1 use crate::prelude::*; 2 use crate::runtime::vm::const_expr::{ConstEvalContext, ConstExprEvaluator}; 3 use crate::runtime::vm::imports::Imports; 4 use crate::runtime::vm::instance::{Instance, InstanceHandle}; 5 use crate::runtime::vm::memory::Memory; 6 use crate::runtime::vm::mpk::ProtectionKey; 7 use crate::runtime::vm::table::Table; 8 use crate::runtime::vm::{CompiledModuleId, ModuleRuntimeInfo, VMStore}; 9 use crate::store::{InstanceId, StoreOpaque}; 10 use crate::{OpaqueRootScope, Val}; 11 use core::ptr::NonNull; 12 use core::{mem, ptr}; 13 use wasmtime_environ::{ 14 DefinedMemoryIndex, DefinedTableIndex, HostPtr, InitMemory, MemoryInitialization, 15 MemoryInitializer, Module, PrimaryMap, SizeOverflow, TableInitialValue, Trap, Tunables, 16 VMOffsets, 17 }; 18 19 #[cfg(feature = "gc")] 20 use crate::runtime::vm::{GcHeap, GcRuntime}; 21 22 #[cfg(feature = "component-model")] 23 use wasmtime_environ::{ 24 StaticModuleIndex, 25 component::{Component, VMComponentOffsets}, 26 }; 27 28 mod on_demand; 29 pub use self::on_demand::OnDemandInstanceAllocator; 30 31 #[cfg(feature = "pooling-allocator")] 32 mod pooling; 33 #[cfg(feature = "pooling-allocator")] 34 pub use self::pooling::{ 35 InstanceLimits, PoolConcurrencyLimitError, PoolingInstanceAllocator, 36 PoolingInstanceAllocatorConfig, 37 }; 38 39 /// Represents a request for a new runtime instance. 40 pub struct InstanceAllocationRequest<'a> { 41 /// The instance id that this will be assigned within the store once the 42 /// allocation has finished. 43 pub id: InstanceId, 44 45 /// The info related to the compiled version of this module, 46 /// needed for instantiation: function metadata, JIT code 47 /// addresses, precomputed images for lazy memory and table 48 /// initialization, and the like. This Arc is cloned and held for 49 /// the lifetime of the instance. 50 pub runtime_info: &'a ModuleRuntimeInfo, 51 52 /// The imports to use for the instantiation. 53 pub imports: Imports<'a>, 54 55 /// A pointer to the "store" for this instance to be allocated. The store 56 /// correlates with the `Store` in wasmtime itself, and lots of contextual 57 /// information about the execution of wasm can be learned through the 58 /// store. 59 /// 60 /// Note that this is a raw pointer and has a static lifetime, both of which 61 /// are a bit of a lie. This is done purely so a store can learn about 62 /// itself when it gets called as a host function, and additionally so this 63 /// runtime can access internals as necessary (such as the 64 /// VMExternRefActivationsTable or the resource limiter methods). 65 /// 66 /// Note that this ends up being a self-pointer to the instance when stored. 67 /// The reason is that the instance itself is then stored within the store. 68 /// We use a number of `PhantomPinned` declarations to indicate this to the 69 /// compiler. More info on this in `wasmtime/src/store.rs` 70 pub store: StorePtr, 71 72 /// Indicates '--wmemcheck' flag. 73 #[cfg(feature = "wmemcheck")] 74 pub wmemcheck: bool, 75 76 /// Request that the instance's memories be protected by a specific 77 /// protection key. 78 #[cfg_attr( 79 not(feature = "pooling-allocator"), 80 expect( 81 dead_code, 82 reason = "easier to keep this field than remove it, not perf-critical to remove" 83 ) 84 )] 85 pub pkey: Option<ProtectionKey>, 86 87 /// Tunable configuration options the engine is using. 88 pub tunables: &'a Tunables, 89 } 90 91 /// A pointer to a Store. This Option<*mut dyn Store> is wrapped in a struct 92 /// so that the function to create a &mut dyn Store is a method on a member of 93 /// InstanceAllocationRequest, rather than on a &mut InstanceAllocationRequest 94 /// itself, because several use-sites require a split mut borrow on the 95 /// InstanceAllocationRequest. 