mirror of
https://github.com/pezkuwichain/pezkuwi-subxt.git
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abd08e29ce
* reformat everything again * manual formatting * last manual fix * Fix build
454 lines
14 KiB
Rust
454 lines
14 KiB
Rust
// This file is part of Substrate.
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// Copyright (C) 2020-2021 Parity Technologies (UK) Ltd.
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// SPDX-License-Identifier: GPL-3.0-or-later WITH Classpath-exception-2.0
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// This program is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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// This program is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License for more details.
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// You should have received a copy of the GNU General Public License
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// along with this program. If not, see <https://www.gnu.org/licenses/>.
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//! Defines data and logic needed for interaction with an WebAssembly instance of a substrate
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//! runtime module.
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use crate::{imports::Imports, util};
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use sc_executor_common::{
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error::{Error, Result},
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runtime_blob,
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wasm_runtime::InvokeMethod,
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};
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use sp_wasm_interface::{Pointer, Value, WordSize};
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use std::{marker, slice};
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use wasmtime::{Extern, Func, Global, Instance, Memory, Module, Store, Table, Val};
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/// Invoked entrypoint format.
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pub enum EntryPointType {
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/// Direct call.
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///
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/// Call is made by providing only payload reference and length.
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Direct { entrypoint: wasmtime::TypedFunc<(u32, u32), u64> },
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/// Indirect call.
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///
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/// Call is made by providing payload reference and length, and extra argument
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/// for advanced routing.
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Wrapped {
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/// The extra argument passed to the runtime. It is typically a wasm function pointer.
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func: u32,
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dispatcher: wasmtime::TypedFunc<(u32, u32, u32), u64>,
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},
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}
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/// Wasm blob entry point.
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pub struct EntryPoint {
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call_type: EntryPointType,
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}
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impl EntryPoint {
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/// Call this entry point.
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pub fn call(&self, data_ptr: Pointer<u8>, data_len: WordSize) -> Result<u64> {
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let data_ptr = u32::from(data_ptr);
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let data_len = u32::from(data_len);
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fn handle_trap(err: wasmtime::Trap) -> Error {
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Error::from(format!("Wasm execution trapped: {}", err))
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}
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match self.call_type {
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EntryPointType::Direct { ref entrypoint } =>
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entrypoint.call((data_ptr, data_len)).map_err(handle_trap),
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EntryPointType::Wrapped { func, ref dispatcher } =>
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dispatcher.call((func, data_ptr, data_len)).map_err(handle_trap),
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}
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}
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pub fn direct(func: wasmtime::Func) -> std::result::Result<Self, &'static str> {
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let entrypoint = func
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.typed::<(u32, u32), u64>()
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.map_err(|_| "Invalid signature for direct entry point")?
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.clone();
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Ok(Self { call_type: EntryPointType::Direct { entrypoint } })
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}
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pub fn wrapped(
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dispatcher: wasmtime::Func,
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func: u32,
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) -> std::result::Result<Self, &'static str> {
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let dispatcher = dispatcher
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.typed::<(u32, u32, u32), u64>()
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.map_err(|_| "Invalid signature for wrapped entry point")?
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.clone();
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Ok(Self { call_type: EntryPointType::Wrapped { func, dispatcher } })
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}
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}
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/// Wrap the given WebAssembly Instance of a wasm module with Substrate-runtime.
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///
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/// This struct is a handy wrapper around a wasmtime `Instance` that provides substrate specific
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/// routines.
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pub struct InstanceWrapper {
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instance: Instance,
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// The memory instance of the `instance`.
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//
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// It is important to make sure that we don't make any copies of this to make it easier to
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// proof See `memory_as_slice` and `memory_as_slice_mut`.
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memory: Memory,
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table: Option<Table>,
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// Make this struct explicitly !Send & !Sync.
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_not_send_nor_sync: marker::PhantomData<*const ()>,
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}
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fn extern_memory(extern_: &Extern) -> Option<&Memory> {
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match extern_ {
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Extern::Memory(mem) => Some(mem),
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_ => None,
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}
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}
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fn extern_global(extern_: &Extern) -> Option<&Global> {
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match extern_ {
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Extern::Global(glob) => Some(glob),
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_ => None,
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}
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}
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fn extern_table(extern_: &Extern) -> Option<&Table> {
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match extern_ {
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Extern::Table(table) => Some(table),
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_ => None,
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}
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}
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fn extern_func(extern_: &Extern) -> Option<&Func> {
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match extern_ {
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Extern::Func(func) => Some(func),
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_ => None,
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}
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}
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impl InstanceWrapper {
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/// Create a new instance wrapper from the given wasm module.
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pub fn new(store: &Store, module: &Module, imports: &Imports, heap_pages: u32) -> Result<Self> {
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let instance = Instance::new(store, module, &imports.externs)
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.map_err(|e| Error::from(format!("cannot instantiate: {}", e)))?;
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let memory = match imports.memory_import_index {
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Some(memory_idx) => extern_memory(&imports.externs[memory_idx])
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.expect("only memory can be at the `memory_idx`; qed")
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.clone(),
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None => {
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let memory = get_linear_memory(&instance)?;
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if !memory.grow(heap_pages).is_ok() {
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return Err("failed top increase the linear memory size".into())
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}
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memory
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},
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};
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Ok(Self {
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table: get_table(&instance),
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instance,
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memory,
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_not_send_nor_sync: marker::PhantomData,
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})
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}
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/// Resolves a substrate entrypoint by the given name.
