mirror of
https://github.com/mruby/mruby
synced 2026-06-08 16:11:16 +00:00
250 lines
6.0 KiB
C
250 lines
6.0 KiB
C
#include <mruby.h>
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#include <mruby/class.h>
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#include <mruby/numeric.h>
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#include <math.h>
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#ifdef MRB_WITHOUT_FLOAT
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# error Complex conflicts 'MRB_WITHOUT_FLOAT' configuration in your 'build_config.rb'
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#endif
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struct mrb_complex {
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mrb_float real;
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mrb_float imaginary;
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};
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#ifdef MRB_USE_FLOAT
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#define F(x) x##f
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#else
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#define F(x) x
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#endif
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#if defined(MRB_64BIT) || defined(MRB_USE_FLOAT)
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#define COMPLEX_USE_ISTRUCT
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/* use TT_ISTRUCT */
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#include <mruby/istruct.h>
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#define complex_ptr(mrb, v) (struct mrb_complex*)mrb_istruct_ptr(v)
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static struct RBasic*
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complex_alloc(mrb_state *mrb, struct RClass *c, struct mrb_complex **p)
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{
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struct RIStruct *s;
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s = (struct RIStruct*)mrb_obj_alloc(mrb, MRB_TT_ISTRUCT, c);
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*p = (struct mrb_complex*)s->inline_data;
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return (struct RBasic*)s;
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}
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#else
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/* use TT_DATA */
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#include <mruby/data.h>
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static const struct mrb_data_type mrb_complex_type = {"Complex", mrb_free};
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static struct RBasic*
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complex_alloc(mrb_state *mrb, struct RClass *c, struct mrb_complex **p)
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{
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struct RData *d;
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Data_Make_Struct(mrb, c, struct mrb_complex, &mrb_complex_type, *p, d);
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return (struct RBasic*)d;
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}
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static struct mrb_complex*
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complex_ptr(mrb_state *mrb, mrb_value v)
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{
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struct mrb_complex *p;
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p = DATA_GET_PTR(mrb, v, &mrb_complex_type, struct mrb_complex);
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if (!p) {
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mrb_raise(mrb, E_ARGUMENT_ERROR, "uninitialized complex");
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}
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return p;
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}
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#endif
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static mrb_value
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complex_new(mrb_state *mrb, mrb_float real, mrb_float imaginary)
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{
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struct RClass *c = mrb_class_get(mrb, "Complex");
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struct mrb_complex *p;
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struct RBasic *comp = complex_alloc(mrb, c, &p);
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p->real = real;
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p->imaginary = imaginary;
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MRB_SET_FROZEN_FLAG(comp);
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return mrb_obj_value(comp);
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}
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static mrb_value
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complex_real(mrb_state *mrb, mrb_value self)
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{
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struct mrb_complex *p = complex_ptr(mrb, self);
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return mrb_float_value(mrb, p->real);
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}
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static mrb_value
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complex_imaginary(mrb_state *mrb, mrb_value self)
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{
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struct mrb_complex *p = complex_ptr(mrb, self);
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return mrb_float_value(mrb, p->imaginary);
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}
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static mrb_value
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complex_s_rect(mrb_state *mrb, mrb_value self)
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{
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mrb_float real, imaginary = 0.0;
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mrb_get_args(mrb, "f|f", &real, &imaginary);
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return complex_new(mrb, real, imaginary);
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}
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static mrb_value
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complex_to_f(mrb_state *mrb, mrb_value self)
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{
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struct mrb_complex *p = complex_ptr(mrb, self);
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if (p->imaginary != 0) {
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mrb_raisef(mrb, E_RANGE_ERROR, "can't convert %v into Float", self);
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}
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return mrb_float_value(mrb, p->real);
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}
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static mrb_value
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complex_to_i(mrb_state *mrb, mrb_value self)
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{
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struct mrb_complex *p = complex_ptr(mrb, self);
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if (p->imaginary != 0) {
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mrb_raisef(mrb, E_RANGE_ERROR, "can't convert %v into Float", self);
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}
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return mrb_int_value(mrb, p->real);
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}
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static mrb_value
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complex_to_c(mrb_state *mrb, mrb_value self)
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{
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return self;
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}
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/* Arithmetic on (significand, exponent) pairs avoids premature overflow in
