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mruby-mruby/src/variable.c
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Yukihiro "Matz" Matsumoto 907b4b99d1 variable.c: use realloc in iv_rehash to avoid malloc+free
when the allocator can extend the block in place, realloc avoids
the overhead of malloc+memcpy+free. the keys are moved to their
new position with memmove and extended regions are cleared.

Co-authored-by: Claude <noreply@anthropic.com>
2026-01-14 14:43:32 +09:00

1476 lines
37 KiB
C

/*
** variable.c - mruby variables
**
** See Copyright Notice in mruby.h
*/
#include <mruby.h>
#include <mruby/array.h>
#include <mruby/class.h>
#include <mruby/proc.h>
#include <mruby/string.h>
#include <mruby/variable.h>
#include <mruby/internal.h>
#include <mruby/presym.h>
/* Instance variable table structure */
typedef struct iv_tbl {
int size, alloc;
mrb_value *ptr;
} iv_tbl;
/* Creates the instance variable table. */
static iv_tbl*
iv_new(mrb_state *mrb)
{
iv_tbl *t;
t = (iv_tbl*)mrb_malloc(mrb, sizeof(iv_tbl));
t->size = 0;
t->alloc = 0;
t->ptr = NULL;
return t;
}
static void iv_put(mrb_state *mrb, iv_tbl *t, mrb_sym sym, mrb_value val);
#define IV_INITIAL_SIZE 2
static void
iv_rehash(mrb_state *mrb, iv_tbl *t)
{
int old_alloc = t->alloc;
int new_alloc = old_alloc > 0 ? old_alloc << 1 : IV_INITIAL_SIZE;
if (old_alloc == 0) {
/* first-time init */
t->ptr = (mrb_value*)mrb_calloc(mrb, new_alloc, sizeof(mrb_value)+sizeof(mrb_sym));
t->alloc = new_alloc;
return;
}
/* realloc may extend in place, avoiding malloc+memcpy+free */
size_t new_size = (size_t)new_alloc * (sizeof(mrb_value) + sizeof(mrb_sym));
t->ptr = (mrb_value*)mrb_realloc(mrb, t->ptr, new_size);
/* move keys from old position to new position */
mrb_sym *old_keys = (mrb_sym*)&t->ptr[old_alloc];
mrb_sym *new_keys = (mrb_sym*)&t->ptr[new_alloc];
memmove(new_keys, old_keys, sizeof(mrb_sym) * t->size);
/* clear extended value region (where old keys were + new slots) */
memset(&t->ptr[old_alloc], 0, sizeof(mrb_value) * (new_alloc - old_alloc));
/* clear extended key region */
memset(&new_keys[t->size], 0, sizeof(mrb_sym) * (new_alloc - t->size));
t->alloc = new_alloc;
}
/* Branch-free binary search helper: returns the index where `target` should be inserted/found. */
static inline int
iv_bsearch_idx(mrb_sym *keys, int size, mrb_sym target) {
if (size == 0) return 0;
int n = size;
mrb_sym *p = keys;
/* While more than one element remains, halve the range each iteration */
while (n > 1) {
int half = n >> 1;
MRB_MEM_PREFETCH(p + (half >> 1));
MRB_MEM_PREFETCH(p + half + (half >> 1));
mrb_sym mid_sym = p[half];
/*
* Update pointer p without a branch:
* If mid_sym < target, move p forward by half; otherwise keep p unchanged.
* Compiler will emit a CMOV or equivalent.
*/
p = (mid_sym < target) ? p + half : p;
n -= half;
}
/* Final adjustment: if the remaining element is still less than target, advance by one */
return (int)(p - keys) + (p[0] < target);
}
/* Set (insert or update) the value for `sym` in the instance variable table using branch-free search. */
static void
iv_put(mrb_state *mrb, iv_tbl *t, mrb_sym sym, mrb_value val)
{
/* If table is uninitialized, allocate and initialize */
if (t->alloc == 0) {
iv_rehash(mrb, t);
}
/* Obtain pointers to keys and values arrays */
mrb_sym *keys = (mrb_sym*)&t->ptr[t->alloc];
mrb_value *vals = t->ptr;
/* Determine insertion/update index:
* If table has entries, use branch-free search; otherwise index = 0.
