1 use crate::prelude::*; 2 use crate::runtime::vm::{CompiledModuleId, MmapVec, ModuleMemoryImages, VMWasmCallFunction}; 3 use crate::sync::OnceLock; 4 use crate::{ 5 code::CodeObject, 6 code_memory::CodeMemory, 7 instantiate::CompiledModule, 8 resources::ResourcesRequired, 9 type_registry::TypeCollection, 10 types::{ExportType, ExternType, ImportType}, 11 Engine, 12 }; 13 use alloc::sync::Arc; 14 use core::fmt; 15 use core::ops::Range; 16 use core::ptr::NonNull; 17 #[cfg(feature = "std")] 18 use std::path::Path; 19 use wasmparser::{Parser, ValidPayload, Validator}; 20 use wasmtime_environ::{ 21 CompiledModuleInfo, EntityIndex, HostPtr, ModuleTypes, ObjectKind, TypeTrace, VMOffsets, 22 VMSharedTypeIndex, 23 }; 24 mod registry; 25 26 pub use registry::{ 27 lookup_code, register_code, unregister_code, ModuleRegistry, RegisteredModuleId, 28 }; 29 30 /// A compiled WebAssembly module, ready to be instantiated. 31 /// 32 /// A `Module` is a compiled in-memory representation of an input WebAssembly 33 /// binary. A `Module` is then used to create an [`Instance`](crate::Instance) 34 /// through an instantiation process. You cannot call functions or fetch 35 /// globals, for example, on a `Module` because it's purely a code 36 /// representation. Instead you'll need to create an 37 /// [`Instance`](crate::Instance) to interact with the wasm module. 38 /// 39 /// A `Module` can be created by compiling WebAssembly code through APIs such as 40 /// [`Module::new`]. This would be a JIT-style use case where code is compiled 41 /// just before it's used. Alternatively a `Module` can be compiled in one 42 /// process and [`Module::serialize`] can be used to save it to storage. A later 43 /// call to [`Module::deserialize`] will quickly load the module to execute and 44 /// does not need to compile any code, representing a more AOT-style use case. 45 /// 46 /// Currently a `Module` does not implement any form of tiering or dynamic 47 /// optimization of compiled code. Creation of a `Module` via [`Module::new`] or 48 /// related APIs will perform the entire compilation step synchronously. When 49 /// finished no further compilation will happen at runtime or later during 50 /// execution of WebAssembly instances for example. 51 /// 52 /// Compilation of WebAssembly by default goes through Cranelift and is 53 /// recommended to be done once-per-module. The same WebAssembly binary need not 54 /// be compiled multiple times and can instead used an embedder-cached result of 55 /// the first call. 56 /// 57 /// `Module` is thread-safe and safe to share across threads. 58 /// 59 /// ## Modules and `Clone` 60 /// 61 /// Using `clone` on a `Module` is a cheap operation. It will not create an 62 /// entirely new module, but rather just a new reference to the existing module. 63 /// In other words it's a shallow copy, not a deep copy. 64 /// 65 /// ## Examples 66 /// 67 /// There are a number of ways you can create a `Module`, for example pulling 68 /// the bytes from a number of locations. One example is loading a module from 69 /// the filesystem: 70 /// 71 /// ```no_run 72 /// # use wasmtime::*; 73 /// # fn main() -> anyhow::Result<()> { 74 /// let engine = Engine::default(); 75 /// let module = Module::from_file(&engine, "path/to/foo.wasm")?; 76 /// # Ok(()) 77 /// # } 78 /// ``` 79 /// 80 /// You can also load the wasm text format if more convenient too: 81 /// 82 /// ```no_run 83 /// # use wasmtime::*; 84 /// # fn main() -> anyhow::Result<()> { 85 /// let engine = Engine::default(); 86 /// // Now we're using the WebAssembly text extension: `.wat`! 87 /// let module = Module::from_file(&engine, "path/to/foo.wat")?; 88 /// # Ok(()) 89 /// # } 90 /// ``` 91 /// 92 /// And if you've already got the bytes in-memory you can use the 93 /// [`Module::new`] constructor: 94 /// 95 /// ```no_run 96 /// # use wasmtime::*; 97 /// # fn main() -> anyhow::Result<()> { 98 /// let engine = Engine::default(); 99 /// # let wasm_bytes: Vec<u8> = Vec::new(); 100 /// let module = Module::new(&engine, &wasm_bytes)?; 101 /// 102 /// // It also works with the text format! 103 /// let module = Module::new(&engine, "(module (func))")?; 104 /// # Ok(()) 105 /// # } 106 /// ``` 107 /// 108 /// Serializing and deserializing a module looks like: 109 /// 110 /// ```no_run 111 /// # use wasmtime::*; 112 /// # fn main() -> anyhow::Result<()> { 113 /// let engine = Engine::default(); 114 /// # let wasm_bytes: Vec<u8> = Vec::new(); 115 /// let module = Module::new(&engine, &wasm_bytes)?; 116 /// let module_bytes = module.serialize()?; 117 /// 118 /// // ... can save `module_bytes` to disk or other storage ... 119 /// 120 /// // recreate the module from the serialized bytes. For the `unsafe` bits 121 /// // see the documentation of `deserialize`. 122 /// let module = unsafe { Module::deserialize(&engine, &module_bytes)? }; 123 /// # Ok(()) 124 /// # } 125 /// ``` 126 /// 127 /// [`Config`]: crate::Config 128 #[derive(Clone)] 129 pub struct Module { 130 inner: Arc<ModuleInner>, 131 } 132 133 struct ModuleInner { 134 engine: Engine, 135 /// The compiled artifacts for this module that will be instantiated and 136 /// executed. 137 module: CompiledModule, 138 139 /// Runtime information such as the underlying mmap, type information, etc. 140 /// 141 /// Note that this `Arc` is used to share information between compiled 142 /// modules within a component. For bare core wasm modules created with 143 /// `Module::new`, for example, this is a uniquely owned `Arc`. 