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///
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/// An entrypoint must have a signature `(i32, i32) -> i64`, otherwise this function will return
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/// an error.
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pub fn resolve_entrypoint(&self, method: InvokeMethod) -> Result<EntryPoint> {
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Ok(match method {
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InvokeMethod::Export(method) => {
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// Resolve the requested method and verify that it has a proper signature.
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let export = self.instance.get_export(method).ok_or_else(|| {
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Error::from(format!("Exported method {} is not found", method))
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})?;
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let func = extern_func(&export)
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.ok_or_else(|| Error::from(format!("Export {} is not a function", method)))?
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.clone();
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EntryPoint::direct(func).map_err(|_| {
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Error::from(format!("Exported function '{}' has invalid signature.", method))
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})?
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},
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InvokeMethod::Table(func_ref) => {
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let table =
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self.instance.get_table("__indirect_function_table").ok_or(Error::NoTable)?;
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let val = table.get(func_ref).ok_or(Error::NoTableEntryWithIndex(func_ref))?;
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let func = val
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.funcref()
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.ok_or(Error::TableElementIsNotAFunction(func_ref))?
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.ok_or(Error::FunctionRefIsNull(func_ref))?
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.clone();
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EntryPoint::direct(func).map_err(|_| {
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Error::from(format!(
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"Function @{} in exported table has invalid signature for direct call.",
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func_ref,
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))
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})?
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},
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InvokeMethod::TableWithWrapper { dispatcher_ref, func } => {
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let table =
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self.instance.get_table("__indirect_function_table").ok_or(Error::NoTable)?;
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let val = table
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.get(dispatcher_ref)
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.ok_or(Error::NoTableEntryWithIndex(dispatcher_ref))?;
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let dispatcher = val
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.funcref()
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.ok_or(Error::TableElementIsNotAFunction(dispatcher_ref))?
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.ok_or(Error::FunctionRefIsNull(dispatcher_ref))?
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.clone();
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EntryPoint::wrapped(dispatcher, func).map_err(|_| {
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Error::from(format!(
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"Function @{} in exported table has invalid signature for wrapped call.",
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dispatcher_ref,
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))
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})?
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},
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})
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}
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/// Returns an indirect function table of this instance.
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pub fn table(&self) -> Option<&Table> {
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self.table.as_ref()
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}
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/// Returns the byte size of the linear memory instance attached to this instance.
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pub fn memory_size(&self) -> u32 {
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self.memory.data_size() as u32
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}
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/// Reads `__heap_base: i32` global variable and returns it.
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///
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/// If it doesn't exist, not a global or of not i32 type returns an error.
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pub fn extract_heap_base(&self) -> Result<u32> {
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let heap_base_export = self
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.instance
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.get_export("__heap_base")
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.ok_or_else(|| Error::from("__heap_base is not found"))?;
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let heap_base_global = extern_global(&heap_base_export)
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.ok_or_else(|| Error::from("__heap_base is not a global"))?;
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let heap_base = heap_base_global
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.get()
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.i32()
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.ok_or_else(|| Error::from("__heap_base is not a i32"))?;
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Ok(heap_base as u32)
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}
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/// Get the value from a global with the given `name`.
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pub fn get_global_val(&self, name: &str) -> Result<Option<Value>> {
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let global = match self.instance.get_export(name) {
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Some(global) => global,
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None => return Ok(None),
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};
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let global = extern_global(&global).ok_or_else(|| format!("`{}` is not a global", name))?;
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match global.get() {
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Val::I32(val) => Ok(Some(Value::I32(val))),
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Val::I64(val) => Ok(Some(Value::I64(val))),
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Val::F32(val) => Ok(Some(Value::F32(val))),
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Val::F64(val) => Ok(Some(Value::F64(val))),
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_ => Err("Unknown value type".into()),
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}
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}
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}
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/// Extract linear memory instance from the given instance.
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fn get_linear_memory(instance: &Instance) -> Result<Memory> {
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let memory_export = instance
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.get_export("memory")
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.ok_or_else(|| Error::from("memory is not exported under `memory` name"))?;
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let memory = extern_memory(&memory_export)
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.ok_or_else(|| Error::from("the `memory` export should have memory type"))?
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.clone();
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Ok(memory)
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}
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/// Extract the table from the given instance if any.
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fn get_table(instance: &Instance) -> Option<Table> {
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instance
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.get_export("__indirect_function_table")
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.as_ref()
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.and_then(extern_table)
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.cloned()
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}
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/// Functions related to memory.
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impl InstanceWrapper {
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/// Read data from a slice of memory into a destination buffer.
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///
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/// Returns an error if the read would go out of the memory bounds.
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pub fn read_memory_into(&self, address: Pointer<u8>, dest: &mut [u8]) -> Result<()> {
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unsafe {
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// This should be safe since we don't grow up memory while caching this reference and
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// we give up the reference before returning from this function.