96 pub struct StorePtr(Option<NonNull<dyn VMStore>>); 97 98 // We can't make `VMStore: Send + Sync` because that requires making all of 99 // Wastime's internals generic over the `Store`'s `T`. So instead, we take care 100 // in the whole VM layer to only use the `VMStore` in ways that are `Send`- and 101 // `Sync`-safe and we have to have these unsafe impls. 102 unsafe impl Send for StorePtr {} 103 unsafe impl Sync for StorePtr {} 104 105 impl StorePtr { 106 /// A pointer to no Store. 107 pub fn empty() -> Self { 108 Self(None) 109 } 110 111 /// A pointer to a Store. 112 pub fn new(ptr: NonNull<dyn VMStore>) -> Self { 113 Self(Some(ptr)) 114 } 115 116 /// The raw contents of this struct 117 pub fn as_raw(&self) -> Option<NonNull<dyn VMStore>> { 118 self.0 119 } 120 121 /// Use the StorePtr as a mut ref to the Store. 122 /// 123 /// Safety: must not be used outside the original lifetime of the borrow. 124 pub(crate) unsafe fn get(&mut self) -> Option<&mut dyn VMStore> { 125 let ptr = unsafe { self.0?.as_mut() }; 126 Some(ptr) 127 } 128 } 129 130 /// The index of a memory allocation within an `InstanceAllocator`. 131 #[derive(Clone, Copy, Debug, Eq, PartialEq, PartialOrd, Ord)] 132 pub struct MemoryAllocationIndex(u32); 133 134 impl Default for MemoryAllocationIndex { 135 fn default() -> Self { 136 // A default `MemoryAllocationIndex` that can be used with 137 // `InstanceAllocator`s that don't actually need indices. 138 MemoryAllocationIndex(u32::MAX) 139 } 140 } 141 142 impl MemoryAllocationIndex { 143 /// Get the underlying index of this `MemoryAllocationIndex`. 144 #[cfg(feature = "pooling-allocator")] 145 pub fn index(&self) -> usize { 146 self.0 as usize 147 } 148 } 149 150 /// The index of a table allocation within an `InstanceAllocator`. 151 #[derive(Clone, Copy, Debug, Eq, PartialEq, PartialOrd, Ord)] 152 pub struct TableAllocationIndex(u32); 153 154 impl Default for TableAllocationIndex { 155 fn default() -> Self { 156 // A default `TableAllocationIndex` that can be used with 157 // `InstanceAllocator`s that don't actually need indices. 158 TableAllocationIndex(u32::MAX) 159 } 160 } 161 162 impl TableAllocationIndex { 163 /// Get the underlying index of this `TableAllocationIndex`. 164 #[cfg(feature = "pooling-allocator")] 165 pub fn index(&self) -> usize { 166 self.0 as usize 167 } 168 } 169 170 /// The index of a table allocation within an `InstanceAllocator`. 171 #[derive(Clone, Copy, Debug, Eq, PartialEq, PartialOrd, Ord)] 172 pub struct GcHeapAllocationIndex(u32); 173 174 impl Default for GcHeapAllocationIndex { 175 fn default() -> Self { 176 // A default `GcHeapAllocationIndex` that can be used with 177 // `InstanceAllocator`s that don't actually need indices. 178 GcHeapAllocationIndex(u32::MAX) 179 } 180 } 181 182 impl GcHeapAllocationIndex { 183 /// Get the underlying index of this `GcHeapAllocationIndex`. 184 pub fn index(&self) -> usize { 185 self.0 as usize 186 } 187 } 188 189 /// Trait that represents the hooks needed to implement an instance allocator. 190 /// 191 /// Implement this trait when implementing new instance allocators, but don't 192 /// use this trait when you need an instance allocator. Instead use the 193 /// `InstanceAllocator` trait for that, which has additional helper methods and 194 /// a blanket implementation for all types that implement this trait. 195 /// 196 /// # Safety 197 /// 198 /// This trait is unsafe as it requires knowledge of Wasmtime's runtime 199 /// internals to implement correctly. 200 pub unsafe trait InstanceAllocator: Send + Sync { 201 /// Validate whether a component (including all of its contained core 202 /// modules) is allocatable by this instance allocator. 