| Mike Reed | 7406527 | 2021-04-12 09:52:07 -0400 | [diff] [blame] | 1 | /* | 
|  | 2 | * Copyright (C) 2008 The Android Open Source Project | 
|  | 3 | * | 
|  | 4 | * Licensed under the Apache License, Version 2.0 (the "License"); | 
|  | 5 | * you may not use this file except in compliance with the License. | 
|  | 6 | * You may obtain a copy of the License at | 
|  | 7 | * | 
|  | 8 | *      http://www.apache.org/licenses/LICENSE-2.0 | 
|  | 9 | * | 
|  | 10 | * Unless required by applicable law or agreed to in writing, software | 
|  | 11 | * distributed under the License is distributed on an "AS IS" BASIS, | 
|  | 12 | * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. | 
|  | 13 | * See the License for the specific language governing permissions and | 
|  | 14 | * limitations under the License. | 
|  | 15 | */ | 
|  | 16 |  | 
|  | 17 | #include "SkiaInterpolator.h" | 
|  | 18 |  | 
|  | 19 | #include "include/core/SkMath.h" | 
|  | 20 | #include "include/private/SkFixed.h" | 
|  | 21 | #include "include/private/SkMalloc.h" | 
|  | 22 | #include "include/private/SkTo.h" | 
|  | 23 | #include "src/core/SkTSearch.h" | 
|  | 24 |  | 
|  | 25 | typedef int Dot14; | 
|  | 26 | #define Dot14_ONE (1 << 14) | 
|  | 27 | #define Dot14_HALF (1 << 13) | 
|  | 28 |  | 
|  | 29 | #define Dot14ToFloat(x) ((x) / 16384.f) | 
|  | 30 |  | 
|  | 31 | static inline Dot14 Dot14Mul(Dot14 a, Dot14 b) { | 
|  | 32 | return (a * b + Dot14_HALF) >> 14; | 
|  | 33 | } | 
|  | 34 |  | 
|  | 35 | static inline Dot14 eval_cubic(Dot14 t, Dot14 A, Dot14 B, Dot14 C) { | 
|  | 36 | return Dot14Mul(Dot14Mul(Dot14Mul(C, t) + B, t) + A, t); | 
|  | 37 | } | 
|  | 38 |  | 
|  | 39 | static inline Dot14 pin_and_convert(float x) { | 
|  | 40 | if (x <= 0) { | 
|  | 41 | return 0; | 
|  | 42 | } | 
|  | 43 | if (x >= SK_Scalar1) { | 
|  | 44 | return Dot14_ONE; | 
|  | 45 | } | 
|  | 46 | return SkScalarToFixed(x) >> 2; | 
|  | 47 | } | 
|  | 48 |  | 
|  | 49 | static float SkUnitCubicInterp(float value, float bx, float by, float cx, float cy) { | 
|  | 50 | // pin to the unit-square, and convert to 2.14 | 
|  | 51 | Dot14 x = pin_and_convert(value); | 
|  | 52 |  | 
|  | 53 | if (x == 0) return 0; | 
|  | 54 | if (x == Dot14_ONE) return SK_Scalar1; | 
|  | 55 |  | 
|  | 56 | Dot14 b = pin_and_convert(bx); | 
|  | 57 | Dot14 c = pin_and_convert(cx); | 
|  | 58 |  | 
|  | 59 | // Now compute our coefficients from the control points | 
|  | 60 | //  t   -> 3b | 
|  | 61 | //  t^2 -> 3c - 6b | 
|  | 62 | //  t^3 -> 3b - 3c + 1 | 
|  | 63 | Dot14 A = 3 * b; | 
|  | 64 | Dot14 B = 3 * (c - 2 * b); | 
|  | 65 | Dot14 C = 3 * (b - c) + Dot14_ONE; | 
|  | 66 |  | 
