1cb93a386Sopenharmony_ci/* 2cb93a386Sopenharmony_ci * Copyright 2011 Google Inc. 3cb93a386Sopenharmony_ci * 4cb93a386Sopenharmony_ci * Use of this source code is governed by a BSD-style license that can be 5cb93a386Sopenharmony_ci * found in the LICENSE file. 6cb93a386Sopenharmony_ci */ 7cb93a386Sopenharmony_ci 8cb93a386Sopenharmony_ci#include "include/utils/SkRandom.h" 9cb93a386Sopenharmony_ci#include "src/core/SkGeometry.h" 10cb93a386Sopenharmony_ci#include "src/core/SkPointPriv.h" 11cb93a386Sopenharmony_ci#include "tests/Test.h" 12cb93a386Sopenharmony_ci 13cb93a386Sopenharmony_ci#include <array> 14cb93a386Sopenharmony_ci#include <numeric> 15cb93a386Sopenharmony_ci 16cb93a386Sopenharmony_cistatic bool nearly_equal(const SkPoint& a, const SkPoint& b) { 17cb93a386Sopenharmony_ci return SkScalarNearlyEqual(a.fX, b.fX) && SkScalarNearlyEqual(a.fY, b.fY); 18cb93a386Sopenharmony_ci} 19cb93a386Sopenharmony_ci 20cb93a386Sopenharmony_cistatic void testChopCubic(skiatest::Reporter* reporter) { 21cb93a386Sopenharmony_ci /* 22cb93a386Sopenharmony_ci Inspired by this test, which used to assert that the tValues had dups 23cb93a386Sopenharmony_ci 24cb93a386Sopenharmony_ci <path stroke="#202020" d="M0,0 C0,0 1,1 2190,5130 C2190,5070 2220,5010 2205,4980" /> 25cb93a386Sopenharmony_ci */ 26cb93a386Sopenharmony_ci const SkPoint src[] = { 27cb93a386Sopenharmony_ci { SkIntToScalar(2190), SkIntToScalar(5130) }, 28cb93a386Sopenharmony_ci { SkIntToScalar(2190), SkIntToScalar(5070) }, 29cb93a386Sopenharmony_ci { SkIntToScalar(2220), SkIntToScalar(5010) }, 30cb93a386Sopenharmony_ci { SkIntToScalar(2205), SkIntToScalar(4980) }, 31cb93a386Sopenharmony_ci }; 32cb93a386Sopenharmony_ci SkPoint dst[13]; 33cb93a386Sopenharmony_ci SkScalar tValues[3]; 34cb93a386Sopenharmony_ci // make sure we don't assert internally 35cb93a386Sopenharmony_ci int count = SkChopCubicAtMaxCurvature(src, dst, tValues); 36cb93a386Sopenharmony_ci if (false) { // avoid bit rot, suppress warning 37cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, count); 38cb93a386Sopenharmony_ci } 39cb93a386Sopenharmony_ci // Make sure src and dst can be the same pointer. 40cb93a386Sopenharmony_ci { 41cb93a386Sopenharmony_ci SkPoint pts[7]; 42cb93a386Sopenharmony_ci for (int i = 0; i < 7; ++i) { 43cb93a386Sopenharmony_ci pts[i].set(i, i); 44cb93a386Sopenharmony_ci } 45cb93a386Sopenharmony_ci SkChopCubicAt(pts, pts, .5f); 46cb93a386Sopenharmony_ci for (int i = 0; i < 7; ++i) { 47cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, pts[i].fX == pts[i].fY); 48cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, pts[i].fX == i * .5f); 49cb93a386Sopenharmony_ci } 50cb93a386Sopenharmony_ci } 51cb93a386Sopenharmony_ci 52cb93a386Sopenharmony_ci static const float chopTs[] = { 53cb93a386Sopenharmony_ci 0, 3/83.f, 3/79.f, 3/73.f, 3/71.f, 3/67.f, 3/61.f, 3/59.f, 3/53.f, 3/47.f, 3/43.f, 3/41.f, 54cb93a386Sopenharmony_ci 3/37.f, 3/31.f, 3/29.f, 3/23.f, 3/19.f, 3/17.f, 3/13.f, 3/11.f, 3/7.f, 3/5.f, 1, 55cb93a386Sopenharmony_ci }; 56cb93a386Sopenharmony_ci float ones[] = {1,1,1,1,1}; 57cb93a386Sopenharmony_ci 58cb93a386Sopenharmony_ci // Ensure an odd number of T values so we exercise the single chop code at the end of 59cb93a386Sopenharmony_ci // SkChopCubicAt form multiple T. 60cb93a386Sopenharmony_ci static_assert(SK_ARRAY_COUNT(chopTs) % 2 == 1); 61cb93a386Sopenharmony_ci static_assert(SK_ARRAY_COUNT(ones) % 2 == 1); 62cb93a386Sopenharmony_ci 63cb93a386Sopenharmony_ci SkRandom rand; 64cb93a386Sopenharmony_ci for (int iterIdx = 0; iterIdx < 5; ++iterIdx) { 65cb93a386Sopenharmony_ci SkPoint pts[4] = {{rand.nextF(), rand.nextF()}, {rand.nextF(), rand.nextF()}, 66cb93a386Sopenharmony_ci {rand.nextF(), rand.nextF()}, {rand.nextF(), rand.nextF()}}; 67cb93a386Sopenharmony_ci 68cb93a386Sopenharmony_ci SkPoint allChops[4 + SK_ARRAY_COUNT(chopTs)*3]; 69cb93a386Sopenharmony_ci SkChopCubicAt(pts, allChops, chopTs, SK_ARRAY_COUNT(chopTs)); 70cb93a386Sopenharmony_ci int i = 3; 71cb93a386Sopenharmony_ci for (float chopT : chopTs) { 72cb93a386Sopenharmony_ci // Ensure we chop at approximately the correct points when we chop an entire list. 73cb93a386Sopenharmony_ci SkPoint expectedPt; 74cb93a386Sopenharmony_ci SkEvalCubicAt(pts, chopT, &expectedPt, nullptr, nullptr); 75cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(allChops[i].x(), expectedPt.x())); 76cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(allChops[i].y(), expectedPt.y())); 77cb93a386Sopenharmony_ci if (chopT == 0) { 78cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, allChops[i] == pts[0]); 79cb93a386Sopenharmony_ci } 80cb93a386Sopenharmony_ci if (chopT == 1) { 81cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, allChops[i] == pts[3]); 82cb93a386Sopenharmony_ci } 83cb93a386Sopenharmony_ci i += 3; 84cb93a386Sopenharmony_ci 85cb93a386Sopenharmony_ci // Ensure the middle is exactly degenerate when we chop at two equal points. 