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