72c9faab45
This fixes every case where virtual and SK_OVERRIDE were on the same line, which should be the bulk of cases. We'll have to manually clean up the rest over time unless I level up in regexes. for f in (find . -type f); perl -p -i -e 's/virtual (.*)SK_OVERRIDE/\1SK_OVERRIDE/g' $f; end BUG=skia: Review URL: https://codereview.chromium.org/806653007
338 lines
12 KiB
C++
338 lines
12 KiB
C++
/*
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* Copyright 2013 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 "CanvasStateHelpers.h"
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#include "SkCanvas.h"
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#include "SkCanvasStateUtils.h"
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#include "SkCommandLineFlags.h"
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#include "SkDrawFilter.h"
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#include "SkError.h"
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#include "SkPaint.h"
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#include "SkRRect.h"
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#include "SkRect.h"
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#include "Test.h"
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// dlopen and the library flag are only used for tests which require this flag.
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#ifdef SK_SUPPORT_LEGACY_CLIPTOLAYERFLAG
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#include <dlfcn.h>
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DEFINE_string(library, "", "Support library to use for CanvasState test. If empty (the default), "
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"the test will be run without crossing a library boundary. Otherwise, "
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"it is expected to be a full path to a shared library file, which will"
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" be dynamically loaded. Functions from the library will be called to "
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"test SkCanvasState. Instructions for generating the library are in "
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"gyp/canvas_state_lib.gyp");
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// This class calls dlopen on the library passed in to the command line flag library, and handles
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// calling dlclose when it goes out of scope.
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class OpenLibResult {
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public:
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// If the flag library was passed to this run of the test, attempt to open it using dlopen and
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// report whether it succeeded.
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OpenLibResult(skiatest::Reporter* reporter) {
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if (FLAGS_library.count() == 1) {
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fHandle = dlopen(FLAGS_library[0], RTLD_LAZY | RTLD_LOCAL);
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REPORTER_ASSERT_MESSAGE(reporter, fHandle != NULL, "Failed to open library!");
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} else {
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fHandle = NULL;
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}
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}
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// Automatically call dlclose when going out of scope.
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~OpenLibResult() {
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if (fHandle) {
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dlclose(fHandle);
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}
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}
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// Pointer to the shared library object.
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void* handle() { return fHandle; }
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private:
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void* fHandle;
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};
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DEF_TEST(CanvasState_test_complex_layers, reporter) {
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const int WIDTH = 400;
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const int HEIGHT = 400;
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const int SPACER = 10;
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SkRect rect = SkRect::MakeXYWH(SkIntToScalar(SPACER), SkIntToScalar(SPACER),
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SkIntToScalar(WIDTH-(2*SPACER)),
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SkIntToScalar((HEIGHT-(2*SPACER)) / 7));
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const SkColorType colorTypes[] = {
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kRGB_565_SkColorType, kN32_SkColorType
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};
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const int layerAlpha[] = { 255, 255, 0 };
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const SkCanvas::SaveFlags flags[] = { SkCanvas::kARGB_NoClipLayer_SaveFlag,
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SkCanvas::kARGB_ClipLayer_SaveFlag,
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SkCanvas::kARGB_NoClipLayer_SaveFlag
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};
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REPORTER_ASSERT(reporter, sizeof(layerAlpha) == sizeof(flags));
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bool (*drawFn)(SkCanvasState* state, float l, float t,
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float r, float b, int32_t s);
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OpenLibResult openLibResult(reporter);
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if (openLibResult.handle() != NULL) {
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*(void**) (&drawFn) = dlsym(openLibResult.handle(),
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"complex_layers_draw_from_canvas_state");
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} else {
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drawFn = complex_layers_draw_from_canvas_state;
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}
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REPORTER_ASSERT(reporter, drawFn);
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if (!drawFn) {
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return;
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}
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for (size_t i = 0; i < SK_ARRAY_COUNT(colorTypes); ++i) {
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SkBitmap bitmaps[2];
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for (int j = 0; j < 2; ++j) {
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bitmaps[j].allocPixels(SkImageInfo::Make(WIDTH, HEIGHT,
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colorTypes[i],
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kPremul_SkAlphaType));
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SkCanvas canvas(bitmaps[j]);
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canvas.drawColor(SK_ColorRED);
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for (size_t k = 0; k < SK_ARRAY_COUNT(layerAlpha); ++k) {
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// draw a rect within the layer's bounds and again outside the layer's bounds
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canvas.saveLayerAlpha(&rect, layerAlpha[k], flags[k]);
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if (j) {
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// Capture from the first Skia.
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SkCanvasState* state = SkCanvasStateUtils::CaptureCanvasState(&canvas);
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REPORTER_ASSERT(reporter, state);
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// And draw to it in the second Skia.
