1 use crate::prelude::*; 2 use crate::runtime::vm::VMMemoryImport; 3 use crate::store::{StoreData, StoreOpaque, Stored}; 4 use crate::trampoline::generate_memory_export; 5 use crate::Trap; 6 use crate::{AsContext, AsContextMut, Engine, MemoryType, StoreContext, StoreContextMut}; 7 use core::cell::UnsafeCell; 8 use core::fmt; 9 use core::slice; 10 use core::time::Duration; 11 12 pub use crate::runtime::vm::WaitResult; 13 14 /// Error for out of bounds [`Memory`] access. 15 #[derive(Debug)] 16 #[non_exhaustive] 17 pub struct MemoryAccessError { 18 // Keep struct internals private for future extensibility. 19 _private: (), 20 } 21 22 impl fmt::Display for MemoryAccessError { 23 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result { 24 write!(f, "out of bounds memory access") 25 } 26 } 27 28 #[cfg(feature = "std")] 29 impl std::error::Error for MemoryAccessError {} 30 31 /// A WebAssembly linear memory. 32 /// 33 /// WebAssembly memories represent a contiguous array of bytes that have a size 34 /// that is always a multiple of the WebAssembly page size, currently 64 35 /// kilobytes. 36 /// 37 /// WebAssembly memory is used for global data (not to be confused with wasm 38 /// `global` items), statics in C/C++/Rust, shadow stack memory, etc. Accessing 39 /// wasm memory is generally quite fast. 40 /// 41 /// Memories, like other wasm items, are owned by a [`Store`](crate::Store). 42 /// 43 /// # `Memory` and Safety 44 /// 45 /// Linear memory is a lynchpin of safety for WebAssembly. In Wasmtime there are 46 /// safe methods of interacting with a [`Memory`]: 47 /// 48 /// * [`Memory::read`] 49 /// * [`Memory::write`] 50 /// * [`Memory::data`] 51 /// * [`Memory::data_mut`] 52 /// 53 /// Note that all of these consider the entire store context as borrowed for the 54 /// duration of the call or the duration of the returned slice. This largely 55 /// means that while the function is running you'll be unable to borrow anything 56 /// else from the store. This includes getting access to the `T` on 57 /// [`Store<T>`](crate::Store), but it also means that you can't recursively 58 /// call into WebAssembly for instance. 59 /// 60 /// If you'd like to dip your toes into handling [`Memory`] in a more raw 61 /// fashion (e.g. by using raw pointers or raw slices), then there's a few 62 /// important points to consider when doing so: 63 /// 64 /// * Any recursive calls into WebAssembly can possibly modify any byte of the 65 /// entire memory. This means that whenever wasm is called Rust can't have any 66 /// long-lived borrows live across the wasm function call. Slices like `&mut 67 /// [u8]` will be violated because they're not actually exclusive at that 68 /// point, and slices like `&[u8]` are also violated because their contents 69 /// may be mutated. 70 /// 71 /// * WebAssembly memories can grow, and growth may change the base pointer. 72 /// This means that even holding a raw pointer to memory over a wasm function 73 /// call is also incorrect. Anywhere in the function call the base address of 74 /// memory may change. Note that growth can also be requested from the 75 /// embedding API as well. 76 /// 77 /// As a general rule of thumb it's recommended to stick to the safe methods of 78 /// [`Memory`] if you can. It's not advised to use raw pointers or `unsafe` 79 /// operations because of how easy it is to accidentally get things wrong. 80 /// 81 /// Some examples of safely interacting with memory are: 82 /// 83 /// ```rust 84 /// use wasmtime::{Memory, Store, MemoryAccessError}; 85 /// 86 /// // Memory can be read and written safely with the `Memory::read` and 87 /// // `Memory::write` methods. 88 /// // An error is returned if the copy did not succeed. 89 /// fn safe_examples(mem: Memory, store: &mut Store<()>) -> Result<(), MemoryAccessError> { 90 /// let offset = 5; 91 /// mem.write(&mut *store, offset, b"hello")?; 92 /// let mut buffer = [0u8; 5]; 93 /// mem.read(&store, offset, &mut buffer)?; 94 /// assert_eq!(b"hello", &buffer); 95 /// 96 /// // Note that while this is safe care must be taken because the indexing 97 /// // here may panic if the memory isn't large enough. 98 /// assert_eq!(&mem.data(&store)[offset..offset + 5], b"hello"); 99 /// mem.data_mut(&mut *store)[offset..offset + 5].copy_from_slice(b"bye!!"); 100 /// 101 /// Ok(()) 102 /// } 103 /// ``` 104 /// 105 /// It's worth also, however, covering some examples of **incorrect**, 106 /// **unsafe** usages of `Memory`. Do not do these things! 107 /// 108 /// ```rust 109 /// # use anyhow::Result; 110 /// use wasmtime::{Memory, Store}; 111 /// 112 /// // NOTE: All code in this function is not safe to execute and may cause 113 /// // segfaults/undefined behavior at runtime. Do not copy/paste these examples 114 /// // into production code! 115 /// unsafe fn unsafe_examples(mem: Memory, store: &mut Store<()>) -> Result<()> { 116 /// // First and foremost, any borrow can be invalidated at any time via the 117 /// // `Memory::grow` function. This can relocate memory which causes any 118 /// // previous pointer to be possibly invalid now. 119 /// unsafe { 120 /// let pointer: &u8 = &*mem.data_ptr(&store); 121 /// mem.grow(&mut *store, 1)?; // invalidates `pointer`! 122 /// // println!("{}", *pointer); // FATAL: use-after-free 123 /// } 124 /// 125 /// // Note that the use-after-free also applies to slices, whether they're 126 /// // slices of bytes or strings. 127 /// unsafe { 128 /// let mem_slice = std::slice::from_raw_parts( 129 /// mem.data_ptr(&store), 130 /// mem.data_size(&store), 131 /// ); 132 /// let slice: &[u8] = &mem_slice[0x100..0x102]; 133 /// mem.grow(&mut *store, 1)?; // invalidates `slice`! 