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let memory = self.memory_as_slice();
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let range = util::checked_range(address.into(), dest.len(), memory.len())
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.ok_or_else(|| Error::Other("memory read is out of bounds".into()))?;
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dest.copy_from_slice(&memory[range]);
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Ok(())
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}
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}
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/// Write data to a slice of memory.
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///
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/// Returns an error if the write would go out of the memory bounds.
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pub fn write_memory_from(&self, address: Pointer<u8>, data: &[u8]) -> Result<()> {
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unsafe {
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// This should be safe since we don't grow up memory while caching this reference and
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// we give up the reference before returning from this function.
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let memory = self.memory_as_slice_mut();
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let range = util::checked_range(address.into(), data.len(), memory.len())
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.ok_or_else(|| Error::Other("memory write is out of bounds".into()))?;
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memory[range].copy_from_slice(data);
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Ok(())
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}
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}
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/// Allocate some memory of the given size. Returns pointer to the allocated memory region.
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///
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/// Returns `Err` in case memory cannot be allocated. Refer to the allocator documentation
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/// to get more details.
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pub fn allocate(
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&self,
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allocator: &mut sc_allocator::FreeingBumpHeapAllocator,
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size: WordSize,
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) -> Result<Pointer<u8>> {
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unsafe {
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// This should be safe since we don't grow up memory while caching this reference and
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// we give up the reference before returning from this function.
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let memory = self.memory_as_slice_mut();
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allocator.allocate(memory, size).map_err(Into::into)
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}
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}
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/// Deallocate the memory pointed by the given pointer.
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///
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/// Returns `Err` in case the given memory region cannot be deallocated.
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pub fn deallocate(
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&self,
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allocator: &mut sc_allocator::FreeingBumpHeapAllocator,
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ptr: Pointer<u8>,
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) -> Result<()> {
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unsafe {
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// This should be safe since we don't grow up memory while caching this reference and
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// we give up the reference before returning from this function.
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let memory = self.memory_as_slice_mut();
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allocator.deallocate(memory, ptr).map_err(Into::into)
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}
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}
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/// Returns linear memory of the wasm instance as a slice.
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///
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/// # Safety
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///
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/// Wasmtime doesn't provide comprehensive documentation about the exact behavior of the data
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/// pointer. If a dynamic style heap is used the base pointer of the heap can change. Since
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/// growing, we cannot guarantee the lifetime of the returned slice reference.
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unsafe fn memory_as_slice(&self) -> &[u8] {
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let ptr = self.memory.data_ptr() as *const _;
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let len = self.memory.data_size();
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if len == 0 {
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&[]
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} else {
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slice::from_raw_parts(ptr, len)
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}
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}
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/// Returns linear memory of the wasm instance as a slice.
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///
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/// # Safety
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///
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/// See `[memory_as_slice]`. In addition to those requirements, since a mutable reference is
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/// returned it must be ensured that only one mutable and no shared references to memory exists
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/// at the same time.
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unsafe fn memory_as_slice_mut(&self) -> &mut [u8] {
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let ptr = self.memory.data_ptr();
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let len = self.memory.data_size();
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if len == 0 {
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&mut []
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} else {
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slice::from_raw_parts_mut(ptr, len)
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}
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}
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/// Returns the pointer to the first byte of the linear memory for this instance.
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pub fn base_ptr(&self) -> *const u8 {
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self.memory.data_ptr()
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}
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/// Removes physical backing from the allocated linear memory. This leads to returning the
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/// memory back to the system. While the memory is zeroed this is considered as a side-effect
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/// and is not relied upon. Thus this function acts as a hint.
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pub fn decommit(&self) {
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if self.memory.data_size() == 0 {
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return
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}
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cfg_if::cfg_if! {
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if #[cfg(target_os = "linux")] {
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use std::sync::Once;
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unsafe {
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let ptr = self.memory.data_ptr();
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let len = self.memory.data_size();
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// Linux handles MADV_DONTNEED reliably. The result is that the given area
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// is unmapped and will be zeroed on the next pagefault.
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if libc::madvise(ptr as _, len, libc::MADV_DONTNEED) != 0 {
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static LOGGED: Once = Once::new();
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LOGGED.call_once(|| {
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log::warn!(
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"madvise(MADV_DONTNEED) failed: {}",
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std::io::Error::last_os_error(),
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);
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});
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}
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}
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}
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}
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}
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}
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impl runtime_blob::InstanceGlobals for InstanceWrapper {
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type Global = wasmtime::Global;
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fn get_global(&self, export_name: &str) -> Self::Global {
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self.instance
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.get_global(export_name)
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.expect("get_global is guaranteed to be called with an export name of a global; qed")
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}
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fn get_global_value(&self, global: &Self::Global) -> Value {
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util::from_wasmtime_val(global.get())
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}
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fn set_global_value(&self, global: &Self::Global, value: Value) {
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global.set(util::into_wasmtime_val(value)).expect(
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"the value is guaranteed to be of the same value; the global is guaranteed to be mutable; qed",
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);
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}
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}
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