objfloat.c 12 KB

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  1. /*
  2. * This file is part of the MicroPython project, http://micropython.org/
  3. *
  4. * The MIT License (MIT)
  5. *
  6. * Copyright (c) 2013, 2014 Damien P. George
  7. *
  8. * Permission is hereby granted, free of charge, to any person obtaining a copy
  9. * of this software and associated documentation files (the "Software"), to deal
  10. * in the Software without restriction, including without limitation the rights
  11. * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
  12. * copies of the Software, and to permit persons to whom the Software is
  13. * furnished to do so, subject to the following conditions:
  14. *
  15. * The above copyright notice and this permission notice shall be included in
  16. * all copies or substantial portions of the Software.
  17. *
  18. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  19. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  20. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  21. * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  22. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  23. * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
  24. * THE SOFTWARE.
  25. */
  26. #include <stdlib.h>
  27. #include <stdio.h>
  28. #include <string.h>
  29. #include <assert.h>
  30. #include "py/parsenum.h"
  31. #include "py/runtime.h"
  32. #if MICROPY_PY_BUILTINS_FLOAT
  33. #include <math.h>
  34. #include "py/formatfloat.h"
  35. #if MICROPY_OBJ_REPR != MICROPY_OBJ_REPR_C && MICROPY_OBJ_REPR != MICROPY_OBJ_REPR_D
  36. // M_E and M_PI are not part of the math.h standard and may not be defined
  37. #ifndef M_E
  38. #define M_E (2.7182818284590452354)
  39. #endif
  40. #ifndef M_PI
  41. #define M_PI (3.14159265358979323846)
  42. #endif
  43. typedef struct _mp_obj_float_t {
  44. mp_obj_base_t base;
  45. mp_float_t value;
  46. } mp_obj_float_t;
  47. const mp_obj_float_t mp_const_float_e_obj = {{&mp_type_float}, (mp_float_t)M_E};
  48. const mp_obj_float_t mp_const_float_pi_obj = {{&mp_type_float}, (mp_float_t)M_PI};
  49. #endif
  50. #define MICROPY_FLOAT_ZERO MICROPY_FLOAT_CONST(0.0)
  51. #if MICROPY_FLOAT_HIGH_QUALITY_HASH
  52. // must return actual integer value if it fits in mp_int_t
  53. mp_int_t mp_float_hash(mp_float_t src) {
  54. mp_float_union_t u = {.f = src};
  55. mp_int_t val;
  56. const int adj_exp = (int)u.p.exp - MP_FLOAT_EXP_BIAS;
  57. if (adj_exp < 0) {
  58. // value < 1; must be sure to handle 0.0 correctly (ie return 0)
  59. val = u.i;
  60. } else {
  61. // if adj_exp is max then: u.p.frc==0 indicates inf, else NaN
  62. // else: 1 <= value
  63. mp_float_uint_t frc = u.p.frc | ((mp_float_uint_t)1 << MP_FLOAT_FRAC_BITS);
  64. if (adj_exp <= MP_FLOAT_FRAC_BITS) {
  65. // number may have a fraction; xor the integer part with the fractional part
  66. val = (frc >> (MP_FLOAT_FRAC_BITS - adj_exp))
  67. ^ (frc & (((mp_float_uint_t)1 << (MP_FLOAT_FRAC_BITS - adj_exp)) - 1));
