parse.c 41.9 KB
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380 381 382 383 384 385 386 387 388 389 390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417 418 419 420 421 422 423 424 425 426 427 428 429 430 431 432 433 434 435 436 437 438 439 440 441 442 443 444 445 446 447 448 449 450 451 452 453 454 455 456 457 458 459 460 461 462 463 464 465 466 467 468 469 470 471 472 473 474 475 476 477 478 479 480 481 482 483 484 485 486 487 488 489 490 491 492 493 494 495 496 497 498 499 500 501 502 503 504 505 506 507 508 509 510 511 512 513 514 515 516 517 518 519 520 521 522 523 524 525 526 527 528 529 530 531 532 533 534 535 536 537 538 539 540 541 542 543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598 599 600 601 602 603 604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084
/*
 * This file is part of the Micro Python project, http://micropython.org/
 *
 * The MIT License (MIT)
 *
 * Copyright (c) 2013-2015 Damien P. George
 *
 * Permission is hereby granted, free of charge, to any person obtaining a copy
 * of this software and associated documentation files (the "Software"), to deal
 * in the Software without restriction, including without limitation the rights
 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
 * copies of the Software, and to permit persons to whom the Software is
 * furnished to do so, subject to the following conditions:
 *
 * The above copyright notice and this permission notice shall be included in
 * all copies or substantial portions of the Software.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
 * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
 * THE SOFTWARE.
 */

#include <stdbool.h>
#include <stdint.h>
#include <stdio.h>
#include <unistd.h> // for ssize_t
#include <assert.h>
#include <string.h>

#include "py/nlr.h"
#include "py/lexer.h"
#include "py/parse.h"
#include "py/parsenum.h"
#include "py/runtime0.h"
#include "py/runtime.h"
#include "py/objint.h"
#include "py/objstr.h"
#include "py/builtin.h"

#if MICROPY_ENABLE_COMPILER

#define RULE_ACT_ARG_MASK       (0x0f)
#define RULE_ACT_KIND_MASK      (0x30)
#define RULE_ACT_ALLOW_IDENT    (0x40)
#define RULE_ACT_ADD_BLANK      (0x80)
#define RULE_ACT_OR             (0x10)
#define RULE_ACT_AND            (0x20)
#define RULE_ACT_LIST           (0x30)

#define RULE_ARG_KIND_MASK      (0xf000)
#define RULE_ARG_ARG_MASK       (0x0fff)
#define RULE_ARG_TOK            (0x1000)
#define RULE_ARG_RULE           (0x2000)
#define RULE_ARG_OPT_RULE       (0x3000)

// (un)comment to use rule names; for debugging
//#define USE_RULE_NAME (1)

typedef struct _rule_t {
    byte rule_id;
    byte act;
#ifdef USE_RULE_NAME
    const char *rule_name;
#endif
    uint16_t arg[];
} rule_t;

enum {
// define rules with a compile function
#define DEF_RULE(rule, comp, kind, ...) RULE_##rule,
#define DEF_RULE_NC(rule, kind, ...)
#include "py/grammar.h"
#undef DEF_RULE
#undef DEF_RULE_NC
    RULE_const_object, // special node for a constant, generic Python object

// define rules without a compile function
#define DEF_RULE(rule, comp, kind, ...)
#define DEF_RULE_NC(rule, kind, ...) RULE_##rule,
#include "py/grammar.h"
#undef DEF_RULE
#undef DEF_RULE_NC
};

#define or(n)                   (RULE_ACT_OR | n)
#define and(n)                  (RULE_ACT_AND | n)
#define and_ident(n)            (RULE_ACT_AND | n | RULE_ACT_ALLOW_IDENT)
#define and_blank(n)            (RULE_ACT_AND | n | RULE_ACT_ADD_BLANK)
#define one_or_more             (RULE_ACT_LIST | 2)
#define list                    (RULE_ACT_LIST | 1)
#define list_with_end           (RULE_ACT_LIST | 3)
#define tok(t)                  (RULE_ARG_TOK | MP_TOKEN_##t)
#define rule(r)                 (RULE_ARG_RULE | RULE_##r)
#define opt_rule(r)             (RULE_ARG_OPT_RULE | RULE_##r)
#ifdef USE_RULE_NAME
#define DEF_RULE(rule, comp, kind, ...) static const rule_t rule_##rule = { RULE_##rule, kind, #rule, { __VA_ARGS__ } };
#define DEF_RULE_NC(rule, kind, ...) static const rule_t rule_##rule = { RULE_##rule, kind, #rule, { __VA_ARGS__ } };
#else
#define DEF_RULE(rule, comp, kind, ...) static const rule_t rule_##rule = { RULE_##rule, kind, { __VA_ARGS__ } };
#define DEF_RULE_NC(rule, kind, ...) static const rule_t rule_##rule = { RULE_##rule, kind, { __VA_ARGS__ } };
#endif
#include "py/grammar.h"
#undef or
#undef and
#undef list
#undef list_with_end
#undef tok
#undef rule
#undef opt_rule
#undef one_or_more
#undef DEF_RULE
#undef DEF_RULE_NC

STATIC const rule_t *const rules[] = {
// define rules with a compile function
#define DEF_RULE(rule, comp, kind, ...) &rule_##rule,
#define DEF_RULE_NC(rule, kind, ...)
#include "py/grammar.h"
#undef DEF_RULE
#undef DEF_RULE_NC
    NULL, // RULE_const_object