203 #[cfg(feature = "component-model")] 204 fn validate_component<'a>( 205 &self, 206 component: &Component, 207 offsets: &VMComponentOffsets<HostPtr>, 208 get_module: &'a dyn Fn(StaticModuleIndex) -> &'a Module, 209 ) -> Result<()>; 210 211 /// Validate whether a module is allocatable by this instance allocator. 212 fn validate_module(&self, module: &Module, offsets: &VMOffsets<HostPtr>) -> Result<()>; 213 214 /// Validate whether a memory is allocatable by this instance allocator. 215 #[cfg(feature = "gc")] 216 fn validate_memory(&self, memory: &wasmtime_environ::Memory) -> Result<()>; 217 218 /// Increment the count of concurrent component instances that are currently 219 /// allocated, if applicable. 220 /// 221 /// Not all instance allocators will have limits for the maximum number of 222 /// concurrent component instances that can be live at the same time, and 223 /// these allocators may implement this method with a no-op. 224 // 225 // Note: It would be nice to have an associated type that on construction 226 // does the increment and on drop does the decrement but there are two 227 // problems with this: 228 // 229 // 1. This trait's implementations are always used as trait objects, and 230 // associated types are not object safe. 231 // 232 // 2. We would want a parameterized `Drop` implementation so that we could 233 // pass in the `InstanceAllocator` on drop, but this doesn't exist in 234 // Rust. Therefore, we would be forced to add reference counting and 235 // stuff like that to keep a handle on the instance allocator from this 236 // theoretical type. That's a bummer. 237 #[cfg(feature = "component-model")] 238 fn increment_component_instance_count(&self) -> Result<()>; 239 240 /// The dual of `increment_component_instance_count`. 241 #[cfg(feature = "component-model")] 242 fn decrement_component_instance_count(&self); 243 244 /// Increment the count of concurrent core module instances that are 245 /// currently allocated, if applicable. 246 /// 247 /// Not all instance allocators will have limits for the maximum number of 248 /// concurrent core module instances that can be live at the same time, and 249 /// these allocators may implement this method with a no-op. 250 fn increment_core_instance_count(&self) -> Result<()>; 251 252 /// The dual of `increment_core_instance_count`. 253 fn decrement_core_instance_count(&self); 254 255 /// Allocate a memory for an instance. 256 fn allocate_memory( 257 &self, 258 request: &mut InstanceAllocationRequest, 259 ty: &wasmtime_environ::Memory, 260 tunables: &Tunables, 261 memory_index: Option<DefinedMemoryIndex>, 262 ) -> Result<(MemoryAllocationIndex, Memory)>; 263 264 /// Deallocate an instance's previously allocated memory. 265 /// 266 /// # Unsafety 267 /// 268 /// The memory must have previously been allocated by 269 /// `Self::allocate_memory`, be at the given index, and must currently be 270 /// allocated. It must never be used again. 271 unsafe fn deallocate_memory( 272 &self, 273 memory_index: Option<DefinedMemoryIndex>, 274 allocation_index: MemoryAllocationIndex, 275 memory: Memory, 276 ); 277 278 /// Allocate a table for an instance. 279 fn allocate_table( 280 &self, 281 req: &mut InstanceAllocationRequest, 282 table: &wasmtime_environ::Table, 283 tunables: &Tunables, 284 table_index: DefinedTableIndex, 285 ) -> Result<(TableAllocationIndex, Table)>; 286 287 /// Deallocate an instance's previously allocated table. 288 /// 289 /// # Unsafety 290 /// 291 /// The table must have previously been allocated by `Self::allocate_table`, 292 /// be at the given index, and must currently be allocated. It must never be 293 /// used again. 