1*05767d91SRobert Wu /*
2*05767d91SRobert Wu * Copyright 2018 The Android Open Source Project
3*05767d91SRobert Wu *
4*05767d91SRobert Wu * Licensed under the Apache License, Version 2.0 (the "License");
5*05767d91SRobert Wu * you may not use this file except in compliance with the License.
6*05767d91SRobert Wu * You may obtain a copy of the License at
7*05767d91SRobert Wu *
8*05767d91SRobert Wu * http://www.apache.org/licenses/LICENSE-2.0
9*05767d91SRobert Wu *
10*05767d91SRobert Wu * Unless required by applicable law or agreed to in writing, software
11*05767d91SRobert Wu * distributed under the License is distributed on an "AS IS" BASIS,
12*05767d91SRobert Wu * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13*05767d91SRobert Wu * See the License for the specific language governing permissions and
14*05767d91SRobert Wu * limitations under the License.
15*05767d91SRobert Wu */
16*05767d91SRobert Wu
17*05767d91SRobert Wu /*
18*05767d91SRobert Wu * Test FlowGraph
19*05767d91SRobert Wu */
20*05767d91SRobert Wu
21*05767d91SRobert Wu #include "stdio.h"
22*05767d91SRobert Wu
23*05767d91SRobert Wu #include <gtest/gtest.h>
24*05767d91SRobert Wu #include <oboe/Oboe.h>
25*05767d91SRobert Wu
26*05767d91SRobert Wu #include "flowgraph/ClipToRange.h"
27*05767d91SRobert Wu #include "flowgraph/Limiter.h"
28*05767d91SRobert Wu #include "flowgraph/MonoToMultiConverter.h"
29*05767d91SRobert Wu #include "flowgraph/SourceFloat.h"
30*05767d91SRobert Wu #include "flowgraph/RampLinear.h"
31*05767d91SRobert Wu #include "flowgraph/SinkFloat.h"
32*05767d91SRobert Wu #include "flowgraph/SinkI16.h"
33*05767d91SRobert Wu #include "flowgraph/SinkI24.h"
34*05767d91SRobert Wu #include "flowgraph/SinkI32.h"
35*05767d91SRobert Wu #include "flowgraph/SourceI16.h"
36*05767d91SRobert Wu #include "flowgraph/SourceI24.h"
37*05767d91SRobert Wu
38*05767d91SRobert Wu using namespace oboe::flowgraph;
39*05767d91SRobert Wu
40*05767d91SRobert Wu constexpr int kBytesPerI24Packed = 3;
41*05767d91SRobert Wu
TEST(test_flowgraph,module_sinki16)42*05767d91SRobert Wu TEST(test_flowgraph, module_sinki16) {
43*05767d91SRobert Wu static const float input[] = {1.0f, 0.5f, -0.25f, -1.0f, 0.0f, 53.9f, -87.2f};
44*05767d91SRobert Wu static const int16_t expected[] = {32767, 16384, -8192, -32768, 0, 32767, -32768};
45*05767d91SRobert Wu int16_t output[20];
46*05767d91SRobert Wu SourceFloat sourceFloat{1};
47*05767d91SRobert Wu SinkI16 sinkI16{1};
48*05767d91SRobert Wu
49*05767d91SRobert Wu int numInputFrames = sizeof(input) / sizeof(input[0]);
50*05767d91SRobert Wu sourceFloat.setData(input, numInputFrames);
51*05767d91SRobert Wu sourceFloat.output.connect(&sinkI16.input);
52*05767d91SRobert Wu
53*05767d91SRobert Wu int numOutputFrames = sizeof(output) / sizeof(int16_t);