// define rules without a compile function
#define DEF_RULE(rule, comp, kind, ...)
#define DEF_RULE_NC(rule, kind, ...) &rule_##rule,
#include "py/grammar.h"
#undef DEF_RULE
#undef DEF_RULE_NC
};

typedef struct _rule_stack_t {
    size_t src_line : 8 * sizeof(size_t) - 8; // maximum bits storing source line number
    size_t rule_id : 8; // this must be large enough to fit largest rule number
    size_t arg_i; // this dictates the maximum nodes in a "list" of things
} rule_stack_t;

typedef struct _mp_parse_chunk_t {
    size_t alloc;
    union {
        size_t used;
        struct _mp_parse_chunk_t *next;
    } union_;
    byte data[];
} mp_parse_chunk_t;

typedef struct _parser_t {
    size_t rule_stack_alloc;
    size_t rule_stack_top;
    rule_stack_t *rule_stack;

    size_t result_stack_alloc;
    size_t result_stack_top;
    mp_parse_node_t *result_stack;

    mp_lexer_t *lexer;

    mp_parse_tree_t tree;
    mp_parse_chunk_t *cur_chunk;

    #if MICROPY_COMP_CONST
    mp_map_t consts;
    #endif
} parser_t;

STATIC void *parser_alloc(parser_t *parser, size_t num_bytes) {
    // use a custom memory allocator to store parse nodes sequentially in large chunks

    mp_parse_chunk_t *chunk = parser->cur_chunk;

    if (chunk != NULL && chunk->union_.used + num_bytes > chunk->alloc) {
        // not enough room at end of previously allocated chunk so try to grow
        mp_parse_chunk_t *new_data = (mp_parse_chunk_t*)m_renew_maybe(byte, chunk,
            sizeof(mp_parse_chunk_t) + chunk->alloc,
            sizeof(mp_parse_chunk_t) + chunk->alloc + num_bytes, false);
        if (new_data == NULL) {
            // could not grow existing memory; shrink it to fit previous
            (void)m_renew_maybe(byte, chunk, sizeof(mp_parse_chunk_t) + chunk->alloc,
                sizeof(mp_parse_chunk_t) + chunk->union_.used, false);
            chunk->alloc = chunk->union_.used;
            chunk->union_.next = parser->tree.chunk;
            parser->tree.chunk = chunk;
            chunk = NULL;
        } else {
            // could grow existing memory
            chunk->alloc += num_bytes;
        }
    }

    if (chunk == NULL) {
        // no previous chunk, allocate a new chunk
        size_t alloc = MICROPY_ALLOC_PARSE_CHUNK_INIT;
        if (alloc < num_bytes) {
            alloc = num_bytes;
        }
        chunk = (mp_parse_chunk_t*)m_new(byte, sizeof(mp_parse_chunk_t) + alloc);
        chunk->alloc = alloc;
        chunk->union_.used = 0;
        parser->cur_chunk = chunk;
    }

    byte *ret = chunk->data + chunk->union_.used;
    chunk->union_.used += num_bytes;
    return ret;
}

STATIC void push_rule(parser_t *parser, size_t src_line, const rule_t *rule, size_t arg_i) {
    if (parser->rule_stack_top >= parser->rule_stack_alloc) {
        rule_stack_t *rs = m_renew(rule_stack_t, parser->rule_stack, parser->rule_stack_alloc, parser->rule_stack_alloc + MICROPY_ALLOC_PARSE_RULE_INC);
        parser->rule_stack = rs;
        parser->rule_stack_alloc += MICROPY_ALLOC_PARSE_RULE_INC;
    }
    rule_stack_t *rs = &parser->rule_stack[parser->rule_stack_top++];
    rs->src_line = src_line;
    rs->rule_id = rule->rule_id;
    rs->arg_i = arg_i;
}

STATIC void push_rule_from_arg(parser_t *parser, size_t arg) {
    assert((arg & RULE_ARG_KIND_MASK) == RULE_ARG_RULE || (arg & RULE_ARG_KIND_MASK) == RULE_ARG_OPT_RULE);
    size_t rule_id = arg & RULE_ARG_ARG_MASK;
    push_rule(parser, parser->lexer->tok_line, rules[rule_id], 0);
}

STATIC void pop_rule(parser_t *parser, const rule_t **rule, size_t *arg_i, size_t *src_line) {
    parser->rule_stack_top -= 1;
    *rule = rules[parser->rule_stack[parser->rule_stack_top].rule_id];
    *arg_i = parser->rule_stack[parser->rule_stack_top].arg_i;
    *src_line = parser->rule_stack[parser->rule_stack_top].src_line;
}

bool mp_parse_node_is_const_false(mp_parse_node_t pn) {
    return MP_PARSE_NODE_IS_TOKEN_KIND(pn, MP_TOKEN_KW_FALSE)
        || (MP_PARSE_NODE_IS_SMALL_INT(pn) && MP_PARSE_NODE_LEAF_SMALL_INT(pn) == 0);
}

bool mp_parse_node_is_const_true(mp_parse_node_t pn) {
    return MP_PARSE_NODE_IS_TOKEN_KIND(pn, MP_TOKEN_KW_TRUE)
        || (MP_PARSE_NODE_IS_SMALL_INT(pn) && MP_PARSE_NODE_LEAF_SMALL_INT(pn) != 0);
}

bool mp_parse_node_get_int_maybe(mp_parse_node_t pn, mp_obj_t *o) {
    if (MP_PARSE_NODE_IS_SMALL_INT(pn)) {
        *o = MP_OBJ_NEW_SMALL_INT(MP_PARSE_NODE_LEAF_SMALL_INT(pn));
        return true;
    } else if (MP_PARSE_NODE_IS_STRUCT_KIND(pn, RULE_const_object)) {
        mp_parse_node_struct_t *pns = (mp_parse_node_struct_t*)pn;
        #if MICROPY_OBJ_REPR == MICROPY_OBJ_REPR_D
        // nodes are 32-bit pointers, but need to extract 64-bit object
        *o = (uint64_t)pns->nodes[0] | ((uint64_t)pns->nodes[1] << 32);
        #else
        *o = (mp_obj_t)pns->nodes[0];
        #endif
        return MP_OBJ_IS_INT(*o);
    } else {
        return false;
    }
}

int mp_parse_node_extract_list(mp_parse_node_t *pn, size_t pn_kind, mp_parse_node_t **nodes) {
    if (MP_PARSE_NODE_IS_NULL(*pn)) {
        *nodes = NULL;
        return 0;
    } else if (MP_PARSE_NODE_IS_LEAF(*pn)) {
        *nodes = pn;
        return 1;
    } else {
        mp_parse_node_struct_t *pns = (mp_parse_node_struct_t*)(*pn);
        if (MP_PARSE_NODE_STRUCT_KIND(pns) != pn_kind) {
            *nodes = pn;
            return 1;
        } else {
            *nodes = pns->nodes;
            return MP_PARSE_NODE_STRUCT_NUM_NODES(pns);
        }
    }
}