144 code: Arc<CodeObject>, 145 146 /// A set of initialization images for memories, if any. 147 /// 148 /// Note that this is behind a `OnceCell` to lazily create this image. On 149 /// Linux where `memfd_create` may be used to create the backing memory 150 /// image this is a pretty expensive operation, so by deferring it this 151 /// improves memory usage for modules that are created but may not ever be 152 /// instantiated. 153 memory_images: OnceLock<Option<ModuleMemoryImages>>, 154 155 /// Flag indicating whether this module can be serialized or not. 156 serializable: bool, 157 158 /// Runtime offset information for `VMContext`. 159 offsets: VMOffsets<HostPtr>, 160 } 161 162 impl fmt::Debug for Module { 163 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result { 164 f.debug_struct("Module") 165 .field("name", &self.name()) 166 .finish_non_exhaustive() 167 } 168 } 169 170 impl fmt::Debug for ModuleInner { 171 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result { 172 f.debug_struct("ModuleInner") 173 .field("name", &self.module.module().name.as_ref()) 174 .finish_non_exhaustive() 175 } 176 } 177 178 impl Module { 179 /// Creates a new WebAssembly `Module` from the given in-memory `bytes`. 180 /// 181 /// The `bytes` provided must be in one of the following formats: 182 /// 183 /// * A [binary-encoded][binary] WebAssembly module. This is always supported. 184 /// * A [text-encoded][text] instance of the WebAssembly text format. 185 /// This is only supported when the `wat` feature of this crate is enabled. 186 /// If this is supplied then the text format will be parsed before validation. 187 /// Note that the `wat` feature is enabled by default. 188 /// 189 /// The data for the wasm module must be loaded in-memory if it's present 190 /// elsewhere, for example on disk. This requires that the entire binary is 191 /// loaded into memory all at once, this API does not support streaming 192 /// compilation of a module. 193 /// 194 /// The WebAssembly binary will be decoded and validated. It will also be 195 /// compiled according to the configuration of the provided `engine`. 196 /// 197 /// # Errors 198 /// 199 /// This function may fail and return an error. Errors may include 200 /// situations such as: 201 /// 202 /// * The binary provided could not be decoded because it's not a valid 203 /// WebAssembly binary 204 /// * The WebAssembly binary may not validate (e.g. contains type errors) 205 /// * Implementation-specific limits were exceeded with a valid binary (for 206 /// example too many locals) 207 /// * The wasm binary may use features that are not enabled in the 208 /// configuration of `engine` 209 /// * If the `wat` feature is enabled and the input is text, then it may be 210 /// rejected if it fails to parse. 211 /// 212 /// The error returned should contain full information about why module 213 /// creation failed if one is returned. 214 /// 215 /// [binary]: https://webassembly.github.io/spec/core/binary/index.html 216 /// [text]: https://webassembly.github.io/spec/core/text/index.html 217 /// 218 /// # Examples 219 /// 220 /// The `new` function can be invoked with a in-memory array of bytes: 221 /// 222 /// ```no_run 223 /// # use wasmtime::*; 224 /// # fn main() -> anyhow::Result<()> { 225 /// # let engine = Engine::default(); 226 /// # let wasm_bytes: Vec<u8> = Vec::new(); 227 /// let module = Module::new(&engine, &wasm_bytes)?; 228 /// # Ok(()) 229 /// # } 230 /// ``` 231 /// 232 /// Or you can also pass in a string to be parsed as the wasm text 233 /// format: 234 /// 235 /// ``` 236 /// # use wasmtime::*; 237 /// # fn main() -> anyhow::Result<()> { 238 /// # let engine = Engine::default(); 239 /// let module = Module::new(&engine, "(module (func))")?; 240 /// # Ok(()) 241 /// # } 242 /// ``` 243 #[cfg(any(feature = "cranelift", feature = "winch"))] 244 pub fn new(engine: &Engine, bytes: impl AsRef<[u8]>) -> Result<Module> { 245 crate::CodeBuilder::new(engine) 246 .wasm_binary_or_text(bytes.as_ref(), None)? 247 .compile_module() 248 } 249 250 /// Creates a new WebAssembly `Module` from the contents of the given 251 /// `file` on disk. 252 /// 253 /// This is a convenience function that will read the `file` provided and 254 /// pass the bytes to the [`Module::new`] function. For more information 255 /// see [`Module::new`] 256 /// 257 /// # Examples 258 /// 259 /// ```no_run 260 /// # use wasmtime::*; 261 /// # fn main() -> anyhow::Result<()> { 262 /// let engine = Engine::default(); 263 /// let module = Module::from_file(&engine, "./path/to/foo.wasm")?; 264 /// # Ok(()) 265 /// # } 266 /// ``` 267 /// 268 /// The `.wat` text format is also supported: 269 /// 270 /// ```no_run 271 /// # use wasmtime::*; 272 /// # fn main() -> anyhow::Result<()> { 273 /// # let engine = Engine::default(); 274 /// let module = Module::from_file(&engine, "./path/to/foo.wat")?; 275 /// # Ok(()) 276 /// # } 277 /// ``` 278 #[cfg(all(feature = "std", any(feature = "cranelift", feature = "winch")))] 279 pub fn from_file(engine: &Engine, file: impl AsRef<Path>) -> Result<Module> { 280 crate::CodeBuilder::new(engine) 281 .wasm_binary_or_text_file(file.as_ref())? 282 .compile_module() 283 } 284 285 /// Creates a new WebAssembly `Module` from the given in-memory `binary` 286 /// data. 287 /// 288 /// This is similar to [`Module::new`] except that it requires that the 289 /// `binary` input is a WebAssembly binary, the text format is not supported 290 /// by this function. It's generally recommended to use [`Module::new`], but 291 /// if it's required to not support the text format this function can be 292 /// used instead. 