134 /// // println!("{:?}", slice); // FATAL: use-after-free 135 /// } 136 /// 137 /// // The `Memory` type may be stored in other locations, so if you hand 138 /// // off access to the `Store` then those locations may also call 139 /// // `Memory::grow` or similar, so it's not enough to just audit code for 140 /// // calls to `Memory::grow`. 141 /// unsafe { 142 /// let pointer: &u8 = &*mem.data_ptr(&store); 143 /// some_other_function(store); // may invalidate `pointer` through use of `store` 144 /// // println!("{:?}", pointer); // FATAL: maybe a use-after-free 145 /// } 146 /// 147 /// // An especially subtle aspect of accessing a wasm instance's memory is 148 /// // that you need to be extremely careful about aliasing. Anyone at any 149 /// // time can call `data_unchecked()` or `data_unchecked_mut()`, which 150 /// // means you can easily have aliasing mutable references: 151 /// unsafe { 152 /// let ref1: &u8 = &*mem.data_ptr(&store).add(0x100); 153 /// let ref2: &mut u8 = &mut *mem.data_ptr(&store).add(0x100); 154 /// // *ref2 = *ref1; // FATAL: violates Rust's aliasing rules 155 /// } 156 /// 157 /// Ok(()) 158 /// } 159 /// # fn some_other_function(store: &mut Store<()>) {} 160 /// ``` 161 /// 162 /// Overall there's some general rules of thumb when unsafely working with 163 /// `Memory` and getting raw pointers inside of it: 164 /// 165 /// * If you never have a "long lived" pointer into memory, you're likely in the 166 /// clear. Care still needs to be taken in threaded scenarios or when/where 167 /// data is read, but you'll be shielded from many classes of issues. 168 /// * Long-lived pointers must always respect Rust'a aliasing rules. It's ok for 169 /// shared borrows to overlap with each other, but mutable borrows must 170 /// overlap with nothing. 171 /// * Long-lived pointers are only valid if they're not invalidated for their 172 /// lifetime. This means that [`Store`](crate::Store) isn't used to reenter 173 /// wasm or the memory itself is never grown or otherwise modified/aliased. 174 /// 175 /// At this point it's worth reiterating again that unsafely working with 176 /// `Memory` is pretty tricky and not recommended! It's highly recommended to 177 /// use the safe methods to interact with [`Memory`] whenever possible. 178 /// 179 /// ## `Memory` Safety and Threads 180 /// 181 /// Currently the `wasmtime` crate does not implement the wasm threads proposal, 182 /// but it is planned to do so. It may be interesting to readers to see how this 183 /// affects memory safety and what was previously just discussed as well. 184 /// 185 /// Once threads are added into the mix, all of the above rules still apply. 186 /// There's an additional consideration that all reads and writes can happen 187 /// concurrently, though. This effectively means that any borrow into wasm 188 /// memory are virtually never safe to have. 189 /// 190 /// Mutable pointers are fundamentally unsafe to have in a concurrent scenario 191 /// in the face of arbitrary wasm code. Only if you dynamically know for sure 192 /// that wasm won't access a region would it be safe to construct a mutable 193 /// pointer. Additionally even shared pointers are largely unsafe because their 194 /// underlying contents may change, so unless `UnsafeCell` in one form or 195 /// another is used everywhere there's no safety. 196 /// 197 /// One important point about concurrency is that while [`Memory::grow`] can 198 /// happen concurrently it will never relocate the base pointer. Shared 199 /// memories must always have a maximum size and they will be preallocated such 200 /// that growth will never relocate the base pointer. The current size of the 201 /// memory may still change over time though. 202 /// 203 /// Overall the general rule of thumb for shared memories is that you must 204 /// atomically read and write everything. Nothing can be borrowed and everything 205 /// must be eagerly copied out. This means that [`Memory::data`] and 206 /// [`Memory::data_mut`] won't work in the future (they'll probably return an 207 /// error) for shared memories when they're implemented. When possible it's 208 /// recommended to use [`Memory::read`] and [`Memory::write`] which will still 209 /// be provided. 210 #[derive(Copy, Clone, Debug)] 211 #[repr(transparent)] // here for the C API 212 pub struct Memory(Stored<crate::runtime::vm::ExportMemory>); 213 214 impl Memory { 215 /// Creates a new WebAssembly memory given the configuration of `ty`. 216 /// 217 /// The `store` argument will be the owner of the returned [`Memory`]. All 218 /// WebAssembly memory is initialized to zero. 219 /// 220 /// # Panics 221 /// 222 /// This function will panic if the [`Store`](`crate::Store`) has a 223 /// [`ResourceLimiterAsync`](`crate::ResourceLimiterAsync`) (see also: 224 /// [`Store::limiter_async`](`crate::Store::limiter_async`)). When 225 /// using an async resource limiter, use [`Memory::new_async`] instead. 226 /// 227 /// # Examples 228 /// 229 /// ``` 230 /// # use wasmtime::*; 231 /// # fn main() -> anyhow::Result<()> { 232 /// let engine = Engine::default(); 233 /// let mut store = Store::new(&engine, ()); 234 /// 235 /// let memory_ty = MemoryType::new(1, None); 236 /// let memory = Memory::new(&mut store, memory_ty)?; 237 /// 238 /// let module = Module::new(&engine, "(module (memory (import \"\" \"\") 1))")?; 239 /// let instance = Instance::new(&mut store, &module, &[memory.into()])?; 240 /// // ... 