1 //! An `Instance` contains all the runtime state used by execution of a
2 //! wasm module (except its callstack and register state). An
3 //! `InstanceHandle` is a reference-counting handle for an `Instance`.
4 
5 use crate::OpaqueRootScope;
6 use crate::code::ModuleWithCode;
7 use crate::module::ModuleRegistry;
8 use crate::prelude::*;
9 use crate::runtime::vm::const_expr::{ConstEvalContext, ConstExprEvaluator};
10 use crate::runtime::vm::export::{Export, ExportMemory};
11 use crate::runtime::vm::memory::{Memory, RuntimeMemoryCreator};
12 use crate::runtime::vm::table::{Table, TableElementType};
13 use crate::runtime::vm::vmcontext::{
14     VMBuiltinFunctionsArray, VMContext, VMFuncRef, VMFunctionImport, VMGlobalDefinition,
15     VMGlobalImport, VMMemoryDefinition, VMMemoryImport, VMOpaqueContext, VMStoreContext,
16     VMTableDefinition, VMTableImport, VMTagDefinition, VMTagImport,
17 };
18 use crate::runtime::vm::{
19     GcStore, HostResult, Imports, ModuleRuntimeInfo, SendSyncPtr, VMGlobalKind, VMStore,
20     VMStoreRawPtr, VmPtr, VmSafe, WasmFault, catch_unwind_and_record_trap,
21 };
22 use crate::store::{InstanceId, StoreId, StoreInstanceId, StoreOpaque, StoreResourceLimiter};
23 use crate::vm::VMWasmCallFunction;
24 use alloc::sync::Arc;
25 use core::alloc::Layout;
26 use core::marker;
27 use core::ops::Range;
28 use core::pin::Pin;
29 use core::ptr::NonNull;
30 #[cfg(target_has_atomic = "64")]
31 use core::sync::atomic::AtomicU64;
32 use core::{mem, ptr};
33 #[cfg(feature = "gc")]
34 use wasmtime_environ::ModuleInternedTypeIndex;
35 use wasmtime_environ::{
36     DataIndex, DefinedGlobalIndex, DefinedMemoryIndex, DefinedTableIndex, DefinedTagIndex,
37     ElemIndex, EntityIndex, EntityRef, EntitySet, FuncIndex, GlobalIndex, HostPtr, MemoryIndex,
38     Module, PrimaryMap, PtrSize, TableIndex, TableInitialValue, TableSegmentElements, TagIndex,
39     Trap, VMCONTEXT_MAGIC, VMOffsets, VMSharedTypeIndex, packed_option::ReservedValue,
40 };
41 #[cfg(feature = "wmemcheck")]
42 use wasmtime_wmemcheck::Wmemcheck;
43 
44 mod allocator;
45 pub use allocator::*;
46 
47 /// A type that roughly corresponds to a WebAssembly instance, but is also used
48 /// for host-defined objects.
49 ///
50 /// Instances here can correspond to actual instantiated modules, but it's also
51 /// used ubiquitously for host-defined objects. For example creating a
52 /// host-defined memory will have a `module` that looks like it exports a single
53 /// memory (and similar for other constructs).
54 ///
55 /// This `Instance` type is used as a ubiquitous representation for WebAssembly
56 /// values, whether or not they were created on the host or through a module.
57 ///
58 /// # Ownership
59 ///
60 /// This structure is never allocated directly but is instead managed through
61 /// an `InstanceHandle`. This structure ends with a `VMContext` which has a
62 /// dynamic size corresponding to the `module` configured within. Memory
63 /// management of this structure is always done through `InstanceHandle` as the
64 /// sole owner of an instance.
65 ///
66 /// # `Instance` and `Pin`
67 ///
68 /// Given an instance it is accompanied with trailing memory for the
69 /// appropriate `VMContext`. The `Instance` also holds `runtime_info` and other
70 /// information pointing to relevant offsets for the `VMContext`. Thus it is
71 /// not sound to mutate `runtime_info` after an instance is created. More
72 /// generally it's also not safe to "swap" instances, for example given two
73 /// `&mut Instance` values it's not sound to swap them as then the `VMContext`
74 /// values are inaccurately described.
75 ///
76 /// To encapsulate this guarantee this type is only ever mutated through Rust's
77 /// `Pin` type. All mutable methods here take `self: Pin<&mut Self>` which
78 /// statically disallows safe access to `&mut Instance`. There are assorted
79 /// "projection methods" to go from `Pin<&mut Instance>` to `&mut T` for
80 /// individual fields, for example `memories_mut`. More methods can be added as
81 /// necessary or methods may also be added to project multiple fields at a time
82 /// if necessary to. The precise ergonomics around getting mutable access to
83 /// some fields (but notably not `runtime_info`) is probably going to evolve
84 /// over time.
85 ///
86 /// Note that is is not sound to basically ever pass around `&mut Instance`.
87 /// That should always instead be `Pin<&mut Instance>`. All usage of
88 /// `Pin::new_unchecked` should be here in this module in just a few `unsafe`
89 /// locations and it's recommended to use existing helpers if you can.
90 #[repr(C)] // ensure that the vmctx field is last.
91 pub struct Instance {
92     /// The index, within a `Store` that this instance lives at
93     id: InstanceId,
94 
95     /// The runtime info (corresponding to the "compiled module"
96     /// abstraction in higher layers) that is retained and needed for
97     /// lazy initialization. This provides access to the underlying
98     /// Wasm module entities, the compiled JIT code, metadata about
99     /// functions, lazy initialization state, etc.
100     runtime_info: ModuleRuntimeInfo,
101 
102     /// WebAssembly linear memory data.
103     ///
104     /// This is where all runtime information about defined linear memories in
105     /// this module lives.
106     ///
107     /// The `MemoryAllocationIndex` was given from our `InstanceAllocator` and
108     /// must be given back to the instance allocator when deallocating each
109     /// memory.
110     memories: PrimaryMap<DefinedMemoryIndex, (MemoryAllocationIndex, Memory)>,
111 
112     /// WebAssembly table data.
113     ///
114     /// Like memories, this is only for defined tables in the module and
115     /// contains all of their runtime state.
116     ///
117     /// The `TableAllocationIndex` was given from our `InstanceAllocator` and
118     /// must be given back to the instance allocator when deallocating each
119     /// table.
120     tables: PrimaryMap<DefinedTableIndex, (TableAllocationIndex, Table)>,
121 
122     /// Stores the dropped passive element segments in this instantiation by index.
123     /// If the index is present in the set, the segment has been dropped.
124     dropped_elements: EntitySet<ElemIndex>,
125 
126     /// Stores the dropped passive data segments in this instantiation by index.
127     /// If the index is present in the set, the segment has been dropped.
128     dropped_data: EntitySet<DataIndex>,
129 
130     // TODO: add support for multiple memories; `wmemcheck_state` corresponds to
131     // memory 0.
132     #[cfg(feature = "wmemcheck")]
133     pub(crate) wmemcheck_state: Option<Wmemcheck>,
134 
135     /// Self-pointer back to `Store<T>` and its functions. Not present for
136     /// the brief time that `Store<T>` is itself being created. Also not
137     /// present for some niche uses that are disconnected from stores (e.g.
138     /// cross-thread stuff used in `InstancePre`)
139     store: Option<VMStoreRawPtr>,
140 
141     /// Additional context used by compiled wasm code. This field is last, and
142     /// represents a dynamically-sized array that extends beyond the nominal
143     /// end of the struct (similar to a flexible array member).
144     vmctx: OwnedVMContext<VMContext>,
145 }
146 
147 impl Instance {
148     /// Create an instance at the given memory address.
149     ///
150     /// It is assumed the memory was properly aligned and the
151     /// allocation was `alloc_size` in bytes.
152     ///
153     /// # Safety
154     ///
155     /// The `req.imports` field must be appropriately sized/typed for the module
156     /// being allocated according to `req.runtime_info`. Additionally `memories`
157     /// and `tables` must have been allocated for `req.store`.
158     unsafe fn new(
159         req: InstanceAllocationRequest,
160         memories: PrimaryMap<DefinedMemoryIndex, (MemoryAllocationIndex, Memory)>,
161         tables: PrimaryMap<DefinedTableIndex, (TableAllocationIndex, Table)>,
162         memory_tys: &PrimaryMap<MemoryIndex, wasmtime_environ::Memory>,
163     ) -> InstanceHandle {
164         let module = req.runtime_info.env_module();
165         let dropped_elements = EntitySet::with_capacity(module.passive_elements.len());
166         let dropped_data = EntitySet::with_capacity(module.passive_data_map.len());
167 
168         #[cfg(not(feature = "wmemcheck"))]
169         let _ = memory_tys;
170 
171         let mut ret = OwnedInstance::new(Instance {
172             id: req.id,
173             runtime_info: req.runtime_info.clone(),
174             memories,
175             tables,
176             dropped_elements,
177             dropped_data,
178             #[cfg(feature = "wmemcheck")]
179             wmemcheck_state: {
180                 if req.store.engine().config().wmemcheck {
181                     let size = memory_tys
182                         .iter()
183                         .next()
184                         .map(|memory| memory.1.limits.min)
185                         .unwrap_or(0)
186                         * 64
187                         * 1024;
188                     Some(Wmemcheck::new(size.try_into().unwrap()))
189                 } else {
190                     None
191                 }
192             },
193             store: None,
194             vmctx: OwnedVMContext::new(),
195         });
196 
197         // SAFETY: this vmctx was allocated with the same layout above, so it
198         // should be safe to initialize with the same values here.
199         unsafe {
200             ret.get_mut().initialize_vmctx(
201                 module,
202                 req.runtime_info.offsets(),
203                 req.store,
204                 req.imports,
205             );
206         }
207         ret
208     }
209 
210     /// Converts a raw `VMContext` pointer into a raw `Instance` pointer.
211     ///
212     /// # Safety
213     ///
214     /// Calling this function safely requires that `vmctx` is a valid allocation
215     /// of a `VMContext` which is derived from `Instance::new`. To safely
216     /// convert the returned raw pointer into a safe instance pointer callers
217     /// will also want to uphold guarantees such as:
218     ///
219     /// * The instance should not be in use elsewhere. For example you can't
220     ///   call this function twice, turn both raw pointers into safe pointers,
221     ///   and then use both safe pointers.
222     /// * There should be no other active mutable borrow to any other instance
223     ///   within the same store. Note that this is not restricted to just this
224     ///   instance pointer, but to all instances in a store. Instances can
225     ///   safely traverse to other instances "laterally" meaning that a mutable
226     ///   borrow on one is a mutable borrow on all.
