1 use crate::prelude::*; 2 use crate::runtime::vm::{ 3 ExportFunction, SendSyncPtr, StoreBox, VMArrayCallHostFuncContext, VMContext, VMFuncRef, 4 VMFunctionImport, VMOpaqueContext, 5 }; 6 use crate::runtime::Uninhabited; 7 use crate::store::{AutoAssertNoGc, StoreData, StoreOpaque, Stored}; 8 use crate::type_registry::RegisteredType; 9 use crate::{ 10 AsContext, AsContextMut, CallHook, Engine, Extern, FuncType, Instance, Module, Ref, 11 StoreContext, StoreContextMut, Val, ValRaw, ValType, 12 }; 13 use alloc::sync::Arc; 14 use core::ffi::c_void; 15 use core::future::Future; 16 use core::mem::{self, MaybeUninit}; 17 use core::num::NonZeroUsize; 18 use core::pin::Pin; 19 use core::ptr::{self, NonNull}; 20 use wasmtime_environ::VMSharedTypeIndex; 21 22 /// A reference to the abstract `nofunc` heap value. 23 /// 24 /// The are no instances of `(ref nofunc)`: it is an uninhabited type. 25 /// 26 /// There is precisely one instance of `(ref null nofunc)`, aka `nullfuncref`: 27 /// the null reference. 28 /// 29 /// This `NoFunc` Rust type's sole purpose is for use with [`Func::wrap`]- and 30 /// [`Func::typed`]-style APIs for statically typing a function as taking or 31 /// returning a `(ref null nofunc)` (aka `Option<NoFunc>`) which is always 32 /// `None`. 33 /// 34 /// # Example 35 /// 36 /// ``` 37 /// # use wasmtime::*; 38 /// # fn _foo() -> Result<()> { 39 /// let mut config = Config::new(); 40 /// config.wasm_function_references(true); 41 /// let engine = Engine::new(&config)?; 42 /// 43 /// let module = Module::new( 44 /// &engine, 45 /// r#" 46 /// (module 47 /// (func (export "f") (param (ref null nofunc)) 48 /// ;; If the reference is null, return. 49 /// local.get 0 50 /// ref.is_null nofunc 51 /// br_if 0 52 /// 53 /// ;; If the reference was not null (which is impossible) 54 /// ;; then raise a trap. 55 /// unreachable 56 /// ) 57 /// ) 58 /// "#, 59 /// )?; 60 /// 61 /// let mut store = Store::new(&engine, ()); 62 /// let instance = Instance::new(&mut store, &module, &[])?; 63 /// let f = instance.get_func(&mut store, "f").unwrap(); 64 /// 65 /// // We can cast a `(ref null nofunc)`-taking function into a typed function that 66 /// // takes an `Option<NoFunc>` via the `Func::typed` method. 67 /// let f = f.typed::<Option<NoFunc>, ()>(&store)?; 68 /// 69 /// // We can call the typed function, passing the null `nofunc` reference. 70 /// let result = f.call(&mut store, NoFunc::null()); 71 /// 72 /// // The function should not have trapped, because the reference we gave it was 73 /// // null (as it had to be, since `NoFunc` is uninhabited). 74 /// assert!(result.is_ok()); 75 /// # Ok(()) 76 /// # } 77 /// ``` 78 #[derive(Copy, Clone, Debug, PartialEq, Eq)] 79 pub struct NoFunc { 80 _inner: Uninhabited, 81 } 82 83 impl NoFunc { 84 /// Get the null `(ref null nofunc)` (aka `nullfuncref`) reference. 85 #[inline] 86 pub fn null() -> Option<NoFunc> { 87 None 88 } 89 90 /// Get the null `(ref null nofunc)` (aka `nullfuncref`) reference as a 91 /// [`Ref`]. 92 #[inline] 93 pub fn null_ref() -> Ref { 94 Ref::Func(None) 95 } 96 97 /// Get the null `(ref null nofunc)` (aka `nullfuncref`) reference as a 98 /// [`Val`]. 99 #[inline] 100 pub fn null_val() -> Val { 101 Val::FuncRef(None) 102 } 103 } 104 105 /// A WebAssembly function which can be called. 106 /// 107 /// This type typically represents an exported function from a WebAssembly 108 /// module instance. In this case a [`Func`] belongs to an [`Instance`] and is 109 /// loaded from there. A [`Func`] may also represent a host function as well in 110 /// some cases, too. 111 /// 112 /// Functions can be called in a few different ways, either synchronous or async 113 /// and either typed or untyped (more on this below). Note that host functions 114 /// are normally inserted directly into a [`Linker`](crate::Linker) rather than 115 /// using this directly, but both options are available. 116 /// 117 /// # `Func` and `async` 118 /// 119 /// Functions from the perspective of WebAssembly are always synchronous. You 120 /// might have an `async` function in Rust, however, which you'd like to make 121 /// available from WebAssembly. Wasmtime supports asynchronously calling 122 /// WebAssembly through native stack switching. You can get some more 123 /// information about [asynchronous configs](crate::Config::async_support), but 124 /// from the perspective of `Func` it's important to know that whether or not 125 /// your [`Store`](crate::Store) is asynchronous will dictate whether you call 126 /// functions through [`Func::call`] or [`Func::call_async`] (or the typed 127 /// wrappers such as [`TypedFunc::call`] vs [`TypedFunc::call_async`]). 128 /// 129 /// # To `Func::call` or to `Func::typed().call()` 130 /// 131 /// There's a 2x2 matrix of methods to call [`Func`]. Invocations can either be 132 /// asynchronous or synchronous. They can also be statically typed or not. 133 /// Whether or not an invocation is asynchronous is indicated via the method 134 /// being `async` and [`call_async`](Func::call_async) being the entry point. 135 /// Otherwise for statically typed or not your options are: 136 /// 137 /// * Dynamically typed - if you don't statically know the signature of the 138 /// function that you're calling you'll be using [`Func::call`] or 139 /// [`Func::call_async`]. These functions take a variable-length slice of 140 /// "boxed" arguments in their [`Val`] representation. Additionally the 141 /// results are returned as an owned slice of [`Val`]. These methods are not 142 /// optimized due to the dynamic type checks that must occur, in addition to 143 /// some dynamic allocations for where to put all the arguments. While this 144 /// allows you to call all possible wasm function signatures, if you're 145 /// looking for a speedier alternative you can also use... 146 /// 147 /// * Statically typed - if you statically know the type signature of the wasm 148 /// function you're calling, then you'll want to use the [`Func::typed`] 149 /// method to acquire an instance of [`TypedFunc`]. This structure is static proof 150 /// that the underlying wasm function has the ascripted type, and type 151 /// validation is only done once up-front. The [`TypedFunc::call`] and 152 /// [`TypedFunc::call_async`] methods are much more efficient than [`Func::call`] 153 /// and [`Func::call_async`] because the type signature is statically known. 154 /// This eschews runtime checks as much as possible to get into wasm as fast 155 /// as possible. 156 /// 157 /// # Examples 158 /// 159 /// One way to get a `Func` is from an [`Instance`] after you've instantiated 160 /// it: 161 /// 162 /// ``` 163 /// # use wasmtime::*; 164 /// # fn main() -> anyhow::Result<()> { 165 /// let engine = Engine::default(); 166 /// let module = Module::new(&engine, r#"(module (func (export "foo")))"#)?; 167 /// let mut store = Store::new(&engine, ()); 168 /// let instance = Instance::new(&mut store, &module, &[])?; 169 /// let foo = instance.get_func(&mut store, "foo").expect("export wasn't a function"); 170 /// 171 /// // Work with `foo` as a `Func` at this point, such as calling it 172 /// // dynamically... 173 /// match foo.call(&mut store, &[], &mut []) { 174 /// Ok(()) => { /* ... */ } 175 /// Err(trap) => { 176 /// panic!("execution of `foo` resulted in a wasm trap: {}", trap); 177 /// } 178 /// } 179 /// foo.call(&mut store, &[], &mut [])?; 180 /// 181 /// // ... or we can make a static assertion about its signature and call it. 182 /// // Our first call here can fail if the signatures don't match, and then the 183 /// // second call can fail if the function traps (like the `match` above). 184 /// let foo = foo.typed::<(), ()>(&store)?; 185 /// foo.call(&mut store, ())?; 186 /// # Ok(()) 187 /// # } 188 /// ``` 189 /// 190 /// You can also use the [`wrap` function](Func::wrap) to create a 191 /// `Func` 192 /// 193 /// ``` 194 /// # use wasmtime::*; 195 /// # fn main() -> anyhow::Result<()> { 196 /// let mut store = Store::<()>::default(); 197 /// 198 /// // Create a custom `Func` which can execute arbitrary code inside of the 199 /// // closure. 200 /// let add = Func::wrap(&mut store, |a: i32, b: i32| -> i32 { a + b }); 201 /// 202 /// // Next we can hook that up to a wasm module which uses it. 203 /// let module = Module::new( 204 /// store.engine(), 205 /// r#" 206 /// (module 207 /// (import "" "" (func $add (param i32 i32) (result i32))) 208 /// (func (export "call_add_twice") (result i32) 209 /// i32.const 1 210 /// i32.const 2 211 /// call $add 212 /// i32.const 3 213 /// i32.const 4 214 /// call $add 215 /// i32.add)) 216 /// "#, 217 /// )?; 218 /// let instance = Instance::new(&mut store, &module, &[add.into()])?; 219 /// let call_add_twice = instance.get_typed_func::<(), i32>(&mut store, "call_add_twice")?; 220 /// 221 /// assert_eq!(call_add_twice.call(&mut store, ())?, 10); 222 /// # Ok(()) 223 /// # } 224 /// ``` 225 /// 226 /// Or you could also create an entirely dynamic `Func`! 227 /// 228 /// ``` 229 /// # use wasmtime::*; 230 /// # fn main() -> anyhow::Result<()> { 231 /// let mut store = Store::<()>::default(); 232 /// 233 /// // Here we need to define the type signature of our `Double` function and 234 /// // then wrap it up in a `Func` 235 /// let double_type = wasmtime::FuncType::new( 236 /// store.engine(), 237 /// [wasmtime::ValType::I32].iter().cloned(), 238 /// [wasmtime::ValType::I32].iter().cloned(), 239 /// ); 240 /// let double = Func::new(&mut store, double_type, |_, params, results| { 241 /// let mut value = params[0].unwrap_i32(); 242 /// value *= 2; 243 /// results[0] = value.into(); 244 /// Ok(()) 245 /// }); 246 /// 247 /// let module = Module::new( 248 /// store.engine(), 249 /// r#" 250 /// (module 251 /// (import "" "" (func $double (param i32) (result i32))) 252 /// (func $start 253 /// i32.const 1 254 /// call $double 255 /// drop) 256 /// (start $start)) 257 /// "#, 258 /// )?; 259 /// let instance = Instance::new(&mut store, &module, &[double.into()])?; 260 /// // .. work with `instance` if necessary 261 /// # Ok(()) 262 /// # } 263 /// ``` 264 #[derive(Copy, Clone, Debug)] 265 #[repr(transparent)] // here for the C API 266 pub struct Func(Stored<FuncData>); 267 268 pub(crate) struct FuncData { 269 kind: FuncKind, 270 271 // A pointer to the in-store `VMFuncRef` for this function, if 272 // any. 273 // 274 // When a function is passed to Wasm but doesn't have a Wasm-to-native 275 // trampoline, we have to patch it in. But that requires mutating the 276 // `VMFuncRef`, and this function could be shared across 277 // threads. So we instead copy and pin the `VMFuncRef` into 278 // `StoreOpaque::func_refs`, where we can safely patch the field without 279 // worrying about synchronization and we hold a pointer to it here so we can 280 // reuse it rather than re-copy if it is passed to Wasm again. 281 in_store_func_ref: Option<SendSyncPtr<VMFuncRef>>, 282 283 // This is somewhat expensive to load from the `Engine` and in most 284 // optimized use cases (e.g. `TypedFunc`) it's not actually needed or it's 285 // only needed rarely. To handle that this is an optionally-contained field 286 // which is lazily loaded into as part of `Func::call`. 287 // 288 // Also note that this is intentionally placed behind a pointer to keep it 289 // small as `FuncData` instances are often inserted into a `Store`. 290 ty: Option<Box<FuncType>>, 291 } 292 293 /// The three ways that a function can be created and referenced from within a 294 /// store. 295 enum FuncKind { 296 /// A function already owned by the store via some other means. This is 297 /// used, for example, when creating a `Func` from an instance's exported 298 /// function. The instance's `InstanceHandle` is already owned by the store 299 /// and we just have some pointers into that which represent how to call the 300 /// function. 301 StoreOwned { export: ExportFunction }, 302 303 /// A function is shared across possibly other stores, hence the `Arc`. This 304 /// variant happens when a `Linker`-defined function is instantiated within 305 /// a `Store` (e.g. via `Linker::get` or similar APIs). The `Arc` here 306 /// indicates that there's some number of other stores holding this function 307 /// too, so dropping this may not deallocate the underlying 308 /// `InstanceHandle`. 