241 /// # Ok(()) 242 /// # } 243 /// ``` 244 pub fn new(mut store: impl AsContextMut, ty: MemoryType) -> Result<Memory> { 245 Self::_new(store.as_context_mut().0, ty) 246 } 247 248 /// Async variant of [`Memory::new`]. You must use this variant with 249 /// [`Store`](`crate::Store`)s which have a 250 /// [`ResourceLimiterAsync`](`crate::ResourceLimiterAsync`). 251 /// 252 /// # Panics 253 /// 254 /// This function will panic when used with a non-async 255 /// [`Store`](`crate::Store`). 256 #[cfg(feature = "async")] 257 pub async fn new_async<T>( 258 mut store: impl AsContextMut<Data = T>, 259 ty: MemoryType, 260 ) -> Result<Memory> 261 where 262 T: Send, 263 { 264 let mut store = store.as_context_mut(); 265 assert!( 266 store.0.async_support(), 267 "cannot use `new_async` without enabling async support on the config" 268 ); 269 store.on_fiber(|store| Self::_new(store.0, ty)).await? 270 } 271 272 /// Helper function for attaching the memory to a "frankenstein" instance 273 fn _new(store: &mut StoreOpaque, ty: MemoryType) -> Result<Memory> { 274 unsafe { 275 let export = generate_memory_export(store, &ty, None)?; 276 Ok(Memory::from_wasmtime_memory(export, store)) 277 } 278 } 279 280 /// Returns the underlying type of this memory. 281 /// 282 /// # Panics 283 /// 284 /// Panics if this memory doesn't belong to `store`. 285 /// 286 /// # Examples 287 /// 288 /// ``` 289 /// # use wasmtime::*; 290 /// # fn main() -> anyhow::Result<()> { 291 /// let engine = Engine::default(); 292 /// let mut store = Store::new(&engine, ()); 293 /// let module = Module::new(&engine, "(module (memory (export \"mem\") 1))")?; 294 /// let instance = Instance::new(&mut store, &module, &[])?; 295 /// let memory = instance.get_memory(&mut store, "mem").unwrap(); 296 /// let ty = memory.ty(&store); 297 /// assert_eq!(ty.minimum(), 1); 298 /// # Ok(()) 299 /// # } 300 /// ``` 301 pub fn ty(&self, store: impl AsContext) -> MemoryType { 302 let store = store.as_context(); 303 let ty = &store[self.0].memory; 304 MemoryType::from_wasmtime_memory(&ty) 305 } 306 307 /// Safely reads memory contents at the given offset into a buffer. 308 /// 309 /// The entire buffer will be filled. 310 /// 311 /// If `offset + buffer.len()` exceed the current memory capacity, then the 312 /// buffer is left untouched and a [`MemoryAccessError`] is returned. 313 /// 314 /// # Panics 315 /// 316 /// Panics if this memory doesn't belong to `store`. 317 pub fn read( 318 &self, 319 store: impl AsContext, 320 offset: usize, 321 buffer: &mut [u8], 322 ) -> Result<(), MemoryAccessError> { 323 let store = store.as_context(); 324 let slice = self 325 .data(&store) 326 .get(offset..) 327 .and_then(|s| s.get(..buffer.len())) 328 .ok_or(MemoryAccessError { _private: () })?; 329 buffer.copy_from_slice(slice); 330 Ok(()) 331 } 332 333 /// Safely writes contents of a buffer to this memory at the given offset. 334 /// 335 /// If the `offset + buffer.len()` exceeds the current memory capacity, then 336 /// none of the buffer is written to memory and a [`MemoryAccessError`] is 337 /// returned. 338 /// 339 /// # Panics 340 /// 341 /// Panics if this memory doesn't belong to `store`. 342 pub fn write( 343 &self, 344 mut store: impl AsContextMut, 345 offset: usize, 346 buffer: &[u8], 347 ) -> Result<(), MemoryAccessError> { 348 let mut context = store.as_context_mut(); 349 self.data_mut(&mut context) 350 .get_mut(offset..) 351 .and_then(|s| s.get_mut(..buffer.len())) 352 .ok_or(MemoryAccessError { _private: () })? 353 .copy_from_slice(buffer); 354 Ok(()) 355 } 356 357 /// Returns this memory as a native Rust slice. 358 /// 359 /// Note that this method will consider the entire store context provided as 360 /// borrowed for the duration of the lifetime of the returned slice. 361 /// 362 /// # Panics 363 /// 364 /// Panics if this memory doesn't belong to `store`. 365 pub fn data<'a, T: 'a>(&self, store: impl Into<StoreContext<'a, T>>) -> &'a [u8] { 366 unsafe { 367 let store = store.into(); 368 let definition = store[self.0].definition.as_ref(); 369 debug_assert!(!self.ty(store).is_shared()); 370 slice::from_raw_parts(definition.base.as_ptr(), definition.current_length()) 371 } 372 } 373 374 /// Returns this memory as a native Rust mutable slice. 375 /// 376 /// Note that this method will consider the entire store context provided as 377 /// borrowed for the duration of the lifetime of the returned slice. 378 /// 379 /// # Panics 380 /// 381 /// Panics if this memory doesn't belong to `store`. 382 pub fn data_mut<'a, T: 'a>(&self, store: impl Into<StoreContextMut<'a, T>>) -> &'a mut [u8] { 383 unsafe { 384 let store = store.into(); 385 let definition = store[self.0].definition.as_ref(); 386 debug_assert!(!self.ty(store).is_shared()); 387 slice::from_raw_parts_mut(definition.base.as_ptr(), definition.current_length()) 388 } 389 } 390 391 /// Same as [`Memory::data_mut`], but also returns the `T` from the 392 /// [`StoreContextMut`]. 393 /// 394 /// This method can be used when you want to simultaneously work with the 395 /// `T` in the store as well as the memory behind this [`Memory`]. Using 396 /// [`Memory::data_mut`] would consider the entire store borrowed, whereas 397 /// this method allows the Rust compiler to see that the borrow of this 398 /// memory and the borrow of `T` are disjoint. 399 /// 400 /// # Panics 401 /// 402 /// Panics if this memory doesn't belong to `store`. 403 pub fn data_and_store_mut<'a, T: 'a>( 404 &self, 405 store: impl Into<StoreContextMut<'a, T>>, 406 ) -> (&'a mut [u8], &'a mut T) { 407 // Note the unsafety here. Our goal is to simultaneously borrow the 408 // memory and custom data from `store`, and the store it's connected 409 // to. Rust will not let us do that, however, because we must call two 410 // separate methods (both of which borrow the whole `store`) and one of 411 // our borrows is mutable (the custom data). 