1 use crate::linker::{Definition, DefinitionType}; 2 use crate::prelude::*; 3 use crate::runtime::vm::{ 4 self, Imports, ModuleRuntimeInfo, VMFuncRef, VMFunctionImport, VMGlobalImport, VMMemoryImport, 5 VMTableImport, VMTagImport, 6 }; 7 use crate::store::{AllocateInstanceKind, InstanceId, StoreInstanceId, StoreOpaque}; 8 use crate::types::matching; 9 use crate::{ 10 AsContextMut, Engine, Export, Extern, Func, Global, Memory, Module, ModuleExport, SharedMemory, 11 StoreContext, StoreContextMut, Table, Tag, TypedFunc, 12 }; 13 use alloc::sync::Arc; 14 use core::ptr::NonNull; 15 use wasmparser::WasmFeatures; 16 use wasmtime_environ::{ 17 EntityIndex, EntityType, FuncIndex, GlobalIndex, MemoryIndex, PrimaryMap, TableIndex, TagIndex, 18 TypeTrace, 19 }; 20 21 /// An instantiated WebAssembly module. 22 /// 23 /// This type represents the instantiation of a [`Module`]. Once instantiated 24 /// you can access the [`exports`](Instance::exports) which are of type 25 /// [`Extern`] and provide the ability to call functions, set globals, read 26 /// memory, etc. When interacting with any wasm code you'll want to make an 27 /// [`Instance`] to call any code or execute anything. 28 /// 29 /// Instances are owned by a [`Store`](crate::Store) which is passed in at 30 /// creation time. It's recommended to create instances with 31 /// [`Linker::instantiate`](crate::Linker::instantiate) or similar 32 /// [`Linker`](crate::Linker) methods, but a more low-level constructor is also 33 /// available as [`Instance::new`]. 34 #[derive(Copy, Clone, Debug)] 35 #[repr(C)] 36 pub struct Instance { 37 id: StoreInstanceId, 38 } 39 40 // Double-check that the C representation in `instance.h` matches our in-Rust 41 // representation here in terms of size/alignment/etc. 42 const _: () = { 43 #[repr(C)] 44 struct C(u64, usize); 45 assert!(core::mem::size_of::<C>() == core::mem::size_of::<Instance>()); 46 assert!(core::mem::align_of::<C>() == core::mem::align_of::<Instance>()); 47 assert!(core::mem::offset_of!(Instance, id) == 0); 48 }; 49 50 impl Instance { 51 /// Creates a new [`Instance`] from the previously compiled [`Module`] and 52 /// list of `imports` specified. 53 /// 54 /// This method instantiates the `module` provided with the `imports`, 55 /// following the procedure in the [core specification][inst] to 56 /// instantiate. Instantiation can fail for a number of reasons (many 57 /// specified below), but if successful the `start` function will be 58 /// automatically run (if specified in the `module`) and then the 59 /// [`Instance`] will be returned. 60 /// 61 /// Per the WebAssembly spec, instantiation includes running the module's 62 /// start function, if it has one (not to be confused with the `_start` 63 /// function, which is not run). 64 /// 65 /// Note that this is a low-level function that just performs an 66 /// instantiation. See the [`Linker`](crate::Linker) struct for an API which 67 /// provides a convenient way to link imports and provides automatic Command 68 /// and Reactor behavior. 69 /// 70 /// ## Providing Imports 71 /// 72 /// The entries in the list of `imports` are intended to correspond 1:1 73 /// with the list of imports returned by [`Module::imports`]. Before 74 /// calling [`Instance::new`] you'll want to inspect the return value of 75 /// [`Module::imports`] and, for each import type, create an [`Extern`] 76 /// which corresponds to that type. These [`Extern`] values are all then 77 /// collected into a list and passed to this function. 78 /// 79 /// Note that this function is intentionally relatively low level. For an 80 /// easier time passing imports by doing name-based resolution it's 81 /// recommended to instead use the [`Linker`](crate::Linker) type. 82 /// 83 /// ## Errors 84 /// 85 /// This function can fail for a number of reasons, including, but not 86 /// limited to: 87 /// 88 /// * The number of `imports` provided doesn't match the number of imports 89 /// returned by the `module`'s [`Module::imports`] method. 90 /// * The type of any [`Extern`] doesn't match the corresponding 91 /// [`ExternType`] entry that it maps to. 92 /// * The `start` function in the instance, if present, traps. 93 /// * Module/instance resource limits are exceeded. 