* Update cranelift to 0.58.0 * Update `wasmprinter` dep to require 0.2.1 We already had it in the lock file, but this ensures we won't ever go back down. * Ensure that our error messages match `assert_invalid`'s The bulk of this work was done in https://github.com/bytecodealliance/wasmparser/pull/186 but now we can test it at the `wasmtime` level as well. Fixes #492 * Stop feeling guilty about not matching `assert_malformed` messages Remove the "TODO" and stop printing warning messages. These would just be busy work to implement, and getting all the messages the exact same relies on using the same structure as the spec interpreter's parser, which means that where you have a helper function and they don't, then things go wrong, and vice versa. Not worth it. Fixes #492 * Enable (but ignore) the reference-types proposal tests * Match test suite directly, instead of roundabout starts/endswith * Enable (but ignore) bulk memory operations proposal test suite
449 lines
15 KiB
Rust
449 lines
15 KiB
Rust
//! JIT compilation.
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use crate::code_memory::CodeMemory;
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use crate::instantiate::SetupError;
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use crate::target_tunables::target_tunables;
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use cranelift_codegen::ir::InstBuilder;
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use cranelift_codegen::print_errors::pretty_error;
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use cranelift_codegen::Context;
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use cranelift_codegen::{binemit, ir};
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use cranelift_frontend::{FunctionBuilder, FunctionBuilderContext};
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use cranelift_wasm::ModuleTranslationState;
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use std::collections::HashMap;
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use std::convert::TryFrom;
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use wasmtime_debug::{emit_debugsections_image, DebugInfoData};
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use wasmtime_environ::entity::{EntityRef, PrimaryMap};
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use wasmtime_environ::isa::{TargetFrontendConfig, TargetIsa};
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use wasmtime_environ::wasm::{DefinedFuncIndex, DefinedMemoryIndex, MemoryIndex};
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use wasmtime_environ::{
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CacheConfig, Compilation, CompileError, CompiledFunction, CompiledFunctionUnwindInfo,
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Compiler as _C, FunctionBodyData, Module, ModuleMemoryOffset, ModuleVmctxInfo, Relocations,
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Traps, Tunables, VMOffsets,
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};
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use wasmtime_runtime::{
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InstantiationError, SignatureRegistry, TrapRegistration, TrapRegistry, VMFunctionBody,
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};
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/// Select which kind of compilation to use.
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#[derive(Copy, Clone, Debug)]
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pub enum CompilationStrategy {
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/// Let Wasmtime pick the strategy.
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Auto,
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/// Compile all functions with Cranelift.
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Cranelift,
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/// Compile all functions with Lightbeam.
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#[cfg(feature = "lightbeam")]
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Lightbeam,
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}
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/// A WebAssembly code JIT compiler.
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///
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/// A `Compiler` instance owns the executable memory that it allocates.
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///
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/// TODO: Evolve this to support streaming rather than requiring a `&[u8]`
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/// containing a whole wasm module at once.
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///
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/// TODO: Consider using cranelift-module.
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pub struct Compiler {
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isa: Box<dyn TargetIsa>,
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code_memory: CodeMemory,
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trap_registry: TrapRegistry,
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trampoline_park: HashMap<*const VMFunctionBody, *const VMFunctionBody>,
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signatures: SignatureRegistry,
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strategy: CompilationStrategy,
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cache_config: CacheConfig,
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/// The `FunctionBuilderContext`, shared between trampline function compilations.
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fn_builder_ctx: FunctionBuilderContext,
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}
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impl Compiler {
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/// Construct a new `Compiler`.
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pub fn new(
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isa: Box<dyn TargetIsa>,
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strategy: CompilationStrategy,
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cache_config: CacheConfig,
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) -> Self {
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Self {
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isa,
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code_memory: CodeMemory::new(),
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trampoline_park: HashMap::new(),
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signatures: SignatureRegistry::new(),
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fn_builder_ctx: FunctionBuilderContext::new(),
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strategy,
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trap_registry: TrapRegistry::default(),
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cache_config,
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}
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}
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}
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impl Compiler {
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/// Return the target's frontend configuration settings.