294 unsafe fn deallocate_table( 295 &self, 296 table_index: DefinedTableIndex, 297 allocation_index: TableAllocationIndex, 298 table: Table, 299 ); 300 301 /// Allocates a fiber stack for calling async functions on. 302 #[cfg(feature = "async")] 303 fn allocate_fiber_stack(&self) -> Result<wasmtime_fiber::FiberStack>; 304 305 /// Deallocates a fiber stack that was previously allocated with 306 /// `allocate_fiber_stack`. 307 /// 308 /// # Safety 309 /// 310 /// The provided stack is required to have been allocated with 311 /// `allocate_fiber_stack`. 312 #[cfg(feature = "async")] 313 unsafe fn deallocate_fiber_stack(&self, stack: wasmtime_fiber::FiberStack); 314 315 /// Allocate a GC heap for allocating Wasm GC objects within. 316 #[cfg(feature = "gc")] 317 fn allocate_gc_heap( 318 &self, 319 engine: &crate::Engine, 320 gc_runtime: &dyn GcRuntime, 321 memory_alloc_index: MemoryAllocationIndex, 322 memory: Memory, 323 ) -> Result<(GcHeapAllocationIndex, Box<dyn GcHeap>)>; 324 325 /// Deallocate a GC heap that was previously allocated with 326 /// `allocate_gc_heap`. 327 #[cfg(feature = "gc")] 328 #[must_use = "it is the caller's responsibility to deallocate the GC heap's underlying memory \ 329 storage after the GC heap is deallocated"] 330 fn deallocate_gc_heap( 331 &self, 332 allocation_index: GcHeapAllocationIndex, 333 gc_heap: Box<dyn GcHeap>, 334 ) -> (MemoryAllocationIndex, Memory); 335 336 /// Purges all lingering resources related to `module` from within this 337 /// allocator. 338 /// 339 /// Primarily present for the pooling allocator to remove mappings of 340 /// this module from slots in linear memory. 341 fn purge_module(&self, module: CompiledModuleId); 342 343 /// Use the next available protection key. 344 /// 345 /// The pooling allocator can use memory protection keys (MPK) for 346 /// compressing the guard regions protecting against OOB. Each 347 /// pool-allocated store needs its own key. 348 fn next_available_pkey(&self) -> Option<ProtectionKey>; 349 350 /// Restrict access to memory regions protected by `pkey`. 351 /// 352 /// This is useful for the pooling allocator, which can use memory 353 /// protection keys (MPK). Note: this may still allow access to other 354 /// protection keys, such as the default kernel key; see implementations of 355 /// this. 356 fn restrict_to_pkey(&self, pkey: ProtectionKey); 357 358 /// Allow access to memory regions protected by any protection key. 359 fn allow_all_pkeys(&self); 360 } 361 362 impl dyn InstanceAllocator + '_ { 363 /// Allocates a fresh `InstanceHandle` for the `req` given. 364 /// 365 /// This will allocate memories and tables internally from this allocator 366 /// and weave that altogether into a final and complete `InstanceHandle` 367 /// ready to be registered with a store. 368 /// 369 /// Note that the returned instance must still have `.initialize(..)` called 370 /// on it to complete the instantiation process. 371 /// 372 /// # Safety 373 /// 374 /// The `request` provided must be valid, e.g. the imports within are 375 /// correctly sized/typed for the instance being created. 376 pub(crate) unsafe fn allocate_module( 377 &self, 378 mut request: InstanceAllocationRequest, 379 ) -> Result<InstanceHandle> { 380 let module = request.runtime_info.env_module(); 381 382 if cfg!(debug_assertions) { 383 InstanceAllocator::validate_module(self, module, request.runtime_info.offsets()) 384 .expect("module should have already been validated before allocation"); 385 } 386 387 self.increment_core_instance_count()?; 388 389 let num_defined_memories = module.num_defined_memories(); 390 let mut memories = PrimaryMap::with_capacity(num_defined_memories); 391 392 let num_defined_tables = module.num_defined_tables(); 393 let mut tables = PrimaryMap::with_capacity(num_defined_tables); 394 395 match (|| { 396 self.allocate_memories(&mut request, &mut memories)?; 397 self.allocate_tables(&mut request, &mut tables)?; 398 Ok(()) 399 })() { 400 // SAFETY: memories/tables were just allocated from the store within 401 // `request` and this function's own contract requires that the 402 // imports are valid. 