227     /// * There should be no active mutable borrow on the store accessible at
228     ///   the same time the instance is turned. Instances are owned by a store
229     ///   and a store can be used to acquire a safe instance borrow at any time.
230     /// * The lifetime of the usage of the instance should not be unnecessarily
231     ///   long, for example it cannot be `'static`.
232     ///
233     /// Other entrypoints exist for converting from a raw `VMContext` to a safe
234     /// pointer such as:
235     ///
236     /// * `Instance::enter_host_from_wasm`
237     /// * `Instance::sibling_vmctx{,_mut}`
238     ///
239     /// These place further restrictions on the API signature to satisfy some of
240     /// the above points.
241     #[inline]
242     pub(crate) unsafe fn from_vmctx(vmctx: NonNull<VMContext>) -> NonNull<Instance> {
243         // SAFETY: The validity of `byte_sub` relies on `vmctx` being a valid
244         // allocation.
245         unsafe {
246             vmctx
247                 .byte_sub(mem::size_of::<Instance>())
248                 .cast::<Instance>()
249         }
250     }
251 
252     /// Encapsulated entrypoint to the host from WebAssembly, converting a raw
253     /// `VMContext` pointer into a `VMStore` plus an `InstanceId`.
254     ///
255     /// This is an entrypoint for core wasm entering back into the host. This is
256     /// used for both host functions and libcalls for example. This will execute
257     /// the closure `f` with safer Internal types than a raw `VMContext`
258     /// pointer.
259     ///
260     /// The closure `f` will have its errors caught, handled, and translated to
261     /// an ABI-safe return value to give back to wasm. This includes both normal
262     /// errors such as traps as well as panics.
263     ///
264     /// # Safety
265     ///
266     /// Callers must ensure that `vmctx` is a valid allocation and is safe to
267     /// dereference at this time. That's generally only true when it's a
268     /// wasm-provided value and this is the first function called after entering
269     /// the host. Otherwise this could unsafely alias the store with a mutable
270     /// pointer, for example.
271     #[inline]
272     pub(crate) unsafe fn enter_host_from_wasm<R>(
273         vmctx: NonNull<VMContext>,
274         f: impl FnOnce(&mut dyn VMStore, InstanceId) -> R,
275     ) -> R::Abi
276     where
277         R: HostResult,
278     {
279         // SAFETY: It's a contract of this function that `vmctx` is a valid
280         // pointer with neither the store nor other instances actively in use
281         // when this is called, so it should be safe to acquire a mutable
282         // pointer to the store and read the instance pointer.
283         let (store, instance) = unsafe {
284             let instance = Instance::from_vmctx(vmctx);
285             let instance = instance.as_ref();
286             let store = &mut *instance.store.unwrap().0.as_ptr();
287             (store, instance.id)
288         };
289 
290         // Thread the `store` and `instance` through panic/trap infrastructure
291         // back into `f`.
292         catch_unwind_and_record_trap(store, |store| f(store, instance))
293     }
294 
295     /// Converts the provided `*mut VMContext` to an `Instance` pointer and
296     /// returns it with the same lifetime as `self`.
297     ///
298     /// This function can be used when traversing a `VMContext` to reach into
299     /// the context needed for imports, optionally.
300     ///
301     /// # Safety
302     ///
303     /// This function requires that the `vmctx` pointer is indeed valid and
304     /// from the store that `self` belongs to.
305     #[inline]
306     unsafe fn sibling_vmctx<'a>(&'a self, vmctx: NonNull<VMContext>) -> &'a Instance {
307         // SAFETY: it's a contract of this function itself that `vmctx` is a
308         // valid pointer. Additionally with `self` being a
309         let ptr = unsafe { Instance::from_vmctx(vmctx) };
310         // SAFETY: it's a contract of this function itself that `vmctx` is a
311         // valid pointer to dereference. Additionally the lifetime of the return
312         // value is constrained to be the same as `self` to avoid granting a
313         // too-long lifetime.
314         unsafe { ptr.as_ref() }
315     }
316 
317     /// Same as [`Self::sibling_vmctx`], but the mutable version.
318     ///
319     /// # Safety
320     ///
321     /// This function requires that the `vmctx` pointer is indeed valid and
322     /// from the store that `self` belongs to.
323     ///
324     /// (Note that it is *NOT* required that `vmctx` be distinct from this
325     /// instance's `vmctx`, or that usage of the resulting instance is limited
326     /// to its defined items! The returned borrow has the same lifetime as
327     /// `self`, which means that this instance cannot be used while the
328     /// resulting instance is in use, and we therefore do not need to worry
329     /// about mutable aliasing between this instance and the resulting
330     /// instance.)
331     #[inline]
332     unsafe fn sibling_vmctx_mut<'a>(
333         self: Pin<&'a mut Self>,
334         vmctx: NonNull<VMContext>,
335     ) -> Pin<&'a mut Instance> {
336         // SAFETY: it's a contract of this function itself that `vmctx` is a
337         // valid pointer such that this pointer arithmetic is valid.
338         let mut ptr = unsafe { Instance::from_vmctx(vmctx) };
339 
340         // SAFETY: it's a contract of this function itself that `vmctx` is a
341         // valid pointer to dereference. Additionally the lifetime of the return
342         // value is constrained to be the same as `self` to avoid granting a
343         // too-long lifetime. Finally mutable references to an instance are
344         // always through `Pin`, so it's safe to create a pin-pointer here.
345         unsafe { Pin::new_unchecked(ptr.as_mut()) }
346     }
347 
348     pub(crate) fn env_module(&self) -> &Arc<wasmtime_environ::Module> {
349         self.runtime_info.env_module()
350     }
351 
352     pub(crate) fn runtime_module(&self) -> Option<&crate::Module> {
353         match &self.runtime_info {
354             ModuleRuntimeInfo::Module(m) => Some(m),
355             ModuleRuntimeInfo::Bare(_) => None,
356         }
357     }
358 
359     /// Translate a module-level interned type index into an engine-level
360     /// interned type index.
361     #[cfg(feature = "gc")]
362     pub fn engine_type_index(&self, module_index: ModuleInternedTypeIndex) -> VMSharedTypeIndex {
363         self.runtime_info.engine_type_index(module_index)
364     }
365 
366     #[inline]
367     fn offsets(&self) -> &VMOffsets<HostPtr> {
368         self.runtime_info.offsets()
369     }
370 
371     /// Return the indexed `VMFunctionImport`.
372     fn imported_function(&self, index: FuncIndex) -> &VMFunctionImport {
373         unsafe { self.vmctx_plus_offset(self.offsets().vmctx_vmfunction_import(index)) }
374     }
375 
376     /// Return the index `VMTableImport`.
377     fn imported_table(&self, index: TableIndex) -> &VMTableImport {
378         unsafe { self.vmctx_plus_offset(self.offsets().vmctx_vmtable_import(index)) }
379     }
380 
381     /// Return the indexed `VMMemoryImport`.
382     fn imported_memory(&self, index: MemoryIndex) -> &VMMemoryImport {
383         unsafe { self.vmctx_plus_offset(self.offsets().vmctx_vmmemory_import(index)) }
384     }
385 
386     /// Return the indexed `VMGlobalImport`.
387     fn imported_global(&self, index: GlobalIndex) -> &VMGlobalImport {
388         unsafe { self.vmctx_plus_offset(self.offsets().vmctx_vmglobal_import(index)) }
389     }
390 
391     /// Return the indexed `VMTagImport`.
392     fn imported_tag(&self, index: TagIndex) -> &VMTagImport {
393         unsafe { self.vmctx_plus_offset(self.offsets().vmctx_vmtag_import(index)) }
394     }
395 
396     /// Return the indexed `VMTagDefinition`.
397     pub fn tag_ptr(&self, index: DefinedTagIndex) -> NonNull<VMTagDefinition> {
398         unsafe { self.vmctx_plus_offset_raw(self.offsets().vmctx_vmtag_definition(index)) }
399     }
400 
401     /// Return the indexed `VMTableDefinition`.
402     pub fn table(&self, index: DefinedTableIndex) -> VMTableDefinition {
403         unsafe { self.table_ptr(index).read() }
404     }
405 
406     /// Updates the value for a defined table to `VMTableDefinition`.
407     fn set_table(self: Pin<&mut Self>, index: DefinedTableIndex, table: VMTableDefinition) {
408         unsafe {
409             self.table_ptr(index).write(table);
410         }
411     }
412 
413     /// Return a pointer to the `index`'th table within this instance, stored
414     /// in vmctx memory.
415     pub fn table_ptr(&self, index: DefinedTableIndex) -> NonNull<VMTableDefinition> {
416         unsafe { self.vmctx_plus_offset_raw(self.offsets().vmctx_vmtable_definition(index)) }
417     }
418 
419     /// Get a locally defined or imported memory.
420     pub(crate) fn get_memory(&self, index: MemoryIndex) -> VMMemoryDefinition {
421         if let Some(defined_index) = self.env_module().defined_memory_index(index) {
422             self.memory(defined_index)
423         } else {
424             let import = self.imported_memory(index);
425             unsafe { VMMemoryDefinition::load(import.from.as_ptr()) }
426         }
427     }
428 
429     /// Return the indexed `VMMemoryDefinition`, loaded from vmctx memory
430     /// already.
431     #[inline]
432     pub fn memory(&self, index: DefinedMemoryIndex) -> VMMemoryDefinition {
433         unsafe { VMMemoryDefinition::load(self.memory_ptr(index).as_ptr()) }
434     }
435 
436     /// Set the indexed memory to `VMMemoryDefinition`.
437     fn set_memory(&self, index: DefinedMemoryIndex, mem: VMMemoryDefinition) {
438         unsafe {
439             self.memory_ptr(index).write(mem);
440         }
441     }
442 
443     /// Return the address of the specified memory at `index` within this vmctx.
444     ///
445     /// Note that the returned pointer resides in wasm-code-readable-memory in
446     /// the vmctx.
447     #[inline]
448     pub fn memory_ptr(&self, index: DefinedMemoryIndex) -> NonNull<VMMemoryDefinition> {
449         unsafe {
450             self.vmctx_plus_offset::<VmPtr<_>>(self.offsets().vmctx_vmmemory_pointer(index))
451                 .as_non_null()
452         }
453     }
454 
455     /// Return the indexed `VMGlobalDefinition`.
