This commit slims down the list of builtin intrinsics. It removes the duplicated intrinsics for imported and locally defined items, instead always using one intrinsic for both. This was previously inconsistently applied where some intrinsics got two copies (one for imported one for local) and other intrinsics got only one copy. This does add an extra branch in intrinsics since they need to determine whether something is local or not, but that's generally much lower cost than the intrinsics themselves. This also removes the `memory32_size` intrinsic, instead inlining the codegen directly into the clif IR. This matches what the `table.size` instruction does and removes the need for a few functions on a `wasmtime_runtime::Instance`.
495 lines
16 KiB
Rust
495 lines
16 KiB
Rust
//! Runtime library calls.
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//!
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//! Note that Wasm compilers may sometimes perform these inline rather than
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//! calling them, particularly when CPUs have special instructions which compute
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//! them directly.
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//!
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//! These functions are called by compiled Wasm code, and therefore must take
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//! certain care about some things:
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//!
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//! * They must always be `pub extern "C"` and should only contain basic, raw
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//! i32/i64/f32/f64/pointer parameters that are safe to pass across the system
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//! ABI!
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//!
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//! * If any nested function propagates an `Err(trap)` out to the library
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//! function frame, we need to raise it. This involves some nasty and quite
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//! unsafe code under the covers! Notable, after raising the trap, drops
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//! **will not** be run for local variables! This can lead to things like
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//! leaking `InstanceHandle`s which leads to never deallocating JIT code,
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//! instances, and modules! Therefore, always use nested blocks to ensure
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//! drops run before raising a trap:
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//!
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//! ```ignore
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//! pub extern "C" fn my_lib_function(...) {
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//! let result = {
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//! // Do everything in here so drops run at the end of the block.
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//! ...
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//! };
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//! if let Err(trap) = result {
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//! // Now we can safely raise the trap without leaking!
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//! raise_lib_trap(trap);
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//! }
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//! }
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//! ```
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//!
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//! * When receiving a raw `*mut u8` that is actually a `VMExternRef` reference,
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//! convert it into a proper `VMExternRef` with `VMExternRef::clone_from_raw`
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//! as soon as apossible. Any GC before raw pointer is converted into a
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//! reference can potentially collect the referenced object, which could lead
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//! to use after free. Avoid this by eagerly converting into a proper
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//! `VMExternRef`!
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//!
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//! ```ignore
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//! pub unsafe extern "C" my_lib_takes_ref(raw_extern_ref: *mut u8) {
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//! // Before `clone_from_raw`, `raw_extern_ref` is potentially unrooted,
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//! // and doing GC here could lead to use after free!
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//!
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//! let my_extern_ref = if raw_extern_ref.is_null() {
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//! None
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//! } else {
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//! Some(VMExternRef::clone_from_raw(raw_extern_ref))
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//! };
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//!
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//! // Now that we did `clone_from_raw`, it is safe to do a GC (or do
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//! // anything else that might transitively GC, like call back into
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//! // Wasm!)
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//! }
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//! ```
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use crate::externref::VMExternRef;
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use crate::table::Table;
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use crate::traphandlers::{raise_lib_trap, Trap};
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use crate::vmcontext::{VMCallerCheckedAnyfunc, VMContext};
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use std::mem;
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use std::ptr::{self, NonNull};
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use wasmtime_environ::wasm::{
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DataIndex, ElemIndex, GlobalIndex, MemoryIndex, TableElementType, TableIndex,
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};
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const TOINT_32: f32 = 1.0 / f32::EPSILON;
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const TOINT_64: f64 = 1.0 / f64::EPSILON;
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/// Implementation of f32.ceil
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pub extern "C" fn wasmtime_f32_ceil(x: f32) -> f32 {
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x.ceil()
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}
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/// Implementation of f32.floor
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pub extern "C" fn wasmtime_f32_floor(x: f32) -> f32 {
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x.floor()
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}
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/// Implementation of f32.trunc
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pub extern "C" fn wasmtime_f32_trunc(x: f32) -> f32 {
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x.trunc()
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}
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/// Implementation of f32.nearest
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#[allow(clippy::float_arithmetic, clippy::float_cmp)]
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pub extern "C" fn wasmtime_f32_nearest(x: f32) -> f32 {
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// Rust doesn't have a nearest function; there's nearbyint, but it's not
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// stabilized, so do it manually.
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// Nearest is either ceil or floor depending on which is nearest or even.
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// This approach exploited round half to even default mode.
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let i = x.to_bits();
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let e = i >> 23 & 0xff;
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if e >= 0x7f_u32 + 23 {
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// Check for NaNs.