*/
int lo = iv_bsearch_idx(keys, t->size, sym);
/* If the key already exists, update its value and return */
if (lo < t->size && keys[lo] == sym) {
vals[lo] = val;
return;
}
/* Grow table if full, then recompute position */
if (t->size == t->alloc) {
iv_rehash(mrb, t);
keys = (mrb_sym*)&t->ptr[t->alloc];
vals = t->ptr;
lo = iv_bsearch_idx(keys, t->size, sym);
}
/* Shift existing entries right to make room at index lo */
int move_count = t->size - lo;
if (move_count > 0) {
memmove(&keys[lo + 1], &keys[lo], move_count * sizeof(mrb_sym));
memmove(&vals[lo + 1], &vals[lo], move_count * sizeof(mrb_value));
}
/* Insert the new key and value */
keys[lo] = sym;
vals[lo] = val;
t->size++;
}
/* Get a value for `sym` from the instance variable table using branch-free search. */
static int
iv_get(mrb_state *mrb, iv_tbl *t, mrb_sym sym, mrb_value *vp)
{
/* Return 0 if table is null, uninitialized, or empty */
if (t == NULL || t->alloc == 0 || t->size == 0) return 0;
mrb_sym *keys = (mrb_sym*)&t->ptr[t->alloc];
mrb_value *vals = t->ptr;
/* Find index in a branch-free manner */
int lo = iv_bsearch_idx(keys, t->size, sym);
/* If found, store value (if vp provided) and return 1-based position */
if (lo < t->size && keys[lo] == sym) {
if (vp) *vp = vals[lo];
return lo + 1;
}
/* Not found */
return 0;
}
/* Delete the entry for `sym` from the instance variable table using branch-free search. */
static mrb_bool
iv_del(mrb_state *mrb, iv_tbl *t, mrb_sym sym, mrb_value *vp)
{
/* Return FALSE if table is null, uninitialized, or empty */
if (t == NULL || t->alloc == 0 || t->size == 0) return FALSE;
mrb_sym *keys = (mrb_sym*)&t->ptr[t->alloc];
mrb_value *vals = t->ptr;
/* Find index in a branch-free manner */
int lo = iv_bsearch_idx(keys, t->size, sym);
/* If found, optionally return value and shift entries left to delete */
if (lo < t->size && keys[lo] == sym) {
if (vp) *vp = vals[lo];
int move_count = t->size - lo - 1;
if (move_count > 0) {
memmove(&keys[lo], &keys[lo + 1], move_count * sizeof(mrb_sym));
memmove(&vals[lo], &vals[lo + 1], move_count * sizeof(mrb_value));
}
t->size--;
return TRUE;
}
/* Not found */
return FALSE;
}
/* Iterates over the instance variable table. */
static void
iv_foreach(mrb_state *mrb, iv_tbl *t, mrb_iv_foreach_func *func, void *p)
{
if (t == NULL || t->alloc == 0 || t->size == 0) return;
for (int i = 0; i < t->size; i++) {
mrb_sym *keys = (mrb_sym*)&t->ptr[t->alloc];
mrb_value *vals = t->ptr;
if ((*func)(mrb, keys[i], vals[i], p) != 0) return;
}
}
/* Get the size of the instance variable table. */
static size_t
iv_size(mrb_state *mrb, iv_tbl *t)
{
return t ? t->size : 0;
}
/* Copy the sorted table */
static iv_tbl*
iv_copy(mrb_state *mrb, iv_tbl *t)
{
if (t == NULL || t->alloc == 0 || t->size == 0) return NULL;
/* create new table and mirror alloc/size */
iv_tbl *t2 = iv_new(mrb);
t2->alloc = t->alloc;
t2->size = t->size;
/* allocate the same block shape */
t2->ptr = (mrb_value*)mrb_calloc(mrb, t2->alloc, sizeof(mrb_value)+sizeof(mrb_sym));
/* copy values[0...size] and keys[0...size] */
memcpy(t2->ptr, t->ptr, sizeof(mrb_value)*t2->size);
memcpy(&t2->ptr[t2->alloc], &t->ptr[t->alloc], sizeof(mrb_sym)*t2->size);
return t2;
}
/* Free memory of the instance variable table. */
static void
iv_free(mrb_state *mrb, iv_tbl *t)
{
mrb_free(mrb, t->ptr);
mrb_free(mrb, t);
}
static int
iv_mark_i(mrb_state *mrb, mrb_sym sym, mrb_value v, void *p)
{
mrb_gc_mark_value(mrb, v);
return 0;
}
static void
mark_tbl(mrb_state *mrb, iv_tbl *t)
{
iv_foreach(mrb, t, iv_mark_i, 0);
}
void
mrb_gc_mark_gv(mrb_state *mrb)
{
mark_tbl(mrb, mrb->globals);
}
void
mrb_gc_free_gv(mrb_state *mrb)
{
if (mrb->globals) {
iv_free(mrb, mrb->globals);
mrb->globals = NULL;
}
}
size_t
mrb_gc_mark_iv(mrb_state *mrb, struct RObject *obj)
{
mark_tbl(mrb, obj->iv);
return iv_size(mrb, obj->iv);
}
void
mrb_gc_free_iv(mrb_state *mrb, struct RObject *obj)
{
if (obj->iv) {
iv_free(mrb, obj->iv);
}
}
mrb_value
mrb_vm_special_get(mrb_state *mrb, mrb_sym i)
{
return mrb_fixnum_value(0);
}
void
mrb_vm_special_set(mrb_state *mrb, mrb_sym i, mrb_value v)
{
}
static mrb_bool
obj_iv_p(mrb_value obj)
{
switch (mrb_unboxed_type(obj)) {
case MRB_TT_OBJECT:
case MRB_TT_CLASS:
case MRB_TT_MODULE:
case MRB_TT_SCLASS:
case MRB_TT_HASH:
case MRB_TT_CDATA:
case MRB_TT_EXCEPTION:
return TRUE;
default:
return FALSE;
}
}
static iv_tbl*
class_iv_ptr(struct RClass *c)
{
return c->tt == MRB_TT_ICLASS ? c->c->iv : c->iv;
}
/*
* Retrieves an instance variable from an object.
*
* Args:
* mrb: The mruby state.
* obj: The object from which to retrieve the instance variable.
* sym: The symbol representing the name of the instance variable.
*
* Returns:
* The value of the instance variable, or mrb_nil_value() if the
* instance variable is not defined.
*/
MRB_API mrb_value
mrb_obj_iv_get(mrb_state *mrb, struct RObject *obj, mrb_sym sym)
{
mrb_value v;
if (obj->iv && iv_get(mrb, obj->iv, sym, &v))
return v;
return mrb_nil_value();
}
/*
* Retrieves an instance variable from an mrb_value.
*
* This function is a wrapper around mrb_obj_iv_get. It checks if the
* given mrb_value is an object that can have instance variables before
* attempting to retrieve the variable.