  68. } else if ((unsigned int)adj_exp < BITS_PER_BYTE * sizeof(mp_int_t) - 1) {
  69. // the number is a (big) whole integer and will fit in val's signed-width
  70. val = (mp_int_t)frc << (adj_exp - MP_FLOAT_FRAC_BITS);
  71. } else {
  72. // integer part will overflow val's width so just use what bits we can
  73. val = frc;
  74. }
  75. }
  76. if (u.p.sgn) {
  77. val = -(mp_uint_t)val;
  78. }
  79. return val;
  80. }
  81. #endif
  82. STATIC void float_print(const mp_print_t *print, mp_obj_t o_in, mp_print_kind_t kind) {
  83. (void)kind;
  84. mp_float_t o_val = mp_obj_float_get(o_in);
  85. #if MICROPY_FLOAT_IMPL == MICROPY_FLOAT_IMPL_FLOAT
  86. char buf[16];
  87. #if MICROPY_OBJ_REPR == MICROPY_OBJ_REPR_C
  88. const int precision = 6;
  89. #else
  90. const int precision = 7;
  91. #endif
  92. #else
  93. char buf[32];
  94. const int precision = 16;
  95. #endif
  96. mp_format_float(o_val, buf, sizeof(buf), 'g', precision, '\0');
  97. mp_print_str(print, buf);
  98. if (strchr(buf, '.') == NULL && strchr(buf, 'e') == NULL && strchr(buf, 'n') == NULL) {
  99. // Python floats always have decimal point (unless inf or nan)
  100. mp_print_str(print, ".0");
  101. }
  102. }
  103. STATIC mp_obj_t float_make_new(const mp_obj_type_t *type_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  104. (void)type_in;
  105. mp_arg_check_num(n_args, n_kw, 0, 1, false);
  106. switch (n_args) {
  107. case 0:
  108. return mp_obj_new_float(0);
  109. case 1:
  110. default: {
  111. mp_buffer_info_t bufinfo;
  112. if (mp_get_buffer(args[0], &bufinfo, MP_BUFFER_READ)) {
  113. // a textual representation, parse it
  114. return mp_parse_num_decimal(bufinfo.buf, bufinfo.len, false, false, NULL);
  115. } else if (mp_obj_is_float(args[0])) {
  116. // a float, just return it
  117. return args[0];
  118. } else {
  119. // something else, try to cast it to a float
  120. return mp_obj_new_float(mp_obj_get_float(args[0]));
  121. }
  122. }
  123. }
  124. }
  125. STATIC mp_obj_t float_unary_op(mp_unary_op_t op, mp_obj_t o_in) {
  126. mp_float_t val = mp_obj_float_get(o_in);
  127. switch (op) {
  128. case MP_UNARY_OP_BOOL:
  129. return mp_obj_new_bool(val != 0);
  130. case MP_UNARY_OP_HASH:
  131. return MP_OBJ_NEW_SMALL_INT(mp_float_hash(val));
  132. case MP_UNARY_OP_POSITIVE:
  133. return o_in;
  134. case MP_UNARY_OP_NEGATIVE:
  135. return mp_obj_new_float(-val);
  136. case MP_UNARY_OP_ABS: {
  137. if (signbit(val)) {
  138. return mp_obj_new_float(-val);
  139. } else {
  140. return o_in;
  141. }
  142. }
  143. default:
  144. return MP_OBJ_NULL; // op not supported
  145. }
  146. }
  147. STATIC mp_obj_t float_binary_op(mp_binary_op_t op, mp_obj_t lhs_in, mp_obj_t rhs_in) {
  148. mp_float_t lhs_val = mp_obj_float_get(lhs_in);
  149. #if MICROPY_PY_BUILTINS_COMPLEX
  150. if (mp_obj_is_type(rhs_in, &mp_type_complex)) {
  151. return mp_obj_complex_binary_op(op, lhs_val, 0, rhs_in);
  152. }
  153. #endif
  154. return mp_obj_float_binary_op(op, lhs_val, rhs_in);
  155. }
  156. const mp_obj_type_t mp_type_float = {
