hasUserStencilSettings,
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GrAppliedClip* out) const final;
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bool isRRect(const SkRect& rtBounds, SkRRect* rr, bool* aa) const override;
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private:
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static bool PathNeedsSWRenderer(GrContext* context,
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bool hasUserStencilSettings,
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@ -251,6 +251,20 @@ void GrDrawContext::drawPaint(const GrClip& clip,
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SkIntToScalar(fRenderTarget->height()));
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SkTCopyOnFirstWrite<GrPaint> paint(origPaint);
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SkRRect rrect;
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bool aaRRect;
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// Check if we can replace a clipRRect()/drawPaint() with a drawRRect(). We only do the
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// transformation for non-rect rrects. Rects caused a performance regression on an Android
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// test that needs investigation. We also skip cases where there are fragment processors
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// because they may depend on having correct local coords and this path draws in device space
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// without a local matrix.
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if (!paint->numTotalFragmentProcessors() &&
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clip.isRRect(r, &rrect, &aaRRect) && !rrect.isRect()) {
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paint.writable()->setAntiAlias(aaRRect);
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this->drawRRect(GrNoClip(), *paint, SkMatrix::I(), rrect, GrStyle::SimpleFill());
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return;
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}
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// by definition this fills the entire clip, no need for AA
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if (paint->isAntiAlias()) {
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paint.writable()->setAntiAlias(false);
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void getConservativeBounds(int width, int height, SkIRect* devResult,
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bool* isIntersectionOfRects) const final;
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bool isRRect(const SkRect& rtBounds, SkRRect* rr, bool* aa) const override {
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if (fHasStencilClip) {
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return false;
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}
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if (fScissorState.enabled()) {
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SkRect rect = SkRect::Make(fScissorState.rect());
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if (!rect.intersects(rtBounds)) {
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return false;
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}
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rr->setRect(rect);
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*aa = false;
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return true;
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}
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return false;
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};
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private:
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bool apply(GrContext*, GrDrawContext*, bool useHWAA, bool hasUserStencilSettings,
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GrAppliedClip* out) const final;
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