mirror of
https://github.com/nunuhara/xsystem4.git
synced 2026-09-28 09:57:59 +03:00
478 lines
9.7 KiB
C
478 lines
9.7 KiB
C
/* Copyright (C) 2019 Nunuhara Cabbage <nunuhara@haniwa.technology>
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 2 of the License, or
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* (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, see <http://gnu.org/licenses/>.
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*/
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#include <stdint.h>
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#include <stdlib.h>
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#include <stdio.h>
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#include <string.h>
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#include "system4.h"
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#include "vm.h"
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#include "vm_string.h"
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#include "utfsjis.h"
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struct string EMPTY_STRING = {
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.cow = true,
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.ref = 1,
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.size = 0,
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.text = ""
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};
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static struct string *alloc_string(int size)
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{
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return xmalloc(sizeof(struct string) + size + 1);
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}
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void free_string(struct string *str)
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{
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if (!str->ref)
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ERROR("Double free of string object");
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if (!--str->ref) {
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free(str);
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}
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}
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struct string *make_string(const char *str, unsigned int len)
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{
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struct string *s = alloc_string(len);
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s->size = len;
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s->ref = 1;
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s->cow = 0;
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memcpy(s->text, str, len);
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s->text[len] = '\0';
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return s;
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}
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struct string *string_ref(struct string *s)
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{
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s->cow = 1;
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s->ref++;
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return s;
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}
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struct string *string_dup(const struct string *in)
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{
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struct string *out = alloc_string(in->size);
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out->size = in->size;
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out->ref = 1;
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out->cow = 0;
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memcpy(out->text, in->text, in->size + 1);
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return out;
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}
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struct string *integer_to_string(int n)
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{
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char buf[512];
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int len = snprintf(buf, 512, "%d", n);
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return make_string(buf, len);
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}
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struct string *float_to_string(float f, int precision)
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{
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char buf[512];
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int len;
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// System40.exe pushes -1, defaults to 6
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if (precision < 0) {
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precision = 6;
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}
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len = snprintf(buf, 512, "%.*f", precision, f);
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return make_string(buf, len);
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}
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struct string *string_concatenate(const struct string *a, const struct string *b)
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{
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struct string *s = alloc_string(a->size + b->size);
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s->size = a->size + b->size;
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s->ref = 1;
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s->cow = 0;
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memcpy(s->text, a->text, a->size);
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memcpy(s->text + a->size, b->text, b->size + 1);
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return s;
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}
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struct string *string_copy(const struct string *s, int index, int len)
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{
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if (index < 0)
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index = 0;
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if (len <= 0)
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return make_string("", 0);
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if ((index = sjis_index(s->text, index)) < 0)
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return make_string("", 0);
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if ((len = sjis_index(s->text + index, len)) < 0)
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len = s->size - index;
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return make_string(s->text + index, len);
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}
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static struct string *cow_check(struct string *s)
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{
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if (s->cow && s->ref > 1) {
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struct string *out = string_dup(s);
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free_string(s);
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return out;
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}
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if (s->cow)
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s->cow = 0;
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return s;
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}
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void string_append_cstr(struct string **_a, const char *b, size_t b_size)
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{
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if (!b_size)
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return;
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struct string *a = *_a = cow_check(*_a);
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a = xrealloc(a, sizeof(struct string) + a->size + b_size + 1);
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memcpy(a->text + a->size, b, b_size);
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a->size += b_size;
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a->text[a->size] = '\0';
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*_a = a;
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}
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void string_append(struct string **_a, const struct string *b)
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{
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struct string *a = *_a = cow_check(*_a);
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size_t a_size = a->size;
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a = xrealloc(a, sizeof(struct string) + a->size + b->size + 1);
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a->size = a_size + b->size;
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memcpy(a->text + a_size, b->text, b->size + 1);
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*_a = a;
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}
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void string_push_back(struct string **s, int c)
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{
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int bytes = SJIS_2BYTE(c) ? 2 : 1;
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*s = cow_check(*s);
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*s = xrealloc(*s, sizeof(struct string) + (*s)->size + bytes + 1);
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(*s)->text[(*s)->size++] = c & 0xFF;
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if (bytes == 2) {
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(*s)->text[(*s)->size++] = c >> 8;
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}
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(*s)->text[(*s)->size] = '\0';