293 /// 294 /// # Examples 295 /// 296 /// ``` 297 /// # use wasmtime::*; 298 /// # fn main() -> anyhow::Result<()> { 299 /// # let engine = Engine::default(); 300 /// let wasm = b"\0asm\x01\0\0\0"; 301 /// let module = Module::from_binary(&engine, wasm)?; 302 /// # Ok(()) 303 /// # } 304 /// ``` 305 /// 306 /// Note that the text format is **not** accepted by this function: 307 /// 308 /// ``` 309 /// # use wasmtime::*; 310 /// # fn main() -> anyhow::Result<()> { 311 /// # let engine = Engine::default(); 312 /// assert!(Module::from_binary(&engine, b"(module)").is_err()); 313 /// # Ok(()) 314 /// # } 315 /// ``` 316 #[cfg(any(feature = "cranelift", feature = "winch"))] 317 pub fn from_binary(engine: &Engine, binary: &[u8]) -> Result<Module> { 318 crate::CodeBuilder::new(engine) 319 .wasm_binary(binary, None)? 320 .compile_module() 321 } 322 323 /// Creates a new WebAssembly `Module` from the contents of the given `file` 324 /// on disk, but with assumptions that the file is from a trusted source. 325 /// The file should be a binary- or text-format WebAssembly module, or a 326 /// precompiled artifact generated by the same version of Wasmtime. 327 /// 328 /// # Unsafety 329 /// 330 /// All of the reasons that [`deserialize`] is `unsafe` apply to this 331 /// function as well. Arbitrary data loaded from a file may trick Wasmtime 332 /// into arbitrary code execution since the contents of the file are not 333 /// validated to be a valid precompiled module. 334 /// 335 /// [`deserialize`]: Module::deserialize 336 /// 337 /// Additionally though this function is also `unsafe` because the file 338 /// referenced must remain unchanged and a valid precompiled module for the 339 /// entire lifetime of the [`Module`] returned. Any changes to the file on 340 /// disk may change future instantiations of the module to be incorrect. 341 /// This is because the file is mapped into memory and lazily loaded pages 342 /// reflect the current state of the file, not necessarily the original 343 /// state of the file. 344 #[cfg(all(feature = "std", any(feature = "cranelift", feature = "winch")))] 345 pub unsafe fn from_trusted_file(engine: &Engine, file: impl AsRef<Path>) -> Result<Module> { 346 let mmap = MmapVec::from_file(file.as_ref())?; 347 if &mmap[0..4] == b"\x7fELF" { 348 let code = engine.load_code(mmap, ObjectKind::Module)?; 349 return Module::from_parts(engine, code, None); 350 } 351 352 crate::CodeBuilder::new(engine) 353 .wasm_binary_or_text(&mmap[..], Some(file.as_ref()))? 354 .compile_module() 355 } 356 357 /// Deserializes an in-memory compiled module previously created with 358 /// [`Module::serialize`] or [`Engine::precompile_module`]. 359 /// 360 /// This function will deserialize the binary blobs emitted by 361 /// [`Module::serialize`] and [`Engine::precompile_module`] back into an 362 /// in-memory [`Module`] that's ready to be instantiated. 363 /// 364 /// Note that the [`Module::deserialize_file`] method is more optimized than 365 /// this function, so if the serialized module is already present in a file 366 /// it's recommended to use that method instead. 367 /// 368 /// # Unsafety 369 /// 370 /// This function is marked as `unsafe` because if fed invalid input or used 371 /// improperly this could lead to memory safety vulnerabilities. This method 372 /// should not, for example, be exposed to arbitrary user input. 373 /// 374 /// The structure of the binary blob read here is only lightly validated 375 /// internally in `wasmtime`. This is intended to be an efficient 376 /// "rehydration" for a [`Module`] which has very few runtime checks beyond 377 /// deserialization. Arbitrary input could, for example, replace valid 378 /// compiled code with any other valid compiled code, meaning that this can 379 /// trivially be used to execute arbitrary code otherwise. 380 /// 381 /// For these reasons this function is `unsafe`. This function is only 382 /// designed to receive the previous input from [`Module::serialize`] and 383 /// [`Engine::precompile_module`]. If the exact output of those functions 384 /// (unmodified) is passed to this function then calls to this function can 385 /// be considered safe. It is the caller's responsibility to provide the 386 /// guarantee that only previously-serialized bytes are being passed in 387 /// here. 388 /// 389 /// Note that this function is designed to be safe receiving output from 390 /// *any* compiled version of `wasmtime` itself. This means that it is safe 391 /// to feed output from older versions of Wasmtime into this function, in 392 /// addition to newer versions of wasmtime (from the future!). These inputs 393 /// will deterministically and safely produce an `Err`. This function only 394 /// successfully accepts inputs from the same version of `wasmtime`, but the 395 /// safety guarantee only applies to externally-defined blobs of bytes, not 396 /// those defined by any version of wasmtime. (this means that if you cache 397 /// blobs across versions of wasmtime you can be safely guaranteed that 398 /// future versions of wasmtime will reject old cache entries). 399 pub unsafe fn deserialize(engine: &Engine, bytes: impl AsRef<[u8]>) -> Result<Module> { 400 let code = engine.load_code_bytes(bytes.as_ref(), ObjectKind::Module)?; 401 Module::from_parts(engine, code, None) 402 } 403 404 /// Same as [`deserialize`], except that the contents of `path` are read to 405 /// deserialize into a [`Module`]. 