1use std::cell::{Cell, RefCell};
24
25use crate::closure::LuaClosure;
26use crate::error::LuaError;
27use crate::gc::GcRef;
28use crate::string::LuaString;
29use crate::value::LuaValue;
30
31const MAXABITS: u32 = (std::mem::size_of::<i32>() as u32) * 8 - 1;
35
36pub const MAXASIZE: u32 = 1u32 << MAXABITS;
38
39pub const MAXHBITS: u32 = MAXABITS - 1;
41
42const MAXHSIZE: u32 = 1u32 << MAXHBITS;
44
45const DUMMY_TABLE_INIT_HASH_NODES: u32 = 4;
51
52const BIT_RAS: u8 = 1 << 7;
54
55pub const ARRAY_GROW_CAP: u32 = 1u32 << 20;
63
64pub const TOTAL_GROW_CAP: usize = 1usize << 20;
72
73const WEAK_KEYS: u8 = 1 << 0;
74const WEAK_VALUES: u8 = 1 << 1;
75
76#[derive(Clone, Copy, Debug, Default)]
81pub struct TableFlags(pub u8);
82
83impl TableFlags {
84 #[inline]
86 pub fn is_real_asize(self) -> bool {
87 (self.0 & BIT_RAS) == 0
88 }
89
90 #[inline]
92 pub fn set_real_asize(&mut self) {
93 self.0 &= !BIT_RAS;
94 }
95
96 #[inline]
98 pub fn set_no_real_asize(&mut self) {
99 self.0 |= BIT_RAS;
100 }
101
102 #[inline]
104 pub fn invalidate_tm_cache(&mut self) {
105 const MASK_FLAGS: u8 = 0x7F;
106 self.0 &= !MASK_FLAGS;
107 }
108}
109
110pub struct TableNode {
116 pub value: LuaValue,
118 pub key: LuaValue,
120 pub next: i32,
122}
123
124impl TableNode {
125 fn empty() -> Self {
126 TableNode { value: LuaValue::Nil, key: LuaValue::Nil, next: 0 }
127 }
128
129 fn key_is_nil(&self) -> bool { matches!(self.key, LuaValue::Nil) }
130 fn key_is_int(&self) -> bool { matches!(self.key, LuaValue::Int(_)) }
131 fn key_int(&self) -> i64 {
132 if let LuaValue::Int(i) = self.key { i }
133 else { panic!("TableNode::key_int: key is not int") }
134 }
135 fn key_is_short_str(&self) -> bool {
136 if let LuaValue::Str(s) = &self.key { s.is_short() }
137 else { false }
138 }
139 fn key_string(&self) -> &GcRef<LuaString> {
140 if let LuaValue::Str(s) = &self.key { s }
141 else { panic!("TableNode::key_string: key is not a string") }
142 }
143 fn key_value(&self) -> LuaValue { self.key.clone() }
144 fn set_key(&mut self, k: &LuaValue) { self.key = k.clone(); }
145}
146
147#[derive(Debug, Clone, Copy)]
154pub enum TableSlotRef {
155 Array(usize),
157 Hash(usize),
159 Absent,
161}
162
163fn ceil_log2(x: u32) -> i32 {
167 static LOG_2: [u8; 256] = [
168 0,1,2,2,3,3,3,3,4,4,4,4,4,4,4,4,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,
169 6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,
170 7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,
171 7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,
172 8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,
173 8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,
174 8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,
175 8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,8,
176 ];
177 let mut l: i32 = 0;
178 let mut x = x.wrapping_sub(1);
179 while x >= 256 { l += 8; x >>= 8; }
180 l + LOG_2[x as usize] as i32
181}
182
183fn hash_float(n: f64) -> i32 {
191 if n.is_nan() || n.is_infinite() {
192 return 0;
193 }
194 let (mantissa, exp) = frexp(n);
195 let scaled = mantissa * -(i32::MIN as f64);
196 let ni = scaled as i64;
197 if ni as f64 != scaled {
198 return 0;
199 }
200 let u = (exp as u32).wrapping_add(ni as u32);
201 if u <= i32::MAX as u32 { u as i32 } else { !(u as i32) }
202}
203
204fn frexp(x: f64) -> (f64, i32) {
206 if x == 0.0 || x.is_nan() || x.is_infinite() {
207 return (x, 0);
208 }
209 let bits = x.to_bits();
210 let exp_bits = ((bits >> 52) & 0x7FFu64) as i32;
211 if exp_bits == 0 {
212 let scaled = x * (2.0f64.powi(64));
213 let (m, e) = frexp(scaled);
214 return (m, e - 64);
215 }
216 let exp = exp_bits - 1022;
217 let mantissa_bits = (bits & !(0x7FFu64 << 52)) | (0x3FEu64 << 52);
218 (f64::from_bits(mantissa_bits), exp)
219}
220
221pub struct TableInner {
228 pub flags: TableFlags,
229 pub lsizenode: u8,
230 pub alimit: u32,
231 pub array: Vec<LuaValue>,
232 pub node: Vec<TableNode>,
233 pub lastfree: Option<usize>,
234}
235
236impl TableInner {
237 fn new() -> Self {
238 TableInner {
239 flags: TableFlags(0x7F),
240 lsizenode: 0,
241 alimit: 0,
242 array: Vec::new(),
243 node: Vec::new(),
244 lastfree: None,
245 }
246 }
247
248 #[inline]
250 fn is_dummy(&self) -> bool { self.lastfree.is_none() }
251
252 #[inline]
254 fn sizenode(&self) -> u32 { 1u32 << self.lsizenode }
255
256 #[inline]
258 fn alloc_sizenode(&self) -> u32 {
259 if self.is_dummy() { 0 } else { self.sizenode() }
260 }
261
262 #[inline]
264 fn is_real_asize(&self) -> bool { self.flags.is_real_asize() }
265
266 #[inline]
268 fn is_pow2(x: u32) -> bool { x == 0 || x.is_power_of_two() }
269
270 fn real_asize(&self) -> u32 {
272 if self.limit_equals_asize() {
273 return self.alimit;
274 }
275 let mut size = self.alimit;
276 size |= size >> 1;
277 size |= size >> 2;
278 size |= size >> 4;
279 size |= size >> 8;