309 SharedHost(Arc<HostFunc>), 310 311 /// A uniquely-owned host function within a `Store`. This comes about with 312 /// `Func::new` or similar APIs. The `HostFunc` internally owns the 313 /// `InstanceHandle` and that will get dropped when this `HostFunc` itself 314 /// is dropped. 315 /// 316 /// Note that this is intentionally placed behind a `Box` to minimize the 317 /// size of this enum since the most common variant for high-performance 318 /// situations is `SharedHost` and `StoreOwned`, so this ideally isn't 319 /// larger than those two. 320 Host(Box<HostFunc>), 321 322 /// A reference to a `HostFunc`, but one that's "rooted" in the `Store` 323 /// itself. 324 /// 325 /// This variant is created when an `InstancePre<T>` is instantiated in to a 326 /// `Store<T>`. In that situation the `InstancePre<T>` already has a list of 327 /// host functions that are packaged up in an `Arc`, so the `Arc<[T]>` is 328 /// cloned once into the `Store` to avoid each individual function requiring 329 /// an `Arc::clone`. 330 /// 331 /// The lifetime management of this type is `unsafe` because 332 /// `RootedHostFunc` is a small wrapper around `NonNull<HostFunc>`. To be 333 /// safe this is required that the memory of the host function is pinned 334 /// elsewhere (e.g. the `Arc` in the `Store`). 335 RootedHost(RootedHostFunc), 336 } 337 338 macro_rules! for_each_function_signature { 339 ($mac:ident) => { 340 $mac!(0); 341 $mac!(1 A1); 342 $mac!(2 A1 A2); 343 $mac!(3 A1 A2 A3); 344 $mac!(4 A1 A2 A3 A4); 345 $mac!(5 A1 A2 A3 A4 A5); 346 $mac!(6 A1 A2 A3 A4 A5 A6); 347 $mac!(7 A1 A2 A3 A4 A5 A6 A7); 348 $mac!(8 A1 A2 A3 A4 A5 A6 A7 A8); 349 $mac!(9 A1 A2 A3 A4 A5 A6 A7 A8 A9); 350 $mac!(10 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10); 351 $mac!(11 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11); 352 $mac!(12 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11 A12); 353 $mac!(13 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11 A12 A13); 354 $mac!(14 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11 A12 A13 A14); 355 $mac!(15 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11 A12 A13 A14 A15); 356 $mac!(16 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11 A12 A13 A14 A15 A16); 357 $mac!(17 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11 A12 A13 A14 A15 A16 A17); 358 }; 359 } 360 361 mod typed; 362 pub use typed::*; 363 364 impl Func { 365 /// Creates a new `Func` with the given arguments, typically to create a 366 /// host-defined function to pass as an import to a module. 367 /// 368 /// * `store` - the store in which to create this [`Func`], which will own 369 /// the return value. 370 /// 371 /// * `ty` - the signature of this function, used to indicate what the 372 /// inputs and outputs are. 373 /// 374 /// * `func` - the native code invoked whenever this `Func` will be called. 375 /// This closure is provided a [`Caller`] as its first argument to learn 376 /// information about the caller, and then it's passed a list of 377 /// parameters as a slice along with a mutable slice of where to write 378 /// results. 379 /// 380 /// Note that the implementation of `func` must adhere to the `ty` signature 381 /// given, error or traps may occur if it does not respect the `ty` 382 /// signature. For example if the function type declares that it returns one 383 /// i32 but the `func` closures does not write anything into the results 384 /// slice then a trap may be generated. 385 /// 386 /// Additionally note that this is quite a dynamic function since signatures 387 /// are not statically known. For a more performant and ergonomic `Func` 388 /// it's recommended to use [`Func::wrap`] if you can because with 389 /// statically known signatures Wasmtime can optimize the implementation 390 /// much more. 391 /// 392 /// For more information about `Send + Sync + 'static` requirements on the 393 /// `func`, see [`Func::wrap`](#why-send--sync--static). 394 /// 395 /// # Errors 396 /// 397 /// The host-provided function here returns a 398 /// [`Result<()>`](anyhow::Result). If the function returns `Ok(())` then 399 /// that indicates that the host function completed successfully and wrote 400 /// the result into the `&mut [Val]` argument. 401 /// 402 /// If the function returns `Err(e)`, however, then this is equivalent to 403 /// the host function triggering a trap for wasm. WebAssembly execution is 404 /// immediately halted and the original caller of [`Func::call`], for 405 /// example, will receive the error returned here (possibly with 406 /// [`WasmBacktrace`](crate::WasmBacktrace) context information attached). 407 /// 408 /// For more information about errors in Wasmtime see the [`Trap`] 409 /// documentation. 410 /// 411 /// [`Trap`]: crate::Trap 412 /// 413 /// # Panics 414 /// 415 /// Panics if the given function type is not associated with this store's 416 /// engine. 417 pub fn new<T>( 418 store: impl AsContextMut<Data = T>, 419 ty: FuncType, 420 func: impl Fn(Caller<'_, T>, &[Val], &mut [Val]) -> Result<()> + Send + Sync + 'static, 421 ) -> Self { 422 assert!(ty.comes_from_same_engine(store.as_context().engine())); 423 let ty_clone = ty.clone(); 424 unsafe { 425 Func::new_unchecked(store, ty, move |caller, values| { 426 Func::invoke_host_func_for_wasm(caller, &ty_clone, values, &func) 427 }) 428 } 429 } 430 431 /// Creates a new [`Func`] with the given arguments, although has fewer 432 /// runtime checks than [`Func::new`]. 433 /// 434 /// This function takes a callback of a different signature than 435 /// [`Func::new`], instead receiving a raw pointer with a list of [`ValRaw`] 436 /// structures. These values have no type information associated with them 437 /// so it's up to the caller to provide a function that will correctly 438 /// interpret the list of values as those coming from the `ty` specified. 439 /// 440 /// If you're calling this from Rust it's recommended to either instead use 441 /// [`Func::new`] or [`Func::wrap`]. The [`Func::wrap`] API, in particular, 442 /// is both safer and faster than this API. 443 /// 444 /// # Errors 445 /// 446 /// See [`Func::new`] for the behavior of returning an error from the host 447 /// function provided here. 448 /// 449 /// # Unsafety 450 /// 451 /// This function is not safe because it's not known at compile time that 452 /// the `func` provided correctly interprets the argument types provided to 453 /// it, or that the results it produces will be of the correct type. 454 /// 455 /// # Panics 456 /// 457 /// Panics if the given function type is not associated with this store's 458 /// engine. 459 pub unsafe fn new_unchecked<T>( 460 mut store: impl AsContextMut<Data = T>, 461 ty: FuncType, 462 func: impl Fn(Caller<'_, T>, &mut [ValRaw]) -> Result<()> + Send + Sync + 'static, 463 ) -> Self { 464 assert!(ty.comes_from_same_engine(store.as_context().engine())); 465 let store = store.as_context_mut().0; 466 let host = HostFunc::new_unchecked(store.engine(), ty, func); 467 host.into_func(store) 468 } 469 470 /// Creates a new host-defined WebAssembly function which, when called, 471 /// will run the asynchronous computation defined by `func` to completion 472 /// and then return the result to WebAssembly. 473 /// 474 /// This function is the asynchronous analogue of [`Func::new`] and much of 475 /// that documentation applies to this as well. The key difference is that 476 /// `func` returns a future instead of simply a `Result`. Note that the 477 /// returned future can close over any of the arguments, but it cannot close 478 /// over the state of the closure itself. It's recommended to store any 479 /// necessary async state in the `T` of the [`Store<T>`](crate::Store) which 480 /// can be accessed through [`Caller::data`] or [`Caller::data_mut`]. 481 /// 482 /// For more information on `Send + Sync + 'static`, see 483 /// [`Func::wrap`](#why-send--sync--static). 484 /// 485 /// # Panics 486 /// 487 /// This function will panic if `store` is not associated with an [async 488 /// config](crate::Config::async_support). 489 /// 490 /// Panics if the given function type is not associated with this store's 491 /// engine. 492 /// 493 /// # Errors 494 /// 495 /// See [`Func::new`] for the behavior of returning an error from the host 496 /// function provided here. 497 /// 498 /// # Examples 499 /// 500 /// ``` 501 /// # use wasmtime::*; 502 /// # fn main() -> anyhow::Result<()> { 503 /// // Simulate some application-specific state as well as asynchronous 504 /// // functions to query that state. 505 /// struct MyDatabase { 506 /// // ... 507 /// } 508 /// 509 /// impl MyDatabase { 510 /// async fn get_row_count(&self) -> u32 { 511 /// // ... 512 /// # 100 513 /// } 514 /// } 515 /// 516 /// let my_database = MyDatabase { 517 /// // ... 518 /// }; 519 /// 520 /// // Using `new_async` we can hook up into calling our async 521 /// // `get_row_count` function. 522 /// let engine = Engine::new(Config::new().async_support(true))?; 523 /// let mut store = Store::new(&engine, MyDatabase { 524 /// // ... 525 /// }); 526 /// let get_row_count_type = wasmtime::FuncType::new( 527 /// &engine, 528 /// None, 529 /// Some(wasmtime::ValType::I32), 530 /// ); 531 /// let get = Func::new_async(&mut store, get_row_count_type, |caller, _params, results| { 532 /// Box::new(async move { 533 /// let count = caller.data().get_row_count().await; 534 /// results[0] = Val::I32(count as i32); 535 /// Ok(()) 536 /// }) 537 /// }); 538 /// // ... 539 /// # Ok(()) 540 /// # } 541 /// ``` 542 #[cfg(all(feature = "async", feature = "cranelift"))] 543 pub fn new_async<T, F>(store: impl AsContextMut<Data = T>, ty: FuncType, func: F) -> Func 544 where 545 F: for<'a> Fn( 546 Caller<'a, T>, 547 &'a [Val], 548 &'a mut [Val], 549 ) -> Box<dyn Future<Output = Result<()>> + Send + 'a> 550 + Send 551 + Sync 552 + 'static, 553 { 554 assert!( 555 store.as_context().async_support(), 556 "cannot use `new_async` without enabling async support in the config" 557 ); 558 assert!(ty.comes_from_same_engine(store.as_context().engine())); 559 Func::new(store, ty, move |mut caller, params, results| { 560 let async_cx = caller 561 .store 562 .as_context_mut() 563 .0 564 .async_cx() 565 .expect("Attempt to spawn new action on dying fiber"); 566 let mut future = Pin::from(func(caller, params, results)); 567 match unsafe { async_cx.block_on(future.as_mut()) } { 568 Ok(Ok(())) => Ok(()), 569 Ok(Err(trap)) | Err(trap) => Err(trap), 570 } 571 }) 572 } 573 574 pub(crate) unsafe fn from_vm_func_ref( 575 store: &mut StoreOpaque, 576 raw: *mut VMFuncRef, 577 ) -> Option<Func> { 578 let func_ref = NonNull::new(raw)?; 579 debug_assert!(func_ref.as_ref().type_index != VMSharedTypeIndex::default()); 580 let export = ExportFunction { func_ref }; 581 Some(Func::from_wasmtime_function(export, store)) 582 } 583 584 /// Creates a new `Func` from the given Rust closure. 