86cb93a386Sopenharmony_ci SkPoint localChops[10]; 87cb93a386Sopenharmony_ci SkChopCubicAt(pts, localChops, chopT, chopT); 88cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[3] == localChops[4]); 89cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[3] == localChops[5]); 90cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[3] == localChops[6]); 91cb93a386Sopenharmony_ci if (chopT == 0) { 92cb93a386Sopenharmony_ci // Also ensure the first curve is exactly p0 when we chop at T=0. 93cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[0] == pts[0]); 94cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[1] == pts[0]); 95cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[2] == pts[0]); 96cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[3] == pts[0]); 97cb93a386Sopenharmony_ci } 98cb93a386Sopenharmony_ci if (chopT == 1) { 99cb93a386Sopenharmony_ci // Also ensure the last curve is exactly p3 when we chop at T=1. 100cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[6] == pts[3]); 101cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[7] == pts[3]); 102cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[8] == pts[3]); 103cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, localChops[9] == pts[3]); 104cb93a386Sopenharmony_ci } 105cb93a386Sopenharmony_ci } 106cb93a386Sopenharmony_ci 107cb93a386Sopenharmony_ci // Now test what happens when SkChopCubicAt does 0/0 and gets NaN values. 108cb93a386Sopenharmony_ci SkPoint oneChops[4 + SK_ARRAY_COUNT(ones)*3]; 109cb93a386Sopenharmony_ci SkChopCubicAt(pts, oneChops, ones, SK_ARRAY_COUNT(ones)); 110cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, oneChops[0] == pts[0]); 111cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, oneChops[1] == pts[1]); 112cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, oneChops[2] == pts[2]); 113cb93a386Sopenharmony_ci for (size_t index = 3; index < SK_ARRAY_COUNT(oneChops); ++index) { 114cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, oneChops[index] == pts[3]); 115cb93a386Sopenharmony_ci } 116cb93a386Sopenharmony_ci } 117cb93a386Sopenharmony_ci} 118cb93a386Sopenharmony_ci 119cb93a386Sopenharmony_cistatic void check_pairs(skiatest::Reporter* reporter, int index, SkScalar t, const char name[], 120cb93a386Sopenharmony_ci SkScalar x0, SkScalar y0, SkScalar x1, SkScalar y1) { 121cb93a386Sopenharmony_ci bool eq = SkScalarNearlyEqual(x0, x1) && SkScalarNearlyEqual(y0, y1); 122cb93a386Sopenharmony_ci if (!eq) { 123cb93a386Sopenharmony_ci SkDebugf("%s [%d %g] p0 [%10.8f %10.8f] p1 [%10.8f %10.8f]\n", 124cb93a386Sopenharmony_ci name, index, t, x0, y0, x1, y1); 125cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, eq); 126cb93a386Sopenharmony_ci } 127cb93a386Sopenharmony_ci} 128cb93a386Sopenharmony_ci 129cb93a386Sopenharmony_cistatic void test_evalquadat(skiatest::Reporter* reporter) { 130cb93a386Sopenharmony_ci SkRandom rand; 131cb93a386Sopenharmony_ci for (int i = 0; i < 1000; ++i) { 132cb93a386Sopenharmony_ci SkPoint pts[3]; 133cb93a386Sopenharmony_ci for (int j = 0; j < 3; ++j) { 134cb93a386Sopenharmony_ci pts[j].set(rand.nextSScalar1() * 100, rand.nextSScalar1() * 100); 135cb93a386Sopenharmony_ci } 136cb93a386Sopenharmony_ci const SkScalar dt = SK_Scalar1 / 128; 137cb93a386Sopenharmony_ci SkScalar t = dt; 138cb93a386Sopenharmony_ci for (int j = 1; j < 128; ++j) { 139cb93a386Sopenharmony_ci SkPoint r0; 140cb93a386Sopenharmony_ci SkEvalQuadAt(pts, t, &r0); 141cb93a386Sopenharmony_ci SkPoint r1 = SkEvalQuadAt(pts, t); 142cb93a386Sopenharmony_ci check_pairs(reporter, i, t, "quad-pos", r0.fX, r0.fY, r1.fX, r1.fY); 143cb93a386Sopenharmony_ci 144cb93a386Sopenharmony_ci SkVector v0; 145cb93a386Sopenharmony_ci SkEvalQuadAt(pts, t, nullptr, &v0); 146cb93a386Sopenharmony_ci SkVector v1 = SkEvalQuadTangentAt(pts, t); 147cb93a386Sopenharmony_ci check_pairs(reporter, i, t, "quad-tan", v0.fX, v0.fY, v1.fX, v1.fY); 148cb93a386Sopenharmony_ci 149cb93a386Sopenharmony_ci t += dt; 150cb93a386Sopenharmony_ci } 151cb93a386Sopenharmony_ci } 152cb93a386Sopenharmony_ci} 153cb93a386Sopenharmony_ci 154cb93a386Sopenharmony_cistatic void test_conic_eval_pos(skiatest::Reporter* reporter, const SkConic& conic, SkScalar t) { 155cb93a386Sopenharmony_ci SkPoint p0, p1; 156cb93a386Sopenharmony_ci conic.evalAt(t, &p0, nullptr); 157cb93a386Sopenharmony_ci p1 = conic.evalAt(t); 158cb93a386Sopenharmony_ci check_pairs(reporter, 0, t, "conic-pos", p0.fX, p0.fY, p1.fX, p1.fY); 159cb93a386Sopenharmony_ci} 160cb93a386Sopenharmony_ci 161cb93a386Sopenharmony_cistatic void test_conic_eval_tan(skiatest::Reporter* reporter, const SkConic& conic, SkScalar t) { 162cb93a386Sopenharmony_ci SkVector v0, v1; 163cb93a386Sopenharmony_ci conic.evalAt(t, nullptr, &v0); 164cb93a386Sopenharmony_ci v1 = conic.evalTangentAt(t); 165cb93a386Sopenharmony_ci check_pairs(reporter, 0, t, "conic-tan", v0.fX, v0.fY, v1.fX, v1.fY); 166cb93a386Sopenharmony_ci} 167cb93a386Sopenharmony_ci 168cb93a386Sopenharmony_cistatic void test_conic(skiatest::Reporter* reporter) { 169cb93a386Sopenharmony_ci SkRandom rand; 170cb93a386Sopenharmony_ci for (int i = 0; i < 1000; ++i) { 171cb93a386Sopenharmony_ci SkPoint pts[3]; 172cb93a386Sopenharmony_ci