356 lines
8.4 KiB
Odin
356 lines
8.4 KiB
Odin
package lower
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import "../hir"
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import "../ir"
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import "../types"
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import "core:fmt"
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import "core:mem"
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State :: struct {
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hir_module: ^hir.Module,
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instructions: [dynamic]ir.Instruction,
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local_values: []int,
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local_slots: []int,
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allocator: mem.Allocator,
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}
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append_instruction :: proc(state: ^State, instruction: ir.Instruction) -> int {
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id := len(state.instructions)
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append(&state.instructions, instruction)
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return id
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}
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clone_args :: proc(values: []int, allocator: mem.Allocator) -> []int {
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result := make([]int, len(values), allocator)
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copy(result, values)
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return result
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}
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sentinel :: proc(value_type: types.Type) -> i64 {
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switch value_type.bits {
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case 8: return -86
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case 16: return -21846
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case 32: return -1431655766
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case: return -6148914691236517206
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}
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}
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lower_expr :: proc(state: ^State, expr_id: int) -> int {
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if expr_id < 0 || expr_id >= len(state.hir_module.exprs) {
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trap := append_instruction(state, ir.Instruction{
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op=.Trap,
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type=types.VOID,
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target=-1,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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_ = trap
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return append_instruction(state, ir.Instruction{
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op=.Const,
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type=types.I64,
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integer=sentinel(types.I64),
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target=-1,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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}
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expr := state.hir_module.exprs[expr_id]
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switch expr.kind {
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case .Invalid:
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append_instruction(state, ir.Instruction{
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op=.Trap,
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span=expr.span,
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type=types.VOID,
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target=-1,
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a=-1,
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b=-1,
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diagnostic=expr.diagnostic,
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})
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fallback := expr.type
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if !types.is_concrete_integer(fallback) {
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fallback = types.I64
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}
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return append_instruction(state, ir.Instruction{
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op=.Const,
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span=expr.span,
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type=fallback,
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integer=sentinel(fallback),
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target=-1,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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case .Integer:
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return append_instruction(state, ir.Instruction{
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op=.Const,
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span=expr.span,
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type=expr.type,
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integer=expr.integer,
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target=-1,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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case .Local:
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if expr.target >= 0 && expr.target < len(state.local_slots) && state.local_slots[expr.target] >= 0 {
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return append_instruction(state, ir.Instruction{
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op=.Load,
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span=expr.span,
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type=expr.type,
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target=-1,
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a=state.local_slots[expr.target],
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b=-1,
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diagnostic=-1,
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})
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}
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if expr.target >= 0 && expr.target < len(state.local_values) {
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return state.local_values[expr.target]
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}
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case .Global:
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return append_instruction(state, ir.Instruction{
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op=.Load_Global,
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span=expr.span,
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type=expr.type,
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target=expr.target,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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case .Widen:
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value := lower_expr(state, expr.left)
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return append_instruction(state, ir.Instruction{
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op=.Widen,
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span=expr.span,
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type=expr.type,
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target=-1,
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a=value,
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b=-1,
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diagnostic=-1,
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})
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case .Add:
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left := lower_expr(state, expr.left)
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right := lower_expr(state, expr.right)
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return append_instruction(state, ir.Instruction{
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op=.Add_Checked,
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span=expr.span,
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type=expr.type,
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target=-1,
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a=left,
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b=right,
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diagnostic=-1,
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})
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case .Call:
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args := make([]int, len(expr.args), state.allocator)
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for arg, index in expr.args {
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args[index] = lower_expr(state, arg)
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}
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return append_instruction(state, ir.Instruction{
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op=.Call,
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span=expr.span,
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type=expr.type,
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target=expr.target,
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a=-1,
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b=-1,
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args=args,
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diagnostic=-1,
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})
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}
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append_instruction(state, ir.Instruction{
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op=.Trap,
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span=expr.span,
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type=types.VOID,
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target=-1,
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a=-1,
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b=-1,
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diagnostic=expr.diagnostic,
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})
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return append_instruction(state, ir.Instruction{
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op=.Const,
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span=expr.span,
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type=types.I64,
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integer=sentinel(types.I64),
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target=-1,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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}
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lower_body :: proc(hir_module: ^hir.Module, function: hir.Function, allocator: mem.Allocator) -> []ir.Instruction {
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state := State{
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hir_module=hir_module,
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allocator=allocator,
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local_values=make([]int, len(function.locals), allocator),
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local_slots=make([]int, len(function.locals), allocator),
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}
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state.instructions.allocator = allocator
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defer {
