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This behave almost exactly as a T_OBJECT, the layout is entirely compatible. This aims to solve two problems. First, it solves the problem of namspaced classes having a single `shape_id`. Now each namespaced classext has an object that can hold the namespace specific shape. Second, it open the door to later make class instance variable writes atomics, hence be able to read class variables without locking the VM. In the future, in multi-ractor mode, we can do the write on a copy of the `fields_obj` and then atomically swap it. Considerations: - Right now the `RClass` shape_id is always synchronized, but with namespace we should likely mark classes that have multiple namespace with a specific shape flag.
339 lines
9.8 KiB
C
339 lines
9.8 KiB
C
#ifndef RUBY_SHAPE_H
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#define RUBY_SHAPE_H
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#include "internal/gc.h"
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typedef uint16_t attr_index_t;
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typedef uint32_t shape_id_t;
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#define SHAPE_ID_NUM_BITS 32
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#define SHAPE_ID_OFFSET_NUM_BITS 19
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STATIC_ASSERT(shape_id_num_bits, SHAPE_ID_NUM_BITS == sizeof(shape_id_t) * CHAR_BIT);
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#define SHAPE_BUFFER_SIZE (1 << SHAPE_ID_OFFSET_NUM_BITS)
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#define SHAPE_ID_OFFSET_MASK (SHAPE_BUFFER_SIZE - 1)
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#define SHAPE_ID_FLAGS_MASK (shape_id_t)(((1 << (SHAPE_ID_NUM_BITS - SHAPE_ID_OFFSET_NUM_BITS)) - 1) << SHAPE_ID_OFFSET_NUM_BITS)
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#define SHAPE_ID_FL_FROZEN (SHAPE_FL_FROZEN << SHAPE_ID_OFFSET_NUM_BITS)
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#define SHAPE_ID_FL_HAS_OBJECT_ID (SHAPE_FL_HAS_OBJECT_ID << SHAPE_ID_OFFSET_NUM_BITS)
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#define SHAPE_ID_FL_TOO_COMPLEX (SHAPE_FL_TOO_COMPLEX << SHAPE_ID_OFFSET_NUM_BITS)
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#define SHAPE_ID_FL_NON_CANONICAL_MASK (SHAPE_FL_NON_CANONICAL_MASK << SHAPE_ID_OFFSET_NUM_BITS)
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#define SHAPE_ID_HEAP_INDEX_BITS 3
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#define SHAPE_ID_HEAP_INDEX_OFFSET (SHAPE_ID_NUM_BITS - SHAPE_ID_HEAP_INDEX_BITS)
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#define SHAPE_ID_HEAP_INDEX_MAX ((1 << SHAPE_ID_HEAP_INDEX_BITS) - 1)
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#define SHAPE_ID_HEAP_INDEX_MASK (SHAPE_ID_HEAP_INDEX_MAX << SHAPE_ID_HEAP_INDEX_OFFSET)
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// The interpreter doesn't care about frozen status or slot size when reading ivars.
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// So we normalize shape_id by clearing these bits to improve cache hits.
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// JITs however might care about it.
