use crate::Result;
use crate::{module::Code, visit::process_operators_and_validate};
use alloc::{boxed::Box, format, string::ToString, vec::Vec};
use tinywasm_types::*;
use wasmparser::{FuncValidator, FuncValidatorAllocations, OperatorsReader, ValidatorResources};
pub(crate) fn convert_module_elements<'a, T: IntoIterator<Item = wasmparser::Result<wasmparser::Element<'a>>>>(
elements: T,
) -> Result<Vec<tinywasm_types::Element>> {
elements.into_iter().map(|element| convert_module_element(element?)).collect::<Result<Vec<_>>>()
}
pub(crate) fn convert_module_element(element: wasmparser::Element<'_>) -> Result<tinywasm_types::Element> {
let kind = match element.kind {
wasmparser::ElementKind::Active { table_index, offset_expr } => tinywasm_types::ElementKind::Active {
table: table_index.unwrap_or(0),
offset: process_const_operators(offset_expr.get_operators_reader())?,
},
wasmparser::ElementKind::Passive => tinywasm_types::ElementKind::Passive,
wasmparser::ElementKind::Declared => tinywasm_types::ElementKind::Declared,
};
match element.items {
wasmparser::ElementItems::Functions(funcs) => {
let items = funcs
.into_iter()
.map(|func| Ok(ElementItem::Func(func?)))
.collect::<Result<Vec<_>>>()?
.into_boxed_slice();
Ok(tinywasm_types::Element { kind, items, ty: ValType::RefFunc, range: element.range })
}
wasmparser::ElementItems::Expressions(ty, exprs) => {
let items = exprs
.into_iter()
.map(|expr| Ok(ElementItem::Expr(process_const_operators(expr?.get_operators_reader())?)))
.collect::<Result<Vec<_>>>()?
.into_boxed_slice();
Ok(tinywasm_types::Element { kind, items, ty: convert_reftype(&ty), range: element.range })
}
}
}
pub(crate) fn convert_module_data_sections<'a, T: IntoIterator<Item = wasmparser::Result<wasmparser::Data<'a>>>>(
data_sections: T,
) -> Result<Vec<tinywasm_types::Data>> {
data_sections.into_iter().map(|data| convert_module_data(data?)).collect::<Result<Vec<_>>>()
}
pub(crate) fn convert_module_data(data: wasmparser::Data<'_>) -> Result<tinywasm_types::Data> {
Ok(tinywasm_types::Data {
data: data.data.to_vec().into_boxed_slice(),
range: data.range,
kind: match data.kind {
wasmparser::DataKind::Active { memory_index, offset_expr } => {
let offset = process_const_operators(offset_expr.get_operators_reader())?;
tinywasm_types::DataKind::Active { mem: memory_index, offset }
}
wasmparser::DataKind::Passive => tinywasm_types::DataKind::Passive,
},
})
}
pub(crate) fn convert_module_imports<'a, T: IntoIterator<Item = wasmparser::Result<wasmparser::Import<'a>>>>(
imports: T,
) -> Result<Vec<Import>> {
imports.into_iter().map(|import| convert_module_import(import?)).collect::<Result<Vec<_>>>()
}
pub(crate) fn convert_module_import(import: wasmparser::Import<'_>) -> Result<Import> {
Ok(Import {
module: import.module.to_string().into_boxed_str(),
name: import.name.to_string().into_boxed_str(),
kind: match import.ty {
wasmparser::TypeRef::Func(ty) => ImportKind::Function(ty),
wasmparser::TypeRef::Table(ty) => ImportKind::Table(TableType {
element_type: convert_reftype(&ty.element_type),
size_initial: ty.initial.try_into().map_err(|_| {
crate::ParseError::UnsupportedOperator(format!("Table size initial is too large: {}", ty.initial))
})?,
size_max: match ty.maximum {
Some(max) => Some(max.try_into().map_err(|_| {
crate::ParseError::UnsupportedOperator(format!("Table size max is too large: {}", max))
})?),
None => None,
},
}),
wasmparser::TypeRef::Memory(ty) => ImportKind::Memory(convert_module_memory(ty)?),