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}
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void string_pop_back(struct string **s)
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{
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*s = cow_check(*s);
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// get index of last character
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int c = 0;
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for (int i = 0; i < (*s)->size; i++) {
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c = i;
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if (SJIS_2BYTE((*s)->text[i])) {
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i++;
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}
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}
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(*s)->text[c] = '\0';
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(*s)->size = c;
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}
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void string_erase(struct string **s, int index)
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{
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int bytes;
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if (index < 0)
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index = 0;
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if (index >= (*s)->size)
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return;
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if ((index = sjis_index((*s)->text, index)) < 0)
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return;
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bytes = SJIS_2BYTE((*s)->text[index]) ? 2 : 1;
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*s = cow_check(*s);
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memcpy((*s)->text + index, (*s)->text + index + bytes, (*s)->size - index - bytes);
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(*s)->size -= bytes;
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(*s)->text[(*s)->size] = '\0';
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}
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int string_find(const struct string *haystack, const struct string *needle)
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{
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int c = 0;
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for (int i = 0; i < haystack->size; i++, c++) {
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if (!strncmp(haystack->text+i, needle->text, needle->size))
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return c;
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if (SJIS_2BYTE(haystack->text[i])) {
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i++;
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}
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}
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return -1;
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}
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int string_get_char(const struct string *str, int i)
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{
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if ((i = sjis_index(str->text, i)) < 0)
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ERROR("String index out of bounds");
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if (SJIS_2BYTE(str->text[i]))
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return (uint8_t)str->text[i] | ((uint8_t)str->text[i+1] << 8);
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return str->text[i];
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}
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void string_set_char(struct string **_str, int i, unsigned int c)
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{
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struct string *str = *_str = cow_check(*_str);
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int bytes_src, bytes_dst;
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if ((i = sjis_index(str->text, i)) < 0)
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ERROR("String index out of bounds");
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bytes_src = SJIS_2BYTE(c) ? 2 : 1;
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bytes_dst = SJIS_2BYTE(str->text[i]) ? 2 : 1;
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if (bytes_src == 1 && bytes_dst == 1) {
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str->text[i] = c;
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} else if (bytes_src == 2 && bytes_dst == 2) {
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str->text[i] = c & 0xFF;
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str->text[i+1] = (c >> 8) & 0xFF;
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} else if (bytes_src == 1 && bytes_dst == 2) {
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// shrink 1 byte
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str->text[i] = c;
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for (int j = i+1; j < str->size; j++) {
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str->text[j] = str->text[j+1];
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}
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str->size--;
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} else if (bytes_src == 2 && bytes_dst == 1) {
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// grow 1 byte
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str = xrealloc(str, sizeof(struct string) + str->size + 1);
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str->size++;
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*_str = str;
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for (int j = str->size; j > i; j--) {
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str->text[j] = str->text[j-1];
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}
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str->text[i] = c & 0xFF;
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str->text[i+1] = (c >> 8) & 0xFF;
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}
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}
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#define DIGIT_MAX 512
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enum fmt_type {
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FMT_VOID,
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FMT_INT,
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FMT_FLOAT,
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FMT_STRING,
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FMT_CHAR,
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FMT_BOOL
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};
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struct fmt_spec {
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enum fmt_type type;
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int precision;
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int padding;
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bool zero_pad;
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bool zenkaku;
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};
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static int read_number(const char **_fmt)
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{
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int n = 0;
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const char *fmt = *_fmt;
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while (*fmt && *fmt >= '0' && *fmt <= '9') {
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n *= 10;
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n += *fmt - '0';
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fmt++;
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}
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*_fmt = fmt;
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return n;
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}
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static void parse_fmt_spec(const char **_fmt, struct fmt_spec *spec)
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{
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const char *fmt = *_fmt;
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memset(spec, 0, sizeof(struct fmt_spec));
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spec->precision = 6;
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while (*fmt) {
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switch (*fmt) {
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case 'd':
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spec->type = FMT_INT;
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goto end;
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case 'D':
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spec->type = FMT_INT;
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spec->zenkaku = true;
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goto end;
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case 'f':
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spec->type = FMT_FLOAT;
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goto end;
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case 'F':
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spec->type = FMT_FLOAT;
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spec->zenkaku = true;
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goto end;
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case 's':
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spec->type = FMT_STRING;
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goto end;
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case 'c':
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spec->type = FMT_CHAR;
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goto end;
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case 'b':
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spec->type = FMT_BOOL;
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goto end;
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case '0':