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#define SHAPE_ID_READ_ONLY_MASK (~(SHAPE_ID_FL_FROZEN | SHAPE_ID_HEAP_INDEX_MASK))
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typedef uint32_t redblack_id_t;
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#define SHAPE_MAX_FIELDS (attr_index_t)(-1)
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#define SHAPE_FLAG_SHIFT ((SIZEOF_VALUE * CHAR_BIT) - SHAPE_ID_NUM_BITS)
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#define SHAPE_FLAG_MASK (((VALUE)-1) >> SHAPE_ID_NUM_BITS)
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#define SHAPE_MAX_VARIATIONS 8
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#define INVALID_SHAPE_ID ((shape_id_t)-1)
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#define ATTR_INDEX_NOT_SET ((attr_index_t)-1)
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#define ROOT_SHAPE_ID 0x0
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#define ROOT_SHAPE_WITH_OBJ_ID 0x1
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#define ROOT_TOO_COMPLEX_SHAPE_ID (ROOT_SHAPE_ID | SHAPE_ID_FL_TOO_COMPLEX)
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#define ROOT_TOO_COMPLEX_WITH_OBJ_ID (ROOT_SHAPE_WITH_OBJ_ID | SHAPE_ID_FL_TOO_COMPLEX | SHAPE_ID_FL_HAS_OBJECT_ID)
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#define SPECIAL_CONST_SHAPE_ID (ROOT_SHAPE_ID | SHAPE_ID_FL_FROZEN)
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extern ID ruby_internal_object_id;
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typedef struct redblack_node redblack_node_t;
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struct rb_shape {
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VALUE edges; // id_table from ID (ivar) to next shape
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ID edge_name; // ID (ivar) for transition from parent to rb_shape
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redblack_node_t *ancestor_index;
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shape_id_t parent_id;
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attr_index_t next_field_index; // Fields are either ivars or internal properties like `object_id`
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attr_index_t capacity; // Total capacity of the object with this shape
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uint8_t type;
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};
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typedef struct rb_shape rb_shape_t;
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struct redblack_node {
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ID key;
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rb_shape_t *value;
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redblack_id_t l;
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redblack_id_t r;
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};
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enum shape_type {
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SHAPE_ROOT,
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SHAPE_IVAR,
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SHAPE_OBJ_ID,
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};
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enum shape_flags {
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SHAPE_FL_FROZEN = 1 << 0,
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SHAPE_FL_HAS_OBJECT_ID = 1 << 1,
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SHAPE_FL_TOO_COMPLEX = 1 << 2,
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SHAPE_FL_NON_CANONICAL_MASK = SHAPE_FL_FROZEN | SHAPE_FL_HAS_OBJECT_ID,
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};
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typedef struct {
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/* object shapes */
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rb_shape_t *shape_list;
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rb_shape_t *root_shape;
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const attr_index_t *capacities;
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rb_atomic_t next_shape_id;
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redblack_node_t *shape_cache;
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unsigned int cache_size;
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} rb_shape_tree_t;
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RUBY_EXTERN rb_shape_tree_t *rb_shape_tree_ptr;
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union rb_attr_index_cache {
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uint64_t pack;
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struct {
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shape_id_t shape_id;
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attr_index_t index;
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} unpack;
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};
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static inline rb_shape_tree_t *
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rb_current_shape_tree(void)
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{
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return rb_shape_tree_ptr;
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}
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#define GET_SHAPE_TREE() rb_current_shape_tree()
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static inline shape_id_t
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RBASIC_SHAPE_ID(VALUE obj)
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{
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RUBY_ASSERT(!RB_SPECIAL_CONST_P(obj));
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RUBY_ASSERT(!RB_TYPE_P(obj, T_IMEMO) || IMEMO_TYPE_P(obj, imemo_class_fields));
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#if RBASIC_SHAPE_ID_FIELD
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return (shape_id_t)((RBASIC(obj)->shape_id));
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#else
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return (shape_id_t)((RBASIC(obj)->flags) >> SHAPE_FLAG_SHIFT);
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#endif
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}
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// Same as RBASIC_SHAPE_ID but with flags that have no impact
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// on reads removed. e.g. Remove FL_FROZEN.