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pub fn frontend_config(&self) -> TargetFrontendConfig {
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self.isa.frontend_config()
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}
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/// Return the tunables in use by this engine.
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pub fn tunables(&self) -> Tunables {
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target_tunables(self.isa.triple())
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}
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/// Compile the given function bodies.
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pub(crate) fn compile<'data>(
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&mut self,
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module: &Module,
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module_translation: &ModuleTranslationState,
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function_body_inputs: PrimaryMap<DefinedFuncIndex, FunctionBodyData<'data>>,
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debug_data: Option<DebugInfoData>,
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) -> Result<
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(
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PrimaryMap<DefinedFuncIndex, *mut [VMFunctionBody]>,
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PrimaryMap<DefinedFuncIndex, ir::JumpTableOffsets>,
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Relocations,
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Option<Vec<u8>>,
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TrapRegistration,
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),
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SetupError,
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> {
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let (compilation, relocations, address_transform, value_ranges, stack_slots, traps) =
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match self.strategy {
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// For now, interpret `Auto` as `Cranelift` since that's the most stable
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// implementation.
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CompilationStrategy::Auto | CompilationStrategy::Cranelift => {
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wasmtime_environ::cranelift::Cranelift::compile_module(
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module,
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module_translation,
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function_body_inputs,
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&*self.isa,
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debug_data.is_some(),
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&self.cache_config,
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)
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}
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#[cfg(feature = "lightbeam")]
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CompilationStrategy::Lightbeam => {
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wasmtime_environ::lightbeam::Lightbeam::compile_module(
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module,
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module_translation,
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function_body_inputs,
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&*self.isa,
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debug_data.is_some(),
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&self.cache_config,
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)
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}
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}
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.map_err(SetupError::Compile)?;
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let allocated_functions =
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allocate_functions(&mut self.code_memory, &compilation).map_err(|message| {
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SetupError::Instantiate(InstantiationError::Resource(format!(
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"failed to allocate memory for functions: {}",
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message
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)))
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})?;
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let trap_registration = register_traps(&allocated_functions, &traps, &self.trap_registry);
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// Translate debug info (DWARF) only if at least one function is present.
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let dbg = if debug_data.is_some() && !allocated_functions.is_empty() {
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let target_config = self.isa.frontend_config();
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let ofs = VMOffsets::new(target_config.pointer_bytes(), &module);
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let mut funcs = Vec::new();
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for (i, allocated) in allocated_functions.into_iter() {
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let ptr = (*allocated) as *const u8;
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let body_len = compilation.get(i).body.len();
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funcs.push((ptr, body_len));
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}
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let module_vmctx_info = {
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ModuleVmctxInfo {
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memory_offset: if ofs.num_imported_memories > 0 {
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ModuleMemoryOffset::Imported(ofs.vmctx_vmmemory_import(MemoryIndex::new(0)))
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} else if ofs.num_defined_memories > 0 {
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ModuleMemoryOffset::Defined(
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ofs.vmctx_vmmemory_definition_base(DefinedMemoryIndex::new(0)),
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)
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} else {
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ModuleMemoryOffset::None
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},
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stack_slots,
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}
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};
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let bytes = emit_debugsections_image(
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self.isa.triple().clone(),
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target_config,
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debug_data.as_ref().unwrap(),
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&module_vmctx_info,
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&address_transform,
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&value_ranges,
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&funcs,
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)
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.map_err(SetupError::DebugInfo)?;
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Some(bytes)
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} else {
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None
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};
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let jt_offsets = compilation.get_jt_offsets();
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Ok((
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allocated_functions,
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jt_offsets,
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relocations,
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dbg,
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trap_registration,
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))
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}
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/// Create a trampoline for invoking a function.