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bool success = complex_layers_draw_from_canvas_state(state,
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rect.fLeft, rect.fTop, rect.fRight, rect.fBottom, SPACER);
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REPORTER_ASSERT(reporter, success);
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// And release it in the *first* Skia.
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SkCanvasStateUtils::ReleaseCanvasState(state);
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} else {
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// Draw in the first Skia.
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complex_layers_draw(&canvas, rect.fLeft, rect.fTop,
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rect.fRight, rect.fBottom, SPACER);
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}
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canvas.restore();
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// translate the canvas for the next iteration
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canvas.translate(0, 2*(rect.height() + SPACER));
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}
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}
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// now we memcmp the two bitmaps
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REPORTER_ASSERT(reporter, bitmaps[0].getSize() == bitmaps[1].getSize());
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REPORTER_ASSERT(reporter, !memcmp(bitmaps[0].getPixels(),
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bitmaps[1].getPixels(),
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bitmaps[0].getSize()));
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}
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}
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#endif
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////////////////////////////////////////////////////////////////////////////////
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#ifdef SK_SUPPORT_LEGACY_CLIPTOLAYERFLAG
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DEF_TEST(CanvasState_test_complex_clips, reporter) {
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const int WIDTH = 400;
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const int HEIGHT = 400;
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const int SPACER = 10;
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SkIRect layerRect = SkIRect::MakeWH(WIDTH, HEIGHT / 4);
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layerRect.inset(2*SPACER, 2*SPACER);
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SkIRect clipRect = layerRect;
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clipRect.fRight = clipRect.fLeft + (clipRect.width() / 2) - (2*SPACER);
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clipRect.outset(SPACER, SPACER);
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SkIRect regionBounds = clipRect;
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regionBounds.offset(clipRect.width() + (2*SPACER), 0);
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SkIRect regionInterior = regionBounds;
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regionInterior.inset(SPACER*3, SPACER*3);
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SkRegion clipRegion;
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clipRegion.setRect(regionBounds);
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clipRegion.op(regionInterior, SkRegion::kDifference_Op);
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const SkRegion::Op clipOps[] = { SkRegion::kIntersect_Op,
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SkRegion::kIntersect_Op,
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SkRegion::kReplace_Op,
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};
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const SkCanvas::SaveFlags flags[] = { SkCanvas::kARGB_NoClipLayer_SaveFlag,
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SkCanvas::kARGB_ClipLayer_SaveFlag,
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SkCanvas::kARGB_NoClipLayer_SaveFlag,
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};
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REPORTER_ASSERT(reporter, sizeof(clipOps) == sizeof(flags));
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bool (*drawFn)(SkCanvasState* state, int32_t l, int32_t t,
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int32_t r, int32_t b, int32_t clipOp,
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int32_t regionRects, int32_t* rectCoords);
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OpenLibResult openLibResult(reporter);
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if (openLibResult.handle() != NULL) {
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*(void**) (&drawFn) = dlsym(openLibResult.handle(),
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"complex_clips_draw_from_canvas_state");
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} else {
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drawFn = complex_clips_draw_from_canvas_state;
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}
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REPORTER_ASSERT(reporter, drawFn);
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if (!drawFn) {
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return;
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}
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SkBitmap bitmaps[2];
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for (int i = 0; i < 2; ++i) {
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bitmaps[i].allocN32Pixels(WIDTH, HEIGHT);
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SkCanvas canvas(bitmaps[i]);
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canvas.drawColor(SK_ColorRED);
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SkRegion localRegion = clipRegion;
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for (size_t j = 0; j < SK_ARRAY_COUNT(flags); ++j) {
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SkRect layerBounds = SkRect::Make(layerRect);
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canvas.saveLayerAlpha(&layerBounds, 128, flags[j]);
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if (i) {
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SkCanvasState* state = SkCanvasStateUtils::CaptureCanvasState(&canvas);
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REPORTER_ASSERT(reporter, state);
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SkRegion::Iterator iter(localRegion);
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SkTDArray<int32_t> rectCoords;
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for (; !iter.done(); iter.next()) {
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const SkIRect& rect = iter.rect();
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*rectCoords.append() = rect.fLeft;
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*rectCoords.append() = rect.fTop;
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*rectCoords.append() = rect.fRight;
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*rectCoords.append() = rect.fBottom;
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}
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bool success = drawFn(state, clipRect.fLeft, clipRect.fTop,
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clipRect.fRight, clipRect.fBottom, clipOps[j],
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rectCoords.count() / 4, rectCoords.begin());
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REPORTER_ASSERT(reporter, success);