#if MICROPY_DEBUG_PRINTERS
void mp_parse_node_print(mp_parse_node_t pn, size_t indent) {
    if (MP_PARSE_NODE_IS_STRUCT(pn)) {
        printf("[% 4d] ", (int)((mp_parse_node_struct_t*)pn)->source_line);
    } else {
        printf("       ");
    }
    for (size_t i = 0; i < indent; i++) {
        printf(" ");
    }
    if (MP_PARSE_NODE_IS_NULL(pn)) {
        printf("NULL\n");
    } else if (MP_PARSE_NODE_IS_SMALL_INT(pn)) {
        mp_int_t arg = MP_PARSE_NODE_LEAF_SMALL_INT(pn);
        printf("int(" INT_FMT ")\n", arg);
    } else if (MP_PARSE_NODE_IS_LEAF(pn)) {
        uintptr_t arg = MP_PARSE_NODE_LEAF_ARG(pn);
        switch (MP_PARSE_NODE_LEAF_KIND(pn)) {
            case MP_PARSE_NODE_ID: printf("id(%s)\n", qstr_str(arg)); break;
            case MP_PARSE_NODE_STRING: printf("str(%s)\n", qstr_str(arg)); break;
            case MP_PARSE_NODE_BYTES: printf("bytes(%s)\n", qstr_str(arg)); break;
            default:
                assert(MP_PARSE_NODE_LEAF_KIND(pn) == MP_PARSE_NODE_TOKEN);
                printf("tok(%u)\n", (uint)arg); break;
        }
    } else {
        // node must be a mp_parse_node_struct_t
        mp_parse_node_struct_t *pns = (mp_parse_node_struct_t*)pn;
        if (MP_PARSE_NODE_STRUCT_KIND(pns) == RULE_const_object) {
            #if MICROPY_OBJ_REPR == MICROPY_OBJ_REPR_D
            printf("literal const(%016llx)\n", (uint64_t)pns->nodes[0] | ((uint64_t)pns->nodes[1] << 32));
            #else
            printf("literal const(%p)\n", (mp_obj_t)pns->nodes[0]);
            #endif
        } else {
            size_t n = MP_PARSE_NODE_STRUCT_NUM_NODES(pns);
#ifdef USE_RULE_NAME
            printf("%s(%u) (n=%u)\n", rules[MP_PARSE_NODE_STRUCT_KIND(pns)]->rule_name, (uint)MP_PARSE_NODE_STRUCT_KIND(pns), (uint)n);
#else
            printf("rule(%u) (n=%u)\n", (uint)MP_PARSE_NODE_STRUCT_KIND(pns), (uint)n);
#endif
            for (size_t i = 0; i < n; i++) {
                mp_parse_node_print(pns->nodes[i], indent + 2);
            }
        }
    }
}
#endif // MICROPY_DEBUG_PRINTERS

/*
STATIC void result_stack_show(parser_t *parser) {
    printf("result stack, most recent first\n");
    for (ssize_t i = parser->result_stack_top - 1; i >= 0; i--) {
        mp_parse_node_print(parser->result_stack[i], 0);
    }
}
*/

STATIC mp_parse_node_t pop_result(parser_t *parser) {
    assert(parser->result_stack_top > 0);
    return parser->result_stack[--parser->result_stack_top];
}

STATIC mp_parse_node_t peek_result(parser_t *parser, size_t pos) {
    assert(parser->result_stack_top > pos);
    return parser->result_stack[parser->result_stack_top - 1 - pos];
}

STATIC void push_result_node(parser_t *parser, mp_parse_node_t pn) {
    if (parser->result_stack_top >= parser->result_stack_alloc) {
        mp_parse_node_t *stack = m_renew(mp_parse_node_t, parser->result_stack, parser->result_stack_alloc, parser->result_stack_alloc + MICROPY_ALLOC_PARSE_RESULT_INC);
        parser->result_stack = stack;
        parser->result_stack_alloc += MICROPY_ALLOC_PARSE_RESULT_INC;
    }
    parser->result_stack[parser->result_stack_top++] = pn;
}

STATIC mp_parse_node_t make_node_const_object(parser_t *parser, size_t src_line, mp_obj_t obj) {
    mp_parse_node_struct_t *pn = parser_alloc(parser, sizeof(mp_parse_node_struct_t) + sizeof(mp_obj_t));
    pn->source_line = src_line;
    #if MICROPY_OBJ_REPR == MICROPY_OBJ_REPR_D
    // nodes are 32-bit pointers, but need to store 64-bit object
    pn->kind_num_nodes = RULE_const_object | (2 << 8);
    pn->nodes[0] = (uint64_t)obj;
    pn->nodes[1] = (uint64_t)obj >> 32;
    #else
    pn->kind_num_nodes = RULE_const_object | (1 << 8);
    pn->nodes[0] = (uintptr_t)obj;
    #endif
    return (mp_parse_node_t)pn;
}