280 size |= size >> 16;
281 size = size.wrapping_add(1);
282 debug_assert!(
283 Self::is_pow2(size) && size / 2 < self.alimit && self.alimit < size
284 );
285 size
286 }
287
288 #[inline]
289 fn limit_equals_asize(&self) -> bool {
290 self.is_real_asize() || Self::is_pow2(self.alimit)
291 }
292
293 fn is_pow2_real_asize(&self) -> bool {
294 !self.is_real_asize() || Self::is_pow2(self.alimit)
295 }
296
297 fn set_limit_to_size(&mut self) -> u32 {
298 self.alimit = self.real_asize();
299 self.flags.set_real_asize();
300 self.alimit
301 }
302
303 fn hash_idx_for_int(&self, i: i64) -> usize {
306 let ui = i as u64;
307 let sn = self.sizenode() as usize;
308 let modulo = (sn - 1) | 1;
309 if ui <= i32::MAX as u64 {
310 (ui as usize) % modulo
311 } else {
312 (ui as usize) % modulo
313 }
314 }
315
316 #[inline]
317 fn hashpow2_idx(&self, h: u32) -> usize {
318 (h & (self.sizenode() - 1)) as usize
319 }
320
321 #[inline]
322 fn hashmod_idx(&self, h: usize) -> usize {
323 let sn = self.sizenode() as usize;
324 let modulo = (sn - 1) | 1;
325 h % modulo
326 }
327
328 fn main_position(&self, key: &LuaValue) -> usize {
329 match key {
330 LuaValue::Int(i) => self.hash_idx_for_int(*i),
331 LuaValue::Float(f) => {
332 let h = hash_float(*f);
333 self.hashmod_idx(h as usize)
334 }
335 LuaValue::Str(s) if s.is_short() => self.hashpow2_idx(s.hash()),
336 LuaValue::Str(s) => self.hashpow2_idx(s.hash()),
337 LuaValue::Bool(false) => self.hashpow2_idx(0),
338 LuaValue::Bool(true) => self.hashpow2_idx(1),
339 LuaValue::LightUserData(p) => {
340 let h = (*p as usize as u32) as usize;
341 self.hashmod_idx(h)
342 }
343 LuaValue::Function(LuaClosure::LightC(f)) => {
344 let h = (*f as u32) as usize;
345 self.hashmod_idx(h)
346 }
347 LuaValue::Table(t) => {
348 let h = (GcRef::identity(t) as u32) as usize;
349 self.hashmod_idx(h)
350 }
351 LuaValue::Function(LuaClosure::Lua(cl)) => {
352 let h = (GcRef::identity(cl) as u32) as usize;
353 self.hashmod_idx(h)
354 }
355 LuaValue::Function(LuaClosure::C(cl)) => {
356 let h = (GcRef::identity(cl) as u32) as usize;
357 self.hashmod_idx(h)
358 }
359 LuaValue::UserData(u) => {
360 let h = (GcRef::identity(u) as u32) as usize;
361 self.hashmod_idx(h)
362 }
363 LuaValue::Thread(th) => {
364 let h = (GcRef::identity(th) as u32) as usize;
365 self.hashmod_idx(h)
366 }
367 LuaValue::Nil => 0,
368 }
369 }
370
371 fn main_position_from_node(&self, nd: usize) -> usize {
372 let key = self.node[nd].key_value();
373 self.main_position(&key)
374 }
375
376 fn equal_key(k1: &LuaValue, n2: &TableNode) -> bool {
379 let types_match = std::mem::discriminant(k1) == std::mem::discriminant(&n2.key);
380 if !types_match {
381 return false;
382 }
383 match &n2.key {
384 LuaValue::Nil => true,
385 LuaValue::Bool(b) => matches!(k1, LuaValue::Bool(b2) if b == b2),
386 LuaValue::Int(ni) => matches!(k1, LuaValue::Int(ki) if ki == ni),
387 LuaValue::Float(nf) => matches!(k1, LuaValue::Float(kf) if kf == nf),
388 LuaValue::LightUserData(np) => matches!(k1, LuaValue::LightUserData(kp) if kp == np),
389 LuaValue::Function(LuaClosure::LightC(nf)) => {
390 matches!(k1, LuaValue::Function(LuaClosure::LightC(kf)) if kf == nf)
391 }
392 LuaValue::Str(ns) if ns.is_long() => {
393 if let LuaValue::Str(ks) = k1 {
394 ks.as_bytes() == ns.as_bytes()
395 } else { false }
396 }
397 _ => Self::gc_ptr_eq(k1, &n2.key),
398 }
399 }
400
401 fn gc_ptr_eq(a: &LuaValue, b: &LuaValue) -> bool {
402 match (a, b) {
403 (LuaValue::Str(sa), LuaValue::Str(sb)) => GcRef::ptr_eq(sa, sb),
404 (LuaValue::Table(ta), LuaValue::Table(tb)) => GcRef::ptr_eq(ta, tb),
405 (LuaValue::Function(LuaClosure::Lua(fa)), LuaValue::Function(LuaClosure::Lua(fb))) => {
406 GcRef::ptr_eq(fa, fb)
407 }
408 (LuaValue::Function(LuaClosure::C(fa)), LuaValue::Function(LuaClosure::C(fb))) => {
409 GcRef::ptr_eq(fa, fb)
410 }
411 (LuaValue::UserData(ua), LuaValue::UserData(ub)) => GcRef::ptr_eq(ua, ub),
412 (LuaValue::Thread(ta), LuaValue::Thread(tb)) => GcRef::ptr_eq(ta, tb),
413 _ => false,
414 }
415 }
416
417 fn get_generic_slot(&self, key: &LuaValue) -> TableSlotRef {
420 if self.is_dummy() { return TableSlotRef::Absent; }
421 let mut n = self.main_position(key);
422 loop {
423 if Self::equal_key(key, &self.node[n]) {
424 return TableSlotRef::Hash(n);
425 }
426 let nx = self.node[n].next;
427 if nx == 0 { return TableSlotRef::Absent; }
428 n = (n as isize + nx as isize) as usize;
429 }
430 }
431
432 fn array_index(k: i64) -> u32 {
435 let uk = k as u64;
436 if uk.wrapping_sub(1) < MAXASIZE as u64 { k as u32 } else { 0 }
437 }
438
439 fn find_index(&self, key: &LuaValue, asize: u32) -> Result<u32, LuaError> {
443 if matches!(key, LuaValue::Nil) { return Ok(0); }
444 let i = if let LuaValue::Int(k) = key { Self::array_index(*k) } else { 0 };
445 if i.wrapping_sub(1) < asize { return Ok(i); }