585 /// 586 /// This function will create a new `Func` which, when called, will 587 /// execute the given Rust closure. Unlike [`Func::new`] the target 588 /// function being called is known statically so the type signature can 589 /// be inferred. Rust types will map to WebAssembly types as follows: 590 /// 591 /// | Rust Argument Type | WebAssembly Type | 592 /// |-----------------------------------|-------------------------------------------| 593 /// | `i32` | `i32` | 594 /// | `u32` | `i32` | 595 /// | `i64` | `i64` | 596 /// | `u64` | `i64` | 597 /// | `f32` | `f32` | 598 /// | `f64` | `f64` | 599 /// | `V128` on x86-64 and aarch64 only | `v128` | 600 /// | `Option<Func>` | `funcref` aka `(ref null func)` | 601 /// | `Func` | `(ref func)` | 602 /// | `Option<Nofunc>` | `nullfuncref` aka `(ref null nofunc)` | 603 /// | `NoFunc` | `(ref nofunc)` | 604 /// | `Option<Rooted<ExternRef>>` | `externref` aka `(ref null extern)` | 605 /// | `Rooted<ExternRef>` | `(ref extern)` | 606 /// | `Option<NoExtern>` | `nullexternref` aka `(ref null noextern)` | 607 /// | `NoExtern` | `(ref noextern)` | 608 /// | `Option<Rooted<AnyRef>>` | `anyref` aka `(ref null any)` | 609 /// | `Rooted<AnyRef>` | `(ref any)` | 610 /// | `Option<Rooted<EqRef>>` | `eqref` aka `(ref null eq)` | 611 /// | `Rooted<EqRef>` | `(ref eq)` | 612 /// | `Option<I31>` | `i31ref` aka `(ref null i31)` | 613 /// | `I31` | `(ref i31)` | 614 /// | `Option<Rooted<StructRef>>` | `(ref null struct)` | 615 /// | `Rooted<StructRef>` | `(ref struct)` | 616 /// | `Option<Rooted<ArrayRef>>` | `(ref null array)` | 617 /// | `Rooted<ArrayRef>` | `(ref array)` | 618 /// 619 /// Note that anywhere a `Rooted<T>` appears, a `ManuallyRooted<T>` may also 620 /// be used. 621 /// 622 /// Any of the Rust types can be returned from the closure as well, in 623 /// addition to some extra types 624 /// 625 /// | Rust Return Type | WebAssembly Return Type | Meaning | 626 /// |-------------------|-------------------------|-----------------------| 627 /// | `()` | nothing | no return value | 628 /// | `T` | `T` | a single return value | 629 /// | `(T1, T2, ...)` | `T1 T2 ...` | multiple returns | 630 /// 631 /// Note that all return types can also be wrapped in `Result<_>` to 632 /// indicate that the host function can generate a trap as well as possibly 633 /// returning a value. 634 /// 635 /// Finally you can also optionally take [`Caller`] as the first argument of 636 /// your closure. If inserted then you're able to inspect the caller's 637 /// state, for example the [`Memory`](crate::Memory) it has exported so you 638 /// can read what pointers point to. 639 /// 640 /// Note that when using this API, the intention is to create as thin of a 641 /// layer as possible for when WebAssembly calls the function provided. With 642 /// sufficient inlining and optimization the WebAssembly will call straight 643 /// into `func` provided, with no extra fluff entailed. 644 /// 645 /// # Why `Send + Sync + 'static`? 646 /// 647 /// All host functions defined in a [`Store`](crate::Store) (including 648 /// those from [`Func::new`] and other constructors) require that the 649 /// `func` provided is `Send + Sync + 'static`. Additionally host functions 650 /// always are `Fn` as opposed to `FnMut` or `FnOnce`. This can at-a-glance 651 /// feel restrictive since the closure cannot close over as many types as 652 /// before. The reason for this, though, is to ensure that 653 /// [`Store<T>`](crate::Store) can implement both the `Send` and `Sync` 654 /// traits. 655 /// 656 /// Fear not, however, because this isn't as restrictive as it seems! Host 657 /// functions are provided a [`Caller<'_, T>`](crate::Caller) argument which 658 /// allows access to the host-defined data within the 659 /// [`Store`](crate::Store). The `T` type is not required to be any of 660 /// `Send`, `Sync`, or `'static`! This means that you can store whatever 661 /// you'd like in `T` and have it accessible by all host functions. 662 /// Additionally mutable access to `T` is allowed through 663 /// [`Caller::data_mut`]. 664 /// 665 /// Most host-defined [`Func`] values provide closures that end up not 666 /// actually closing over any values. These zero-sized types will use the 667 /// context from [`Caller`] for host-defined information. 668 /// 669 /// # Errors 670 /// 671 /// The closure provided here to `wrap` can optionally return a 672 /// [`Result<T>`](anyhow::Result). Returning `Ok(t)` represents the host 673 /// function successfully completing with the `t` result. Returning 674 /// `Err(e)`, however, is equivalent to raising a custom wasm trap. 675 /// Execution of WebAssembly does not resume and the stack is unwound to the 676 /// original caller of the function where the error is returned. 677 /// 678 /// For more information about errors in Wasmtime see the [`Trap`] 679 /// documentation. 680 /// 681 /// [`Trap`]: crate::Trap 682 /// 683 /// # Examples 684 /// 685 /// First up we can see how simple wasm imports can be implemented, such 686 /// as a function that adds its two arguments and returns the result. 687 /// 688 /// ``` 689 /// # use wasmtime::*; 690 /// # fn main() -> anyhow::Result<()> { 691 /// # let mut store = Store::<()>::default(); 692 /// let add = Func::wrap(&mut store, |a: i32, b: i32| a + b); 693 /// let module = Module::new( 694 /// store.engine(), 695 /// r#" 696 /// (module 697 /// (import "" "" (func $add (param i32 i32) (result i32))) 698 /// (func (export "foo") (param i32 i32) (result i32) 699 /// local.get 0 700 /// local.get 1 701 /// call $add)) 702 /// "#, 703 /// )?; 704 /// let instance = Instance::new(&mut store, &module, &[add.into()])?; 705 /// let foo = instance.get_typed_func::<(i32, i32), i32>(&mut store, "foo")?; 706 /// assert_eq!(foo.call(&mut store, (1, 2))?, 3); 707 /// # Ok(()) 708 /// # } 709 /// ``` 710 /// 711 /// We can also do the same thing, but generate a trap if the addition 712 /// overflows: 713 /// 714 /// ``` 715 /// # use wasmtime::*; 716 /// # fn main() -> anyhow::Result<()> { 717 /// # let mut store = Store::<()>::default(); 718 /// let add = Func::wrap(&mut store, |a: i32, b: i32| { 719 /// match a.checked_add(b) { 720 /// Some(i) => Ok(i), 721 /// None => anyhow::bail!("overflow"), 722 /// } 723 /// }); 724 /// let module = Module::new( 725 /// store.engine(), 726 /// r#" 727 /// (module 728 /// (import "" "" (func $add (param i32 i32) (result i32))) 729 /// (func (export "foo") (param i32 i32) (result i32) 730 /// local.get 0 731 /// local.get 1 732 /// call $add)) 733 /// "#, 734 /// )?; 735 /// let instance = Instance::new(&mut store, &module, &[add.into()])?; 736 /// let foo = instance.get_typed_func::<(i32, i32), i32>(&mut store, "foo")?; 737 /// assert_eq!(foo.call(&mut store, (1, 2))?, 3); 738 /// assert!(foo.call(&mut store, (i32::max_value(), 1)).is_err()); 739 /// # Ok(()) 740 /// # } 741 /// ``` 742 /// 743 /// And don't forget all the wasm types are supported! 744 /// 745 /// ``` 746 /// # use wasmtime::*; 747 /// # fn main() -> anyhow::Result<()> { 748 /// # let mut store = Store::<()>::default(); 749 /// let debug = Func::wrap(&mut store, |a: i32, b: u32, c: f32, d: i64, e: u64, f: f64| { 750 /// 751 /// println!("a={}", a); 752 /// println!("b={}", b); 753 /// println!("c={}", c); 754 /// println!("d={}", d); 755 /// println!("e={}", e); 756 /// println!("f={}", f); 757 /// }); 758 /// let module = Module::new( 759 /// store.engine(), 760 /// r#" 761 /// (module 762 /// (import "" "" (func $debug (param i32 i32 f32 i64 i64 f64))) 763 /// (func (export "foo") 764 /// i32.const -1 765 /// i32.const 1 766 /// f32.const 2 767 /// i64.const -3 768 /// i64.const 3 769 /// f64.const 4 770 /// call $debug)) 771 /// "#, 772 /// )?; 773 /// let instance = Instance::new(&mut store, &module, &[debug.into()])?; 774 /// let foo = instance.get_typed_func::<(), ()>(&mut store, "foo")?; 775 /// foo.call(&mut store, ())?; 776 /// # Ok(()) 777 /// # } 778 /// ``` 779 /// 780 /// Finally if you want to get really fancy you can also implement 781 /// imports that read/write wasm module's memory 782 /// 783 /// ``` 784 /// use std::str; 785 /// 786 /// # use wasmtime::*; 787 /// # fn main() -> anyhow::Result<()> { 788 /// # let mut store = Store::default(); 789 /// let log_str = Func::wrap(&mut store, |mut caller: Caller<'_, ()>, ptr: i32, len: i32| { 790 /// let mem = match caller.get_export("memory") { 791 /// Some(Extern::Memory(mem)) => mem, 792 /// _ => anyhow::bail!("failed to find host memory"), 793 /// }; 794 /// let data = mem.data(&caller) 795 /// .get(ptr as u32 as usize..) 796 /// .and_then(|arr| arr.get(..len as u32 as usize)); 797 /// let string = match data { 798 /// Some(data) => match str::from_utf8(data) { 799 /// Ok(s) => s, 800 /// Err(_) => anyhow::bail!("invalid utf-8"), 801 /// }, 802 /// None => anyhow::bail!("pointer/length out of bounds"), 803 /// }; 804 /// assert_eq!(string, "Hello, world!"); 805 /// println!("{}", string); 806 /// Ok(()) 807 /// }); 808 /// let module = Module::new( 809 /// store.engine(), 810 /// r#" 811 /// (module 812 /// (import "" "" (func $log_str (param i32 i32))) 813 /// (func (export "foo") 814 /// i32.const 4 ;; ptr 815 /// i32.const 13 ;; len 816 /// call $log_str) 817 /// (memory (export "memory") 1) 818 /// (data (i32.const 4) "Hello, world!")) 819 /// "#, 820 /// )?; 821 /// let instance = Instance::new(&mut store, &module, &[log_str.into()])?; 822 /// let foo = instance.get_typed_func::<(), ()>(&mut store, "foo")?; 823 /// foo.call(&mut store, ())?; 824 /// # Ok(()) 825 /// # } 826 /// ``` 827 pub fn wrap<T, Params, Results>( 828 mut store: impl AsContextMut<Data = T>, 829 func: impl IntoFunc<T, Params, Results>, 830 ) -> Func { 831 let store = store.as_context_mut().0; 832 // part of this unsafety is about matching the `T` to a `Store<T>`, 833 // which is done through the `AsContextMut` bound above. 834 unsafe { 835 let host = HostFunc::wrap(store.engine(), func); 836 host.into_func(store) 837 } 838 } 839 840 fn wrap_inner<F, T, Params, Results>(mut store: impl AsContextMut<Data = T>, func: F) -> Func 841 where 842 F: Fn(Caller<'_, T>, Params) -> Results + Send + Sync + 'static, 843 Params: WasmTyList, 844 Results: WasmRet, 845 { 846 let store = store.as_context_mut().0; 847 // part of this unsafety is about matching the `T` to a `Store<T>`, 848 // which is done through the `AsContextMut` bound above. 849 unsafe { 850 let host = HostFunc::wrap_inner(store.engine(), func); 851 host.into_func(store) 852 } 853 } 854 855 /// Same as [`Func::wrap`], except the closure asynchronously produces the 856 /// result and the arguments are passed within a tuple. For more information 857 /// see the [`Func`] documentation. 858 /// 859 /// # Panics 860 /// 861 /// This function will panic if called with a non-asynchronous store. 862 #[cfg(feature = "async")] 863 pub fn wrap_async<T, F, P, R>(store: impl AsContextMut<Data = T>, func: F) -> Func 864 where 865 F: for<'a> Fn(Caller<'a, T>, P) -> Box<dyn Future<Output = R> + Send + 'a> 866 + Send 867 + Sync 868 + 'static, 869 P: WasmTyList, 870 R: WasmRet, 871 { 872 assert!( 873 store.as_context().async_support(), 874 concat!("cannot use `wrap_async` without enabling async support on the config") 875 ); 876 Func::wrap_inner(store, move |mut caller: Caller<'_, T>, args| { 877 let async_cx = caller 878 .store 879 .as_context_mut() 880 .0 881 .async_cx() 882 .expect("Attempt to start async function on dying fiber"); 883 let mut future = Pin::from(func(caller, args)); 884 885 match unsafe { async_cx.block_on(future.as_mut()) } { 886 Ok(ret) => ret.into_fallible(), 887 Err(e) => R::fallible_from_error(e), 888 } 889 }) 890 } 891 892 /// Returns the underlying wasm type that this `Func` has. 893 /// 894 /// # Panics 895 /// 896 /// Panics if `store` does not own this function. 897 pub fn ty(&self, store: impl AsContext) -> FuncType { 898 self.load_ty(&store.as_context().0) 899 } 900 901 /// Forcibly loads the type of this function from the `Engine`. 902 /// 903 /// Note that this is a somewhat expensive method since it requires taking a 904 /// lock as well as cloning a type. 905 pub(crate) fn load_ty(&self, store: &StoreOpaque) -> FuncType { 906 assert!(self.comes_from_same_store(store)); 907 FuncType::from_shared_type_index(store.engine(), self.type_index(store.store_data())) 908 } 909 910 /// Does this function match the given type? 911 /// 912 /// That is, is this function's type a subtype of the given type? 913 /// 914 /// # Panics 915 /// 916 /// Panics if this function is not associated with the given store or if the 917 /// function type is not associated with the store's engine. 918 pub fn matches_ty(&self, store: impl AsContext, func_ty: &FuncType) -> bool { 919 self._matches_ty(store.as_context().0, func_ty) 920 } 921 922 pub(crate) fn _matches_ty(&self, store: &StoreOpaque, func_ty: &FuncType) -> bool { 923 let actual_ty = self.load_ty(store); 924 actual_ty.matches(func_ty) 925 } 926 927 pub(crate) fn ensure_matches_ty(&self, store: &StoreOpaque, func_ty: &FuncType) -> Result<()> { 928 if !self.comes_from_same_store(store) { 929 bail!