STATIC void push_result_token(parser_t *parser, const rule_t *rule) {
    mp_parse_node_t pn;
    mp_lexer_t *lex = parser->lexer;
    if (lex->tok_kind == MP_TOKEN_NAME) {
        qstr id = qstr_from_strn(lex->vstr.buf, lex->vstr.len);
        #if MICROPY_COMP_CONST
        // if name is a standalone identifier, look it up in the table of dynamic constants
        mp_map_elem_t *elem;
        if (rule->rule_id == RULE_atom
            && (elem = mp_map_lookup(&parser->consts, MP_OBJ_NEW_QSTR(id), MP_MAP_LOOKUP)) != NULL) {
            if (MP_OBJ_IS_SMALL_INT(elem->value)) {
                pn = mp_parse_node_new_small_int(MP_OBJ_SMALL_INT_VALUE(elem->value));
            } else {
                pn = make_node_const_object(parser, lex->tok_line, elem->value);
            }
        } else {
            pn = mp_parse_node_new_leaf(MP_PARSE_NODE_ID, id);
        }
        #else
        (void)rule;
        pn = mp_parse_node_new_leaf(MP_PARSE_NODE_ID, id);
        #endif
    } else if (lex->tok_kind == MP_TOKEN_INTEGER) {
        mp_obj_t o = mp_parse_num_integer(lex->vstr.buf, lex->vstr.len, 0, lex);
        if (MP_OBJ_IS_SMALL_INT(o)) {
            pn = mp_parse_node_new_small_int(MP_OBJ_SMALL_INT_VALUE(o));
        } else {
            pn = make_node_const_object(parser, lex->tok_line, o);
        }
    } else if (lex->tok_kind == MP_TOKEN_FLOAT_OR_IMAG) {
        mp_obj_t o = mp_parse_num_decimal(lex->vstr.buf, lex->vstr.len, true, false, lex);
        pn = make_node_const_object(parser, lex->tok_line, o);
    } else if (lex->tok_kind == MP_TOKEN_STRING || lex->tok_kind == MP_TOKEN_BYTES) {
        // Don't automatically intern all strings/bytes.  doc strings (which are usually large)
        // will be discarded by the compiler, and so we shouldn't intern them.
        qstr qst = MP_QSTR_NULL;
        if (lex->vstr.len <= MICROPY_ALLOC_PARSE_INTERN_STRING_LEN) {
            // intern short strings
            qst = qstr_from_strn(lex->vstr.buf, lex->vstr.len);
        } else {
            // check if this string is already interned
            qst = qstr_find_strn(lex->vstr.buf, lex->vstr.len);
        }
        if (qst != MP_QSTR_NULL) {
            // qstr exists, make a leaf node
            pn = mp_parse_node_new_leaf(lex->tok_kind == MP_TOKEN_STRING ? MP_PARSE_NODE_STRING : MP_PARSE_NODE_BYTES, qst);
        } else {
            // not interned, make a node holding a pointer to the string/bytes object
            mp_obj_t o = mp_obj_new_str_of_type(
                lex->tok_kind == MP_TOKEN_STRING ? &mp_type_str : &mp_type_bytes,
                (const byte*)lex->vstr.buf, lex->vstr.len);
            pn = make_node_const_object(parser, lex->tok_line, o);
        }
    } else {
        pn = mp_parse_node_new_leaf(MP_PARSE_NODE_TOKEN, lex->tok_kind);
    }
    push_result_node(parser, pn);
}

#if MICROPY_COMP_MODULE_CONST
STATIC const mp_rom_map_elem_t mp_constants_table[] = {
    #if MICROPY_PY_UERRNO
    { MP_ROM_QSTR(MP_QSTR_errno), MP_ROM_PTR(&mp_module_uerrno) },
    #endif
    #if MICROPY_PY_UCTYPES
    { MP_ROM_QSTR(MP_QSTR_uctypes), MP_ROM_PTR(&mp_module_uctypes) },
    #endif
    // Extra constants as defined by a port
    MICROPY_PORT_CONSTANTS
};
STATIC MP_DEFINE_CONST_MAP(mp_constants_map, mp_constants_table);
#endif

STATIC void push_result_rule(parser_t *parser, size_t src_line, const rule_t *rule, size_t num_args);

#if MICROPY_COMP_CONST_FOLDING
STATIC bool fold_logical_constants(parser_t *parser, const rule_t *rule, size_t *num_args) {
    if (rule->rule_id == RULE_or_test
        || rule->rule_id == RULE_and_test) {
        // folding for binary logical ops: or and
        size_t copy_to = *num_args;
        for (size_t i = copy_to; i > 0;) {
            mp_parse_node_t pn = peek_result(parser, --i);
            parser->result_stack[parser->result_stack_top - copy_to] = pn;
            if (i == 0) {
                // always need to keep the last value
                break;
            }
            if (rule->rule_id == RULE_or_test) {
                if (mp_parse_node_is_const_true(pn)) {
                    //
                    break;
                } else if (!mp_parse_node_is_const_false(pn)) {
                    copy_to -= 1;
                }
            } else {
                // RULE_and_test
                if (mp_parse_node_is_const_false(pn)) {
                    break;
                } else if (!mp_parse_node_is_const_true(pn)) {
                    copy_to -= 1;
                }
            }
        }
        copy_to -= 1; // copy_to now contains number of args to pop

        // pop and discard all the short-circuited expressions
        for (size_t i = 0; i < copy_to; ++i) {
            pop_result(parser);
        }
        *num_args -= copy_to;

        // we did a complete folding if there's only 1 arg left
        return *num_args == 1;