446 let slot = self.get_generic_slot(key);
447 match slot {
448 TableSlotRef::Absent => {
449 Err(LuaError::runtime(format_args!("invalid key to 'next'")))
450 }
451 TableSlotRef::Hash(node_idx) => Ok((node_idx as u32 + 1) + asize),
452 TableSlotRef::Array(_) => unreachable!("getgeneric returned Array slot"),
453 }
454 }
455
456 fn next_pair(&self, key: &LuaValue) -> Result<Option<(LuaValue, LuaValue)>, LuaError> {
459 let asize = self.real_asize();
460 let i = self.find_index(key, asize)?;
461 let mut i = i as usize;
462 while i < asize as usize {
463 if !matches!(self.array[i], LuaValue::Nil) {
464 return Ok(Some((LuaValue::Int((i + 1) as i64), self.array[i].clone())));
465 }
466 i += 1;
467 }
468 let mut hi = i.saturating_sub(asize as usize);
469 while hi < self.node.len() {
470 if !matches!(self.node[hi].value, LuaValue::Nil) {
471 return Ok(Some((self.node[hi].key_value(), self.node[hi].value.clone())));
472 }
473 hi += 1;
474 }
475 Ok(None)
476 }
477
478 fn compute_sizes(nums: &[u32], pna: &mut u32) -> u32 {
481 let mut twotoi: u32 = 1;
482 let mut a: u32 = 0;
483 let mut na: u32 = 0;
484 let mut optimal: u32 = 0;
485 for i in 0..nums.len() {
486 if twotoi == 0 || *pna <= twotoi / 2 { break; }
487 a += nums[i];
488 if a > twotoi / 2 {
489 optimal = twotoi;
490 na = a;
491 }
492 twotoi = twotoi.wrapping_mul(2);
493 }
494 debug_assert!(optimal == 0 || optimal / 2 < na && na <= optimal);
495 *pna = na;
496 optimal
497 }
498
499 fn count_int(key: i64, nums: &mut [u32]) -> bool {
500 let k = Self::array_index(key);
501 if k != 0 {
502 nums[ceil_log2(k) as usize] += 1;
503 true
504 } else { false }
505 }
506
507 fn num_use_array(&self, nums: &mut [u32]) -> u32 {
508 debug_assert!(self.is_real_asize(), "numusearray: alimit must be real size");
509 let asize = self.alimit as usize;
510 let mut ause: u32 = 0;
511 let mut i: usize = 1;
512 let mut ttlg: usize = 1;
513 for lg in 0..=(MAXABITS as usize) {
514 let mut lc: u32 = 0;
515 let lim = if ttlg > asize { asize } else { ttlg };
516 if i > lim { break; }
517 while i <= lim {
518 if !matches!(self.array[i - 1], LuaValue::Nil) { lc += 1; }
519 i += 1;
520 }
521 nums[lg] += lc;
522 ause += lc;
523 ttlg = ttlg.saturating_mul(2);
524 }
525 ause
526 }
527
528 fn num_use_hash(&self, nums: &mut [u32], pna: &mut u32) -> i32 {
529 let mut totaluse: i32 = 0;
530 let mut ause: u32 = 0;
531 let mut i = self.node.len();
532 while i > 0 {
533 i -= 1;
534 let n = &self.node[i];
535 if !matches!(n.value, LuaValue::Nil) {
536 if n.key_is_int() {
537 if Self::count_int(n.key_int(), nums) { ause += 1; }
538 }
539 totaluse += 1;
540 }
541 }
542 *pna += ause;
543 totaluse
544 }
545
546 fn set_node_vector(&mut self, size: u32) -> Result<(), LuaError> {
547 if size == 0 {
548 self.node = Vec::new();
549 self.lsizenode = 0;
550 self.lastfree = None;
551 } else {
552 let lsize = ceil_log2(size);
553 if lsize as u32 > MAXHBITS || (1u32 << lsize) > MAXHSIZE {
554 return Err(LuaError::runtime(format_args!("table overflow")));
555 }
556 let actual_size = 1u32 << lsize;
557 let mut nodes = Vec::with_capacity(actual_size as usize);
558 for _ in 0..actual_size { nodes.push(TableNode::empty()); }
559 self.node = nodes;
560 self.lsizenode = lsize as u8;
561 self.lastfree = Some(actual_size as usize);
562 }
563 Ok(())
564 }
565
566 fn reinsert(&mut self, old_nodes: Vec<(LuaValue, LuaValue)>) -> Result<(), LuaError> {
567 for (k, v) in old_nodes {
568 self.set(&k, v)?;
569 }
570 Ok(())
571 }
572
573 fn resize(&mut self, new_asize: u32, nhsize: u32) -> Result<(), LuaError> {
575 let old_asize = self.set_limit_to_size();
576
577 let (mut new_hash_node, mut new_hash_lsize, mut new_hash_lastfree) = {
578 let mut tmp = TableInner::new();
579 tmp.set_node_vector(nhsize)?;
580 (tmp.node, tmp.lsizenode, tmp.lastfree)
581 };
582
583 if new_asize < old_asize {
584 self.alimit = new_asize;
585 std::mem::swap(&mut self.node, &mut new_hash_node);
586 std::mem::swap(&mut self.lsizenode, &mut new_hash_lsize);
587 std::mem::swap(&mut self.lastfree, &mut new_hash_lastfree);
588
589 for i in (new_asize as usize)..(old_asize as usize) {
590 if !matches!(self.array[i], LuaValue::Nil) {
591 let v = self.array[i].clone();
592 self.set_int((i + 1) as i64, v)?;
593 }
594 }
595
596 self.alimit = old_asize;
597 std::mem::swap(&mut self.node, &mut new_hash_node);
598 std::mem::swap(&mut self.lsizenode, &mut new_hash_lsize);
599 std::mem::swap(&mut self.lastfree, &mut new_hash_lastfree);
600 }
601
602 self.array.resize_with(new_asize as usize, || LuaValue::Nil);
603
604 std::mem::swap(&mut self.node, &mut new_hash_node);
605 std::mem::swap(&mut self.lsizenode, &mut new_hash_lsize);
606 std::mem::swap(&mut self.lastfree, &mut new_hash_lastfree);
607 self.alimit = new_asize;
608
609 let old_hash_entries: Vec<(LuaValue, LuaValue)> = new_hash_node