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static inline shape_id_t
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RBASIC_SHAPE_ID_FOR_READ(VALUE obj)
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{
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return RBASIC_SHAPE_ID(obj) & SHAPE_ID_READ_ONLY_MASK;
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}
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#if RUBY_DEBUG
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bool rb_shape_verify_consistency(VALUE obj, shape_id_t shape_id);
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#endif
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static inline void
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RBASIC_SET_SHAPE_ID(VALUE obj, shape_id_t shape_id)
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{
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RUBY_ASSERT(!RB_SPECIAL_CONST_P(obj));
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RUBY_ASSERT(!RB_TYPE_P(obj, T_IMEMO) || IMEMO_TYPE_P(obj, imemo_class_fields));
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RUBY_ASSERT(rb_shape_verify_consistency(obj, shape_id));
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#if RBASIC_SHAPE_ID_FIELD
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RBASIC(obj)->shape_id = (VALUE)shape_id;
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#else
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// Object shapes are occupying top bits
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RBASIC(obj)->flags &= SHAPE_FLAG_MASK;
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RBASIC(obj)->flags |= ((VALUE)(shape_id) << SHAPE_FLAG_SHIFT);
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#endif
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}
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#define RSHAPE rb_shape_lookup
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int32_t rb_shape_id_offset(void);
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RUBY_FUNC_EXPORTED rb_shape_t *rb_shape_lookup(shape_id_t shape_id);
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RUBY_FUNC_EXPORTED shape_id_t rb_obj_shape_id(VALUE obj);
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shape_id_t rb_shape_get_next_iv_shape(shape_id_t shape_id, ID id);
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bool rb_shape_get_iv_index(shape_id_t shape_id, ID id, attr_index_t *value);
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bool rb_shape_get_iv_index_with_hint(shape_id_t shape_id, ID id, attr_index_t *value, shape_id_t *shape_id_hint);
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typedef int rb_shape_foreach_transition_callback(shape_id_t shape_id, void *data);
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bool rb_shape_foreach_field(shape_id_t shape_id, rb_shape_foreach_transition_callback func, void *data);
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shape_id_t rb_shape_transition_frozen(VALUE obj);
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shape_id_t rb_shape_transition_complex(VALUE obj);
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shape_id_t rb_shape_transition_remove_ivar(VALUE obj, ID id, shape_id_t *removed_shape_id);
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shape_id_t rb_shape_transition_add_ivar(VALUE obj, ID id);
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shape_id_t rb_shape_transition_add_ivar_no_warnings(VALUE obj, ID id);
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shape_id_t rb_shape_transition_object_id(VALUE obj);
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shape_id_t rb_shape_transition_heap(VALUE obj, size_t heap_index);
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shape_id_t rb_shape_object_id(shape_id_t original_shape_id);
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void rb_shape_free_all(void);
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shape_id_t rb_shape_rebuild(shape_id_t initial_shape_id, shape_id_t dest_shape_id);
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void rb_shape_copy_fields(VALUE dest, VALUE *dest_buf, shape_id_t dest_shape_id, VALUE src, VALUE *src_buf, shape_id_t src_shape_id);
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void rb_shape_copy_complex_ivars(VALUE dest, VALUE obj, shape_id_t src_shape_id, st_table *fields_table);
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static inline bool
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rb_shape_too_complex_p(shape_id_t shape_id)
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{
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return shape_id & SHAPE_ID_FL_TOO_COMPLEX;
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}
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static inline bool
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rb_shape_obj_too_complex_p(VALUE obj)
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{
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return !RB_SPECIAL_CONST_P(obj) && rb_shape_too_complex_p(RBASIC_SHAPE_ID(obj));
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}
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static inline bool
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rb_shape_has_object_id(shape_id_t shape_id)
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{
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return shape_id & SHAPE_ID_FL_HAS_OBJECT_ID;
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}
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static inline bool
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rb_shape_canonical_p(shape_id_t shape_id)
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{
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return !(shape_id & SHAPE_ID_FL_NON_CANONICAL_MASK);
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}
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static inline uint8_t
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rb_shape_heap_index(shape_id_t shape_id)
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{
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return (uint8_t)((shape_id & SHAPE_ID_HEAP_INDEX_MASK) >> SHAPE_ID_HEAP_INDEX_OFFSET);
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}
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static inline shape_id_t
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rb_shape_root(size_t heap_id)
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{
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shape_id_t heap_index = (shape_id_t)heap_id;
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return ROOT_SHAPE_ID | ((heap_index + 1) << SHAPE_ID_HEAP_INDEX_OFFSET);
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}
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static inline shape_id_t
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RSHAPE_PARENT(shape_id_t shape_id)
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{
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return RSHAPE(shape_id)->parent_id;
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}
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static inline enum shape_type
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RSHAPE_TYPE(shape_id_t shape_id)
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{
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return RSHAPE(shape_id)->type;
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}