    } else if (rule->rule_id == RULE_not_test_2) {
        // folding for unary logical op: not
        mp_parse_node_t pn = peek_result(parser, 0);
        if (mp_parse_node_is_const_false(pn)) {
            pn = mp_parse_node_new_leaf(MP_PARSE_NODE_TOKEN, MP_TOKEN_KW_TRUE);
        } else if (mp_parse_node_is_const_true(pn)) {
            pn = mp_parse_node_new_leaf(MP_PARSE_NODE_TOKEN, MP_TOKEN_KW_FALSE);
        } else {
            return false;
        }
        pop_result(parser);
        push_result_node(parser, pn);
        return true;
    }

    return false;
}

STATIC bool fold_constants(parser_t *parser, const rule_t *rule, size_t num_args) {
    // this code does folding of arbitrary integer expressions, eg 1 + 2 * 3 + 4
    // it does not do partial folding, eg 1 + 2 + x -> 3 + x

    mp_obj_t arg0;
    if (rule->rule_id == RULE_expr
        || rule->rule_id == RULE_xor_expr
        || rule->rule_id == RULE_and_expr) {
        // folding for binary ops: | ^ &
        mp_parse_node_t pn = peek_result(parser, num_args - 1);
        if (!mp_parse_node_get_int_maybe(pn, &arg0)) {
            return false;
        }
        mp_binary_op_t op;
        if (rule->rule_id == RULE_expr) {
            op = MP_BINARY_OP_OR;
        } else if (rule->rule_id == RULE_xor_expr) {
            op = MP_BINARY_OP_XOR;
        } else {
            op = MP_BINARY_OP_AND;
        }
        for (ssize_t i = num_args - 2; i >= 0; --i) {
            pn = peek_result(parser, i);
            mp_obj_t arg1;
            if (!mp_parse_node_get_int_maybe(pn, &arg1)) {
                return false;
            }
            arg0 = mp_binary_op(op, arg0, arg1);
        }
    } else if (rule->rule_id == RULE_shift_expr
        || rule->rule_id == RULE_arith_expr
        || rule->rule_id == RULE_term) {
        // folding for binary ops: << >> + - * / % //
        mp_parse_node_t pn = peek_result(parser, num_args - 1);
        if (!mp_parse_node_get_int_maybe(pn, &arg0)) {
            return false;
        }
        for (ssize_t i = num_args - 2; i >= 1; i -= 2) {
            pn = peek_result(parser, i - 1);
            mp_obj_t arg1;
            if (!mp_parse_node_get_int_maybe(pn, &arg1)) {
                return false;
            }
            mp_token_kind_t tok = MP_PARSE_NODE_LEAF_ARG(peek_result(parser, i));
            static const uint8_t token_to_op[] = {
                MP_BINARY_OP_ADD,
                MP_BINARY_OP_SUBTRACT,
                MP_BINARY_OP_MULTIPLY,
                255,//MP_BINARY_OP_POWER,
                255,//MP_BINARY_OP_TRUE_DIVIDE,
                MP_BINARY_OP_FLOOR_DIVIDE,
                MP_BINARY_OP_MODULO,
                255,//MP_BINARY_OP_LESS
                MP_BINARY_OP_LSHIFT,
                255,//MP_BINARY_OP_MORE
                MP_BINARY_OP_RSHIFT,
            };
            mp_binary_op_t op = token_to_op[tok - MP_TOKEN_OP_PLUS];
            if (op == (mp_binary_op_t)255) {
                return false;
            }
            int rhs_sign = mp_obj_int_sign(arg1);
            if (op <= MP_BINARY_OP_RSHIFT) {
                // << and >> can't have negative rhs
                if (rhs_sign < 0) {
                    return false;
                }
            } else if (op >= MP_BINARY_OP_FLOOR_DIVIDE) {
                // % and // can't have zero rhs
                if (rhs_sign == 0) {
                    return false;
                }
            }
            arg0 = mp_binary_op(op, arg0, arg1);
        }
    } else if (rule->rule_id == RULE_factor_2) {
        // folding for unary ops: + - ~
        mp_parse_node_t pn = peek_result(parser, 0);
        if (!mp_parse_node_get_int_maybe(pn, &arg0)) {
            return false;
        }
        mp_token_kind_t tok = MP_PARSE_NODE_LEAF_ARG(peek_result(parser, 1));
        mp_unary_op_t op;
        if (tok == MP_TOKEN_OP_PLUS) {
            op = MP_UNARY_OP_POSITIVE;
        } else if (tok == MP_TOKEN_OP_MINUS) {
            op = MP_UNARY_OP_NEGATIVE;
        } else {
            assert(tok == MP_TOKEN_OP_TILDE); // should be
            op = MP_UNARY_OP_INVERT;
        }
        arg0 = mp_unary_op(op, arg0);

    #if MICROPY_COMP_CONST
    } else if (rule->rule_id == RULE_expr_stmt) {
        mp_parse_node_t pn1 = peek_result(parser, 0);
        if (!MP_PARSE_NODE_IS_NULL(pn1)
            && !(MP_PARSE_NODE_IS_STRUCT_KIND(pn1, RULE_expr_stmt_augassign)
            || MP_PARSE_NODE_IS_STRUCT_KIND(pn1, RULE_expr_stmt_assign_list))) {
            // this node is of the form <x> = <y>
            mp_parse_node_t pn0 = peek_result(parser, 1);
            if (MP_PARSE_NODE_IS_ID(pn0)
                && MP_PARSE_NODE_IS_STRUCT_KIND(pn1, RULE_atom_expr_normal)
                && MP_PARSE_NODE_IS_ID(((mp_parse_node_struct_t*)pn1)->nodes[0])
                && MP_PARSE_NODE_LEAF_ARG(((mp_parse_node_struct_t*)pn1)->nodes[0]) == MP_QSTR_const
                && MP_PARSE_NODE_IS_STRUCT_KIND(((mp_parse_node_struct_t*)pn1)->nodes[1], RULE_trailer_paren)
                ) {
                // code to assign dynamic constants: id = const(value)

                // get the id
                qstr id = MP_PARSE_NODE_LEAF_ARG(pn0);

