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SuperBinaryOpUGen.cpp
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/*
SuperCollider real time audio synthesis system
Copyright (c) 2002 James McCartney. All rights reserved.
http://www.audiosynth.com
This program is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
*/
#include "SC_PlugIn.h"
#include <boost/align/is_aligned.hpp>
#ifdef _MSC_VER
// hypotf is c99, but not c++
# define hypotf _hypotf
#endif
#ifdef NOVA_SIMD
# include "simd_binary_arithmetic.hpp"
# include "simd_math.hpp"
# include "simd_memory.hpp"
# include "function_attributes.h"
using nova::slope_argument;
# define NOVA_BINARY_WRAPPER(SCNAME, NOVANAME) \
FLATTEN void SCNAME##_aa_nova(SuperBinaryOpUGen* unit, int inNumSamples) { \
nova::NOVANAME##_vec_simd(OUT(0), IN(0), IN(1), inNumSamples); \
} \
\
FLATTEN void SCNAME##_aa_nova_64(SuperBinaryOpUGen* unit, int inNumSamples) { \
nova::NOVANAME##_vec_simd<64>(OUT(0), IN(0), IN(1)); \
} \
\
FLATTEN void SCNAME##_ia_nova(SuperBinaryOpUGen* unit, int inNumSamples) { \
double xa = DOUBLE_ZIN0(unit, 0); \
\
nova::NOVANAME##_vec_simd(OUT(0), xa, IN(1), inNumSamples); \
unit->mPrevA = xa; \
} \
\
FLATTEN void SCNAME##_ia_nova_64(SuperBinaryOpUGen* unit, int inNumSamples) { \
double xa = DOUBLE_ZIN0(unit, 0); \
\
nova::NOVANAME##_vec_simd<64>(OUT(0), xa, IN(1)); \
unit->mPrevA = xa; \
} \
\
FLATTEN void SCNAME##_ai_nova(SuperBinaryOpUGen* unit, int inNumSamples) { \
double xb = DOUBLE_ZIN0(unit, 1); \
\
nova::NOVANAME##_vec_simd(OUT(0), IN(0), xb, inNumSamples); \
unit->mPrevB = xb; \
} \
\
FLATTEN void SCNAME##_ai_nova_64(SuperBinaryOpUGen* unit, int inNumSamples) { \
double xb = DOUBLE_ZIN0(unit, 1); \
\
nova::NOVANAME##_vec_simd<64>(OUT(0), IN(0), xb); \
unit->mPrevB = xb; \
}
# define NOVA_BINARY_WRAPPER_K(SCNAME, NOVANAME) \
FLATTEN void SCNAME##_aa_nova(SuperBinaryOpUGen* unit, int inNumSamples) { \
nova::NOVANAME##_vec_simd(OUT(0), IN(0), IN(1), inNumSamples); \
} \
\
FLATTEN void SCNAME##_aa_nova_64(SuperBinaryOpUGen* unit, int inNumSamples) { \
nova::NOVANAME##_vec_simd<64>(OUT(0), IN(0), IN(1)); \
} \
\
FLATTEN void SCNAME##_ia_nova(SuperBinaryOpUGen* unit, int inNumSamples) { \
double xa = DOUBLE_ZIN0(unit, 0); \
\
nova::NOVANAME##_vec_simd(OUT(0), xa, IN(1), inNumSamples); \
unit->mPrevA = xa; \
} \
\
FLATTEN void SCNAME##_ia_nova_64(SuperBinaryOpUGen* unit, int inNumSamples) { \
double xa = DOUBLE_ZIN0(unit, 0); \
\
nova::NOVANAME##_vec_simd<64>(OUT(0), xa, IN(1)); \
unit->mPrevA = xa; \
} \
\
FLATTEN void SCNAME##_ai_nova(SuperBinaryOpUGen* unit, int inNumSamples) { \
double xb = DOUBLE_ZIN0(unit, 1); \
\
nova::NOVANAME##_vec_simd(OUT(0), IN(0), xb, inNumSamples); \
unit->mPrevB = xb; \
} \
\
FLATTEN void SCNAME##_ai_nova_64(SuperBinaryOpUGen* unit, int inNumSamples) { \
double xb = DOUBLE_ZIN0(unit, 1); \
\
nova::NOVANAME##_vec_simd<64>(OUT(0), IN(0), xb); \
unit->mPrevB = xb; \
} \
\
FLATTEN void SCNAME##_ak_nova(SuperBinaryOpUGen* unit, int inNumSamples) { \
float xb = unit->mPrevB; \
double next_b = DOUBLE_ZIN0(unit, 1); \
\
if (xb == next_b) { \
nova::NOVANAME##_vec_simd(OUT(0), IN(0), xb, inNumSamples); \
} else { \
float slope = CALCSLOPE(next_b, xb); \
nova::NOVANAME##_vec_simd(OUT(0), IN(0), slope_argument(xb, slope), inNumSamples); \
unit->mPrevB = next_b; \
} \
} \
\
FLATTEN void SCNAME##_ak_nova_64(SuperBinaryOpUGen* unit, int inNumSamples) { \
float xb = unit->mPrevB; \
double next_b = DOUBLE_ZIN0(unit, 1); \
\
if (xb == next_b) { \
nova::NOVANAME##_vec_simd<64>(OUT(0), IN(0), xb); \
} else { \
float slope = CALCSLOPE(next_b, xb); \
nova::NOVANAME##_vec_simd(OUT(0), IN(0), slope_argument(xb, slope), inNumSamples); \
unit->mPrevB = next_b; \
} \
} \
\
FLATTEN void SCNAME##_ka_nova(SuperBinaryOpUGen* unit, int inNumSamples) { \
float xa = unit->mPrevA; \
double next_a = DOUBLE_ZIN0(unit, 0); \
\
if (xa == next_a) { \
nova::NOVANAME##_vec_simd(OUT(0), xa, IN(1), inNumSamples); \
} else { \
float slope = CALCSLOPE(next_a, xa); \
nova::NOVANAME##_vec_simd(OUT(0), slope_argument(xa, slope), IN(1), inNumSamples); \
unit->mPrevA = next_a; \
} \
} \
FLATTEN void SCNAME##_ka_nova_64(SuperBinaryOpUGen* unit, int inNumSamples) { \
float xa = unit->mPrevA; \
double next_a = DOUBLE_ZIN0(unit, 0); \
\
if (xa == next_a) { \
nova::NOVANAME##_vec_simd<64>(OUT(0), xa, IN(1)); \
} else { \
float slope = CALCSLOPE(next_a, xa); \
nova::NOVANAME##_vec_simd(OUT(0), slope_argument(xa, slope), IN(1), inNumSamples); \
unit->mPrevA = next_a; \
} \
}
# define DEFINE_TEMPLATE_FUNCTOR(NAME) \
struct NAME##_functor { \
template <typename FloatType> inline FloatType operator()(FloatType a, FloatType b) const { \
return NAME(a, b); \
} \
\
template <typename FloatType> \
inline nova::vec<FloatType> operator()(nova::vec<FloatType> a, nova::vec<FloatType> b) const { \