*
* Args:
* mrb: The mruby state.
* obj: The mrb_value from which to retrieve the instance variable.
* sym: The symbol representing the name of the instance variable.
*
* Returns:
* The value of the instance variable, or mrb_nil_value() if the
* instance variable is not defined or if the object cannot have
* instance variables.
*/
MRB_API mrb_value
mrb_iv_get(mrb_state *mrb, mrb_value obj, mrb_sym sym)
{
if (obj_iv_p(obj)) {
return mrb_obj_iv_get(mrb, mrb_obj_ptr(obj), sym);
}
return mrb_nil_value();
}
static inline mrb_bool
namespace_p(enum mrb_vtype tt)
{
return tt == MRB_TT_CLASS || tt == MRB_TT_MODULE ? TRUE : FALSE;
}
static inline void
assign_class_name(mrb_state *mrb, struct RObject *obj, mrb_sym sym, mrb_value v)
{
if (namespace_p(mrb_type(v))) {
struct RObject *c = mrb_obj_ptr(v);
if (obj != c && ISUPPER(mrb_sym_name_len(mrb, sym, NULL)[0])) {
mrb_sym id_classname = MRB_SYM(__classname__);
mrb_value o = mrb_obj_iv_get(mrb, c, id_classname);
if (mrb_nil_p(o)) {
mrb_sym id_outer = MRB_SYM(__outer__);
o = mrb_obj_iv_get(mrb, c, id_outer);
if (mrb_nil_p(o)) {
if ((struct RClass*)obj == mrb->object_class) {
mrb_obj_iv_set_force(mrb, c, id_classname, mrb_symbol_value(sym));
}
else {
mrb_obj_iv_set_force(mrb, c, id_outer, mrb_obj_value(obj));
}
}
}
}
}
}
void
mrb_obj_iv_set_force(mrb_state *mrb, struct RObject *obj, mrb_sym sym, mrb_value v)
{
if (namespace_p(obj->tt)) {
assign_class_name(mrb, obj, sym, v);
}
if (!obj->iv) {
obj->iv = iv_new(mrb);
}
iv_put(mrb, obj->iv, sym, v);
mrb_field_write_barrier_value(mrb, (struct RBasic*)obj, v);
}
/*
* Sets an instance variable on an object.
*
* This function checks if the object is frozen before setting the variable.
* It then calls mrb_obj_iv_set_force to actually set the variable.
*
* Args:
* mrb: The mruby state.
* obj: The object on which to set the instance variable.
* sym: The symbol representing the name of the instance variable.
* v: The value to set for the instance variable.
*/
MRB_API void
mrb_obj_iv_set(mrb_state *mrb, struct RObject *obj, mrb_sym sym, mrb_value v)
{
mrb_check_frozen(mrb, obj);
mrb_obj_iv_set_force(mrb, obj, sym, v);
}
/*
* Iterates over the instance variables of an object.
*
* This function calls the provided callback function for each instance
* variable in the object.
*
* Args:
* mrb: The mruby state.
* obj: The mrb_value whose instance variables to iterate over.
* func: The callback function to call for each instance variable.
* The function should take mrb_state*, mrb_sym, mrb_value, and void*
* as arguments and return an int. If the callback returns a non-zero
* value, iteration stops.
* p: A pointer to user data that will be passed to the callback function.
*/
MRB_API void
mrb_iv_foreach(mrb_state *mrb, mrb_value obj, mrb_iv_foreach_func *func, void *p)
{
if (!obj_iv_p(obj)) return;
iv_foreach(mrb, mrb_obj_ptr(obj)->iv, func, p);
}
/*
* Sets an instance variable on an mrb_value.
*
* This function is a wrapper around mrb_obj_iv_set. It checks if the
* given mrb_value is an object that can have instance variables before
* attempting to set the variable. If the object cannot have instance
* variables, it raises an E_ARGUMENT_ERROR.
*
* Args:
* mrb: The mruby state.
* obj: The mrb_value on which to set the instance variable.
* sym: The symbol representing the name of the instance variable.
* v: The value to set for the instance variable.
*
* Raises:
* E_ARGUMENT_ERROR: If the object cannot have instance variables.
*/
MRB_API void
mrb_iv_set(mrb_state *mrb, mrb_value obj, mrb_sym sym, mrb_value v)
{
if (obj_iv_p(obj)) {
mrb_obj_iv_set(mrb, mrb_obj_ptr(obj), sym, v);
}
else {
mrb_raise(mrb, E_ARGUMENT_ERROR, "cannot set instance variable");
}
}
/*
* Checks if an instance variable is defined on an object.
*
* Args:
* mrb: The mruby state.
* obj: The object to check.
* sym: The symbol representing the name of the instance variable.
*
* Returns:
* TRUE if the instance variable is defined, FALSE otherwise.
*/
MRB_API mrb_bool
mrb_obj_iv_defined(mrb_state *mrb, struct RObject *obj, mrb_sym sym)
{
iv_tbl *t;
t = obj->iv;
if (t && iv_get(mrb, t, sym, NULL)) return TRUE;
return FALSE;
}
/*
* Checks if an instance variable is defined on an mrb_value.
*
* This function is a wrapper around mrb_obj_iv_defined. It checks if the
* given mrb_value is an object that can have instance variables before
* attempting to check for the variable.
*
* Args:
* mrb: The mruby state.
* obj: The mrb_value to check.
* sym: The symbol representing the name of the instance variable.
*
* Returns:
* TRUE if the instance variable is defined and the object can have
* instance variables, FALSE otherwise.