  157. { &mp_type_type },
  158. .flags = MP_TYPE_FLAG_EQ_NOT_REFLEXIVE | MP_TYPE_FLAG_EQ_CHECKS_OTHER_TYPE,
  159. .name = MP_QSTR_float,
  160. .print = float_print,
  161. .make_new = float_make_new,
  162. .unary_op = float_unary_op,
  163. .binary_op = float_binary_op,
  164. };
  165. #if MICROPY_OBJ_REPR != MICROPY_OBJ_REPR_C && MICROPY_OBJ_REPR != MICROPY_OBJ_REPR_D
  166. mp_obj_t mp_obj_new_float(mp_float_t value) {
  167. mp_obj_float_t *o = m_new(mp_obj_float_t, 1);
  168. o->base.type = &mp_type_float;
  169. o->value = value;
  170. return MP_OBJ_FROM_PTR(o);
  171. }
  172. mp_float_t mp_obj_float_get(mp_obj_t self_in) {
  173. assert(mp_obj_is_float(self_in));
  174. mp_obj_float_t *self = MP_OBJ_TO_PTR(self_in);
  175. return self->value;
  176. }
  177. #endif
  178. STATIC void mp_obj_float_divmod(mp_float_t *x, mp_float_t *y) {
  179. // logic here follows that of CPython
  180. // https://docs.python.org/3/reference/expressions.html#binary-arithmetic-operations
  181. // x == (x//y)*y + (x%y)
  182. // divmod(x, y) == (x//y, x%y)
  183. mp_float_t mod = MICROPY_FLOAT_C_FUN(fmod)(*x, *y);
  184. mp_float_t div = (*x - mod) / *y;
  185. // Python specs require that mod has same sign as second operand
  186. if (mod == MICROPY_FLOAT_ZERO) {
  187. mod = MICROPY_FLOAT_C_FUN(copysign)(MICROPY_FLOAT_ZERO, *y);
  188. } else {
  189. if ((mod < MICROPY_FLOAT_ZERO) != (*y < MICROPY_FLOAT_ZERO)) {
  190. mod += *y;
  191. div -= MICROPY_FLOAT_CONST(1.0);
  192. }
  193. }
  194. mp_float_t floordiv;
  195. if (div == MICROPY_FLOAT_ZERO) {
  196. // if division is zero, take the correct sign of zero
  197. floordiv = MICROPY_FLOAT_C_FUN(copysign)(MICROPY_FLOAT_ZERO, *x / *y);
  198. } else {
  199. // Python specs require that x == (x//y)*y + (x%y)
  200. floordiv = MICROPY_FLOAT_C_FUN(floor)(div);
  201. if (div - floordiv > MICROPY_FLOAT_CONST(0.5)) {
  202. floordiv += MICROPY_FLOAT_CONST(1.0);
  203. }
  204. }
  205. // return results
  206. *x = floordiv;
  207. *y = mod;
  208. }
  209. mp_obj_t mp_obj_float_binary_op(mp_binary_op_t op, mp_float_t lhs_val, mp_obj_t rhs_in) {
  210. mp_float_t rhs_val;
  211. if (!mp_obj_get_float_maybe(rhs_in, &rhs_val)) {
  212. return MP_OBJ_NULL; // op not supported
  213. }
  214. switch (op) {
  215. case MP_BINARY_OP_ADD:
  216. case MP_BINARY_OP_INPLACE_ADD:
  217. lhs_val += rhs_val;
  218. break;
  219. case MP_BINARY_OP_SUBTRACT:
  220. case MP_BINARY_OP_INPLACE_SUBTRACT:
  221. lhs_val -= rhs_val;
  222. break;
  223. case MP_BINARY_OP_MULTIPLY:
  224. case MP_BINARY_OP_INPLACE_MULTIPLY:
  225. lhs_val *= rhs_val;
  226. break;
  227. case MP_BINARY_OP_FLOOR_DIVIDE:
  228. case MP_BINARY_OP_INPLACE_FLOOR_DIVIDE:
  229. if (rhs_val == 0) {
  230. zero_division_error:
  231. mp_raise_msg(&mp_type_ZeroDivisionError, MP_ERROR_TEXT("divide by zero"));
  232. }
  233. // Python specs require that x == (x//y)*y + (x%y) so we must
  234. // call divmod to compute the correct floor division, which
  235. // returns the floor divide in lhs_val.
