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viseq/include/libremidi/detail/conversion.hpp
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#pragma once
// clang-format off
#include <libremidi/config.hpp>
// clang-format on
#include <libremidi/cmidi2.hpp>
#include <libremidi/error.hpp>
#include <libremidi/message.hpp>
#include <libremidi/ump.hpp>
#include <cmath>
static inline void cmidi2_reverse(int64_t v, cmidi2_ump* output)
{
union
{
uint32_t u[2];
int64_t i;
} e0, e1;
e0.i = v;
e1.u[0] = e0.u[1];
e1.u[1] = e0.u[0];
memcpy(output, &e1, 8);
}
static inline auto u7_to_u16(uint8_t in) -> uint16_t
{
static constexpr auto ratio = float(std::numeric_limits<uint16_t>::max()) / 127.f;
return std::clamp(std::round(in * ratio), 0.f, float(std::numeric_limits<uint16_t>::max()));
};
static inline auto u7_to_u32(uint8_t in) -> uint32_t
{
static constexpr auto ratio = double(std::numeric_limits<uint32_t>::max()) / 127.;
return std::clamp(std::round(in * ratio), 0., double(std::numeric_limits<uint32_t>::max()));
};
static inline auto u16_to_u32(uint16_t in) -> uint32_t
{
static constexpr auto ratio = double(std::numeric_limits<uint32_t>::max())
/ double(std::numeric_limits<uint16_t>::max());
return std::clamp(std::round(in * ratio), 0., double(std::numeric_limits<uint32_t>::max()));
};
static inline bool
cmidi2_midi1_channel_voice_to_midi2(const uint8_t* bytes, std::size_t sz, cmidi2_ump* output)
{
if (sz < 2)
return false;
if (sz > 3)
return false;
const auto status = libremidi::message_type(bytes[0] & 0xF0);
const int channel = bytes[0] & 0x0F;
const int group = 0;
switch (status)
{
case libremidi::message_type::NOTE_OFF: {
const int64_t msg
= cmidi2_ump_midi2_note_off(group, channel, bytes[1], 0, u7_to_u16(bytes[2]), 0);
cmidi2_reverse(msg, output);
break;
}
case libremidi::message_type::NOTE_ON: {
const int64_t msg
= cmidi2_ump_midi2_note_on(group, channel, bytes[1], 0, u7_to_u16(bytes[2]), 0);
cmidi2_reverse(msg, output);
break;
}
case libremidi::message_type::POLY_PRESSURE: {
const int64_t msg = cmidi2_ump_midi2_paf(group, channel, bytes[1], u7_to_u32(bytes[2]));
cmidi2_reverse(msg, output);
break;
}
case libremidi::message_type::CONTROL_CHANGE: {
const int64_t msg = cmidi2_ump_midi2_cc(group, channel, bytes[1], u7_to_u32(bytes[2]));
cmidi2_reverse(msg, output);
break;
}
case libremidi::message_type::PROGRAM_CHANGE: {
const int64_t msg = cmidi2_ump_midi2_program(group, channel, 0, bytes[1], 0, 0);
cmidi2_reverse(msg, output);
break;
}
case libremidi::message_type::AFTERTOUCH: {
const int64_t msg = cmidi2_ump_midi2_caf(group, channel, u7_to_u32(bytes[1]));
cmidi2_reverse(msg, output);
break;
}
case libremidi::message_type::PITCH_BEND: {
const auto pb = bytes[1] + bytes[2] * 0x80;
const int64_t msg = cmidi2_ump_midi2_pitch_bend_direct(group, channel, u16_to_u32(pb));
cmidi2_reverse(msg, output);
break;
}
default:
return false;
}
return true;
}
static inline bool
cmidi2_ump_upgrade_midi1_channel_voice_to_midi2(const cmidi2_ump* input, cmidi2_ump* output)
{
if (cmidi2_ump_get_message_type(input) != CMIDI2_MESSAGE_TYPE_MIDI_1_CHANNEL)
return false;
const auto group = cmidi2_ump_get_group(input);
const auto channel = cmidi2_ump_get_channel(input);
const auto status = cmidi2_ump_get_status_code(input);
const auto b1 = cmidi2_ump_get_midi1_byte2(input);
const auto b2 = cmidi2_ump_get_midi1_byte3(input);
switch (status)
{
// Not in midi 1:
case CMIDI2_STATUS_PER_NOTE_RCC:
case CMIDI2_STATUS_PER_NOTE_ACC:
case CMIDI2_STATUS_RPN:
case CMIDI2_STATUS_NRPN:
case CMIDI2_STATUS_RELATIVE_RPN:
case CMIDI2_STATUS_RELATIVE_NRPN:
case CMIDI2_STATUS_PER_NOTE_PITCH_BEND:
case CMIDI2_STATUS_PER_NOTE_MANAGEMENT:
return false;
case CMIDI2_STATUS_NOTE_OFF: {
const int64_t msg = cmidi2_ump_midi2_note_off(group, channel, b1, 0, u7_to_u16(b2), 0);
cmidi2_reverse(msg, output);
break;
}
case CMIDI2_STATUS_NOTE_ON: {
const int64_t msg = cmidi2_ump_midi2_note_on(group, channel, b1, 0, u7_to_u16(b2), 0);
cmidi2_reverse(msg, output);
break;
}
case CMIDI2_STATUS_PAF: {
const int64_t msg = cmidi2_ump_midi2_paf(group, channel, b1, u7_to_u32(b2));
cmidi2_reverse(msg, output);
break;
}
case CMIDI2_STATUS_CC: {
int64_t msg = cmidi2_ump_midi2_cc(group, channel, b1, u7_to_u32(b2));