|  | 67 | // Now search for a t value given x | 
|  | 68 | Dot14 t = Dot14_HALF; | 
|  | 69 | Dot14 dt = Dot14_HALF; | 
|  | 70 | for (int i = 0; i < 13; i++) { | 
|  | 71 | dt >>= 1; | 
|  | 72 | Dot14 guess = eval_cubic(t, A, B, C); | 
|  | 73 | if (x < guess) { | 
|  | 74 | t -= dt; | 
|  | 75 | } else { | 
|  | 76 | t += dt; | 
|  | 77 | } | 
|  | 78 | } | 
|  | 79 |  | 
|  | 80 | // Now we have t, so compute the coeff for Y and evaluate | 
|  | 81 | b = pin_and_convert(by); | 
|  | 82 | c = pin_and_convert(cy); | 
|  | 83 | A = 3 * b; | 
|  | 84 | B = 3 * (c - 2 * b); | 
|  | 85 | C = 3 * (b - c) + Dot14_ONE; | 
|  | 86 | return SkFixedToScalar(eval_cubic(t, A, B, C) << 2); | 
|  | 87 | } | 
|  | 88 |  | 
|  | 89 | /////////////////////////////////////////////////////////////////////////////////////////////////// | 
|  | 90 |  | 
|  | 91 | SkiaInterpolatorBase::SkiaInterpolatorBase() { | 
|  | 92 | fStorage = nullptr; | 
|  | 93 | fTimes = nullptr; | 
|  | 94 | SkDEBUGCODE(fTimesArray = nullptr;) | 
|  | 95 | } | 
|  | 96 |  | 
|  | 97 | SkiaInterpolatorBase::~SkiaInterpolatorBase() { | 
|  | 98 | if (fStorage) { | 
|  | 99 | sk_free(fStorage); | 
|  | 100 | } | 
|  | 101 | } | 
|  | 102 |  | 
|  | 103 | void SkiaInterpolatorBase::reset(int elemCount, int frameCount) { | 
|  | 104 | fFlags = 0; | 
|  | 105 | fElemCount = SkToU8(elemCount); | 
|  | 106 | fFrameCount = SkToS16(frameCount); | 
|  | 107 | fRepeat = SK_Scalar1; | 
|  | 108 | if (fStorage) { | 
|  | 109 | sk_free(fStorage); | 
|  | 110 | fStorage = nullptr; | 
|  | 111 | fTimes = nullptr; | 
|  | 112 | SkDEBUGCODE(fTimesArray = nullptr); | 
|  | 113 | } | 
|  | 114 | } | 
|  | 115 |  | 
|  | 116 | /*  Each value[] run is formatted as: | 
|  | 117 | <time (in msec)> | 
|  | 118 | <blend> | 
|  | 119 | <data[fElemCount]> | 
|  | 120 |  | 
|  | 121 | Totaling fElemCount+2 entries per keyframe | 
|  | 122 | */ | 
|  | 123 |  | 
|  | 124 | bool SkiaInterpolatorBase::getDuration(SkMSec* startTime, SkMSec* endTime) const { | 
|  | 125 | if (fFrameCount == 0) { | 
|  | 126 | return false; | 
|  | 127 | } | 
|  | 128 |  | 
|  | 129 | if (startTime) { | 
|  | 130 | *startTime = fTimes[0].fTime; | 
|  | 131 | } | 
|  | 132 | if (endTime) { | 
|  | 133 | *endTime = fTimes[fFrameCount - 1].fTime; | 
|  | 134 | } | 
|  | 135 | return true; | 
|  | 136 | } | 
|  | 137 |  | 
|  | 138 | float SkiaInterpolatorBase::ComputeRelativeT(SkMSec time, SkMSec prevTime, SkMSec nextTime, | 
|  | 139 | const float blend[4]) { | 
|  | 140 | SkASSERT(time > prevTime && time < nextTime); | 
|  | 141 |  | 
|  | 142 | float t = (float)(time - prevTime) / (float)(nextTime - prevTime); | 