return NAME(a, b); \
} \
};
DEFINE_TEMPLATE_FUNCTOR(sc_ring1)
DEFINE_TEMPLATE_FUNCTOR(sc_ring2)
DEFINE_TEMPLATE_FUNCTOR(sc_ring3)
DEFINE_TEMPLATE_FUNCTOR(sc_ring4)
DEFINE_TEMPLATE_FUNCTOR(sc_difsqr)
DEFINE_TEMPLATE_FUNCTOR(sc_sumsqr)
DEFINE_TEMPLATE_FUNCTOR(sc_sqrsum)
DEFINE_TEMPLATE_FUNCTOR(sc_sqrdif)
namespace nova {
NOVA_SIMD_DEFINE_BINARY_WRAPPER(sc_ring1, sc_ring1_functor)
NOVA_SIMD_DEFINE_BINARY_WRAPPER(sc_ring2, sc_ring2_functor)
NOVA_SIMD_DEFINE_BINARY_WRAPPER(sc_ring3, sc_ring3_functor)
NOVA_SIMD_DEFINE_BINARY_WRAPPER(sc_ring4, sc_ring4_functor)
NOVA_SIMD_DEFINE_BINARY_WRAPPER(sc_difsqr, sc_difsqr_functor)
NOVA_SIMD_DEFINE_BINARY_WRAPPER(sc_sumsqr, sc_sumsqr_functor)
NOVA_SIMD_DEFINE_BINARY_WRAPPER(sc_sqrsum, sc_sqrsum_functor)
NOVA_SIMD_DEFINE_BINARY_WRAPPER(sc_sqrdif, sc_sqrdif_functor)
}
#endif
using namespace std; // for math functions
static InterfaceTable* ft;
//////////////////////////////////////////////////////////////////////////////////////////////////
/* special binary math operators */
enum {
opAdd,
opSub,
opMul,
opIDiv,
opFDiv,
opMod,
opEQ,
opNE,
opLT,
opGT,
opLE,
opGE,
// opIdentical,
// opNotIdentical,
opMin,
opMax,
opBitAnd,
opBitOr,
opBitXor,
opLCM,
opGCD,
opRound,
opRoundUp,
opTrunc,
opAtan2,
opHypot,
opHypotx,
opPow,
opShiftLeft, //
opShiftRight, //
opUnsignedShift, //
opFill, //
opRing1, // a * (b + 1) == a * b + a
opRing2, // a * b + a + b
opRing3, // a*a*b
opRing4, // a*a*b - a*b*b
opDifSqr, // a*a - b*b
opSumSqr, // a*a + b*b
opSqrSum, // (a + b)^2
opSqrDif, // (a - b)^2
opAbsDif, // |a - b|
opThresh,
opAMClip,
opScaleNeg,
opClip2,
opExcess,
opFold2,
opWrap2,
opFirstArg,
opRandRange,
opExpRandRange,
opNumBinarySelectors
};
inline double sc_andt(double a, double b) { return int(a) & int(b); }
inline double sc_ort(double a, double b) { return int(a) | int(b); }
inline double sc_xort(double a, double b) { return int(a) ^ int(b); }
inline double sc_rst(double a, double b) { return int(a) >> int(b); }
inline double sc_lst(double a, double b) { return int(a) << int(b); }
inline float sc_gcd(double u, double v) { return (double)sc_gcd((long)std::trunc(u), (long)std::trunc(v)); }
inline float sc_lcm(double u, double v) { return (double)sc_lcm((long)std::trunc(u), (long)std::trunc(v)); }
struct SuperBinaryOpUGen : public Unit {
double mPrevA, mPrevB;
};
typedef void (*BinaryOpFunc)(SuperBinaryOpUGen* unit, int inNumSamples);
extern "C" {
void SuperBinaryOpUGen_Ctor(SuperBinaryOpUGen* unit);
// void zero_d(SuperBinaryOpUGen *unit, int inNumSamples);
void zero_1(SuperBinaryOpUGen* unit, int inNumSamples);
void zero_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void firstarg_d(SuperBinaryOpUGen* unit, int inNumSamples);
void firstarg_1(SuperBinaryOpUGen* unit, int inNumSamples);
void firstarg_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void secondarg_d(SuperBinaryOpUGen* unit, int inNumSamples);
void secondarg_1(SuperBinaryOpUGen* unit, int inNumSamples);
void secondarg_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void add_d(SuperBinaryOpUGen* unit, int inNumSamples);
void add_1(SuperBinaryOpUGen* unit, int inNumSamples);
void add_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void add_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void add_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void add_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void add_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void sub_d(SuperBinaryOpUGen* unit, int inNumSamples);
void sub_1(SuperBinaryOpUGen* unit, int inNumSamples);
void sub_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void sub_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void sub_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void sub_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void sub_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void mul_d(SuperBinaryOpUGen* unit, int inNumSamples);
void mul_1(SuperBinaryOpUGen* unit, int inNumSamples);
void mul_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void mul_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void mul_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void mul_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void mul_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void div_d(SuperBinaryOpUGen* unit, int inNumSamples);
void div_1(SuperBinaryOpUGen* unit, int inNumSamples);
void div_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void div_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void div_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void div_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void div_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void mod_d(SuperBinaryOpUGen* unit, int inNumSamples);
void mod_1(SuperBinaryOpUGen* unit, int inNumSamples);