406 /// 407 /// This method is provided because it can be faster than [`deserialize`] 408 /// since the data doesn't need to be copied around, but rather the module 409 /// can be used directly from an mmap'd view of the file provided. 410 /// 411 /// [`deserialize`]: Module::deserialize 412 /// 413 /// # Unsafety 414 /// 415 /// All of the reasons that [`deserialize`] is `unsafe` applies to this 416 /// function as well. Arbitrary data loaded from a file may trick Wasmtime 417 /// into arbitrary code execution since the contents of the file are not 418 /// validated to be a valid precompiled module. 419 /// 420 /// Additionally though this function is also `unsafe` because the file 421 /// referenced must remain unchanged and a valid precompiled module for the 422 /// entire lifetime of the [`Module`] returned. Any changes to the file on 423 /// disk may change future instantiations of the module to be incorrect. 424 /// This is because the file is mapped into memory and lazily loaded pages 425 /// reflect the current state of the file, not necessarily the original 426 /// state of the file. 427 #[cfg(feature = "std")] 428 pub unsafe fn deserialize_file(engine: &Engine, path: impl AsRef<Path>) -> Result<Module> { 429 let code = engine.load_code_file(path.as_ref(), ObjectKind::Module)?; 430 Module::from_parts(engine, code, None) 431 } 432 433 /// Entrypoint for creating a `Module` for all above functions, both 434 /// of the AOT and jit-compiled categories. 435 /// 436 /// In all cases the compilation artifact, `code_memory`, is provided here. 437 /// The `info_and_types` argument is `None` when a module is being 438 /// deserialized from a precompiled artifact or it's `Some` if it was just 439 /// compiled and the values are already available. 440 pub(crate) fn from_parts( 441 engine: &Engine, 442 code_memory: Arc<CodeMemory>, 443 info_and_types: Option<(CompiledModuleInfo, ModuleTypes)>, 444 ) -> Result<Self> { 445 // Acquire this module's metadata and type information, deserializing 446 // it from the provided artifact if it wasn't otherwise provided 447 // already. 448 let (info, types) = match info_and_types { 449 Some((info, types)) => (info, types), 450 None => postcard::from_bytes(code_memory.wasmtime_info()).err2anyhow()?, 451 }; 452 453 // Register function type signatures into the engine for the lifetime 454 // of the `Module` that will be returned. This notably also builds up 455 // maps for trampolines to be used for this module when inserted into 456 // stores. 457 // 458 // Note that the unsafety here should be ok since the `trampolines` 459 // field should only point to valid trampoline function pointers 460 // within the text section. 461 let signatures = TypeCollection::new_for_module(engine, &types); 462 463 // Package up all our data into a `CodeObject` and delegate to the final 464 // step of module compilation. 465 let code = Arc::new(CodeObject::new(code_memory, signatures, types.into())); 466 Module::from_parts_raw(engine, code, info, true) 467 } 468 469 pub(crate) fn from_parts_raw( 470 engine: &Engine, 471 code: Arc<CodeObject>, 472 info: CompiledModuleInfo, 473 serializable: bool, 474 ) -> Result<Self> { 475 let module = 476 CompiledModule::from_artifacts(code.code_memory().clone(), info, engine.profiler())?; 477 478 // Validate the module can be used with the current instance allocator. 479 let offsets = VMOffsets::new(HostPtr, module.module()); 480 engine 481 .allocator() 482 .validate_module(module.module(), &offsets)?; 483 484 Ok(Self { 485 inner: Arc::new(ModuleInner { 486 engine: engine.clone(), 487 code, 488 memory_images: OnceLock::new(), 489 module, 490 serializable, 491 offsets, 492 }), 493 }) 494 } 495 496 /// Validates `binary` input data as a WebAssembly binary given the 497 /// configuration in `engine`. 498 /// 499 /// This function will perform a speedy validation of the `binary` input 500 /// WebAssembly module (which is in [binary form][binary], the text format 501 /// is not accepted by this function) and return either `Ok` or `Err` 502 /// depending on the results of validation. The `engine` argument indicates 503 /// configuration for WebAssembly features, for example, which are used to 504 /// indicate what should be valid and what shouldn't be. 505 /// 506 /// Validation automatically happens as part of [`Module::new`]. 507 /// 508 /// # Errors 509 /// 510 /// If validation fails for any reason (type check error, usage of a feature 511 /// that wasn't enabled, etc) then an error with a description of the 512 /// validation issue will be returned. 513 /// 514 /// [binary]: https://webassembly.github.io/spec/core/binary/index.html 515 pub fn validate(engine: &Engine, binary: &[u8]) -> Result<()> { 516 let mut validator = Validator::new_with_features(engine.features()); 517 518 let mut functions = Vec::new(); 519 for payload in Parser::new(0).parse_all(binary) { 520 let payload = payload.err2anyhow()?; 521 if let ValidPayload::Func(a, b) = validator.payload(&payload).err2anyhow()? { 522 functions.push((a, b)); 523 } 524 if let wasmparser::Payload::Version { encoding, .. } = &payload { 525 if let wasmparser::Encoding::Component = encoding { 526 bail!