94 /// 95 /// When instantiation fails it's recommended to inspect the return value to 96 /// see why it failed, or bubble it upwards. If you'd like to specifically 97 /// check for trap errors, you can use `error.downcast::<Trap>()`. For more 98 /// about error handling see the [`Trap`] documentation. 99 /// 100 /// [`Trap`]: crate::Trap 101 /// 102 /// # Panics 103 /// 104 /// This function will panic if called with a store associated with a 105 /// [`asynchronous config`](crate::Config::async_support). This function 106 /// will also panic if any [`Extern`] supplied is not owned by `store`. 107 /// 108 /// [inst]: https://webassembly.github.io/spec/core/exec/modules.html#exec-instantiation 109 /// [`ExternType`]: crate::ExternType 110 pub fn new( 111 mut store: impl AsContextMut, 112 module: &Module, 113 imports: &[Extern], 114 ) -> Result<Instance> { 115 let mut store = store.as_context_mut(); 116 let imports = Instance::typecheck_externs(store.0, module, imports)?; 117 // Note that the unsafety here should be satisfied by the call to 118 // `typecheck_externs` above which satisfies the condition that all 119 // the imports are valid for this module. 120 unsafe { Instance::new_started(&mut store, module, imports.as_ref()) } 121 } 122 123 /// Same as [`Instance::new`], except for usage in [asynchronous stores]. 124 /// 125 /// For more details about this function see the documentation on 126 /// [`Instance::new`]. The only difference between these two methods is that 127 /// this one will asynchronously invoke the wasm start function in case it 128 /// calls any imported function which is an asynchronous host function (e.g. 129 /// created with [`Func::new_async`](crate::Func::new_async). 130 /// 131 /// # Panics 132 /// 133 /// This function will panic if called with a store associated with a 134 /// [`synchronous config`](crate::Config::new). This is only compatible with 135 /// stores associated with an [`asynchronous 136 /// config`](crate::Config::async_support). 137 /// 138 /// This function will also panic, like [`Instance::new`], if any [`Extern`] 139 /// specified does not belong to `store`. 140 #[cfg(feature = "async")] 141 pub async fn new_async( 142 mut store: impl AsContextMut<Data: Send>, 143 module: &Module, 144 imports: &[Extern], 145 ) -> Result<Instance> { 146 let mut store = store.as_context_mut(); 147 let imports = Instance::typecheck_externs(store.0, module, imports)?; 148 // See `new` for notes on this unsafety 149 unsafe { Instance::new_started_async(&mut store, module, imports.as_ref()).await } 150 } 151 152 fn typecheck_externs( 153 store: &mut StoreOpaque, 154 module: &Module, 155 imports: &[Extern], 156 ) -> Result<OwnedImports> { 157 for import in imports { 158 if !import.comes_from_same_store(store) { 159 bail!("cross-`Store` instantiation is not currently supported"); 160 } 161 } 162 163 typecheck(module, imports, |cx, ty, item| { 164 let item = DefinitionType::from(store, item); 165 cx.definition(ty, &item) 166 })?; 167 168 // When pushing functions into `OwnedImports` it's required that their 169 // `wasm_call` fields are all filled out. This `module` is guaranteed 170 // to have any trampolines necessary for functions so register the 171 // module with the store and then attempt to fill out any outstanding 172 // holes. 173 // 174 // Note that under normal operation this shouldn't do much as the list 175 // of funcs-with-holes should generally be empty. As a result the 176 // process of filling this out is not super optimized at this point. 177 store.modules_mut().register_module(module); 178 let (funcrefs, modules) = store.func_refs_and_modules(); 179 funcrefs.fill(modules); 180 181 let mut owned_imports = OwnedImports::new(module); 182 for import in imports { 183 owned_imports.push(import, store); 184 } 185 Ok(owned_imports) 186 } 187 188 /// Internal function to create an instance and run the start function. 189 /// 190 /// This function's unsafety is the same as `Instance::new_raw`. 191 pub(crate) unsafe fn new_started<T>( 192 store: &mut StoreContextMut<'_, T>, 193 module: &Module, 194 imports: Imports<'_>, 195 ) -> Result<Instance> { 196 assert!