void mod_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void mod_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void mod_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void mod_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void mod_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void max_d(SuperBinaryOpUGen* unit, int inNumSamples);
void max_1(SuperBinaryOpUGen* unit, int inNumSamples);
void max_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void max_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void max_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void max_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void max_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void min_d(SuperBinaryOpUGen* unit, int inNumSamples);
void min_1(SuperBinaryOpUGen* unit, int inNumSamples);
void min_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void min_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void min_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void min_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void min_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void and_d(SuperBinaryOpUGen* unit, int inNumSamples);
void and_1(SuperBinaryOpUGen* unit, int inNumSamples);
void and_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void and_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void and_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void and_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void and_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void or_d(SuperBinaryOpUGen* unit, int inNumSamples);
void or_1(SuperBinaryOpUGen* unit, int inNumSamples);
void or_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void or_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void or_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void or_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void or_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void xor_d(SuperBinaryOpUGen* unit, int inNumSamples);
void xor_1(SuperBinaryOpUGen* unit, int inNumSamples);
void xor_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void xor_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void xor_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void xor_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void xor_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void amclip_d(SuperBinaryOpUGen* unit, int inNumSamples);
void amclip_1(SuperBinaryOpUGen* unit, int inNumSamples);
void amclip_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void amclip_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void amclip_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void amclip_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void amclip_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void scaleneg_d(SuperBinaryOpUGen* unit, int inNumSamples);
void scaleneg_1(SuperBinaryOpUGen* unit, int inNumSamples);
void scaleneg_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void scaleneg_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void scaleneg_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void scaleneg_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void scaleneg_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void pow_d(SuperBinaryOpUGen* unit, int inNumSamples);
void pow_1(SuperBinaryOpUGen* unit, int inNumSamples);
void pow_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void pow_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void pow_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void pow_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void pow_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void ring1_d(SuperBinaryOpUGen* unit, int inNumSamples);
void ring1_1(SuperBinaryOpUGen* unit, int inNumSamples);
void ring1_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void ring1_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void ring1_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void ring1_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void ring1_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void ring2_d(SuperBinaryOpUGen* unit, int inNumSamples);
void ring2_1(SuperBinaryOpUGen* unit, int inNumSamples);
void ring2_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void ring2_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void ring2_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void ring2_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void ring2_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void ring3_d(SuperBinaryOpUGen* unit, int inNumSamples);
void ring3_1(SuperBinaryOpUGen* unit, int inNumSamples);
