389 lines
14 KiB
C++
389 lines
14 KiB
C++
// SPDX-License-Identifier: BSD-2-Clause
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// This code is part of the sfizz library and is licensed under a BSD 2-clause
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// license. You should have receive a LICENSE.md file along with the code.
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// If not, contact the sfizz maintainers at https://github.com/sfztools/sfizz
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#include "sfizz/EventEnvelopes.h"
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#include "sfizz/SfzHelpers.h"
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#include "sfizz/Buffer.h"
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#include "catch2/catch.hpp"
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#include <absl/algorithm/container.h>
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#include <absl/types/span.h>
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#include <algorithm>
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#include <array>
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#include <iostream>
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using namespace Catch::literals;
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template <class Type>
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inline bool approxEqual(absl::Span<const Type> lhs, absl::Span<const Type> rhs, Type eps = 1e-3)
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{
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if (lhs.size() != rhs.size())
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return false;
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for (size_t i = 0; i < rhs.size(); ++i)
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if (rhs[i] != Approx(lhs[i]).epsilon(eps)) {
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std::cerr << lhs[i] << " != " << rhs[i] << " at index " << i << '\n';
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return false;
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}
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return true;
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}
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TEST_CASE("[LinearEnvelope] Basic state")
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{
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sfz::LinearEnvelope<float> envelope;
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std::array<float, 5> output;
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std::array<float, 5> expected { 0.0f, 0.0f, 0.0f, 0.0f, 0.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] Basic event")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(4, 1.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.25f, 0.5f, 0.75f, 1.0f, 1.0f, 1.0f, 1.0f, 1.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] 2 events, close")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(4, 1.0f);
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envelope.registerEvent(5, 2.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.25f, 0.5f, 0.75f, 1.0f, 2.0f, 2.0f, 2.0f, 2.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] 2 events, far")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 2.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.5f, 1.0f, 1.25f, 1.5f, 1.75f, 2.0f, 2.0f, 2.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] 2 events, reversed")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(6, 2.0f);
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envelope.registerEvent(2, 1.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.5f, 1.0f, 1.25f, 1.5f, 1.75f, 2.0f, 2.0f, 2.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] 3 events, overlapping")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 2.0f);
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envelope.registerEvent(6, 3.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.5f, 1.0f, 1.25f, 1.5f, 1.75f, 2.0f, 3.0f, 3.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] 3 events, out of block")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 2.0f);
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envelope.registerEvent(10, 3.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.5f, 1.0f, 1.25f, 1.5f, 1.75f, 2.0f, 2.5f, 3.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] 3 events, out of block, with another block call")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 2.0f);
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envelope.registerEvent(10, 3.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 3.0f, 3.0f, 3.0f, 3.0f, 3.0f, 3.0f, 3.0f, 3.0f };
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envelope.getBlock(absl::MakeSpan(output));
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] 2 events, with another block call")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 2.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 2.0f, 2.0f, 2.0f, 2.0f, 2.0f, 2.0f, 2.0f, 2.0f };
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envelope.getBlock(absl::MakeSpan(output));
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] 2 events, function")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.setFunction([](auto x) { return 2 * x; });
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 2.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 1.0f, 2.0f, 2.5f, 3.0f, 3.5f, 4.0f, 4.0f, 4.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] Get quantized")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 2.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.0f, 1.0f, 1.0f, 1.0f, 1.0f, 2.0f, 2.0f, 2.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] Get quantized with unquantized targets")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.1f);
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envelope.registerEvent(6, 1.9f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.0f, 1.0f, 1.0f, 1.0f, 1.0f, 2.0f, 2.0f, 2.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] Get quantized with 2 steps")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 3.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.0f, 1.0f, 1.0f, 2.0f, 2.0f, 3.0f, 3.0f, 3.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] Get quantized with 2 steps and an unquantized out of block step")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 3.0f);
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envelope.registerEvent(10, 4.2f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.0f, 1.0f, 1.0f, 2.0f, 2.0f, 3.0f, 3.0f, 3.0f };
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std::array<float, 8> expected2 { 4.0f, 4.0f, 4.0f,4.0f, 4.0f, 4.0f, 4.0f, 4.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected);
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected2);
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}
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TEST_CASE("[LinearEnvelope] Going down quantized with 2 steps")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.reset(3.0f);
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envelope.registerEvent(2, 2.0f);
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envelope.registerEvent(6, 0.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 3.0f, 2.0f, 2.0f, 1.0f, 1.0f, 0.0f, 0.0f, 0.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] Get quantized with 2 steps and starting unquantized")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.reset(0.1f);
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envelope.registerEvent(3, 1.0f);
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envelope.registerEvent(7, 3.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.1f, 0.1f, 1.0f, 1.0f, 2.0f, 2.0f, 3.0f, 3.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] Going down quantized with 2 steps and starting unquantized")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.reset(3.6f);
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envelope.registerEvent(4, 1.0f);
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envelope.registerEvent(7, 0.0);
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std::array<float, 8> output;
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std::array<float, 8> expected { 3.6f, 3.0f, 2.0f, 2.0f, 1.0f, 1.0f, 0.0f, 0.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] Get quantized with unclean events")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.2f);