412 // 413 // This operation, however, is safe because these borrows do not overlap 414 // and in the process of borrowing them mutability doesn't actually 415 // touch anything. This is akin to mutably borrowing two indices in an 416 // array, which is safe so long as the indices are separate. 417 unsafe { 418 let mut store = store.into(); 419 let data = &mut *(store.data_mut() as *mut T); 420 (self.data_mut(store), data) 421 } 422 } 423 424 /// Returns the base pointer, in the host's address space, that the memory 425 /// is located at. 426 /// 427 /// For more information and examples see the documentation on the 428 /// [`Memory`] type. 429 /// 430 /// # Panics 431 /// 432 /// Panics if this memory doesn't belong to `store`. 433 pub fn data_ptr(&self, store: impl AsContext) -> *mut u8 { 434 unsafe { store.as_context()[self.0].definition.as_ref().base.as_ptr() } 435 } 436 437 /// Returns the byte length of this memory. 438 /// 439 /// WebAssembly memories are made up of a whole number of pages, so the byte 440 /// size returned will always be a multiple of this memory's page size. Note 441 /// that different Wasm memories may have different page sizes. You can get 442 /// a memory's page size via the [`Memory::page_size`] method. 443 /// 444 /// By default the page size is 64KiB (aka `0x10000`, `2**16`, `1<<16`, or 445 /// `65536`) but [the custom-page-sizes proposal] allows a memory to opt 446 /// into a page size of `1`. Future extensions might allow any power of two 447 /// as a page size. 448 /// 449 /// [the custom-page-sizes proposal]: https://github.com/WebAssembly/custom-page-sizes 450 /// 451 /// For more information and examples see the documentation on the 452 /// [`Memory`] type. 453 /// 454 /// # Panics 455 /// 456 /// Panics if this memory doesn't belong to `store`. 457 pub fn data_size(&self, store: impl AsContext) -> usize { 458 self.internal_data_size(store.as_context().0) 459 } 460 461 pub(crate) fn internal_data_size(&self, store: &StoreOpaque) -> usize { 462 unsafe { store[self.0].definition.as_ref().current_length() } 463 } 464 465 /// Returns the size, in units of pages, of this Wasm memory. 466 /// 467 /// WebAssembly memories are made up of a whole number of pages, so the byte 468 /// size returned will always be a multiple of this memory's page size. Note 469 /// that different Wasm memories may have different page sizes. You can get 470 /// a memory's page size via the [`Memory::page_size`] method. 471 /// 472 /// By default the page size is 64KiB (aka `0x10000`, `2**16`, `1<<16`, or 473 /// `65536`) but [the custom-page-sizes proposal] allows a memory to opt 474 /// into a page size of `1`. Future extensions might allow any power of two 475 /// as a page size. 476 /// 477 /// [the custom-page-sizes proposal]: https://github.com/WebAssembly/custom-page-sizes 478 /// 479 /// # Panics 480 /// 481 /// Panics if this memory doesn't belong to `store`. 482 pub fn size(&self, store: impl AsContext) -> u64 { 483 self.internal_size(store.as_context().0) 484 } 485 486 pub(crate) fn internal_size(&self, store: &StoreOpaque) -> u64 { 487 let byte_size = self.internal_data_size(store); 488 let page_size = usize::try_from(self._page_size(store)).unwrap(); 489 u64::try_from(byte_size / page_size).unwrap() 490 } 491 492 /// Returns the size of a page, in bytes, for this memory. 493 /// 494 /// WebAssembly memories are made up of a whole number of pages, so the byte 495 /// size (as returned by [`Memory::data_size`]) will always be a multiple of 496 /// their page size. Different Wasm memories may have different page sizes. 497 /// 498 /// By default this is 64KiB (aka `0x10000`, `2**16`, `1<<16`, or `65536`) 499 /// but [the custom-page-sizes proposal] allows opting into a page size of 500 /// `1`. Future extensions might allow any power of two as a page size. 501 /// 502 /// [the custom-page-sizes proposal]: https://github.com/WebAssembly/custom-page-sizes 503 pub fn page_size(&self, store: impl AsContext) -> u64 { 504 self._page_size(store.as_context().0) 505 } 506 507 pub(crate) fn _page_size(&self, store: &StoreOpaque) -> u64 { 508 store[self.0].memory.page_size() 509 } 510 511 /// Returns the log2 of this memory's page size, in bytes. 512 /// 513 /// WebAssembly memories are made up of a whole number of pages, so the byte 514 /// size (as returned by [`Memory::data_size`]) will always be a multiple of 515 /// their page size. Different Wasm memories may have different page sizes. 516 /// 517 /// By default the page size is 64KiB (aka `0x10000`, `2**16`, `1<<16`, or 518 /// `65536`) but [the custom-page-sizes proposal] allows opting into a page 519 /// size of `1`. Future extensions might allow any power of two as a page 520 /// size. 521 /// 522 /// [the custom-page-sizes proposal]: https://github.com/WebAssembly/custom-page-sizes 523 pub fn page_size_log2(&self, store: impl AsContext) -> u8 { 524 self._page_size_log2(store.as_context().0) 525 } 526 527 pub(crate) fn _page_size_log2(&self, store: &StoreOpaque) -> u8 { 528 store[self.0].memory.page_size_log2 529 } 530 531 /// Grows this WebAssembly memory by `delta` pages. 532 /// 533 /// This will attempt to add `delta` more pages of memory on to the end of 534 /// this `Memory` instance. If successful this may relocate the memory and 535 /// cause [`Memory::data_ptr`] to return a new value. Additionally any 536 /// unsafely constructed slices into this memory may no longer be valid. 