54*05767d91SRobert Wu int32_t numRead = sinkI16.read(output, numOutputFrames);
55*05767d91SRobert Wu ASSERT_EQ(numInputFrames, numRead);
56*05767d91SRobert Wu for (int i = 0; i < numRead; i++) {
57*05767d91SRobert Wu EXPECT_EQ(expected[i], output[i]);
58*05767d91SRobert Wu }
59*05767d91SRobert Wu }
60*05767d91SRobert Wu
TEST(test_flowgraph,module_mono_to_stereo)61*05767d91SRobert Wu TEST(test_flowgraph, module_mono_to_stereo) {
62*05767d91SRobert Wu static const float input[] = {1.0f, 2.0f, 3.0f};
63*05767d91SRobert Wu float output[100] = {};
64*05767d91SRobert Wu SourceFloat sourceFloat{1};
65*05767d91SRobert Wu MonoToMultiConverter monoToStereo{2};
66*05767d91SRobert Wu SinkFloat sinkFloat{2};
67*05767d91SRobert Wu
68*05767d91SRobert Wu sourceFloat.setData(input, 3);
69*05767d91SRobert Wu
70*05767d91SRobert Wu sourceFloat.output.connect(&monoToStereo.input);
71*05767d91SRobert Wu monoToStereo.output.connect(&sinkFloat.input);
72*05767d91SRobert Wu
73*05767d91SRobert Wu int32_t numRead = sinkFloat.read(output, 8);
74*05767d91SRobert Wu ASSERT_EQ(3, numRead);
75*05767d91SRobert Wu EXPECT_EQ(input[0], output[0]);
76*05767d91SRobert Wu EXPECT_EQ(input[0], output[1]);
77*05767d91SRobert Wu EXPECT_EQ(input[1], output[2]);
78*05767d91SRobert Wu EXPECT_EQ(input[1], output[3]);
79*05767d91SRobert Wu }
80*05767d91SRobert Wu
TEST(test_flowgraph,module_ramp_linear)81*05767d91SRobert Wu TEST(test_flowgraph, module_ramp_linear) {
82*05767d91SRobert Wu constexpr int singleNumOutput = 1;
83*05767d91SRobert Wu constexpr int rampSize = 5;
84*05767d91SRobert Wu constexpr int numOutput = 100;
85*05767d91SRobert Wu constexpr float value = 1.0f;
86*05767d91SRobert Wu constexpr float initialTarget = 10.0f;
87*05767d91SRobert Wu constexpr float finalTarget = 100.0f;
88*05767d91SRobert Wu constexpr float tolerance = 0.0001f; // arbitrary
89*05767d91SRobert Wu float output[numOutput] = {};
90*05767d91SRobert Wu RampLinear rampLinear{1};
91*05767d91SRobert Wu SinkFloat sinkFloat{1};
92*05767d91SRobert Wu
93*05767d91SRobert Wu rampLinear.input.setValue(value);
94*05767d91SRobert Wu rampLinear.setLengthInFrames(rampSize);
95*05767d91SRobert Wu rampLinear.output.connect(&sinkFloat.input);
96*05767d91SRobert Wu
97*05767d91SRobert Wu // Check that the values go to the initial target instantly.
98*05767d91SRobert Wu rampLinear.setTarget(initialTarget);
99*05767d91SRobert Wu int32_t singleNumRead = sinkFloat.read(output, singleNumOutput);
100*05767d91SRobert Wu ASSERT_EQ(singleNumRead, singleNumOutput);
101*05767d91SRobert Wu EXPECT_NEAR(value * initialTarget, output[0], tolerance);
102*05767d91SRobert Wu
103*05767d91SRobert Wu // Now set target and check that the linear ramp works as expected.