|  | 143 | return blend ? SkUnitCubicInterp(t, blend[0], blend[1], blend[2], blend[3]) : t; | 
|  | 144 | } | 
|  | 145 |  | 
|  | 146 | SkiaInterpolatorBase::Result SkiaInterpolatorBase::timeToT(SkMSec time, float* T, int* indexPtr, | 
|  | 147 | bool* exactPtr) const { | 
|  | 148 | SkASSERT(fFrameCount > 0); | 
|  | 149 | Result result = kNormal_Result; | 
|  | 150 | if (fRepeat != SK_Scalar1) { | 
|  | 151 | SkMSec startTime = 0, endTime = 0;  // initialize to avoid warning | 
|  | 152 | this->getDuration(&startTime, &endTime); | 
|  | 153 | SkMSec totalTime = endTime - startTime; | 
|  | 154 | SkMSec offsetTime = time - startTime; | 
|  | 155 | endTime = SkScalarFloorToInt(fRepeat * totalTime); | 
|  | 156 | if (offsetTime >= endTime) { | 
|  | 157 | float fraction = SkScalarFraction(fRepeat); | 
|  | 158 | offsetTime = fraction == 0 && fRepeat > 0 | 
|  | 159 | ? totalTime | 
|  | 160 | : (SkMSec)SkScalarFloorToInt(fraction * totalTime); | 
|  | 161 | result = kFreezeEnd_Result; | 
|  | 162 | } else { | 
|  | 163 | int mirror = fFlags & kMirror; | 
|  | 164 | offsetTime = offsetTime % (totalTime << mirror); | 
|  | 165 | if (offsetTime > totalTime) {  // can only be true if fMirror is true | 
|  | 166 | offsetTime = (totalTime << 1) - offsetTime; | 
|  | 167 | } | 
|  | 168 | } | 
|  | 169 | time = offsetTime + startTime; | 
|  | 170 | } | 
|  | 171 |  | 
|  | 172 | int index = SkTSearch<SkMSec>(&fTimes[0].fTime, fFrameCount, time, sizeof(SkTimeCode)); | 
|  | 173 |  | 
|  | 174 | bool exact = true; | 
|  | 175 |  | 
|  | 176 | if (index < 0) { | 
|  | 177 | index = ~index; | 
|  | 178 | if (index == 0) { | 
|  | 179 | result = kFreezeStart_Result; | 
|  | 180 | } else if (index == fFrameCount) { | 
|  | 181 | if (fFlags & kReset) { | 
|  | 182 | index = 0; | 
|  | 183 | } else { | 
|  | 184 | index -= 1; | 
|  | 185 | } | 
|  | 186 | result = kFreezeEnd_Result; | 
|  | 187 | } else { | 
|  | 188 | exact = false; | 
|  | 189 | } | 
|  | 190 | } | 
|  | 191 | SkASSERT(index < fFrameCount); | 
|  | 192 | const SkTimeCode* nextTime = &fTimes[index]; | 
|  | 193 | SkMSec nextT = nextTime[0].fTime; | 
|  | 194 | if (exact) { | 
|  | 195 | *T = 0; | 
|  | 196 | } else { | 
|  | 197 | SkMSec prevT = nextTime[-1].fTime; | 
|  | 198 | *T = ComputeRelativeT(time, prevT, nextT, nextTime[-1].fBlend); | 
|  | 199 | } | 
|  | 200 | *indexPtr = index; | 
|  | 201 | *exactPtr = exact; | 
|  | 202 | return result; | 
|  | 203 | } | 
|  | 204 |  | 
|  | 205 | SkiaInterpolator::SkiaInterpolator() { | 
|  | 206 | INHERITED::reset(0, 0); | 
|  | 207 | fValues = nullptr; | 
|  | 208 | SkDEBUGCODE(fScalarsArray = nullptr;) | 
|  | 209 | } | 