( 197 !store.0.async_support(), 198 "must use async instantiation when async support is enabled", 199 ); 200 Self::new_started_impl(store, module, imports) 201 } 202 203 /// Internal function to create an instance and run the start function. 204 /// 205 /// ONLY CALL THIS IF YOU HAVE ALREADY CHECKED FOR ASYNCNESS AND HANDLED 206 /// THE FIBER NONSENSE 207 pub(crate) unsafe fn new_started_impl<T>( 208 store: &mut StoreContextMut<'_, T>, 209 module: &Module, 210 imports: Imports<'_>, 211 ) -> Result<Instance> { 212 let (instance, start) = Instance::new_raw(store.0, module, imports)?; 213 if let Some(start) = start { 214 instance.start_raw(store, start)?; 215 } 216 Ok(instance) 217 } 218 219 /// Internal function to create an instance and run the start function. 220 /// 221 /// This function's unsafety is the same as `Instance::new_raw`. 222 #[cfg(feature = "async")] 223 async unsafe fn new_started_async<T>( 224 store: &mut StoreContextMut<'_, T>, 225 module: &Module, 226 imports: Imports<'_>, 227 ) -> Result<Instance> 228 where 229 T: Send + 'static, 230 { 231 assert!( 232 store.0.async_support(), 233 "must use sync instantiation when async support is disabled", 234 ); 235 236 store 237 .on_fiber(|store| Self::new_started_impl(store, module, imports)) 238 .await? 239 } 240 241 /// Internal function to create an instance which doesn't have its `start` 242 /// function run yet. 243 /// 244 /// This is not intended to be exposed from Wasmtime, it's intended to 245 /// refactor out common code from `new_started` and `new_started_async`. 246 /// 247 /// Note that this step needs to be run on a fiber in async mode even 248 /// though it doesn't do any blocking work because an async resource 249 /// limiter may need to yield. 250 /// 251 /// # Unsafety 252 /// 253 /// This method is unsafe because it does not type-check the `imports` 254 /// provided. The `imports` provided must be suitable for the module 255 /// provided as well. 256 unsafe fn new_raw( 257 store: &mut StoreOpaque, 258 module: &Module, 259 imports: Imports<'_>, 260 ) -> Result<(Instance, Option<FuncIndex>)> { 261 if !Engine::same(store.engine(), module.engine()) { 262 bail!("cross-`Engine` instantiation is not currently supported"); 263 } 264 store.bump_resource_counts(module)?; 265 266 // Allocate the GC heap, if necessary. 267 if module.env_module().needs_gc_heap { 268 let _ = store.gc_store_mut()?; 269 } 270 271 let compiled_module = module.compiled_module(); 272 273 // Register the module just before instantiation to ensure we keep the module 274 // properly referenced while in use by the store. 275 let module_id = store.modules_mut().register_module(module); 276 277 // The first thing we do is issue an instance allocation request 278 // to the instance allocator. This, on success, will give us an 279 // instance handle. 280 let id = store.allocate_instance( 281 AllocateInstanceKind::Module(module_id), 282 &ModuleRuntimeInfo::Module(module.clone()), 283 imports, 284 )?; 285 286 // Additionally, before we start doing fallible instantiation, we 287 // do one more step which is to insert an `InstanceData` 288 // corresponding to this instance. This `InstanceData` can be used 289 // via `Caller::get_export` if our instance's state "leaks" into 290 // other instances, even if we don't return successfully from this 291 // function. 292 // 293 // We don't actually load all exports from the instance at this 294 // time, instead preferring to lazily load them as they're demanded. 295 // For module/instance exports, though, those aren't actually 296 // stored in the instance handle so we need to immediately handle 297 // those here. 298 let instance = Instance::from_wasmtime(id, store); 299 300 // Now that we've recorded all information we need to about this 301 // instance within a `Store` we can start performing fallible 302 // initialization. Note that we still defer the `start` function to 303 // later since that may need to run asynchronously. 