("component passed to module validation"); 527 } 528 } 529 } 530 531 engine 532 .run_maybe_parallel(functions, |(validator, body)| { 533 // FIXME: it would be best here to use a rayon-specific parallel 534 // iterator that maintains state-per-thread to share the function 535 // validator allocations (`Default::default` here) across multiple 536 // functions. 537 validator.into_validator(Default::default()).validate(&body) 538 }) 539 .err2anyhow()?; 540 Ok(()) 541 } 542 543 /// Serializes this module to a vector of bytes. 544 /// 545 /// This function is similar to the [`Engine::precompile_module`] method 546 /// where it produces an artifact of Wasmtime which is suitable to later 547 /// pass into [`Module::deserialize`]. If a module is never instantiated 548 /// then it's recommended to use [`Engine::precompile_module`] instead of 549 /// this method, but if a module is both instantiated and serialized then 550 /// this method can be useful to get the serialized version without 551 /// compiling twice. 552 #[cfg(any(feature = "cranelift", feature = "winch"))] 553 pub fn serialize(&self) -> Result<Vec<u8>> { 554 // The current representation of compiled modules within a compiled 555 // component means that it cannot be serialized. The mmap returned here 556 // is the mmap for the entire component and while it contains all 557 // necessary data to deserialize this particular module it's all 558 // embedded within component-specific information. 559 // 560 // It's not the hardest thing in the world to support this but it's 561 // expected that there's not much of a use case at this time. In theory 562 // all that needs to be done is to edit the `.wasmtime.info` section 563 // to contains this module's metadata instead of the metadata for the 564 // whole component. The metadata itself is fairly trivially 565 // recreateable here it's more that there's no easy one-off API for 566 // editing the sections of an ELF object to use here. 567 // 568 // Overall for now this simply always returns an error in this 569 // situation. If you're reading this and feel that the situation should 570 // be different please feel free to open an issue. 571 if !self.inner.serializable { 572 bail!("cannot serialize a module exported from a component"); 573 } 574 Ok(self.compiled_module().mmap().to_vec()) 575 } 576 577 pub(crate) fn compiled_module(&self) -> &CompiledModule { 578 &self.inner.module 579 } 580 581 pub(crate) fn code_object(&self) -> &Arc<CodeObject> { 582 &self.inner.code 583 } 584 585 pub(crate) fn env_module(&self) -> &Arc<wasmtime_environ::Module> { 586 self.compiled_module().module() 587 } 588 589 pub(crate) fn types(&self) -> &ModuleTypes { 590 self.inner.code.module_types() 591 } 592 593 pub(crate) fn signatures(&self) -> &TypeCollection { 594 self.inner.code.signatures() 595 } 596 597 /// Returns identifier/name that this [`Module`] has. This name 598 /// is used in traps/backtrace details. 599 /// 600 /// Note that most LLVM/clang/Rust-produced modules do not have a name 601 /// associated with them, but other wasm tooling can be used to inject or 602 /// add a name. 603 /// 604 /// # Examples 605 /// 606 /// ``` 607 /// # use wasmtime::*; 608 /// # fn main() -> anyhow::Result<()> { 609 /// # let engine = Engine::default(); 610 /// let module = Module::new(&engine, "(module $foo)")?; 611 /// assert_eq!(module.name(), Some("foo")); 612 /// 613 /// let module = Module::new(&engine, "(module)")?; 614 /// assert_eq!(module.name(), None); 615 /// 616 /// # Ok(()) 617 /// # } 618 /// ``` 619 pub fn name(&self) -> Option<&str> { 620 self.compiled_module().module().name.as_deref() 621 } 622 623 /// Returns the list of imports that this [`Module`] has and must be 624 /// satisfied. 625 /// 626 /// This function returns the list of imports that the wasm module has, but 627 /// only the types of each import. The type of each import is used to 628 /// typecheck the [`Instance::new`](crate::Instance::new) method's `imports` 629 /// argument. The arguments to that function must match up 1-to-1 with the 630 /// entries in the array returned here. 631 /// 632 /// The imports returned reflect the order of the imports in the wasm module 633 /// itself, and note that no form of deduplication happens. 634 /// 635 /// # Examples 636 /// 637 /// Modules with no imports return an empty list here: 638 /// 639 /// ``` 640 /// # use wasmtime::*; 641 /// # fn main() -> anyhow::Result<()> { 642 /// # let engine = Engine::default(); 643 /// let module = Module::new(&engine, "(module)")?; 644 /// assert_eq!(module.imports().len(), 0); 645 /// # Ok(()) 646 /// # } 647 /// ``` 648 /// 649 /// and modules with imports will have a non-empty list: 650 /// 651 /// ``` 652 /// # use wasmtime::*; 653 /// # fn main() -> anyhow::Result<()> { 654 /// # let engine = Engine::default(); 655 /// let wat = r#" 656 /// (module 657 /// (import "host" "foo" (func)) 658 /// ) 659 /// "#; 660 /// let module = Module::new(&engine, wat)?; 661 /// assert_eq!(module.imports().len(), 1); 662 /// let import = module.imports().next().unwrap(); 663 /// assert_eq!(import.module(), "host"); 664 /// assert_eq!(import.name(), "foo"); 665 /// match import.ty() { 666 /// ExternType::Func(_) => { /* ... */ } 667 /// _ => panic!