537 /// 538 /// On success returns the number of pages this memory previously had 539 /// before the growth succeeded. 540 /// 541 /// Note that, by default, a WebAssembly memory's page size is 64KiB (aka 542 /// 65536 or 2<sup>16</sup>). The [custom-page-sizes proposal] allows Wasm 543 /// memories to opt into a page size of one byte (and this may be further 544 /// relaxed to any power of two in a future extension). 545 /// 546 /// [custom-page-sizes proposal]: https://github.com/WebAssembly/custom-page-sizes 547 /// 548 /// # Errors 549 /// 550 /// Returns an error if memory could not be grown, for example if it exceeds 551 /// the maximum limits of this memory. A 552 /// [`ResourceLimiter`](crate::ResourceLimiter) is another example of 553 /// preventing a memory to grow. 554 /// 555 /// # Panics 556 /// 557 /// Panics if this memory doesn't belong to `store`. 558 /// 559 /// This function will panic if the [`Store`](`crate::Store`) has a 560 /// [`ResourceLimiterAsync`](`crate::ResourceLimiterAsync`) (see also: 561 /// [`Store::limiter_async`](`crate::Store::limiter_async`). When using an 562 /// async resource limiter, use [`Memory::grow_async`] instead. 563 /// 564 /// # Examples 565 /// 566 /// ``` 567 /// # use wasmtime::*; 568 /// # fn main() -> anyhow::Result<()> { 569 /// let engine = Engine::default(); 570 /// let mut store = Store::new(&engine, ()); 571 /// let module = Module::new(&engine, "(module (memory (export \"mem\") 1 2))")?; 572 /// let instance = Instance::new(&mut store, &module, &[])?; 573 /// let memory = instance.get_memory(&mut store, "mem").unwrap(); 574 /// 575 /// assert_eq!(memory.size(&store), 1); 576 /// assert_eq!(memory.grow(&mut store, 1)?, 1); 577 /// assert_eq!(memory.size(&store), 2); 578 /// assert!(memory.grow(&mut store, 1).is_err()); 579 /// assert_eq!(memory.size(&store), 2); 580 /// assert_eq!(memory.grow(&mut store, 0)?, 2); 581 /// # Ok(()) 582 /// # } 583 /// ``` 584 pub fn grow(&self, mut store: impl AsContextMut, delta: u64) -> Result<u64> { 585 let store = store.as_context_mut().0; 586 let mem = self.wasmtime_memory(store); 587 unsafe { 588 match (*mem).grow(delta, Some(store))? { 589 Some(size) => { 590 let vm = (*mem).vmmemory(); 591 store[self.0].definition.write(vm); 592 let page_size = (*mem).page_size(); 593 Ok(u64::try_from(size).unwrap() / page_size) 594 } 595 None => bail!("failed to grow memory by `{}`", delta), 596 } 597 } 598 } 599 600 /// Async variant of [`Memory::grow`]. Required when using a 601 /// [`ResourceLimiterAsync`](`crate::ResourceLimiterAsync`). 602 /// 603 /// # Panics 604 /// 605 /// This function will panic when used with a non-async 606 /// [`Store`](`crate::Store`). 607 #[cfg(feature = "async")] 608 pub async fn grow_async<T>( 609 &self, 610 mut store: impl AsContextMut<Data = T>, 611 delta: u64, 612 ) -> Result<u64> 613 where 614 T: Send, 615 { 616 let mut store = store.as_context_mut(); 617 assert!( 618 store.0.async_support(), 619 "cannot use `grow_async` without enabling async support on the config" 620 ); 621 store.on_fiber(|store| self.grow(store, delta)).await? 622 } 623 624 fn wasmtime_memory(&self, store: &mut StoreOpaque) -> *mut crate::runtime::vm::Memory { 625 unsafe { 626 let export = &store[self.0]; 627 crate::runtime::vm::Instance::from_vmctx(export.vmctx, |handle| { 628 handle.get_defined_memory(export.index) 629 }) 630 } 631 } 632 633 pub(crate) unsafe fn from_wasmtime_memory( 634 wasmtime_export: crate::runtime::vm::ExportMemory, 635 store: &mut StoreOpaque, 636 ) -> Memory { 637 Memory(store.store_data_mut().insert(wasmtime_export)) 638 } 639 640 pub(crate) fn wasmtime_ty<'a>(&self, store: &'a StoreData) -> &'a wasmtime_environ::Memory { 641 &store[self.0].memory 642 } 643 644 pub(crate) fn vmimport(&self, store: &StoreOpaque) -> crate::runtime::vm::VMMemoryImport { 645 let export = &store[self.0]; 646 crate::runtime::vm::VMMemoryImport { 647 from: export.definition.into(), 648 vmctx: export.vmctx.into(), 649 index: export.index, 650 } 651 } 652 653 pub(crate) fn comes_from_same_store(&self, store: &StoreOpaque) -> bool { 654 store.store_data().contains(self.0) 655 } 656 657 /// Get a stable hash key for this memory. 658 /// 659 /// Even if the same underlying memory definition is added to the 660 /// `StoreData` multiple times and becomes multiple `wasmtime::Memory`s, 661 /// this hash key will be consistent across all of these memories. 662 pub(crate) fn hash_key(&self, store: &StoreOpaque) -> impl core::hash::Hash + Eq + use<> { 663 store[self.0].definition.as_ptr() as usize 664 } 665 } 666 667 /// A linear memory. This trait provides an interface for raw memory buffers 668 /// which are used by wasmtime, e.g. inside ['Memory']. Such buffers are in 669 /// principle not thread safe. By implementing this trait together with 670 /// MemoryCreator, one can supply wasmtime with custom allocated host managed 671 /// memory. 672 /// 673 /// # Safety 674 /// 675 /// The memory should be page aligned and a multiple of page size. 676 /// To prevent possible silent overflows, the memory should be protected by a 677 /// guard page. Additionally the safety concerns explained in ['Memory'], for 678 /// accessing the memory apply here as well. 679 /// 680 /// Note that this is a relatively advanced feature and it is recommended to be 681 /// familiar with wasmtime runtime code to use it. 682 pub unsafe trait LinearMemory: Send + Sync + 'static { 683 /// Returns the number of allocated bytes which are accessible at this time. 684 fn byte_size(&self) -> usize; 685 686 /// Returns byte capacity of this linear memory's current allocation. 