cmidi2_reverse(msg, output);
break;
}
case CMIDI2_STATUS_PROGRAM: {
const int64_t msg = cmidi2_ump_midi2_program(group, channel, 0, b1, 0, 0);
cmidi2_reverse(msg, output);
break;
}
case CMIDI2_STATUS_CAF: {
const int64_t msg = cmidi2_ump_midi2_caf(group, channel, u7_to_u32(b1));
cmidi2_reverse(msg, output);
break;
}
case CMIDI2_STATUS_PITCH_BEND: {
const auto pb = b1 + b2 * 0x80;
const int64_t msg = cmidi2_ump_midi2_pitch_bend_direct(group, channel, u16_to_u32(pb));
cmidi2_reverse(msg, output);
break;
}
}
return true;
}
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namespace libremidi
{
static inline libremidi::message midi1_from_ump(libremidi::ump u)
{
libremidi::message ret;
ret.bytes.resize(4);
if (auto n = cmidi2_convert_single_ump_to_midi1((uint8_t*)ret.bytes.data(), 4, u.data))
{
ret.timestamp = u.timestamp;
ret.bytes.resize(n);
}
else
{
ret.bytes.clear();
}
return ret;
}
static inline libremidi::ump ump_from_midi1(libremidi::message u)
{
libremidi::ump ret;
if (!u.bytes.empty())
{
ret.timestamp = u.timestamp;
cmidi2_midi1_channel_voice_to_midi2(u.bytes.data(), u.bytes.size(), ret.data);
}
return ret;
}
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struct midi1_to_midi2
{
stdx::error
convert(const unsigned char* message, std::size_t size, int64_t timestamp, auto on_ump)
{
context.midi1 = const_cast<unsigned char*>(message);
context.midi1_num_bytes = size;
context.midi1_proceeded_bytes = 0;
context.ump = ump;
context.ump_num_bytes = sizeof(ump);
context.ump_proceeded_bytes = 0;
context.skip_delta_time = true;
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switch (cmidi2_convert_midi1_to_ump(&context))
{
case CMIDI2_CONVERSION_RESULT_OK: {
if (auto n = context.ump_proceeded_bytes; n > 0)
return on_ump(context.ump, context.ump_proceeded_bytes / 4, timestamp);
else
return std::errc::operation_not_supported;
}
case CMIDI2_CONVERSION_RESULT_OUT_OF_SPACE:
return std::errc::no_buffer_space;
case CMIDI2_CONVERSION_RESULT_INVALID_SYSEX:
return std::errc::invalid_argument;
case CMIDI2_CONVERSION_RESULT_INVALID_DTE_SEQUENCE:
return std::errc::invalid_argument;
case CMIDI2_CONVERSION_RESULT_INVALID_STATUS:
return std::errc::invalid_argument;
case CMIDI2_CONVERSION_RESULT_INCOMPLETE_SYSEX7:
return std::errc::invalid_argument;
case CMIDI2_CONVERSION_RESULT_INVALID_INPUT:
return std::errc::invalid_argument;
default:
return std::errc::operation_not_supported;
}
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}
cmidi2_midi_conversion_context context = [] {
cmidi2_midi_conversion_context tmp;
cmidi2_midi_conversion_context_initialize(&tmp);
return tmp;
}();
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uint32_t ump[65536 / 4];
};
struct midi2_to_midi1
{
stdx::error convert(const uint32_t* message, std::size_t size, int64_t timestamp, auto on_midi)
{
context.midi1 = static_cast<unsigned char*>(midi);
context.midi1_num_bytes = sizeof(midi);
context.midi1_proceeded_bytes = 0;
context.ump = const_cast<uint32_t*>(message);
context.ump_num_bytes = size * sizeof(uint32_t);
context.ump_proceeded_bytes = 0;
context.skip_delta_time = true;
switch (cmidi2_convert_ump_to_midi1(&context))
{
case CMIDI2_CONVERSION_RESULT_OK: {
if (auto n = context.midi1_proceeded_bytes; n > 0)
return on_midi(midi, n, timestamp);
else
return std::errc::operation_not_supported;
}
case CMIDI2_CONVERSION_RESULT_OUT_OF_SPACE:
return std::errc::no_buffer_space;
case CMIDI2_CONVERSION_RESULT_INVALID_SYSEX:
return std::errc::invalid_argument;
case CMIDI2_CONVERSION_RESULT_INVALID_DTE_SEQUENCE:
return std::errc::invalid_argument;
case CMIDI2_CONVERSION_RESULT_INVALID_STATUS:
return std::errc::invalid_argument;
case CMIDI2_CONVERSION_RESULT_INCOMPLETE_SYSEX7:
return std::errc::invalid_argument;
case CMIDI2_CONVERSION_RESULT_INVALID_INPUT:
return std::errc::invalid_argument;
default:
return std::errc::operation_not_supported;
}
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}
cmidi2_midi_conversion_context context = [] {
cmidi2_midi_conversion_context tmp;
cmidi2_midi_conversion_context_initialize(&tmp);
return tmp;
}();
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uint8_t midi[65536];
};
}