*/
MRB_API mrb_bool
mrb_iv_defined(mrb_state *mrb, mrb_value obj, mrb_sym sym)
{
if (!obj_iv_p(obj)) return FALSE;
return mrb_obj_iv_defined(mrb, mrb_obj_ptr(obj), sym);
}
/*
* Checks if a symbol is a valid instance variable name.
*
* A valid instance variable name must:
* - Be at least 2 characters long.
* - Start with '@'.
* - Not have a digit as the second character.
* - The rest of the name must be a valid identifier.
*
* Args:
* mrb: The mruby state.
* iv_name: The symbol to check.
*
* Returns:
* TRUE if the symbol is a valid instance variable name, FALSE otherwise.
*/
MRB_API mrb_bool
mrb_iv_name_sym_p(mrb_state *mrb, mrb_sym iv_name)
{
mrb_int len;
const char *s = mrb_sym_name_len(mrb, iv_name, &len);
if (len < 2) return FALSE;
if (s[0] != '@') return FALSE;
if (ISDIGIT(s[1])) return FALSE;
return mrb_ident_p(s+1, len-1);
}
/*
* Checks if a symbol is a valid instance variable name and raises a
* name error if it's not.
*
* Args:
* mrb: The mruby state.
* iv_name: The symbol to check.
*
* Raises:
* E_NAME_ERROR: If the symbol is not a valid instance variable name.
*/
MRB_API void
mrb_iv_name_sym_check(mrb_state *mrb, mrb_sym iv_name)
{
if (!mrb_iv_name_sym_p(mrb, iv_name)) {
mrb_name_error(mrb, iv_name, "'%n' is not allowed as an instance variable name", iv_name);
}
}
/*
* Copies instance variables from one object to another.
*
* If the destination object already has instance variables, they are freed
* before copying.
*
* Args:
* mrb: The mruby state.
* dest: The destination object (mrb_value).
* src: The source object (mrb_value).
*/
MRB_API void
mrb_iv_copy(mrb_state *mrb, mrb_value dest, mrb_value src)
{
struct RObject *d = mrb_obj_ptr(dest);
struct RObject *s = mrb_obj_ptr(src);
if (d->iv) {
iv_free(mrb, d->iv);
d->iv = 0;
}
if (s->iv) {
mrb_write_barrier(mrb, (struct RBasic*)d);
d->iv = iv_copy(mrb, s->iv);
}
}
/*
* Removes an instance variable from an object.
*
* Args:
* mrb: The mruby state.
* obj: The object (mrb_value) from which to remove the instance variable.
* sym: The symbol representing the name of the instance variable.
*
* Returns:
* The value of the removed instance variable, or mrb_undef_value() if
* the instance variable was not defined or if the object cannot have
* instance variables.
*/
MRB_API mrb_value
mrb_iv_remove(mrb_state *mrb, mrb_value obj, mrb_sym sym)
{
if (obj_iv_p(obj)) {
struct RObject *o = mrb_obj_ptr(obj);
iv_tbl *t = o->iv;
mrb_value val;
mrb_check_frozen(mrb, o);
if (iv_del(mrb, t, sym, &val)) {
return val;
}
}
return mrb_undef_value();
}
static int
iv_i(mrb_state *mrb, mrb_sym sym, mrb_value v, void *p)
{
mrb_value ary = *(mrb_value*)p;
mrb_int len;
const char* s = mrb_sym_name_len(mrb, sym, &len);
if (len > 1 && s[0] == '@' && s[1] != '@') {
mrb_ary_push(mrb, ary, mrb_symbol_value(sym));
}
return 0;
}
/* 15.3.1.3.23 */
/*
* call-seq:
* obj.instance_variables -> array
*
* Returns an array of instance variable names for the receiver. Note
* that simply defining an accessor does not create the corresponding
* instance variable.
*
* class Fred
* attr_accessor :a1
* def initialize
* @iv = 3
* end
* end
* Fred.new.instance_variables #=> [:@iv]
*/
mrb_value
mrb_obj_instance_variables(mrb_state *mrb, mrb_value self)
{
mrb_value ary = mrb_ary_new(mrb);
if (obj_iv_p(self)) {
iv_foreach(mrb, mrb_obj_ptr(self)->iv, iv_i, &ary);
}
return ary;
}
static int
cv_i(mrb_state *mrb, mrb_sym sym, mrb_value v, void *p)
{
mrb_value ary = *(mrb_value*)p;
mrb_int len;
const char* s = mrb_sym_name_len(mrb, sym, &len);
if (len > 2 && s[0] == '@' && s[1] == '@') {
mrb_ary_push(mrb, ary, mrb_symbol_value(sym));
}
return 0;
}
/* 15.2.2.4.19 */
/*
* call-seq:
* mod.class_variables(inherit=true) -> array
*
* Returns an array of the names of class variables in *mod*.