304 // 305 // If this returns an error (or if the start function traps) then 306 // any other initialization which may have succeeded which placed 307 // items from this instance into other instances should be ok when 308 // those items are loaded and run we'll have all the metadata to 309 // look at them. 310 let bulk_memory = store 311 .engine() 312 .features() 313 .contains(WasmFeatures::BULK_MEMORY); 314 315 vm::initialize_instance(store, id, compiled_module.module(), bulk_memory)?; 316 317 Ok((instance, compiled_module.module().start_func)) 318 } 319 320 pub(crate) fn from_wasmtime(id: InstanceId, store: &mut StoreOpaque) -> Instance { 321 Instance { 322 id: StoreInstanceId::new(store.id(), id), 323 } 324 } 325 326 fn start_raw<T>(&self, store: &mut StoreContextMut<'_, T>, start: FuncIndex) -> Result<()> { 327 // If a start function is present, invoke it. Make sure we use all the 328 // trap-handling configuration in `store` as well. 329 let instance = self.id.get_mut(store.0); 330 let f = instance.get_exported_func(start); 331 let caller_vmctx = instance.vmctx(); 332 unsafe { 333 super::func::invoke_wasm_and_catch_traps(store, |_default_caller, vm| { 334 f.func_ref 335 .as_ref() 336 .array_call(vm, caller_vmctx, NonNull::from(&mut [])) 337 })?; 338 } 339 Ok(()) 340 } 341 342 /// Get this instance's module. 343 pub fn module<'a, T: 'static>(&self, store: impl Into<StoreContext<'a, T>>) -> &'a Module { 344 self._module(store.into().0) 345 } 346 347 fn _module<'a>(&self, store: &'a StoreOpaque) -> &'a Module { 348 store.module_for_instance(self.id).unwrap() 349 } 350 351 /// Returns the list of exported items from this [`Instance`]. 352 /// 353 /// # Panics 354 /// 355 /// Panics if `store` does not own this instance. 356 pub fn exports<'a, T: 'static>( 357 &'a self, 358 store: impl Into<StoreContextMut<'a, T>>, 359 ) -> impl ExactSizeIterator<Item = Export<'a>> + 'a { 360 self._exports(store.into().0) 361 } 362 363 fn _exports<'a>( 364 &'a self, 365 store: &'a mut StoreOpaque, 366 ) -> impl ExactSizeIterator<Item = Export<'a>> + 'a { 367 store[self.id] 368 .env_module() 369 .exports 370 .iter() 371 .map(|(name, entity)| Export::new(name, self._get_export(store, *entity))) 372 } 373 374 /// Looks up an exported [`Extern`] value by name. 375 /// 376 /// This method will search the module for an export named `name` and return 377 /// the value, if found. 378 /// 379 /// Returns `None` if there was no export named `name`. 380 /// 381 /// # Panics 382 /// 383 /// Panics if `store` does not own this instance. 384 /// 385 /// # Why does `get_export` take a mutable context? 386 /// 387 /// This method requires a mutable context because an instance's exports are 388 /// lazily populated, and we cache them as they are accessed. This makes 389 /// instantiating a module faster, but also means this method requires a 390 /// mutable context. 391 pub fn get_export(&self, mut store: impl AsContextMut, name: &str) -> Option<Extern> { 392 let store = store.as_context_mut().0; 393 let entity = *store[self.id].env_module().exports.get(name)?; 394 Some(self._get_export(store, entity)) 395 } 396 397 /// Looks up an exported [`Extern`] value by a [`ModuleExport`] value. 398 /// 399 /// This is similar to [`Instance::get_export`] but uses a [`ModuleExport`] value to avoid 400 /// string lookups where possible. [`ModuleExport`]s can be obtained by calling 401 /// [`Module::get_export_index`] on the [`Module`] that this instance was instantiated with. 402 /// 403 /// This method will search the module for an export with a matching entity index and return 404 /// the value, if found. 405 /// 406 /// Returns `None` if there was no export with a matching entity index. 407 /// # Panics 408 /// 409 /// Panics if `store` does not own this instance. 410 pub fn get_module_export( 411 &self, 412 mut store: impl AsContextMut, 413 export: &ModuleExport, 414 ) -> Option<Extern> { 415 let store = store.as_context_mut().0; 416 417 // Verify the `ModuleExport` matches the module used in this instance. 418 if self._module(store).id() != export.module { 419 return None; 420 } 421 422 Some(self._get_export(store, export.entity)) 423 } 424 425 fn _get_export(&self, store: &StoreOpaque, entity: EntityIndex) -> Extern { 426 let export = store[self.id].get_export_by_index(entity); 427 unsafe { Extern::from_wasmtime_export(export, store) } 428 } 429 430 /// Looks up an exported [`Func`] value by name. 431 /// 432 /// Returns `None` if there was no export named `name`, or if there was but 433 /// it wasn't a function. 