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if e == 0xff {
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// Read the 23-bits significand.
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if i & 0x7fffff != 0 {
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// Ensure it's arithmetic by setting the significand's most
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// significant bit to 1; it also works for canonical NaNs.
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return f32::from_bits(i | (1 << 22));
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}
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}
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x
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} else {
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(x.abs() + TOINT_32 - TOINT_32).copysign(x)
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}
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}
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/// Implementation of i64.udiv
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pub extern "C" fn wasmtime_i64_udiv(x: u64, y: u64) -> u64 {
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x / y
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}
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/// Implementation of i64.sdiv
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pub extern "C" fn wasmtime_i64_sdiv(x: i64, y: i64) -> i64 {
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x / y
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}
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/// Implementation of i64.urem
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pub extern "C" fn wasmtime_i64_urem(x: u64, y: u64) -> u64 {
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x % y
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}
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/// Implementation of i64.srem
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pub extern "C" fn wasmtime_i64_srem(x: i64, y: i64) -> i64 {
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x % y
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}
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/// Implementation of i64.ishl
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pub extern "C" fn wasmtime_i64_ishl(x: i64, y: i64) -> i64 {
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x << y
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}
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/// Implementation of i64.ushr
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pub extern "C" fn wasmtime_i64_ushr(x: u64, y: i64) -> u64 {
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x >> y
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}
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/// Implementation of i64.sshr
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pub extern "C" fn wasmtime_i64_sshr(x: i64, y: i64) -> i64 {
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x >> y
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}
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/// Implementation of f64.ceil
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pub extern "C" fn wasmtime_f64_ceil(x: f64) -> f64 {
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x.ceil()
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}
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/// Implementation of f64.floor
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pub extern "C" fn wasmtime_f64_floor(x: f64) -> f64 {
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x.floor()
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}
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/// Implementation of f64.trunc
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pub extern "C" fn wasmtime_f64_trunc(x: f64) -> f64 {
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x.trunc()
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}
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/// Implementation of f64.nearest
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#[allow(clippy::float_arithmetic, clippy::float_cmp)]
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pub extern "C" fn wasmtime_f64_nearest(x: f64) -> f64 {
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// Rust doesn't have a nearest function; there's nearbyint, but it's not
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// stabilized, so do it manually.
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// Nearest is either ceil or floor depending on which is nearest or even.
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// This approach exploited round half to even default mode.
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let i = x.to_bits();
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let e = i >> 52 & 0x7ff;
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if e >= 0x3ff_u64 + 52 {
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// Check for NaNs.
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if e == 0x7ff {
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// Read the 52-bits significand.
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if i & 0xfffffffffffff != 0 {
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// Ensure it's arithmetic by setting the significand's most
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// significant bit to 1; it also works for canonical NaNs.
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return f64::from_bits(i | (1 << 51));
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}
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}
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x
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} else {
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(x.abs() + TOINT_64 - TOINT_64).copysign(x)
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}
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}
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/// Implementation of memory.grow for locally-defined 32-bit memories.
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pub unsafe extern "C" fn wasmtime_memory32_grow(
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vmctx: *mut VMContext,
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delta: u32,
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memory_index: u32,
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) -> u32 {
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let instance = (*vmctx).instance_mut();
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let memory_index = MemoryIndex::from_u32(memory_index);
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instance
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.memory_grow(memory_index, delta)
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.unwrap_or(u32::max_value())
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}
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/// Implementation of `table.grow`.
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pub unsafe extern "C" fn wasmtime_table_grow(
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vmctx: *mut VMContext,
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table_index: u32,
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delta: u32,
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// NB: we don't know whether this is a pointer to a `VMCallerCheckedAnyfunc`
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// or is a `VMExternRef` until we look at the table type.
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init_value: *mut u8,
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) -> u32 {
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let instance = (*vmctx).instance_mut();
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let table_index = TableIndex::from_u32(table_index);
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let element = match instance.table_element_type(table_index) {
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TableElementType::Func => (init_value as *mut VMCallerCheckedAnyfunc).into(),
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TableElementType::Val(ty) => {
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debug_assert_eq!(ty, crate::ref_type());
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let init_value = if init_value.is_null() {
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None
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} else {
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Some(VMExternRef::clone_from_raw(init_value))
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};
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init_value.into()
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}
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};
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instance
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.table_grow(table_index, delta, element)
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.unwrap_or(-1_i32 as u32)
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}
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/// Implementation of `table.fill`.
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pub unsafe extern "C" fn wasmtime_table_fill(
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vmctx: *mut VMContext,
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table_index: u32,
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dst: u32,
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// NB: we don't know whether this is a `VMExternRef` or a pointer to a
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// `VMCallerCheckedAnyfunc` until we look at the table's element type.