                // get the value
                mp_parse_node_t pn_value = ((mp_parse_node_struct_t*)((mp_parse_node_struct_t*)pn1)->nodes[1])->nodes[0];
                mp_obj_t value;
                if (!mp_parse_node_get_int_maybe(pn_value, &value)) {
                    mp_obj_t exc = mp_obj_new_exception_msg(&mp_type_SyntaxError,
                        "constant must be an integer");
                    mp_obj_exception_add_traceback(exc, parser->lexer->source_name,
                        ((mp_parse_node_struct_t*)pn1)->source_line, MP_QSTR_NULL);
                    nlr_raise(exc);
                }

                // store the value in the table of dynamic constants
                mp_map_elem_t *elem = mp_map_lookup(&parser->consts, MP_OBJ_NEW_QSTR(id), MP_MAP_LOOKUP_ADD_IF_NOT_FOUND);
                assert(elem->value == MP_OBJ_NULL);
                elem->value = value;

                // If the constant starts with an underscore then treat it as a private
                // variable and don't emit any code to store the value to the id.
                if (qstr_str(id)[0] == '_') {
                    pop_result(parser); // pop const(value)
                    pop_result(parser); // pop id
                    push_result_rule(parser, 0, rules[RULE_pass_stmt], 0); // replace with "pass"
                    return true;
                }

                // replace const(value) with value
                pop_result(parser);
                push_result_node(parser, pn_value);

                // finished folding this assignment, but we still want it to be part of the tree
                return false;
            }
        }
        return false;
    #endif

    #if MICROPY_COMP_MODULE_CONST
    } else if (rule->rule_id == RULE_atom_expr_normal) {
        mp_parse_node_t pn0 = peek_result(parser, 1);
        mp_parse_node_t pn1 = peek_result(parser, 0);
        if (!(MP_PARSE_NODE_IS_ID(pn0)
            && MP_PARSE_NODE_IS_STRUCT_KIND(pn1, RULE_trailer_period))) {
            return false;
        }
        // id1.id2
        // look it up in constant table, see if it can be replaced with an integer
        mp_parse_node_struct_t *pns1 = (mp_parse_node_struct_t*)pn1;
        assert(MP_PARSE_NODE_IS_ID(pns1->nodes[0]));
        qstr q_base = MP_PARSE_NODE_LEAF_ARG(pn0);
        qstr q_attr = MP_PARSE_NODE_LEAF_ARG(pns1->nodes[0]);
        mp_map_elem_t *elem = mp_map_lookup((mp_map_t*)&mp_constants_map, MP_OBJ_NEW_QSTR(q_base), MP_MAP_LOOKUP);
        if (elem == NULL) {
            return false;
        }
        mp_obj_t dest[2];
        mp_load_method_maybe(elem->value, q_attr, dest);
        if (!(dest[0] != MP_OBJ_NULL && MP_OBJ_IS_INT(dest[0]) && dest[1] == MP_OBJ_NULL)) {
            return false;
        }
        arg0 = dest[0];
    #endif

    } else {
        return false;
    }

    // success folding this rule

    for (size_t i = num_args; i > 0; i--) {
        pop_result(parser);
    }
    if (MP_OBJ_IS_SMALL_INT(arg0)) {
        push_result_node(parser, mp_parse_node_new_small_int(MP_OBJ_SMALL_INT_VALUE(arg0)));
    } else {
        // TODO reuse memory for parse node struct?
        push_result_node(parser, make_node_const_object(parser, 0, arg0));
    }

    return true;
}
#endif

STATIC void push_result_rule(parser_t *parser, size_t src_line, const rule_t *rule, size_t num_args) {
    // optimise away parenthesis around an expression if possible
    if (rule->rule_id == RULE_atom_paren) {
        // there should be just 1 arg for this rule
        mp_parse_node_t pn = peek_result(parser, 0);
        if (MP_PARSE_NODE_IS_NULL(pn)) {
            // need to keep parenthesis for ()
        } else if (MP_PARSE_NODE_IS_STRUCT_KIND(pn, RULE_testlist_comp)) {
            // need to keep parenthesis for (a, b, ...)
        } else {
            // parenthesis around a single expression, so it's just the expression
            return;
        }
    }

    #if MICROPY_COMP_CONST_FOLDING
    if (fold_logical_constants(parser, rule, &num_args)) {
        // we folded this rule so return straight away
        return;
    }
    if (fold_constants(parser, rule, num_args)) {
        // we folded this rule so return straight away
        return;
    }
    #endif

    mp_parse_node_struct_t *pn = parser_alloc(parser, sizeof(mp_parse_node_struct_t) + sizeof(mp_parse_node_t) * num_args);
    pn->source_line = src_line;
    pn->kind_num_nodes = (rule->rule_id & 0xff) | (num_args << 8);
    for (size_t i = num_args; i > 0; i--) {
        pn->nodes[i - 1] = pop_result(parser);
    }
    push_result_node(parser, (mp_parse_node_t)pn);
}

mp_parse_tree_t mp_parse(mp_lexer_t *lex, mp_parse_input_kind_t input_kind) {

    // initialise parser and allocate memory for its stacks

    parser_t parser;

    parser.rule_stack_alloc = MICROPY_ALLOC_PARSE_RULE_INIT;
    parser.rule_stack_top = 0;
    parser.rule_stack = m_new(rule_stack_t, parser.rule_stack_alloc);

    parser.result_stack_alloc = MICROPY_ALLOC_PARSE_RESULT_INIT;
    parser.result_stack_top = 0;
    parser.result_stack = m_new(mp_parse_node_t, parser.result_stack_alloc);

    parser.lexer = lex;

    parser.tree.chunk = NULL;
    parser.cur_chunk = NULL;

    #if MICROPY_COMP_CONST
    mp_map_init(&parser.consts, 0);
    #endif

    // work out the top-level rule to use, and push it on the stack
    size_t top_level_rule;
    switch (input_kind) {
        case MP_PARSE_SINGLE_INPUT: top_level_rule = RULE_single_input; break;
        case MP_PARSE_EVAL_INPUT: top_level_rule = RULE_eval_input; break;
        default: top_level_rule = RULE_file_input;
    }
    push_rule(&parser, lex->tok_line, rules[top_level_rule], 0);