456     pub fn global_ptr(&self, index: DefinedGlobalIndex) -> NonNull<VMGlobalDefinition> {
457         unsafe { self.vmctx_plus_offset_raw(self.offsets().vmctx_vmglobal_definition(index)) }
458     }
459 
460     /// Get all globals within this instance.
461     ///
462     /// Returns both import and defined globals.
463     ///
464     /// Returns both exported and non-exported globals.
465     ///
466     /// Gives access to the full globals space.
467     pub fn all_globals(
468         &self,
469         store: StoreId,
470     ) -> impl ExactSizeIterator<Item = (GlobalIndex, crate::Global)> + '_ {
471         let module = self.env_module();
472         module
473             .globals
474             .keys()
475             .map(move |idx| (idx, self.get_exported_global(store, idx)))
476     }
477 
478     /// Get the globals defined in this instance (not imported).
479     pub fn defined_globals(
480         &self,
481         store: StoreId,
482     ) -> impl ExactSizeIterator<Item = (DefinedGlobalIndex, crate::Global)> + '_ {
483         let module = self.env_module();
484         self.all_globals(store)
485             .skip(module.num_imported_globals)
486             .map(move |(i, global)| (module.defined_global_index(i).unwrap(), global))
487     }
488 
489     /// Return a pointer to the interrupts structure
490     #[inline]
491     pub fn vm_store_context(&self) -> NonNull<Option<VmPtr<VMStoreContext>>> {
492         unsafe { self.vmctx_plus_offset_raw(self.offsets().ptr.vmctx_store_context()) }
493     }
494 
495     /// Return a pointer to the global epoch counter used by this instance.
496     #[cfg(target_has_atomic = "64")]
497     pub fn epoch_ptr(self: Pin<&mut Self>) -> &mut Option<VmPtr<AtomicU64>> {
498         let offset = self.offsets().ptr.vmctx_epoch_ptr();
499         unsafe { self.vmctx_plus_offset_mut(offset) }
500     }
501 
502     /// Return a pointer to the collector-specific heap data.
503     pub fn gc_heap_data(self: Pin<&mut Self>) -> &mut Option<VmPtr<u8>> {
504         let offset = self.offsets().ptr.vmctx_gc_heap_data();
505         unsafe { self.vmctx_plus_offset_mut(offset) }
506     }
507 
508     pub(crate) unsafe fn set_store(mut self: Pin<&mut Self>, store: &StoreOpaque) {
509         // FIXME: should be more targeted ideally with the `unsafe` than just
510         // throwing this entire function in a large `unsafe` block.
511         unsafe {
512             *self.as_mut().store_mut() = Some(VMStoreRawPtr(store.traitobj()));
513             self.vm_store_context()
514                 .write(Some(store.vm_store_context_ptr().into()));
515             #[cfg(target_has_atomic = "64")]
516             {
517                 *self.as_mut().epoch_ptr() =
518                     Some(NonNull::from(store.engine().epoch_counter()).into());
519             }
520 
521             if self.env_module().needs_gc_heap {
522                 self.as_mut().set_gc_heap(Some(store.unwrap_gc_store()));
523             } else {
524                 self.as_mut().set_gc_heap(None);
525             }
526         }
527     }
528 
529     unsafe fn set_gc_heap(self: Pin<&mut Self>, gc_store: Option<&GcStore>) {
530         if let Some(gc_store) = gc_store {
531             *self.gc_heap_data() = Some(unsafe { gc_store.gc_heap.vmctx_gc_heap_data().into() });
532         } else {
533             *self.gc_heap_data() = None;
534         }
535     }
536 
537     /// Return a reference to the vmctx used by compiled wasm code.
538     #[inline]
539     pub fn vmctx(&self) -> NonNull<VMContext> {
540         InstanceLayout::vmctx(self)
541     }
542 
543     /// Lookup a function by index.
544     ///
545     /// # Panics
546     ///
547     /// Panics if `index` is out of bounds for this instance.
548     ///
549     /// # Safety
550     ///
551     /// The `store` parameter must be the store that owns this instance and the
552     /// functions that this instance can reference.
553     pub unsafe fn get_exported_func(
554         self: Pin<&mut Self>,
555         registry: &ModuleRegistry,
556         store: StoreId,
557         index: FuncIndex,
558     ) -> crate::Func {
559         let func_ref = self.get_func_ref(registry, index).unwrap();
560 
561         // SAFETY: the validity of `func_ref` is guaranteed by the validity of
562         // `self`, and the contract that `store` must own `func_ref` is a
563         // contract of this function itself.
564         unsafe { crate::Func::from_vm_func_ref(store, func_ref) }
565     }
566 
567     /// Lookup a table by index.
568     ///
569     /// # Panics
570     ///
571     /// Panics if `index` is out of bounds for this instance.
572     pub fn get_exported_table(&self, store: StoreId, index: TableIndex) -> crate::Table {
573         let (id, def_index) = if let Some(def_index) = self.env_module().defined_table_index(index)
574         {
575             (self.id, def_index)
576         } else {
577             let import = self.imported_table(index);
578             // SAFETY: validity of this `Instance` guarantees validity of the
579             // `vmctx` pointer being read here to find the transitive
580             // `InstanceId` that the import is associated with.
581             let id = unsafe { self.sibling_vmctx(import.vmctx.as_non_null()).id };
582             (id, import.index)
583         };
584         crate::Table::from_raw(StoreInstanceId::new(store, id), def_index)
585     }
586 
587     /// Lookup a memory by index.
588     ///
589     /// # Panics
590     ///
591     /// Panics if `index` is out-of-bounds for this instance.
592     #[cfg_attr(
593         not(feature = "threads"),
594         expect(unused_variables, reason = "definitions cfg'd to dummy",)
595     )]
596     pub fn get_exported_memory(&self, store: StoreId, index: MemoryIndex) -> ExportMemory {
597         let module = self.env_module();
598         if module.memories[index].shared {
599             let (memory, import) =
600                 if let Some(def_index) = self.env_module().defined_memory_index(index) {
601                     (
602                         self.get_defined_memory(def_index),
603                         self.get_defined_memory_vmimport(def_index),
604                     )
605                 } else {
606                     let import = self.imported_memory(index);
607                     // SAFETY: validity of this `Instance` guarantees validity of
608                     // the `vmctx` pointer being read here to find the transitive
609                     // `InstanceId` that the import is associated with.
610                     let instance = unsafe { self.sibling_vmctx(import.vmctx.as_non_null()) };
611                     (instance.get_defined_memory(import.index), *import)
612                 };
613 
614             let vm = memory.as_shared_memory().unwrap().clone();
615             ExportMemory::Shared(vm, import)
616         } else {
617             let (id, def_index) =
618                 if let Some(def_index) = self.env_module().defined_memory_index(index) {
619                     (self.id, def_index)
620                 } else {
621                     let import = self.imported_memory(index);
622                     // SAFETY: validity of this `Instance` guarantees validity of the
623                     // `vmctx` pointer being read here to find the transitive
624                     // `InstanceId` that the import is associated with.
625                     let id = unsafe { self.sibling_vmctx(import.vmctx.as_non_null()).id };
626                     (id, import.index)
627                 };
628 
629             // SAFETY: `from_raw` requires that the memory is not shared, which
630             // was tested above in this if/else.
631             let store_id = StoreInstanceId::new(store, id);
632             ExportMemory::Unshared(unsafe { crate::Memory::from_raw(store_id, def_index) })
633         }
634     }
635 
636     /// Lookup a global by index.
637     ///
638     /// # Panics
639     ///
640     /// Panics if `index` is out-of-bounds for this instance.
641     pub(crate) fn get_exported_global(&self, store: StoreId, index: GlobalIndex) -> crate::Global {
642         // If this global is defined within this instance, then that's easy to
643         // calculate the `Global`.
644         if let Some(def_index) = self.env_module().defined_global_index(index) {
645             let instance = StoreInstanceId::new(store, self.id);
646             return crate::Global::from_core(instance, def_index);
647         }
648 
649         // For imported globals it's required to match on the `kind` to
650         // determine which `Global` constructor is going to be invoked.
651         let import = self.imported_global(index);
652         match import.kind {
653             VMGlobalKind::Host(index) => crate::Global::from_host(store, index),
654             VMGlobalKind::Instance(index) => {
655                 // SAFETY: validity of this `&Instance` means validity of its
656                 // imports meaning we can read the id of the vmctx within.
657                 let id = unsafe {
658                     let vmctx = VMContext::from_opaque(import.vmctx.unwrap().as_non_null());
659                     self.sibling_vmctx(vmctx).id
660                 };
661                 crate::Global::from_core(StoreInstanceId::new(store, id), index)
662             }
663             #[cfg(feature = "component-model")]
664             VMGlobalKind::ComponentFlags(index) => {
665                 // SAFETY: validity of this `&Instance` means validity of its
666                 // imports meaning we can read the id of the vmctx within.
667                 let id = unsafe {
668                     let vmctx = super::component::VMComponentContext::from_opaque(
669                         import.vmctx.unwrap().as_non_null(),
670                     );
671                     super::component::ComponentInstance::vmctx_instance_id(vmctx)
672                 };
673                 crate::Global::from_component_flags(
674                     crate::component::store::StoreComponentInstanceId::new(store, id),
675                     index,
676                 )
677             }
678         }
679     }
680 
681     /// Get an exported tag by index.
682     ///
683     /// # Panics
684     ///
685     /// Panics if the index is out-of-range.
686     pub fn get_exported_tag(&self, store: StoreId, index: TagIndex) -> crate::Tag {
687         let (id, def_index) = if let Some(def_index) = self.env_module().defined_tag_index(index) {
688             (self.id, def_index)
689         } else {
690             let import = self.imported_tag(index);
691             // SAFETY: validity of this `Instance` guarantees validity of the
692             // `vmctx` pointer being read here to find the transitive
693             // `InstanceId` that the import is associated with.
694             let id = unsafe { self.sibling_vmctx(import.vmctx.as_non_null()).id };
695             (id, import.index)
696         };
697         crate::Tag::from_raw(StoreInstanceId::new(store, id), def_index)
698     }
699 
700     /// Return an iterator over the exports of this instance.
701     ///
702     /// Specifically, it provides access to the key-value pairs, where the keys
703     /// are export names, and the values are export declarations which can be
704     /// resolved `lookup_by_declaration`.
705     pub fn exports(&self) -> wasmparser::collections::index_map::Iter<'_, String, EntityIndex> {
706         self.env_module().exports.iter()
707     }
708 
709     /// Grow memory by the specified amount of pages.