("function used with wrong store"); 930 } 931 if self._matches_ty(store, func_ty) { 932 Ok(()) 933 } else { 934 let actual_ty = self.load_ty(store); 935 bail!("type mismatch: expected {func_ty}, found {actual_ty}") 936 } 937 } 938 939 /// Gets a reference to the `FuncType` for this function. 940 /// 941 /// Note that this returns both a reference to the type of this function as 942 /// well as a reference back to the store itself. This enables using the 943 /// `StoreOpaque` while the `FuncType` is also being used (from the 944 /// perspective of the borrow-checker) because otherwise the signature would 945 /// consider `StoreOpaque` borrowed mutable while `FuncType` is in use. 946 fn ty_ref<'a>(&self, store: &'a mut StoreOpaque) -> (&'a FuncType, &'a StoreOpaque) { 947 // If we haven't loaded our type into the store yet then do so lazily at 948 // this time. 949 if store.store_data()[self.0].ty.is_none() { 950 let ty = self.load_ty(store); 951 store.store_data_mut()[self.0].ty = Some(Box::new(ty)); 952 } 953 954 (store.store_data()[self.0].ty.as_ref().unwrap(), store) 955 } 956 957 pub(crate) fn type_index(&self, data: &StoreData) -> VMSharedTypeIndex { 958 data[self.0].sig_index() 959 } 960 961 /// Invokes this function with the `params` given and writes returned values 962 /// to `results`. 963 /// 964 /// The `params` here must match the type signature of this `Func`, or an 965 /// error will occur. Additionally `results` must have the same 966 /// length as the number of results for this function. Calling this function 967 /// will synchronously execute the WebAssembly function referenced to get 968 /// the results. 969 /// 970 /// This function will return `Ok(())` if execution completed without a trap 971 /// or error of any kind. In this situation the results will be written to 972 /// the provided `results` array. 973 /// 974 /// # Errors 975 /// 976 /// Any error which occurs throughout the execution of the function will be 977 /// returned as `Err(e)`. The [`Error`](anyhow::Error) type can be inspected 978 /// for the precise error cause such as: 979 /// 980 /// * [`Trap`] - indicates that a wasm trap happened and execution was 981 /// halted. 982 /// * [`WasmBacktrace`] - optionally included on errors for backtrace 983 /// information of the trap/error. 984 /// * Other string-based errors to indicate issues such as type errors with 985 /// `params`. 986 /// * Any host-originating error originally returned from a function defined 987 /// via [`Func::new`], for example. 988 /// 989 /// Errors typically indicate that execution of WebAssembly was halted 990 /// mid-way and did not complete after the error condition happened. 991 /// 992 /// [`Trap`]: crate::Trap 993 /// 994 /// # Panics 995 /// 996 /// This function will panic if called on a function belonging to an async 997 /// store. Asynchronous stores must always use `call_async`. Also panics if 998 /// `store` does not own this function. 999 /// 1000 /// [`WasmBacktrace`]: crate::WasmBacktrace 1001 pub fn call( 1002 &self, 1003 mut store: impl AsContextMut, 1004 params: &[Val], 1005 results: &mut [Val], 1006 ) -> Result<()> { 1007 assert!( 1008 !store.as_context().async_support(), 1009 "must use `call_async` when async support is enabled on the config", 1010 ); 1011 let mut store = store.as_context_mut(); 1012 let need_gc = self.call_impl_check_args(&mut store, params, results)?; 1013 if need_gc { 1014 store.0.gc(); 1015 } 1016 unsafe { self.call_impl_do_call(&mut store, params, results) } 1017 } 1018 1019 /// Invokes this function in an "unchecked" fashion, reading parameters and 1020 /// writing results to `params_and_returns`. 1021 /// 1022 /// This function is the same as [`Func::call`] except that the arguments 1023 /// and results both use a different representation. If possible it's 1024 /// recommended to use [`Func::call`] if safety isn't necessary or to use 1025 /// [`Func::typed`] in conjunction with [`TypedFunc::call`] since that's 1026 /// both safer and faster than this method of invoking a function. 1027 /// 1028 /// Note that if this function takes `externref` arguments then it will 1029 /// **not** automatically GC unlike the [`Func::call`] and 1030 /// [`TypedFunc::call`] functions. This means that if this function is 1031 /// invoked many times with new `ExternRef` values and no other GC happens 1032 /// via any other means then no values will get collected. 1033 /// 1034 /// # Errors 1035 /// 1036 /// For more information about errors see the [`Func::call`] documentation. 1037 /// 1038 /// # Unsafety 1039 /// 1040 /// This function is unsafe because the `params_and_returns` argument is not 1041 /// validated at all. It must uphold invariants such as: 1042 /// 1043 /// * It's a valid pointer to an array 1044 /// * It has enough space to store all parameters 1045 /// * It has enough space to store all results (not at the same time as 1046 /// parameters) 1047 /// * Parameters are initially written to the array and have the correct 1048 /// types and such. 1049 /// * Reference types like `externref` and `funcref` are valid at the 1050 /// time of this call and for the `store` specified. 1051 /// 1052 /// These invariants are all upheld for you with [`Func::call`] and 1053 /// [`TypedFunc::call`]. 1054 pub unsafe fn call_unchecked( 1055 &self, 1056 mut store: impl AsContextMut, 1057 params_and_returns: *mut ValRaw, 1058 params_and_returns_capacity: usize, 1059 ) -> Result<()> { 1060 let mut store = store.as_context_mut(); 1061 let data = &store.0.store_data()[self.0]; 1062 let func_ref = data.export().func_ref; 1063 Self::call_unchecked_raw( 1064 &mut store, 1065 func_ref, 1066 params_and_returns, 1067 params_and_returns_capacity, 1068 ) 1069 } 1070 1071 pub(crate) unsafe fn call_unchecked_raw<T>( 1072 store: &mut StoreContextMut<'_, T>, 1073 func_ref: NonNull<VMFuncRef>, 1074 params_and_returns: *mut ValRaw, 1075 params_and_returns_capacity: usize, 1076 ) -> Result<()> { 1077 invoke_wasm_and_catch_traps(store, |caller| { 1078 let func_ref = func_ref.as_ref(); 1079 (func_ref.array_call)( 1080 func_ref.vmctx, 1081 caller.cast::<VMOpaqueContext>(), 1082 params_and_returns, 1083 params_and_returns_capacity, 1084 ) 1085 }) 1086 } 1087 1088 /// Converts the raw representation of a `funcref` into an `Option<Func>` 1089 /// 1090 /// This is intended to be used in conjunction with [`Func::new_unchecked`], 1091 /// [`Func::call_unchecked`], and [`ValRaw`] with its `funcref` field. 1092 /// 1093 /// # Unsafety 1094 /// 1095 /// This function is not safe because `raw` is not validated at all. The 1096 /// caller must guarantee that `raw` is owned by the `store` provided and is 1097 /// valid within the `store`. 1098 pub unsafe fn from_raw(mut store: impl AsContextMut, raw: *mut c_void) -> Option<Func> { 1099 Self::_from_raw(store.as_context_mut().0, raw) 1100 } 1101 1102 pub(crate) unsafe fn _from_raw(store: &mut StoreOpaque, raw: *mut c_void) -> Option<Func> { 1103 Func::from_vm_func_ref(store, raw.cast()) 1104 } 1105 1106 /// Extracts the raw value of this `Func`, which is owned by `store`. 1107 /// 1108 /// This function returns a value that's suitable for writing into the 1109 /// `funcref` field of the [`ValRaw`] structure. 1110 /// 1111 /// # Unsafety 1112 /// 1113 /// The returned value is only valid for as long as the store is alive and 1114 /// this function is properly rooted within it. Additionally this function 1115 /// should not be liberally used since it's a very low-level knob. 1116 pub unsafe fn to_raw(&self, mut store: impl AsContextMut) -> *mut c_void { 1117 self.vm_func_ref(store.as_context_mut().0).as_ptr().cast() 1118 } 1119 1120 /// Invokes this function with the `params` given, returning the results 1121 /// asynchronously. 1122 /// 1123 /// This function is the same as [`Func::call`] except that it is 1124 /// asynchronous. This is only compatible with stores associated with an 1125 /// [asynchronous config](crate::Config::async_support). 1126 /// 1127 /// It's important to note that the execution of WebAssembly will happen 1128 /// synchronously in the `poll` method of the future returned from this 1129 /// function. Wasmtime does not manage its own thread pool or similar to 1130 /// execute WebAssembly in. Future `poll` methods are generally expected to 1131 /// resolve quickly, so it's recommended that you run or poll this future 1132 /// in a "blocking context". 1133 /// 1134 /// For more information see the documentation on [asynchronous 1135 /// configs](crate::Config::async_support). 1136 /// 1137 /// # Errors 1138 /// 1139 /// For more information on errors see the [`Func::call`] documentation. 1140 /// 1141 /// # Panics 1142 /// 1143 /// Panics if this is called on a function in a synchronous store. This 1144 /// only works with functions defined within an asynchronous store. Also 1145 /// panics if `store` does not own this function. 1146 #[cfg(feature = "async")] 1147 pub async fn call_async<T>( 1148 &self, 1149 mut store: impl AsContextMut<Data = T>, 1150 params: &[Val], 1151 results: &mut [Val], 1152 ) -> Result<()> 1153 where 1154 T: Send, 1155 { 1156 let mut store = store.as_context_mut(); 1157 assert!( 1158 store.0.async_support(), 1159 "cannot use `call_async` without enabling async support in the config", 1160 ); 1161 let need_gc = self.call_impl_check_args(&mut store, params, results)?; 1162 if need_gc { 1163 store.0.gc_async().await; 1164 } 1165 let result = store 1166 .on_fiber(|store| unsafe { self.call_impl_do_call(store, params, results) }) 1167 .await??; 1168 Ok(result) 1169 } 1170 1171 /// Perform dynamic checks that the arguments given to us match 1172 /// the signature of this function and are appropriate to pass to this 1173 /// function. 1174 /// 1175 /// This involves checking to make sure we have the right number and types 1176 /// of arguments as well as making sure everything is from the same `Store`. 1177 /// 1178 /// This must be called just before `call_impl_do_call`. 1179 /// 1180 /// Returns whether we need to GC before calling `call_impl_do_call`. 1181 fn call_impl_check_args<T>( 1182 &self, 1183 store: &mut StoreContextMut<'_, T>, 1184 params: &[Val], 1185 results: &mut [Val], 1186 ) -> Result<bool> { 1187 let (ty, opaque) = self.ty_ref(store.0); 1188 if ty.params().len() != params.len() { 1189 bail!( 1190 "expected {} arguments, got {}", 1191 ty.params().len(), 1192 params.len() 1193 ); 1194 } 1195 if ty.results().len() != results.len() { 1196 bail!( 1197 "expected {} results, got {}", 1198 ty.results().len(), 1199 results.len() 1200 ); 1201 } 1202 for (ty, arg) in ty.params().zip(params) { 1203 arg.ensure_matches_ty(opaque, &ty) 1204 .context("argument type mismatch")?; 1205 if !arg.comes_from_same_store(opaque) { 1206 bail!("cross-`Store` values are not currently supported"); 1207 } 1208 } 1209 1210 #[cfg(feature = "gc")] 1211 { 1212 // Check whether we need to GC before calling into Wasm. 1213 // 1214 // For example, with the DRC collector, whenever we pass GC refs 1215 // from host code to Wasm code, they go into the 1216 // `VMGcRefActivationsTable`. But the table might be at capacity 1217 // already. If it is at capacity (unlikely) then we need to do a GC 1218 // to free up space. 1219 let num_gc_refs = ty.as_wasm_func_type().non_i31_gc_ref_params_count(); 1220 if let Some(num_gc_refs) = NonZeroUsize::new(num_gc_refs) { 1221 return Ok(opaque 1222 .gc_store()? 1223 .gc_heap 1224 .need_gc_before_entering_wasm(num_gc_refs)); 1225 } 1226 } 1227 1228 Ok(false) 1229 } 1230 1231 /// Do the actual call into Wasm. 1232 /// 1233 /// # Safety 1234 /// 1235 /// You must have type checked the arguments by calling 1236 /// `call_impl_check_args` immediately before calling this function. It is 1237 /// only safe to call this function if that one did not return an error. 1238 unsafe fn call_impl_do_call<T>( 1239 &self, 1240 store: &mut StoreContextMut<'_, T>, 1241 params: &[Val], 1242 results: &mut [Val], 1243 ) -> Result<()> { 1244 // Store the argument values into `values_vec`. 1245 let (ty, _) = self.ty_ref(store.0); 1246 let values_vec_size = params.len().max(ty.results().len()); 1247 let mut values_vec = store.0.take_wasm_val_raw_storage(); 1248 debug_assert!