*
* class One
* @@var1 = 1
* end
* class Two < One
* @@var2 = 2
* end
* One.class_variables #=> [:@@var1]
* Two.class_variables #=> [:@@var2]
*/
mrb_value
mrb_mod_class_variables(mrb_state *mrb, mrb_value mod)
{
mrb_bool inherit = TRUE;
mrb_get_args(mrb, "|b", &inherit);
mrb_value ary = mrb_ary_new(mrb);
struct RClass *c = mrb_class_ptr(mod);
while (c) {
iv_foreach(mrb, class_iv_ptr(c), cv_i, &ary);
if (!inherit) break;
c = c->super;
}
return ary;
}
mrb_value
mrb_mod_cv_get(mrb_state *mrb, struct RClass *c, mrb_sym sym)
{
struct RClass * cls = c;
mrb_value v = mrb_nil_value();
mrb_bool given = FALSE;
while (c) {
if (iv_get(mrb, class_iv_ptr(c), sym, &v)) {
given = TRUE;
}
c = c->super;
}
if (given) return v;
if (cls->tt == MRB_TT_SCLASS) {
mrb_value klass = mrb_obj_iv_get(mrb, (struct RObject*)cls, MRB_SYM(__attached__));
c = mrb_class_ptr(klass);
if (c->tt == MRB_TT_CLASS || c->tt == MRB_TT_MODULE) {
given = FALSE;
while (c) {
if (iv_get(mrb, class_iv_ptr(c), sym, &v)) {
given = TRUE;
}
c = c->super;
}
if (given) return v;
}
}
mrb_name_error(mrb, sym, "uninitialized class variable %n in %C", sym, cls);
/* not reached */
return mrb_nil_value();
}
/*
* Retrieves a class variable from a module or class.
*
* This function is a wrapper around mrb_mod_cv_get.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (mrb_value) from which to retrieve the class variable.
* sym: The symbol representing the name of the class variable.
*
* Returns:
* The value of the class variable.
*
* Raises:
* E_NAME_ERROR: If the class variable is not defined.
*/
MRB_API mrb_value
mrb_cv_get(mrb_state *mrb, mrb_value mod, mrb_sym sym)
{
return mrb_mod_cv_get(mrb, mrb_class_ptr(mod), sym);
}
/*
* Sets a class variable in a module or class.
*
* This function searches for the class variable in the superclass chain.
* If found, it updates the value in the class where it's defined.
* Otherwise, it sets the variable in the given class `c`.
*
* Args:
* mrb: The mruby state.
* c: The class or module (struct RClass*) in which to set the class variable.
* sym: The symbol representing the name of the class variable.
* v: The value to set for the class variable.
*/
MRB_API void
mrb_mod_cv_set(mrb_state *mrb, struct RClass *c, mrb_sym sym, mrb_value v)
{
struct RClass * cls = c;
while (c) {
iv_tbl *t = class_iv_ptr(c);
int pos = iv_get(mrb, t, sym, NULL);
if (pos) {
mrb_check_frozen(mrb, c);
t->ptr[pos-1] = v; /* iv_get returns pos+1 to put */
mrb_field_write_barrier_value(mrb, (struct RBasic*)c, v);
return;
}
c = c->super;
}
if (cls->tt == MRB_TT_SCLASS) {
mrb_value klass = mrb_obj_iv_get(mrb, (struct RObject*)cls, MRB_SYM(__attached__));
switch (mrb_type(klass)) {
case MRB_TT_CLASS:
case MRB_TT_MODULE:
case MRB_TT_SCLASS:
c = mrb_class_ptr(klass);
break;
default:
c = cls;
break;
}
}
else if (cls->tt == MRB_TT_ICLASS) {
c = cls->c;
}
else {
c = cls;
}
mrb_check_frozen(mrb, c);
if (!c->iv) {
c->iv = iv_new(mrb);
}
iv_put(mrb, c->iv, sym, v);
mrb_field_write_barrier_value(mrb, (struct RBasic*)c, v);
}
/*
* Sets a class variable in a module or class.
*
* This function is a wrapper around mrb_mod_cv_set.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (mrb_value) in which to set the class variable.
* sym: The symbol representing the name of the class variable.
* v: The value to set for the class variable.
*/
MRB_API void
mrb_cv_set(mrb_state *mrb, mrb_value mod, mrb_sym sym, mrb_value v)
{
mrb_mod_cv_set(mrb, mrb_class_ptr(mod), sym, v);
}
/*
* Checks if a class variable is defined in a module or class or its ancestors.
*
* Args:
* mrb: The mruby state.
* c: The class or module (struct RClass*) to check.
* sym: The symbol representing the name of the class variable.
*
* Returns:
* TRUE if the class variable is defined, FALSE otherwise.
*/
mrb_bool
mrb_mod_cv_defined(mrb_state *mrb, struct RClass * c, mrb_sym sym)
{
while (c) {
iv_tbl *t = class_iv_ptr(c);
if (iv_get(mrb, t, sym, NULL)) return TRUE;
c = c->super;
}
return FALSE;
}
/*
* Checks if a class variable is defined in a module or class or its ancestors.
*
* This function is a wrapper around mrb_mod_cv_defined.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (mrb_value) to check.
* sym: The symbol representing the name of the class variable.
*
* Returns:
* TRUE if the class variable is defined, FALSE otherwise.
