Remove SkClampRange (unused)
Bug: skia: Change-Id: I57fbdd39079a92e803902524a7950dd5f571639c Reviewed-on: https://skia-review.googlesource.com/84961 Reviewed-by: Florin Malita <fmalita@chromium.org> Commit-Queue: Brian Osman <brianosman@google.com>
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@ -64,8 +64,6 @@ skia_effects_sources = [
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"$_src/shaders/gradients/Sk4fGradientPriv.h",
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"$_src/shaders/gradients/Sk4fLinearGradient.cpp",
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"$_src/shaders/gradients/Sk4fLinearGradient.h",
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"$_src/shaders/gradients/SkClampRange.cpp",
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"$_src/shaders/gradients/SkClampRange.h",
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"$_src/shaders/gradients/SkGradientBitmapCache.cpp",
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"$_src/shaders/gradients/SkGradientBitmapCache.h",
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"$_src/shaders/gradients/SkGradientShader.cpp",
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@ -26,7 +26,6 @@ tests_sources = [
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"$_tests/CanvasStateTest.cpp",
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"$_tests/CanvasTest.cpp",
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"$_tests/ChecksumTest.cpp",
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"$_tests/ClampRangeTest.cpp",
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"$_tests/ClearTest.cpp",
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"$_tests/ClipBoundsTest.cpp",
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"$_tests/ClipCubicTest.cpp",
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@ -1,178 +0,0 @@
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/*
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* Copyright 2011 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 "SkClampRange.h"
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#include "SkMathPriv.h"
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static int SkCLZ64(uint64_t value) {
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int count = 0;
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if (value >> 32) {
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value >>= 32;
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} else {
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count += 32;
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}
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return count + SkCLZ(SkToU32(value));
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}
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static bool sk_64_smul_check(int64_t count, int64_t dx, int64_t* result) {
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// Do it the slow way until we have some assembly.
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if (dx == std::numeric_limits<int64_t>::min()) {
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return false; // SkTAbs overflow
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}
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SkASSERT(count >= 0);
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uint64_t ucount = static_cast<uint64_t>(count);
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uint64_t udx = static_cast<uint64_t>(SkTAbs(dx));
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int zeros = SkCLZ64(ucount) + SkCLZ64(udx);
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// this is a conservative check: it may return false when in fact it would not have overflowed.
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// Hackers Delight uses 34 as its convervative check, but that is for 32x32 multiplies.
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// Since we are looking at 64x64 muls, we add 32 to the check.
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if (zeros < (32 + 34)) {
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return false;
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}
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*result = count * dx;
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return true;
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}
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static bool sk_64_sadd_check(int64_t a, int64_t b, int64_t* result) {
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if (a > 0) {
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if (b > std::numeric_limits<int64_t>::max() - a) {
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return false;
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}
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} else {
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if (b < std::numeric_limits<int64_t>::min() - a) {
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return false;
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}
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}
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*result = a + b;
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return true;
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}
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/*
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* returns [0..count] for the number of steps (<= count) for which x0 <= edge
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* given each step is followed by x0 += dx
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*/
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static int chop(int64_t x0, SkGradFixed edge, int64_t x1, int64_t dx, int count) {
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SkASSERT(dx > 0);
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SkASSERT(count >= 0);
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if (x0 >= edge) {
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return 0;
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}
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if (x1 <= edge) {
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return count;
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}
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int64_t n = (edge - x0 + dx - 1) / dx;
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SkASSERT(n >= 0);
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SkASSERT(n <= count);
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return (int)n;
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}
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void SkClampRange::initFor1(SkGradFixed fx) {
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fCount0 = fCount1 = fCount2 = 0;
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if (fx <= 0) {
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fCount0 = 1;
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} else if (fx < kFracMax_SkGradFixed) {
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fCount1 = 1;
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fFx1 = fx;
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} else {
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fCount2 = 1;
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}
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}
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void SkClampRange::init(SkGradFixed fx0, SkGradFixed dx0, int count, int v0, int v1) {
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SkASSERT(count > 0);
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fV0 = v0;
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fV1 = v1;
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// special case 1 == count, as it is slightly common for skia
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// and avoids us ever calling divide or 64bit multiply
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if (1 == count) {
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this->initFor1(fx0);
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return;