434 /// 435 /// # Panics 436 /// 437 /// Panics if `store` does not own this instance. 438 pub fn get_func(&self, store: impl AsContextMut, name: &str) -> Option<Func> { 439 self.get_export(store, name)?.into_func() 440 } 441 442 /// Looks up an exported [`Func`] value by name and with its type. 443 /// 444 /// This function is a convenience wrapper over [`Instance::get_func`] and 445 /// [`Func::typed`]. For more information see the linked documentation. 446 /// 447 /// Returns an error if `name` isn't a function export or if the export's 448 /// type did not match `Params` or `Results` 449 /// 450 /// # Panics 451 /// 452 /// Panics if `store` does not own this instance. 453 pub fn get_typed_func<Params, Results>( 454 &self, 455 mut store: impl AsContextMut, 456 name: &str, 457 ) -> Result<TypedFunc<Params, Results>> 458 where 459 Params: crate::WasmParams, 460 Results: crate::WasmResults, 461 { 462 let f = self 463 .get_export(store.as_context_mut(), name) 464 .and_then(|f| f.into_func()) 465 .ok_or_else(|| anyhow!("failed to find function export `{}`", name))?; 466 Ok(f.typed::<Params, Results>(store) 467 .with_context(|| format!("failed to convert function `{name}` to given type"))?) 468 } 469 470 /// Looks up an exported [`Table`] value by name. 471 /// 472 /// Returns `None` if there was no export named `name`, or if there was but 473 /// it wasn't a table. 474 /// 475 /// # Panics 476 /// 477 /// Panics if `store` does not own this instance. 478 pub fn get_table(&self, store: impl AsContextMut, name: &str) -> Option<Table> { 479 self.get_export(store, name)?.into_table() 480 } 481 482 /// Looks up an exported [`Memory`] value by name. 483 /// 484 /// Returns `None` if there was no export named `name`, or if there was but 485 /// it wasn't a memory. 486 /// 487 /// # Panics 488 /// 489 /// Panics if `store` does not own this instance. 490 pub fn get_memory(&self, store: impl AsContextMut, name: &str) -> Option<Memory> { 491 self.get_export(store, name)?.into_memory() 492 } 493 494 /// Looks up an exported [`SharedMemory`] value by name. 495 /// 496 /// Returns `None` if there was no export named `name`, or if there was but 497 /// it wasn't a shared memory. 498 /// 499 /// # Panics 500 /// 501 /// Panics if `store` does not own this instance. 502 pub fn get_shared_memory( 503 &self, 504 mut store: impl AsContextMut, 505 name: &str, 506 ) -> Option<SharedMemory> { 507 let mut store = store.as_context_mut(); 508 self.get_export(&mut store, name)?.into_shared_memory() 509 } 510 511 /// Looks up an exported [`Global`] value by name. 512 /// 513 /// Returns `None` if there was no export named `name`, or if there was but 514 /// it wasn't a global. 515 /// 516 /// # Panics 517 /// 518 /// Panics if `store` does not own this instance. 519 pub fn get_global(&self, store: impl AsContextMut, name: &str) -> Option<Global> { 520 self.get_export(store, name)?.into_global() 521 } 522 523 /// Looks up a tag [`Tag`] by name. 524 /// 525 /// Returns `None` if there was no export named `name`, or if there was but 526 /// it wasn't a tag. 527 /// 528 /// # Panics 529 /// 530 /// Panics if `store` does not own this instance. 531 pub fn get_tag(&self, store: impl AsContextMut, name: &str) -> Option<Tag> { 532 self.get_export(store, name)?.into_tag() 533 } 534 535 #[cfg(feature = "component-model")] 536 pub(crate) fn id(&self) -> InstanceId { 537 self.id.instance() 538 } 539 540 /// Get all globals within this instance. 541 /// 542 /// Returns both import and defined globals. 543 /// 544 /// Returns both exported and non-exported globals. 545 /// 546 /// Gives access to the full globals space. 547 #[cfg(feature = "coredump")] 548 pub(crate) fn all_globals<'a>( 549 &'a self, 550 store: &'a mut StoreOpaque, 551 ) -> impl ExactSizeIterator<Item = (GlobalIndex, Global)> + 'a { 552 store[self.id] 553 .all_globals() 554 .collect::<Vec<_>>() 555 .into_iter() 556 .map(|(i, g)| (i, unsafe { Global::from_wasmtime_global(g, store) })) 557 } 558 559 /// Get all memories within this instance. 560 /// 561 /// Returns both import and defined memories. 562 /// 563 /// Returns both exported and non-exported memories. 564 /// 565 /// Gives access to the full memories space. 