610 .iter()
611 .filter(|n| !matches!(n.value, LuaValue::Nil))
612 .map(|n| (n.key_value(), n.value.clone()))
613 .collect();
614 drop(new_hash_node);
615 self.reinsert(old_hash_entries)?;
616
617 Ok(())
618 }
619
620 fn rehash(&mut self, extra_key: &LuaValue) -> Result<(), LuaError> {
621 let mut nums = [0u32; MAXABITS as usize + 1];
622 self.set_limit_to_size();
623
624 let na = self.num_use_array(&mut nums);
625 let mut na = na;
626 let mut totaluse = na as i32;
627
628 totaluse += self.num_use_hash(&mut nums, &mut na);
629
630 if let LuaValue::Int(ek) = extra_key {
631 if Self::count_int(*ek, &mut nums) { na += 1; }
632 }
633 totaluse += 1;
634
635 let asize = Self::compute_sizes(&nums, &mut na);
636
637 let nh = (totaluse - na as i32).max(0) as u32;
638 self.resize(asize, nh)
639 }
640
641 fn get_free_pos(&mut self) -> Option<usize> {
642 if self.is_dummy() { return None; }
643 loop {
644 let lf = self.lastfree?;
645 if lf == 0 {
646 self.lastfree = None;
647 return None;
648 }
649 let idx = lf - 1;
650 self.lastfree = Some(idx);
651 if self.node[idx].key_is_nil() {
652 return Some(idx);
653 }
654 }
655 }
656
657 fn find_chain_predecessor(&self, idx: usize) -> Option<usize> {
658 self.node.iter().enumerate().find(|(prev, node)| {
659 node.next != 0 && (*prev as isize + node.next as isize) == idx as isize
660 }).map(|(prev, _)| prev)
661 }
662
663 fn clear_node(&mut self, idx: usize) {
664 self.node[idx].key = LuaValue::Nil;
665 self.node[idx].value = LuaValue::Nil;
666 self.node[idx].next = 0;
667 }
668
669 fn remove_hash_node(&mut self, idx: usize) {
670 if let Some(prev) = self.find_chain_predecessor(idx) {
671 let next = self.node[idx].next;
672 self.node[prev].next = if next == 0 {
673 0
674 } else {
675 let target = idx as isize + next as isize;
676 (target - prev as isize) as i32
677 };
678 self.clear_node(idx);
679 return;
680 }
681
682 let next = self.node[idx].next;
683 if next == 0 {
684 self.clear_node(idx);
685 return;
686 }
687
688 let next_idx = (idx as isize + next as isize) as usize;
689 let moved_next = self.node[next_idx].next;
690 let moved_key = self.node[next_idx].key_value();
691 let moved_value = self.node[next_idx].value.clone();
692 self.node[idx].key = moved_key;
693 self.node[idx].value = moved_value;
694 self.node[idx].next = if moved_next == 0 {
695 0
696 } else {
697 let target = next_idx as isize + moved_next as isize;
698 (target - idx as isize) as i32
699 };
700 self.clear_node(next_idx);
701 }
702
703 fn clear_dead_hash_node(&mut self, idx: usize) {
704 self.remove_hash_node(idx);
705 }
706
707 fn new_key(&mut self, key: &LuaValue, value: LuaValue) -> Result<(), LuaError> {
708 if matches!(key, LuaValue::Nil) {
709 return Err(LuaError::runtime(format_args!("table index is nil")));
710 }
711 let normalised_key;
712 let key = if let LuaValue::Float(f) = key {
713 let f = *f;
714 if f.is_nan() {
715 return Err(LuaError::runtime(format_args!("table index is NaN")));
716 }
717 let k = f as i64;
718 if k as f64 == f {
719 normalised_key = LuaValue::Int(k);
720 &normalised_key
721 } else { key }
722 } else { key };
723
724 if matches!(value, LuaValue::Nil) { return Ok(()); }
725
726 if self.is_dummy() && !matches!(key, LuaValue::Int(_)) {
727 self.set_node_vector(DUMMY_TABLE_INIT_HASH_NODES)?;
728 let mp = self.main_position(key);
729 self.node[mp].set_key(key);
730 self.node[mp].value = value;
731 return Ok(());
732 }
733
734 let mp = self.main_position(key);
735 let mp_occupied = self.is_dummy() || !matches!(self.node[mp].value, LuaValue::Nil);
736 if mp_occupied {
737 let f = self.get_free_pos();
738 let f = match f {
739 None => {
740 self.rehash(key)?;
741 return self.set(key, value);
742 }
743 Some(idx) => idx,
744 };
745
746 debug_assert!(!self.is_dummy());
747 let othern = self.main_position_from_node(mp);
748
749 if othern != mp {
750 let mut prev = othern;
751 while (prev as isize + self.node[prev].next as isize) as usize != mp {
752 prev = (prev as isize + self.node[prev].next as isize) as usize;
753 }
754 self.node[prev].next = (f as isize - prev as isize) as i32;
755 let mp_key = self.node[mp].key_value();
756 let mp_val = self.node[mp].value.clone();
757 let mp_next = self.node[mp].next;
758 self.node[f].key = mp_key;
759 self.node[f].value = mp_val;
760 if mp_next != 0 {
761 self.node[f].next = mp_next + (mp as isize - f as isize) as i32;
762 self.node[mp].next = 0;
763 } else {
764 self.node[f].next = 0;
765 }
766 self.node[mp].value = LuaValue::Nil;
767 } else {
768 if self.node[mp].next != 0 {
769 let target = (mp as isize + self.node[mp].next as isize) as usize;
770 self.node[f].next = (target as isize - f as isize) as i32;
771 } else {
772 debug_assert!(self.node[f].next == 0);
773 }
774 self.node[mp].next = (f as isize - mp as isize) as i32;
775 self.node[f].set_key(key);