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delete(state.local_values, allocator)
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delete(state.local_slots, allocator)
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}
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for _, index in state.local_values {
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state.local_values[index] = -1
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state.local_slots[index] = -1
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}
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for local_id in function.params {
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param := append_instruction(&state, ir.Instruction{
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op=.Param,
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type=function.locals[local_id].type,
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target=local_id,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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state.local_values[local_id] = param
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}
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for statement_id in function.body {
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statement := hir_module.statements[statement_id]
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switch statement.kind {
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case .Declaration:
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value := lower_expr(&state, statement.expr)
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local := function.locals[statement.local]
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if local.mutable {
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slot := append_instruction(&state, ir.Instruction{
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op=.Alloca,
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span=statement.span,
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type=local.type,
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target=statement.local,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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state.local_slots[statement.local] = slot
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append_instruction(&state, ir.Instruction{
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op=.Store,
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span=statement.span,
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type=local.type,
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target=-1,
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a=slot,
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b=value,
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diagnostic=-1,
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})
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} else {
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state.local_values[statement.local] = value
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}
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case .Assignment:
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value := lower_expr(&state, statement.expr)
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slot := -1
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if statement.local >= 0 && statement.local < len(state.local_slots) {
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slot = state.local_slots[statement.local]
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}
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append_instruction(&state, ir.Instruction{
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op=.Store,
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span=statement.span,
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type=function.locals[statement.local].type,
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target=-1,
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a=slot,
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b=value,
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diagnostic=-1,
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})
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case .Return:
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if statement.expr < 0 {
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append_instruction(&state, ir.Instruction{
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op=.Return_Void,
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span=statement.span,
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type=types.VOID,
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target=-1,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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} else {
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value := lower_expr(&state, statement.expr)
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append_instruction(&state, ir.Instruction{
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op=.Return,
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span=statement.span,
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type=function.result,
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target=-1,
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a=value,
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b=-1,
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diagnostic=-1,
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})
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}
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case .Expression, .Sink:
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_ = lower_expr(&state, statement.expr)
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case .Trap:
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append_instruction(&state, ir.Instruction{
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op=.Trap,
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span=statement.span,
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type=types.VOID,
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target=-1,
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a=-1,
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b=-1,
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diagnostic=statement.diagnostic,
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})
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}
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}
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if len(state.instructions) == 0 ||
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(state.instructions[len(state.instructions)-1].op != .Return &&
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state.instructions[len(state.instructions)-1].op != .Return_Void) {
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if function.result.kind == .Void {
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append_instruction(&state, ir.Instruction{op=.Return_Void, type=types.VOID, target=-1, a=-1, b=-1, diagnostic=-1})
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} else {
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value := append_instruction(&state, ir.Instruction{
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op=.Const,
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type=function.result,
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integer=sentinel(function.result),
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target=-1,
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a=-1,
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b=-1,
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diagnostic=-1,
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})
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append_instruction(&state, ir.Instruction{op=.Return, type=function.result, target=-1, a=value, b=-1, diagnostic=-1})
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}
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}
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return state.instructions[:]
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}
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lower_global_initializer :: proc(hir_module: ^hir.Module, global: hir.Global, allocator: mem.Allocator) -> []ir.Instruction {
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state := State{hir_module=hir_module, allocator=allocator}
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state.instructions.allocator = allocator
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value := lower_expr(&state, global.expr)
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append_instruction(&state, ir.Instruction{
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op=.Return,
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type=global.type,
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target=-1,
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a=value,
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b=-1,
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diagnostic=-1,
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})
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return state.instructions[:]
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}
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lower :: proc(hir_module: ^hir.Module, allocator := context.allocator) -> ir.Module {
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module := ir.init_module(allocator)
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for global in hir_module.globals {
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append(&module.globals, ir.Global{
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name=global.name,
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type=global.type,
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is_static=global.is_static,
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static_value=global.static_value,
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initializer=nil if global.is_static else lower_global_initializer(hir_module, global, allocator),
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problematic=global.problematic,
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diagnostic=global.diagnostic,
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})
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}
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for function in hir_module.functions {
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param_types := make([]types.Type, len(function.params), allocator)
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for local_id, index in function.params {
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param_types[index] = function.locals[local_id].type
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}
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append(&module.functions, ir.Function{
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link_name=fmt.aprintf("%s", function.link_name, allocator=allocator),
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c_abi=function.c_abi,
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is_main=function.is_main,
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param_types=param_types,
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result=function.result,
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instructions=lower_body(hir_module, function, allocator),
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problematic=function.problematic,
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})
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}
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return module
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}
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