566 #[cfg(feature = "coredump")] 567 pub(crate) fn all_memories<'a>( 568 &'a self, 569 store: &'a mut StoreOpaque, 570 ) -> impl ExactSizeIterator<Item = (MemoryIndex, Memory)> + 'a { 571 store[self.id] 572 .all_memories() 573 .collect::<Vec<_>>() 574 .into_iter() 575 .map(|(i, m)| (i, unsafe { Memory::from_wasmtime_memory(m, store) })) 576 } 577 } 578 579 pub(crate) struct OwnedImports { 580 functions: PrimaryMap<FuncIndex, VMFunctionImport>, 581 tables: PrimaryMap<TableIndex, VMTableImport>, 582 memories: PrimaryMap<MemoryIndex, VMMemoryImport>, 583 globals: PrimaryMap<GlobalIndex, VMGlobalImport>, 584 tags: PrimaryMap<TagIndex, VMTagImport>, 585 } 586 587 impl OwnedImports { 588 fn new(module: &Module) -> OwnedImports { 589 let mut ret = OwnedImports::empty(); 590 ret.reserve(module); 591 return ret; 592 } 593 594 pub(crate) fn empty() -> OwnedImports { 595 OwnedImports { 596 functions: PrimaryMap::new(), 597 tables: PrimaryMap::new(), 598 memories: PrimaryMap::new(), 599 globals: PrimaryMap::new(), 600 tags: PrimaryMap::new(), 601 } 602 } 603 604 pub(crate) fn reserve(&mut self, module: &Module) { 605 let raw = module.compiled_module().module(); 606 self.functions.reserve(raw.num_imported_funcs); 607 self.tables.reserve(raw.num_imported_tables); 608 self.memories.reserve(raw.num_imported_memories); 609 self.globals.reserve(raw.num_imported_globals); 610 self.tags.reserve(raw.num_imported_tags); 611 } 612 613 #[cfg(feature = "component-model")] 614 pub(crate) fn clear(&mut self) { 615 self.functions.clear(); 616 self.tables.clear(); 617 self.memories.clear(); 618 self.globals.clear(); 619 self.tags.clear(); 620 } 621 622 fn push(&mut self, item: &Extern, store: &mut StoreOpaque) { 623 match item { 624 Extern::Func(i) => { 625 self.functions.push(i.vmimport(store)); 626 } 627 Extern::Global(i) => { 628 self.globals.push(i.vmimport(store)); 629 } 630 Extern::Table(i) => { 631 self.tables.push(i.vmimport(store)); 632 } 633 Extern::Memory(i) => { 634 self.memories.push(i.vmimport(store)); 635 } 636 Extern::SharedMemory(i) => { 637 self.memories.push(i.vmimport(store)); 638 } 639 Extern::Tag(i) => { 640 self.tags.push(i.vmimport(store)); 641 } 642 } 643 } 644 645 /// Note that this is unsafe as the validity of `item` is not verified and 646 /// it contains a bunch of raw pointers. 647 #[cfg(feature = "component-model")] 648 pub(crate) unsafe fn push_export(&mut self, item: &crate::runtime::vm::Export) { 649 match item { 650 crate::runtime::vm::Export::Function(f) => { 651 let f = f.func_ref.as_ref(); 652 self.functions.push(VMFunctionImport { 653 wasm_call: f.wasm_call.unwrap(), 654 array_call: f.array_call, 655 vmctx: f.vmctx, 656 }); 657 } 658 crate::runtime::vm::Export::Global(g) => { 659 self.globals.push(g.vmimport()); 660 } 661 crate::runtime::vm::Export::Table(t) => { 662 self.tables.push(VMTableImport { 663 from: t.definition.into(), 664 vmctx: t.vmctx.into(), 665 index: t.index, 666 }); 667 } 668 crate::runtime::vm::Export::Memory(m) => { 669 self.memories.push(VMMemoryImport { 670 from: m.definition.into(), 671 vmctx: m.vmctx.into(), 672 index: m.index, 673 }); 674 } 675 crate::runtime::vm::Export::Tag(t) => { 676 self.tags.push(VMTagImport { 677 from: t.definition.into(), 678 vmctx: t.vmctx.into(), 679 index: t.index, 680 }); 681 } 682 } 683 } 684 685 pub(crate) fn as_ref(&self) -> Imports<'_> { 686 Imports { 687 tables: self.tables.values().as_slice(), 688 globals: self.globals.values().as_slice(), 689 memories: self.memories.values().as_slice(), 690 functions: self.functions.values().as_slice(), 691 tags: self.tags.values().as_slice(), 692 } 693 } 694 } 695 696 /// An instance, pre-instantiation, that is ready to be instantiated. 697 /// 698 /// This structure represents an instance *just before* it was instantiated, 699 /// after all type-checking and imports have been resolved. The only thing left 700 /// to do for this instance is to actually run the process of instantiation. 701 /// 702 /// Note that an `InstancePre` may not be tied to any particular [`Store`] if 703 /// none of the imports it closed over are tied to any particular [`Store`]. 704 /// 705 /// This structure is created through the [`Linker::instantiate_pre`] method, 706 /// which also has some more information and examples. 