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pub(crate) fn get_trampoline(
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&mut self,
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callee_address: *const VMFunctionBody,
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signature: &ir::Signature,
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value_size: usize,
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) -> Result<*const VMFunctionBody, SetupError> {
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use std::collections::hash_map::Entry::{Occupied, Vacant};
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Ok(match self.trampoline_park.entry(callee_address) {
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Occupied(entry) => *entry.get(),
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Vacant(entry) => {
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let body = make_trampoline(
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&*self.isa,
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&mut self.code_memory,
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&mut self.fn_builder_ctx,
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callee_address,
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signature,
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value_size,
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)?;
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entry.insert(body);
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body
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}
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})
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}
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/// Create and publish a trampoline for invoking a function.
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pub fn get_published_trampoline(
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&mut self,
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callee_address: *const VMFunctionBody,
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signature: &ir::Signature,
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value_size: usize,
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) -> Result<*const VMFunctionBody, SetupError> {
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let result = self.get_trampoline(callee_address, signature, value_size)?;
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self.publish_compiled_code();
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Ok(result)
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}
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/// Make memory containing compiled code executable.
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pub(crate) fn publish_compiled_code(&mut self) {
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self.code_memory.publish();
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}
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/// Shared signature registry.
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pub fn signatures(&self) -> &SignatureRegistry {
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&self.signatures
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}
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/// Shared registration of trap information
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pub fn trap_registry(&self) -> &TrapRegistry {
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&self.trap_registry
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}
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}
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/// Create a trampoline for invoking a function.
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fn make_trampoline(
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isa: &dyn TargetIsa,
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code_memory: &mut CodeMemory,
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fn_builder_ctx: &mut FunctionBuilderContext,
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callee_address: *const VMFunctionBody,
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signature: &ir::Signature,
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value_size: usize,
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) -> Result<*const VMFunctionBody, SetupError> {
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let pointer_type = isa.pointer_type();
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let mut wrapper_sig = ir::Signature::new(isa.frontend_config().default_call_conv);
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// Add the callee `vmctx` parameter.
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wrapper_sig.params.push(ir::AbiParam::special(
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pointer_type,
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ir::ArgumentPurpose::VMContext,
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));
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// Add the caller `vmctx` parameter.
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wrapper_sig.params.push(ir::AbiParam::new(pointer_type));
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// Add the `values_vec` parameter.
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wrapper_sig.params.push(ir::AbiParam::new(pointer_type));
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let mut context = Context::new();
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context.func = ir::Function::with_name_signature(ir::ExternalName::user(0, 0), wrapper_sig);
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context.func.collect_frame_layout_info();
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{
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let mut builder = FunctionBuilder::new(&mut context.func, fn_builder_ctx);
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let block0 = builder.create_block();
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builder.append_block_params_for_function_params(block0);
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builder.switch_to_block(block0);
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builder.seal_block(block0);
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let (vmctx_ptr_val, caller_vmctx_ptr_val, values_vec_ptr_val) = {
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let params = builder.func.dfg.block_params(block0);
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(params[0], params[1], params[2])
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};
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// Load the argument values out of `values_vec`.
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let mflags = ir::MemFlags::trusted();
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let callee_args = signature
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.params
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.iter()
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.enumerate()
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.map(|(i, r)| {
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match i {
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0 => vmctx_ptr_val,
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1 => caller_vmctx_ptr_val,
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_ =>
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// i - 2 because vmctx and caller vmctx aren't passed through `values_vec`.
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{
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builder.ins().load(
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r.value_type,
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mflags,
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values_vec_ptr_val,
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((i - 2) * value_size) as i32,
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)
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}
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}
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})
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.collect::<Vec<_>>();
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let new_sig = builder.import_signature(signature.clone());
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// TODO: It's possible to make this a direct call. We just need Cranelift
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// to support functions declared with an immediate integer address.
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// ExternalName::Absolute(u64). Let's do it.