|  | 210 |  | 
|  | 211 | SkiaInterpolator::SkiaInterpolator(int elemCount, int frameCount) { | 
|  | 212 | SkASSERT(elemCount > 0); | 
|  | 213 | this->reset(elemCount, frameCount); | 
|  | 214 | } | 
|  | 215 |  | 
|  | 216 | void SkiaInterpolator::reset(int elemCount, int frameCount) { | 
|  | 217 | INHERITED::reset(elemCount, frameCount); | 
|  | 218 | fStorage = sk_malloc_throw((sizeof(float) * elemCount + sizeof(SkTimeCode)) * frameCount); | 
|  | 219 | fTimes = (SkTimeCode*)fStorage; | 
|  | 220 | fValues = (float*)((char*)fStorage + sizeof(SkTimeCode) * frameCount); | 
|  | 221 | #ifdef SK_DEBUG | 
|  | 222 | fTimesArray = (SkTimeCode(*)[10])fTimes; | 
|  | 223 | fScalarsArray = (float(*)[10])fValues; | 
|  | 224 | #endif | 
|  | 225 | } | 
|  | 226 |  | 
|  | 227 | #define SK_Fixed1Third (SK_Fixed1 / 3) | 
|  | 228 | #define SK_Fixed2Third (SK_Fixed1 * 2 / 3) | 
|  | 229 |  | 
|  | 230 | static const float gIdentityBlend[4] = {0.33333333f, 0.33333333f, 0.66666667f, 0.66666667f}; | 
|  | 231 |  | 
|  | 232 | bool SkiaInterpolator::setKeyFrame(int index, SkMSec time, const float values[], | 
|  | 233 | const float blend[4]) { | 
|  | 234 | SkASSERT(values != nullptr); | 
|  | 235 |  | 
|  | 236 | if (blend == nullptr) { | 
|  | 237 | blend = gIdentityBlend; | 
|  | 238 | } | 
|  | 239 |  | 
|  | 240 | bool success = ~index == SkTSearch<SkMSec>(&fTimes->fTime, index, time, sizeof(SkTimeCode)); | 
|  | 241 | SkASSERT(success); | 
|  | 242 | if (success) { | 
|  | 243 | SkTimeCode* timeCode = &fTimes[index]; | 
|  | 244 | timeCode->fTime = time; | 
|  | 245 | memcpy(timeCode->fBlend, blend, sizeof(timeCode->fBlend)); | 
|  | 246 | float* dst = &fValues[fElemCount * index]; | 
|  | 247 | memcpy(dst, values, fElemCount * sizeof(float)); | 
|  | 248 | } | 
|  | 249 | return success; | 
|  | 250 | } | 
|  | 251 |  | 
|  | 252 | SkiaInterpolator::Result SkiaInterpolator::timeToValues(SkMSec time, float values[]) const { | 
|  | 253 | float T; | 
|  | 254 | int index; | 
|  | 255 | bool exact; | 
|  | 256 | Result result = timeToT(time, &T, &index, &exact); | 
|  | 257 | if (values) { | 
|  | 258 | const float* nextSrc = &fValues[index * fElemCount]; | 
|  | 259 |  | 
|  | 260 | if (exact) { | 
|  | 261 | memcpy(values, nextSrc, fElemCount * sizeof(float)); | 
|  | 262 | } else { | 
|  | 263 | SkASSERT(index > 0); | 
|  | 264 |  | 
|  | 265 | const float* prevSrc = nextSrc - fElemCount; | 
|  | 266 |  | 
|  | 267 | for (int i = fElemCount - 1; i >= 0; --i) { | 
|  | 268 | values[i] = SkScalarInterp(prevSrc[i], nextSrc[i], T); | 
|  | 269 | } | 
|  | 270 | } | 
|  | 271 | } | 
|  | 272 | return result; | 
|  | 273 | } |