void ring3_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void ring3_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void ring3_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void ring3_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void ring3_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void ring4_d(SuperBinaryOpUGen* unit, int inNumSamples);
void ring4_1(SuperBinaryOpUGen* unit, int inNumSamples);
void ring4_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void ring4_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void ring4_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void ring4_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void ring4_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void thresh_d(SuperBinaryOpUGen* unit, int inNumSamples);
void thresh_1(SuperBinaryOpUGen* unit, int inNumSamples);
void thresh_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void thresh_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void thresh_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void thresh_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void thresh_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void clip2_d(SuperBinaryOpUGen* unit, int inNumSamples);
void clip2_1(SuperBinaryOpUGen* unit, int inNumSamples);
void clip2_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void clip2_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void clip2_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void clip2_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void clip2_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void fold2_d(SuperBinaryOpUGen* unit, int inNumSamples);
void fold2_1(SuperBinaryOpUGen* unit, int inNumSamples);
void fold2_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void fold2_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void fold2_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void fold2_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void fold2_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void wrap2_d(SuperBinaryOpUGen* unit, int inNumSamples);
void wrap2_1(SuperBinaryOpUGen* unit, int inNumSamples);
void wrap2_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void wrap2_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void wrap2_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void wrap2_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void wrap2_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void excess_d(SuperBinaryOpUGen* unit, int inNumSamples);
void excess_1(SuperBinaryOpUGen* unit, int inNumSamples);
void excess_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void excess_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void excess_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void excess_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void excess_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void rrand_d(SuperBinaryOpUGen* unit, int inNumSamples);
void rrand_1(SuperBinaryOpUGen* unit, int inNumSamples);
void rrand_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void rrand_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void rrand_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void rrand_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void rrand_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void exprand_d(SuperBinaryOpUGen* unit, int inNumSamples);
void exprand_1(SuperBinaryOpUGen* unit, int inNumSamples);
void exprand_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void exprand_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void exprand_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void exprand_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void exprand_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void lt_d(SuperBinaryOpUGen* unit, int inNumSamples);
void lt_1(SuperBinaryOpUGen* unit, int inNumSamples);
void lt_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void lt_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void lt_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void lt_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void lt_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void le_d(SuperBinaryOpUGen* unit, int inNumSamples);
void le_1(SuperBinaryOpUGen* unit, int inNumSamples);
void le_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void le_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void le_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void le_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void le_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void lcm_d(SuperBinaryOpUGen* unit, int inNumSamples);
void lcm_1(SuperBinaryOpUGen* unit, int inNumSamples);