("unexpected import type!"), 668 /// } 669 /// # Ok(()) 670 /// # } 671 /// ``` 672 pub fn imports<'module>( 673 &'module self, 674 ) -> impl ExactSizeIterator<Item = ImportType<'module>> + 'module { 675 let module = self.compiled_module().module(); 676 let types = self.types(); 677 let engine = self.engine(); 678 module 679 .imports() 680 .map(move |(imp_mod, imp_field, mut ty)| { 681 ty.canonicalize_for_runtime_usage(&mut |i| { 682 self.signatures().shared_type(i).unwrap() 683 }); 684 ImportType::new(imp_mod, imp_field, ty, types, engine) 685 }) 686 .collect::<Vec<_>>() 687 .into_iter() 688 } 689 690 /// Returns the list of exports that this [`Module`] has and will be 691 /// available after instantiation. 692 /// 693 /// This function will return the type of each item that will be returned 694 /// from [`Instance::exports`](crate::Instance::exports). Each entry in this 695 /// list corresponds 1-to-1 with that list, and the entries here will 696 /// indicate the name of the export along with the type of the export. 697 /// 698 /// # Examples 699 /// 700 /// Modules might not have any exports: 701 /// 702 /// ``` 703 /// # use wasmtime::*; 704 /// # fn main() -> anyhow::Result<()> { 705 /// # let engine = Engine::default(); 706 /// let module = Module::new(&engine, "(module)")?; 707 /// assert!(module.exports().next().is_none()); 708 /// # Ok(()) 709 /// # } 710 /// ``` 711 /// 712 /// When the exports are not empty, you can inspect each export: 713 /// 714 /// ``` 715 /// # use wasmtime::*; 716 /// # fn main() -> anyhow::Result<()> { 717 /// # let engine = Engine::default(); 718 /// let wat = r#" 719 /// (module 720 /// (func (export "foo")) 721 /// (memory (export "memory") 1) 722 /// ) 723 /// "#; 724 /// let module = Module::new(&engine, wat)?; 725 /// assert_eq!(module.exports().len(), 2); 726 /// 727 /// let mut exports = module.exports(); 728 /// let foo = exports.next().unwrap(); 729 /// assert_eq!(foo.name(), "foo"); 730 /// match foo.ty() { 731 /// ExternType::Func(_) => { /* ... */ } 732 /// _ => panic!("unexpected export type!"), 733 /// } 734 /// 735 /// let memory = exports.next().unwrap(); 736 /// assert_eq!(memory.name(), "memory"); 737 /// match memory.ty() { 738 /// ExternType::Memory(_) => { /* ... */ } 739 /// _ => panic!("unexpected export type!"), 740 /// } 741 /// # Ok(()) 742 /// # } 743 /// ``` 744 pub fn exports<'module>( 745 &'module self, 746 ) -> impl ExactSizeIterator<Item = ExportType<'module>> + 'module { 747 let module = self.compiled_module().module(); 748 let types = self.types(); 749 let engine = self.engine(); 750 module.exports.iter().map(move |(name, entity_index)| { 751 ExportType::new(name, module.type_of(*entity_index), types, engine) 752 }) 753 } 754 755 /// Looks up an export in this [`Module`] by name. 756 /// 757 /// This function will return the type of an export with the given name. 758 /// 759 /// # Examples 760 /// 761 /// There may be no export with that name: 762 /// 763 /// ``` 764 /// # use wasmtime::*; 765 /// # fn main() -> anyhow::Result<()> { 766 /// # let engine = Engine::default(); 767 /// let module = Module::new(&engine, "(module)")?; 768 /// assert!(module.get_export("foo").is_none()); 769 /// # Ok(()) 770 /// # } 771 /// ``` 772 /// 773 /// When there is an export with that name, it is returned: 774 /// 775 /// ``` 776 /// # use wasmtime::*; 777 /// # fn main() -> anyhow::Result<()> { 778 /// # let engine = Engine::default(); 779 /// let wat = r#" 780 /// (module 781 /// (func (export "foo")) 782 /// (memory (export "memory") 1) 783 /// ) 784 /// "#; 785 /// let module = Module::new(&engine, wat)?; 786 /// let foo = module.get_export("foo"); 787 /// assert!(foo.is_some()); 788 /// 789 /// let foo = foo.unwrap(); 790 /// match foo { 791 /// ExternType::Func(_) => { /* ... */ } 792 /// _ => panic!("unexpected export type!"), 793 /// } 794 /// 795 /// # Ok(()) 796 /// # } 797 /// ``` 798 pub fn get_export(&self, name: &str) -> Option<ExternType> { 799 let module = self.compiled_module().module(); 800 let entity_index = module.exports.get(name)?; 801 Some(ExternType::from_wasmtime( 802 self.engine(), 803 self.types(), 804 &module.type_of(*entity_index), 805 )) 806 } 807 808 /// Looks up an export in this [`Module`] by name to get its index. 809 /// 810 /// This function will return the index of an export with the given name. This can be useful 811 /// to avoid the cost of looking up the export by name multiple times. Instead the 812 /// [`ModuleExport`] can be stored and used to look up the export on the 813 /// [`Instance`](crate::Instance) later. 814 pub fn get_export_index(&self, name: &str) -> Option<ModuleExport> { 815 let compiled_module = self.compiled_module(); 816 let module = compiled_module.module(); 817 module 818 .exports 819 .get_full(name) 820 .map(|(export_name_index, _, &entity)| ModuleExport { 821 module: self.id(), 822 entity, 823 export_name_index, 824 }) 825 } 826 827 /// Returns the [`Engine`] that this [`Module`] was compiled by. 828 pub fn engine(&self) -> &Engine { 829 &self.inner.engine 830 } 831 832 /// Returns a summary of the resources required to instantiate this 833 /// [`Module`]. 834 /// 835 /// Potential uses of the returned information: 836 /// 837 /// * Determining whether your pooling allocator configuration supports 838 /// instantiating this module. 839 /// 840 /// * Deciding how many of which `Module` you want to instantiate within a 841 /// fixed amount of resources, e.g. determining whether to create 5 842 /// instances of module X or 10 instances of module Y. 843 /// 844 /// # Example 845 /// 846 /// ``` 847 /// # fn main() -> wasmtime::Result<()> { 848 /// use wasmtime::{Config, Engine, Module}; 849 /// 850 /// let mut config = Config::new(); 851 /// config.wasm_multi_memory(true); 852 /// let engine = Engine::new(&config)?; 853 /// 854 /// let module = Module::new(&engine, r#" 855 /// (module 856 /// ;; Import a memory. Doesn't count towards required resources. 