wasmparser::TypeRef::Global(ty) => {
ImportKind::Global(GlobalType { mutable: ty.mutable, ty: convert_valtype(&ty.content_type) })
}
wasmparser::TypeRef::Tag(ty) => {
return Err(crate::ParseError::UnsupportedOperator(format!("Unsupported import kind: {:?}", ty)))
}
},
})
}
pub(crate) fn convert_module_memories<T: IntoIterator<Item = wasmparser::Result<wasmparser::MemoryType>>>(
memory_types: T,
) -> Result<Vec<MemoryType>> {
memory_types.into_iter().map(|memory| convert_module_memory(memory?)).collect::<Result<Vec<_>>>()
}
pub(crate) fn convert_module_memory(memory: wasmparser::MemoryType) -> Result<MemoryType> {
Ok(MemoryType {
arch: match memory.memory64 {
true => MemoryArch::I64,
false => MemoryArch::I32,
},
page_count_initial: memory.initial,
page_count_max: memory.maximum,
})
}
pub(crate) fn convert_module_tables<'a, T: IntoIterator<Item = wasmparser::Result<wasmparser::Table<'a>>>>(
table_types: T,
) -> Result<Vec<TableType>> {
table_types.into_iter().map(|table| convert_module_table(table?)).collect::<Result<Vec<_>>>()
}
pub(crate) fn convert_module_table(table: wasmparser::Table<'_>) -> Result<TableType> {
let size_initial = table.ty.initial.try_into().map_err(|_| {
crate::ParseError::UnsupportedOperator(format!("Table size initial is too large: {}", table.ty.initial))
})?;
let size_max = match table.ty.maximum {
Some(max) => Some(
max.try_into()
.map_err(|_| crate::ParseError::UnsupportedOperator(format!("Table size max is too large: {}", max)))?,
),
None => None,
};
Ok(TableType { element_type: convert_reftype(&table.ty.element_type), size_initial, size_max })
}
pub(crate) fn convert_module_globals(
globals: wasmparser::SectionLimited<'_, wasmparser::Global<'_>>,
) -> Result<Vec<Global>> {
let globals = globals
.into_iter()
.map(|global| {
let global = global?;
let ty = convert_valtype(&global.ty.content_type);
let ops = global.init_expr.get_operators_reader();
Ok(Global { init: process_const_operators(ops)?, ty: GlobalType { mutable: global.ty.mutable, ty } })
})
.collect::<Result<Vec<_>>>()?;
Ok(globals)
}
pub(crate) fn convert_module_export(export: wasmparser::Export<'_>) -> Result<Export> {
let kind = match export.kind {
wasmparser::ExternalKind::Func => ExternalKind::Func,
wasmparser::ExternalKind::Table => ExternalKind::Table,
wasmparser::ExternalKind::Memory => ExternalKind::Memory,
wasmparser::ExternalKind::Global => ExternalKind::Global,
wasmparser::ExternalKind::Tag => {
return Err(crate::ParseError::UnsupportedOperator(format!("Unsupported export kind: {:?}", export.kind)))
}
};
Ok(Export { index: export.index, name: Box::from(export.name), kind })
}
pub(crate) fn convert_module_code(
func: wasmparser::FunctionBody<'_>,
mut validator: FuncValidator<ValidatorResources>,
) -> Result<(Code, FuncValidatorAllocations)> {
let locals_reader = func.get_locals_reader()?;
let count = locals_reader.get_count();
let pos = locals_reader.original_position();
// maps a local's address to the index in the type's locals array
let mut local_addr_map = Vec::with_capacity(count as usize);
let mut local_counts = ValueCounts::default();
for (i, local) in locals_reader.into_iter().enumerate() {
let local = local?;
validator.define_locals(pos + i, local.0, local.1)?;
}
for i in 0..validator.len_locals() {
match validator.get_local_type(i) {
Some(wasmparser::ValType::I32) | Some(wasmparser::ValType::F32) => {
local_addr_map.push(local_counts.c32);
local_counts.c32 += 1;
}