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spec->zero_pad = true;
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fmt++;
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break;
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case '1':
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case '2':
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case '3':
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case '4':
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case '5':
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case '6':
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case '7':
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case '8':
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case '9':
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spec->padding = read_number(&fmt);
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break;
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case '.':
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fmt++;
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spec->precision = read_number(&fmt);
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break;
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default:
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goto warn;
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}
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}
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warn:
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WARNING("Invalid format specifier: %s", *_fmt);
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end:
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*_fmt = ++fmt;
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}
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static int number_han2zen(char *buf)
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{
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char tmp[DIGIT_MAX];
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int i = 0;
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for (char *p = buf; *p && i < DIGIT_MAX-2; p++) {
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switch (*p) {
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case '0': case '1': case '2': case '3': case '4':
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case '5': case '6': case '7': case '8': case '9':
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tmp[i++] = 0x82;
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tmp[i++] = 0x4f + (*p - '0');
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break;
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case '-':
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tmp[i++] = 0x81;
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tmp[i++] = 0x7c;
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break;
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case '.':
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tmp[i++] = 0x81;
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tmp[i++] = 0x44;
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break;
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case ' ':
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tmp[i++] = 0x81;
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tmp[i++] = 0x40;
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break;
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default:
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tmp[i++] = *p;
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}
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}
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tmp[i] = '\0';
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memcpy(buf, tmp, i+1);
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return i;
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}
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static int fmt_int(char *buf, struct fmt_spec *spec, int v)
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{
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int i = 0;
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char fmt[64];
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// prepare format string for snprintf
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fmt[i++] = '%';
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if (spec->padding) {
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if (spec->zero_pad)
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fmt[i++] = '0';
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i += snprintf(fmt+i, 64-i, "%d", spec->padding);
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}
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fmt[i++] = 'd';
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fmt[i] = '\0';
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i = snprintf(buf, DIGIT_MAX-1, fmt, v);
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if (spec->zenkaku)
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i = number_han2zen(buf);
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return i;
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}
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static int fmt_float(char *buf, struct fmt_spec *spec, float v)
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{
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int i = 0;
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char fmt[64];
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// prepare format string for snprintf
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fmt[i++] = '%';
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if (spec->padding) {
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if (spec->zero_pad)
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fmt[i++] = '0';
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i += snprintf(fmt+i, 64-i, "%d", spec->padding);
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}
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fmt[i++] = '.';
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i += snprintf(fmt+i, 64-i, "%d", spec->precision);
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fmt[i++] = 'f';
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fmt[i] = '\0';
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i = snprintf(buf, DIGIT_MAX-1, fmt, v);
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if (spec->zenkaku) {
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i = number_han2zen(buf);
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// XXX: bug in System40.exe
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buf[i++] = 'F';
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buf[i] = '\0';
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}
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return i;
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}
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static void append_fmt(struct string **s, struct fmt_spec *spec, union vm_value arg)
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{
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int len;
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char buf[DIGIT_MAX] = { [DIGIT_MAX-1] = '\0' };
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switch (spec->type) {
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case FMT_VOID:
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return;
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case FMT_INT:
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len = fmt_int(buf, spec, arg.i);
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string_append_cstr(s, buf, len);
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break;
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case FMT_FLOAT:
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len = fmt_float(buf, spec, arg.f);
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string_append_cstr(s, buf, len);
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break;
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case FMT_STRING:
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string_append(s, heap[arg.i].s);
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break;
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case FMT_CHAR:
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string_push_back(s, arg.i);
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break;
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case FMT_BOOL:
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if (arg.i)
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string_append_cstr(s, "true", 4);
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else
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string_append_cstr(s, "false", 5);
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break;
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}
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}
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struct string *string_format(struct string *fmt, union vm_value arg)
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{
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struct string *out = string_ref(&EMPTY_STRING);
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for (const char *s = fmt->text; *s; s++) {
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if (*s == '%') {
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struct fmt_spec spec;
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string_append_cstr(&out, fmt->text, s - fmt->text);
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s++;
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parse_fmt_spec(&s, &spec);
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append_fmt(&out, &spec, arg);
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string_append_cstr(&out, s, strlen(s));
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}
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}
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return out;
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}
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