for (int j = 0; j < 3; ++j) { 173cb93a386Sopenharmony_ci pts[j].set(rand.nextSScalar1() * 100, rand.nextSScalar1() * 100); 174cb93a386Sopenharmony_ci } 175cb93a386Sopenharmony_ci for (int k = 0; k < 10; ++k) { 176cb93a386Sopenharmony_ci SkScalar w = rand.nextUScalar1() * 2; 177cb93a386Sopenharmony_ci SkConic conic(pts, w); 178cb93a386Sopenharmony_ci 179cb93a386Sopenharmony_ci const SkScalar dt = SK_Scalar1 / 128; 180cb93a386Sopenharmony_ci SkScalar t = dt; 181cb93a386Sopenharmony_ci for (int j = 1; j < 128; ++j) { 182cb93a386Sopenharmony_ci test_conic_eval_pos(reporter, conic, t); 183cb93a386Sopenharmony_ci test_conic_eval_tan(reporter, conic, t); 184cb93a386Sopenharmony_ci t += dt; 185cb93a386Sopenharmony_ci } 186cb93a386Sopenharmony_ci } 187cb93a386Sopenharmony_ci } 188cb93a386Sopenharmony_ci} 189cb93a386Sopenharmony_ci 190cb93a386Sopenharmony_cistatic void test_quad_tangents(skiatest::Reporter* reporter) { 191cb93a386Sopenharmony_ci SkPoint pts[] = { 192cb93a386Sopenharmony_ci {10, 20}, {10, 20}, {20, 30}, 193cb93a386Sopenharmony_ci {10, 20}, {15, 25}, {20, 30}, 194cb93a386Sopenharmony_ci {10, 20}, {20, 30}, {20, 30}, 195cb93a386Sopenharmony_ci }; 196cb93a386Sopenharmony_ci int count = (int) SK_ARRAY_COUNT(pts) / 3; 197cb93a386Sopenharmony_ci for (int index = 0; index < count; ++index) { 198cb93a386Sopenharmony_ci SkConic conic(&pts[index * 3], 0.707f); 199cb93a386Sopenharmony_ci SkVector start = SkEvalQuadTangentAt(&pts[index * 3], 0); 200cb93a386Sopenharmony_ci SkVector mid = SkEvalQuadTangentAt(&pts[index * 3], .5f); 201cb93a386Sopenharmony_ci SkVector end = SkEvalQuadTangentAt(&pts[index * 3], 1); 202cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, start.fX && start.fY); 203cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, mid.fX && mid.fY); 204cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, end.fX && end.fY); 205cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyZero(start.cross(mid))); 206cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyZero(mid.cross(end))); 207cb93a386Sopenharmony_ci } 208cb93a386Sopenharmony_ci} 209cb93a386Sopenharmony_ci 210cb93a386Sopenharmony_cistatic void test_conic_tangents(skiatest::Reporter* reporter) { 211cb93a386Sopenharmony_ci SkPoint pts[] = { 212cb93a386Sopenharmony_ci { 10, 20}, {10, 20}, {20, 30}, 213cb93a386Sopenharmony_ci { 10, 20}, {15, 25}, {20, 30}, 214cb93a386Sopenharmony_ci { 10, 20}, {20, 30}, {20, 30} 215cb93a386Sopenharmony_ci }; 216cb93a386Sopenharmony_ci int count = (int) SK_ARRAY_COUNT(pts) / 3; 217cb93a386Sopenharmony_ci for (int index = 0; index < count; ++index) { 218cb93a386Sopenharmony_ci SkConic conic(&pts[index * 3], 0.707f); 219cb93a386Sopenharmony_ci SkVector start = conic.evalTangentAt(0); 220cb93a386Sopenharmony_ci SkVector mid = conic.evalTangentAt(.5f); 221cb93a386Sopenharmony_ci SkVector end = conic.evalTangentAt(1); 222cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, start.fX && start.fY); 223cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, mid.fX && mid.fY); 224cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, end.fX && end.fY); 225cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyZero(start.cross(mid))); 226cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyZero(mid.cross(end))); 227cb93a386Sopenharmony_ci } 228cb93a386Sopenharmony_ci} 229cb93a386Sopenharmony_ci 230cb93a386Sopenharmony_cistatic void test_this_conic_to_quad(skiatest::Reporter* r, const SkPoint pts[3], SkScalar w) { 231cb93a386Sopenharmony_ci SkAutoConicToQuads quadder; 232cb93a386Sopenharmony_ci const SkPoint* qpts = quadder.computeQuads(pts, w, 0.25); 233cb93a386Sopenharmony_ci const int qcount = quadder.countQuads(); 234cb93a386Sopenharmony_ci const int pcount = qcount * 2 + 1; 235cb93a386Sopenharmony_ci 236cb93a386Sopenharmony_ci REPORTER_ASSERT(r, SkPointPriv::AreFinite(qpts, pcount)); 237cb93a386Sopenharmony_ci} 238cb93a386Sopenharmony_ci 239cb93a386Sopenharmony_ci/** 240cb93a386Sopenharmony_ci * We need to ensure that when a conic is approximated by quads, that we always return finite 241cb93a386Sopenharmony_ci * values in the quads. 242cb93a386Sopenharmony_ci * 243cb93a386Sopenharmony_ci * Inspired by crbug_627414 244cb93a386Sopenharmony_ci */ 245cb93a386Sopenharmony_cistatic void test_conic_to_quads(skiatest::Reporter* reporter) { 246cb93a386Sopenharmony_ci const SkPoint triples[] = { 247cb93a386Sopenharmony_ci { 0, 0 }, { 1, 0 }, { 1, 1 }, 248cb93a386Sopenharmony_ci { 0, 0 }, { 3.58732e-43f, 2.72084f }, { 3.00392f, 3.00392f }, 249cb93a386Sopenharmony_ci { 0, 0 }, { 100000, 0 }, { 100000, 100000 }, 250cb93a386Sopenharmony_ci { 0, 0 }, { 1e30f, 0 }, { 1e30f, 1e30f }, 251cb93a386Sopenharmony_ci }; 252cb93a386Sopenharmony_ci const int N = sizeof(triples) / sizeof(SkPoint); 253cb93a386Sopenharmony_ci 254cb93a386Sopenharmony_ci for (int i = 0; i < N; i += 3) { 255cb93a386Sopenharmony_ci const SkPoint* pts = &triples[i]; 256cb93a386Sopenharmony_ci 257cb93a386Sopenharmony_ci SkScalar w = 1e30f; 258cb93a386Sopenharmony_ci do { 259cb93a386Sopenharmony_ci