    // parse!

    size_t n, i; // state for the current rule
    size_t rule_src_line; // source line for the first token matched by the current rule
    bool backtrack = false;
    const rule_t *rule = NULL;

    for (;;) {
        next_rule:
        if (parser.rule_stack_top == 0) {
            break;
        }

        pop_rule(&parser, &rule, &i, &rule_src_line);
        n = rule->act & RULE_ACT_ARG_MASK;

        /*
        // debugging
        printf("depth=%d ", parser.rule_stack_top);
        for (int j = 0; j < parser.rule_stack_top; ++j) {
            printf(" ");
        }
        printf("%s n=%d i=%d bt=%d\n", rule->rule_name, n, i, backtrack);
        */

        switch (rule->act & RULE_ACT_KIND_MASK) {
            case RULE_ACT_OR:
                if (i > 0 && !backtrack) {
                    goto next_rule;
                } else {
                    backtrack = false;
                }
                for (; i < n; ++i) {
                    uint16_t kind = rule->arg[i] & RULE_ARG_KIND_MASK;
                    if (kind == RULE_ARG_TOK) {
                        if (lex->tok_kind == (rule->arg[i] & RULE_ARG_ARG_MASK)) {
                            push_result_token(&parser, rule);
                            mp_lexer_to_next(lex);
                            goto next_rule;
                        }
                    } else {
                        assert(kind == RULE_ARG_RULE);
                        if (i + 1 < n) {
                            push_rule(&parser, rule_src_line, rule, i + 1); // save this or-rule
                        }
                        push_rule_from_arg(&parser, rule->arg[i]); // push child of or-rule
                        goto next_rule;
                    }
                }
                backtrack = true;
                break;

            case RULE_ACT_AND: {

                // failed, backtrack if we can, else syntax error
                if (backtrack) {
                    assert(i > 0);
                    if ((rule->arg[i - 1] & RULE_ARG_KIND_MASK) == RULE_ARG_OPT_RULE) {
                        // an optional rule that failed, so continue with next arg
                        push_result_node(&parser, MP_PARSE_NODE_NULL);
                        backtrack = false;
                    } else {
                        // a mandatory rule that failed, so propagate backtrack
                        if (i > 1) {
                            // already eaten tokens so can't backtrack
                            goto syntax_error;
                        } else {
                            goto next_rule;
                        }
                    }
                }

                // progress through the rule
                for (; i < n; ++i) {
                    if ((rule->arg[i] & RULE_ARG_KIND_MASK) == RULE_ARG_TOK) {
                        // need to match a token
                        mp_token_kind_t tok_kind = rule->arg[i] & RULE_ARG_ARG_MASK;
                        if (lex->tok_kind == tok_kind) {
                            // matched token
                            if (tok_kind == MP_TOKEN_NAME) {
                                push_result_token(&parser, rule);
                            }
                            mp_lexer_to_next(lex);
                        } else {
                            // failed to match token
                            if (i > 0) {
                                // already eaten tokens so can't backtrack
                                goto syntax_error;
                            } else {
                                // this rule failed, so backtrack
                                backtrack = true;
                                goto next_rule;
                            }
                        }
                    } else {
                        push_rule(&parser, rule_src_line, rule, i + 1); // save this and-rule
                        push_rule_from_arg(&parser, rule->arg[i]); // push child of and-rule
                        goto next_rule;
                    }
                }

                assert(i == n);

                // matched the rule, so now build the corresponding parse_node

                #if !MICROPY_ENABLE_DOC_STRING
                // this code discards lonely statements, such as doc strings
                if (input_kind != MP_PARSE_SINGLE_INPUT && rule->rule_id == RULE_expr_stmt && peek_result(&parser, 0) == MP_PARSE_NODE_NULL) {
                    mp_parse_node_t p = peek_result(&parser, 1);
                    if ((MP_PARSE_NODE_IS_LEAF(p) && !MP_PARSE_NODE_IS_ID(p))
                        || MP_PARSE_NODE_IS_STRUCT_KIND(p, RULE_const_object)) {
                        pop_result(&parser); // MP_PARSE_NODE_NULL
                        pop_result(&parser); // const expression (leaf or RULE_const_object)
                        // Pushing the "pass" rule here will overwrite any RULE_const_object
                        // entry that was on the result stack, allowing the GC to reclaim
                        // the memory from the const object when needed.
                        push_result_rule(&parser, rule_src_line, rules[RULE_pass_stmt], 0);
                        break;
                    }
                }
                #endif

                // count number of arguments for the parse node
                i = 0;
                size_t num_not_nil = 0;
                for (size_t x = n; x > 0;) {
                    --x;
                    if ((rule->arg[x] & RULE_ARG_KIND_MASK) == RULE_ARG_TOK) {
                        mp_token_kind_t tok_kind = rule->arg[x] & RULE_ARG_ARG_MASK;
                        if (tok_kind == MP_TOKEN_NAME) {
                            // only tokens which were names are pushed to stack
                            i += 1;
                            num_not_nil += 1;
                        }
                    } else {
                        // rules are always pushed
                        if (peek_result(&parser, i) != MP_PARSE_NODE_NULL) {
                            num_not_nil += 1;
                        }
                        i += 1;
                    }
                }

                if (num_not_nil == 1 && (rule->act & RULE_ACT_ALLOW_IDENT)) {
                    // this rule has only 1 argument and should not be emitted
                    mp_parse_node_t pn = MP_PARSE_NODE_NULL;
                    for (size_t x = 0; x < i; ++x) {
                        mp_parse_node_t pn2 = pop_result(&parser);
                        if (pn2 != MP_PARSE_NODE_NULL) {
                            pn = pn2;
                        }
                    }
                    push_result_node(&parser, pn);
                } else {
                    // this rule must be emitted

                    if (rule->act & RULE_ACT_ADD_BLANK) {
                        // and add an extra blank node at the end (used by the compiler to store data)
                        push_result_node(&parser, MP_PARSE_NODE_NULL);
                        i += 1;
                    }

                    push_result_rule(&parser, rule_src_line, rule, i);
                }
                break;
            }

            default: {
                assert((rule->act & RULE_ACT_KIND_MASK) == RULE_ACT_LIST);