776 debug_assert!(matches!(self.node[f].value, LuaValue::Nil));
777 self.node[f].value = value;
778 return Ok(());
779 }
780 }
781 self.node[mp].set_key(key);
782 debug_assert!(matches!(self.node[mp].value, LuaValue::Nil));
783 self.node[mp].value = value;
784 Ok(())
785 }
786
787 fn get_int_slot(&self, key: i64) -> TableSlotRef {
788 let alimit = self.alimit as u64;
789 let uk = key as u64;
790 if uk.wrapping_sub(1) < alimit {
791 return TableSlotRef::Array((key - 1) as usize);
792 }
793 if !self.is_real_asize() && alimit > 0 {
794 let masked = (uk.wrapping_sub(1)) & !(alimit.wrapping_sub(1));
795 if masked < alimit {
796 return TableSlotRef::Array((key - 1) as usize);
797 }
798 }
799 if self.is_dummy() { return TableSlotRef::Absent; }
800 let mut n = self.hash_idx_for_int(key);
801 loop {
802 if self.node[n].key_is_int() && self.node[n].key_int() == key {
803 return TableSlotRef::Hash(n);
804 }
805 let nx = self.node[n].next;
806 if nx == 0 { break; }
807 n = (n as isize + nx as isize) as usize;
808 }
809 TableSlotRef::Absent
810 }
811
812 #[inline]
819 fn get_int_value(&self, key: i64) -> LuaValue {
820 let alimit = self.alimit as u64;
821 let uk = key as u64;
822 if uk.wrapping_sub(1) < alimit {
823 return self.array[(key - 1) as usize].clone();
824 }
825 self.get_int_value_cold(key)
826 }
827
828 #[cold]
829 #[inline(never)]
830 fn get_int_value_cold(&self, key: i64) -> LuaValue {
831 let alimit = self.alimit as u64;
832 let uk = key as u64;
833 if !self.is_real_asize() && alimit > 0 {
834 let masked = (uk.wrapping_sub(1)) & !(alimit.wrapping_sub(1));
835 if masked < alimit {
836 return self.array[(key - 1) as usize].clone();
837 }
838 }
839 if self.is_dummy() { return LuaValue::Nil; }
840 let mut n = self.hash_idx_for_int(key);
841 loop {
842 if self.node[n].key_is_int() && self.node[n].key_int() == key {
843 return self.node[n].value.clone();
844 }
845 let nx = self.node[n].next;
846 if nx == 0 { break; }
847 n = (n as isize + nx as isize) as usize;
848 }
849 LuaValue::Nil
850 }
851
852 fn get_short_str_slot(&self, key: &GcRef<LuaString>) -> TableSlotRef {
853 debug_assert!(key.is_short());
854 if self.is_dummy() { return TableSlotRef::Absent; }
855 let mut n = self.hashpow2_idx(key.hash());
856 loop {
857 if self.node[n].key_is_short_str() {
858 let ks = self.node[n].key_string();
859 if GcRef::ptr_eq(ks, key) || ks.as_bytes() == key.as_bytes() {
860 return TableSlotRef::Hash(n);
861 }
862 }
863 let nx = self.node[n].next;
864 if nx == 0 { return TableSlotRef::Absent; }
865 n = (n as isize + nx as isize) as usize;
866 }
867 }
868
869 #[inline]
877 fn get_str_value(&self, key: &GcRef<LuaString>) -> LuaValue {
878 debug_assert!(key.is_short());
879 if self.is_dummy() { return LuaValue::Nil; }
880 let mut n = self.hashpow2_idx(key.hash());
881 loop {
882 if self.node[n].key_is_short_str() {
883 let ks = self.node[n].key_string();
884 if GcRef::ptr_eq(ks, key) || ks.as_bytes() == key.as_bytes() {
885 return self.node[n].value.clone();
886 }
887 }
888 let nx = self.node[n].next;
889 if nx == 0 { return LuaValue::Nil; }
890 n = (n as isize + nx as isize) as usize;
891 }
892 }
893
894 #[cold]
899 #[inline(never)]
900 fn get_generic_value(&self, key: &LuaValue) -> LuaValue {
901 let slot = self.get_slot(key);
902 self.slot_value(slot)
903 }
904
905 fn get_str_slot(&self, key: &GcRef<LuaString>) -> TableSlotRef {
906 if key.is_short() {
907 self.get_short_str_slot(key)
908 } else {
909 let ko = LuaValue::Str(key.clone());
910 self.get_generic_slot(&ko)
911 }
912 }
913
914 fn get_slot(&self, key: &LuaValue) -> TableSlotRef {
915 match key {
916 LuaValue::Str(s) if s.is_short() => self.get_short_str_slot(s),
917 LuaValue::Int(i) => self.get_int_slot(*i),
918 LuaValue::Nil => TableSlotRef::Absent,
919 LuaValue::Float(f) => {
920 let f = *f;
921 let k = f as i64;
922 if k as f64 == f { self.get_int_slot(k) }
923 else { self.get_generic_slot(key) }
924 }
925 _ => self.get_generic_slot(key),
926 }
927 }
928
929 fn slot_value(&self, slot: TableSlotRef) -> LuaValue {
930 match slot {
931 TableSlotRef::Array(i) => self.array[i].clone(),
932 TableSlotRef::Hash(i) => self.node[i].value.clone(),
933 TableSlotRef::Absent => LuaValue::Nil,
934 }
935 }
936
937 fn finish_set(&mut self, key: &LuaValue, slot: TableSlotRef, value: LuaValue) -> Result<(), LuaError> {
938 match slot {
939 TableSlotRef::Absent => self.new_key(key, value),
940 TableSlotRef::Array(i) => { self.array[i] = value; Ok(()) }
941 TableSlotRef::Hash(i) => { self.node[i].value = value; Ok(()) }
942 }
943 }
944
945 fn set(&mut self, key: &LuaValue, value: LuaValue) -> Result<(), LuaError> {
946 let slot = self.get_slot(key);
947 self.finish_set(key, slot, value)
948 }
949
950 fn set_int(&mut self, key: i64, value: LuaValue) -> Result<(), LuaError> {
954 let slot = self.get_int_slot(key);