403 Ok(_) => unsafe { Ok(Instance::new(request, memories, tables, &module.memories)) }, 404 Err(e) => { 405 // SAFETY: these were previously allocated by this allocator 406 unsafe { 407 self.deallocate_memories(&mut memories); 408 self.deallocate_tables(&mut tables); 409 } 410 self.decrement_core_instance_count(); 411 Err(e) 412 } 413 } 414 } 415 416 /// Deallocates the provided instance. 417 /// 418 /// This will null-out the pointer within `handle` and otherwise reclaim 419 /// resources such as tables, memories, and the instance memory itself. 420 /// 421 /// # Unsafety 422 /// 423 /// The instance must have previously been allocated by `Self::allocate`. 424 pub(crate) unsafe fn deallocate_module(&self, handle: &mut InstanceHandle) { 425 // SAFETY: the contract of `deallocate_*` is itself a contract of this 426 // function, that the memories/tables were previously allocated from 427 // here. 428 unsafe { 429 self.deallocate_memories(handle.get_mut().memories_mut()); 430 self.deallocate_tables(handle.get_mut().tables_mut()); 431 } 432 433 self.decrement_core_instance_count(); 434 } 435 436 /// Allocate the memories for the given instance allocation request, pushing 437 /// them into `memories`. 438 fn allocate_memories( 439 &self, 440 request: &mut InstanceAllocationRequest, 441 memories: &mut PrimaryMap<DefinedMemoryIndex, (MemoryAllocationIndex, Memory)>, 442 ) -> Result<()> { 443 let module = request.runtime_info.env_module(); 444 445 if cfg!(debug_assertions) { 446 InstanceAllocator::validate_module(self, module, request.runtime_info.offsets()) 447 .expect("module should have already been validated before allocation"); 448 } 449 450 for (memory_index, ty) in module.memories.iter().skip(module.num_imported_memories) { 451 let memory_index = module 452 .defined_memory_index(memory_index) 453 .expect("should be a defined memory since we skipped imported ones"); 454 455 let memory = self.allocate_memory(request, ty, request.tunables, Some(memory_index))?; 456 memories.push(memory); 457 } 458 459 Ok(()) 460 } 461 462 /// Deallocate all the memories in the given primary map. 463 /// 464 /// # Unsafety 465 /// 466 /// The memories must have previously been allocated by 467 /// `Self::allocate_memories`. 468 unsafe fn deallocate_memories( 469 &self, 470 memories: &mut PrimaryMap<DefinedMemoryIndex, (MemoryAllocationIndex, Memory)>, 471 ) { 472 for (memory_index, (allocation_index, memory)) in mem::take(memories) { 473 // Because deallocating memory is infallible, we don't need to worry 474 // about leaking subsequent memories if the first memory failed to 475 // deallocate. If deallocating memory ever becomes fallible, we will 476 // need to be careful here! 477 // 478 // SAFETY: the unsafe contract here is the same as the unsafe 479 // contract of this function, that the memories were previously 480 // allocated by this allocator. 481 unsafe { 482 self.deallocate_memory(Some(memory_index), allocation_index, memory); 483 } 484 } 485 } 486 487 /// Allocate tables for the given instance allocation request, pushing them 488 /// into `tables`. 489 fn allocate_tables( 490 &self, 491 request: &mut InstanceAllocationRequest, 492 tables: &mut PrimaryMap<DefinedTableIndex, (TableAllocationIndex, Table)>, 493 ) -> Result<()> { 494 let module = request.runtime_info.env_module(); 495 496 if cfg!