(values_vec.is_empty()); 1249 values_vec.resize_with(values_vec_size, || ValRaw::v128(0)); 1250 for (arg, slot) in params.iter().cloned().zip(&mut values_vec) { 1251 unsafe { 1252 *slot = arg.to_raw(&mut *store)?; 1253 } 1254 } 1255 1256 unsafe { 1257 self.call_unchecked(&mut *store, values_vec.as_mut_ptr(), values_vec_size)?; 1258 } 1259 1260 for ((i, slot), val) in results.iter_mut().enumerate().zip(&values_vec) { 1261 let ty = self.ty_ref(store.0).0.results().nth(i).unwrap(); 1262 *slot = unsafe { Val::from_raw(&mut *store, *val, ty) }; 1263 } 1264 values_vec.truncate(0); 1265 store.0.save_wasm_val_raw_storage(values_vec); 1266 Ok(()) 1267 } 1268 1269 #[inline] 1270 pub(crate) fn vm_func_ref(&self, store: &mut StoreOpaque) -> NonNull<VMFuncRef> { 1271 let func_data = &mut store.store_data_mut()[self.0]; 1272 let func_ref = func_data.export().func_ref; 1273 if unsafe { func_ref.as_ref().wasm_call.is_some() } { 1274 return func_ref; 1275 } 1276 1277 if let Some(in_store) = func_data.in_store_func_ref { 1278 in_store.as_non_null() 1279 } else { 1280 unsafe { 1281 // Move this uncommon/slow path out of line. 1282 self.copy_func_ref_into_store_and_fill(store, func_ref) 1283 } 1284 } 1285 } 1286 1287 unsafe fn copy_func_ref_into_store_and_fill( 1288 &self, 1289 store: &mut StoreOpaque, 1290 func_ref: NonNull<VMFuncRef>, 1291 ) -> NonNull<VMFuncRef> { 1292 let func_ref = store.func_refs().push(func_ref.as_ref().clone()); 1293 store.store_data_mut()[self.0].in_store_func_ref = Some(SendSyncPtr::new(func_ref)); 1294 store.fill_func_refs(); 1295 func_ref 1296 } 1297 1298 pub(crate) unsafe fn from_wasmtime_function( 1299 export: ExportFunction, 1300 store: &mut StoreOpaque, 1301 ) -> Self { 1302 Func::from_func_kind(FuncKind::StoreOwned { export }, store) 1303 } 1304 1305 fn from_func_kind(kind: FuncKind, store: &mut StoreOpaque) -> Self { 1306 Func(store.store_data_mut().insert(FuncData { 1307 kind, 1308 in_store_func_ref: None, 1309 ty: None, 1310 })) 1311 } 1312 1313 pub(crate) fn vmimport(&self, store: &mut StoreOpaque, module: &Module) -> VMFunctionImport { 1314 unsafe { 1315 let f = { 1316 let func_data = &mut store.store_data_mut()[self.0]; 1317 // If we already patched this `funcref.wasm_call` and saved a 1318 // copy in the store, use the patched version. Otherwise, use 1319 // the potentially un-patched version. 1320 if let Some(func_ref) = func_data.in_store_func_ref { 1321 func_ref.as_non_null() 1322 } else { 1323 func_data.export().func_ref 1324 } 1325 }; 1326 VMFunctionImport { 1327 wasm_call: if let Some(wasm_call) = f.as_ref().wasm_call { 1328 wasm_call 1329 } else { 1330 // Assert that this is a array-call function, since those 1331 // are the only ones that could be missing a `wasm_call` 1332 // trampoline. 1333 let _ = VMArrayCallHostFuncContext::from_opaque(f.as_ref().vmctx); 1334 1335 let sig = self.type_index(store.store_data()); 1336 module.wasm_to_array_trampoline(sig).expect( 1337 "if the wasm is importing a function of a given type, it must have the \ 1338 type's trampoline", 1339 ) 1340 }, 1341 array_call: f.as_ref().array_call, 1342 vmctx: f.as_ref().vmctx, 1343 } 1344 } 1345 } 1346 1347 pub(crate) fn comes_from_same_store(&self, store: &StoreOpaque) -> bool { 1348 store.store_data().contains(self.0) 1349 } 1350 1351 fn invoke_host_func_for_wasm<T>( 1352 mut caller: Caller<'_, T>, 1353 ty: &FuncType, 1354 values_vec: &mut [ValRaw], 1355 func: &dyn Fn(Caller<'_, T>, &[Val], &mut [Val]) -> Result<()>, 1356 ) -> Result<()> { 1357 // Translate the raw JIT arguments in `values_vec` into a `Val` which 1358 // we'll be passing as a slice. The storage for our slice-of-`Val` we'll 1359 // be taking from the `Store`. We preserve our slice back into the 1360 // `Store` after the hostcall, ideally amortizing the cost of allocating 1361 // the storage across wasm->host calls. 1362 // 1363 // Note that we have a dynamic guarantee that `values_vec` is the 1364 // appropriate length to both read all arguments from as well as store 1365 // all results into. 1366 let mut val_vec = caller.store.0.take_hostcall_val_storage(); 1367 debug_assert!(val_vec.is_empty()); 1368 let nparams = ty.params().len(); 1369 val_vec.reserve(nparams + ty.results().len()); 1370 for (i, ty) in ty.params().enumerate() { 1371 val_vec.push(unsafe { Val::from_raw(&mut caller.store, values_vec[i], ty) }) 1372 } 1373 1374 val_vec.extend((0..ty.results().len()).map(|_| Val::null_func_ref())); 1375 let (params, results) = val_vec.split_at_mut(nparams); 1376 func(caller.sub_caller(), params, results)?; 1377 1378 // Unlike our arguments we need to dynamically check that the return 1379 // values produced are correct. There could be a bug in `func` that 1380 // produces the wrong number, wrong types, or wrong stores of 1381 // values, and we need to catch that here. 1382 for (i, (ret, ty)) in results.iter().zip(ty.results()).enumerate() { 1383 ret.ensure_matches_ty(caller.store.0, &ty) 1384 .context("function attempted to return an incompatible value")?; 1385 unsafe { 1386 values_vec[i] = ret.to_raw(&mut caller.store)?; 1387 } 1388 } 1389 1390 // Restore our `val_vec` back into the store so it's usable for the next 1391 // hostcall to reuse our own storage. 1392 val_vec.truncate(0); 1393 caller.store.0.save_hostcall_val_storage(val_vec); 1394 Ok(()) 1395 } 1396 1397 /// Attempts to extract a typed object from this `Func` through which the 1398 /// function can be called. 1399 /// 1400 /// This function serves as an alternative to [`Func::call`] and 1401 /// [`Func::call_async`]. This method performs a static type check (using 1402 /// the `Params` and `Results` type parameters on the underlying wasm 1403 /// function. If the type check passes then a `TypedFunc` object is returned, 1404 /// otherwise an error is returned describing the typecheck failure. 1405 /// 1406 /// The purpose of this relative to [`Func::call`] is that it's much more 1407 /// efficient when used to invoke WebAssembly functions. With the types 1408 /// statically known far less setup/teardown is required when invoking 1409 /// WebAssembly. If speed is desired then this function is recommended to be 1410 /// used instead of [`Func::call`] (which is more general, hence its 1411 /// slowdown). 1412 /// 1413 /// The `Params` type parameter is used to describe the parameters of the 1414 /// WebAssembly function. This can either be a single type (like `i32`), or 1415 /// a tuple of types representing the list of parameters (like `(i32, f32, 1416 /// f64)`). Additionally you can use `()` to represent that the function has 1417 /// no parameters. 1418 /// 1419 /// The `Results` type parameter is used to describe the results of the 1420 /// function. This behaves the same way as `Params`, but just for the 1421 /// results of the function. 1422 /// 1423 /// # Translating Between WebAssembly and Rust Types 1424 /// 1425 /// Translation between Rust types and WebAssembly types looks like: 1426 /// 1427 /// | WebAssembly | Rust | 1428 /// |-------------------------------------------|---------------------------------------| 1429 /// | `i32` | `i32` or `u32` | 1430 /// | `i64` | `i64` or `u64` | 1431 /// | `f32` | `f32` | 1432 /// | `f64` | `f64` | 1433 /// | `externref` aka `(ref null extern)` | `Option<Rooted<ExternRef>>` | 1434 /// | `(ref extern)` | `Rooted<ExternRef>` | 1435 /// | `nullexternref` aka `(ref null noextern)` | `Option<NoExtern>` | 1436 /// | `(ref noextern)` | `NoExtern` | 1437 /// | `anyref` aka `(ref null any)` | `Option<Rooted<AnyRef>>` | 1438 /// | `(ref any)` | `Rooted<AnyRef>` | 1439 /// | `eqref` aka `(ref null eq)` | `Option<Rooted<EqRef>>` | 1440 /// | `(ref eq)` | `Rooted<EqRef>` | 1441 /// | `i31ref` aka `(ref null i31)` | `Option<I31>` | 1442 /// | `(ref i31)` | `I31` | 1443 /// | `structref` aka `(ref null struct)` | `Option<Rooted<StructRef>>` | 1444 /// | `(ref struct)` | `Rooted<StructRef>` | 1445 /// | `arrayref` aka `(ref null array)` | `Option<Rooted<ArrayRef>>` | 1446 /// | `(ref array)` | `Rooted<ArrayRef>` | 1447 /// | `funcref` aka `(ref null func)` | `Option<Func>` | 1448 /// | `(ref func)` | `Func` | 1449 /// | `(ref null <func type index>)` | `Option<Func>` | 1450 /// | `(ref <func type index>)` | `Func` | 1451 /// | `nullfuncref` aka `(ref null nofunc)` | `Option<NoFunc>` | 1452 /// | `(ref nofunc)` | `NoFunc` | 1453 /// | `v128` | `V128` on `x86-64` and `aarch64` only | 1454 /// 1455 /// (Note that this mapping is the same as that of [`Func::wrap`], and that 1456 /// anywhere a `Rooted<T>` appears, a `ManuallyRooted<T>` may also appear). 1457 /// 1458 /// Note that once the [`TypedFunc`] return value is acquired you'll use either 1459 /// [`TypedFunc::call`] or [`TypedFunc::call_async`] as necessary to actually invoke 1460 /// the function. This method does not invoke any WebAssembly code, it 1461 /// simply performs a typecheck before returning the [`TypedFunc`] value. 1462 /// 1463 /// This method also has a convenience wrapper as 1464 /// [`Instance::get_typed_func`](crate::Instance::get_typed_func) to 1465 /// directly get a typed function value from an 1466 /// [`Instance`](crate::Instance). 1467 /// 1468 /// ## Subtyping 1469 /// 1470 /// For result types, you can always use a supertype of the WebAssembly 1471 /// function's actual declared result type. For example, if the WebAssembly 1472 /// function was declared with type `(func (result nullfuncref))` you could 1473 /// successfully call `f.typed::<(), Option<Func>>()` because `Option<Func>` 1474 /// corresponds to `funcref`, which is a supertype of `nullfuncref`. 1475 /// 1476 /// For parameter types, you can always use a subtype of the WebAssembly 1477 /// function's actual declared parameter type. For example, if the 1478 /// WebAssembly function was declared with type `(func (param (ref null 1479 /// func)))` you could successfully call `f.typed::<Func, ()>()` because 1480 /// `Func` corresponds to `(ref func)`, which is a subtype of `(ref null 1481 /// func)`. 1482 /// 1483 /// Additionally, for functions which take a reference to a concrete type as 1484 /// a parameter, you can also use the concrete type's supertype. Consider a 1485 /// WebAssembly function that takes a reference to a function with a 1486 /// concrete type: `(ref null <func type index>)`. In this scenario, there 1487 /// is no static `wasmtime::Foo` Rust type that corresponds to that 1488 /// particular Wasm-defined concrete reference type because Wasm modules are 1489 /// loaded dynamically at runtime. You *could* do `f.typed::<Option<NoFunc>, 1490 /// ()>()`, and while that is correctly typed and valid, it is often overly 1491 /// restrictive. The only value you could call the resulting typed function 1492 /// with is the null function reference, but we'd like to call it with 1493 /// non-null function references that happen to be of the correct 1494 /// type. Therefore, `f.typed<Option<Func>, ()>()` is also allowed in this 1495 /// case, even though `Option<Func>` represents `(ref null func)` which is 1496 /// the supertype, not subtype, of `(ref null <func type index>)`. This does 1497 /// imply some minimal dynamic type checks in this case, but it is supported 1498 /// for better ergonomics, to enable passing non-null references into the 1499 /// function. 1500 /// 1501 /// # Errors 1502 /// 1503 /// This function will return an error if `Params` or `Results` does not 1504 /// match the native type of this WebAssembly function. 1505 /// 1506 /// # Panics 1507 /// 1508 /// This method will panic if `store` does not own this function. 1509 /// 1510 /// # Examples 1511 /// 1512 /// An end-to-end example of calling a function which takes no parameters 1513 /// and has no results: 1514 /// 1515 /// ``` 1516 /// # use wasmtime::*; 1517 /// # fn main() -> anyhow::Result<()> { 1518 /// let engine = Engine::default(); 1519 /// let mut store = Store::new(&engine, ()); 1520 /// let module = Module::new(&engine, r#"(module (func (export "foo")))"#)?; 1521 /// let instance = Instance::new(&mut store, &module, &[])?; 1522 /// let foo = instance.get_func(&mut store, "foo").expect("export wasn't a function"); 1523 /// 1524 /// // Note that this call can fail due to the typecheck not passing, but 1525 /// // in our case we statically know the module so we know this should 1526 /// // pass. 1527 /// let typed = foo.typed::<(), ()>(&store)?; 1528 /// 1529 /// // Note that this can fail if the wasm traps at runtime. 