//! Pure type-synthesis and IR-shaping helpers. //! //! Free functions extracted from `lib.rs` during the 18g tidy split. //! None of these touch the `Emitter` state — they map AILang `Type`s //! to LLVM type strings, mangling descriptors, or built-in op //! signatures. Submodule access to the parent module's private //! `Result`, `CodegenError`, and `FnSig` works through normal Rust //! visibility (a submodule sees its parent's private items). use ailang_core::ast::*; use super::{CodegenError, FnSig, Result}; pub(crate) fn llvm_type(t: &Type) -> Result { match t { Type::Con { name, .. } => match name.as_str() { "Int" => Ok("i64".into()), "Bool" => Ok("i1".into()), "Unit" => Ok("i8".into()), "Str" => Ok("ptr".into()), "Float" => Ok("double".into()), // All other type names are treated as ADT (boxed). // If the typechecker didn't reject this earlier, it's // intentional — otherwise `ptr` would mask a wrong value. _ => Ok("ptr".into()), }, // Function values (Iter 7): all fn-pointers are opaque `ptr` // at the LLVM level. The actual signature travels via the // emitter's `ssa_fn_sigs` sidetable. Type::Fn { .. } => Ok("ptr".into()), // an unresolved rigid `Type::Var` reaching codegen is // a substitution bug. Earlier this silently lowered as `ptr` // (via the ADT fallback) and produced garbage IR; failing loudly // here surfaces the bug in the test suite. Type::Var { name } => Err(CodegenError::UnsupportedType(format!( "unresolved type var `{name}` in codegen" ))), other => Err(CodegenError::UnsupportedType( ailang_core::pretty::type_to_string(other), )), } } /// Builds an `FnSig` (LLVM types only) from an AILang `Type::Fn`. /// Returns `None` for non-function types or if any param/ret type fails /// to lower (e.g. a residual `Type::Var` or `Forall` that the typechecker /// would reject before us). pub(crate) fn fn_sig_from_type(t: &Type) -> Option { if let Type::Fn { params, ret, .. } = t { let p: Result> = params.iter().map(llvm_type).collect(); let r = llvm_type(ret); if let (Ok(p), Ok(r)) = (p, r) { return Some(FnSig { params: p, ret: r }); } } None } // mir.1b: `builtin_ail_type` (the codegen-side mirror of a builtin's // AILang type) and `builtin_effect_op_ret` were read only by the // codegen-side type re-derivation deleted in this iteration. Codegen // now reads `MTerm::ty()` off the typed MIR, so the mirror table is // gone — both definitions removed. // iter 23.4: `type_descriptor` was the helper that mangled a `Type` // into an identifier-safe suffix for the codegen-side mono mangling // (`Int → I`, `Bool → B`, etc.). The unified mono pass produces // surface-named mono symbols instead (`Int → "Int"`, parameterised // via 8-hex hash) — see `ailang_check::mono::mono_symbol_n`. /// Floats iter 4.2: arithmetic / comparison ops are type-dispatched /// over `{Int, Float}`. Caller (`lower_app`) reads the arg type off /// `MTerm::ty()` and passes it here. Returns the /// `(instruction, operand_llvm_type, result_llvm_type)` triple to /// emit. `%` stays Int-only. /// /// The triple carries operand and result types separately because /// comparison ops produce `i1` regardless of operand width /// (e.g. `icmp slt i64 ..., ... -> i1`); arithmetic produces the /// same type as its operands. Keeping both in the table localises /// the comparison-vs-arithmetic distinction here — the caller no /// longer has to second-guess which arm fired. /// /// Comparison-op Int arms are kept here in iter 4.2 to preserve /// `builtin_binop_typed` is now arithmetic-only. Comparators /// (`==` / `!=` / `<` / `<=` / `>` / `>=`) were removed in iter /// operator-routing-eq-ord.1 — surface comparison routes through /// the prelude.Eq / Ord class-method dispatch, with primitive /// instance bodies emitted via `try_emit_primitive_instance_body` /// in lib.rs (Eq Int / Bool / Str / Unit → `icmp`; Ord Int / Bool /// / Str → `icmp` + Ordering ctor; float_eq / float_ne / float_lt /// / float_le / float_gt / float_ge → `fcmp`). pub(crate) fn builtin_binop_typed( name: &str, arg_ty: &Type, ) -> Option<(&'static str, &'static str, &'static str)> { let is_int = matches!(arg_ty, Type::Con { name, .. } if name == "Int"); let is_float = matches!(arg_ty, Type::Con { name, .. } if name == "Float"); match (name, is_int, is_float) { ("+", true, _) => Some(("add", "i64", "i64")), ("+", _, true) => Some(("fadd", "double", "double")), ("-", true, _) => Some(("sub", "i64", "i64")), ("-", _, true) => Some(("fsub", "double", "double")), ("*", true, _) => Some(("mul", "i64", "i64")), ("*", _, true) => Some(("fmul", "double", "double")), ("/", true, _) => Some(("sdiv", "i64", "i64")), ("/", _, true) => Some(("fdiv", "double", "double")), ("%", true, _) => Some(("srem", "i64", "i64")), _ => None, } } pub(crate) fn c_byte_len(s: &str) -> usize { s.len() + 1 // + NUL terminator } /// Escapes a string for LLVM IR `c"..."`. All bytes outside /// 0x20..0x7E are escaped as `\HH`; `"` and `\` likewise. Ends with `\00`. pub(crate) fn default_triple() -> &'static str { // In the MVP we query the compile host. For cross-compilation this // would need to be configurable — not needed now. if cfg!(target_os = "linux") && cfg!(target_arch = "x86_64") { "x86_64-pc-linux-gnu" } else if cfg!(target_os = "macos") && cfg!(target_arch = "aarch64") { "arm64-apple-darwin" } else if cfg!(target_os = "macos") && cfg!(target_arch = "x86_64") { "x86_64-apple-darwin" } else if cfg!(target_arch = "aarch64") { "aarch64-unknown-linux-gnu" } else { "x86_64-pc-linux-gnu" } } pub(crate) fn ll_string_literal(s: &str) -> String { let mut out = String::new(); for &b in s.as_bytes() { match b { b'"' => out.push_str("\\22"), b'\\' => out.push_str("\\5C"), 0x20..=0x7E => out.push(b as char), _ => out.push_str(&format!("\\{:02X}", b)), } } out.push_str("\\00"); out }