*/
MRB_API mrb_bool
mrb_cv_defined(mrb_state *mrb, mrb_value mod, mrb_sym sym)
{
return mrb_mod_cv_defined(mrb, mrb_class_ptr(mod), sym);
}
mrb_value
mrb_vm_cv_get(mrb_state *mrb, mrb_sym sym)
{
struct RClass *c;
const struct RProc *p = mrb->c->ci->proc;
for (;;) {
c = MRB_PROC_TARGET_CLASS(p);
if (c && c->tt != MRB_TT_SCLASS) break;
p = p->upper;
}
return mrb_mod_cv_get(mrb, c, sym);
}
void
mrb_vm_cv_set(mrb_state *mrb, mrb_sym sym, mrb_value v)
{
struct RClass *c;
const struct RProc *p = mrb->c->ci->proc;
for (;;) {
c = MRB_PROC_TARGET_CLASS(p);
if (c && c->tt != MRB_TT_SCLASS) break;
p = p->upper;
}
mrb_mod_cv_set(mrb, c, sym, v);
}
static void
mod_const_check(mrb_state *mrb, mrb_value mod)
{
switch (mrb_type(mod)) {
case MRB_TT_CLASS:
case MRB_TT_MODULE:
case MRB_TT_SCLASS:
break;
default:
mrb_raise(mrb, E_TYPE_ERROR, "constant look-up for non class/module");
break;
}
}
static mrb_value
const_get_nohook(mrb_state *mrb, struct RClass *base, mrb_sym sym, mrb_bool skip)
{
struct RClass *c = base;
mrb_value v;
mrb_bool retry = FALSE;
/* if skip then skip the current class (already searched) */
if (skip) c = c->super;
L_RETRY:
while (c) {
if (!MRB_FLAG_TEST(c, MRB_FL_CLASS_IS_PREPENDED) && iv_get(mrb, class_iv_ptr(c), sym, &v)) {
return v;
}
c = c->super;
if (!skip && c == mrb->object_class) break;
}
if (!retry && base->tt == MRB_TT_MODULE && skip) {
c = mrb->object_class;
retry = TRUE;
goto L_RETRY;
}
return mrb_undef_value();
}
static mrb_value
const_get(mrb_state *mrb, struct RClass *base, mrb_sym sym, mrb_bool skip)
{
mrb_value v = const_get_nohook(mrb, base, sym, skip);
/* call const_missing hook */
if (mrb_undef_p(v)) {
mrb_value mod = mrb_obj_value(base);
if (mrb_func_basic_p(mrb, mod, MRB_SYM(const_missing), mrb_mod_const_missing)) {
return mrb_const_missing(mrb, mod, sym);
}
mrb_value name = mrb_symbol_value(sym);
return mrb_funcall_argv(mrb, mod, MRB_SYM(const_missing), 1, &name);
}
return v;
}
mrb_value
mrb_exc_const_get(mrb_state *mrb, mrb_sym sym)
{
return const_get_nohook(mrb, mrb->object_class, sym, FALSE);
}
/*
* Retrieves a constant from a module or class.
*
* It first checks if `mod` is a class or module, then calls the
* internal `const_get` function to retrieve the constant.
* This function will also call the `const_missing` hook if the
* constant is not found.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (mrb_value) from which to retrieve the constant.
* sym: The symbol representing the name of the constant.
*
* Returns:
* The value of the constant.
*
* Raises:
* E_TYPE_ERROR: If `mod` is not a class or module.
* E_NAME_ERROR: If the constant is not defined and `const_missing` is not defined or also raises an error.
*/
MRB_API mrb_value
mrb_const_get(mrb_state *mrb, mrb_value mod, mrb_sym sym)
{
mod_const_check(mrb, mod);
return const_get(mrb, mrb_class_ptr(mod), sym, FALSE);
}
mrb_value
mrb_vm_const_get(mrb_state *mrb, mrb_sym sym)
{
const struct RProc *proc = mrb->c->ci->proc;
struct RClass *c = MRB_PROC_TARGET_CLASS(proc), *c2;
mrb_value v;
if (!c) c = mrb->object_class;
if (iv_get(mrb, class_iv_ptr(c), sym, &v)) {
return v;
}
for (proc = proc->upper; proc; proc = proc->upper) {
c2 = MRB_PROC_TARGET_CLASS(proc);
if (!c2) c2 = mrb->object_class;
if (iv_get(mrb, class_iv_ptr(c2), sym, &v)) {
return v;
}
}
if (c->tt == MRB_TT_SCLASS) {
v = const_get_nohook(mrb, c, sym, TRUE);
if (!mrb_undef_p(v)) {
return v;
}
mrb_value klass;
for (c2 = c; c2 && c2->tt == MRB_TT_SCLASS; c2 = mrb_class_ptr(klass)) {
if (!iv_get(mrb, class_iv_ptr(c2), MRB_SYM(__attached__), &klass)) {
c2 = NULL;
break;
}
}
if (c2 && (c2->tt == MRB_TT_CLASS || c2->tt == MRB_TT_MODULE)) c = c2;
}
return const_get(mrb, c, sym, TRUE);
}
/*
* Sets a constant in a module or class.
*
* It first checks if `mod` is a class or module.
* If the value `v` being set is a class or module, it calls
* `mrb_class_name_class` to set up the class/module name.
* Then, it sets the constant using `mrb_obj_iv_set` and calls
* the `const_added` hook.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (mrb_value) in which to set the constant.
* sym: The symbol representing the name of the constant.
* v: The value to set for the constant.
*
* Raises:
* E_TYPE_ERROR: If `mod` is not a class or module.
*/
MRB_API void
mrb_const_set(mrb_state *mrb, mrb_value mod, mrb_sym sym, mrb_value v)
{
mod_const_check(mrb, mod);
if (mrb_type(v) == MRB_TT_CLASS || mrb_type(v) == MRB_TT_MODULE) {
mrb_class_name_class(mrb, mrb_class_ptr(mod), mrb_class_ptr(v), sym);
}
mrb_obj_iv_set(mrb, mrb_obj_ptr(mod), sym, v);
if (!mrb->bootstrapping) {
mrb_value name = mrb_symbol_value(sym);
mrb_funcall_argv(mrb, mod, MRB_SYM(const_added), 1, &name);
}
}
/*
* Removes a constant from a module or class.
*
* It first checks if `mod` is a class or module, then removes the
* constant using `mrb_iv_remove`.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (mrb_value) from which to remove the constant.