void lcm_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void lcm_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void lcm_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void lcm_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void lcm_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void gcd_d(SuperBinaryOpUGen* unit, int inNumSamples);
void gcd_1(SuperBinaryOpUGen* unit, int inNumSamples);
void gcd_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void gcd_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void gcd_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void gcd_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void gcd_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void gt_d(SuperBinaryOpUGen* unit, int inNumSamples);
void gt_1(SuperBinaryOpUGen* unit, int inNumSamples);
void gt_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void gt_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void gt_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void gt_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void gt_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void ge_d(SuperBinaryOpUGen* unit, int inNumSamples);
void ge_1(SuperBinaryOpUGen* unit, int inNumSamples);
void ge_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void ge_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void ge_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void ge_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void ge_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void eq_d(SuperBinaryOpUGen* unit, int inNumSamples);
void eq_1(SuperBinaryOpUGen* unit, int inNumSamples);
void eq_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void eq_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void eq_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void eq_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void eq_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void neq_d(SuperBinaryOpUGen* unit, int inNumSamples);
void neq_1(SuperBinaryOpUGen* unit, int inNumSamples);
void neq_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void neq_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void neq_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void neq_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void neq_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void sumsqr_d(SuperBinaryOpUGen* unit, int inNumSamples);
void sumsqr_1(SuperBinaryOpUGen* unit, int inNumSamples);
void sumsqr_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void sumsqr_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void sumsqr_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void sumsqr_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void sumsqr_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void difsqr_d(SuperBinaryOpUGen* unit, int inNumSamples);
void difsqr_1(SuperBinaryOpUGen* unit, int inNumSamples);
void difsqr_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void difsqr_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void difsqr_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void difsqr_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void difsqr_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrsum_d(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrsum_1(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrsum_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrsum_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrsum_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrsum_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrsum_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrdif_d(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrdif_1(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrdif_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrdif_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrdif_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrdif_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void sqrdif_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void absdif_d(SuperBinaryOpUGen* unit, int inNumSamples);
void absdif_1(SuperBinaryOpUGen* unit, int inNumSamples);
void absdif_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void absdif_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void absdif_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void absdif_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void absdif_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void round_d(SuperBinaryOpUGen* unit, int inNumSamples);
void round_1(SuperBinaryOpUGen* unit, int inNumSamples);
void round_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void round_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void round_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void round_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void round_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void roundUp_d(SuperBinaryOpUGen* unit, int inNumSamples);