710     ///
711     /// Returns `None` if memory can't be grown by the specified amount
712     /// of pages. Returns `Some` with the old size in bytes if growth was
713     /// successful.
714     pub(crate) async fn memory_grow(
715         mut self: Pin<&mut Self>,
716         limiter: Option<&mut StoreResourceLimiter<'_>>,
717         idx: DefinedMemoryIndex,
718         delta: u64,
719     ) -> Result<Option<usize>, Error> {
720         let memory = &mut self.as_mut().memories_mut()[idx].1;
721 
722         // SAFETY: this is the safe wrapper around `Memory::grow` because it
723         // automatically updates the `VMMemoryDefinition` in this instance after
724         // a growth operation below.
725         let result = unsafe { memory.grow(delta, limiter).await };
726 
727         // Update the state used by a non-shared Wasm memory in case the base
728         // pointer and/or the length changed.
729         if memory.as_shared_memory().is_none() {
730             let vmmemory = memory.vmmemory();
731             self.set_memory(idx, vmmemory);
732         }
733 
734         result
735     }
736 
737     pub(crate) fn table_element_type(
738         self: Pin<&mut Self>,
739         table_index: TableIndex,
740     ) -> TableElementType {
741         self.get_table(table_index).element_type()
742     }
743 
744     /// Performs a grow operation on the `table_index` specified using `grow`.
745     ///
746     /// This will handle updating the VMTableDefinition internally as necessary.
747     pub(crate) async fn defined_table_grow(
748         mut self: Pin<&mut Self>,
749         table_index: DefinedTableIndex,
750         grow: impl AsyncFnOnce(&mut Table) -> Result<Option<usize>>,
751     ) -> Result<Option<usize>> {
752         let table = self.as_mut().get_defined_table(table_index);
753         let result = grow(table).await;
754         let element = table.vmtable();
755         self.set_table(table_index, element);
756         result
757     }
758 
759     fn alloc_layout(offsets: &VMOffsets<HostPtr>) -> Layout {
760         let size = mem::size_of::<Self>()
761             .checked_add(usize::try_from(offsets.size_of_vmctx()).unwrap())
762             .unwrap();
763         let align = mem::align_of::<Self>();
764         Layout::from_size_align(size, align).unwrap()
765     }
766 
767     fn type_ids_array(&self) -> NonNull<VmPtr<VMSharedTypeIndex>> {
768         unsafe { self.vmctx_plus_offset_raw(self.offsets().ptr.vmctx_type_ids_array()) }
769     }
770 
771     /// Construct a new VMFuncRef for the given function
772     /// (imported or defined in this module) and store into the given
773     /// location. Used during lazy initialization.
774     ///
775     /// Note that our current lazy-init scheme actually calls this every
776     /// time the funcref pointer is fetched; this turns out to be better
777     /// than tracking state related to whether it's been initialized
778     /// before, because resetting that state on (re)instantiation is
779     /// very expensive if there are many funcrefs.
780     ///
781     /// # Safety
782     ///
783     /// This functions requires that `into` is a valid pointer.
784     unsafe fn construct_func_ref(
785         self: Pin<&mut Self>,
786         registry: &ModuleRegistry,
787         index: FuncIndex,
788         type_index: VMSharedTypeIndex,
789         into: *mut VMFuncRef,
790     ) {
791         let module_with_code = ModuleWithCode::in_store(
792             registry,
793             self.runtime_module()
794                 .expect("funcref impossible in fake module"),
795         )
796         .expect("module not in store");
797 
798         let func_ref = if let Some(def_index) = self.env_module().defined_func_index(index) {
799             VMFuncRef {
800                 array_call: NonNull::from(
801                     module_with_code
802                         .array_to_wasm_trampoline(def_index)
803                         .expect("should have array-to-Wasm trampoline for escaping function"),
804                 )
805                 .cast()
806                 .into(),
807                 wasm_call: Some(
808                     NonNull::new(
809                         module_with_code
810                             .finished_function(def_index)
811                             .as_ptr()
812                             .cast::<VMWasmCallFunction>()
813                             .cast_mut(),
814                     )
815                     .unwrap()
816                     .into(),
817                 ),
818                 vmctx: VMOpaqueContext::from_vmcontext(self.vmctx()).into(),
819                 type_index,
820             }
821         } else {
822             let import = self.imported_function(index);
823             VMFuncRef {
824                 array_call: import.array_call,
825                 wasm_call: Some(import.wasm_call),
826                 vmctx: import.vmctx,
827                 type_index,
828             }
829         };
830 
831         // SAFETY: the unsafe contract here is forwarded to callers of this
832         // function.
833         unsafe {
834             ptr::write(into, func_ref);
835         }
836     }
837 
838     /// Get a `&VMFuncRef` for the given `FuncIndex`.
839     ///
840     /// Returns `None` if the index is the reserved index value.
841     ///
842     /// The returned reference is a stable reference that won't be moved and can
843     /// be passed into JIT code.
844     pub(crate) fn get_func_ref(
845         self: Pin<&mut Self>,
846         registry: &ModuleRegistry,
847         index: FuncIndex,
848     ) -> Option<NonNull<VMFuncRef>> {
849         if index == FuncIndex::reserved_value() {
850             return None;
851         }
852 
853         // For now, we eagerly initialize an funcref struct in-place
854         // whenever asked for a reference to it. This is mostly
855         // fine, because in practice each funcref is unlikely to be
856         // requested more than a few times: once-ish for funcref
857         // tables used for call_indirect (the usual compilation
858         // strategy places each function in the table at most once),
859         // and once or a few times when fetching exports via API.
860         // Note that for any case driven by table accesses, the lazy
861         // table init behaves like a higher-level cache layer that
862         // protects this initialization from happening multiple
863         // times, via that particular table at least.
864         //
865         // When `ref.func` becomes more commonly used or if we
866         // otherwise see a use-case where this becomes a hotpath,
867         // we can reconsider by using some state to track
868         // "uninitialized" explicitly, for example by zeroing the
869         // funcrefs (perhaps together with other
870         // zeroed-at-instantiate-time state) or using a separate
871         // is-initialized bitmap.
872         //
873         // We arrived at this design because zeroing memory is
874         // expensive, so it's better for instantiation performance
875         // if we don't have to track "is-initialized" state at
876         // all!
877         let func = &self.env_module().functions[index];
878         let sig = func.signature.unwrap_engine_type_index();
879 
880         // SAFETY: the offset calculated here should be correct with
881         // `self.offsets`
882         let func_ref = unsafe {
883             self.vmctx_plus_offset_raw::<VMFuncRef>(self.offsets().vmctx_func_ref(func.func_ref))
884         };
885 
886         // SAFETY: the `func_ref` ptr should be valid as it's within our
887         // `VMContext` area.
888         unsafe {
889             self.construct_func_ref(registry, index, sig, func_ref.as_ptr());
890         }
891 
892         Some(func_ref)
893     }
894 
895     /// Get the passive elements segment at the given index.
896     ///
897     /// Returns an empty segment if the index is out of bounds or if the segment
898     /// has been dropped.
899     ///
900     /// The `storage` parameter should always be `None`; it is a bit of a hack
901     /// to work around lifetime issues.
902     pub(crate) fn passive_element_segment<'a>(
903         &self,
904         storage: &'a mut Option<(Arc<wasmtime_environ::Module>, TableSegmentElements)>,
905         elem_index: ElemIndex,
906     ) -> &'a TableSegmentElements {
907         debug_assert!(storage.is_none());
908         *storage = Some((
909             // TODO: this `clone()` shouldn't be necessary but is used for now to
910             // inform `rustc` that the lifetime of the elements here are
911             // disconnected from the lifetime of `self`.
912             self.env_module().clone(),
913             // NB: fall back to an expressions-based list of elements which
914             // doesn't have static type information (as opposed to
915             // `TableSegmentElements::Functions`) since we don't know what type
916             // is needed in the caller's context. Let the type be inferred by
917             // how they use the segment.
918             TableSegmentElements::Expressions(Box::new([])),
919         ));
920         let (module, empty) = storage.as_ref().unwrap();
921 
922         match module.passive_elements_map.get(&elem_index) {
923             Some(index) if !self.dropped_elements.contains(elem_index) => {
924                 &module.passive_elements[*index]
925             }
926             _ => empty,
927         }
928     }
929 
930     /// The `table.init` operation: initializes a portion of a table with a
931     /// passive element.
932     ///
933     /// # Errors
934     ///
935     /// Returns a `Trap` error when the range within the table is out of bounds
936     /// or the range within the passive element is out of bounds.
937     pub(crate) async fn table_init(
938         store: &mut StoreOpaque,
939         limiter: Option<&mut StoreResourceLimiter<'_>>,
940         instance: InstanceId,
941         table_index: TableIndex,
942         elem_index: ElemIndex,
943         dst: u64,
944         src: u64,
945         len: u64,
946     ) -> Result<()> {
947         let mut storage = None;
948         let elements = store
949             .instance(instance)
950             .passive_element_segment(&mut storage, elem_index);
951         let mut const_evaluator = ConstExprEvaluator::default();
952         Self::table_init_segment(
953             store,
954             limiter,
955             instance,
956             &mut const_evaluator,
957             table_index,
958             elements,
959             dst,
960             src,
961             len,
962         )
963         .await
964     }
965 
966     pub(crate) async fn table_init_segment(
967         store: &mut StoreOpaque,
968         mut limiter: Option<&mut StoreResourceLimiter<'_>>,
969         elements_instance_id: InstanceId,
970         const_evaluator: &mut ConstExprEvaluator,
971         table_index: TableIndex,
972         elements: &TableSegmentElements,
973         dst: u64,
974         src: u64,
975         len: u64,
976     ) -> Result<()> {
977         // https://webassembly.github.io/bulk-memory-operations/core/exec/instructions.html#exec-table-init
978 
979         let store_id = store.id();
980         let elements_instance = store.instance_mut(elements_instance_id);
981         let table = elements_instance.get_exported_table(store_id, table_index);
982         let table_size = table._size(store);
983 
984         // Perform a bounds check on the table being written to. This is done by
985         // ensuring that `dst + len <= table.size()` via checked arithmetic.
986         //
987         // Note that the bounds check for the element segment happens below when
988         // the original segment is sliced via `src` and `len`.