* sym: The symbol representing the name of the constant.
*
* Raises:
* E_TYPE_ERROR: If `mod` is not a class or module.
*/
MRB_API void
mrb_const_remove(mrb_state *mrb, mrb_value mod, mrb_sym sym)
{
mod_const_check(mrb, mod);
mrb_iv_remove(mrb, mod, sym);
}
/*
* Defines a constant in a module or class using a symbol for the name.
*
* This is a direct way to set a constant without triggering `const_added` hook.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (struct RClass*) in which to define the constant.
* name: The symbol representing the name of the constant.
* v: The value to set for the constant.
*/
MRB_API void
mrb_define_const_id(mrb_state *mrb, struct RClass *mod, mrb_sym name, mrb_value v)
{
mrb_obj_iv_set(mrb, (struct RObject*)mod, name, v);
}
/*
* Defines a constant in a module or class using a C string for the name.
*
* This is a direct way to set a constant without triggering `const_added` hook.
* The C string name is interned into a symbol.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (struct RClass*) in which to define the constant.
* name: The C string representing the name of the constant.
* v: The value to set for the constant.
*/
MRB_API void
mrb_define_const(mrb_state *mrb, struct RClass *mod, const char *name, mrb_value v)
{
mrb_obj_iv_set(mrb, (struct RObject*)mod, mrb_intern_cstr(mrb, name), v);
}
/*
* Defines a global constant.
*
* Global constants are defined in the `Object` class.
* This function is a convenience wrapper around `mrb_define_const`.
*
* Args:
* mrb: The mruby state.
* name: The C string representing the name of the global constant.
* val: The value to set for the global constant.
*/
MRB_API void
mrb_define_global_const(mrb_state *mrb, const char *name, mrb_value val)
{
mrb_define_const(mrb, mrb->object_class, name, val);
}
static int
const_i(mrb_state *mrb, mrb_sym sym, mrb_value v, void *p)
{
mrb_value ary = *(mrb_value*)p;
mrb_int len;
const char* s = mrb_sym_name_len(mrb, sym, &len);
if (len >= 1 && ISUPPER(s[0])) {
mrb_int i, alen = RARRAY_LEN(ary);
for (i=0; i<alen; i++) {
if (mrb_symbol(RARRAY_PTR(ary)[i]) == sym)
break;
}
if (i==alen) {
mrb_ary_push(mrb, ary, mrb_symbol_value(sym));
}
}
return 0;
}
mrb_value
mrb_mod_const_at(mrb_state *mrb, struct RClass *c, mrb_value ary)
{
iv_foreach(mrb, class_iv_ptr(c), const_i, &ary);
return ary;
}
/* 15.2.2.4.24 */
/*
* call-seq:
* mod.constants -> array
*
* Returns an array of all names of constants defined in the receiver.
*/
mrb_value
mrb_mod_constants(mrb_state *mrb, mrb_value mod)
{
mrb_bool inherit = TRUE;
struct RClass *c = mrb_class_ptr(mod);
mrb_get_args(mrb, "|b", &inherit);
mrb_value ary = mrb_ary_new(mrb);
while (c) {
mrb_mod_const_at(mrb, c, ary);
if (!inherit) break;
c = c->super;
if (c == mrb->object_class) break;
}
return ary;
}
/*
* Retrieves a global variable.
*
* Args:
* mrb: The mruby state.
* sym: The symbol representing the name of the global variable.
*
* Returns:
* The value of the global variable, or mrb_nil_value() if the
* global variable is not defined.
*/
MRB_API mrb_value
mrb_gv_get(mrb_state *mrb, mrb_sym sym)
{
mrb_value v;
if (iv_get(mrb, mrb->globals, sym, &v))
return v;
return mrb_nil_value();
}
/*
* Sets a global variable.
*
* If the global variable table (`mrb->globals`) does not exist, it is created.
*
* Args:
* mrb: The mruby state.
* sym: The symbol representing the name of the global variable.
* v: The value to set for the global variable.
*/
MRB_API void
mrb_gv_set(mrb_state *mrb, mrb_sym sym, mrb_value v)
{
iv_tbl *t;
if (!mrb->globals) {
mrb->globals = iv_new(mrb);
}
t = mrb->globals;
iv_put(mrb, t, sym, v);
}
/*
* Removes a global variable.
*
* Args:
* mrb: The mruby state.
* sym: The symbol representing the name of the global variable to remove.
*/
MRB_API void
mrb_gv_remove(mrb_state *mrb, mrb_sym sym)
{
iv_del(mrb, mrb->globals, sym, NULL);
}
static int
gv_i(mrb_state *mrb, mrb_sym sym, mrb_value v, void *p)
{
mrb_value ary = *(mrb_value*)p;
mrb_ary_push(mrb, ary, mrb_symbol_value(sym));
return 0;
}
/* 15.3.1.2.4 */
/* 15.3.1.3.14 */
/*
* call-seq:
* global_variables -> array
*
* Returns an array of the names of global variables.
*
* global_variables.grep /std/ #=> [:$stdin, :$stdout, :$stderr]
*/
mrb_value
mrb_f_global_variables(mrb_state *mrb, mrb_value self)
{
iv_tbl *t = mrb->globals;
mrb_value ary = mrb_ary_new(mrb);
iv_foreach(mrb, t, gv_i, &ary);
return ary;
}
static mrb_bool
const_defined_0(mrb_state *mrb, mrb_value mod, mrb_sym id, mrb_bool exclude, mrb_bool recurse)
{
struct RClass *klass = mrb_class_ptr(mod);
struct RClass *tmp;
mrb_bool mod_retry = FALSE;
tmp = klass;
retry:
while (tmp) {
if (iv_get(mrb, class_iv_ptr(tmp), id, NULL)) {
return TRUE;
}
if (!recurse && (klass != mrb->object_class)) break;
tmp = tmp->super;
}
if (!exclude && !mod_retry && (klass->tt == MRB_TT_MODULE)) {
mod_retry = TRUE;
tmp = mrb->object_class;
goto retry;
}
return FALSE;
}
/*
* Checks if a constant is defined in a module or class or its ancestors.
