mirror of
https://github.com/mruby/mruby
synced 2026-06-08 16:11:16 +00:00
210 lines
5.0 KiB
C
210 lines
5.0 KiB
C
#include <mruby.h>
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#include <mruby/class.h>
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#include <mruby/string.h>
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#include <mruby/numeric.h>
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struct mrb_rational {
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mrb_int numerator;
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mrb_int denominator;
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};
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#if MRB_INT_MAX <= INTPTR_MAX
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#define RATIONAL_USE_ISTRUCT
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/* use TT_ISTRUCT */
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#include <mruby/istruct.h>
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#define rational_ptr(mrb, v) (struct mrb_rational*)mrb_istruct_ptr(v)
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static struct RBasic*
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rational_alloc(mrb_state *mrb, struct RClass *c, struct mrb_rational **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_rational*)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_rational_type = {"Rational", mrb_free};
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static struct RBasic*
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rational_alloc(mrb_state *mrb, struct RClass *c, struct mrb_rational **p)
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{
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struct RData *d;
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Data_Make_Struct(mrb, c, struct mrb_rational, &mrb_rational_type, *p, d);
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return (struct RBasic*)d;
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}
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static struct mrb_rational*
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rational_ptr(mrb_state *mrb, mrb_value v)
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{
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struct mrb_rational *p;
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p = DATA_GET_PTR(mrb, v, &mrb_rational_type, struct mrb_rational);
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if (!p) {
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mrb_raise(mrb, E_ARGUMENT_ERROR, "uninitialized rational");
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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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rational_numerator(mrb_state *mrb, mrb_value self)
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{
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struct mrb_rational *p = rational_ptr(mrb, self);
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return mrb_fixnum_value(p->numerator);
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}
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static mrb_value
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rational_denominator(mrb_state *mrb, mrb_value self)
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{
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struct mrb_rational *p = rational_ptr(mrb, self);
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return mrb_fixnum_value(p->denominator);
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}
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static mrb_value
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rational_new(mrb_state *mrb, mrb_int numerator, mrb_int denominator)
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{
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struct RClass *c = mrb_class_get(mrb, "Rational");
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struct mrb_rational *p;
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struct RBasic *rat = rational_alloc(mrb, c, &p);
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p->numerator = numerator;
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p->denominator = denominator;
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MRB_SET_FROZEN_FLAG(rat);
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return mrb_obj_value(rat);
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}
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static mrb_value
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rational_s_new(mrb_state *mrb, mrb_value self)
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{
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mrb_int numerator, denominator;
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#ifdef MRB_WITHOUT_FLOAT
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mrb_get_args(mrb, "ii", &numerator, &denominator);
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#else
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#define DROP_PRECISION(cond, num, denom) \
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do { \
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while (cond) { \
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num /= 2; \
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denom /= 2; \
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} \
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} while (0)
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mrb_value numv, denomv;
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mrb_get_args(mrb, "oo", &numv, &denomv);
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if (mrb_fixnum_p(numv)) {
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numerator = mrb_fixnum(numv);
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if (mrb_fixnum_p(denomv)) {
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denominator = mrb_fixnum(denomv);
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}
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else {
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mrb_float denomf = mrb_to_flo(mrb, denomv);
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DROP_PRECISION(denomf < MRB_INT_MIN || denomf > MRB_INT_MAX, numerator, denomf);
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denominator = denomf;
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}
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}
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else {
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mrb_float numf = mrb_to_flo(mrb, numv);
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if (mrb_fixnum_p(denomv)) {
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denominator = mrb_fixnum(denomv);
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}
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else {
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mrb_float denomf = mrb_to_flo(mrb, denomv);
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DROP_PRECISION(denomf < MRB_INT_MIN || denomf > MRB_INT_MAX, numf, denomf);
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denominator = denomf;
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}
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DROP_PRECISION(numf < MRB_INT_MIN || numf > MRB_INT_MAX, numf, denominator);
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numerator = numf;
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}
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#endif
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return rational_new(mrb, numerator, denominator);
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}
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#ifndef MRB_WITHOUT_FLOAT
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static mrb_value
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rational_to_f(mrb_state *mrb, mrb_value self)
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{
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struct mrb_rational *p = rational_ptr(mrb, self);
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mrb_float f = (mrb_float)p->numerator / (mrb_float)p->denominator;
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return mrb_float_value(mrb, f);
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}
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#endif
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static mrb_value
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rational_to_i(mrb_state *mrb, mrb_value self)
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{
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struct mrb_rational *p = rational_ptr(mrb, self);
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if (p->denominator == 0) {
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mrb_raise(mrb, mrb_exc_get(mrb, "StandardError"), "divided by 0");
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}
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return mrb_fixnum_value(p->numerator / p->denominator);
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}
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static mrb_value
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rational_to_r(mrb_state *mrb, mrb_value self)
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{
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return self;
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}
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static mrb_value
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rational_negative_p(mrb_state *mrb, mrb_value self)
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{
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struct mrb_rational *p = rational_ptr(mrb, self);
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if (p->numerator < 0) {
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return mrb_true_value();
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}
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return mrb_false_value();
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}
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static mrb_value
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fix_to_r(mrb_state *mrb, mrb_value self)
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{
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return rational_new(mrb, mrb_fixnum(self), 1);
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}
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void mrb_mruby_rational_gem_init(mrb_state *mrb)
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{
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struct RClass *rat;
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rat = mrb_define_class(mrb, "Rational", mrb_class_get(mrb, "Numeric"));
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#ifdef RATIONAL_USE_ISTRUCT
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MRB_SET_INSTANCE_TT(rat, MRB_TT_ISTRUCT);
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mrb_assert(sizeof(struct mrb_rational) < ISTRUCT_DATA_SIZE);
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#else
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MRB_SET_INSTANCE_TT(rat, MRB_TT_DATA);
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#endif
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mrb_undef_class_method(mrb, rat, "new");
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mrb_define_class_method(mrb, rat, "_new", rational_s_new, MRB_ARGS_REQ(2));
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mrb_define_method(mrb, rat, "numerator", rational_numerator, MRB_ARGS_NONE());
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mrb_define_method(mrb, rat, "denominator", rational_denominator, MRB_ARGS_NONE());
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#ifndef MRB_WITHOUT_FLOAT
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mrb_define_method(mrb, rat, "to_f", rational_to_f, MRB_ARGS_NONE());
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#endif
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mrb_define_method(mrb, rat, "to_i", rational_to_i, MRB_ARGS_NONE());
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mrb_define_method(mrb, rat, "to_r", rational_to_r, MRB_ARGS_NONE());
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mrb_define_method(mrb, rat, "negative?", rational_negative_p, MRB_ARGS_NONE());
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mrb_define_method(mrb, mrb->fixnum_class, "to_r", fix_to_r, MRB_ARGS_NONE());
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}
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void
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mrb_mruby_rational_gem_final(mrb_state* mrb)
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{
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}
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