2019-12-24 15:05:24 +00:00
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#ifndef cwMidi_h
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#define cwMidi_h
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namespace cw
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{
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namespace midi
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{
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enum
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{
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kMidiChCnt = 16,
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kInvalidMidiByte = 128,
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kMidiNoteCnt = kInvalidMidiByte,
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kMidiCtlCnt = kInvalidMidiByte,
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2022-10-15 13:26:35 +00:00
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kMidiVelCnt = kInvalidMidiByte,
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2019-12-24 15:05:24 +00:00
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kMidiPgmCnt = kInvalidMidiByte,
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kInvalidMidiPitch = kInvalidMidiByte,
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kInvalidMidiVelocity = kInvalidMidiByte,
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kInvalidMidiCtl = kInvalidMidiByte,
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kInvalidMidiPgm = kInvalidMidiByte,
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kMidiSciPitchCharCnt = 5 // A#-1
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};
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// MIDI status bytes
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enum
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{
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kInvalidStatusMdId = 0x00,
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kNoteOffMdId = 0x80,
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kNoteOnMdId = 0x90,
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kPolyPresMdId = 0xa0,
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kCtlMdId = 0xb0,
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kPgmMdId = 0xc0,
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kChPresMdId = 0xd0,
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kPbendMdId = 0xe0,
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kSysExMdId = 0xf0,
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kSysComMtcMdId = 0xf1,
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kSysComSppMdId = 0xf2,
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kSysComSelMdId = 0xf3,
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kSysComUndef0MdId = 0xf4,
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kSysComUndef1MdId = 0xf5,
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kSysComTuneMdId = 0xf6,
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kSysComEoxMdId = 0xf7,
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kSysRtClockMdId = 0xf8,
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kSysRtUndef0MdId = 0xf9,
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kSysRtStartMdId = 0xfa,
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kSysRtContMdId = 0xfb,
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kSysRtStopMdId = 0xfc,
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kSysRtUndef1MdId = 0xfd,
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kSysRtSenseMdId = 0xfe,
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kSysRtResetMdId = 0xff,
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kMetaStId = 0xff,
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kSeqNumbMdId = 0x00,
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kTextMdId = 0x01,
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kCopyMdId = 0x02,
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kTrkNameMdId = 0x03,
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kInstrNameMdId = 0x04,
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kLyricsMdId = 0x05,
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kMarkerMdId = 0x06,
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kCuePointMdId = 0x07,
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kMidiChMdId = 0x20,
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2021-02-21 13:47:29 +00:00
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kMidiPortMdId = 0x21,
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kEndOfTrkMdId = 0x2f,
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kTempoMdId = 0x51,
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kSmpteMdId = 0x54,
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kTimeSigMdId = 0x58,
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kKeySigMdId = 0x59,
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kSeqSpecMdId = 0x7f,
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kInvalidMetaMdId = 0x80,
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kSustainCtlMdId = 0x40,
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kPortamentoCtlMdId = 0x41,
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kSostenutoCtlMdId = 0x42,
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kSoftPedalCtlMdId = 0x43,
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kLegatoCtlMdId = 0x44
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};
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//===============================================================================================
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// Utility Functions
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//
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template< typename T> bool isStatus( T s ) { return (kNoteOffMdId <= (s) /*&& ((unsigned)(s)) <= kSysRtResetMdId*/ ); }
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template< typename T> bool isChStatus( T s ) { return (kNoteOffMdId <= (s) && (s) < kSysExMdId); }
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template< typename T> bool isNoteOn( T s ) { return ( kNoteOnMdId <= (s) && (s) <= (kNoteOnMdId + kMidiChCnt) ); }