*
* This function calls `const_defined_0` with `recurse = TRUE`, meaning
* it will search the superclass chain.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (mrb_value) to check.
* id: The symbol representing the name of the constant.
*
* Returns:
* TRUE if the constant is defined, FALSE otherwise.
*/
MRB_API mrb_bool
mrb_const_defined(mrb_state *mrb, mrb_value mod, mrb_sym id)
{
return const_defined_0(mrb, mod, id, TRUE, TRUE);
}
/*
* Checks if a constant is defined directly in a module or class.
*
* This function calls `const_defined_0` with `recurse = FALSE`, meaning
* it will only search the given module/class, not its ancestors.
*
* Args:
* mrb: The mruby state.
* mod: The module or class (mrb_value) to check.
* id: The symbol representing the name of the constant.
*
* Returns:
* TRUE if the constant is defined directly in the module/class, FALSE otherwise.
*/
MRB_API mrb_bool
mrb_const_defined_at(mrb_state *mrb, mrb_value mod, mrb_sym id)
{
return const_defined_0(mrb, mod, id, TRUE, FALSE);
}
/*
* Retrieves an attribute (instance variable) from an object.
*
* This function is a simple wrapper around `mrb_iv_get`.
*
* Args:
* mrb: The mruby state.
* obj: The object (mrb_value) from which to retrieve the attribute.
* id: The symbol representing the name of the attribute (instance variable).
*
* Returns:
* The value of the attribute, or mrb_nil_value() if not defined.
*/
MRB_API mrb_value
mrb_attr_get(mrb_state *mrb, mrb_value obj, mrb_sym id)
{
return mrb_iv_get(mrb, obj, id);
}
struct csym_arg {
struct RClass *c;
mrb_sym sym;
};
static int
csym_i(mrb_state *mrb, mrb_sym sym, mrb_value v, void *p)
{
struct csym_arg *a = (struct csym_arg*)p;
struct RClass *c = a->c;
if (mrb_type(v) == c->tt && mrb_class_ptr(v) == c) {
a->sym = sym;
return 1; /* stop iteration */
}
return 0;
}
static mrb_sym
find_class_sym(mrb_state *mrb, struct RClass *outer, struct RClass *c)
{
struct csym_arg arg;
if (!outer) return 0;
if (outer == c) return 0;
arg.c = c;
arg.sym = 0;
iv_foreach(mrb, class_iv_ptr(outer), csym_i, &arg);
return arg.sym;
}
static struct RClass*
outer_class(mrb_state *mrb, struct RClass *c)
{
mrb_value ov = mrb_obj_iv_get(mrb, (struct RObject*)c, MRB_SYM(__outer__));
if (mrb_nil_p(ov)) return NULL;
switch (mrb_type(ov)) {
case MRB_TT_CLASS:
case MRB_TT_MODULE:
return mrb_class_ptr(ov);
default:
break;
}
return NULL;
}
static mrb_bool
detect_outer_loop(mrb_state *mrb, struct RClass *c)
{
struct RClass *t = c; /* tortoise */
struct RClass *h = c; /* hare */
for (;;) {
if (h == NULL) return FALSE;
h = outer_class(mrb, h);
if (h == NULL) return FALSE;
h = outer_class(mrb, h);
t = outer_class(mrb, t);
if (t == h) return TRUE;
}
}
mrb_value
mrb_class_find_path(mrb_state *mrb, struct RClass *c)
{
if (detect_outer_loop(mrb, c)) return mrb_nil_value();
struct RClass *outer = outer_class(mrb, c);
if (outer == NULL) return mrb_nil_value();
mrb_sym name = find_class_sym(mrb, outer, c);
if (name == 0) return mrb_nil_value();
mrb_value path = mrb_str_new_capa(mrb, 40);
const char *cname = mrb_class_name(mrb, outer);
mrb_str_cat_cstr(mrb, path, cname);
mrb_str_cat_cstr(mrb, path, "::");
mrb_int len;
const char *str = mrb_sym_name_len(mrb, name, &len);
mrb_str_cat(mrb, path, str, len);
if (RSTRING_PTR(path)[0] != '#') {
iv_del(mrb, c->iv, MRB_SYM(__outer__), NULL);
iv_put(mrb, c->iv, MRB_SYM(__classname__), path);
mrb_field_write_barrier_value(mrb, (struct RBasic*)c, path);
path = mrb_str_dup(mrb, path);
}
return path;
}
size_t
mrb_obj_iv_tbl_memsize(mrb_value obj)
{
iv_tbl *t = mrb_obj_ptr(obj)->iv;
if (t == NULL) return 0;
return sizeof(iv_tbl) + t->alloc*(sizeof(mrb_value)+sizeof(mrb_sym));
}
#define identchar(c) (ISALNUM(c) || (c) == '_' || !ISASCII(c))
mrb_bool
mrb_ident_p(const char *s, mrb_int len)
{
for (mrb_int i = 0; i < len; i++) {
if (!identchar(s[i])) return FALSE;
}
return TRUE;
}