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SkCanvasStateUtils::ReleaseCanvasState(state);
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} else {
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complex_clips_draw(&canvas, clipRect.fLeft, clipRect.fTop,
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clipRect.fRight, clipRect.fBottom, clipOps[j],
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localRegion);
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}
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canvas.restore();
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// translate the canvas and region for the next iteration
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canvas.translate(0, SkIntToScalar(2*(layerRect.height() + (SPACER))));
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localRegion.translate(0, 2*(layerRect.height() + SPACER));
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}
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}
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// now we memcmp the two bitmaps
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REPORTER_ASSERT(reporter, bitmaps[0].getSize() == bitmaps[1].getSize());
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REPORTER_ASSERT(reporter, !memcmp(bitmaps[0].getPixels(),
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bitmaps[1].getPixels(),
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bitmaps[0].getSize()));
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}
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#endif
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////////////////////////////////////////////////////////////////////////////////
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class TestDrawFilter : public SkDrawFilter {
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public:
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bool filter(SkPaint*, Type) SK_OVERRIDE { return true; }
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};
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DEF_TEST(CanvasState_test_draw_filters, reporter) {
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TestDrawFilter drawFilter;
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SkBitmap bitmap;
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bitmap.allocN32Pixels(10, 10);
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SkCanvas canvas(bitmap);
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canvas.setDrawFilter(&drawFilter);
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SkCanvasState* state = SkCanvasStateUtils::CaptureCanvasState(&canvas);
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REPORTER_ASSERT(reporter, state);
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SkCanvas* tmpCanvas = SkCanvasStateUtils::CreateFromCanvasState(state);
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REPORTER_ASSERT(reporter, tmpCanvas);
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REPORTER_ASSERT(reporter, canvas.getDrawFilter());
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REPORTER_ASSERT(reporter, NULL == tmpCanvas->getDrawFilter());
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tmpCanvas->unref();
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SkCanvasStateUtils::ReleaseCanvasState(state);
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}
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////////////////////////////////////////////////////////////////////////////////
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// we need this function to prevent SkError from printing to stdout
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static void error_callback(SkError code, void* ctx) {}
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DEF_TEST(CanvasState_test_soft_clips, reporter) {
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SkBitmap bitmap;
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bitmap.allocN32Pixels(10, 10);
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SkCanvas canvas(bitmap);
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SkRRect roundRect;
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roundRect.setOval(SkRect::MakeWH(5, 5));
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canvas.clipRRect(roundRect, SkRegion::kIntersect_Op, true);
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SkSetErrorCallback(error_callback, NULL);
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SkCanvasState* state = SkCanvasStateUtils::CaptureCanvasState(&canvas);
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REPORTER_ASSERT(reporter, !state);
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REPORTER_ASSERT(reporter, kInvalidOperation_SkError == SkGetLastError());
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SkClearLastError();
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}
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#ifdef SK_SUPPORT_LEGACY_CLIPTOLAYERFLAG
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DEF_TEST(CanvasState_test_saveLayer_clip, reporter) {
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const int WIDTH = 100;
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const int HEIGHT = 100;
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const int LAYER_WIDTH = 50;
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const int LAYER_HEIGHT = 50;
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SkBitmap bitmap;
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bitmap.allocN32Pixels(WIDTH, HEIGHT);
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SkCanvas canvas(bitmap);
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SkRect bounds = SkRect::MakeWH(SkIntToScalar(LAYER_WIDTH), SkIntToScalar(LAYER_HEIGHT));
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canvas.clipRect(SkRect::MakeWH(SkIntToScalar(WIDTH), SkIntToScalar(HEIGHT)));
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// Check that saveLayer without the kClipToLayer_SaveFlag leaves the
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// clip stack unchanged.
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canvas.saveLayer(&bounds, NULL, SkCanvas::kARGB_NoClipLayer_SaveFlag);
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SkRect clipStackBounds;
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SkClipStack::BoundsType boundsType;
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canvas.getClipStack()->getBounds(&clipStackBounds, &boundsType);
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REPORTER_ASSERT(reporter, clipStackBounds.width() == WIDTH);
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REPORTER_ASSERT(reporter, clipStackBounds.height() == HEIGHT);
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canvas.restore();
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// Check that saveLayer with the kClipToLayer_SaveFlag sets the clip
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// stack to the layer bounds.
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canvas.saveLayer(&bounds, NULL, SkCanvas::kARGB_ClipLayer_SaveFlag);
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canvas.getClipStack()->getBounds(&clipStackBounds, &boundsType);
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REPORTER_ASSERT(reporter, clipStackBounds.width() == LAYER_WIDTH);
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REPORTER_ASSERT(reporter, clipStackBounds.height() == LAYER_HEIGHT);
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canvas.restore();
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}
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#endif
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