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template< typename T> bool isNoteOff( T s, T d1 ) { return ( (isNoteOn(s) && (d1)==0) || (kNoteOffMdId <= (s) && (s) <= (kNoteOffMdId + kMidiChCnt)) ); }
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template< typename T> bool isCtl( T s ) { return ( kCtlMdId <= (s) && (s) <= (kCtlMdId + kMidiChCnt) ); }
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template< typename T> bool isSustainPedal( T s, T d0 ) { return ( kCtlMdId <= (s) && (s) <= (kCtlMdId + kMidiChCnt) && (d0)== kSustainCtlMdId ); }
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template< typename T> bool isSustainPedalDown( T s, T d0, T d1) { return ( isSustainPedal(s,d0) && (d1)>=64 ); }
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template< typename T> bool isSustainPedalUp( T s, T d0, T d1) { return ( isSustainPedal(s,d0) && (d1)<64 ); }
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template< typename T> bool isSostenutoPedal( T s, T d0 ) { return ( kCtlMdId <= (s) && (s) <= (kCtlMdId + kMidiChCnt) && (d0)== kSostenutoCtlMdId ); }
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template< typename T> bool isSostenutoPedalDown( T s, T d0, T d1) { return ( isSostenutoPedal(s,d0) && (d1)>=64 ); }
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template< typename T> bool isSostenutoPedalUp( T s, T d0, T d1) { return ( isSostenutoPedal(s,d0) && (d1)<64 ); }
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template< typename T> bool isPedal( T s, T d0 ) { return ( kCtlMdId <= (s) && (s) <= (kCtlMdId + kMidiChCnt) && (d0)>=kSustainCtlMdId && (d0)<=kLegatoCtlMdId ); }
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template< typename T> bool isPedalDown( T s, T d0, T d1 ) { return ( isPedal(s,d0) && (d1)>=64 ); }
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template< typename T> bool isPedalUp( T s, T d0, T d1 ) { return ( isPedal(s,d0) && (d1)<64 ); }
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2019-12-24 15:05:24 +00:00
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2020-03-23 14:41:28 +00:00
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2019-12-24 15:05:24 +00:00
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2020-03-23 14:41:28 +00:00
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const char* statusToLabel( uint8_t status );
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const char* metaStatusToLabel( uint8_t metaStatus );
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const char* pedalLabel( uint8_t d0 );
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// Returns kInvalidMidiByte if status is not a valid status byte
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uint8_t statusToByteCount( uint8_t status );
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2019-12-24 15:05:24 +00:00
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2020-03-23 14:41:28 +00:00
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unsigned to14Bits( uint8_t d0, uint8_t d1 );
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void split14Bits( unsigned v, uint8_t& d0Ref, uint8_t& d1Ref );
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int toPbend( uint8_t d0, uint8_t d1 );
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void splitPbend( int v, uint8_t& d0Ref, uint8_t& d1Ref );
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//===============================================================================================
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// MIDI Communication data types
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//
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// Notes: If the sys-ex message can be contained in a single msg then
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// then the first msg byte is kSysExMdId and the last is kSysComEoxMdId.
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// If the sys-ex message is broken into multiple pieces then only the
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// first will begin with kSysExMdId and the last will end with kSysComEoxMdId.
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// If label is NULL or labelCharCnt==0 then a pointer to an internal static
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// buffer is returned. If label[] is given the it
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2022-03-20 14:15:28 +00:00
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// should have at least 5 (kMidiSciPitchCharCnt) char's (including the terminating zero).
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// If 'pitch' is outside of the range 0-127 then a blank string is returned.
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const char* midiToSciPitch( uint8_t pitch, char* label, unsigned labelCharCnt );
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// Convert a scientific pitch to MIDI pitch. acc == 1 == sharp, acc == -1 == flat.
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// The pitch character must be in the range 'A' to 'G'. Upper or lower case is valid.
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// Return kInvalidMidiPitch if the arguments are not valid.
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uint8_t sciPitchToMidiPitch( char pitch, int acc, int octave );
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// Scientific pitch string: [A-Ga-g][#b][#] where # may be -1 to 9.
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// Return kInvalidMidiPitch if sciPtichStr does not contain a valid
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// scientific pitch string. This function will convert C-1 to G9 to
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// valid MIDI pitch values 0 to 127. Scientific pitch strings outside
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// of this range will be returned as kInvalidMidiPitch.
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2020-03-23 14:41:28 +00:00
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uint8_t sciPitchToMidi( const char* sciPitchStr );
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}
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}
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#endif
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