104*05767d91SRobert Wu rampLinear.setTarget(finalTarget);
105*05767d91SRobert Wu int32_t numRead = sinkFloat.read(output, numOutput);
106*05767d91SRobert Wu const float incrementSize = (finalTarget - initialTarget) / rampSize;
107*05767d91SRobert Wu ASSERT_EQ(numOutput, numRead);
108*05767d91SRobert Wu
109*05767d91SRobert Wu int i = 0;
110*05767d91SRobert Wu for (; i < rampSize; i++) {
111*05767d91SRobert Wu float expected = value * (initialTarget + i * incrementSize);
112*05767d91SRobert Wu EXPECT_NEAR(expected, output[i], tolerance);
113*05767d91SRobert Wu }
114*05767d91SRobert Wu for (; i < numOutput; i++) {
115*05767d91SRobert Wu float expected = value * finalTarget;
116*05767d91SRobert Wu EXPECT_NEAR(expected, output[i], tolerance);
117*05767d91SRobert Wu }
118*05767d91SRobert Wu }
119*05767d91SRobert Wu
120*05767d91SRobert Wu // It is easiest to represent packed 24-bit data as a byte array.
121*05767d91SRobert Wu // This test will read from input, convert to float, then write
122*05767d91SRobert Wu // back to output as bytes.
TEST(test_flowgraph,module_packed_24)123*05767d91SRobert Wu TEST(test_flowgraph, module_packed_24) {
124*05767d91SRobert Wu static const uint8_t input[] = {0x01, 0x23, 0x45,
125*05767d91SRobert Wu 0x67, 0x89, 0xAB,
126*05767d91SRobert Wu 0xCD, 0xEF, 0x5A};
127*05767d91SRobert Wu uint8_t output[99] = {};
128*05767d91SRobert Wu SourceI24 sourceI24{1};
129*05767d91SRobert Wu SinkI24 sinkI24{1};
130*05767d91SRobert Wu
131*05767d91SRobert Wu int numInputFrames = sizeof(input) / kBytesPerI24Packed;
132*05767d91SRobert Wu sourceI24.setData(input, numInputFrames);
133*05767d91SRobert Wu sourceI24.output.connect(&sinkI24.input);
134*05767d91SRobert Wu
135*05767d91SRobert Wu int32_t numRead = sinkI24.read(output, sizeof(output) / kBytesPerI24Packed);
136*05767d91SRobert Wu ASSERT_EQ(numInputFrames, numRead);
137*05767d91SRobert Wu for (size_t i = 0; i < sizeof(input); i++) {
138*05767d91SRobert Wu EXPECT_EQ(input[i], output[i]);
139*05767d91SRobert Wu }
140*05767d91SRobert Wu }
141*05767d91SRobert Wu
TEST(test_flowgraph,module_clip_to_range)142*05767d91SRobert Wu TEST(test_flowgraph, module_clip_to_range) {
143*05767d91SRobert Wu constexpr float myMin = -2.0f;
144*05767d91SRobert Wu constexpr float myMax = 1.5f;
145*05767d91SRobert Wu
146*05767d91SRobert Wu static const float input[] = {-9.7, 0.5f, -0.25, 1.0f, 12.3};
147*05767d91SRobert Wu static const float expected[] = {myMin, 0.5f, -0.25, 1.0f, myMax};
148*05767d91SRobert Wu float output[100];
149*05767d91SRobert Wu SourceFloat sourceFloat{1};
150*05767d91SRobert Wu ClipToRange clipper{1};
151*05767d91SRobert Wu SinkFloat sinkFloat{1};
152*05767d91SRobert Wu
153*05767d91SRobert Wu int numInputFrames = sizeof(input) / sizeof(input[0]);
154*05767d91SRobert Wu sourceFloat.setData(input, numInputFrames);
155*05767d91SRobert Wu
156*05767d91SRobert Wu clipper.setMinimum(myMin);
157*05767d91SRobert Wu clipper.setMaximum(myMax);
158*05767d91SRobert Wu
159*05767d91SRobert Wu sourceFloat.output.connect(&clipper.input);
160*05767d91SRobert Wu clipper.output.connect(&sinkFloat.input);
161*05767d91SRobert Wu
162*05767d91SRobert Wu int numOutputFrames = sizeof(output) / sizeof(output[0]);
163*05767d91SRobert Wu int32_t numRead = sinkFloat.read(output, numOutputFrames);