989         table_size
990             .checked_sub(dst)
991             .and_then(|i| i.checked_sub(len))
992             .ok_or(Trap::TableOutOfBounds)?;
993 
994         let src = usize::try_from(src).map_err(|_| Trap::TableOutOfBounds)?;
995         let len = usize::try_from(len).map_err(|_| Trap::TableOutOfBounds)?;
996 
997         let positions = dst..dst + u64::try_from(len).unwrap();
998         match elements {
999             TableSegmentElements::Functions(funcs) => {
1000                 let elements = funcs
1001                     .get(src..)
1002                     .and_then(|s| s.get(..len))
1003                     .ok_or(Trap::TableOutOfBounds)?;
1004                 for (i, func_idx) in positions.zip(elements) {
1005                     let (instance, registry) =
1006                         store.instance_and_module_registry_mut(elements_instance_id);
1007                     // SAFETY: the `store_id` passed to `get_exported_func` is
1008                     // indeed the store that owns the function.
1009                     let func = unsafe { instance.get_exported_func(registry, store_id, *func_idx) };
1010                     table.set_(store, i, func.into()).unwrap();
1011                 }
1012             }
1013             TableSegmentElements::Expressions(exprs) => {
1014                 let mut store = OpaqueRootScope::new(store);
1015                 let exprs = exprs
1016                     .get(src..)
1017                     .and_then(|s| s.get(..len))
1018                     .ok_or(Trap::TableOutOfBounds)?;
1019                 let mut context = ConstEvalContext::new(elements_instance_id);
1020                 for (i, expr) in positions.zip(exprs) {
1021                     let element = const_evaluator
1022                         .eval(&mut store, limiter.as_deref_mut(), &mut context, expr)
1023                         .await?;
1024                     table.set_(&mut store, i, element.ref_().unwrap()).unwrap();
1025                 }
1026             }
1027         }
1028 
1029         Ok(())
1030     }
1031 
1032     /// Drop an element.
1033     pub(crate) fn elem_drop(self: Pin<&mut Self>, elem_index: ElemIndex) {
1034         // https://webassembly.github.io/reference-types/core/exec/instructions.html#exec-elem-drop
1035 
1036         self.dropped_elements_mut().insert(elem_index);
1037 
1038         // Note that we don't check that we actually removed a segment because
1039         // dropping a non-passive segment is a no-op (not a trap).
1040     }
1041 
1042     /// Get a locally-defined memory.
1043     pub fn get_defined_memory_mut(self: Pin<&mut Self>, index: DefinedMemoryIndex) -> &mut Memory {
1044         &mut self.memories_mut()[index].1
1045     }
1046 
1047     /// Get a locally-defined memory.
1048     pub fn get_defined_memory(&self, index: DefinedMemoryIndex) -> &Memory {
1049         &self.memories[index].1
1050     }
1051 
1052     pub fn get_defined_memory_vmimport(&self, index: DefinedMemoryIndex) -> VMMemoryImport {
1053         crate::runtime::vm::VMMemoryImport {
1054             from: self.memory_ptr(index).into(),
1055             vmctx: self.vmctx().into(),
1056             index,
1057         }
1058     }
1059 
1060     /// Do a `memory.copy`
1061     ///
1062     /// # Errors
1063     ///
1064     /// Returns a `Trap` error when the source or destination ranges are out of
1065     /// bounds.
1066     pub(crate) fn memory_copy(
1067         self: Pin<&mut Self>,
1068         dst_index: MemoryIndex,
1069         dst: u64,
1070         src_index: MemoryIndex,
1071         src: u64,
1072         len: u64,
1073     ) -> Result<(), Trap> {
1074         // https://webassembly.github.io/reference-types/core/exec/instructions.html#exec-memory-copy
1075 
1076         let src_mem = self.get_memory(src_index);
1077         let dst_mem = self.get_memory(dst_index);
1078 
1079         let src = self.validate_inbounds(src_mem.current_length(), src, len)?;
1080         let dst = self.validate_inbounds(dst_mem.current_length(), dst, len)?;
1081         let len = usize::try_from(len).unwrap();
1082 
1083         // Bounds and casts are checked above, by this point we know that
1084         // everything is safe.
1085         unsafe {
1086             let dst = dst_mem.base.as_ptr().add(dst);
1087             let src = src_mem.base.as_ptr().add(src);
1088             // FIXME audit whether this is safe in the presence of shared memory
1089             // (https://github.com/bytecodealliance/wasmtime/issues/4203).
1090             ptr::copy(src, dst, len);
1091         }
1092 
1093         Ok(())
1094     }
1095 
1096     fn validate_inbounds(&self, max: usize, ptr: u64, len: u64) -> Result<usize, Trap> {
1097         let oob = || Trap::MemoryOutOfBounds;
1098         let end = ptr
1099             .checked_add(len)
1100             .and_then(|i| usize::try_from(i).ok())
1101             .ok_or_else(oob)?;
1102         if end > max {
1103             Err(oob())
1104         } else {
1105             Ok(ptr.try_into().unwrap())
1106         }
1107     }
1108 
1109     /// Perform the `memory.fill` operation on a locally defined memory.
1110     ///
1111     /// # Errors
1112     ///
1113     /// Returns a `Trap` error if the memory range is out of bounds.
1114     pub(crate) fn memory_fill(
1115         self: Pin<&mut Self>,
1116         memory_index: DefinedMemoryIndex,
1117         dst: u64,
1118         val: u8,
1119         len: u64,
1120     ) -> Result<(), Trap> {
1121         let memory_index = self.env_module().memory_index(memory_index);
1122         let memory = self.get_memory(memory_index);
1123         let dst = self.validate_inbounds(memory.current_length(), dst, len)?;
1124         let len = usize::try_from(len).unwrap();
1125 
1126         // Bounds and casts are checked above, by this point we know that
1127         // everything is safe.
1128         unsafe {
1129             let dst = memory.base.as_ptr().add(dst);
1130             // FIXME audit whether this is safe in the presence of shared memory
1131             // (https://github.com/bytecodealliance/wasmtime/issues/4203).
1132             ptr::write_bytes(dst, val, len);
1133         }
1134 
1135         Ok(())
1136     }
1137 
1138     /// Get the internal storage range of a particular Wasm data segment.
1139     pub(crate) fn wasm_data_range(&self, index: DataIndex) -> Range<u32> {
1140         match self.env_module().passive_data_map.get(&index) {
1141             Some(range) if !self.dropped_data.contains(index) => range.clone(),
1142             _ => 0..0,
1143         }
1144     }
1145 
1146     /// Given an internal storage range of a Wasm data segment (or subset of a
1147     /// Wasm data segment), get the data's raw bytes.
1148     pub(crate) fn wasm_data(&self, range: Range<u32>) -> &[u8] {
1149         let start = usize::try_from(range.start).unwrap();
1150         let end = usize::try_from(range.end).unwrap();
1151         &self.runtime_info.wasm_data()[start..end]
1152     }
1153 
1154     /// Performs the `memory.init` operation.
1155     ///
1156     /// # Errors
1157     ///
1158     /// Returns a `Trap` error if the destination range is out of this module's
1159     /// memory's bounds or if the source range is outside the data segment's
1160     /// bounds.
1161     pub(crate) fn memory_init(
1162         self: Pin<&mut Self>,
1163         memory_index: MemoryIndex,
1164         data_index: DataIndex,
1165         dst: u64,
1166         src: u32,
1167         len: u32,
1168     ) -> Result<(), Trap> {
1169         let range = self.wasm_data_range(data_index);
1170         self.memory_init_segment(memory_index, range, dst, src, len)
1171     }
1172 
1173     pub(crate) fn memory_init_segment(
1174         self: Pin<&mut Self>,
1175         memory_index: MemoryIndex,
1176         range: Range<u32>,
1177         dst: u64,
1178         src: u32,
1179         len: u32,
1180     ) -> Result<(), Trap> {
1181         // https://webassembly.github.io/bulk-memory-operations/core/exec/instructions.html#exec-memory-init
1182 
1183         let memory = self.get_memory(memory_index);
1184         let data = self.wasm_data(range);
1185         let dst = self.validate_inbounds(memory.current_length(), dst, len.into())?;
1186         let src = self.validate_inbounds(data.len(), src.into(), len.into())?;
1187         let len = len as usize;
1188 
1189         unsafe {
1190             let src_start = data.as_ptr().add(src);
1191             let dst_start = memory.base.as_ptr().add(dst);
1192             // FIXME audit whether this is safe in the presence of shared memory
1193             // (https://github.com/bytecodealliance/wasmtime/issues/4203).
1194             ptr::copy_nonoverlapping(src_start, dst_start, len);
1195         }
1196 
1197         Ok(())
1198     }
1199 
1200     /// Drop the given data segment, truncating its length to zero.
1201     pub(crate) fn data_drop(self: Pin<&mut Self>, data_index: DataIndex) {
1202         self.dropped_data_mut().insert(data_index);
1203 
1204         // Note that we don't check that we actually removed a segment because
1205         // dropping a non-passive segment is a no-op (not a trap).
1206     }
1207 
1208     /// Get a table by index regardless of whether it is locally-defined
1209     /// or an imported, foreign table. Ensure that the given range of
1210     /// elements in the table is lazily initialized.  We define this
1211     /// operation all-in-one for safety, to ensure the lazy-init
1212     /// happens.
1213     ///
1214     /// Takes an `Iterator` for the index-range to lazy-initialize,
1215     /// for flexibility. This can be a range, single item, or empty
1216     /// sequence, for example. The iterator should return indices in
1217     /// increasing order, so that the break-at-out-of-bounds behavior
1218     /// works correctly.
1219     pub(crate) fn get_table_with_lazy_init(
1220         self: Pin<&mut Self>,
1221         registry: &ModuleRegistry,
1222         table_index: TableIndex,
1223         range: impl Iterator<Item = u64>,
1224     ) -> &mut Table {
1225         let (idx, instance) = self.defined_table_index_and_instance(table_index);
1226         instance.get_defined_table_with_lazy_init(registry, idx, range)
1227     }
1228 
1229     /// Gets the raw runtime table data structure owned by this instance
1230     /// given the provided `idx`.
1231     ///
1232     /// The `range` specified is eagerly initialized for funcref tables.
1233     pub fn get_defined_table_with_lazy_init(
1234         mut self: Pin<&mut Self>,
1235         registry: &ModuleRegistry,
1236         idx: DefinedTableIndex,
1237         range: impl IntoIterator<Item = u64>,
1238     ) -> &mut Table {
1239         let elt_ty = self.tables[idx].1.element_type();
1240 
1241         if elt_ty == TableElementType::Func {
1242             for i in range {
1243                 match self.tables[idx].1.get_func_maybe_init(i) {
1244                     // Uninitialized table element.