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val: *mut u8,
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len: u32,
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) {
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let result = {
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let instance = (*vmctx).instance_mut();
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let table_index = TableIndex::from_u32(table_index);
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let table = &mut *instance.get_table(table_index);
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match table.element_type() {
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TableElementType::Func => {
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let val = val as *mut VMCallerCheckedAnyfunc;
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table.fill(dst, val.into(), len)
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}
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TableElementType::Val(ty) => {
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debug_assert_eq!(ty, crate::ref_type());
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let val = if val.is_null() {
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None
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} else {
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Some(VMExternRef::clone_from_raw(val))
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};
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table.fill(dst, val.into(), len)
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}
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}
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};
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if let Err(trap) = result {
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raise_lib_trap(trap);
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}
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}
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/// Implementation of `table.copy`.
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pub unsafe extern "C" fn wasmtime_table_copy(
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vmctx: *mut VMContext,
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dst_table_index: u32,
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src_table_index: u32,
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dst: u32,
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src: u32,
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len: u32,
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) {
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let result = {
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let dst_table_index = TableIndex::from_u32(dst_table_index);
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let src_table_index = TableIndex::from_u32(src_table_index);
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let instance = (*vmctx).instance_mut();
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let dst_table = instance.get_table(dst_table_index);
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let src_table = instance.get_table(src_table_index);
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Table::copy(dst_table, src_table, dst, src, len)
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};
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if let Err(trap) = result {
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raise_lib_trap(trap);
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}
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}
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/// Implementation of `table.init`.
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pub unsafe extern "C" fn wasmtime_table_init(
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vmctx: *mut VMContext,
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table_index: u32,
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elem_index: u32,
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dst: u32,
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src: u32,
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len: u32,
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) {
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let result = {
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let table_index = TableIndex::from_u32(table_index);
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let elem_index = ElemIndex::from_u32(elem_index);
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let instance = (*vmctx).instance_mut();
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instance.table_init(table_index, elem_index, dst, src, len)
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};
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if let Err(trap) = result {
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raise_lib_trap(trap);
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}
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}
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/// Implementation of `elem.drop`.
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pub unsafe extern "C" fn wasmtime_elem_drop(vmctx: *mut VMContext, elem_index: u32) {
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let elem_index = ElemIndex::from_u32(elem_index);
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let instance = (*vmctx).instance_mut();
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instance.elem_drop(elem_index);
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}
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/// Implementation of `memory.copy` for locally defined memories.
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pub unsafe extern "C" fn wasmtime_memory_copy(
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vmctx: *mut VMContext,
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dst_index: u32,
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dst: u32,
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src_index: u32,
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src: u32,
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len: u32,
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) {
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let result = {
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let src_index = MemoryIndex::from_u32(src_index);
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let dst_index = MemoryIndex::from_u32(dst_index);
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let instance = (*vmctx).instance_mut();
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instance.memory_copy(dst_index, dst, src_index, src, len)
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};
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if let Err(trap) = result {
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raise_lib_trap(trap);
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}
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}
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/// Implementation of `memory.fill` for locally defined memories.
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pub unsafe extern "C" fn wasmtime_memory_fill(
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vmctx: *mut VMContext,
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memory_index: u32,
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dst: u32,
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val: u32,
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len: u32,
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) {
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let result = {
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let memory_index = MemoryIndex::from_u32(memory_index);
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let instance = (*vmctx).instance_mut();
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instance.memory_fill(memory_index, dst, val, len)
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};
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if let Err(trap) = result {
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raise_lib_trap(trap);
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}
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}
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/// Implementation of `memory.init`.
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pub unsafe extern "C" fn wasmtime_memory_init(
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vmctx: *mut VMContext,
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memory_index: u32,
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data_index: u32,
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dst: u32,
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src: u32,
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len: u32,
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) {
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let result = {
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let memory_index = MemoryIndex::from_u32(memory_index);
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let data_index = DataIndex::from_u32(data_index);
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let instance = (*vmctx).instance_mut();
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instance.memory_init(memory_index, data_index, dst, src, len)
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};
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if let Err(trap) = result {
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raise_lib_trap(trap);
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}
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}
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/// Implementation of `data.drop`.
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pub unsafe extern "C" fn wasmtime_data_drop(vmctx: *mut VMContext, data_index: u32) {
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let data_index = DataIndex::from_u32(data_index);
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let instance = (*vmctx).instance_mut();
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instance.data_drop(data_index)
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}
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/// Drop a `VMExternRef`.