857 /// (import "a" "b" (memory 10)) 858 /// ;; Define two local memories. These count towards the required 859 /// ;; resources. 860 /// (memory 1) 861 /// (memory 6) 862 /// ) 863 /// "#)?; 864 /// 865 /// let resources = module.resources_required(); 866 /// 867 /// // Instantiating the module will require allocating two memories, and 868 /// // the maximum initial memory size is six Wasm pages. 869 /// assert_eq!(resources.num_memories, 2); 870 /// assert_eq!(resources.max_initial_memory_size, Some(6)); 871 /// 872 /// // The module doesn't need any tables. 873 /// assert_eq!(resources.num_tables, 0); 874 /// assert_eq!(resources.max_initial_table_size, None); 875 /// # Ok(()) } 876 /// ``` 877 pub fn resources_required(&self) -> ResourcesRequired { 878 let em = self.env_module(); 879 let num_memories = u32::try_from(em.memory_plans.len() - em.num_imported_memories).unwrap(); 880 let max_initial_memory_size = em 881 .memory_plans 882 .values() 883 .skip(em.num_imported_memories) 884 .map(|plan| plan.memory.minimum) 885 .max(); 886 let num_tables = u32::try_from(em.table_plans.len() - em.num_imported_tables).unwrap(); 887 let max_initial_table_size = em 888 .table_plans 889 .values() 890 .skip(em.num_imported_tables) 891 .map(|plan| plan.table.minimum) 892 .max(); 893 ResourcesRequired { 894 num_memories, 895 max_initial_memory_size, 896 num_tables, 897 max_initial_table_size, 898 } 899 } 900 901 pub(crate) fn module_info(&self) -> &dyn crate::runtime::vm::ModuleInfo { 902 &*self.inner 903 } 904 905 /// Returns the range of bytes in memory where this module's compilation 906 /// image resides. 907 /// 908 /// The compilation image for a module contains executable code, data, debug 909 /// information, etc. This is roughly the same as the `Module::serialize` 910 /// but not the exact same. 911 /// 912 /// The range of memory reported here is exposed to allow low-level 913 /// manipulation of the memory in platform-specific manners such as using 914 /// `mlock` to force the contents to be paged in immediately or keep them 915 /// paged in after they're loaded. 916 /// 917 /// It is not safe to modify the memory in this range, nor is it safe to 918 /// modify the protections of memory in this range. 919 pub fn image_range(&self) -> Range<*const u8> { 920 self.compiled_module().mmap().image_range() 921 } 922 923 /// Force initialization of copy-on-write images to happen here-and-now 924 /// instead of when they're requested during first instantiation. 925 /// 926 /// When [copy-on-write memory 927 /// initialization](crate::Config::memory_init_cow) is enabled then Wasmtime 928 /// will lazily create the initialization image for a module. This method 929 /// can be used to explicitly dictate when this initialization happens. 930 /// 931 /// Note that this largely only matters on Linux when memfd is used. 932 /// Otherwise the copy-on-write image typically comes from disk and in that 933 /// situation the creation of the image is trivial as the image is always 934 /// sourced from disk. On Linux, though, when memfd is used a memfd is 935 /// created and the initialization image is written to it. 936 /// 937 /// Also note that this method is not required to be called, it's available 938 /// as a performance optimization if required but is otherwise handled 939 /// automatically. 940 pub fn initialize_copy_on_write_image(&self) -> Result<()> { 941 self.memory_images()?; 942 Ok(()) 943 } 944 945 /// Get the map from `.text` section offsets to Wasm binary offsets for this 946 /// module. 947 /// 948 /// Each entry is a (`.text` section offset, Wasm binary offset) pair. 949 /// 950 /// Entries are yielded in order of `.text` section offset. 951 /// 952 /// Some entries are missing a Wasm binary offset. This is for code that is 953 /// not associated with any single location in the Wasm binary, or for when 954 /// source information was optimized away. 955 /// 956 /// Not every module has an address map, since address map generation can be 957 /// turned off on `Config`. 958 /// 959 /// There is not an entry for every `.text` section offset. Every offset 960 /// after an entry's offset, but before the next entry's offset, is 961 /// considered to map to the same Wasm binary offset as the original 962 /// entry. For example, the address map will not contain the following 963 /// sequence of entries: 964 /// 965 /// ```ignore 966 /// [ 967 /// // ... 968 /// (10, Some(42)), 969 /// (11, Some(42)), 970 /// (12, Some(42)), 971 /// (13, Some(43)), 972 /// // ... 973 /// ] 974 /// ``` 975 /// 976 /// Instead, it will drop the entries for offsets `11` and `12` since they 977 /// are the same as the entry for offset `10`: 978 /// 979 /// ```ignore 980 /// [ 981 /// // ... 982 /// (10, Some(42)), 983 /// (13, Some(43)), 984 /// // ... 985 /// ] 986 /// ``` 987 pub fn address_map<'a>(&'a self) -> Option<impl Iterator<Item = (usize, Option<u32>)> + 'a> { 988 Some( 989 wasmtime_environ::iterate_address_map( 990 self.code_object().code_memory().address_map_data(), 991 )? 992 .map(|(offset, file_pos)| (offset as usize, file_pos.file_offset())), 993 ) 994 } 995 996 /// Get this module's code object's `.text` section, containing its compiled 997 /// executable code. 998 pub fn text(&self) -> &[u8] { 999 self.code_object().code_memory().text() 1000 } 1001 1002 /// Get information about functions in this module's `.text` section: their 1003 /// index, name, and offset+length. 