  236. mp_obj_float_divmod(&lhs_val, &rhs_val);
  237. break;
  238. case MP_BINARY_OP_TRUE_DIVIDE:
  239. case MP_BINARY_OP_INPLACE_TRUE_DIVIDE:
  240. if (rhs_val == 0) {
  241. goto zero_division_error;
  242. }
  243. lhs_val /= rhs_val;
  244. break;
  245. case MP_BINARY_OP_MODULO:
  246. case MP_BINARY_OP_INPLACE_MODULO:
  247. if (rhs_val == MICROPY_FLOAT_ZERO) {
  248. goto zero_division_error;
  249. }
  250. lhs_val = MICROPY_FLOAT_C_FUN(fmod)(lhs_val, rhs_val);
  251. // Python specs require that mod has same sign as second operand
  252. if (lhs_val == MICROPY_FLOAT_ZERO) {
  253. lhs_val = MICROPY_FLOAT_C_FUN(copysign)(0.0, rhs_val);
  254. } else {
  255. if ((lhs_val < MICROPY_FLOAT_ZERO) != (rhs_val < MICROPY_FLOAT_ZERO)) {
  256. lhs_val += rhs_val;
  257. }
  258. }
  259. break;
  260. case MP_BINARY_OP_POWER:
  261. case MP_BINARY_OP_INPLACE_POWER:
  262. if (lhs_val == 0 && rhs_val < 0 && !isinf(rhs_val)) {
  263. goto zero_division_error;
  264. }
  265. if (lhs_val < 0 && rhs_val != MICROPY_FLOAT_C_FUN(floor)(rhs_val) && !isnan(rhs_val)) {
  266. #if MICROPY_PY_BUILTINS_COMPLEX
  267. return mp_obj_complex_binary_op(MP_BINARY_OP_POWER, lhs_val, 0, rhs_in);
  268. #else
  269. mp_raise_ValueError(MP_ERROR_TEXT("complex values not supported"));
  270. #endif
  271. }
  272. #if MICROPY_PY_MATH_POW_FIX_NAN // Also see modmath.c.
  273. if (lhs_val == MICROPY_FLOAT_CONST(1.0) || rhs_val == MICROPY_FLOAT_CONST(0.0)) {
  274. lhs_val = MICROPY_FLOAT_CONST(1.0);
  275. break;
  276. }
  277. #endif
  278. lhs_val = MICROPY_FLOAT_C_FUN(pow)(lhs_val, rhs_val);
  279. break;
  280. case MP_BINARY_OP_DIVMOD: {
  281. if (rhs_val == 0) {
  282. goto zero_division_error;
  283. }
  284. mp_obj_float_divmod(&lhs_val, &rhs_val);
  285. mp_obj_t tuple[2] = {
  286. mp_obj_new_float(lhs_val),
  287. mp_obj_new_float(rhs_val),
  288. };
  289. return mp_obj_new_tuple(2, tuple);
  290. }
  291. case MP_BINARY_OP_LESS:
  292. return mp_obj_new_bool(lhs_val < rhs_val);
  293. case MP_BINARY_OP_MORE:
  294. return mp_obj_new_bool(lhs_val > rhs_val);
  295. case MP_BINARY_OP_EQUAL:
  296. return mp_obj_new_bool(lhs_val == rhs_val);
  297. case MP_BINARY_OP_LESS_EQUAL:
  298. return mp_obj_new_bool(lhs_val <= rhs_val);
  299. case MP_BINARY_OP_MORE_EQUAL:
  300. return mp_obj_new_bool(lhs_val >= rhs_val);
  301. default:
  302. return MP_OBJ_NULL; // op not supported
  303. }
  304. return mp_obj_new_float(lhs_val);
  305. }
  306. #endif // MICROPY_PY_BUILTINS_FLOAT