1530 /// typed.call(&mut store, ())?; 1531 /// # Ok(()) 1532 /// # } 1533 /// ``` 1534 /// 1535 /// You can also pass in multiple parameters and get a result back 1536 /// 1537 /// ``` 1538 /// # use wasmtime::*; 1539 /// # fn foo(add: &Func, mut store: Store<()>) -> anyhow::Result<()> { 1540 /// let typed = add.typed::<(i32, i64), f32>(&store)?; 1541 /// assert_eq!(typed.call(&mut store, (1, 2))?, 3.0); 1542 /// # Ok(()) 1543 /// # } 1544 /// ``` 1545 /// 1546 /// and similarly if a function has multiple results you can bind that too 1547 /// 1548 /// ``` 1549 /// # use wasmtime::*; 1550 /// # fn foo(add_with_overflow: &Func, mut store: Store<()>) -> anyhow::Result<()> { 1551 /// let typed = add_with_overflow.typed::<(u32, u32), (u32, i32)>(&store)?; 1552 /// let (result, overflow) = typed.call(&mut store, (u32::max_value(), 2))?; 1553 /// assert_eq!(result, 1); 1554 /// assert_eq!(overflow, 1); 1555 /// # Ok(()) 1556 /// # } 1557 /// ``` 1558 pub fn typed<Params, Results>( 1559 &self, 1560 store: impl AsContext, 1561 ) -> Result<TypedFunc<Params, Results>> 1562 where 1563 Params: WasmParams, 1564 Results: WasmResults, 1565 { 1566 // Type-check that the params/results are all valid 1567 let store = store.as_context().0; 1568 let ty = self.load_ty(store); 1569 Params::typecheck(store.engine(), ty.params(), TypeCheckPosition::Param) 1570 .context("type mismatch with parameters")?; 1571 Results::typecheck(store.engine(), ty.results(), TypeCheckPosition::Result) 1572 .context("type mismatch with results")?; 1573 1574 // and then we can construct the typed version of this function 1575 // (unsafely), which should be safe since we just did the type check above. 1576 unsafe { Ok(TypedFunc::_new_unchecked(store, *self)) } 1577 } 1578 1579 /// Get a stable hash key for this function. 1580 /// 1581 /// Even if the same underlying function is added to the `StoreData` 1582 /// multiple times and becomes multiple `wasmtime::Func`s, this hash key 1583 /// will be consistent across all of these functions. 1584 #[allow(dead_code)] // Not used yet, but added for consistency. 1585 pub(crate) fn hash_key(&self, store: &mut StoreOpaque) -> impl core::hash::Hash + Eq { 1586 self.vm_func_ref(store).as_ptr() as usize 1587 } 1588 } 1589 1590 /// Prepares for entrance into WebAssembly. 1591 /// 1592 /// This function will set up context such that `closure` is allowed to call a 1593 /// raw trampoline or a raw WebAssembly function. This *must* be called to do 1594 /// things like catch traps and set up GC properly. 1595 /// 1596 /// The `closure` provided receives a default "caller" `VMContext` parameter it 1597 /// can pass to the called wasm function, if desired. 1598 pub(crate) fn invoke_wasm_and_catch_traps<T>( 1599 store: &mut StoreContextMut<'_, T>, 1600 closure: impl FnMut(*mut VMContext), 1601 ) -> Result<()> { 1602 unsafe { 1603 let exit = enter_wasm(store); 1604 1605 if let Err(trap) = store.0.call_hook(CallHook::CallingWasm) { 1606 exit_wasm(store, exit); 1607 return Err(trap); 1608 } 1609 let result = crate::runtime::vm::catch_traps( 1610 store.0.signal_handler(), 1611 store.0.engine().config().wasm_backtrace, 1612 store.0.engine().config().coredump_on_trap, 1613 store.0.async_guard_range(), 1614 store.0.default_caller(), 1615 closure, 1616 ); 1617 exit_wasm(store, exit); 1618 store.0.call_hook(CallHook::ReturningFromWasm)?; 1619 result.map_err(|t| crate::trap::from_runtime_box(store.0, t)) 1620 } 1621 } 1622 1623 /// This function is called to register state within `Store` whenever 1624 /// WebAssembly is entered within the `Store`. 1625 /// 1626 /// This function sets up various limits such as: 1627 /// 1628 /// * The stack limit. This is what ensures that we limit the stack space 1629 /// allocated by WebAssembly code and it's relative to the initial stack 1630 /// pointer that called into wasm. 1631 /// 1632 /// This function may fail if the stack limit can't be set because an 1633 /// interrupt already happened. 1634 fn enter_wasm<T>(store: &mut StoreContextMut<'_, T>) -> Option<usize> { 1635 // If this is a recursive call, e.g. our stack limit is already set, then 1636 // we may be able to skip this function. 1637 // 1638 // For synchronous stores there's nothing else to do because all wasm calls 1639 // happen synchronously and on the same stack. This means that the previous 1640 // stack limit will suffice for the next recursive call. 1641 // 1642 // For asynchronous stores then each call happens on a separate native 1643 // stack. This means that the previous stack limit is no longer relevant 1644 // because we're on a separate stack. 1645 if unsafe { *store.0.runtime_limits().stack_limit.get() } != usize::MAX 1646 && !store.0.async_support() 1647 { 1648 return None; 1649 } 1650 1651 // Ignore this stack pointer business on miri since we can't execute wasm 1652 // anyway and the concept of a stack pointer on miri is a bit nebulous 1653 // regardless. 1654 if cfg!(miri) { 1655 return None; 1656 } 1657 1658 let stack_pointer = crate::runtime::vm::get_stack_pointer(); 1659 1660 // Determine the stack pointer where, after which, any wasm code will 1661 // immediately trap. This is checked on the entry to all wasm functions. 1662 // 1663 // Note that this isn't 100% precise. We are requested to give wasm 1664 // `max_wasm_stack` bytes, but what we're actually doing is giving wasm 1665 // probably a little less than `max_wasm_stack` because we're 1666 // calculating the limit relative to this function's approximate stack 1667 // pointer. Wasm will be executed on a frame beneath this one (or next 1668 // to it). In any case it's expected to be at most a few hundred bytes 1669 // of slop one way or another. When wasm is typically given a MB or so 1670 // (a million bytes) the slop shouldn't matter too much. 1671 // 1672 // After we've got the stack limit then we store it into the `stack_limit` 1673 // variable. 1674 let wasm_stack_limit = stack_pointer - store.engine().config().max_wasm_stack; 1675 let prev_stack = unsafe { 1676 mem::replace( 1677 &mut *store.0.runtime_limits().stack_limit.get(), 1678 wasm_stack_limit, 1679 ) 1680 }; 1681 1682 Some(prev_stack) 1683 } 1684 1685 fn exit_wasm<T>(store: &mut StoreContextMut<'_, T>, prev_stack: Option<usize>) { 1686 // If we don't have a previous stack pointer to restore, then there's no 1687 // cleanup we need to perform here. 1688 let prev_stack = match prev_stack { 1689 Some(stack) => stack, 1690 None => return, 1691 }; 1692 1693 unsafe { 1694 *store.0.runtime_limits().stack_limit.get() = prev_stack; 1695 } 1696 } 1697 1698 /// A trait implemented for types which can be returned from closures passed to 1699 /// [`Func::wrap`] and friends. 1700 /// 1701 /// This trait should not be implemented by user types. This trait may change at 1702 /// any time internally. The types which implement this trait, however, are 1703 /// stable over time. 1704 /// 1705 /// For more information see [`Func::wrap`] 1706 pub unsafe trait WasmRet { 1707 // Same as `WasmTy::compatible_with_store`. 1708 #[doc(hidden)] 1709 fn compatible_with_store(&self, store: &StoreOpaque) -> bool; 1710 1711 /// Stores this return value into the `ptr` specified using the rooted 1712 /// `store`. 1713 /// 1714 /// Traps are communicated through the `Result<_>` return value. 1715 /// 1716 /// # Unsafety 1717 /// 1718 /// This method is unsafe as `ptr` must have the correct length to store 1719 /// this result. This property is only checked in debug mode, not in release 1720 /// mode. 1721 #[doc(hidden)] 1722 unsafe fn store( 1723 self, 1724 store: &mut AutoAssertNoGc<'_>, 1725 ptr: &mut [MaybeUninit<ValRaw>], 1726 ) -> Result<()>; 1727 1728 #[doc(hidden)] 1729 fn func_type(engine: &Engine, params: impl Iterator<Item = ValType>) -> FuncType; 1730 #[doc(hidden)] 1731 fn may_gc() -> bool; 1732 1733 // Utilities used to convert an instance of this type to a `Result` 1734 // explicitly, used when wrapping async functions which always bottom-out 1735 // in a function that returns a trap because futures can be cancelled. 1736 #[doc(hidden)] 1737 type Fallible: WasmRet; 1738 #[doc(hidden)] 1739 fn into_fallible(self) -> Self::Fallible; 1740 #[doc(hidden)] 1741 fn fallible_from_error(error: Error) -> Self::Fallible; 1742 } 1743 1744 unsafe impl<T> WasmRet for T 1745 where 1746 T: WasmTy, 1747 { 1748 type Fallible = Result<T>; 1749 1750 fn compatible_with_store(&self, store: &StoreOpaque) -> bool { 1751 <Self as WasmTy>::compatible_with_store(self, store) 1752 } 1753 1754 unsafe fn store( 1755 self, 1756 store: &mut AutoAssertNoGc<'_>, 1757 ptr: &mut [MaybeUninit<ValRaw>], 1758 ) -> Result<()> { 1759 debug_assert!(ptr.len() > 0); 1760 <Self as WasmTy>::store(self, store, ptr.get_unchecked_mut(0)) 1761 } 1762 1763 fn may_gc() -> bool { 1764 T::may_gc() 1765 } 1766 1767 fn func_type(engine: &Engine, params: impl Iterator<Item = ValType>) -> FuncType { 1768 FuncType::new(engine, params, Some(<Self as WasmTy>::valtype())) 1769 } 1770 1771 fn into_fallible(self) -> Result<T> { 1772 Ok(self) 1773 } 1774 1775 fn fallible_from_error(error: Error) -> Result<T> { 1776 Err(error) 1777 } 1778 } 1779 1780 unsafe impl<T> WasmRet for Result<T> 1781 where 1782 T: WasmRet, 1783 { 1784 type Fallible = Self; 1785 1786 fn compatible_with_store(&self, store: &StoreOpaque) -> bool { 1787 match self { 1788 Ok(x) => <T as WasmRet>::compatible_with_store(x, store), 1789 Err(_) => true, 1790 } 1791 } 1792 1793 unsafe fn store( 1794 self, 1795 store: &mut AutoAssertNoGc<'_>, 1796 ptr: &mut [MaybeUninit<ValRaw>], 1797 ) -> Result<()> { 1798 self.and_then(|val| val.store(store, ptr)) 1799 } 1800 1801 fn may_gc() -> bool { 1802 T::may_gc() 1803 } 1804 1805 fn func_type(engine: &Engine, params: impl Iterator<Item = ValType>) -> FuncType { 1806 T::func_type(engine, params) 1807 } 1808 1809 fn into_fallible(self) -> Result<T> { 1810 self 1811 } 1812 1813 fn fallible_from_error(error: Error) -> Result<T> { 1814 Err(error) 1815 } 1816 } 1817 1818 macro_rules! impl_wasm_host_results { 1819 ($n:tt $($t:ident)*) => ( 1820 #[allow(non_snake_case)] 1821 unsafe impl<$($t),*> WasmRet for ($($t,)*) 1822 where 1823 $($t: WasmTy,)* 1824 { 1825 type Fallible = Result<Self>; 1826 1827 #[inline] 1828 fn compatible_with_store(&self, _store: &StoreOpaque) -> bool { 1829 let ($($t,)*) = self; 1830 $( $t.compatible_with_store(_store) && )* true 1831 } 1832 1833 #[inline] 1834 unsafe fn store( 1835 self, 1836 _store: &mut AutoAssertNoGc<'_>, 1837 _ptr: &mut [MaybeUninit<ValRaw>], 1838 ) -> Result<()> { 1839 let ($($t,)*) = self; 1840 let mut _cur = 0; 1841 $( 1842 debug_assert!(_cur < _ptr.len()); 1843 let val = _ptr.get_unchecked_mut(_cur); 1844 _cur += 1; 1845 WasmTy::store($t, _store, val)?; 1846 )* 1847 Ok(()) 1848 } 1849 1850 #[doc(hidden)] 1851 fn may_gc() -> bool { 1852 $( $t::may_gc() || )* false 1853 } 1854 1855 fn func_type(engine: &Engine, params: impl Iterator<Item = ValType>) -> FuncType { 1856 FuncType::new( 1857 engine, 1858 params, 1859 IntoIterator::into_iter([$($t::valtype(),)*]), 1860 ) 1861 } 1862 1863 #[inline] 1864 fn into_fallible(self) -> Result<Self> { 1865 Ok(self) 1866 } 1867 1868 #[inline] 1869 fn fallible_from_error(error: Error) -> Result<Self> { 1870 Err(error) 1871 } 1872 } 1873 ) 1874 } 1875 1876 for_each_function_signature!(impl_wasm_host_results); 1877 1878 /// Internal trait implemented for all arguments that can be passed to 1879 /// [`Func::wrap`] and [`Linker::func_wrap`](crate::Linker::func_wrap). 1880 /// 1881 /// This trait should not be implemented by external users, it's only intended 1882 /// as an implementation detail of this crate. 1883 pub trait IntoFunc<T, Params, Results>: Send + Sync + 'static { 1884 /// Convert this function into a `VM{Array,Native}CallHostFuncContext` and 1885 /// internal `VMFuncRef`. 