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}
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int64_t fx = fx0;
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int64_t dx = dx0;
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// start with ex equal to the last computed value
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int64_t count_times_dx, ex;
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if (!sk_64_smul_check(count - 1, dx, &count_times_dx) ||
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!sk_64_sadd_check(fx, count_times_dx, &ex)) {
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// we can't represent the computed end in 32.32, so just draw something (first color)
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fCount1 = fCount2 = 0;
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fCount0 = count;
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return;
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}
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if ((uint64_t)(fx | ex) <= kFracMax_SkGradFixed) {
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fCount0 = fCount2 = 0;
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fCount1 = count;
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fFx1 = fx0;
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return;
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}
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if (fx <= 0 && ex <= 0) {
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fCount1 = fCount2 = 0;
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fCount0 = count;
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return;
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}
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if (fx >= kFracMax_SkGradFixed && ex >= kFracMax_SkGradFixed) {
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fCount0 = fCount1 = 0;
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fCount2 = count;
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return;
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}
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// now make ex be 1 past the last computed value
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ex += dx;
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bool doSwap = dx < 0;
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if (doSwap) {
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ex -= dx;
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fx -= dx;
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SkTSwap(fx, ex);
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dx = -dx;
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}
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fCount0 = chop(fx, 0, ex, dx, count);
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SkASSERT(fCount0 >= 0);
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SkASSERT(fCount0 <= count);
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count -= fCount0;
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fx += fCount0 * dx;
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SkASSERT(fx >= 0);
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SkASSERT(fCount0 == 0 || (fx - dx) < 0);
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fCount1 = chop(fx, kFracMax_SkGradFixed, ex, dx, count);
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SkASSERT(fCount1 >= 0);
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SkASSERT(fCount1 <= count);
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count -= fCount1;
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fCount2 = count;
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#ifdef SK_DEBUG
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fx += fCount1 * dx;
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SkASSERT(fx <= ex);
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if (fCount2 > 0) {
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SkASSERT(fx >= kFracMax_SkGradFixed);
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if (fCount1 > 0) {
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SkASSERT(fx - dx < kFracMax_SkGradFixed);
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}
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}
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#endif
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if (doSwap) {
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SkTSwap(fCount0, fCount2);
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SkTSwap(fV0, fV1);
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dx = -dx;
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}
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if (fCount1 > 0) {
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fFx1 = fx0 + fCount0 * dx;
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}
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}
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@ -1,62 +0,0 @@
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/*
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* Copyright 2011 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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#ifndef SkClampRange_DEFINED
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#define SkClampRange_DEFINED
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#include "SkFixed.h"
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#include "SkScalar.h"
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#define SkGradFixed SkFixed3232
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// We want the largest 32.32 value representable as a float. (float)0x7FFFFFFF
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// becomes too big, due to limited mantissa on the float and its rounding rules, so
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// we have to manually compute the next smaller value (aka nextafter).
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// #define SkGradFixedMaxScalar nextafterf(SkFixed3232ToFloat(SkFixed3232Max), 0)
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// #define SkGradFixedMinScalar nextafterf(SkFixed3232ToFloat(SkFixed3232Min), 0)
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#define SkGradFixedMaxScalar ( 2147483520.0f)
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#define SkGradFixedMinScalar (-2147483520.0f)
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#define SkScalarPinToGradFixed(x) SkScalarToFixed3232(SkTPin(x, \
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SkGradFixedMinScalar,\
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SkGradFixedMaxScalar))
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#define SkFixedToGradFixed(x) SkFixedToFixed3232(x)
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#define SkGradFixedToFixed(x) (SkFixed)((x) >> 16)
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#define kFracMax_SkGradFixed 0xFFFFFFFFLL
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/**
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* Iteration fixed fx by dx, clamping as you go to [0..kFracMax_SkGradFixed], this class
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* computes the (up to) 3 spans there are:
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*
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* range0: use constant value V0
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* range1: iterate as usual fx += dx
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* range2: use constant value V1
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*/
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struct SkClampRange {
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int fCount0; // count for fV0
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int fCount1; // count for interpolating (fV0...fV1)
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int fCount2; // count for fV1
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SkGradFixed fFx1; // initial fx value for the fCount1 range.