                // n=2 is: item item*
                // n=1 is: item (sep item)*
                // n=3 is: item (sep item)* [sep]
                bool had_trailing_sep;
                if (backtrack) {
                    list_backtrack:
                    had_trailing_sep = false;
                    if (n == 2) {
                        if (i == 1) {
                            // fail on item, first time round; propagate backtrack
                            goto next_rule;
                        } else {
                            // fail on item, in later rounds; finish with this rule
                            backtrack = false;
                        }
                    } else {
                        if (i == 1) {
                            // fail on item, first time round; propagate backtrack
                            goto next_rule;
                        } else if ((i & 1) == 1) {
                            // fail on item, in later rounds; have eaten tokens so can't backtrack
                            if (n == 3) {
                                // list allows trailing separator; finish parsing list
                                had_trailing_sep = true;
                                backtrack = false;
                            } else {
                                // list doesn't allowing trailing separator; fail
                                goto syntax_error;
                            }
                        } else {
                            // fail on separator; finish parsing list
                            backtrack = false;
                        }
                    }
                } else {
                    for (;;) {
                        size_t arg = rule->arg[i & 1 & n];
                        if ((arg & RULE_ARG_KIND_MASK) == RULE_ARG_TOK) {
                            if (lex->tok_kind == (arg & RULE_ARG_ARG_MASK)) {
                                if (i & 1 & n) {
                                    // separators which are tokens are not pushed to result stack
                                } else {
                                    push_result_token(&parser, rule);
                                }
                                mp_lexer_to_next(lex);
                                // got element of list, so continue parsing list
                                i += 1;
                            } else {
                                // couldn't get element of list
                                i += 1;
                                backtrack = true;
                                goto list_backtrack;
                            }
                        } else {
                            assert((arg & RULE_ARG_KIND_MASK) == RULE_ARG_RULE);
                            push_rule(&parser, rule_src_line, rule, i + 1); // save this list-rule
                            push_rule_from_arg(&parser, arg); // push child of list-rule
                            goto next_rule;
                        }
                    }
                }
                assert(i >= 1);

                // compute number of elements in list, result in i
                i -= 1;
                if ((n & 1) && (rule->arg[1] & RULE_ARG_KIND_MASK) == RULE_ARG_TOK) {
                    // don't count separators when they are tokens
                    i = (i + 1) / 2;
                }

                if (i == 1) {
                    // list matched single item
                    if (had_trailing_sep) {
                        // if there was a trailing separator, make a list of a single item
                        push_result_rule(&parser, rule_src_line, rule, i);
                    } else {
                        // just leave single item on stack (ie don't wrap in a list)
                    }
                } else {
                    push_result_rule(&parser, rule_src_line, rule, i);
                }
                break;
            }
        }
    }

    #if MICROPY_COMP_CONST
    mp_map_deinit(&parser.consts);
    #endif

    // truncate final chunk and link into chain of chunks
    if (parser.cur_chunk != NULL) {
        (void)m_renew_maybe(byte, parser.cur_chunk,
            sizeof(mp_parse_chunk_t) + parser.cur_chunk->alloc,
            sizeof(mp_parse_chunk_t) + parser.cur_chunk->union_.used,
            false);
        parser.cur_chunk->alloc = parser.cur_chunk->union_.used;
        parser.cur_chunk->union_.next = parser.tree.chunk;
        parser.tree.chunk = parser.cur_chunk;
    }

    if (
        lex->tok_kind != MP_TOKEN_END // check we are at the end of the token stream
        || parser.result_stack_top == 0 // check that we got a node (can fail on empty input)
        ) {
    syntax_error:;
        mp_obj_t exc;
        if (lex->tok_kind == MP_TOKEN_INDENT) {
            exc = mp_obj_new_exception_msg(&mp_type_IndentationError,
                "unexpected indent");
        } else if (lex->tok_kind == MP_TOKEN_DEDENT_MISMATCH) {
            exc = mp_obj_new_exception_msg(&mp_type_IndentationError,
                "unindent does not match any outer indentation level");
        } else {
            exc = mp_obj_new_exception_msg(&mp_type_SyntaxError,
                "invalid syntax");
        }
        // add traceback to give info about file name and location
        // we don't have a 'block' name, so just pass the NULL qstr to indicate this
        mp_obj_exception_add_traceback(exc, lex->source_name, lex->tok_line, MP_QSTR_NULL);
        nlr_raise(exc);
    }

    // get the root parse node that we created
    assert(parser.result_stack_top == 1);
    parser.tree.root = parser.result_stack[0];

    // free the memory that we don't need anymore
    m_del(rule_stack_t, parser.rule_stack, parser.rule_stack_alloc);
    m_del(mp_parse_node_t, parser.result_stack, parser.result_stack_alloc);

    // we also free the lexer on behalf of the caller
    mp_lexer_free(lex);

    return parser.tree;
}

void mp_parse_tree_clear(mp_parse_tree_t *tree) {
    mp_parse_chunk_t *chunk = tree->chunk;
    while (chunk != NULL) {
        mp_parse_chunk_t *next = chunk->union_.next;
        m_del(byte, chunk, sizeof(mp_parse_chunk_t) + chunk->alloc);
        chunk = next;
    }
}

#endif // MICROPY_ENABLE_COMPILER