1245                     Ok(None) => {}
1246                     // Initialized table element, move on to the next.
1247                     Ok(Some(_)) => continue,
1248                     // Out-of-bounds; caller will handle by likely
1249                     // throwing a trap. No work to do to lazy-init
1250                     // beyond the end.
1251                     Err(_) => break,
1252                 };
1253 
1254                 // The table element `i` is uninitialized and is now being
1255                 // initialized. This must imply that a `precompiled` list of
1256                 // function indices is available for this table. The precompiled
1257                 // list is extracted and then it is consulted with `i` to
1258                 // determine the function that is going to be initialized. Note
1259                 // that `i` may be outside the limits of the static
1260                 // initialization so it's a fallible `get` instead of an index.
1261                 let module = self.env_module();
1262                 let precomputed = match &module.table_initialization.initial_values[idx] {
1263                     TableInitialValue::Null { precomputed } => precomputed,
1264                     TableInitialValue::Expr(_) => unreachable!(),
1265                 };
1266                 // Panicking here helps catch bugs rather than silently truncating by accident.
1267                 let func_index = precomputed.get(usize::try_from(i).unwrap()).cloned();
1268                 let func_ref = func_index
1269                     .and_then(|func_index| self.as_mut().get_func_ref(registry, func_index));
1270                 self.as_mut().tables_mut()[idx]
1271                     .1
1272                     .set_func(i, func_ref)
1273                     .expect("Table type should match and index should be in-bounds");
1274             }
1275         }
1276 
1277         self.get_defined_table(idx)
1278     }
1279 
1280     /// Get a table by index regardless of whether it is locally-defined or an
1281     /// imported, foreign table.
1282     pub(crate) fn get_table(self: Pin<&mut Self>, table_index: TableIndex) -> &mut Table {
1283         let (idx, instance) = self.defined_table_index_and_instance(table_index);
1284         instance.get_defined_table(idx)
1285     }
1286 
1287     /// Get a locally-defined table.
1288     pub(crate) fn get_defined_table(self: Pin<&mut Self>, index: DefinedTableIndex) -> &mut Table {
1289         &mut self.tables_mut()[index].1
1290     }
1291 
1292     pub(crate) fn defined_table_index_and_instance<'a>(
1293         self: Pin<&'a mut Self>,
1294         index: TableIndex,
1295     ) -> (DefinedTableIndex, Pin<&'a mut Instance>) {
1296         if let Some(defined_table_index) = self.env_module().defined_table_index(index) {
1297             (defined_table_index, self)
1298         } else {
1299             let import = self.imported_table(index);
1300             let index = import.index;
1301             let vmctx = import.vmctx.as_non_null();
1302             // SAFETY: the validity of `self` means that the reachable instances
1303             // should also all be owned by the same store and fully initialized,
1304             // so it's safe to laterally move from a mutable borrow of this
1305             // instance to a mutable borrow of a sibling instance.
1306             let foreign_instance = unsafe { self.sibling_vmctx_mut(vmctx) };
1307             (index, foreign_instance)
1308         }
1309     }
1310 
1311     /// Initialize the VMContext data associated with this Instance.
1312     ///
1313     /// The `VMContext` memory is assumed to be uninitialized; any field
1314     /// that we need in a certain state will be explicitly written by this
1315     /// function.
1316     unsafe fn initialize_vmctx(
1317         mut self: Pin<&mut Self>,
1318         module: &Module,
1319         offsets: &VMOffsets<HostPtr>,
1320         store: &StoreOpaque,
1321         imports: Imports,
1322     ) {
1323         assert!(ptr::eq(module, self.env_module().as_ref()));
1324 
1325         // SAFETY: the type of the magic field is indeed `u32` and this function
1326         // is initializing its value.
1327         unsafe {
1328             self.vmctx_plus_offset_raw::<u32>(offsets.ptr.vmctx_magic())
1329                 .write(VMCONTEXT_MAGIC);
1330         }
1331 
1332         // SAFETY: it's up to the caller to provide a valid store pointer here.
1333         unsafe {
1334             self.as_mut().set_store(store);
1335         }
1336 
1337         // Initialize shared types
1338         //
1339         // SAFETY: validity of the vmctx means it should be safe to write to it
1340         // here.
1341         unsafe {
1342             let types = NonNull::from(self.runtime_info.type_ids());
1343             self.type_ids_array().write(types.cast().into());
1344         }
1345 
1346         // Initialize the built-in functions
1347         //
1348         // SAFETY: the type of the builtin functions field is indeed a pointer
1349         // and the pointer being filled in here, plus the vmctx is valid to
1350         // write to during initialization.
1351         unsafe {
1352             static BUILTINS: VMBuiltinFunctionsArray = VMBuiltinFunctionsArray::INIT;
1353             let ptr = BUILTINS.expose_provenance();
1354             self.vmctx_plus_offset_raw(offsets.ptr.vmctx_builtin_functions())
1355                 .write(VmPtr::from(ptr));
1356         }
1357 
1358         // Initialize the imports
1359         //
1360         // SAFETY: the vmctx is safe to initialize during this function and
1361         // validity of each item itself is a contract the caller must uphold.
1362         debug_assert_eq!(imports.functions.len(), module.num_imported_funcs);
1363         unsafe {
1364             ptr::copy_nonoverlapping(
1365                 imports.functions.as_ptr(),
1366                 self.vmctx_plus_offset_raw(offsets.vmctx_imported_functions_begin())
1367                     .as_ptr(),
1368                 imports.functions.len(),
1369             );
1370             debug_assert_eq!(imports.tables.len(), module.num_imported_tables);
1371             ptr::copy_nonoverlapping(
1372                 imports.tables.as_ptr(),
1373                 self.vmctx_plus_offset_raw(offsets.vmctx_imported_tables_begin())
1374                     .as_ptr(),
1375                 imports.tables.len(),
1376             );
1377             debug_assert_eq!(imports.memories.len(), module.num_imported_memories);
1378             ptr::copy_nonoverlapping(
1379                 imports.memories.as_ptr(),
1380                 self.vmctx_plus_offset_raw(offsets.vmctx_imported_memories_begin())
1381                     .as_ptr(),
1382                 imports.memories.len(),
1383             );
1384             debug_assert_eq!(imports.globals.len(), module.num_imported_globals);
1385             ptr::copy_nonoverlapping(
1386                 imports.globals.as_ptr(),
1387                 self.vmctx_plus_offset_raw(offsets.vmctx_imported_globals_begin())
1388                     .as_ptr(),
1389                 imports.globals.len(),
1390             );
1391             debug_assert_eq!(imports.tags.len(), module.num_imported_tags);
1392             ptr::copy_nonoverlapping(
1393                 imports.tags.as_ptr(),
1394                 self.vmctx_plus_offset_raw(offsets.vmctx_imported_tags_begin())
1395                     .as_ptr(),
1396                 imports.tags.len(),
1397             );
1398         }
1399 
1400         // N.B.: there is no need to initialize the funcrefs array because we
1401         // eagerly construct each element in it whenever asked for a reference
1402         // to that element. In other words, there is no state needed to track
1403         // the lazy-init, so we don't need to initialize any state now.
1404 
1405         // Initialize the defined tables
1406         //
1407         // SAFETY: it's safe to initialize these tables during initialization
1408         // here and the various types of pointers and such here should all be
1409         // valid.
1410         unsafe {
1411             let mut ptr = self.vmctx_plus_offset_raw(offsets.vmctx_tables_begin());
1412             let tables = self.as_mut().tables_mut();
1413             for i in 0..module.num_defined_tables() {
1414                 ptr.write(tables[DefinedTableIndex::new(i)].1.vmtable());
1415                 ptr = ptr.add(1);
1416             }
1417         }
1418 
1419         // Initialize the defined memories. This fills in both the
1420         // `defined_memories` table and the `owned_memories` table at the same
1421         // time. Entries in `defined_memories` hold a pointer to a definition
1422         // (all memories) whereas the `owned_memories` hold the actual
1423         // definitions of memories owned (not shared) in the module.
1424         //
1425         // SAFETY: it's safe to initialize these memories during initialization
1426         // here and the various types of pointers and such here should all be
1427         // valid.
1428         unsafe {
1429             let mut ptr = self.vmctx_plus_offset_raw(offsets.vmctx_memories_begin());
1430             let mut owned_ptr = self.vmctx_plus_offset_raw(offsets.vmctx_owned_memories_begin());
1431             let memories = self.as_mut().memories_mut();
1432             for i in 0..module.num_defined_memories() {
1433                 let defined_memory_index = DefinedMemoryIndex::new(i);
1434                 let memory_index = module.memory_index(defined_memory_index);
1435                 if module.memories[memory_index].shared {
1436                     let def_ptr = memories[defined_memory_index]
1437                         .1
1438                         .as_shared_memory()
1439                         .unwrap()
1440                         .vmmemory_ptr();
1441                     ptr.write(VmPtr::from(def_ptr));
1442                 } else {
1443                     owned_ptr.write(memories[defined_memory_index].1.vmmemory());
1444                     ptr.write(VmPtr::from(owned_ptr));
1445                     owned_ptr = owned_ptr.add(1);
1446                 }
1447                 ptr = ptr.add(1);
1448             }
1449         }
1450 
1451         // Zero-initialize the globals so that nothing is uninitialized memory
1452         // after this function returns. The globals are actually initialized
1453         // with their const expression initializers after the instance is fully
1454         // allocated.
1455         //
1456         // SAFETY: it's safe to initialize globals during initialization
1457         // here. Note that while the value being written is not valid for all
1458         // types of globals it's initializing the memory to zero instead of
1459         // being in an undefined state. So it's still unsafe to access globals
1460         // after this, but if it's read then it'd hopefully crash faster than
1461         // leaving this undefined.
1462         unsafe {
1463             for (index, _init) in module.global_initializers.iter() {
1464                 self.global_ptr(index).write(VMGlobalDefinition::new());
1465             }
1466         }
1467 
1468         // Initialize the defined tags
1469         //
1470         // SAFETY: it's safe to initialize these tags during initialization
1471         // here and the various types of pointers and such here should all be
1472         // valid.