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static inline bool
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RSHAPE_TYPE_P(shape_id_t shape_id, enum shape_type type)
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{
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return RSHAPE_TYPE(shape_id) == type;
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}
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static inline attr_index_t
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RSHAPE_EMBEDDED_CAPACITY(shape_id_t shape_id)
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{
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uint8_t heap_index = rb_shape_heap_index(shape_id);
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if (heap_index) {
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return GET_SHAPE_TREE()->capacities[heap_index - 1];
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}
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return 0;
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}
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static inline attr_index_t
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RSHAPE_CAPACITY(shape_id_t shape_id)
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{
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attr_index_t embedded_capacity = RSHAPE_EMBEDDED_CAPACITY(shape_id);
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if (embedded_capacity > RSHAPE(shape_id)->capacity) {
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return embedded_capacity;
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}
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else {
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return RSHAPE(shape_id)->capacity;
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}
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}
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static inline attr_index_t
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RSHAPE_LEN(shape_id_t shape_id)
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{
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return RSHAPE(shape_id)->next_field_index;
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}
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static inline attr_index_t
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RSHAPE_INDEX(shape_id_t shape_id)
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{
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return RSHAPE_LEN(shape_id) - 1;
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}
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static inline ID
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RSHAPE_EDGE_NAME(shape_id_t shape_id)
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{
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return RSHAPE(shape_id)->edge_name;
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}
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static inline uint32_t
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ROBJECT_FIELDS_CAPACITY(VALUE obj)
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{
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RBIMPL_ASSERT_TYPE(obj, RUBY_T_OBJECT);
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// Asking for capacity doesn't make sense when the object is using
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// a hash table for storing instance variables
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RUBY_ASSERT(!rb_shape_obj_too_complex_p(obj));
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return RSHAPE_CAPACITY(RBASIC_SHAPE_ID(obj));
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}
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static inline st_table *
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ROBJECT_FIELDS_HASH(VALUE obj)
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{
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RBIMPL_ASSERT_TYPE(obj, RUBY_T_OBJECT);
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RUBY_ASSERT(rb_shape_obj_too_complex_p(obj));
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return (st_table *)ROBJECT(obj)->as.heap.fields;
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}
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static inline void
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ROBJECT_SET_FIELDS_HASH(VALUE obj, const st_table *tbl)
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{
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RBIMPL_ASSERT_TYPE(obj, RUBY_T_OBJECT);
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RUBY_ASSERT(rb_shape_obj_too_complex_p(obj));
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ROBJECT(obj)->as.heap.fields = (VALUE *)tbl;
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}
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static inline uint32_t
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ROBJECT_FIELDS_COUNT(VALUE obj)
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{
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if (rb_shape_obj_too_complex_p(obj)) {
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return (uint32_t)rb_st_table_size(ROBJECT_FIELDS_HASH(obj));
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}
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else {
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RBIMPL_ASSERT_TYPE(obj, RUBY_T_OBJECT);
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RUBY_ASSERT(!rb_shape_obj_too_complex_p(obj));
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return RSHAPE(RBASIC_SHAPE_ID(obj))->next_field_index;
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}
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}
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static inline uint32_t
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RBASIC_FIELDS_COUNT(VALUE obj)
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{
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return RSHAPE(rb_obj_shape_id(obj))->next_field_index;
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}
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bool rb_obj_set_shape_id(VALUE obj, shape_id_t shape_id);
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static inline bool
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rb_shape_obj_has_id(VALUE obj)
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{
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return rb_shape_has_object_id(RBASIC_SHAPE_ID(obj));
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}
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// For ext/objspace
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RUBY_SYMBOL_EXPORT_BEGIN
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typedef void each_shape_callback(shape_id_t shape_id, void *data);
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void rb_shape_each_shape_id(each_shape_callback callback, void *data);
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size_t rb_shape_memsize(shape_id_t shape);
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size_t rb_shape_edges_count(shape_id_t shape_id);
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size_t rb_shape_depth(shape_id_t shape_id);
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RUBY_SYMBOL_EXPORT_END
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#endif
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