687 /// 688 /// Growth up to this value should not relocate the linear memory base 689 /// pointer. 690 fn byte_capacity(&self) -> usize; 691 692 /// Grows this memory to have the `new_size`, in bytes, specified. 693 /// 694 /// Returns `Err` if memory can't be grown by the specified amount 695 /// of bytes. The error may be downcastable to `std::io::Error`. 696 /// Returns `Ok` if memory was grown successfully. 697 fn grow_to(&mut self, new_size: usize) -> Result<()>; 698 699 /// Return the allocated memory as a mutable pointer to u8. 700 fn as_ptr(&self) -> *mut u8; 701 } 702 703 /// A memory creator. Can be used to provide a memory creator 704 /// to wasmtime which supplies host managed memory. 705 /// 706 /// # Safety 707 /// 708 /// This trait is unsafe, as the memory safety depends on proper implementation 709 /// of memory management. Memories created by the MemoryCreator should always be 710 /// treated as owned by wasmtime instance, and any modification of them outside 711 /// of wasmtime invoked routines is unsafe and may lead to corruption. 712 /// 713 /// Note that this is a relatively advanced feature and it is recommended to be 714 /// familiar with Wasmtime runtime code to use it. 715 pub unsafe trait MemoryCreator: Send + Sync { 716 /// Create a new `LinearMemory` object from the specified parameters. 717 /// 718 /// The type of memory being created is specified by `ty` which indicates 719 /// both the minimum and maximum size, in wasm pages. The minimum and 720 /// maximum sizes, in bytes, are also specified as parameters to avoid 721 /// integer conversion if desired. 722 /// 723 /// The `reserved_size_in_bytes` value indicates the expected size of the 724 /// reservation that is to be made for this memory. If this value is `None` 725 /// than the implementation is free to allocate memory as it sees fit. If 726 /// the value is `Some`, however, then the implementation is expected to 727 /// reserve that many bytes for the memory's allocation, plus the guard 728 /// size at the end. Note that this reservation need only be a virtual 729 /// memory reservation, physical memory does not need to be allocated 730 /// immediately. In this case `grow` should never move the base pointer and 731 /// the maximum size of `ty` is guaranteed to fit within 732 /// `reserved_size_in_bytes`. 733 /// 734 /// The `guard_size_in_bytes` parameter indicates how many bytes of space, 735 /// after the memory allocation, is expected to be unmapped. JIT code will 736 /// elide bounds checks based on the `guard_size_in_bytes` provided, so for 737 /// JIT code to work correctly the memory returned will need to be properly 738 /// guarded with `guard_size_in_bytes` bytes left unmapped after the base 739 /// allocation. 740 /// 741 /// Note that the `reserved_size_in_bytes` and `guard_size_in_bytes` options 742 /// are tuned from the various [`Config`](crate::Config) methods about 743 /// memory sizes/guards. Additionally these two values are guaranteed to be 744 /// multiples of the system page size. 745 /// 746 /// Memory created from this method should be zero filled. 747 fn new_memory( 748 &self, 749 ty: MemoryType, 750 minimum: usize, 751 maximum: Option<usize>, 752 reserved_size_in_bytes: Option<usize>, 753 guard_size_in_bytes: usize, 754 ) -> Result<Box<dyn LinearMemory>, String>; 755 } 756 757 /// A constructor for externally-created shared memory. 758 /// 759 /// The [threads proposal] adds the concept of "shared memory" to WebAssembly. 760 /// This is much the same as a Wasm linear memory (i.e., [`Memory`]), but can be 761 /// used concurrently by multiple agents. Because these agents may execute in 762 /// different threads, [`SharedMemory`] must be thread-safe. 763 /// 764 /// When the threads proposal is enabled, there are multiple ways to construct 765 /// shared memory: 766 /// 1. for imported shared memory, e.g., `(import "env" "memory" (memory 1 1 767 /// shared))`, the user must supply a [`SharedMemory`] with the 768 /// externally-created memory as an import to the instance--e.g., 769 /// `shared_memory.into()`. 770 /// 2. for private or exported shared memory, e.g., `(export "env" "memory" 771 /// (memory 1 1 shared))`, Wasmtime will create the memory internally during 772 /// instantiation--access using `Instance::get_shared_memory()`. 773 /// 774 /// [threads proposal]: 775 /// https://github.com/WebAssembly/threads/blob/master/proposals/threads/Overview.md 776 /// 777 /// # Examples 778 /// 779 /// ``` 780 /// # use wasmtime::*; 781 /// # fn main() -> anyhow::Result<()> { 782 /// let mut config = Config::new(); 783 /// config.wasm_threads(true); 784 /// let engine = Engine::new(&config)?; 785 /// let mut store = Store::new(&engine, ()); 786 /// 787 /// let shared_memory = SharedMemory::new(&engine, MemoryType::shared(1, 2))?; 788 /// let module = Module::new(&engine, r#"(module (memory (import "" "") 1 2 shared))"#)?; 789 /// let instance = Instance::new(&mut store, &module, &[shared_memory.into()])?; 790 /// // ... 791 /// # Ok(()) 792 /// # } 793 /// ``` 794 #[derive(Clone)] 795 pub struct SharedMemory { 796 vm: crate::runtime::vm::SharedMemory, 797 engine: Engine, 798 page_size_log2: u8, 799 } 800 801 impl SharedMemory { 802 /// Construct a [`SharedMemory`] by providing both the `minimum` and 803 /// `maximum` number of 64K-sized pages. This call allocates the necessary 804 /// pages on the system. 805 #[cfg(feature = "threads")] 806 pub fn new(engine: &Engine, ty: MemoryType) -> Result<Self> { 807 if !ty.is_shared() { 808 bail!("shared memory must have the `shared` flag enabled on its memory type") 809 } 810 debug_assert!