955 if matches!(slot, TableSlotRef::Absent) {
956 if key > 0 && (key as u64) <= ARRAY_GROW_CAP as u64 {
957 let cur = self.alimit as i64;
958 if key == cur + 1 && !matches!(value, LuaValue::Nil) {
959 let new_size = (key as u32).next_power_of_two().max(4);
960 let capped = new_size.min(ARRAY_GROW_CAP);
961 if capped > self.alimit {
962 let nsize = self.alloc_sizenode();
963 self.resize(capped, nsize)?;
964 let new_slot = self.get_int_slot(key);
965 return self.finish_set(&LuaValue::Int(key), new_slot, value);
966 }
967 }
968 }
969 }
970 match slot {
971 TableSlotRef::Absent => {
972 let k = LuaValue::Int(key);
973 self.new_key(&k, value)
974 }
975 TableSlotRef::Array(i) => { self.array[i] = value; Ok(()) }
976 TableSlotRef::Hash(i) => { self.node[i].value = value; Ok(()) }
977 }
978 }
979
980 #[inline]
987 fn try_raw_set_int_fast(&mut self, key: i64, value: LuaValue) -> Result<(), LuaError> {
988 let alimit = self.alimit as u64;
989 let uk = key as u64;
990 if uk.wrapping_sub(1) < alimit {
991 self.array[(key - 1) as usize] = value;
992 return Ok(());
993 }
994 self.try_raw_set_int_cold(key, value)
995 }
996
997 #[cold]
998 #[inline(never)]
999 fn try_raw_set_int_cold(&mut self, key: i64, value: LuaValue) -> Result<(), LuaError> {
1000 if self.array.len() + self.node.len() >= TOTAL_GROW_CAP
1001 && matches!(self.get_int_slot(key), TableSlotRef::Absent)
1002 {
1003 return Err(LuaError::Memory);
1004 }
1005 self.set_int_value_cold(key, value)
1006 }
1007
1008 #[cold]
1015 #[inline(never)]
1016 fn set_int_value_cold(&mut self, key: i64, value: LuaValue) -> Result<(), LuaError> {
1017 let alimit = self.alimit as u64;
1018 let uk = key as u64;
1019 if !self.is_real_asize() && alimit > 0 {
1020 let masked = (uk.wrapping_sub(1)) & !(alimit.wrapping_sub(1));
1021 if masked < alimit {
1022 self.array[(key - 1) as usize] = value;
1023 return Ok(());
1024 }
1025 }
1026 if !self.is_dummy() {
1027 let mut n = self.hash_idx_for_int(key);
1028 loop {
1029 if self.node[n].key_is_int() && self.node[n].key_int() == key {
1030 self.node[n].value = value;
1031 return Ok(());
1032 }
1033 let nx = self.node[n].next;
1034 if nx == 0 { break; }
1035 n = (n as isize + nx as isize) as usize;
1036 }
1037 }
1038 if key > 0 && (key as u64) <= ARRAY_GROW_CAP as u64 {
1039 let cur = self.alimit as i64;
1040 if key == cur + 1 && !matches!(value, LuaValue::Nil) {
1041 let new_size = (key as u32).next_power_of_two().max(4);
1042 let capped = new_size.min(ARRAY_GROW_CAP);
1043 if capped > self.alimit {
1044 let nsize = self.alloc_sizenode();
1045 self.resize(capped, nsize)?;
1046 let new_slot = self.get_int_slot(key);
1047 return self.finish_set(&LuaValue::Int(key), new_slot, value);
1048 }
1049 }
1050 }
1051 let k = LuaValue::Int(key);
1052 self.new_key(&k, value)
1053 }
1054
1055 fn hash_search(&self, mut j: u64) -> u64 {
1058 let mut i: u64;
1059 if j == 0 { j = 1; }
1060 loop {
1061 i = j;
1062 if j <= (i64::MAX as u64) / 2 {
1063 j *= 2;
1064 } else {
1065 j = i64::MAX as u64;
1066 let s = self.get_int_slot(j as i64);
1067 if matches!(s, TableSlotRef::Absent)
1068 || matches!(self.slot_value(s), LuaValue::Nil)
1069 {
1070 break;
1071 } else { return j; }
1072 }
1073 let s = self.get_int_slot(j as i64);
1074 if matches!(s, TableSlotRef::Absent) { break; }
1075 if matches!(self.slot_value(s), LuaValue::Nil) { break; }
1076 }
1077 while j - i > 1 {
1078 let m = i / 2 + j / 2;
1079 let s = self.get_int_slot(m as i64);
1080 let empty = matches!(s, TableSlotRef::Absent)
1081 || matches!(self.slot_value(s), LuaValue::Nil);
1082 if empty { j = m; } else { i = m; }
1083 }
1084 i
1085 }
1086
1087 fn bin_search(array: &[LuaValue], mut i: u32, mut j: u32) -> u32 {
1088 while j - i > 1 {
1089 let m = (i + j) / 2;
1090 if matches!(array[(m - 1) as usize], LuaValue::Nil) { j = m; }
1091 else { i = m; }
1092 }
1093 i
1094 }
1095
1096 fn getn(&mut self) -> u64 {
1099 let limit = self.alimit;
1100 if limit > 0 && matches!(self.array[(limit - 1) as usize], LuaValue::Nil) {
1101 if limit >= 2 && !matches!(self.array[(limit - 2) as usize], LuaValue::Nil) {
1102 if self.is_pow2_real_asize() && !Self::is_pow2(limit - 1) {
1103 self.alimit = limit - 1;
1104 self.flags.set_no_real_asize();
1105 }
1106 return (limit - 1) as u64;
1107 } else {
1108 let boundary = Self::bin_search(&self.array, 0, limit);
1109 if self.is_pow2_real_asize() && boundary > self.real_asize() / 2 {
1110 self.alimit = boundary;
1111 self.flags.set_no_real_asize();
1112 }
1113 return boundary as u64;
1114 }
1115 }
1116 if !self.limit_equals_asize() {
1117 if matches!(self.array[limit as usize], LuaValue::Nil) {
1118 return limit as u64;
1119 }
1120 let real = self.real_asize();
1121 if matches!(self.array[(real - 1) as usize], LuaValue::Nil) {
1122 let old_alimit = self.alimit;