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envelope.registerEvent(6, 2.5f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.0f, 1.0f, 1.0f, 2.0f, 2.0f, 3.0f, 3.0f, 3.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[LinearEnvelope] Get quantized 3 events, one out of block")
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{
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sfz::LinearEnvelope<float> envelope;
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envelope.registerEvent(2, 1.0f);
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envelope.registerEvent(6, 2.0f);
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envelope.registerEvent(10, 3.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.0f, 1.0f, 1.0f, 1.0f, 1.0f, 2.0f, 2.0f, 2.0f };
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std::array<float, 8> expected2 { 3.0f, 3.0f, 3.0f, 3.0f, 3.0f, 3.0f, 3.0f, 3.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected);
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envelope.getQuantizedBlock(absl::MakeSpan(output), 1.0f);
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REQUIRE(output == expected2);
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}
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//
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TEST_CASE("[MultiplicativeEnvelope] Basic state")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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std::array<float, 5> output;
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std::array<float, 5> expected { 1.0f, 1.0f, 1.0f, 1.0f, 1.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output == expected);
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}
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TEST_CASE("[MultiplicativeEnvelope] Basic event")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.registerEvent(4, 2.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 1.1892f, 1.4142f, 1.68176f, 2.0f, 2.0f, 2.0f, 2.0f, 2.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(approxEqual<float>(output, expected));
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}
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TEST_CASE("[MultiplicativeEnvelope] 2 events")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.registerEvent(4, 2.0f);
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envelope.registerEvent(5, 4.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 1.1892f, 1.4142f, 1.68176f, 2.0f, 4.0f, 4.0f, 4.0f, 4.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(approxEqual<float>(output, expected));
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}
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TEST_CASE("[MultiplicativeEnvelope] 2 events, far")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.registerEvent(2, 2.0f);
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envelope.registerEvent(6, 4.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 1.4142f, 2.0f, 2.37841f, 2.82843f, 3.36358f, 4.0f, 4.0f, 4.0f };
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(approxEqual<float>(output, expected));
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}
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TEST_CASE("[MultiplicativeEnvelope] Get quantized with 2 steps")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.registerEvent(2, 2.0f);
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envelope.registerEvent(6, 4.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 1.0f, 2.0f, 2.0f, 2.0f, 2.0f, 4.0f, 4.0f, 4.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 2.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[MultiplicativeEnvelope] Get quantized with an unquantized out of range step")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.registerEvent(2, 2.0f);
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envelope.registerEvent(6, 4.0f);
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envelope.registerEvent(10, 8.2f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 1.0f, 2.0f, 2.0f, 2.0f, 2.0f, 4.0f, 4.0f, 4.0f };
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std::array<float, 8> expected2 { 8.0f, 8.0f, 8.0f, 8.0f, 8.0f, 8.0f, 8.0f, 8.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 2.0f);
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REQUIRE(output == expected);
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envelope.getQuantizedBlock(absl::MakeSpan(output), 2.0f);
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REQUIRE(output == expected2);
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}
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TEST_CASE("[MultiplicativeEnvelope] Going down quantized with 2 steps")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.reset(4.0f);
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envelope.registerEvent(2, 2.0f);
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envelope.registerEvent(6, 0.5f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 4.0f, 2.0f, 2.0f, 1.0f, 1.0f, 0.5f, 0.5f, 0.5f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 2.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[MultiplicativeEnvelope] Get quantized with unclean events")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.registerEvent(2, 1.2f);
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envelope.registerEvent(6, 2.5f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 1.0f, 1.0f, 1.0f, 1.0f, 1.0f, 2.0f, 2.0f, 2.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 2.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[MultiplicativeEnvelope] Get quantized with 2 steps and starting unquantized")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.reset(0.9f);
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envelope.registerEvent(3, 1.0f);
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envelope.registerEvent(7, 4.0f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 0.9f, 0.9f, 1.0f, 1.0f, 2.0f, 2.0f, 4.0f, 4.0f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 2.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[MultiplicativeEnvelope] Going down quantized with 2 steps and starting unquantized")
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{
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.reset(4.6f);
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envelope.registerEvent(4, 1.0f);
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envelope.registerEvent(7, 0.25f);
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std::array<float, 8> output;
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std::array<float, 8> expected { 4.6f, 2.0f, 1.0f, 1.0f, 0.5f, 0.5f, 0.25f, 0.25f };
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envelope.getQuantizedBlock(absl::MakeSpan(output), 2.0f);
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REQUIRE(output == expected);
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}
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TEST_CASE("[MultiplicativeEnvelope] Pitch envelope basic function")
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{
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sfz::Buffer<float> output { 256 };
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sfz::MultiplicativeEnvelope<float> envelope;
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envelope.setFunction([](float pitchValue){
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const auto normalizedBend = sfz::normalizeBend(pitchValue);
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const auto bendInCents = normalizedBend * 200.0f;
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return sfz::centsFactor(bendInCents);
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});
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envelope.reset(0.0f);
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output[255] == 1.0_a);
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envelope.registerEvent(252, -6020.0f);
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envelope.getBlock(absl::MakeSpan(output));
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REQUIRE(output[255] == Approx(0.9168).epsilon(0.01));
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}
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