164*05767d91SRobert Wu ASSERT_EQ(numInputFrames, numRead);
165*05767d91SRobert Wu constexpr float tolerance = 0.000001f; // arbitrary
166*05767d91SRobert Wu for (int i = 0; i < numRead; i++) {
167*05767d91SRobert Wu EXPECT_NEAR(expected[i], output[i], tolerance);
168*05767d91SRobert Wu }
169*05767d91SRobert Wu }
170*05767d91SRobert Wu
TEST(test_flowgraph,module_sinki32)171*05767d91SRobert Wu TEST(test_flowgraph, module_sinki32) {
172*05767d91SRobert Wu static constexpr int kNumSamples = 8;
173*05767d91SRobert Wu static const float input[] = {
174*05767d91SRobert Wu 1.0f, 0.5f, -0.25f, -1.0f,
175*05767d91SRobert Wu 0.0f, 53.9f, -87.2f, -1.02f};
176*05767d91SRobert Wu static const int32_t expected[] = {
177*05767d91SRobert Wu INT32_MAX, 1 << 30, INT32_MIN / 4, INT32_MIN,
178*05767d91SRobert Wu 0, INT32_MAX, INT32_MIN, INT32_MIN};
179*05767d91SRobert Wu int32_t output[kNumSamples + 10]; // larger than input
180*05767d91SRobert Wu
181*05767d91SRobert Wu SourceFloat sourceFloat{1};
182*05767d91SRobert Wu SinkI32 sinkI32{1};
183*05767d91SRobert Wu
184*05767d91SRobert Wu sourceFloat.setData(input, kNumSamples);
185*05767d91SRobert Wu sourceFloat.output.connect(&sinkI32.input);
186*05767d91SRobert Wu
187*05767d91SRobert Wu int numOutputFrames = sizeof(output) / sizeof(int32_t);
188*05767d91SRobert Wu int32_t numRead = sinkI32.read(output, numOutputFrames);
189*05767d91SRobert Wu ASSERT_EQ(kNumSamples, numRead);
190*05767d91SRobert Wu for (int i = 0; i < numRead; i++) {
191*05767d91SRobert Wu EXPECT_EQ(expected[i], output[i]) << ", i = " << i;
192*05767d91SRobert Wu }
193*05767d91SRobert Wu }
194*05767d91SRobert Wu
TEST(test_flowgraph,module_limiter)195*05767d91SRobert Wu TEST(test_flowgraph, module_limiter) {
196*05767d91SRobert Wu constexpr int kNumSamples = 101;
197*05767d91SRobert Wu constexpr float kLastSample = 3.0f;
198*05767d91SRobert Wu constexpr float kFirstSample = -kLastSample;
199*05767d91SRobert Wu constexpr float kDeltaBetweenSamples = (kLastSample - kFirstSample) / (kNumSamples - 1);
200*05767d91SRobert Wu constexpr float kTolerance = 0.00001f;
201*05767d91SRobert Wu
202*05767d91SRobert Wu float input[kNumSamples];
203*05767d91SRobert Wu float output[kNumSamples];
204*05767d91SRobert Wu SourceFloat sourceFloat{1};
205*05767d91SRobert Wu Limiter limiter{1};
206*05767d91SRobert Wu SinkFloat sinkFloat{1};
207*05767d91SRobert Wu
208*05767d91SRobert Wu for (int i = 0; i < kNumSamples; i++) {
209*05767d91SRobert Wu input[i] = kFirstSample + i * kDeltaBetweenSamples;
210*05767d91SRobert Wu }
211*05767d91SRobert Wu
212*05767d91SRobert Wu const int numInputFrames = std::size(input);
213*05767d91SRobert Wu sourceFloat.setData(input, numInputFrames);
214*05767d91SRobert Wu
215*05767d91SRobert Wu sourceFloat.output.connect(&limiter.input);
216*05767d91SRobert Wu limiter.output.connect(&sinkFloat.input);
217*05767d91SRobert Wu
218*05767d91SRobert Wu const int numOutputFrames = std::size(output);
219*05767d91SRobert Wu int32_t numRead = sinkFloat.read(output, numOutputFrames);
220*05767d91SRobert Wu ASSERT_EQ(numInputFrames, numRead);
221*05767d91SRobert Wu
222*05767d91SRobert Wu for (int i = 0; i < numRead; i++) {
223*05767d91SRobert Wu // limiter must be symmetric wrt 0.