Some(wasmparser::ValType::I64) | Some(wasmparser::ValType::F64) => {
local_addr_map.push(local_counts.c64);
local_counts.c64 += 1;
}
Some(wasmparser::ValType::V128) => {
local_addr_map.push(local_counts.c128);
local_counts.c128 += 1;
}
Some(wasmparser::ValType::Ref(_)) => {
local_addr_map.push(local_counts.cref);
local_counts.cref += 1;
}
None => return Err(crate::ParseError::UnsupportedOperator("Unknown local type".to_string())),
}
}
let (body, allocations) = process_operators_and_validate(validator, func, local_addr_map)?;
Ok(((body, local_counts), allocations))
}
pub(crate) fn convert_module_type(ty: wasmparser::RecGroup) -> Result<FuncType> {
let mut types = ty.types();
if types.len() != 1 {
return Err(crate::ParseError::UnsupportedOperator(
"Expected exactly one type in the type section".to_string(),
));
}
let ty = types.next().unwrap().unwrap_func();
let params = ty.params().iter().map(convert_valtype).collect::<Vec<ValType>>().into_boxed_slice();
let results = ty.results().iter().map(convert_valtype).collect::<Vec<ValType>>().into_boxed_slice();
Ok(FuncType { params, results })
}
pub(crate) fn convert_reftype(reftype: &wasmparser::RefType) -> ValType {
match reftype {
_ if reftype.is_func_ref() => ValType::RefFunc,
_ if reftype.is_extern_ref() => ValType::RefExtern,
_ => unimplemented!("Unsupported reference type: {:?}, {:?}", reftype, reftype.heap_type()),
}
}
pub(crate) fn convert_valtype(valtype: &wasmparser::ValType) -> ValType {
match valtype {
wasmparser::ValType::I32 => ValType::I32,
wasmparser::ValType::I64 => ValType::I64,
wasmparser::ValType::F32 => ValType::F32,
wasmparser::ValType::F64 => ValType::F64,
wasmparser::ValType::V128 => ValType::V128,
wasmparser::ValType::Ref(r) => convert_reftype(r),
}
}
pub(crate) fn process_const_operators(ops: OperatorsReader<'_>) -> Result<ConstInstruction> {
let ops = ops.into_iter().collect::<wasmparser::Result<Vec<_>>>()?;
// In practice, the len can never be something other than 2,
// but we'll keep this here since it's part of the spec
// Invalid modules will be rejected by the validator anyway (there are also tests for this in the testsuite)
assert!(ops.len() >= 2);
assert!(matches!(ops[ops.len() - 1], wasmparser::Operator::End));
match &ops[ops.len() - 2] {
wasmparser::Operator::RefNull { hty } => Ok(ConstInstruction::RefNull(convert_heaptype(*hty))),
wasmparser::Operator::RefFunc { function_index } => Ok(ConstInstruction::RefFunc(*function_index)),
wasmparser::Operator::I32Const { value } => Ok(ConstInstruction::I32Const(*value)),
wasmparser::Operator::I64Const { value } => Ok(ConstInstruction::I64Const(*value)),
wasmparser::Operator::F32Const { value } => Ok(ConstInstruction::F32Const(f32::from_bits(value.bits()))),
wasmparser::Operator::F64Const { value } => Ok(ConstInstruction::F64Const(f64::from_bits(value.bits()))),
wasmparser::Operator::GlobalGet { global_index } => Ok(ConstInstruction::GlobalGet(*global_index)),
op => Err(crate::ParseError::UnsupportedOperator(format!("Unsupported const instruction: {:?}", op))),
}
}
pub(crate) fn convert_heaptype(heap: wasmparser::HeapType) -> ValType {
match heap {
wasmparser::HeapType::Abstract { shared: false, ty: wasmparser::AbstractHeapType::Func } => ValType::RefFunc,
wasmparser::HeapType::Abstract { shared: false, ty: wasmparser::AbstractHeapType::Extern } => {
ValType::RefExtern
}
_ => unimplemented!("Unsupported heap type: {:?}", heap),
}
}
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