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pub unsafe extern "C" fn wasmtime_drop_externref(externref: *mut u8) {
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let externref = externref as *mut crate::externref::VMExternData;
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let externref = NonNull::new(externref).unwrap();
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crate::externref::VMExternData::drop_and_dealloc(externref);
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}
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/// Do a GC and insert the given `externref` into the
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/// `VMExternRefActivationsTable`.
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pub unsafe extern "C" fn wasmtime_activations_table_insert_with_gc(
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vmctx: *mut VMContext,
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externref: *mut u8,
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) {
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let externref = VMExternRef::clone_from_raw(externref);
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let instance = (*vmctx).instance();
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let (activations_table, module_info_lookup) = (*instance.store()).externref_activations_table();
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activations_table.insert_with_gc(externref, module_info_lookup);
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}
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/// Perform a Wasm `global.get` for `externref` globals.
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pub unsafe extern "C" fn wasmtime_externref_global_get(
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vmctx: *mut VMContext,
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index: u32,
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) -> *mut u8 {
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let index = GlobalIndex::from_u32(index);
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let instance = (*vmctx).instance();
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let global = instance.defined_or_imported_global_ptr(index);
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match (*global).as_externref().clone() {
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None => ptr::null_mut(),
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Some(externref) => {
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let raw = externref.as_raw();
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let (activations_table, module_info_lookup) =
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(*instance.store()).externref_activations_table();
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activations_table.insert_with_gc(externref, module_info_lookup);
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raw
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}
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}
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}
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/// Perform a Wasm `global.set` for `externref` globals.
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pub unsafe extern "C" fn wasmtime_externref_global_set(
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vmctx: *mut VMContext,
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index: u32,
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externref: *mut u8,
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) {
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let externref = if externref.is_null() {
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None
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} else {
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Some(VMExternRef::clone_from_raw(externref))
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};
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let index = GlobalIndex::from_u32(index);
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let instance = (*vmctx).instance();
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let global = instance.defined_or_imported_global_ptr(index);
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// Swap the new `externref` value into the global before we drop the old
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// value. This protects against an `externref` with a `Drop` implementation
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// that calls back into Wasm and touches this global again (we want to avoid
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// it observing a halfway-deinitialized value).
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let old = mem::replace((*global).as_externref_mut(), externref);
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drop(old);
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}
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|
#[derive(Debug)]
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|
struct Unimplemented(&'static str);
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|
impl std::error::Error for Unimplemented {}
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|
impl std::fmt::Display for Unimplemented {
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|
fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::result::Result<(), std::fmt::Error> {
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write!(f, "unimplemented: {}", self.0)
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}
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}
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|
|
/// Implementation of `memory.atomic.notify` for locally defined memories.
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|
pub unsafe extern "C" fn wasmtime_memory_atomic_notify(
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_vmctx: *mut VMContext,
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_memory_index: u32,
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_addr: u32,
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_count: u32,
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) -> u32 {
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raise_lib_trap(Trap::User(Box::new(Unimplemented(
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|
"wasm atomics (fn wasmtime_memory_atomic_notify) unsupported",
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))));
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}
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|
|
/// Implementation of `memory.atomic.wait32` for locally defined memories.
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|
pub unsafe extern "C" fn wasmtime_memory_atomic_wait32(
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_vmctx: *mut VMContext,
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_memory_index: u32,
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_addr: u32,
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_expected: u32,
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|
_timeout: u64,
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) -> u32 {
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raise_lib_trap(Trap::User(Box::new(Unimplemented(
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|
"wasm atomics (fn wasmtime_memory_atomic_wait32) unsupported",
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))));
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}
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|
|
/// Implementation of `memory.atomic.wait64` for locally defined memories.
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|
pub unsafe extern "C" fn wasmtime_memory_atomic_wait64(
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|
_vmctx: *mut VMContext,
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|
_memory_index: u32,
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|
_addr: u32,
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|
_expected: u64,
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|
_timeout: u64,
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|
) -> u32 {
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|
raise_lib_trap(Trap::User(Box::new(Unimplemented(
|
|
"wasm atomics (fn wasmtime_memory_atomic_wait32) unsupported",
|
|
))));
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|
}
|
|
|
|
/// Hook for when an instance runs out of fuel.
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|
pub unsafe extern "C" fn wasmtime_out_of_gas(vmctx: *mut VMContext) {
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|
match (*(*vmctx).instance().store()).out_of_gas() {
|
|
Ok(()) => {}
|
|
Err(err) => crate::traphandlers::raise_user_trap(err),
|
|
}
|
|
}
|