1004 /// 1005 /// Results are yielded in a ModuleFunction struct. 1006 pub fn functions<'a>(&'a self) -> impl ExactSizeIterator<Item = ModuleFunction> + 'a { 1007 let module = self.compiled_module(); 1008 module.finished_functions().map(|(idx, _)| { 1009 let loc = module.func_loc(idx); 1010 let idx = module.module().func_index(idx); 1011 ModuleFunction { 1012 index: idx, 1013 name: module.func_name(idx).map(|n| n.to_string()), 1014 offset: loc.start as usize, 1015 len: loc.length as usize, 1016 } 1017 }) 1018 } 1019 1020 pub(crate) fn id(&self) -> CompiledModuleId { 1021 self.inner.module.unique_id() 1022 } 1023 1024 pub(crate) fn offsets(&self) -> &VMOffsets<HostPtr> { 1025 &self.inner.offsets 1026 } 1027 1028 /// Return the address, in memory, of the trampoline that allows Wasm to 1029 /// call a array function of the given signature. 1030 pub(crate) fn wasm_to_array_trampoline( 1031 &self, 1032 signature: VMSharedTypeIndex, 1033 ) -> Option<NonNull<VMWasmCallFunction>> { 1034 log::trace!("Looking up trampoline for {signature:?}"); 1035 let trampoline_shared_ty = self.inner.engine.signatures().trampoline_type(signature); 1036 let trampoline_module_ty = self 1037 .inner 1038 .code 1039 .signatures() 1040 .trampoline_type(trampoline_shared_ty)?; 1041 debug_assert!(self 1042 .inner 1043 .engine 1044 .signatures() 1045 .borrow( 1046 self.inner 1047 .code 1048 .signatures() 1049 .shared_type(trampoline_module_ty) 1050 .unwrap() 1051 ) 1052 .unwrap() 1053 .unwrap_func() 1054 .is_trampoline_type()); 1055 1056 let ptr = self 1057 .compiled_module() 1058 .wasm_to_array_trampoline(trampoline_module_ty) 1059 .as_ptr() 1060 .cast::<VMWasmCallFunction>() 1061 .cast_mut(); 1062 Some(NonNull::new(ptr).unwrap()) 1063 } 1064 1065 pub(crate) fn memory_images(&self) -> Result<Option<&ModuleMemoryImages>> { 1066 let images = self 1067 .inner 1068 .memory_images 1069 .get_or_try_init(|| memory_images(&self.inner.engine, &self.inner.module))? 1070 .as_ref(); 1071 Ok(images) 1072 } 1073 } 1074 1075 /// Describes a function for a given module. 1076 pub struct ModuleFunction { 1077 pub index: wasmtime_environ::FuncIndex, 1078 pub name: Option<String>, 1079 pub offset: usize, 1080 pub len: usize, 1081 } 1082 1083 impl Drop for ModuleInner { 1084 fn drop(&mut self) { 1085 // When a `Module` is being dropped that means that it's no longer 1086 // present in any `Store` and it's additionally not longer held by any 1087 // embedder. Take this opportunity to purge any lingering instantiations 1088 // within a pooling instance allocator, if applicable. 1089 self.engine 1090 .allocator() 1091 .purge_module(self.module.unique_id()); 1092 } 1093 } 1094 1095 /// Describes the location of an export in a module. 1096 #[derive(Copy, Clone)] 1097 pub struct ModuleExport { 1098 /// The module that this export is defined in. 1099 pub(crate) module: CompiledModuleId, 1100 /// A raw index into the wasm module. 1101 pub(crate) entity: EntityIndex, 1102 /// The index of the export name. 1103 pub(crate) export_name_index: usize, 1104 } 1105 1106 fn _assert_send_sync() { 1107 fn _assert<T: Send + Sync>() {} 1108 _assert::<Module>(); 1109 } 1110 1111 impl crate::runtime::vm::ModuleInfo for ModuleInner { 1112 fn lookup_stack_map(&self, pc: usize) -> Option<&wasmtime_environ::StackMap> { 1113 let text_offset = pc - self.module.text().as_ptr() as usize; 1114 let (index, func_offset) = self.module.func_by_text_offset(text_offset)?; 1115 let info = self.module.wasm_func_info(index); 1116 1117 // Do a binary search to find the stack map for the given offset. 1118 let index = match info 1119 .stack_maps 1120 .binary_search_by_key(&func_offset, |i| i.code_offset) 1121 { 1122 // Found it. 1123 Ok(i) => i, 1124 1125 // No stack map associated with this PC. 1126 // 1127 // Because we know we are in Wasm code, and we must be at some kind 1128 // of call/safepoint, then the Cranelift backend must have avoided 1129 // emitting a stack map for this location because no refs were live. 1130 Err(_) => return None, 1131 }; 1132 1133 Some(&info.stack_maps[index].stack_map) 1134 } 1135 } 1136 1137 /// Helper method to construct a `ModuleMemoryImages` for an associated 1138 /// `CompiledModule`. 1139 fn memory_images(engine: &Engine, module: &CompiledModule) -> Result<Option<ModuleMemoryImages>> { 1140 // If initialization via copy-on-write is explicitly disabled in 1141 // configuration then this path is skipped entirely. 1142 if !engine.config().memory_init_cow { 1143 return Ok(None); 1144 } 1145 1146 // ... otherwise logic is delegated to the `ModuleMemoryImages::new` 1147 // constructor. 1148 let mmap = if engine.config().force_memory_init_memfd { 1149 None 1150 } else { 1151 Some(module.mmap()) 1152 }; 1153 ModuleMemoryImages::new(module.module(), module.code_memory().wasm_data(), mmap) 1154 } 1155 1156 #[cfg(test)] 1157 mod tests { 1158 use crate::{Engine, Module}; 1159 use wasmtime_environ::MemoryInitialization; 1160 1161 #[test] 1162 fn cow_on_by_default() { 1163 let engine = Engine::default(); 1164 let module = Module::new( 1165 &engine, 1166 r#" 1167 (module 1168 (memory 1) 1169 (data (i32.const 100) "abcd") 1170 ) 1171 "#, 1172 ) 1173 .unwrap(); 1174 1175 let init = &module.env_module().memory_initialization; 1176 assert!(matches!(init, MemoryInitialization::Static { .. })); 1177 } 1178 } 1179