w *= 2; 260cb93a386Sopenharmony_ci test_this_conic_to_quad(reporter, pts, w); 261cb93a386Sopenharmony_ci } while (SkScalarIsFinite(w)); 262cb93a386Sopenharmony_ci test_this_conic_to_quad(reporter, pts, SK_ScalarNaN); 263cb93a386Sopenharmony_ci } 264cb93a386Sopenharmony_ci} 265cb93a386Sopenharmony_ci 266cb93a386Sopenharmony_cistatic void test_cubic_tangents(skiatest::Reporter* reporter) { 267cb93a386Sopenharmony_ci SkPoint pts[] = { 268cb93a386Sopenharmony_ci { 10, 20}, {10, 20}, {20, 30}, {30, 40}, 269cb93a386Sopenharmony_ci { 10, 20}, {15, 25}, {20, 30}, {30, 40}, 270cb93a386Sopenharmony_ci { 10, 20}, {20, 30}, {30, 40}, {30, 40}, 271cb93a386Sopenharmony_ci }; 272cb93a386Sopenharmony_ci int count = (int) SK_ARRAY_COUNT(pts) / 4; 273cb93a386Sopenharmony_ci for (int index = 0; index < count; ++index) { 274cb93a386Sopenharmony_ci SkConic conic(&pts[index * 3], 0.707f); 275cb93a386Sopenharmony_ci SkVector start, mid, end; 276cb93a386Sopenharmony_ci SkEvalCubicAt(&pts[index * 4], 0, nullptr, &start, nullptr); 277cb93a386Sopenharmony_ci SkEvalCubicAt(&pts[index * 4], .5f, nullptr, &mid, nullptr); 278cb93a386Sopenharmony_ci SkEvalCubicAt(&pts[index * 4], 1, nullptr, &end, nullptr); 279cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, start.fX && start.fY); 280cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, mid.fX && mid.fY); 281cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, end.fX && end.fY); 282cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyZero(start.cross(mid))); 283cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyZero(mid.cross(end))); 284cb93a386Sopenharmony_ci } 285cb93a386Sopenharmony_ci} 286cb93a386Sopenharmony_ci 287cb93a386Sopenharmony_cistatic void check_cubic_type(skiatest::Reporter* reporter, 288cb93a386Sopenharmony_ci const std::array<SkPoint, 4>& bezierPoints, SkCubicType expectedType, 289cb93a386Sopenharmony_ci bool undefined = false) { 290cb93a386Sopenharmony_ci // Classify the cubic even if the results will be undefined: check for crashes and asserts. 291cb93a386Sopenharmony_ci SkCubicType actualType = SkClassifyCubic(bezierPoints.data()); 292cb93a386Sopenharmony_ci if (!undefined) { 293cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, actualType == expectedType); 294cb93a386Sopenharmony_ci } 295cb93a386Sopenharmony_ci} 296cb93a386Sopenharmony_ci 297cb93a386Sopenharmony_cistatic void check_cubic_around_rect(skiatest::Reporter* reporter, 298cb93a386Sopenharmony_ci float x1, float y1, float x2, float y2, 299cb93a386Sopenharmony_ci bool undefined = false) { 300cb93a386Sopenharmony_ci static constexpr SkCubicType expectations[24] = { 301cb93a386Sopenharmony_ci SkCubicType::kLoop, 302cb93a386Sopenharmony_ci SkCubicType::kCuspAtInfinity, 303cb93a386Sopenharmony_ci SkCubicType::kLocalCusp, 304cb93a386Sopenharmony_ci SkCubicType::kLocalCusp, 305cb93a386Sopenharmony_ci SkCubicType::kCuspAtInfinity, 306cb93a386Sopenharmony_ci SkCubicType::kLoop, 307cb93a386Sopenharmony_ci SkCubicType::kCuspAtInfinity, 308cb93a386Sopenharmony_ci SkCubicType::kLoop, 309cb93a386Sopenharmony_ci SkCubicType::kCuspAtInfinity, 310cb93a386Sopenharmony_ci SkCubicType::kLoop, 311cb93a386Sopenharmony_ci SkCubicType::kLocalCusp, 312cb93a386Sopenharmony_ci SkCubicType::kLocalCusp, 313cb93a386Sopenharmony_ci SkCubicType::kLocalCusp, 314cb93a386Sopenharmony_ci SkCubicType::kLocalCusp, 315cb93a386Sopenharmony_ci SkCubicType::kLoop, 316cb93a386Sopenharmony_ci SkCubicType::kCuspAtInfinity, 317cb93a386Sopenharmony_ci SkCubicType::kLoop, 318cb93a386Sopenharmony_ci SkCubicType::kCuspAtInfinity, 319cb93a386Sopenharmony_ci SkCubicType::kLoop, 320cb93a386Sopenharmony_ci SkCubicType::kCuspAtInfinity, 321cb93a386Sopenharmony_ci SkCubicType::kLocalCusp, 322cb93a386Sopenharmony_ci SkCubicType::kLocalCusp, 323cb93a386Sopenharmony_ci SkCubicType::kCuspAtInfinity, 324cb93a386Sopenharmony_ci SkCubicType::kLoop, 325cb93a386Sopenharmony_ci }; 326cb93a386Sopenharmony_ci SkPoint points[] = {{x1, y1}, {x2, y1}, {x2, y2}, {x1, y2}}; 327cb93a386Sopenharmony_ci std::array<SkPoint, 4> bezier; 328cb93a386Sopenharmony_ci for (int i=0; i < 4; ++i) { 329cb93a386Sopenharmony_ci bezier[0] = points[i]; 330cb93a386Sopenharmony_ci for (int j=0; j < 3; ++j) { 331cb93a386Sopenharmony_ci int jidx = (j < i) ? j : j+1; 332cb93a386Sopenharmony_ci bezier[1] = points[jidx]; 333cb93a386Sopenharmony_ci for (int k=0, kidx=0; k < 2; ++k, ++kidx) { 334cb93a386Sopenharmony_ci for (int n = 0; n < 2; ++n) { 335cb93a386Sopenharmony_ci kidx = (kidx == i || kidx == jidx) ? kidx+1 : kidx; 336cb93a386Sopenharmony_ci } 337cb93a386Sopenharmony_ci bezier[2] = points[kidx]; 338cb93a386Sopenharmony_ci for (int l = 0; l < 4; ++l) { 339cb93a386Sopenharmony_ci if (l != i && l != jidx && l != kidx) { 340cb93a386Sopenharmony_ci bezier[3] = points[l]; 341cb93a386Sopenharmony_ci break; 342cb93a386Sopenharmony_ci } 343cb93a386Sopenharmony_ci } 344cb93a386Sopenharmony_ci check_cubic_type(reporter, bezier, expectations[i*6 + j*2 + k], undefined); 345cb93a386Sopenharmony_ci } 346cb93a386Sopenharmony_ci } 