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