1473         unsafe {
1474             let mut ptr = self.vmctx_plus_offset_raw(offsets.vmctx_tags_begin());
1475             for i in 0..module.num_defined_tags() {
1476                 let defined_index = DefinedTagIndex::new(i);
1477                 let tag_index = module.tag_index(defined_index);
1478                 let tag = module.tags[tag_index];
1479                 ptr.write(VMTagDefinition::new(
1480                     tag.signature.unwrap_engine_type_index(),
1481                 ));
1482                 ptr = ptr.add(1);
1483             }
1484         }
1485     }
1486 
1487     /// Attempts to convert from the host `addr` specified to a WebAssembly
1488     /// based address recorded in `WasmFault`.
1489     ///
1490     /// This method will check all linear memories that this instance contains
1491     /// to see if any of them contain `addr`. If one does then `Some` is
1492     /// returned with metadata about the wasm fault. Otherwise `None` is
1493     /// returned and `addr` doesn't belong to this instance.
1494     pub fn wasm_fault(&self, addr: usize) -> Option<WasmFault> {
1495         let mut fault = None;
1496         for (_, (_, memory)) in self.memories.iter() {
1497             let accessible = memory.wasm_accessible();
1498             if accessible.start <= addr && addr < accessible.end {
1499                 // All linear memories should be disjoint so assert that no
1500                 // prior fault has been found.
1501                 assert!(fault.is_none());
1502                 fault = Some(WasmFault {
1503                     memory_size: memory.byte_size(),
1504                     wasm_address: u64::try_from(addr - accessible.start).unwrap(),
1505                 });
1506             }
1507         }
1508         fault
1509     }
1510 
1511     /// Returns the id, within this instance's store, that it's assigned.
1512     pub fn id(&self) -> InstanceId {
1513         self.id
1514     }
1515 
1516     /// Get all memories within this instance.
1517     ///
1518     /// Returns both import and defined memories.
1519     ///
1520     /// Returns both exported and non-exported memories.
1521     ///
1522     /// Gives access to the full memories space.
1523     pub fn all_memories(
1524         &self,
1525         store: StoreId,
1526     ) -> impl ExactSizeIterator<Item = (MemoryIndex, ExportMemory)> + '_ {
1527         self.env_module()
1528             .memories
1529             .iter()
1530             .map(move |(i, _)| (i, self.get_exported_memory(store, i)))
1531     }
1532 
1533     /// Return the memories defined in this instance (not imported).
1534     pub fn defined_memories<'a>(
1535         &'a self,
1536         store: StoreId,
1537     ) -> impl ExactSizeIterator<Item = ExportMemory> + 'a {
1538         let num_imported = self.env_module().num_imported_memories;
1539         self.all_memories(store)
1540             .skip(num_imported)
1541             .map(|(_i, memory)| memory)
1542     }
1543 
1544     /// Lookup an item with the given index.
1545     ///
1546     /// # Panics
1547     ///
1548     /// Panics if `export` is not valid for this instance.
1549     ///
1550     /// # Safety
1551     ///
1552     /// This function requires that `store` is the correct store which owns this
1553     /// instance.
1554     pub unsafe fn get_export_by_index_mut(
1555         self: Pin<&mut Self>,
1556         registry: &ModuleRegistry,
1557         store: StoreId,
1558         export: EntityIndex,
1559     ) -> Export {
1560         match export {
1561             // SAFETY: the contract of `store` owning the this instance is a
1562             // safety requirement of this function itself.
1563             EntityIndex::Function(i) => {
1564                 Export::Function(unsafe { self.get_exported_func(registry, store, i) })
1565             }
1566             EntityIndex::Global(i) => Export::Global(self.get_exported_global(store, i)),
1567             EntityIndex::Table(i) => Export::Table(self.get_exported_table(store, i)),
1568             EntityIndex::Memory(i) => match self.get_exported_memory(store, i) {
1569                 ExportMemory::Unshared(m) => Export::Memory(m),
1570                 ExportMemory::Shared(m, i) => Export::SharedMemory(m, i),
1571             },
1572             EntityIndex::Tag(i) => Export::Tag(self.get_exported_tag(store, i)),
1573         }
1574     }
1575 
1576     fn store_mut(self: Pin<&mut Self>) -> &mut Option<VMStoreRawPtr> {
1577         // SAFETY: this is a pin-projection to get a mutable reference to an
1578         // internal field and is safe so long as the `&mut Self` temporarily
1579         // created is not overwritten, which it isn't here.
1580         unsafe { &mut self.get_unchecked_mut().store }
1581     }
1582 
1583     fn dropped_elements_mut(self: Pin<&mut Self>) -> &mut EntitySet<ElemIndex> {
1584         // SAFETY: see `store_mut` above.
1585         unsafe { &mut self.get_unchecked_mut().dropped_elements }
1586     }
1587 
1588     fn dropped_data_mut(self: Pin<&mut Self>) -> &mut EntitySet<DataIndex> {
1589         // SAFETY: see `store_mut` above.
1590         unsafe { &mut self.get_unchecked_mut().dropped_data }
1591     }
1592 
1593     fn memories_mut(
1594         self: Pin<&mut Self>,
1595     ) -> &mut PrimaryMap<DefinedMemoryIndex, (MemoryAllocationIndex, Memory)> {
1596         // SAFETY: see `store_mut` above.
1597         unsafe { &mut self.get_unchecked_mut().memories }
1598     }
1599 
1600     pub(crate) fn tables_mut(
1601         self: Pin<&mut Self>,
1602     ) -> &mut PrimaryMap<DefinedTableIndex, (TableAllocationIndex, Table)> {
1603         // SAFETY: see `store_mut` above.
1604         unsafe { &mut self.get_unchecked_mut().tables }
1605     }
1606 
1607     #[cfg(feature = "wmemcheck")]
1608     pub(super) fn wmemcheck_state_mut(self: Pin<&mut Self>) -> &mut Option<Wmemcheck> {
1609         // SAFETY: see `store_mut` above.
1610         unsafe { &mut self.get_unchecked_mut().wmemcheck_state }
1611     }
1612 }
1613 
1614 // SAFETY: `layout` should describe this accurately and `OwnedVMContext` is the
1615 // last field of `ComponentInstance`.
1616 unsafe impl InstanceLayout for Instance {
1617     const INIT_ZEROED: bool = false;
1618     type VMContext = VMContext;
1619 
1620     fn layout(&self) -> Layout {
1621         Self::alloc_layout(self.runtime_info.offsets())
1622     }
1623 
1624     fn owned_vmctx(&self) -> &OwnedVMContext<VMContext> {
1625         &self.vmctx
1626     }
1627 
1628     fn owned_vmctx_mut(&mut self) -> &mut OwnedVMContext<VMContext> {
1629         &mut self.vmctx
1630     }
1631 }
1632 
1633 pub type InstanceHandle = OwnedInstance<Instance>;
1634 
1635 /// A handle holding an `Instance` of a WebAssembly module.
1636 ///
1637 /// This structure is an owning handle of the `instance` contained internally.
1638 /// When this value goes out of scope it will deallocate the `Instance` and all
1639 /// memory associated with it.
1640 ///
1641 /// Note that this lives within a `StoreOpaque` on a list of instances that a
1642 /// store is keeping alive.
1643 #[derive(Debug)]
1644 #[repr(transparent)] // guarantee this is a zero-cost wrapper
1645 pub struct OwnedInstance<T: InstanceLayout> {
1646     /// The raw pointer to the instance that was allocated.
1647     ///
1648     /// Note that this is not equivalent to `Box<Instance>` because the
1649     /// allocation here has a `VMContext` trailing after it. Thus the custom
1650     /// destructor to invoke the `dealloc` function with the appropriate
1651     /// layout.
1652     instance: SendSyncPtr<T>,
1653     _marker: marker::PhantomData<Box<(T, OwnedVMContext<T::VMContext>)>>,
1654 }
1655 
1656 /// Structure that must be placed at the end of a type implementing
1657 /// `InstanceLayout`.
1658 #[repr(align(16))] // match the alignment of VMContext
1659 pub struct OwnedVMContext<T> {
1660     /// A pointer to the `vmctx` field at the end of the `structure`.
1661     ///
1662     /// If you're looking at this a reasonable question would be "why do we need
1663     /// a pointer to ourselves?" because after all the pointer's value is
1664     /// trivially derivable from any `&Instance` pointer. The rationale for this
1665     /// field's existence is subtle, but it's required for correctness. The
1666     /// short version is "this makes miri happy".
1667     ///
1668     /// The long version of why this field exists is that the rules that MIRI
1669     /// uses to ensure pointers are used correctly have various conditions on
1670     /// them depend on how pointers are used. More specifically if `*mut T` is
1671     /// derived from `&mut T`, then that invalidates all prior pointers drived
1672     /// from the `&mut T`. This means that while we liberally want to re-acquire
1673     /// a `*mut VMContext` throughout the implementation of `Instance` the
1674     /// trivial way, a function `fn vmctx(Pin<&mut Instance>) -> *mut VMContext`
1675     /// would effectively invalidate all prior `*mut VMContext` pointers
1676     /// acquired. The purpose of this field is to serve as a sort of
1677     /// source-of-truth for where `*mut VMContext` pointers come from.
1678     ///
1679     /// This field is initialized when the `Instance` is created with the
1680     /// original allocation's pointer. That means that the provenance of this
1681     /// pointer contains the entire allocation (both instance and `VMContext`).
1682     /// This provenance bit is then "carried through" where `fn vmctx` will base
1683     /// all returned pointers on this pointer itself. This provides the means of
1684     /// never invalidating this pointer throughout MIRI and additionally being
1685     /// able to still temporarily have `Pin<&mut Instance>` methods and such.
1686     ///
1687     /// It's important to note, though, that this is not here purely for MIRI.
1688     /// The careful construction of the `fn vmctx` method has ramifications on
1689     /// the LLVM IR generated, for example. A historical CVE on Wasmtime,
1690     /// GHSA-ch89-5g45-qwc7, was caused due to relying on undefined behavior. By
1691     /// deriving VMContext pointers from this pointer it specifically hints to
1692     /// LLVM that trickery is afoot and it properly informs `noalias` and such
1693     /// annotations and analysis. More-or-less this pointer is actually loaded
1694     /// in LLVM IR which helps defeat otherwise present aliasing optimizations,
1695     /// which we want, since writes to this should basically never be optimized
1696     /// out.
1697     ///
1698     /// As a final note it's worth pointing out that the machine code generated
1699     /// for accessing `fn vmctx` is still as one would expect. This member isn't
1700     /// actually ever loaded at runtime (or at least shouldn't be). Perhaps in
1701     /// the future if the memory consumption of this field is a problem we could
1702     /// shrink it slightly, but for now one extra pointer per wasm instance
1703     /// seems not too bad.