(ty.maximum().is_some()); 811 812 let tunables = engine.tunables(); 813 let ty = ty.wasmtime_memory(); 814 let page_size_log2 = ty.page_size_log2; 815 let memory = crate::runtime::vm::SharedMemory::new(ty, tunables)?; 816 817 Ok(Self { 818 vm: memory, 819 engine: engine.clone(), 820 page_size_log2, 821 }) 822 } 823 824 /// Return the type of the shared memory. 825 pub fn ty(&self) -> MemoryType { 826 MemoryType::from_wasmtime_memory(&self.vm.ty()) 827 } 828 829 /// Returns the size, in WebAssembly pages, of this wasm memory. 830 pub fn size(&self) -> u64 { 831 let byte_size = u64::try_from(self.data_size()).unwrap(); 832 let page_size = u64::from(self.page_size()); 833 byte_size / page_size 834 } 835 836 /// Returns the size of a page, in bytes, for this memory. 837 /// 838 /// By default this is 64KiB (aka `0x10000`, `2**16`, `1<<16`, or `65536`) 839 /// but [the custom-page-sizes proposal] allows opting into a page size of 840 /// `1`. Future extensions might allow any power of two as a page size. 841 /// 842 /// [the custom-page-sizes proposal]: https://github.com/WebAssembly/custom-page-sizes 843 pub fn page_size(&self) -> u32 { 844 debug_assert!(self.page_size_log2 == 0 || self.page_size_log2 == 16); 845 1 << self.page_size_log2 846 } 847 848 /// Returns the byte length of this memory. 849 /// 850 /// The returned value will be a multiple of the wasm page size, 64k. 851 /// 852 /// For more information and examples see the documentation on the 853 /// [`Memory`] type. 854 pub fn data_size(&self) -> usize { 855 self.vm.byte_size() 856 } 857 858 /// Return access to the available portion of the shared memory. 859 /// 860 /// The slice returned represents the region of accessible memory at the 861 /// time that this function was called. The contents of the returned slice 862 /// will reflect concurrent modifications happening on other threads. 863 /// 864 /// # Safety 865 /// 866 /// The returned slice is valid for the entire duration of the lifetime of 867 /// this instance of [`SharedMemory`]. The base pointer of a shared memory 868 /// does not change. This [`SharedMemory`] may grow further after this 869 /// function has been called, but the slice returned will not grow. 870 /// 871 /// Concurrent modifications may be happening to the data returned on other 872 /// threads. The `UnsafeCell<u8>` represents that safe access to the 873 /// contents of the slice is not possible through normal loads and stores. 874 /// 875 /// The memory returned must be accessed safely through the `Atomic*` types 876 /// in the [`std::sync::atomic`] module. Casting to those types must 877 /// currently be done unsafely. 878 pub fn data(&self) -> &[UnsafeCell<u8>] { 879 unsafe { 880 let definition = self.vm.vmmemory_ptr().as_ref(); 881 slice::from_raw_parts(definition.base.as_ptr().cast(), definition.current_length()) 882 } 883 } 884 885 /// Grows this WebAssembly memory by `delta` pages. 886 /// 887 /// This will attempt to add `delta` more pages of memory on to the end of 888 /// this `Memory` instance. If successful this may relocate the memory and 889 /// cause [`Memory::data_ptr`] to return a new value. Additionally any 890 /// unsafely constructed slices into this memory may no longer be valid. 891 /// 892 /// On success returns the number of pages this memory previously had 893 /// before the growth succeeded. 894 /// 895 /// # Errors 896 /// 897 /// Returns an error if memory could not be grown, for example if it exceeds 898 /// the maximum limits of this memory. A 899 /// [`ResourceLimiter`](crate::ResourceLimiter) is another example of 900 /// preventing a memory to grow. 901 pub fn grow(&self, delta: u64) -> Result<u64> { 902 match self.vm.grow(delta, None)? { 903 Some((old_size, _new_size)) => { 904 // For shared memory, the `VMMemoryDefinition` is updated inside 905 // the locked region. 906 Ok(u64::try_from(old_size).unwrap() / u64::from(self.page_size())) 907 } 908 None => bail!("failed to grow memory by `{}`", delta), 909 } 910 } 911 912 /// Equivalent of the WebAssembly `memory.atomic.notify` instruction for 913 /// this shared memory. 914 /// 915 /// This method allows embedders to notify threads blocked on the specified 916 /// `addr`, an index into wasm linear memory. Threads could include 917 /// wasm threads blocked on a `memory.atomic.wait*` instruction or embedder 918 /// threads blocked on [`SharedMemory::atomic_wait32`], for example. 919 /// 920 /// The `count` argument is the number of threads to wake up. 921 /// 922 /// This function returns the number of threads awoken. 923 /// 924 /// # Errors 925 /// 926 /// This function will return an error if `addr` is not within bounds or 927 /// not aligned to a 4-byte boundary. 928 pub fn atomic_notify(&self, addr: u64, count: u32) -> Result<u32, Trap> { 929 self.vm.atomic_notify(addr, count) 930 } 931 932 /// Equivalent of the WebAssembly `memory.atomic.wait32` instruction for 933 /// this shared memory. 934 /// 935 /// This method allows embedders to block the current thread until notified 936 /// via the `memory.atomic.notify` instruction or the 937 /// [`SharedMemory::atomic_notify`] method, enabling synchronization with 938 /// the wasm guest as desired. 939 /// 940 /// The `expected` argument is the expected 32-bit value to be stored at 941 /// the byte address `addr` specified. The `addr` specified is an index 942 /// into this linear memory. 943 /// 944 /// The optional `timeout` argument is the maximum amount of time to block 945 /// the current thread. If not specified the thread may sleep indefinitely. 