1123 let boundary = Self::bin_search(&self.array, old_alimit, real);
1124 self.alimit = boundary;
1125 return boundary as u64;
1126 }
1127 }
1128 let limit = self.real_asize();
1129 debug_assert!(
1130 limit == self.real_asize()
1131 && (limit == 0 || !matches!(self.array[(limit - 1) as usize], LuaValue::Nil))
1132 );
1133 let next_key = (limit as i64).saturating_add(1);
1134 let next_slot = self.get_int_slot(next_key);
1135 let next_empty = matches!(next_slot, TableSlotRef::Absent)
1136 || matches!(self.slot_value(next_slot), LuaValue::Nil);
1137 if self.is_dummy() || next_empty {
1138 return limit as u64;
1139 }
1140 self.hash_search(limit as u64)
1141 }
1142}
1143
1144#[derive(Debug)]
1152pub struct LuaTable {
1153 inner: RefCell<TableInner>,
1154 metatable: RefCell<Option<GcRef<LuaTable>>>,
1155 weak_mode: Cell<u8>,
1156}
1157
1158impl std::fmt::Debug for TableInner {
1159 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
1160 f.debug_struct("TableInner")
1161 .field("alimit", &self.alimit)
1162 .field("array_len", &self.array.len())
1163 .field("node_len", &self.node.len())
1164 .finish()
1165 }
1166}
1167
1168impl Default for LuaTable {
1169 fn default() -> Self {
1170 LuaTable {
1171 inner: RefCell::new(TableInner::new()),
1172 metatable: RefCell::new(None),
1173 weak_mode: Cell::new(0),
1174 }
1175 }
1176}
1177
1178impl LuaTable {
1179 pub fn placeholder() -> Self { Self::default() }
1182
1183 pub fn with_inner<R>(&self, f: impl FnOnce(&TableInner) -> R) -> R {
1186 f(&self.inner.borrow())
1187 }
1188
1189 #[inline(always)]
1199 pub fn get(&self, k: &LuaValue) -> LuaValue {
1200 let inner = self.inner.borrow();
1201 match k {
1202 LuaValue::Nil => LuaValue::Nil,
1203 LuaValue::Int(i) => inner.get_int_value(*i),
1204 LuaValue::Str(s) if s.is_short() => inner.get_str_value(s),
1205 _ => inner.get_generic_value(k),
1206 }
1207 }
1208
1209 #[inline(always)]
1215 pub fn get_int(&self, key: i64) -> LuaValue {
1216 let inner = self.inner.borrow();
1217 inner.get_int_value(key)
1218 }
1219
1220 #[inline(always)]
1228 pub fn get_short_str(&self, k: &GcRef<LuaString>) -> LuaValue {
1229 let inner = self.inner.borrow();
1230 if k.is_short() {
1231 inner.get_str_value(k)
1232 } else {
1233 let slot = inner.get_str_slot(k);
1234 inner.slot_value(slot)
1235 }
1236 }
1237
1238 pub fn get_str_bytes(&self, key_bytes: &[u8]) -> LuaValue {
1242 let mut found = LuaValue::Nil;
1243 self.for_each_entry(|k, v| {
1244 if !matches!(found, LuaValue::Nil) { return; }
1245 if let LuaValue::Str(s) = k {
1246 if s.as_bytes() == key_bytes {
1247 found = v.clone();
1248 }
1249 }
1250 });
1251 found
1252 }
1253
1254 pub fn raw_set(&self, k: LuaValue, v: LuaValue) {
1257 if matches!(k, LuaValue::Nil) { return; }
1258 if let LuaValue::Float(f) = &k {
1259 if f.is_nan() { return; }
1260 }
1261 let mut inner = self.inner.borrow_mut();
1262 let _ = inner.set(&k, v);
1263 }
1264
1265 #[inline]
1271 pub fn try_raw_set(&self, k: LuaValue, v: LuaValue) -> Result<(), LuaError> {
1272 match &k {
1273 LuaValue::Nil => {
1274 Err(LuaError::runtime(format_args!("table index is nil")))
1275 }
1276 LuaValue::Float(f) if f.is_nan() => {
1277 Err(LuaError::runtime(format_args!("table index is NaN")))
1278 }
1279 LuaValue::Int(i) => {
1280 let key = *i;
1281 let mut inner = self.inner.borrow_mut();
1282 inner.try_raw_set_int_fast(key, v)
1283 }
1284 LuaValue::Float(f) => {
1285 let f = *f;
1286 let k_int = f as i64;
1287 if k_int as f64 == f {
1288 let mut inner = self.inner.borrow_mut();
1289 inner.try_raw_set_int_fast(k_int, v)
1290 } else {
1291 self.try_raw_set_generic(k, v)
1292 }
1293 }
1294 _ => self.try_raw_set_generic(k, v),
1295 }
1296 }
1297
1298 #[cold]
1301 #[inline(never)]
1302 fn try_raw_set_generic(&self, k: LuaValue, v: LuaValue) -> Result<(), LuaError> {
1303 let mut inner = self.inner.borrow_mut();
1304 if inner.array.len() + inner.node.len() >= TOTAL_GROW_CAP
1305 && matches!(inner.get_slot(&k), TableSlotRef::Absent)
1306 {
1307 return Err(LuaError::Memory);
1308 }
1309 inner.set(&k, v)
1310 }
1311
1312 #[inline]
1319 pub fn try_raw_set_int(&self, k: i64, v: LuaValue) -> Result<(), LuaError> {
1320 let mut inner = self.inner.borrow_mut();
1321 inner.try_raw_set_int_fast(k, v)
1322 }
1323
1324 pub fn resize(&self, new_asize: u32, new_hsize: u32) -> Result<(), LuaError> {
1327 let mut inner = self.inner.borrow_mut();
1328 inner.resize(new_asize, new_hsize)
1329 }
1330
1331 pub fn array_len(&self) -> usize { self.inner.borrow().array.len() }
1334
1335 pub fn len(&self) -> usize {
1338 let inner = self.inner.borrow();
1339 let mut n = 0usize;
1340 for v in inner.array.iter() {
1341 if !matches!(v, LuaValue::Nil) { n += 1; }
1342 }
1343 for node in inner.node.iter() {
1344 if !matches!(node.value, LuaValue::Nil) { n += 1; }
1345 }
1346 n
1347 }
1348 pub fn is_empty(&self) -> bool { self.len() == 0 }