347cb93a386Sopenharmony_ci } 348cb93a386Sopenharmony_ci for (int i=0; i < 4; ++i) { 349cb93a386Sopenharmony_ci bezier[0] = points[i]; 350cb93a386Sopenharmony_ci for (int j=0; j < 3; ++j) { 351cb93a386Sopenharmony_ci int jidx = (j < i) ? j : j+1; 352cb93a386Sopenharmony_ci bezier[1] = points[jidx]; 353cb93a386Sopenharmony_ci bezier[2] = points[jidx]; 354cb93a386Sopenharmony_ci for (int k=0, kidx=0; k < 2; ++k, ++kidx) { 355cb93a386Sopenharmony_ci for (int n = 0; n < 2; ++n) { 356cb93a386Sopenharmony_ci kidx = (kidx == i || kidx == jidx) ? kidx+1 : kidx; 357cb93a386Sopenharmony_ci } 358cb93a386Sopenharmony_ci bezier[3] = points[kidx]; 359cb93a386Sopenharmony_ci check_cubic_type(reporter, bezier, SkCubicType::kSerpentine, undefined); 360cb93a386Sopenharmony_ci } 361cb93a386Sopenharmony_ci } 362cb93a386Sopenharmony_ci } 363cb93a386Sopenharmony_ci} 364cb93a386Sopenharmony_ci 365cb93a386Sopenharmony_cistatic std::array<SkPoint, 4> kSerpentines[] = { 366cb93a386Sopenharmony_ci {{{149.325f, 107.705f}, {149.325f, 103.783f}, {151.638f, 100.127f}, {156.263f, 96.736f}}}, 367cb93a386Sopenharmony_ci {{{225.694f, 223.15f}, {209.831f, 224.837f}, {195.994f, 230.237f}, {184.181f, 239.35f}}}, 368cb93a386Sopenharmony_ci {{{4.873f, 5.581f}, {5.083f, 5.2783f}, {5.182f, 4.8593f}, {5.177f, 4.3242f}}}, 369cb93a386Sopenharmony_ci {{{285.625f, 499.687f}, {411.625f, 808.188f}, {1064.62f, 135.688f}, {1042.63f, 585.187f}}} 370cb93a386Sopenharmony_ci}; 371cb93a386Sopenharmony_ci 372cb93a386Sopenharmony_cistatic std::array<SkPoint, 4> kLoops[] = { 373cb93a386Sopenharmony_ci {{{635.625f, 614.687f}, {171.625f, 236.188f}, {1064.62f, 135.688f}, {516.625f, 570.187f}}}, 374cb93a386Sopenharmony_ci {{{653.050f, 725.049f}, {663.000f, 176.000f}, {1189.000f, 508.000f}, {288.050f, 564.950f}}}, 375cb93a386Sopenharmony_ci {{{631.050f, 478.049f}, {730.000f, 302.000f}, {870.000f, 350.000f}, {905.050f, 528.950f}}}, 376cb93a386Sopenharmony_ci {{{631.050f, 478.0499f}, {221.000f, 230.000f}, {1265.000f, 451.000f}, {905.050f, 528.950f}}} 377cb93a386Sopenharmony_ci}; 378cb93a386Sopenharmony_ci 379cb93a386Sopenharmony_cistatic std::array<SkPoint, 4> kLinearCubics[] = { 380cb93a386Sopenharmony_ci {{{0, 0}, {0, 1}, {0, 2}, {0, 3}}}, // 0-degree flat line. 381cb93a386Sopenharmony_ci {{{0, 0}, {1, 0}, {1, 0}, {0, 0}}}, // 180-degree flat line 382cb93a386Sopenharmony_ci {{{0, 1}, {0, 0}, {0, 2}, {0, 3}}}, // 180-degree flat line 383cb93a386Sopenharmony_ci {{{0, 1}, {0, 0}, {0, 3}, {0, 2}}}, // 360-degree flat line 384cb93a386Sopenharmony_ci {{{0, 0}, {2, 0}, {1, 0}, {64, 0}}}, // 360-degree flat line 385cb93a386Sopenharmony_ci {{{1, 0}, {0, 0}, {3, 0}, {-64, 0}}} // 360-degree flat line 386cb93a386Sopenharmony_ci}; 387cb93a386Sopenharmony_ci 388cb93a386Sopenharmony_cistatic void test_classify_cubic(skiatest::Reporter* reporter) { 389cb93a386Sopenharmony_ci for (const auto& serp : kSerpentines) { 390cb93a386Sopenharmony_ci check_cubic_type(reporter, serp, SkCubicType::kSerpentine); 391cb93a386Sopenharmony_ci } 392cb93a386Sopenharmony_ci for (const auto& loop : kLoops) { 393cb93a386Sopenharmony_ci check_cubic_type(reporter, loop, SkCubicType::kLoop); 394cb93a386Sopenharmony_ci } 395cb93a386Sopenharmony_ci for (const auto& loop : kLinearCubics) { 396cb93a386Sopenharmony_ci check_cubic_type(reporter, loop, SkCubicType::kLineOrPoint); 397cb93a386Sopenharmony_ci } 398cb93a386Sopenharmony_ci check_cubic_around_rect(reporter, 0, 0, 1, 1); 399cb93a386Sopenharmony_ci check_cubic_around_rect(reporter, 400cb93a386Sopenharmony_ci -std::numeric_limits<float>::max(), 401cb93a386Sopenharmony_ci -std::numeric_limits<float>::max(), 402cb93a386Sopenharmony_ci +std::numeric_limits<float>::max(), 403cb93a386Sopenharmony_ci +std::numeric_limits<float>::max()); 404cb93a386Sopenharmony_ci check_cubic_around_rect(reporter, 1, 1, 405cb93a386Sopenharmony_ci +std::numeric_limits<float>::min(), 406cb93a386Sopenharmony_ci +std::numeric_limits<float>::max()); 407cb93a386Sopenharmony_ci check_cubic_around_rect(reporter, 408cb93a386Sopenharmony_ci -std::numeric_limits<float>::min(), 409cb93a386Sopenharmony_ci -std::numeric_limits<float>::min(), 410cb93a386Sopenharmony_ci +std::numeric_limits<float>::min(), 411cb93a386Sopenharmony_ci +std::numeric_limits<float>::min()); 412cb93a386Sopenharmony_ci check_cubic_around_rect(reporter, +1, -std::numeric_limits<float>::min(), -1, -1); 413cb93a386Sopenharmony_ci check_cubic_around_rect(reporter, 414cb93a386Sopenharmony_ci -std::numeric_limits<float>::infinity(), 415cb93a386Sopenharmony_ci -std::numeric_limits<float>::infinity(), 416cb93a386Sopenharmony_ci +std::numeric_limits<float>::infinity(), 417cb93a386Sopenharmony_ci +std::numeric_limits<float>::infinity(), 418cb93a386Sopenharmony_ci true); 419cb93a386Sopenharmony_ci check_cubic_around_rect(reporter, 0, 0, 1, +std::numeric_limits<float>::infinity(), true); 420cb93a386Sopenharmony_ci check_cubic_around_rect(reporter, 421cb93a386Sopenharmony_ci -std::numeric_limits<float>::quiet_NaN(), 422cb93a386Sopenharmony_ci -std::numeric_limits<float>::quiet_NaN(), 