946 /// 947 /// This function returns one of three possible values: 948 /// 949 /// * `WaitResult::Ok` - this function, loaded the value at `addr`, found 950 /// it was equal to `expected`, and then blocked (all as one atomic 951 /// operation). The thread was then awoken with a `memory.atomic.notify` 952 /// instruction or the [`SharedMemory::atomic_notify`] method. 953 /// * `WaitResult::Mismatch` - the value at `addr` was loaded but was not 954 /// equal to `expected` so the thread did not block and immediately 955 /// returned. 956 /// * `WaitResult::TimedOut` - all the steps of `Ok` happened, except this 957 /// thread was woken up due to a timeout. 958 /// 959 /// This function will not return due to spurious wakeups. 960 /// 961 /// # Errors 962 /// 963 /// This function will return an error if `addr` is not within bounds or 964 /// not aligned to a 4-byte boundary. 965 pub fn atomic_wait32( 966 &self, 967 addr: u64, 968 expected: u32, 969 timeout: Option<Duration>, 970 ) -> Result<WaitResult, Trap> { 971 self.vm.atomic_wait32(addr, expected, timeout) 972 } 973 974 /// Equivalent of the WebAssembly `memory.atomic.wait64` instruction for 975 /// this shared memory. 976 /// 977 /// For more information see [`SharedMemory::atomic_wait32`]. 978 /// 979 /// # Errors 980 /// 981 /// Returns the same error as [`SharedMemory::atomic_wait32`] except that 982 /// the specified address must be 8-byte aligned instead of 4-byte aligned. 983 pub fn atomic_wait64( 984 &self, 985 addr: u64, 986 expected: u64, 987 timeout: Option<Duration>, 988 ) -> Result<WaitResult, Trap> { 989 self.vm.atomic_wait64(addr, expected, timeout) 990 } 991 992 /// Return a reference to the [`Engine`] used to configure the shared 993 /// memory. 994 pub(crate) fn engine(&self) -> &Engine { 995 &self.engine 996 } 997 998 /// Construct a single-memory instance to provide a way to import 999 /// [`SharedMemory`] into other modules. 1000 pub(crate) fn vmimport(&self, store: &mut StoreOpaque) -> crate::runtime::vm::VMMemoryImport { 1001 let export_memory = generate_memory_export(store, &self.ty(), Some(&self.vm)).unwrap(); 1002 VMMemoryImport { 1003 from: export_memory.definition.into(), 1004 vmctx: export_memory.vmctx.into(), 1005 index: export_memory.index, 1006 } 1007 } 1008 1009 /// Create a [`SharedMemory`] from an [`ExportMemory`] definition. This 1010 /// function is available to handle the case in which a Wasm module exports 1011 /// shared memory and the user wants host-side access to it. 1012 pub(crate) unsafe fn from_wasmtime_memory( 1013 wasmtime_export: crate::runtime::vm::ExportMemory, 1014 store: &mut StoreOpaque, 1015 ) -> Self { 1016 #[cfg_attr(not(feature = "threads"), allow(unused_variables, unreachable_code))] 1017 crate::runtime::vm::Instance::from_vmctx(wasmtime_export.vmctx, |handle| { 1018 let memory_index = handle.env_module().memory_index(wasmtime_export.index); 1019 let page_size = handle.memory_page_size(memory_index); 1020 debug_assert!(page_size.is_power_of_two()); 1021 let page_size_log2 = u8::try_from(page_size.ilog2()).unwrap(); 1022 1023 let memory = handle 1024 .get_defined_memory(wasmtime_export.index) 1025 .as_mut() 1026 .unwrap(); 1027 match memory.as_shared_memory() { 1028 Some(mem) => Self { 1029 vm: mem.clone(), 1030 engine: store.engine().clone(), 1031 page_size_log2, 1032 }, 1033 None => panic!("unable to convert from a shared memory"), 1034 } 1035 }) 1036 } 1037 } 1038 1039 impl fmt::Debug for SharedMemory { 1040 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result { 1041 f.debug_struct("SharedMemory").finish_non_exhaustive() 1042 } 1043 } 1044 1045 #[cfg(test)] 1046 mod tests { 1047 use crate::*; 1048 1049 // Assert that creating a memory via `Memory::new` respects the limits/tunables 1050 // in `Config`. 1051 #[test] 1052 fn respect_tunables() { 1053 let mut cfg = Config::new(); 1054 cfg.memory_reservation(0).memory_guard_size(0); 1055 let mut store = Store::new(&Engine::new(&cfg).unwrap(), ()); 1056 let ty = MemoryType::new(1, None); 1057 let mem = Memory::new(&mut store, ty).unwrap(); 1058 let store = store.as_context(); 1059 let tunables = store.engine().tunables(); 1060 assert_eq!(tunables.memory_guard_size, 0); 1061 assert!(!store[mem.0].memory.can_elide_bounds_check(tunables, 12)); 1062 } 1063 1064 #[test] 1065 fn hash_key_is_stable_across_duplicate_store_data_entries() -> Result<()> { 1066 let mut store = Store::<()>::default(); 1067 let module = Module::new( 1068 store.engine(), 1069 r#" 1070 (module 1071 (memory (export "m") 1 1) 1072 ) 1073 "#, 1074 )?; 1075 let instance = Instance::new(&mut store, &module, &[])?; 1076 1077 // Each time we `get_memory`, we call `Memory::from_wasmtime` which adds 1078 // a new entry to `StoreData`, so `g1` and `g2` will have different 1079 // indices into `StoreData`. 1080 let m1 = instance.get_memory(&mut store, "m").unwrap(); 1081 let m2 = instance.get_memory(&mut store, "m").unwrap(); 1082 1083 // That said, they really point to the same memory. 1084 assert_eq!(m1.data(&store)[0], 0); 1085 assert_eq!(m2.data(&store)[0], 0); 1086 m1.data_mut(&mut store)[0] = 42; 1087 assert_eq!(m1.data(&mut store)[0], 42); 1088 assert_eq!(m2.data(&mut store)[0], 42); 1089 1090 // And therefore their hash keys are the same. 1091 assert!(m1.hash_key(&store.as_context().0) == m2.hash_key(&store.as_context().0)); 1092 1093 // But the hash keys are different from different memories. 1094 let instance2 = Instance::new(&mut store, &module, &[])?; 1095 let m3 = instance2.get_memory(&mut store, "m").unwrap(); 1096 assert!(m1.hash_key(&store.as_context().0) != m3.hash_key(&store.as_context().0)); 1097 1098 Ok(()) 1099 } 1100 } 1101