707 /// 708 /// [`Store`]: crate::Store 709 /// [`Linker::instantiate_pre`]: crate::Linker::instantiate_pre 710 pub struct InstancePre<T> { 711 module: Module, 712 713 /// The items which this `InstancePre` use to instantiate the `module` 714 /// provided, passed to `Instance::new_started` after inserting them into a 715 /// `Store`. 716 /// 717 /// Note that this is stored as an `Arc<[T]>` to quickly move a strong 718 /// reference to everything internally into a `Store<T>` without having to 719 /// clone each individual item. 720 items: Arc<[Definition]>, 721 722 /// A count of `Definition::HostFunc` entries in `items` above to 723 /// preallocate space in a `Store` up front for all entries to be inserted. 724 host_funcs: usize, 725 726 /// The `VMFuncRef`s for the functions in `items` that do not 727 /// have a `wasm_call` trampoline. We pre-allocate and pre-patch these 728 /// `VMFuncRef`s so that we don't have to do it at 729 /// instantiation time. 730 /// 731 /// This is an `Arc<[T]>` for the same reason as `items`. 732 func_refs: Arc<[VMFuncRef]>, 733 734 _marker: core::marker::PhantomData<fn() -> T>, 735 } 736 737 /// InstancePre's clone does not require T: Clone 738 impl<T> Clone for InstancePre<T> { 739 fn clone(&self) -> Self { 740 Self { 741 module: self.module.clone(), 742 items: self.items.clone(), 743 host_funcs: self.host_funcs, 744 func_refs: self.func_refs.clone(), 745 _marker: self._marker, 746 } 747 } 748 } 749 750 impl<T: 'static> InstancePre<T> { 751 /// Creates a new `InstancePre` which type-checks the `items` provided and 752 /// on success is ready to instantiate a new instance. 753 /// 754 /// # Unsafety 755 /// 756 /// This method is unsafe as the `T` of the `InstancePre<T>` is not 757 /// guaranteed to be the same as the `T` within the `Store`, the caller must 758 /// verify that. 759 pub(crate) unsafe fn new(module: &Module, items: Vec<Definition>) -> Result<InstancePre<T>> { 760 typecheck(module, &items, |cx, ty, item| cx.definition(ty, &item.ty()))?; 761 762 let mut func_refs = vec![]; 763 let mut host_funcs = 0; 764 for item in &items { 765 match item { 766 Definition::Extern(_, _) => {} 767 Definition::HostFunc(f) => { 768 host_funcs += 1; 769 if f.func_ref().wasm_call.is_none() { 770 // `f` needs its `VMFuncRef::wasm_call` patched with a 771 // Wasm-to-native trampoline. 772 debug_assert!(matches!(f.host_ctx(), crate::HostContext::Array(_))); 773 func_refs.push(VMFuncRef { 774 wasm_call: module 775 .wasm_to_array_trampoline(f.sig_index()) 776 .map(|f| f.into()), 777 ..*f.func_ref() 778 }); 779 } 780 } 781 } 782 } 783 784 Ok(InstancePre { 785 module: module.clone(), 786 items: items.into(), 787 host_funcs, 788 func_refs: func_refs.into(), 789 _marker: core::marker::PhantomData, 790 }) 791 } 792 793 /// Returns a reference to the module that this [`InstancePre`] will be 794 /// instantiating. 795 pub fn module(&self) -> &Module { 796 &self.module 797 } 798 799 /// Instantiates this instance, creating a new instance within the provided 800 /// `store`. 801 /// 802 /// This function will run the actual process of instantiation to 803 /// completion. This will use all of the previously-closed-over items as 804 /// imports to instantiate the module that this was originally created with. 805 /// 806 /// For more information about instantiation see [`Instance::new`]. 807 /// 808 /// # Panics 809 /// 810 /// Panics if any import closed over by this [`InstancePre`] isn't owned by 811 /// `store`, or if `store` has async support enabled. Additionally this 812 /// function will panic if the `store` provided comes from a different 813 /// [`Engine`] than the [`InstancePre`] originally came from. 814 pub fn instantiate(&self, mut store: impl AsContextMut<Data = T>) -> Result<Instance> { 815 let mut store = store.as_context_mut(); 816 let imports = pre_instantiate_raw( 817 &mut store.0, 818 &self.module, 819 &self.items, 820 self.host_funcs, 821 &self.func_refs, 822 )?; 823 824 // This unsafety should be handled by the type-checking performed by the 825 // constructor of `InstancePre` to assert that all the imports we're passing 826 // in match the module we're instantiating. 