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let callee_value = builder.ins().iconst(pointer_type, callee_address as i64);
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let call = builder
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.ins()
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.call_indirect(new_sig, callee_value, &callee_args);
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let results = builder.func.dfg.inst_results(call).to_vec();
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// Store the return values into `values_vec`.
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let mflags = ir::MemFlags::trusted();
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for (i, r) in results.iter().enumerate() {
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builder
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.ins()
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.store(mflags, *r, values_vec_ptr_val, (i * value_size) as i32);
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}
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builder.ins().return_(&[]);
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builder.finalize()
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}
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let mut code_buf = Vec::new();
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let mut reloc_sink = RelocSink {};
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let mut trap_sink = binemit::NullTrapSink {};
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let mut stackmap_sink = binemit::NullStackmapSink {};
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context
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.compile_and_emit(
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isa,
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&mut code_buf,
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&mut reloc_sink,
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&mut trap_sink,
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&mut stackmap_sink,
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)
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.map_err(|error| {
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SetupError::Compile(CompileError::Codegen(pretty_error(
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&context.func,
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Some(isa),
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error,
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)))
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})?;
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let unwind_info = CompiledFunctionUnwindInfo::new(isa, &context);
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Ok(code_memory
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.allocate_for_function(&CompiledFunction {
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body: code_buf,
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jt_offsets: context.func.jt_offsets,
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unwind_info,
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})
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.map_err(|message| SetupError::Instantiate(InstantiationError::Resource(message)))?
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.as_ptr())
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}
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fn allocate_functions(
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code_memory: &mut CodeMemory,
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compilation: &Compilation,
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) -> Result<PrimaryMap<DefinedFuncIndex, *mut [VMFunctionBody]>, String> {
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let fat_ptrs = code_memory.allocate_for_compilation(compilation)?;
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// Second, create a PrimaryMap from result vector of pointers.
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let mut result = PrimaryMap::with_capacity(compilation.len());
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for i in 0..fat_ptrs.len() {
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let fat_ptr: *mut [VMFunctionBody] = fat_ptrs[i];
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result.push(fat_ptr);
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}
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Ok(result)
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}
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fn register_traps(
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allocated_functions: &PrimaryMap<DefinedFuncIndex, *mut [VMFunctionBody]>,
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traps: &Traps,
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registry: &TrapRegistry,
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) -> TrapRegistration {
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let traps =
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allocated_functions
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.values()
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.zip(traps.values())
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.flat_map(|(func_addr, func_traps)| {
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func_traps.iter().map(move |trap_desc| {
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let func_addr = *func_addr as *const u8 as usize;
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let offset = usize::try_from(trap_desc.code_offset).unwrap();
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let trap_addr = func_addr + offset;
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(trap_addr, trap_desc.source_loc, trap_desc.trap_code)
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})
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});
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registry.register_traps(traps)
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}
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/// We don't expect trampoline compilation to produce any relocations, so
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/// this `RelocSink` just asserts that it doesn't recieve any.
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struct RelocSink {}
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impl binemit::RelocSink for RelocSink {
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fn reloc_block(
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&mut self,
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_offset: binemit::CodeOffset,
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_reloc: binemit::Reloc,
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_block_offset: binemit::CodeOffset,
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) {
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panic!("trampoline compilation should not produce block relocs");
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}
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fn reloc_external(
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&mut self,
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_offset: binemit::CodeOffset,
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_reloc: binemit::Reloc,
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_name: &ir::ExternalName,
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_addend: binemit::Addend,
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) {
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panic!("trampoline compilation should not produce external symbol relocs");
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}
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fn reloc_constant(
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&mut self,
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_code_offset: binemit::CodeOffset,
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_reloc: binemit::Reloc,
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_constant_offset: ir::ConstantOffset,
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) {
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panic!("trampoline compilation should not produce constant relocs");
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}
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fn reloc_jt(
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&mut self,
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_offset: binemit::CodeOffset,
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_reloc: binemit::Reloc,
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_jt: ir::JumpTable,
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) {
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panic!("trampoline compilation should not produce jump table relocs");
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}
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}
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