1349
1350 pub fn getn(&self) -> u64 {
1352 let mut inner = self.inner.borrow_mut();
1353 inner.getn()
1354 }
1355
1356 pub fn contains_key(&self, k: &LuaValue) -> bool {
1359 if matches!(k, LuaValue::Nil) { return false; }
1360 let inner = self.inner.borrow();
1361 let slot = inner.get_slot(k);
1362 !matches!(slot, TableSlotRef::Absent)
1363 }
1364
1365 pub fn metatable(&self) -> Option<GcRef<LuaTable>> {
1366 self.metatable.borrow().clone()
1367 }
1368
1369 pub fn set_metatable(&self, mt: Option<GcRef<LuaTable>>) {
1373 let mode = mt.as_ref().map(|t| extract_weak_mode(t)).unwrap_or(0);
1374 self.weak_mode.set(mode);
1375 *self.metatable.borrow_mut() = mt;
1376 }
1377
1378 pub fn weak_mode(&self) -> u8 { self.weak_mode.get() }
1379
1380 pub fn next_pair(&self, k: &LuaValue) -> Option<(LuaValue, LuaValue)> {
1382 let inner = self.inner.borrow();
1383 inner.next_pair(k).ok().flatten()
1384 }
1385
1386 pub fn try_next_pair(&self, k: &LuaValue) -> Result<Option<(LuaValue, LuaValue)>, LuaError> {
1389 let inner = self.inner.borrow();
1390 inner.next_pair(k)
1391 }
1392
1393 pub fn for_each_entry(&self, mut f: impl FnMut(&LuaValue, &LuaValue)) {
1397 let inner = self.inner.borrow();
1398 for (i, v) in inner.array.iter().enumerate() {
1399 if !matches!(v, LuaValue::Nil) {
1400 let k = LuaValue::Int((i + 1) as i64);
1401 f(&k, v);
1402 }
1403 }
1404 for node in inner.node.iter() {
1405 if !matches!(node.value, LuaValue::Nil) {
1406 f(&node.key, &node.value);
1407 }
1408 }
1409 }
1410
1411 pub fn prune_weak_dead(&self, is_reachable: &dyn Fn(usize) -> bool) -> Vec<LuaValue> {
1415 let mode = self.weak_mode.get();
1416 if mode == 0 { return Vec::new(); }
1417 let weak_k = (mode & WEAK_KEYS) != 0;
1418 let weak_v = (mode & WEAK_VALUES) != 0;
1419 let mut to_mark: Vec<LuaValue> = Vec::new();
1420 let mut inner = self.inner.borrow_mut();
1421 for i in 0..inner.array.len() {
1422 let v = inner.array[i].clone();
1423 if matches!(v, LuaValue::Nil) { continue; }
1424 if weak_v && value_is_dead_collectable(&v, is_reachable) {
1425 inner.array[i] = LuaValue::Nil;
1426 continue;
1427 }
1428 if weak_v {
1429 if matches!(v, LuaValue::Str(_)) { to_mark.push(v); }
1430 }
1431 }
1432 let mut i = 0;
1433 while i < inner.node.len() {
1434 let v = inner.node[i].value.clone();
1435 if matches!(v, LuaValue::Nil) {
1436 i += 1;
1437 continue;
1438 }
1439 let k = inner.node[i].key.clone();
1440 if weak_v && value_is_dead_collectable(&v, is_reachable) {
1441 inner.clear_dead_hash_node(i);
1442 continue;
1443 }
1444 if weak_k && value_is_dead_collectable(&k, is_reachable) {
1445 inner.clear_dead_hash_node(i);
1446 continue;
1447 }
1448 if weak_k {
1449 if matches!(k, LuaValue::Str(_)) { to_mark.push(k); }
1450 }
1451 if weak_v {
1452 if matches!(v, LuaValue::Str(_)) { to_mark.push(v); }
1453 }
1454 i += 1;
1455 }
1456 to_mark
1457 }
1458
1459 pub fn ephemeron_values_to_mark(&self, is_reachable: &dyn Fn(usize) -> bool) -> Vec<LuaValue> {
1461 let mode = self.weak_mode.get();
1462 if (mode & WEAK_KEYS) == 0 || (mode & WEAK_VALUES) != 0 {
1463 return Vec::new();
1464 }
1465 let inner = self.inner.borrow();
1466 let mut out = Vec::new();
1467 for node in inner.node.iter() {
1468 if matches!(node.value, LuaValue::Nil) { continue; }
1469 if !value_is_dead_collectable(&node.key, is_reachable) {
1470 out.push(node.value.clone());
1471 }
1472 }
1473 for (i, v) in inner.array.iter().enumerate() {
1474 if matches!(v, LuaValue::Nil) { continue; }
1475 let k = LuaValue::Int((i + 1) as i64);
1476 if !value_is_dead_collectable(&k, is_reachable) {
1477 out.push(v.clone());
1478 }
1479 }
1480 out
1481 }
1482}
1483
1484fn value_is_dead_collectable(v: &LuaValue, is_reachable: &dyn Fn(usize) -> bool) -> bool {
1489 match v {
1490 LuaValue::Table(t) => !is_reachable(t.identity()),
1491 LuaValue::UserData(u) => !is_reachable(u.identity()),
1492 LuaValue::Thread(th) => !is_reachable(th.identity()),
1493 LuaValue::Function(c) => match c {
1494 LuaClosure::Lua(x) => !is_reachable(x.identity()),
1495 LuaClosure::C(x) => !is_reachable(x.identity()),
1496 LuaClosure::LightC(_) => false,
1497 },
1498 LuaValue::Str(_)
1499 | LuaValue::Nil
1500 | LuaValue::Bool(_)
1501 | LuaValue::Int(_)
1502 | LuaValue::Float(_)
1503 | LuaValue::LightUserData(_) => false,
1504 }
1505}
1506
1507fn extract_weak_mode(mt: &LuaTable) -> u8 {
1511 let inner = mt.inner.borrow();
1512 for node in inner.node.iter() {
1513 if let LuaValue::Str(ks) = &node.key {
1514 if ks.as_bytes() == b"__mode" {
1515 if let LuaValue::Str(vs) = &node.value {
1516 let bytes = vs.as_bytes();
1517 let mut mode = 0u8;
1518 if bytes.iter().any(|b| *b == b'k') { mode |= WEAK_KEYS; }
1519 if bytes.iter().any(|b| *b == b'v') { mode |= WEAK_VALUES; }
1520 return mode;
1521 }
1522 return 0;
1523 }
1524 }
1525 }
1526 0
1527}
1528
1529