827 unsafe { Instance::new_started(&mut store, &self.module, imports.as_ref()) } 828 } 829 830 /// Creates a new instance, running the start function asynchronously 831 /// instead of inline. 832 /// 833 /// For more information about asynchronous instantiation see the 834 /// documentation on [`Instance::new_async`]. 835 /// 836 /// # Panics 837 /// 838 /// Panics if any import closed over by this [`InstancePre`] isn't owned by 839 /// `store`, or if `store` does not have async support enabled. 840 #[cfg(feature = "async")] 841 pub async fn instantiate_async( 842 &self, 843 mut store: impl AsContextMut<Data: Send>, 844 ) -> Result<Instance> { 845 let mut store = store.as_context_mut(); 846 let imports = pre_instantiate_raw( 847 &mut store.0, 848 &self.module, 849 &self.items, 850 self.host_funcs, 851 &self.func_refs, 852 )?; 853 854 // This unsafety should be handled by the type-checking performed by the 855 // constructor of `InstancePre` to assert that all the imports we're passing 856 // in match the module we're instantiating. 857 unsafe { Instance::new_started_async(&mut store, &self.module, imports.as_ref()).await } 858 } 859 } 860 861 /// Helper function shared between 862 /// `InstancePre::{instantiate,instantiate_async}` 863 /// 864 /// This is an out-of-line function to avoid the generic on `InstancePre` and 865 /// get this compiled into the `wasmtime` crate to avoid having it monomorphized 866 /// elsewhere. 867 fn pre_instantiate_raw( 868 store: &mut StoreOpaque, 869 module: &Module, 870 items: &Arc<[Definition]>, 871 host_funcs: usize, 872 func_refs: &Arc<[VMFuncRef]>, 873 ) -> Result<OwnedImports> { 874 // Register this module and use it to fill out any funcref wasm_call holes 875 // we can. For more comments on this see `typecheck_externs`. 876 store.modules_mut().register_module(module); 877 let (funcrefs, modules) = store.func_refs_and_modules(); 878 funcrefs.fill(modules); 879 880 if host_funcs > 0 { 881 // Any linker-defined function of the `Definition::HostFunc` variant 882 // will insert a function into the store automatically as part of 883 // instantiation, so reserve space here to make insertion more efficient 884 // as it won't have to realloc during the instantiation. 885 funcrefs.reserve_storage(host_funcs); 886 887 // The usage of `to_extern_store_rooted` requires that the items are 888 // rooted via another means, which happens here by cloning the list of 889 // items into the store once. This avoids cloning each individual item 890 // below. 891 funcrefs.push_instance_pre_definitions(items.clone()); 892 funcrefs.push_instance_pre_func_refs(func_refs.clone()); 893 } 894 895 let mut func_refs = func_refs.iter().map(|f| NonNull::from(f)); 896 let mut imports = OwnedImports::new(module); 897 for import in items.iter() { 898 if !import.comes_from_same_store(store) { 899 bail!("cross-`Store` instantiation is not currently supported"); 900 } 901 // This unsafety should be encapsulated in the constructor of 902 // `InstancePre` where the `T` of the original item should match the 903 // `T` of the store. Additionally the rooting necessary has happened 904 // above. 905 let item = match import { 906 Definition::Extern(e, _) => e.clone(), 907 Definition::HostFunc(func) => unsafe { 908 func.to_func_store_rooted( 909 store, 910 if func.func_ref().wasm_call.is_none() { 911 Some(func_refs.next().unwrap()) 912 } else { 913 None 914 }, 915 ) 916 .into() 917 }, 918 }; 919 imports.push(&item, store); 920 } 921 922 Ok(imports) 923 } 924 925 fn typecheck<I>( 926 module: &Module, 927 import_args: &[I], 928 check: impl Fn(&matching::MatchCx<'_>, &EntityType, &I) -> Result<()>, 929 ) -> Result<()> { 930 let env_module = module.compiled_module().module(); 931 let expected_len = env_module.imports().count(); 932 let actual_len = import_args.len(); 933 if expected_len != actual_len { 934 bail!("expected {expected_len} imports, found {actual_len}"); 935 } 936 let cx = matching::MatchCx::new(module.engine()); 937 for ((name, field, expected_ty), actual) in env_module.imports().zip(import_args) { 938 debug_assert!(expected_ty.is_canonicalized_for_runtime_usage()); 939 check(&cx, &expected_ty, actual) 940 .with_context(|| format!("incompatible import type for `{name}::{field}`"))?; 941 } 942 Ok(()) 943 } 944