224*05767d91SRobert Wu EXPECT_NEAR(output[i], -output[kNumSamples - i - 1], kTolerance);
225*05767d91SRobert Wu if (i > 0) {
226*05767d91SRobert Wu EXPECT_GE(output[i], output[i - 1]); // limiter must be monotonic
227*05767d91SRobert Wu }
228*05767d91SRobert Wu if (input[i] == 0.f) {
229*05767d91SRobert Wu EXPECT_EQ(0.f, output[i]);
230*05767d91SRobert Wu } else if (input[i] > 0.0f) {
231*05767d91SRobert Wu EXPECT_GE(output[i], 0.0f);
232*05767d91SRobert Wu EXPECT_LE(output[i], M_SQRT2); // limiter actually limits
233*05767d91SRobert Wu EXPECT_LE(output[i], input[i]); // a limiter, gain <= 1
234*05767d91SRobert Wu } else {
235*05767d91SRobert Wu EXPECT_LE(output[i], 0.0f);
236*05767d91SRobert Wu EXPECT_GE(output[i], -M_SQRT2); // limiter actually limits
237*05767d91SRobert Wu EXPECT_GE(output[i], input[i]); // a limiter, gain <= 1
238*05767d91SRobert Wu }
239*05767d91SRobert Wu if (-1.f <= input[i] && input[i] <= 1.f) {
240*05767d91SRobert Wu EXPECT_EQ(input[i], output[i]);
241*05767d91SRobert Wu }
242*05767d91SRobert Wu }
243*05767d91SRobert Wu }
244*05767d91SRobert Wu
TEST(test_flowgraph,module_limiter_nan)245*05767d91SRobert Wu TEST(test_flowgraph, module_limiter_nan) {
246*05767d91SRobert Wu constexpr int kArbitraryOutputSize = 100;
247*05767d91SRobert Wu constexpr float kFloatNan = NAN;
248*05767d91SRobert Wu static const float input[] = {kFloatNan, 0.5f, kFloatNan, kFloatNan, -10.0f, kFloatNan};
249*05767d91SRobert Wu static const float expected[] = {0.0f, 0.5f, 0.5f, 0.5f, -M_SQRT2, -M_SQRT2};
250*05767d91SRobert Wu constexpr float tolerance = 0.00001f;
251*05767d91SRobert Wu float output[kArbitraryOutputSize];
252*05767d91SRobert Wu SourceFloat sourceFloat{1};
253*05767d91SRobert Wu Limiter limiter{1};
254*05767d91SRobert Wu SinkFloat sinkFloat{1};
255*05767d91SRobert Wu
256*05767d91SRobert Wu const int numInputFrames = std::size(input);
257*05767d91SRobert Wu sourceFloat.setData(input, numInputFrames);
258*05767d91SRobert Wu
259*05767d91SRobert Wu sourceFloat.output.connect(&limiter.input);
260*05767d91SRobert Wu limiter.output.connect(&sinkFloat.input);
261*05767d91SRobert Wu
262*05767d91SRobert Wu const int numOutputFrames = std::size(output);
263*05767d91SRobert Wu int32_t numRead = sinkFloat.read(output, numOutputFrames);
264*05767d91SRobert Wu ASSERT_EQ(numInputFrames, numRead);
265*05767d91SRobert Wu
266*05767d91SRobert Wu for (int i = 0; i < numRead; i++) {
267*05767d91SRobert Wu EXPECT_NEAR(expected[i], output[i], tolerance);
268*05767d91SRobert Wu }
269*05767d91SRobert Wu }
270