void roundUp_1(SuperBinaryOpUGen* unit, int inNumSamples);
void roundUp_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void roundUp_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void roundUp_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void roundUp_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void roundUp_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void trunc_d(SuperBinaryOpUGen* unit, int inNumSamples);
void trunc_1(SuperBinaryOpUGen* unit, int inNumSamples);
void trunc_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void trunc_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void trunc_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void trunc_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void trunc_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void atan2_d(SuperBinaryOpUGen* unit, int inNumSamples);
void atan2_1(SuperBinaryOpUGen* unit, int inNumSamples);
void atan2_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void atan2_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void atan2_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void atan2_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void atan2_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void hypot_d(SuperBinaryOpUGen* unit, int inNumSamples);
void hypot_1(SuperBinaryOpUGen* unit, int inNumSamples);
void hypot_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void hypot_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void hypot_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void hypot_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void hypot_ia(SuperBinaryOpUGen* unit, int inNumSamples);
void hypotx_d(SuperBinaryOpUGen* unit, int inNumSamples);
void hypotx_1(SuperBinaryOpUGen* unit, int inNumSamples);
void hypotx_aa(SuperBinaryOpUGen* unit, int inNumSamples);
void hypotx_ak(SuperBinaryOpUGen* unit, int inNumSamples);
void hypotx_ka(SuperBinaryOpUGen* unit, int inNumSamples);
void hypotx_ai(SuperBinaryOpUGen* unit, int inNumSamples);
void hypotx_ia(SuperBinaryOpUGen* unit, int inNumSamples);
}
////////////////////////////////////////////////////////////////////////////////////////////////////////
static inline double DOUBLE_ZIN0(SuperBinaryOpUGen* unit, int i) {return (double)IN0(i*2) + (double)IN0(i*2+1);}
static inline void DOUBLE_ZOUT0(SuperBinaryOpUGen* unit, double val){
float msd = (float) val;
OUT0(0) = msd;
OUT0(1) = (float) (val-msd);
}
static inline void DOUBLE_ZXPOUT(SuperBinaryOpUGen* unit, float* out0, float* out1, double val){
float msd = (float) val;
ZXP(out0) = msd;
ZXP(out1) = (float) (val-msd);
}
static inline void DOUBLE_ZCOPY(SuperBinaryOpUGen *unit, int inNumSamples, int i){
float *msd=IN(i*2),*lsd=IN(i*2+1), *out0=OUT(0), *out1=OUT(1);
do{
double val = static_cast<double>(*(msd++)) + static_cast<double>(*(lsd++));
float msd_out = (float) val;
*(out0++) = msd_out;
*(out1++) = (float) (val-msd_out);
}while(--inNumSamples);
}
template<typename Action>
static void DOUBLE_LOOP1(SuperBinaryOpUGen* unit, int inNumSamples, Action action){
float *a=IN(0),*b=IN(1),*c=IN(2),*d=IN(3), *out0=OUT(0), *out1=OUT(1);
do{
double val = action(
static_cast<double>(*(a++))+static_cast<double>(*(b++)),
static_cast<double>(*(c++))+static_cast<double>(*(d++)));
float msd = (float) val;
*(out0++) = msd;
*(out1++) = (float) (val-msd);
}while(--inNumSamples);
}
// loops one ar input (ar_i), returns ar value in action
template<typename Action>
static void DOUBLE_LOOP1_k(SuperBinaryOpUGen* unit, int inNumSamples, int ar_i, Action action){
float *msd=IN(ar_i*2),*lsd=IN(ar_i*2+1), *out0=OUT(0), *out1=OUT(1);
do{
double val = action(
static_cast<double>(*(msd++))+static_cast<double>(*(lsd++))
);
float msd_out = (float) val;
*(out0++) = msd_out;
*(out1++) = (float) (val-msd_out);
}while(--inNumSamples);
}
template<typename Action>
static void DOUBLE_LOOP1_ia(SuperBinaryOpUGen* unit, int inNumSamples, Action action){
double xa = DOUBLE_ZIN0(unit, 0);
DOUBLE_LOOP1_k(unit, inNumSamples, 1, [xa,action](double b){return action(xa,b);});
unit->mPrevA = xa;
}
template<typename Action>
static void DOUBLE_LOOP1_ai(SuperBinaryOpUGen* unit, int inNumSamples, Action action){
double xb = DOUBLE_ZIN0(unit, 1);
DOUBLE_LOOP1_k(unit, inNumSamples, 0, [xb,action](double a){return action(a,xb);});
unit->mPrevB = xb;
}
template<typename Action>
inline static void slope_ak(SuperBinaryOpUGen* unit, int inNumSamples, double kr_prev, double kr_next, Action action){
float slope = CALCSLOPE(kr_next, kr_prev);
DOUBLE_LOOP1(unit, inNumSamples, [&kr_prev,slope, action](double a, double b){
double res = action(a,kr_prev); kr_prev += slope; return res;
});
unit->mPrevB = kr_prev;
}
template<typename Action>