1704     vmctx_self_reference: SendSyncPtr<T>,
1705 
1706     /// This field ensures that going from `Pin<&mut T>` to `&mut T` is not a
1707     /// safe operation.
1708     _marker: core::marker::PhantomPinned,
1709 }
1710 
1711 impl<T> OwnedVMContext<T> {
1712     /// Creates a new blank vmctx to place at the end of an instance.
1713     pub fn new() -> OwnedVMContext<T> {
1714         OwnedVMContext {
1715             vmctx_self_reference: SendSyncPtr::new(NonNull::dangling()),
1716             _marker: core::marker::PhantomPinned,
1717         }
1718     }
1719 }
1720 
1721 /// Helper trait to plumb both core instances and component instances into
1722 /// `OwnedInstance` below.
1723 ///
1724 /// # Safety
1725 ///
1726 /// This trait requires `layout` to correctly describe `Self` and appropriately
1727 /// allocate space for `Self::VMContext` afterwards. Additionally the field
1728 /// returned by `owned_vmctx()` must be the last field in the structure.
1729 pub unsafe trait InstanceLayout {
1730     /// Whether or not to allocate this instance with `alloc_zeroed` or `alloc`.
1731     const INIT_ZEROED: bool;
1732 
1733     /// The trailing `VMContext` type at the end of this instance.
1734     type VMContext;
1735 
1736     /// The memory layout to use to allocate and deallocate this instance.
1737     fn layout(&self) -> Layout;
1738 
1739     fn owned_vmctx(&self) -> &OwnedVMContext<Self::VMContext>;
1740     fn owned_vmctx_mut(&mut self) -> &mut OwnedVMContext<Self::VMContext>;
1741 
1742     /// Returns the `vmctx_self_reference` set above.
1743     #[inline]
1744     fn vmctx(&self) -> NonNull<Self::VMContext> {
1745         // The definition of this method is subtle but intentional. The goal
1746         // here is that effectively this should return `&mut self.vmctx`, but
1747         // it's not quite so simple. Some more documentation is available on the
1748         // `vmctx_self_reference` field, but the general idea is that we're
1749         // creating a pointer to return with proper provenance. Provenance is
1750         // still in the works in Rust at the time of this writing but the load
1751         // of the `self.vmctx_self_reference` field is important here as it
1752         // affects how LLVM thinks about aliasing with respect to the returned
1753         // pointer.
1754         //
1755         // The intention of this method is to codegen to machine code as `&mut
1756         // self.vmctx`, however. While it doesn't show up like this in LLVM IR
1757         // (there's an actual load of the field) it does look like that by the
1758         // time the backend runs. (that's magic to me, the backend removing
1759         // loads...)
1760         let owned_vmctx = self.owned_vmctx();
1761         let owned_vmctx_raw = NonNull::from(owned_vmctx);
1762         // SAFETY: it's part of the contract of `InstanceLayout` and the usage
1763         // with `OwnedInstance` that this indeed points to the vmctx.
1764         let addr = unsafe { owned_vmctx_raw.add(1) };
1765         owned_vmctx
1766             .vmctx_self_reference
1767             .as_non_null()
1768             .with_addr(addr.addr())
1769     }
1770 
1771     /// Helper function to access various locations offset from our `*mut
1772     /// VMContext` object.
1773     ///
1774     /// Note that this method takes `&self` as an argument but returns
1775     /// `NonNull<T>` which is frequently used to mutate said memory. This is an
1776     /// intentional design decision where the safety of the modification of
1777     /// memory is placed as a burden onto the caller. The implementation of this
1778     /// method explicitly does not require `&mut self` to acquire mutable
1779     /// provenance to update the `VMContext` region. Instead all pointers into
1780     /// the `VMContext` area have provenance/permissions to write.
1781     ///
1782     /// Also note though that care must be taken to ensure that reads/writes of
1783     /// memory must only happen where appropriate, for example a non-atomic
1784     /// write (as most are) should never happen concurrently with another read
1785     /// or write. It's generally on the burden of the caller to adhere to this.
1786     ///
1787     /// Also of note is that most of the time the usage of this method falls
1788     /// into one of:
1789     ///
1790     /// * Something in the VMContext is being read or written. In that case use
1791     ///   `vmctx_plus_offset` or `vmctx_plus_offset_mut` if possible due to
1792     ///   that having a safer lifetime.
1793     ///
1794     /// * A pointer is being created to pass to other VM* data structures. In
1795     ///   that situation the lifetime of all VM data structures are typically
1796     ///   tied to the `Store<T>` which is what provides the guarantees around
1797     ///   concurrency/etc.
1798     ///
1799     /// There's quite a lot of unsafety riding on this method, especially
1800     /// related to the ascription `T` of the byte `offset`. It's hoped that in
1801     /// the future we're able to settle on an in theory safer design.
1802     ///
1803     /// # Safety
1804     ///
1805     /// This method is unsafe because the `offset` must be within bounds of the
1806     /// `VMContext` object trailing this instance. Additionally `T` must be a
1807     /// valid ascription of the value that resides at that location.
1808     unsafe fn vmctx_plus_offset_raw<T: VmSafe>(&self, offset: impl Into<u32>) -> NonNull<T> {
1809         // SAFETY: the safety requirements of `byte_add` are forwarded to this
1810         // method's caller.
1811         unsafe {
1812             self.vmctx()
1813                 .byte_add(usize::try_from(offset.into()).unwrap())
1814                 .cast()
1815         }
1816     }
1817 
1818     /// Helper above `vmctx_plus_offset_raw` which transfers the lifetime of
1819     /// `&self` to the returned reference `&T`.
1820     ///
1821     /// # Safety
1822     ///
1823     /// See the safety documentation of `vmctx_plus_offset_raw`.
1824     unsafe fn vmctx_plus_offset<T: VmSafe>(&self, offset: impl Into<u32>) -> &T {
1825         // SAFETY: this method has the same safety requirements as
1826         // `vmctx_plus_offset_raw`.
1827         unsafe { self.vmctx_plus_offset_raw(offset).as_ref() }
1828     }
1829 
1830     /// Helper above `vmctx_plus_offset_raw` which transfers the lifetime of
1831     /// `&mut self` to the returned reference `&mut T`.
1832     ///
1833     /// # Safety
1834     ///
1835     /// See the safety documentation of `vmctx_plus_offset_raw`.
1836     unsafe fn vmctx_plus_offset_mut<T: VmSafe>(
1837         self: Pin<&mut Self>,
1838         offset: impl Into<u32>,
1839     ) -> &mut T {
1840         // SAFETY: this method has the same safety requirements as
1841         // `vmctx_plus_offset_raw`.
1842         unsafe { self.vmctx_plus_offset_raw(offset).as_mut() }
1843     }
1844 }
1845 
1846 impl<T: InstanceLayout> OwnedInstance<T> {
1847     /// Allocates a new `OwnedInstance` and places `instance` inside of it.
1848     ///
1849     /// This will `instance`
1850     pub(super) fn new(mut instance: T) -> OwnedInstance<T> {
1851         let layout = instance.layout();
1852         debug_assert!(layout.size() >= size_of_val(&instance));
1853         debug_assert!(layout.align() >= align_of_val(&instance));
1854 
1855         // SAFETY: it's up to us to assert that `layout` has a non-zero size,
1856         // which is asserted here.
1857         let ptr = unsafe {
1858             assert!(layout.size() > 0);
1859             if T::INIT_ZEROED {
1860                 alloc::alloc::alloc_zeroed(layout)
1861             } else {
1862                 alloc::alloc::alloc(layout)
1863             }
1864         };
1865         if ptr.is_null() {
1866             alloc::alloc::handle_alloc_error(layout);
1867         }
1868         let instance_ptr = NonNull::new(ptr.cast::<T>()).unwrap();
1869 
1870         // SAFETY: it's part of the unsafe contract of `InstanceLayout` that the
1871         // `add` here is appropriate for the layout allocated.
1872         let vmctx_self_reference = unsafe { instance_ptr.add(1).cast() };
1873         instance.owned_vmctx_mut().vmctx_self_reference = vmctx_self_reference.into();
1874 
1875         // SAFETY: we allocated above and it's an unsafe contract of
1876         // `InstanceLayout` that the layout is suitable for writing the
1877         // instance.
1878         unsafe {
1879             instance_ptr.write(instance);
1880         }
1881 
1882         let ret = OwnedInstance {
1883             instance: SendSyncPtr::new(instance_ptr),
1884             _marker: marker::PhantomData,
1885         };
1886 
1887         // Double-check various vmctx calculations are correct.
1888         debug_assert_eq!(
1889             vmctx_self_reference.addr(),
1890             // SAFETY: `InstanceLayout` should guarantee it's safe to add 1 to
1891             // the last field to get a pointer to 1-byte-past-the-end of an
1892             // object, which should be valid.
1893             unsafe { NonNull::from(ret.get().owned_vmctx()).add(1).addr() }
1894         );
1895         debug_assert_eq!(vmctx_self_reference.addr(), ret.get().vmctx().addr());
1896 
1897         ret
1898     }
1899 
1900     /// Gets the raw underlying `&Instance` from this handle.
1901     pub fn get(&self) -> &T {
1902         // SAFETY: this is an owned instance handle that retains exclusive
1903         // ownership of the `Instance` inside. With `&self` given we know
1904         // this pointer is valid valid and the returned lifetime is connected
1905         // to `self` so that should also be valid.
1906         unsafe { self.instance.as_non_null().as_ref() }
1907     }
1908 
1909     /// Same as [`Self::get`] except for mutability.
1910     pub fn get_mut(&mut self) -> Pin<&mut T> {
1911         // SAFETY: The lifetime concerns here are the same as `get` above.
1912         // Otherwise `new_unchecked` is used here to uphold the contract that
1913         // instances are always pinned in memory.
1914         unsafe { Pin::new_unchecked(self.instance.as_non_null().as_mut()) }
1915     }
1916 }
1917 
1918 impl<T: InstanceLayout> Drop for OwnedInstance<T> {
1919     fn drop(&mut self) {
1920         unsafe {
1921             let layout = self.get().layout();
1922             ptr::drop_in_place(self.instance.as_ptr());
1923             alloc::alloc::dealloc(self.instance.as_ptr().cast(), layout);
1924         }
1925     }
1926 }
1927