423cb93a386Sopenharmony_ci +std::numeric_limits<float>::quiet_NaN(), 424cb93a386Sopenharmony_ci +std::numeric_limits<float>::quiet_NaN(), 425cb93a386Sopenharmony_ci true); 426cb93a386Sopenharmony_ci check_cubic_around_rect(reporter, 0, 0, 1, +std::numeric_limits<float>::quiet_NaN(), true); 427cb93a386Sopenharmony_ci} 428cb93a386Sopenharmony_ci 429cb93a386Sopenharmony_cistatic std::array<SkPoint, 4> kCusps[] = { 430cb93a386Sopenharmony_ci {{{0, 0}, {1, 1}, {1, 0}, {0, 1}}}, 431cb93a386Sopenharmony_ci {{{0, 0}, {1, 1}, {0, 1}, {1, 0}}}, 432cb93a386Sopenharmony_ci {{{0, 1}, {1, 0}, {0, 0}, {1, 1}}}, 433cb93a386Sopenharmony_ci {{{0, 1}, {1, 0}, {1, 1}, {0, 0}}}, 434cb93a386Sopenharmony_ci}; 435cb93a386Sopenharmony_ci 436cb93a386Sopenharmony_cistatic void test_cubic_cusps(skiatest::Reporter* reporter) { 437cb93a386Sopenharmony_ci std::array<SkPoint, 4> noCusps[] = { 438cb93a386Sopenharmony_ci {{{0, 0}, {1, 1}, {2, 2}, {3, 3}}}, 439cb93a386Sopenharmony_ci {{{0, 0}, {1, 0}, {1, 1}, {0, 1}}}, 440cb93a386Sopenharmony_ci {{{0, 0}, {1, 0}, {2, 1}, {2, 2}}}, 441cb93a386Sopenharmony_ci {{{0, 0}, {1, 0}, {1, 1}, {2, 1}}}, 442cb93a386Sopenharmony_ci }; 443cb93a386Sopenharmony_ci for (auto noCusp : noCusps) { 444cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkFindCubicCusp(noCusp.data()) < 0); 445cb93a386Sopenharmony_ci } 446cb93a386Sopenharmony_ci for (auto cusp : kCusps) { 447cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkFindCubicCusp(cusp.data()) > 0); 448cb93a386Sopenharmony_ci } 449cb93a386Sopenharmony_ci} 450cb93a386Sopenharmony_ci 451cb93a386Sopenharmony_cistatic SkMatrix kSkewMatrices[] = { 452cb93a386Sopenharmony_ci SkMatrix::MakeAll(1,0,0, 0,1,0, 0,0,1), 453cb93a386Sopenharmony_ci SkMatrix::MakeAll(1,-1,0, 1,1,0, 0,0,1), 454cb93a386Sopenharmony_ci SkMatrix::MakeAll(.889f,.553f,0, -.443f,.123f,0, 0,0,1), 455cb93a386Sopenharmony_ci}; 456cb93a386Sopenharmony_ci 457cb93a386Sopenharmony_cistatic void test_chop_quad_at_midtangent(skiatest::Reporter* reporter, const SkPoint pts[3]) { 458cb93a386Sopenharmony_ci constexpr float kTolerance = 1e-3f; 459cb93a386Sopenharmony_ci for (const SkMatrix& m : kSkewMatrices) { 460cb93a386Sopenharmony_ci SkPoint mapped[3]; 461cb93a386Sopenharmony_ci m.mapPoints(mapped, pts, 3); 462cb93a386Sopenharmony_ci float fullRotation = SkMeasureQuadRotation(pts); 463cb93a386Sopenharmony_ci SkPoint chopped[5]; 464cb93a386Sopenharmony_ci SkChopQuadAtMidTangent(pts, chopped); 465cb93a386Sopenharmony_ci float leftRotation = SkMeasureQuadRotation(chopped); 466cb93a386Sopenharmony_ci float rightRotation = SkMeasureQuadRotation(chopped+2); 467cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(leftRotation, fullRotation/2, kTolerance)); 468cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(rightRotation, fullRotation/2, kTolerance)); 469cb93a386Sopenharmony_ci } 470cb93a386Sopenharmony_ci} 471cb93a386Sopenharmony_ci 472cb93a386Sopenharmony_cistatic void test_chop_cubic_at_midtangent(skiatest::Reporter* reporter, const SkPoint pts[4], 473cb93a386Sopenharmony_ci SkCubicType cubicType) { 474cb93a386Sopenharmony_ci constexpr float kTolerance = 1e-3f; 475cb93a386Sopenharmony_ci int n = SK_ARRAY_COUNT(kSkewMatrices); 476cb93a386Sopenharmony_ci if (cubicType == SkCubicType::kLocalCusp || cubicType == SkCubicType::kLineOrPoint) { 477cb93a386Sopenharmony_ci // FP precision isn't always enough to get the exact correct T value of the mid-tangent on 478cb93a386Sopenharmony_ci // cusps and lines. Only test the identity matrix and the matrix with all 1's. 479cb93a386Sopenharmony_ci n = 2; 480cb93a386Sopenharmony_ci } 481cb93a386Sopenharmony_ci for (int i = 0; i < n; ++i) { 482cb93a386Sopenharmony_ci SkPoint mapped[4]; 483cb93a386Sopenharmony_ci kSkewMatrices[i].mapPoints(mapped, pts, 4); 484cb93a386Sopenharmony_ci float fullRotation = SkMeasureNonInflectCubicRotation(mapped); 485cb93a386Sopenharmony_ci SkPoint chopped[7]; 486cb93a386Sopenharmony_ci SkChopCubicAtMidTangent(mapped, chopped); 487cb93a386Sopenharmony_ci float leftRotation = SkMeasureNonInflectCubicRotation(chopped); 488cb93a386Sopenharmony_ci float rightRotation = SkMeasureNonInflectCubicRotation(chopped+3); 489cb93a386Sopenharmony_ci if (cubicType == SkCubicType::kLineOrPoint && 490cb93a386Sopenharmony_ci (SkScalarNearlyEqual(fullRotation, 2*SK_ScalarPI, kTolerance) || 491cb93a386Sopenharmony_ci SkScalarNearlyEqual(fullRotation, 0, kTolerance))) { 492cb93a386Sopenharmony_ci // 0- and 360-degree flat lines don't have single points of midtangent. 493cb93a386Sopenharmony_ci // (tangent == midtangent at every point on these curves except the cusp points.) 494cb93a386Sopenharmony_ci // Instead verify the promise from SkChopCubicAtMidTangent that neither side will rotate 495cb93a386Sopenharmony_ci // more than 180 degrees. 496cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, std::abs(leftRotation) - kTolerance <= SK_ScalarPI); 497cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, std::abs(rightRotation) - kTolerance <= SK_ScalarPI); 498cb93a386Sopenharmony_ci continue; 499cb93a386Sopenharmony_ci } 500cb93a386Sopenharmony_ci float expectedChoppedRotation = fullRotation/2; 501cb93a386Sopenharmony_ci if (cubicType == SkCubicType::kLocalCusp || 502cb93a386Sopenharmony_ci (cubicType == SkCubicType::kLineOrPoint && 503cb93a386Sopenharmony_ci SkScalarNearlyEqual(fullRotation, SK_ScalarPI, kTolerance))) { 504cb93a386Sopenharmony_ci // If we chop a cubic at a cusp, we lose 180 degrees of rotation. 505cb93a386Sopenharmony_ci expectedChoppedRotation = (fullRotation - SK_ScalarPI)/2; 506cb93a386Sopenharmony_ci } 507cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(leftRotation, expectedChoppedRotation, 508cb93a386Sopenharmony_ci kTolerance)); 509cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(rightRotation, expectedChoppedRotation, 510cb93a386Sopenharmony_ci kTolerance)); 511cb93a386Sopenharmony_ci } 512cb93a386Sopenharmony_ci} 513cb93a386Sopenharmony_ci 514cb93a386Sopenharmony_cistatic std::array<SkPoint, 3> kQuads[] = { 515cb93a386Sopenharmony_ci {{{10, 20}, {15, 35}, {30, 40}}}, 516cb93a386Sopenharmony_ci {{{176.324f, 392.705f}, {719.325f, 205.782f}, {297.263f, 347.735f}}}, 517cb93a386Sopenharmony_ci {{{652.050f, 602.049f}, {481.000f, 533.000f}, {288.050f, 564.950f}}}, 518cb93a386Sopenharmony_ci {{{460.625f, 557.187f}, {707.121f, 209.688f}, {779.628f, 577.687f}}}, 519cb93a386Sopenharmony_ci {{{359.050f, 578.049f}, {759.000f, 274.000f}, {288.050f, 564.950f}}} 520cb93a386Sopenharmony_ci}; 521cb93a386Sopenharmony_ci 522cb93a386Sopenharmony_ciSkPoint lerp(const SkPoint& a, const SkPoint& b, float t) { 523cb93a386Sopenharmony_ci return a * (1 - t) + b * t; 524cb93a386Sopenharmony_ci} 525cb93a386Sopenharmony_ci 526cb93a386Sopenharmony_cistatic void test_measure_rotation(skiatest::Reporter* reporter) { 527cb93a386Sopenharmony_ci static SkPoint kFlatCubic[4] = {{0, 0}, {0, 1}, {0, 2}, {0, 3}}; 528cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyZero(SkMeasureNonInflectCubicRotation(kFlatCubic))); 529cb93a386Sopenharmony_ci 530cb93a386Sopenharmony_ci static SkPoint kFlatCubic180_1[4] = {{0, 0}, {1, 0}, {3, 0}, {2, 0}}; 531cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(SkMeasureNonInflectCubicRotation(kFlatCubic180_1), 532cb93a386Sopenharmony_ci SK_ScalarPI)); 533cb93a386Sopenharmony_ci 534cb93a386Sopenharmony_ci static SkPoint kFlatCubic180_2[4] = {{0, 1}, {0, 0}, {0, 2}, {0, 3}}; 535cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(SkMeasureNonInflectCubicRotation(kFlatCubic180_2), 536cb93a386Sopenharmony_ci SK_ScalarPI)); 537cb93a386Sopenharmony_ci 538cb93a386Sopenharmony_ci static SkPoint kFlatCubic360[4] = {{0, 1}, {0, 0}, {0, 3}, {0, 2}}; 539cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(SkMeasureNonInflectCubicRotation(kFlatCubic360), 540cb93a386Sopenharmony_ci 2*SK_ScalarPI)); 541cb93a386Sopenharmony_ci 542cb93a386Sopenharmony_ci static SkPoint kSquare180[4] = {{0, 0}, {0, 1}, {1, 1}, {1, 0}}; 543cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(SkMeasureNonInflectCubicRotation(kSquare180), 544cb93a386Sopenharmony_ci SK_ScalarPI)); 545cb93a386Sopenharmony_ci 546cb93a386Sopenharmony_ci auto checkQuadRotation = [=](const SkPoint pts[3], float expectedRotation) { 547cb93a386Sopenharmony_ci float r = SkMeasureQuadRotation(pts); 548cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(r, expectedRotation)); 549cb93a386Sopenharmony_ci 550cb93a386Sopenharmony_ci SkPoint cubic1[4] = {pts[0], pts[0], pts[1], pts[2]}; 551cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(SkMeasureNonInflectCubicRotation(cubic1), 552cb93a386Sopenharmony_ci expectedRotation)); 553cb93a386Sopenharmony_ci 554cb93a386Sopenharmony_ci SkPoint cubic2[4] = {pts[0], pts[1], pts[1], pts[2]}; 555cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(SkMeasureNonInflectCubicRotation(cubic2), 556cb93a386Sopenharmony_ci expectedRotation)); 557cb93a386Sopenharmony_ci 558cb93a386Sopenharmony_ci SkPoint cubic3[4] = {pts[0], pts[1], pts[2], pts[2]}; 559cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkScalarNearlyEqual(SkMeasureNonInflectCubicRotation(cubic3), 560cb93a386Sopenharmony_ci expectedRotation)); 561cb93a386Sopenharmony_ci }; 562cb93a386Sopenharmony_ci 563cb93a386Sopenharmony_ci static SkPoint kFlatQuad[4] = {{0, 0}, {0, 1}, {0, 2}}; 564cb93a386Sopenharmony_ci checkQuadRotation(kFlatQuad, 0); 565cb93a386Sopenharmony_ci 566cb93a386Sopenharmony_ci static SkPoint kFlatQuad180_1[4] = {{1, 0}, {0, 0}, {2, 0}}; 567cb93a386Sopenharmony_ci checkQuadRotation(kFlatQuad180_1, SK_ScalarPI); 568cb93a386Sopenharmony_ci 569cb93a386Sopenharmony_ci static SkPoint kFlatQuad180_2[4] = {{0, 0}, {0, 2}, {0, 1}}; 570cb93a386Sopenharmony_ci checkQuadRotation(kFlatQuad180_2, SK_ScalarPI); 571cb93a386Sopenharmony_ci 572cb93a386Sopenharmony_ci static SkPoint kTri120[3] = {{0, 0}, {.5f, std::sqrt(3.f)/2}, {1, 0}}; 573cb93a386Sopenharmony_ci checkQuadRotation(kTri120, 2*SK_ScalarPI/3); 574cb93a386Sopenharmony_ci} 575cb93a386Sopenharmony_ci 576cb93a386Sopenharmony_cistatic void test_chop_at_midtangent(skiatest::Reporter* reporter) { 