inline static void slope_ka(SuperBinaryOpUGen* unit, int inNumSamples, double kr_prev, double kr_next, Action action){
float slope = CALCSLOPE(kr_next, kr_prev);
DOUBLE_LOOP1(unit, inNumSamples, [&kr_prev,slope, action](double a, double b){
double res = action(kr_prev,b); kr_prev += slope; return res;
}); \
unit->mPrevA = kr_prev;
}
template<typename Action>
static inline void DOUBLE_LOOP1_ak_slope(SuperBinaryOpUGen* unit, int inNumSamples, Action action){
double kr_prev = unit->mPrevB; double kr_next = DOUBLE_ZIN0(unit, 1);
if (kr_prev == kr_next) {
DOUBLE_LOOP1_k(unit, inNumSamples, 0, [kr_prev, action](double a){return action(a,kr_prev);});
} else {
slope_ka(unit, inNumSamples, kr_prev, kr_next, action);
}
}
template<typename Action>
static inline void DOUBLE_LOOP1_ka_slope(SuperBinaryOpUGen* unit, int inNumSamples, Action action){
double kr_prev = unit->mPrevA; double kr_next = DOUBLE_ZIN0(unit, 0);
if (kr_prev == kr_next) {
DOUBLE_LOOP1_k(unit, inNumSamples, 1, [kr_prev, action](double b){return action(kr_prev,b);});
} else {
slope_ak(unit, inNumSamples, kr_prev, kr_next, action);
}
}
#define DOUBLE_ZCLEAR(inNumSamples) \
ZClear(inNumSamples, ZOUT(0));\
ZClear(inNumSamples, ZOUT(1));\
static bool ChooseOperatorFunc(SuperBinaryOpUGen* unit);
void SuperBinaryOpUGen_Ctor(SuperBinaryOpUGen* unit) {
unit->mPrevA = DOUBLE_ZIN0(unit, 0);
unit->mPrevB = DOUBLE_ZIN0(unit, 1);
bool initialized = ChooseOperatorFunc(unit);
if (unit->mCalcRate == calc_DemandRate) {
DOUBLE_ZOUT0(unit, 0.f);
} else {
if (!initialized)
(unit->mCalcFunc)(unit, 1);
}
}
// TODO: ALL DEMAND-RATE FUNCTIONS ARE UNDONE
/*
void zero_d(SuperBinaryOpUGen *unit, int inNumSamples)
{
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : 0.f;
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
*/
void firstarg_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : a;
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void secondarg_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : b;
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void add_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : a + b;
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void sub_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : a - b;
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void mul_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : a * b;
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void div_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : a / b;
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void idiv_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : floor(a / b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void mod_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_mod(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void max_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_max(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void min_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_min(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void and_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_andt(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void or_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_ort(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void xor_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_xort(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void rightShift_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_rst(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void leftShift_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_lst(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void lcm_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_lcm(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void gcd_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_gcd(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void amclip_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_amclip(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void scaleneg_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : sc_scaleneg(a, b);
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void pow_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : (a < 0.f ? -pow(-a, b) : pow(a, b));
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void ring1_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : a * b + a;
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void ring2_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : a * b + a + b;
} else {
RESETINPUT(0);
RESETINPUT(1);
}
}
void ring3_d(SuperBinaryOpUGen* unit, int inNumSamples) {
if (inNumSamples) {
float a = DEMANDINPUT_A(0, inNumSamples);
float b = DEMANDINPUT_A(1, inNumSamples);
OUT0(0) = sc_isnan(a) || sc_isnan(b) ? NAN : a * a * b;
} else {
RESETINPUT(0);