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complex division */
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struct float_pair {
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mrb_float s;
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int x;
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};
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static void
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add_pair(struct float_pair *s, struct float_pair const *a,
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struct float_pair const *b)
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{
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if (b->s == 0.0F) {
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*s = *a;
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} else if (a->s == 0.0F) {
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*s = *b;
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} else if (a->x >= b->x) {
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s->s = a->s + F(ldexp)(b->s, b->x - a->x);
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s->x = a->x;
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} else {
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s->s = F(ldexp)(a->s, a->x - b->x) + b->s;
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s->x = b->x;
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}
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}
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static void
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mul_pair(struct float_pair *p, struct float_pair const *a,
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struct float_pair const *b)
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{
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p->s = a->s * b->s;
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p->x = a->x + b->x;
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}
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static void
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div_pair(struct float_pair *q, struct float_pair const *a,
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struct float_pair const *b)
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{
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q->s = a->s / b->s;
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q->x = a->x - b->x;
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}
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static mrb_value
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complex_div(mrb_state *mrb, mrb_value self)
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{
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mrb_value rhs;
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struct mrb_complex *a, *b;
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struct float_pair ar, ai, br, bi;
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struct float_pair br2, bi2;
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struct float_pair div;
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struct float_pair ar_br, ai_bi;
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struct float_pair ai_br, ar_bi;
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struct float_pair zr, zi;
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mrb_get_args(mrb, "o", &rhs);
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a = complex_ptr(mrb, self);
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b = complex_ptr(mrb, rhs);
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/* Split floating point components into significand and exponent */
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ar.s = F(frexp)(a->real, &ar.x);
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ai.s = F(frexp)(a->imaginary, &ai.x);
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br.s = F(frexp)(b->real, &br.x);
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bi.s = F(frexp)(b->imaginary, &bi.x);
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/* Perform arithmetic on (significand, exponent) pairs to produce
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the result: */
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/* the divisor */
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mul_pair(&br2, &br, &br);
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mul_pair(&bi2, &bi, &bi);
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add_pair(&div, &br2, &bi2);
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/* real component */
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mul_pair(&ar_br, &ar, &br);
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mul_pair(&ai_bi, &ai, &bi);
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add_pair(&zr, &ar_br, &ai_bi);
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div_pair(&zr, &zr, &div);
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/* imaginary component */
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mul_pair(&ai_br, &ai, &br);
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mul_pair(&ar_bi, &ar, &bi);
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ar_bi.s = -ar_bi.s;
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add_pair(&zi, &ai_br, &ar_bi);
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div_pair(&zi, &zi, &div);
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/* assemble the result */
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return complex_new(mrb, F(ldexp)(zr.s, zr.x), F(ldexp)(zi.s, zi.x));
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}
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void mrb_mruby_complex_gem_init(mrb_state *mrb)
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{
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struct RClass *comp;
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#ifdef COMPLEX_USE_ISTRUCT
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mrb_assert(sizeof(struct mrb_complex) < ISTRUCT_DATA_SIZE);
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#endif
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comp = mrb_define_class(mrb, "Complex", mrb_class_get(mrb, "Numeric"));
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#ifdef COMPLEX_USE_ISTRUCT
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MRB_SET_INSTANCE_TT(comp, MRB_TT_ISTRUCT);
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#else
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MRB_SET_INSTANCE_TT(comp, MRB_TT_DATA);
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#endif
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mrb_undef_class_method(mrb, comp, "new");
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mrb_define_class_method(mrb, comp, "rectangular", complex_s_rect, MRB_ARGS_REQ(1)|MRB_ARGS_OPT(1));
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mrb_define_class_method(mrb, comp, "rect", complex_s_rect, MRB_ARGS_REQ(1)|MRB_ARGS_OPT(1));
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mrb_define_method(mrb, mrb->kernel_module, "Complex", complex_s_rect, MRB_ARGS_REQ(1)|MRB_ARGS_OPT(1));
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mrb_define_method(mrb, comp, "real", complex_real, MRB_ARGS_NONE());
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mrb_define_method(mrb, comp, "imaginary", complex_imaginary, MRB_ARGS_NONE());
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mrb_define_method(mrb, comp, "to_f", complex_to_f, MRB_ARGS_NONE());
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mrb_define_method(mrb, comp, "to_i", complex_to_i, MRB_ARGS_NONE());
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mrb_define_method(mrb, comp, "to_c", complex_to_c, MRB_ARGS_NONE());
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mrb_define_method(mrb, comp, "__div__", complex_div, MRB_ARGS_REQ(1));
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}
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void
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mrb_mruby_complex_gem_final(mrb_state* mrb)
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{
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}
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