1886 #[doc(hidden)] 1887 fn into_func(self, engine: &Engine) -> HostContext; 1888 } 1889 1890 macro_rules! impl_into_func { 1891 ($num:tt $arg:ident) => { 1892 // Implement for functions without a leading `&Caller` parameter, 1893 // delegating to the implementation below which does have the leading 1894 // `Caller` parameter. 1895 #[allow(non_snake_case)] 1896 impl<T, F, $arg, R> IntoFunc<T, $arg, R> for F 1897 where 1898 F: Fn($arg) -> R + Send + Sync + 'static, 1899 $arg: WasmTy, 1900 R: WasmRet, 1901 { 1902 fn into_func(self, engine: &Engine) -> HostContext { 1903 let f = move |_: Caller<'_, T>, $arg: $arg| { 1904 self($arg) 1905 }; 1906 1907 f.into_func(engine) 1908 } 1909 } 1910 1911 #[allow(non_snake_case)] 1912 impl<T, F, $arg, R> IntoFunc<T, (Caller<'_, T>, $arg), R> for F 1913 where 1914 F: Fn(Caller<'_, T>, $arg) -> R + Send + Sync + 'static, 1915 $arg: WasmTy, 1916 R: WasmRet, 1917 { 1918 fn into_func(self, engine: &Engine) -> HostContext { 1919 HostContext::from_closure(engine, move |caller: Caller<'_, T>, ($arg,)| { 1920 self(caller, $arg) 1921 }) 1922 } 1923 } 1924 }; 1925 ($num:tt $($args:ident)*) => { 1926 // Implement for functions without a leading `&Caller` parameter, 1927 // delegating to the implementation below which does have the leading 1928 // `Caller` parameter. 1929 #[allow(non_snake_case)] 1930 impl<T, F, $($args,)* R> IntoFunc<T, ($($args,)*), R> for F 1931 where 1932 F: Fn($($args),*) -> R + Send + Sync + 'static, 1933 $($args: WasmTy,)* 1934 R: WasmRet, 1935 { 1936 fn into_func(self, engine: &Engine) -> HostContext { 1937 let f = move |_: Caller<'_, T>, $($args:$args),*| { 1938 self($($args),*) 1939 }; 1940 1941 f.into_func(engine) 1942 } 1943 } 1944 1945 #[allow(non_snake_case)] 1946 impl<T, F, $($args,)* R> IntoFunc<T, (Caller<'_, T>, $($args,)*), R> for F 1947 where 1948 F: Fn(Caller<'_, T>, $($args),*) -> R + Send + Sync + 'static, 1949 $($args: WasmTy,)* 1950 R: WasmRet, 1951 { 1952 fn into_func(self, engine: &Engine) -> HostContext { 1953 HostContext::from_closure(engine, move |caller: Caller<'_, T>, ( $( $args ),* )| { 1954 self(caller, $( $args ),* ) 1955 }) 1956 } 1957 } 1958 } 1959 } 1960 1961 for_each_function_signature!(impl_into_func); 1962 1963 /// Trait implemented for various tuples made up of types which implement 1964 /// [`WasmTy`] that can be passed to [`Func::wrap_inner`] and 1965 /// [`HostContext::from_closure`]. 1966 pub unsafe trait WasmTyList { 1967 /// Get the value type that each Type in the list represents. 1968 fn valtypes() -> impl Iterator<Item = ValType>; 1969 1970 // Load a version of `Self` from the `values` provided. 1971 // 1972 // # Safety 1973 // 1974 // This function is unsafe as it's up to the caller to ensure that `values` are 1975 // valid for this given type. 1976 #[doc(hidden)] 1977 unsafe fn load(store: &mut AutoAssertNoGc<'_>, values: &mut [MaybeUninit<ValRaw>]) -> Self; 1978 1979 #[doc(hidden)] 1980 fn may_gc() -> bool; 1981 } 1982 1983 macro_rules! impl_wasm_ty_list { 1984 ($num:tt $($args:ident)*) => (paste::paste!{ 1985 #[allow(non_snake_case)] 1986 unsafe impl<$($args),*> WasmTyList for ($($args,)*) 1987 where 1988 $($args: WasmTy,)* 1989 { 1990 fn valtypes() -> impl Iterator<Item = ValType> { 1991 IntoIterator::into_iter([$($args::valtype(),)*]) 1992 } 1993 1994 unsafe fn load(_store: &mut AutoAssertNoGc<'_>, _values: &mut [MaybeUninit<ValRaw>]) -> Self { 1995 let mut _cur = 0; 1996 ($({ 1997 debug_assert!(_cur < _values.len()); 1998 let ptr = _values.get_unchecked(_cur).assume_init_ref(); 1999 _cur += 1; 2000 $args::load(_store, ptr) 2001 },)*) 2002 } 2003 2004 fn may_gc() -> bool { 2005 $( $args::may_gc() || )* false 2006 } 2007 } 2008 }); 2009 } 2010 2011 for_each_function_signature!(impl_wasm_ty_list); 2012 2013 /// A structure representing the caller's context when creating a function 2014 /// via [`Func::wrap`]. 2015 /// 2016 /// This structure can be taken as the first parameter of a closure passed to 2017 /// [`Func::wrap`] or other constructors, and serves two purposes: 2018 /// 2019 /// * First consumers can use [`Caller<'_, T>`](crate::Caller) to get access to 2020 /// [`StoreContextMut<'_, T>`](crate::StoreContextMut) and/or get access to 2021 /// `T` itself. This means that the [`Caller`] type can serve as a proxy to 2022 /// the original [`Store`](crate::Store) itself and is used to satisfy 2023 /// [`AsContext`] and [`AsContextMut`] bounds. 2024 /// 2025 /// * Second a [`Caller`] can be used as the name implies, learning about the 2026 /// caller's context, namely it's exported memory and exported functions. This 2027 /// allows functions which take pointers as arguments to easily read the 2028 /// memory the pointers point into, or if a function is expected to call 2029 /// malloc in the wasm module to reserve space for the output you can do that. 2030 /// 2031 /// Host functions which want access to [`Store`](crate::Store)-level state are 2032 /// recommended to use this type. 2033 pub struct Caller<'a, T> { 2034 pub(crate) store: StoreContextMut<'a, T>, 2035 caller: &'a crate::runtime::vm::Instance, 2036 } 2037 2038 impl<T> Caller<'_, T> { 2039 unsafe fn with<F, R>(caller: *mut VMContext, f: F) -> R 2040 where 2041 // The closure must be valid for any `Caller` it is given; it doesn't 2042 // get to choose the `Caller`'s lifetime. 2043 F: for<'a> FnOnce(Caller<'a, T>) -> R, 2044 // And the return value must not borrow from the caller/store. 2045 R: 'static, 2046 { 2047 debug_assert!(!caller.is_null()); 2048 crate::runtime::vm::Instance::from_vmctx(caller, |instance| { 2049 let store = StoreContextMut::from_raw(instance.store()); 2050 let gc_lifo_scope = store.0.gc_roots().enter_lifo_scope(); 2051 2052 let ret = f(Caller { 2053 store, 2054 caller: &instance, 2055 }); 2056 2057 // Safe to recreate a mutable borrow of the store because `ret` 2058 // cannot be borrowing from the store. 2059 let store = StoreContextMut::<T>::from_raw(instance.store()); 2060 store.0.exit_gc_lifo_scope(gc_lifo_scope); 2061 2062 ret 2063 }) 2064 } 2065 2066 fn sub_caller(&mut self) -> Caller<'_, T> { 2067 Caller { 2068 store: self.store.as_context_mut(), 2069 caller: self.caller, 2070 } 2071 } 2072 2073 /// Looks up an export from the caller's module by the `name` given. 2074 /// 2075 /// This is a low-level function that's typically used to implement passing 2076 /// of pointers or indices between core Wasm instances, where the callee 2077 /// needs to consult the caller's exports to perform memory management and 2078 /// resolve the references. 2079 /// 2080 /// For comparison, in components, the component model handles translating 2081 /// arguments from one component instance to another and managing memory, so 2082 /// that callees don't need to be aware of their callers, which promotes 2083 /// virtualizability of APIs. 2084 /// 2085 /// # Return 2086 /// 2087 /// If an export with the `name` provided was found, then it is returned as an 2088 /// `Extern`. There are a number of situations, however, where the export may not 2089 /// be available: 2090 /// 2091 /// * The caller instance may not have an export named `name` 2092 /// * There may not be a caller available, for example if `Func` was called 2093 /// directly from host code. 2094 /// 2095 /// It's recommended to take care when calling this API and gracefully 2096 /// handling a `None` return value. 2097 pub fn get_export(&mut self, name: &str) -> Option<Extern> { 2098 // All instances created have a `host_state` with a pointer pointing 2099 // back to themselves. If this caller doesn't have that `host_state` 2100 // then it probably means it was a host-created object like `Func::new` 2101 // which doesn't have any exports we want to return anyway. 2102 self.caller 2103 .host_state() 2104 .downcast_ref::<Instance>()? 2105 .get_export(&mut self.store, name) 2106 } 2107 2108 /// Access the underlying data owned by this `Store`. 2109 /// 2110 /// Same as [`Store::data`](crate::Store::data) 2111 pub fn data(&self) -> &T { 2112 self.store.data() 2113 } 2114 2115 /// Access the underlying data owned by this `Store`. 2116 /// 2117 /// Same as [`Store::data_mut`](crate::Store::data_mut) 2118 pub fn data_mut(&mut self) -> &mut T { 2119 self.store.data_mut() 2120 } 2121 2122 /// Returns the underlying [`Engine`] this store is connected to. 2123 pub fn engine(&self) -> &Engine { 2124 self.store.engine() 2125 } 2126 2127 /// Perform garbage collection. 2128 /// 2129 /// Same as [`Store::gc`](crate::Store::gc). 2130 #[cfg(feature = "gc")] 2131 pub fn gc(&mut self) { 2132 self.store.gc() 2133 } 2134 2135 /// Perform garbage collection asynchronously. 2136 /// 2137 /// Same as [`Store::gc_async`](crate::Store::gc_async). 2138 #[cfg(all(feature = "async", feature = "gc"))] 2139 pub async fn gc_async(&mut self) 2140 where 2141 T: Send, 2142 { 2143 self.store.gc_async().await; 2144 } 2145 2146 /// Returns the remaining fuel in the store. 2147 /// 2148 /// For more information see [`Store::get_fuel`](crate::Store::get_fuel) 2149 pub fn get_fuel(&self) -> Result<u64> { 2150 self.store.get_fuel() 2151 } 2152 2153 /// Set the amount of fuel in this store to be consumed when executing wasm code. 2154 /// 2155 /// For more information see [`Store::set_fuel`](crate::Store::set_fuel) 2156 pub fn set_fuel(&mut self, fuel: u64) -> Result<()> { 2157 self.store.set_fuel(fuel) 2158 } 2159 2160 /// Configures this `Store` to yield while executing futures every N units of fuel. 2161 /// 2162 /// For more information see 2163 /// [`Store::fuel_async_yield_interval`](crate::Store::fuel_async_yield_interval) 2164 pub fn fuel_async_yield_interval(&mut self, interval: Option<u64>) -> Result<()> { 2165 self.store.fuel_async_yield_interval(interval) 2166 } 2167 } 2168 2169 impl<T> AsContext for Caller<'_, T> { 2170 type Data = T; 2171 fn as_context(&self) -> StoreContext<'_, T> { 2172 self.store.as_context() 2173 } 2174 } 2175 2176 impl<T> AsContextMut for Caller<'_, T> { 2177 fn as_context_mut(&mut self) -> StoreContextMut<'_, T> { 2178 self.store.as_context_mut() 2179 } 2180 } 2181 2182 // State stored inside a `VMArrayCallHostFuncContext`. 2183 struct HostFuncState<F> { 2184 // The actual host function. 2185 func: F, 2186 2187 // NB: We have to keep our `VMSharedTypeIndex` registered in the engine for 2188 // as long as this function exists. 2189 #[allow(dead_code)] 2190 ty: RegisteredType, 2191 } 2192 2193 #[doc(hidden)] 2194 pub enum HostContext { 2195 Array(StoreBox<VMArrayCallHostFuncContext>), 2196 } 2197 2198 impl From<StoreBox<VMArrayCallHostFuncContext>> for HostContext { 2199 fn from(ctx: StoreBox<VMArrayCallHostFuncContext>) -> Self { 2200 HostContext::Array(ctx) 2201 } 2202 } 2203 2204 impl HostContext { 2205 fn from_closure<F, T, P, R>(engine: &Engine, func: F) -> Self 2206 where 2207 F: Fn(Caller<'_, T>, P) -> R + Send + Sync + 'static, 2208 P: WasmTyList, 2209 R: WasmRet, 2210 { 2211 let ty = R::func_type(engine, None::<ValType>.into_iter().chain(P::valtypes())); 2212 let type_index = ty.type_index(); 2213 2214 let array_call = Self::array_call_trampoline::<T, F, P, R>; 2215 2216 let ctx = unsafe { 2217 VMArrayCallHostFuncContext::new( 2218 VMFuncRef { 2219 array_call, 2220 wasm_call: None, 2221 type_index, 2222 vmctx: ptr::null_mut(), 2223 }, 2224 Box::new(HostFuncState { 2225 func, 2226 ty: ty.into_registered_type(), 2227 }), 2228 ) 2229 }; 2230 2231 ctx.into() 2232 } 2233 2234 unsafe extern "C" fn array_call_trampoline<T, F, P, R>( 2235 callee_vmctx: *mut VMOpaqueContext, 2236 caller_vmctx: *mut VMOpaqueContext, 2237 args: *mut ValRaw, 2238 args_len: usize, 2239 ) where 2240 F: Fn(Caller<'_, T>, P) -> R + 'static, 2241 P: WasmTyList, 2242 R: WasmRet, 2243 { 2244 // Note that this function is intentionally scoped into a 2245 // separate closure. Handling traps and panics will involve 2246 // longjmp-ing from this function which means we won't run 2247 // destructors. As a result anything requiring a destructor 2248 // should be part of this closure, and the long-jmp-ing 2249 // happens after the closure in handling the result. 