(debug_assertions) { 497 InstanceAllocator::validate_module(self, module, request.runtime_info.offsets()) 498 .expect("module should have already been validated before allocation"); 499 } 500 501 for (index, table) in module.tables.iter().skip(module.num_imported_tables) { 502 let def_index = module 503 .defined_table_index(index) 504 .expect("should be a defined table since we skipped imported ones"); 505 506 let table = self.allocate_table(request, table, request.tunables, def_index)?; 507 tables.push(table); 508 } 509 510 Ok(()) 511 } 512 513 /// Deallocate all the tables in the given primary map. 514 /// 515 /// # Unsafety 516 /// 517 /// The tables must have previously been allocated by 518 /// `Self::allocate_tables`. 519 unsafe fn deallocate_tables( 520 &self, 521 tables: &mut PrimaryMap<DefinedTableIndex, (TableAllocationIndex, Table)>, 522 ) { 523 for (table_index, (allocation_index, table)) in mem::take(tables) { 524 // SAFETY: the tables here were allocated from this allocator per 525 // the contract on this function itself. 526 unsafe { 527 self.deallocate_table(table_index, allocation_index, table); 528 } 529 } 530 } 531 } 532 533 fn check_table_init_bounds( 534 store: &mut StoreOpaque, 535 instance: InstanceId, 536 module: &Module, 537 ) -> Result<()> { 538 let mut const_evaluator = ConstExprEvaluator::default(); 539 let mut store = OpaqueRootScope::new(store); 540 541 for segment in module.table_initialization.segments.iter() { 542 let mut context = ConstEvalContext::new(instance); 543 let start = unsafe { 544 const_evaluator 545 .eval(&mut store, &mut context, &segment.offset) 546 .expect("const expression should be valid") 547 }; 548 let start = usize::try_from(start.unwrap_i32().cast_unsigned()).unwrap(); 549 let end = start.checked_add(usize::try_from(segment.elements.len()).unwrap()); 550 551 let table = store.instance_mut(instance).get_table(segment.table_index); 552 match end { 553 Some(end) if end <= table.size() => { 554 // Initializer is in bounds 555 } 556 _ => { 557 bail!("table out of bounds: elements segment does not fit") 558 } 559 } 560 } 561 562 Ok(()) 563 } 564 565 fn initialize_tables( 566 store: &mut StoreOpaque, 567 context: &mut ConstEvalContext, 568 const_evaluator: &mut ConstExprEvaluator, 569 module: &Module, 570 ) -> Result<()> { 571 let mut store = OpaqueRootScope::new(store); 572 for (table, init) in module.table_initialization.initial_values.iter() { 573 match init { 574 // Tables are always initially null-initialized at this time 575 TableInitialValue::Null { precomputed: _ } => {} 576 577 TableInitialValue::Expr(expr) => { 578 let init = unsafe { 579 const_evaluator 580 .eval(&mut store, context, expr) 581 .expect("const expression should be valid") 582 }; 583 let idx = module.table_index(table); 584 let id = store.id(); 585 let table = store 586 .instance_mut(context.instance) 587 .get_exported_table(id, idx); 588 let size = table._size(&store); 589 table._fill(&mut store, 0, init.ref_().unwrap(), size)?; 590 } 591 } 592 } 593 594 // Note: if the module's table initializer state is in 595 // FuncTable mode, we will lazily initialize tables based on 596 // any statically-precomputed image of FuncIndexes, but there 597 // may still be "leftover segments" that could not be 598 // incorporated. So we have a unified handler here that 599 // iterates over all segments (Segments mode) or leftover 600 // segments (FuncTable mode) to initialize. 601 for segment in module.table_initialization.segments.iter() { 602 let start = unsafe { 603 const_evaluator 604 .eval(&mut store, context, &segment.offset) 605 .expect("const expression should be valid") 606 }; 607 let start = get_index( 608 start, 609 store.instance(context.instance).env_module().tables[segment.table_index].idx_type, 610 ); 611 Instance::table_init_segment( 612 &mut store, 613 context.instance, 614 const_evaluator, 615 segment.table_index, 616 &segment.elements, 617 start, 618 0, 619 segment.elements.len(), 620 )?; 621 } 622 623 Ok(()) 624 } 625 626 fn get_index(val: &Val, ty: wasmtime_environ::IndexType) -> u64 { 627 match ty { 628 wasmtime_environ::IndexType::I32 => val.unwrap_i32().cast_unsigned().into(), 629 wasmtime_environ::IndexType::I64 => val.unwrap_i64().cast_unsigned(), 630 } 631 } 632 633 fn get_memory_init_start( 634 store: &mut StoreOpaque, 635 init: &MemoryInitializer, 636 instance: InstanceId, 637 ) -> Result<u64> { 638 let mut context = ConstEvalContext::new(instance); 639 let mut const_evaluator = ConstExprEvaluator::default(); 640 let mut store = OpaqueRootScope::new(store); 641 unsafe { const_evaluator.eval(&mut store, &mut context, &init.offset) }.map(|v| { 642 get_index( 643 v, 644 store.instance(instance).env_module().memories[init.memory_index].idx_type, 645 ) 646 }) 647 } 648 649 fn check_memory_init_bounds( 650 store: &mut StoreOpaque, 651 instance: InstanceId, 652 initializers: &[MemoryInitializer], 653 ) -> Result<()> { 654 for init in initializers { 655 let memory = store.instance_mut(instance).get_memory(init.memory_index); 656 let start = get_memory_init_start(store, init, instance)?; 657 let end = usize::try_from(start) 658 .ok() 659 .and_then(|start| start.checked_add(init.data.len())); 660 661 match end { 662 Some(end) if end <= memory.current_length() => { 663 // Initializer is in bounds 664 } 665 _ => { 666 bail!("memory out of bounds: data segment does not fit") 667 } 668 } 669 } 670 671 Ok(()) 672 } 673 674 fn initialize_memories( 675 store: &mut StoreOpaque, 676 context: &mut ConstEvalContext, 677 const_evaluator: &mut ConstExprEvaluator, 678 module: &Module, 679 ) -> Result<()> { 680 // Delegates to the `init_memory` method which is sort of a duplicate of 681 // `instance.memory_init_segment` but is used at compile-time in other 682 // contexts so is shared here to have only one method of memory 683 // initialization. 684 // 685 // This call to `init_memory` notably implements all the bells and whistles 686 // so errors only happen if an out-of-bounds segment is found, in which case 687 // a trap is returned. 688 689 struct InitMemoryAtInstantiation<'a> { 690 module: &'a Module, 691 store: &'a mut StoreOpaque, 692 context: &'a mut ConstEvalContext, 693 const_evaluator: &'a mut ConstExprEvaluator, 694 } 695 696 impl InitMemory for InitMemoryAtInstantiation<'_> { 697 fn memory_size_in_bytes( 698 &mut self, 699 memory: wasmtime_environ::MemoryIndex, 700 ) -> Result<u64, SizeOverflow> { 701 let len = self 702 .store 703 .instance(self.context.instance) 704 .get_memory(memory) 705 .current_length(); 706 let len = u64::try_from(len).unwrap(); 707 Ok(len) 708 } 709 710 fn eval_offset( 711 &mut self, 712 memory: wasmtime_environ::MemoryIndex, 713 expr: &wasmtime_environ::ConstExpr, 714 ) -> Option<u64> { 715 let mut store = OpaqueRootScope::new(&mut *self.store); 716 let val = unsafe { self.const_evaluator.eval(&mut store, self.context, expr) } 717 .expect("const expression should be valid"); 718 Some(get_index( 719 val, 720 store.instance(self.context.instance).env_module().memories[memory].idx_type, 721 )) 722 } 723 724 fn write( 725 &mut self, 726 memory_index: wasmtime_environ::MemoryIndex, 727 init: &wasmtime_environ::StaticMemoryInitializer, 728 ) -> bool { 729 // If this initializer applies to a defined memory but that memory 730 // doesn't need initialization, due to something like copy-on-write 731 // pre-initializing it via mmap magic, then this initializer can be 732 // skipped entirely. 733 let instance = self.store.instance_mut(self.context.instance); 734 if let Some(memory_index) = self.module.defined_memory_index(memory_index) { 735 if !instance.memories[memory_index].1.needs_init() { 736 return true; 737 } 738 } 739 let memory = instance.get_memory(memory_index); 740 741 unsafe { 742 let src = instance.wasm_data(init.data.clone()); 743 let offset = usize::try_from(init.offset).unwrap(); 744 let dst = memory.base.as_ptr().add(offset); 745 746 assert!