577cb93a386Sopenharmony_ci SkPoint chops[10]; 578cb93a386Sopenharmony_ci for (const auto& serp : kSerpentines) { 579cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkClassifyCubic(serp.data()) == SkCubicType::kSerpentine); 580cb93a386Sopenharmony_ci int n = SkChopCubicAtInflections(serp.data(), chops); 581cb93a386Sopenharmony_ci for (int i = 0; i < n; ++i) { 582cb93a386Sopenharmony_ci test_chop_cubic_at_midtangent(reporter, chops + i*3, SkCubicType::kSerpentine); 583cb93a386Sopenharmony_ci } 584cb93a386Sopenharmony_ci } 585cb93a386Sopenharmony_ci for (const auto& loop : kLoops) { 586cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkClassifyCubic(loop.data()) == SkCubicType::kLoop); 587cb93a386Sopenharmony_ci test_chop_cubic_at_midtangent(reporter, loop.data(), SkCubicType::kLoop); 588cb93a386Sopenharmony_ci } 589cb93a386Sopenharmony_ci for (const auto& line : kLinearCubics) { 590cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkClassifyCubic(line.data()) == SkCubicType::kLineOrPoint); 591cb93a386Sopenharmony_ci test_chop_cubic_at_midtangent(reporter, line.data(), SkCubicType::kLineOrPoint); 592cb93a386Sopenharmony_ci } 593cb93a386Sopenharmony_ci for (const auto& cusp : kCusps) { 594cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkClassifyCubic(cusp.data()) == SkCubicType::kLocalCusp); 595cb93a386Sopenharmony_ci test_chop_cubic_at_midtangent(reporter, cusp.data(), SkCubicType::kLocalCusp); 596cb93a386Sopenharmony_ci } 597cb93a386Sopenharmony_ci for (const auto& quad : kQuads) { 598cb93a386Sopenharmony_ci test_chop_quad_at_midtangent(reporter, quad.data()); 599cb93a386Sopenharmony_ci SkPoint asCubic[4] = { 600cb93a386Sopenharmony_ci quad[0], lerp(quad[0], quad[1], 2/3.f), lerp(quad[1], quad[2], 1/3.f), quad[2]}; 601cb93a386Sopenharmony_ci test_chop_cubic_at_midtangent(reporter, asCubic, SkCubicType::kQuadratic); 602cb93a386Sopenharmony_ci } 603cb93a386Sopenharmony_ci 604cb93a386Sopenharmony_ci static const SkPoint kExactQuad[4] = {{0,0}, {6,2}, {10,2}, {12,0}}; 605cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkClassifyCubic(kExactQuad) == SkCubicType::kQuadratic); 606cb93a386Sopenharmony_ci test_chop_cubic_at_midtangent(reporter, kExactQuad, SkCubicType::kQuadratic); 607cb93a386Sopenharmony_ci 608cb93a386Sopenharmony_ci static const SkPoint kExactCuspAtInf[4] = {{0,0}, {1,0}, {0,1}, {1,1}}; 609cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, SkClassifyCubic(kExactCuspAtInf) == SkCubicType::kCuspAtInfinity); 610cb93a386Sopenharmony_ci int n = SkChopCubicAtInflections(kExactCuspAtInf, chops); 611cb93a386Sopenharmony_ci for (int i = 0; i < n; ++i) { 612cb93a386Sopenharmony_ci test_chop_cubic_at_midtangent(reporter, chops + i*3, SkCubicType::kCuspAtInfinity); 613cb93a386Sopenharmony_ci } 614cb93a386Sopenharmony_ci} 615cb93a386Sopenharmony_ci 616cb93a386Sopenharmony_ciDEF_TEST(Geometry, reporter) { 617cb93a386Sopenharmony_ci SkPoint pts[5]; 618cb93a386Sopenharmony_ci 619cb93a386Sopenharmony_ci pts[0].set(0, 0); 620cb93a386Sopenharmony_ci pts[1].set(100, 50); 621cb93a386Sopenharmony_ci pts[2].set(0, 100); 622cb93a386Sopenharmony_ci 623cb93a386Sopenharmony_ci int count = SkChopQuadAtMaxCurvature(pts, pts); // Ensure src and dst can be the same pointer. 624cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, count == 1 || count == 2); 625cb93a386Sopenharmony_ci 626cb93a386Sopenharmony_ci // This previously crashed because the computed t of max curvature is NaN and SkChopQuadAt 627cb93a386Sopenharmony_ci // asserts that the passed t is in 0..1. Passes by not asserting. 628cb93a386Sopenharmony_ci pts[0].set(15.1213f, 7.77647f); 629cb93a386Sopenharmony_ci pts[1].set(6.2168e+19f, 1.51338e+20f); 630cb93a386Sopenharmony_ci pts[2].set(1.4579e+19f, 1.55558e+21f); 631cb93a386Sopenharmony_ci count = SkChopQuadAtMaxCurvature(pts, pts); 632cb93a386Sopenharmony_ci 633cb93a386Sopenharmony_ci pts[0].set(0, 0); 634cb93a386Sopenharmony_ci pts[1].set(3, 0); 635cb93a386Sopenharmony_ci pts[2].set(3, 3); 636cb93a386Sopenharmony_ci SkConvertQuadToCubic(pts, pts); 637cb93a386Sopenharmony_ci const SkPoint cubic[] = { 638cb93a386Sopenharmony_ci { 0, 0, }, { 2, 0, }, { 3, 1, }, { 3, 3 }, 639cb93a386Sopenharmony_ci }; 640cb93a386Sopenharmony_ci for (int i = 0; i < 4; ++i) { 641cb93a386Sopenharmony_ci REPORTER_ASSERT(reporter, nearly_equal(cubic[i], pts[i])); 642cb93a386Sopenharmony_ci } 643cb93a386Sopenharmony_ci 644cb93a386Sopenharmony_ci testChopCubic(reporter); 645cb93a386Sopenharmony_ci test_evalquadat(reporter); 646cb93a386Sopenharmony_ci test_conic(reporter); 647cb93a386Sopenharmony_ci test_cubic_tangents(reporter); 648cb93a386Sopenharmony_ci test_quad_tangents(reporter); 649cb93a386Sopenharmony_ci test_conic_tangents(reporter); 650cb93a386Sopenharmony_ci test_conic_to_quads(reporter); 651cb93a386Sopenharmony_ci test_classify_cubic(reporter); 652cb93a386Sopenharmony_ci test_cubic_cusps(reporter); 653cb93a386Sopenharmony_ci test_measure_rotation(reporter); 654cb93a386Sopenharmony_ci test_chop_at_midtangent(reporter); 655cb93a386Sopenharmony_ci} 656