2250 let run = move |mut caller: Caller<'_, T>| { 2251 let args = 2252 core::slice::from_raw_parts_mut(args.cast::<MaybeUninit<ValRaw>>(), args_len); 2253 let vmctx = VMArrayCallHostFuncContext::from_opaque(callee_vmctx); 2254 let state = (*vmctx).host_state(); 2255 2256 // Double-check ourselves in debug mode, but we control 2257 // the `Any` here so an unsafe downcast should also 2258 // work. 2259 debug_assert!(state.is::<HostFuncState<F>>()); 2260 let state = &*(state as *const _ as *const HostFuncState<F>); 2261 let func = &state.func; 2262 2263 let ret = 'ret: { 2264 if let Err(trap) = caller.store.0.call_hook(CallHook::CallingHost) { 2265 break 'ret R::fallible_from_error(trap); 2266 } 2267 2268 let mut store = if P::may_gc() { 2269 AutoAssertNoGc::new(caller.store.0) 2270 } else { 2271 unsafe { AutoAssertNoGc::disabled(caller.store.0) } 2272 }; 2273 let params = P::load(&mut store, args); 2274 let _ = &mut store; 2275 drop(store); 2276 2277 let r = func(caller.sub_caller(), params); 2278 if let Err(trap) = caller.store.0.call_hook(CallHook::ReturningFromHost) { 2279 break 'ret R::fallible_from_error(trap); 2280 } 2281 r.into_fallible() 2282 }; 2283 2284 if !ret.compatible_with_store(caller.store.0) { 2285 bail!("host function attempted to return cross-`Store` value to Wasm") 2286 } else { 2287 let mut store = if R::may_gc() { 2288 AutoAssertNoGc::new(caller.store.0) 2289 } else { 2290 unsafe { AutoAssertNoGc::disabled(caller.store.0) } 2291 }; 2292 let ret = ret.store(&mut store, args)?; 2293 Ok(ret) 2294 } 2295 }; 2296 2297 // With nothing else on the stack move `run` into this 2298 // closure and then run it as part of `Caller::with`. 2299 let result = crate::runtime::vm::catch_unwind_and_longjmp(move || { 2300 let caller_vmctx = VMContext::from_opaque(caller_vmctx); 2301 Caller::with(caller_vmctx, run) 2302 }); 2303 2304 match result { 2305 Ok(val) => val, 2306 Err(err) => crate::trap::raise(err), 2307 } 2308 } 2309 } 2310 2311 /// Representation of a host-defined function. 2312 /// 2313 /// This is used for `Func::new` but also for `Linker`-defined functions. For 2314 /// `Func::new` this is stored within a `Store`, and for `Linker`-defined 2315 /// functions they wrap this up in `Arc` to enable shared ownership of this 2316 /// across many stores. 2317 /// 2318 /// Technically this structure needs a `<T>` type parameter to connect to the 2319 /// `Store<T>` itself, but that's an unsafe contract of using this for now 2320 /// rather than part of the struct type (to avoid `Func<T>` in the API). 2321 pub(crate) struct HostFunc { 2322 ctx: HostContext, 2323 2324 // Stored to unregister this function's signature with the engine when this 2325 // is dropped. 2326 engine: Engine, 2327 } 2328 2329 impl HostFunc { 2330 /// Analog of [`Func::new`] 2331 /// 2332 /// # Panics 2333 /// 2334 /// Panics if the given function type is not associated with the given 2335 /// engine. 2336 pub fn new<T>( 2337 engine: &Engine, 2338 ty: FuncType, 2339 func: impl Fn(Caller<'_, T>, &[Val], &mut [Val]) -> Result<()> + Send + Sync + 'static, 2340 ) -> Self { 2341 assert!(ty.comes_from_same_engine(engine)); 2342 let ty_clone = ty.clone(); 2343 unsafe { 2344 HostFunc::new_unchecked(engine, ty, move |caller, values| { 2345 Func::invoke_host_func_for_wasm(caller, &ty_clone, values, &func) 2346 }) 2347 } 2348 } 2349 2350 /// Analog of [`Func::new_unchecked`] 2351 /// 2352 /// # Panics 2353 /// 2354 /// Panics if the given function type is not associated with the given 2355 /// engine. 2356 pub unsafe fn new_unchecked<T>( 2357 engine: &Engine, 2358 ty: FuncType, 2359 func: impl Fn(Caller<'_, T>, &mut [ValRaw]) -> Result<()> + Send + Sync + 'static, 2360 ) -> Self { 2361 assert!(ty.comes_from_same_engine(engine)); 2362 let func = move |caller_vmctx, values: &mut [ValRaw]| { 2363 Caller::<T>::with(caller_vmctx, |mut caller| { 2364 caller.store.0.call_hook(CallHook::CallingHost)?; 2365 let result = func(caller.sub_caller(), values)?; 2366 caller.store.0.call_hook(CallHook::ReturningFromHost)?; 2367 Ok(result) 2368 }) 2369 }; 2370 let ctx = crate::trampoline::create_array_call_function(&ty, func) 2371 .expect("failed to create function"); 2372 HostFunc::_new(engine, ctx.into()) 2373 } 2374 2375 /// Analog of [`Func::wrap_inner`] 2376 pub fn wrap_inner<F, T, Params, Results>(engine: &Engine, func: F) -> Self 2377 where 2378 F: Fn(Caller<'_, T>, Params) -> Results + Send + Sync + 'static, 2379 Params: WasmTyList, 2380 Results: WasmRet, 2381 { 2382 let ctx = HostContext::from_closure(engine, func); 2383 HostFunc::_new(engine, ctx) 2384 } 2385 2386 /// Analog of [`Func::wrap`] 2387 pub fn wrap<T, Params, Results>( 2388 engine: &Engine, 2389 func: impl IntoFunc<T, Params, Results>, 2390 ) -> Self { 2391 let ctx = func.into_func(engine); 2392 HostFunc::_new(engine, ctx) 2393 } 2394 2395 /// Requires that this function's signature is already registered within 2396 /// `Engine`. This happens automatically during the above two constructors. 2397 fn _new(engine: &Engine, ctx: HostContext) -> Self { 2398 HostFunc { 2399 ctx, 2400 engine: engine.clone(), 2401 } 2402 } 2403 2404 /// Inserts this `HostFunc` into a `Store`, returning the `Func` pointing to 2405 /// it. 2406 /// 2407 /// # Unsafety 2408 /// 2409 /// Can only be inserted into stores with a matching `T` relative to when 2410 /// this `HostFunc` was first created. 2411 pub unsafe fn to_func(self: &Arc<Self>, store: &mut StoreOpaque) -> Func { 2412 self.validate_store(store); 2413 let me = self.clone(); 2414 Func::from_func_kind(FuncKind::SharedHost(me), store) 2415 } 2416 2417 /// Inserts this `HostFunc` into a `Store`, returning the `Func` pointing to 2418 /// it. 2419 /// 2420 /// This function is similar to, but not equivalent, to `HostFunc::to_func`. 2421 /// Notably this function requires that the `Arc<Self>` pointer is otherwise 2422 /// rooted within the `StoreOpaque` via another means. When in doubt use 2423 /// `to_func` above as it's safer. 2424 /// 2425 /// # Unsafety 2426 /// 2427 /// Can only be inserted into stores with a matching `T` relative to when 2428 /// this `HostFunc` was first created. 2429 /// 2430 /// Additionally the `&Arc<Self>` is not cloned in this function. Instead a 2431 /// raw pointer to `Self` is stored within the `Store` for this function. 2432 /// The caller must arrange for the `Arc<Self>` to be "rooted" in the store 2433 /// provided via another means, probably by pushing to 2434 /// `StoreOpaque::rooted_host_funcs`. 2435 /// 2436 /// Similarly, the caller must arrange for `rooted_func_ref` to be rooted in 2437 /// the same store. 2438 pub unsafe fn to_func_store_rooted( 2439 self: &Arc<Self>, 2440 store: &mut StoreOpaque, 2441 rooted_func_ref: Option<NonNull<VMFuncRef>>, 2442 ) -> Func { 2443 self.validate_store(store); 2444 2445 if rooted_func_ref.is_some() { 2446 debug_assert!(self.func_ref().wasm_call.is_none()); 2447 debug_assert!(matches!(self.ctx, HostContext::Array(_))); 2448 } 2449 2450 Func::from_func_kind( 2451 FuncKind::RootedHost(RootedHostFunc::new(self, rooted_func_ref)), 2452 store, 2453 ) 2454 } 2455 2456 /// Same as [`HostFunc::to_func`], different ownership. 2457 unsafe fn into_func(self, store: &mut StoreOpaque) -> Func { 2458 self.validate_store(store); 2459 Func::from_func_kind(FuncKind::Host(Box::new(self)), store) 2460 } 2461 2462 fn validate_store(&self, store: &mut StoreOpaque) { 2463 // This assert is required to ensure that we can indeed safely insert 2464 // `self` into the `store` provided, otherwise the type information we 2465 // have listed won't be correct. This is possible to hit with the public 2466 // API of Wasmtime, and should be documented in relevant functions. 2467 assert!( 2468 Engine::same(&self.engine, store.engine()), 2469 "cannot use a store with a different engine than a linker was created with", 2470 ); 2471 } 2472 2473 pub(crate) fn sig_index(&self) -> VMSharedTypeIndex { 2474 self.func_ref().type_index 2475 } 2476 2477 pub(crate) fn func_ref(&self) -> &VMFuncRef { 2478 match &self.ctx { 2479 HostContext::Array(ctx) => unsafe { (*ctx.get()).func_ref() }, 2480 } 2481 } 2482 2483 pub(crate) fn host_ctx(&self) -> &HostContext { 2484 &self.ctx 2485 } 2486 2487 fn export_func(&self) -> ExportFunction { 2488 ExportFunction { 2489 func_ref: NonNull::from(self.func_ref()), 2490 } 2491 } 2492 } 2493 2494 impl FuncData { 2495 #[inline] 2496 fn export(&self) -> ExportFunction { 2497 self.kind.export() 2498 } 2499 2500 pub(crate) fn sig_index(&self) -> VMSharedTypeIndex { 2501 unsafe { self.export().func_ref.as_ref().type_index } 2502 } 2503 } 2504 2505 impl FuncKind { 2506 #[inline] 2507 fn export(&self) -> ExportFunction { 2508 match self { 2509 FuncKind::StoreOwned { export, .. } => *export, 2510 FuncKind::SharedHost(host) => host.export_func(), 2511 FuncKind::RootedHost(rooted) => ExportFunction { 2512 func_ref: NonNull::from(rooted.func_ref()), 2513 }, 2514 FuncKind::Host(host) => host.export_func(), 2515 } 2516 } 2517 } 2518 2519 use self::rooted::*; 2520 2521 /// An inner module is used here to force unsafe construction of 2522 /// `RootedHostFunc` instead of accidentally safely allowing access to its 2523 /// constructor. 2524 mod rooted { 2525 use super::HostFunc; 2526 use crate::runtime::vm::{SendSyncPtr, VMFuncRef}; 2527 use alloc::sync::Arc; 2528 use core::ptr::NonNull; 2529 2530 /// A variant of a pointer-to-a-host-function used in `FuncKind::RootedHost` 2531 /// above. 2532 /// 2533 /// For more documentation see `FuncKind::RootedHost`, `InstancePre`, and 2534 /// `HostFunc::to_func_store_rooted`. 2535 pub(crate) struct RootedHostFunc { 2536 func: SendSyncPtr<HostFunc>, 2537 func_ref: Option<SendSyncPtr<VMFuncRef>>, 2538 } 2539 2540 impl RootedHostFunc { 2541 /// Note that this is `unsafe` because this wrapper type allows safe 2542 /// access to the pointer given at any time, including outside the 2543 /// window of validity of `func`, so callers must not use the return 2544 /// value past the lifetime of the provided `func`. 2545 /// 2546 /// Similarly, callers must ensure that the given `func_ref` is valid 2547 /// for the lifetime of the return value. 2548 pub(crate) unsafe fn new( 2549 func: &Arc<HostFunc>, 2550 func_ref: Option<NonNull<VMFuncRef>>, 2551 ) -> RootedHostFunc { 2552 RootedHostFunc { 2553 func: NonNull::from(&**func).into(), 2554 func_ref: func_ref.map(|p| p.into()), 2555 } 2556 } 2557 2558 pub(crate) fn func(&self) -> &HostFunc { 2559 // Safety invariants are upheld by the `RootedHostFunc::new` caller. 2560 unsafe { self.func.as_ref() } 2561 } 2562 2563 pub(crate) fn func_ref(&self) -> &VMFuncRef { 2564 if let Some(f) = self.func_ref { 2565 // Safety invariants are upheld by the `RootedHostFunc::new` caller. 2566 unsafe { f.as_ref() } 2567 } else { 2568 self.func().func_ref() 2569 } 2570 } 2571 } 2572 } 2573 2574 #[cfg(test)] 2575 mod tests { 2576 use super::*; 2577 use crate::Store; 2578 2579 #[test] 2580 fn hash_key_is_stable_across_duplicate_store_data_entries() -> Result<()> { 2581 let mut store = Store::<()>::default(); 2582 let module = Module::new( 2583 store.engine(), 2584 r#" 2585 (module 2586 (func (export "f") 2587 nop 2588 ) 2589 ) 2590 "#, 2591 )?; 2592 let instance = Instance::new(&mut store, &module, &[])?; 2593 2594 // Each time we `get_func`, we call `Func::from_wasmtime` which adds a 2595 // new entry to `StoreData`, so `f1` and `f2` will have different 2596 // indices into `StoreData`. 2597 let f1 = instance.get_func(&mut store, "f").unwrap(); 2598 let f2 = instance.get_func(&mut store, "f").unwrap(); 2599 2600 // But their hash keys are the same. 2601 assert!( 2602 f1.hash_key(&mut store.as_context_mut().0) 2603 == f2.hash_key(&mut store.as_context_mut().0) 2604 ); 2605 2606 // But the hash keys are different from different funcs. 2607 let instance2 = Instance::new(&mut store, &module, &[])?; 2608 let f3 = instance2.get_func(&mut store, "f").unwrap(); 2609 assert!( 2610 f1.hash_key(&mut store.as_context_mut().0) 2611 != f3.hash_key(&mut store.as_context_mut().0) 2612 ); 2613 2614 Ok(()) 2615 } 2616 } 2617