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// only valid if fCount1 > 0
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int fV0, fV1;
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void init(SkGradFixed fx, SkGradFixed dx, int count, int v0, int v1);
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void validate(int count) const {
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#ifdef SK_DEBUG
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SkASSERT(fCount0 >= 0);
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SkASSERT(fCount1 >= 0);
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SkASSERT(fCount2 >= 0);
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SkASSERT(fCount0 + fCount1 + fCount2 == count);
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#endif
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}
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private:
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void initFor1(SkGradFixed fx);
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};
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#endif
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@ -1,108 +0,0 @@
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/*
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* Copyright 2011 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 "SkRandom.h"
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#include "Test.h"
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#include "gradients/SkClampRange.h"
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static skiatest::Reporter* gReporter;
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#define R_ASSERT(cond) if (!(cond)) { \
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SkDebugf("%d: %s\n", __LINE__, #cond); \
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REPORTER_ASSERT(gReporter, cond); \
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}
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// Arbitrary sentinel values outside [0, 0xFFFF].
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static const int kV0 = -42, kV1 = -53, kRamp = -64;
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static void check_value(int64_t bigfx, int expected) {
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if (bigfx < 0) {
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R_ASSERT(expected == kV0);
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} else if (bigfx > kFracMax_SkGradFixed) {
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R_ASSERT(expected == kV1);
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} else if (bigfx == kFracMax_SkGradFixed) {
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// Either one is fine (and we do see both).
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R_ASSERT(expected == kV1 || expected == kRamp);
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} else {
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R_ASSERT(expected == kRamp);
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}
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}
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static void slow_check(const SkClampRange& range,
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const SkGradFixed fx, SkGradFixed dx, int count) {
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SkASSERT(range.fCount0 + range.fCount1 + range.fCount2 == count);
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// If dx is large, fx will overflow if updated naively. So we use more bits.
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int64_t bigfx = fx;
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for (int i = 0; i < range.fCount0; i++) {
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check_value(bigfx, range.fV0);
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bigfx += dx;
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}
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for (int i = 0; i < range.fCount1; i++) {
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check_value(bigfx, kRamp);
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bigfx += dx;
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}
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for (int i = 0; i < range.fCount2; i++) {
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check_value(bigfx, range.fV1);
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bigfx += dx;
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}
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}
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static void test_range(SkFixed fx, SkFixed dx, int count) {
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const SkGradFixed gfx = SkFixedToGradFixed(fx);
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const SkGradFixed gdx = SkFixedToGradFixed(dx);
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SkClampRange range;
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range.init(gfx, gdx, count, kV0, kV1);
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slow_check(range, gfx, gdx, count);
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}
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#define ff(x) SkIntToFixed(x)
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DEF_TEST(ClampRange, reporter) {
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gReporter = reporter;
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test_range(0, 0, 20);
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test_range(0xFFFF, 0, 20);
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test_range(-ff(2), 0, 20);
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test_range( ff(2), 0, 20);
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test_range(-10, 1, 20);
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test_range(10, -1, 20);
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test_range(-10, 3, 20);
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test_range(10, -3, 20);
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test_range(ff(1), ff(16384), 100);
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test_range(ff(-1), ff(-16384), 100);
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test_range(ff(1)/2, ff(16384), 100);
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test_range(ff(1)/2, ff(-16384), 100);
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SkRandom rand;
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// test non-overflow cases
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for (int i = 0; i < 1000000; i++) {
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SkFixed fx = rand.nextS() >> 1;
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SkFixed sx = rand.nextS() >> 1;
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int count = rand.nextU() % 1000 + 1;
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SkFixed dx = (sx - fx) / count;
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test_range(fx, dx, count);
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}
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// TODO(reed): skia:2481, fix whatever bug this is, then uncomment
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/*
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// test overflow cases
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for (int i = 0; i < 100000; i++) {
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SkFixed fx = rand.nextS();
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SkFixed dx = rand.nextS();
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int count = rand.nextU() % 1000 + 1;
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test_range(fx, dx, count);
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}
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*/
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}
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