(offset + src.len() <= memory.current_length()); 747 748 // FIXME audit whether this is safe in the presence of shared 749 // memory 750 // (https://github.com/bytecodealliance/wasmtime/issues/4203). 751 ptr::copy_nonoverlapping(src.as_ptr(), dst, src.len()) 752 } 753 true 754 } 755 } 756 757 let ok = module 758 .memory_initialization 759 .init_memory(&mut InitMemoryAtInstantiation { 760 module, 761 store, 762 context, 763 const_evaluator, 764 }); 765 if !ok { 766 return Err(Trap::MemoryOutOfBounds.into()); 767 } 768 769 Ok(()) 770 } 771 772 fn check_init_bounds(store: &mut StoreOpaque, instance: InstanceId, module: &Module) -> Result<()> { 773 check_table_init_bounds(store, instance, module)?; 774 775 match &module.memory_initialization { 776 MemoryInitialization::Segmented(initializers) => { 777 check_memory_init_bounds(store, instance, initializers)?; 778 } 779 // Statically validated already to have everything in-bounds. 780 MemoryInitialization::Static { .. } => {} 781 } 782 783 Ok(()) 784 } 785 786 fn initialize_globals( 787 store: &mut StoreOpaque, 788 context: &mut ConstEvalContext, 789 const_evaluator: &mut ConstExprEvaluator, 790 module: &Module, 791 ) -> Result<()> { 792 assert!(core::ptr::eq( 793 &**store.instance(context.instance).env_module(), 794 module 795 )); 796 797 let mut store = OpaqueRootScope::new(store); 798 799 for (index, init) in module.global_initializers.iter() { 800 let val = unsafe { 801 const_evaluator 802 .eval(&mut store, context, init) 803 .expect("should be a valid const expr") 804 }; 805 806 let id = store.id(); 807 let index = module.global_index(index); 808 let mut instance = store.instance_mut(context.instance); 809 810 #[cfg(feature = "wmemcheck")] 811 if index.as_u32() == 0 812 && module.globals[index].wasm_ty == wasmtime_environ::WasmValType::I32 813 { 814 if let Some(wmemcheck) = instance.as_mut().wmemcheck_state_mut() { 815 let size = usize::try_from(val.unwrap_i32()).unwrap(); 816 wmemcheck.set_stack_size(size); 817 } 818 } 819 820 let global = instance.as_mut().get_exported_global(id, index); 821 822 // Note that mutability is bypassed here because this is, by definition, 823 // initialization of globals meaning that if it's an immutable global 824 // this is the one and only write. 825 // 826 // SAFETY: this is a valid module so `val` should have the correct type 827 // for this global, and it's safe to write to a global for the first 828 // time as-is happening here. 829 unsafe { 830 global.set_unchecked(&mut store, &val)?; 831 } 832 } 833 Ok(()) 834 } 835 836 pub fn initialize_instance( 837 store: &mut StoreOpaque, 838 instance: InstanceId, 839 module: &Module, 840 is_bulk_memory: bool, 841 ) -> Result<()> { 842 // If bulk memory is not enabled, bounds check the data and element segments before 843 // making any changes. With bulk memory enabled, initializers are processed 844 // in-order and side effects are observed up to the point of an out-of-bounds 845 // initializer, so the early checking is not desired. 846 if !is_bulk_memory { 847 check_init_bounds(store, instance, module)?; 848 } 849 850 let mut context = ConstEvalContext::new(instance); 851 let mut const_evaluator = ConstExprEvaluator::default(); 852 853 initialize_globals(store, &mut context, &mut const_evaluator, module)?; 854 initialize_tables(store, &mut context, &mut const_evaluator, module)?; 855 initialize_memories(store, &mut context, &mut const_evaluator, &module)?; 856 857 Ok(()) 858 } 859 860 #[cfg(test)] 861 mod tests { 862 use super::*; 863 864 #[test] 865 fn allocator_traits_are_object_safe() { 866 fn _instance_allocator(_: &dyn InstanceAllocator) {} 867 } 868 } 869