# emit_expr.ludic — lower an expression to IR, returning its register and type. fn emit_load_at(addr: ptr, ty: ptr) -> Val { let r = emit_bind(("load " + (llty(ty) + (", ptr " + addr)))) return val(r, ty) } # short-circuit `and`/`or`: seed a slot with (left!=0), branch to decide whether # to overwrite with (right!=0). fn emit_logic(e: Node) -> Val { let slot = emit_alloca("i32") let la = emit_expr(e.a) let lc = emit_bind(("icmp ne i32 " + (la.code + ", 0"))) let lz = emit_bind(("zext i1 " + (lc + " to i32"))) emit(" store i32 "); emit(lz); emit(", ptr "); emit(slot); emit("\n") let ev = lbl("sc"); let done = lbl("scend") if (e.s == "and") { emit(" br i1 "); emit(lc); emit(", label %"); emit(ev); emit(", label %"); emit(done); emit("\n") } else { emit(" br i1 "); emit(lc); emit(", label %"); emit(done); emit(", label %"); emit(ev); emit("\n") } emit(ev); emit(":\n") let rb = emit_expr(e.b) let rc = emit_bind(("icmp ne i32 " + (rb.code + ", 0"))) let rz = emit_bind(("zext i1 " + (rc + " to i32"))) emit(" store i32 "); emit(rz); emit(", ptr "); emit(slot); emit("\n") emit(" br label %"); emit(done); emit("\n") emit(done); emit(":\n") return val(emit_bind(("load i32, ptr " + slot)), "bool") } fn cmp_code(op: ptr) -> ptr { if (op == ("<")) { return "slt" } if (op == ("<=")) { return "sle" } if (op == (">")) { return "sgt" } if (op == (">=")) { return "sge" } if (op == ("==")) { return "eq" } return "ne" } fn is_cmp(op: ptr) -> bool { return (op == ("<")) or (op == ("<=")) or (op == (">")) or (op == (">=")) or (op == ("==")) or (op == ("!=")) } fn arith_code(op: ptr) -> ptr { if (op == ("+")) { return "add" } if (op == ("-")) { return "sub" } if (op == ("*")) { return "mul" } if (op == ("/")) { return "sdiv" } if (op == ("&")) { return "and" } if (op == ("|")) { return "or" } if (op == ("^")) { return "xor" } if (op == ("<<")) { return "shl" } if (op == (">>")) { return "lshr" } # logical shift (unsigned) return "srem" } # widen an int value to Q16.16 by shifting left 16 (a fixed value passes through) fn to_fixed(v: Val) -> ptr { if (v.ty == "fixed") { return v.code } return emit_bind(("shl i32 " + (v.code + ", 16"))) } # string operators: `a + b` concatenates, `a == b` / `a != b` compare by content. # Both call the @fn_str_* prelude (emitted once per program that uses them). fn emit_str_op(op: ptr, a: Val, b: Val) -> Val { g_uses_str = true if (op == ("+")) { return val(emit_bind(("call ptr @fn_str_concat(ptr " + (a.code + (", ptr " + (b.code + ")"))))), "str") } let r = emit_bind(("call i32 @fn_str_eq(ptr " + (a.code + (", ptr " + (b.code + ")"))))) if (op == ("!=")) { let c = emit_bind(("icmp eq i32 " + (r + ", 0"))) return val(emit_bind(("zext i1 " + (c + " to i32"))), "bool") } return val(r, "bool") } fn emit_bin(e: Node) -> Val { if (e.s == "and") or (e.s == "or") { return emit_logic(e) } let a = emit_expr(e.a) let b = emit_expr(e.b) # strings are pointer-typed, so any `+` with a pointer operand is concatenation, # and `==`/`!=` between pointers is content comparison — except `x == null`, # which is a pointer-identity test and falls through to the icmp below. let ptrish = (llty(a.ty) == "ptr") or (llty(b.ty) == "ptr") let isnull = e.a.kind == E_NULL or e.b.kind == E_NULL if ptrish { if (e.s == ("+")) { return emit_str_op("+", a, b) } if ((e.s == ("==")) or (e.s == ("!="))) and not isnull { return emit_str_op(e.s, a, b) } } let fx = (a.ty == "fixed") or (b.ty == "fixed") if is_cmp(e.s) { var ac = a.code; var bc = b.code var ct = "i32" if fx { ac = to_fixed(a); bc = to_fixed(b) } else { if (llty(a.ty) == "ptr") or (llty(b.ty) == "ptr") { ct = "ptr" } } # `p == null`, str/record identity let c = emit_bind(("icmp " + (cmp_code(e.s) + ((" " + (ct + " ")) + (ac + (", " + bc)))))) return val(emit_bind(("zext i1 " + (c + " to i32"))), "bool") } if fx { let af = to_fixed(a); let bf = to_fixed(b) if (e.s == ("*")) { let a64 = emit_bind(("sext i32 " + (af + " to i64"))) let b64 = emit_bind(("sext i32 " + (bf + " to i64"))) let m = emit_bind(("mul i64 " + (a64 + (", " + b64)))) let sh = emit_bind(("ashr i64 " + (m + ", 16"))) return val(emit_bind(("trunc i64 " + (sh + " to i32"))), "fixed") } if (e.s == ("/")) { let a64 = emit_bind(("sext i32 " + (af + " to i64"))) let ash = emit_bind(("shl i64 " + (a64 + ", 16"))) let b64 = emit_bind(("sext i32 " + (bf + " to i64"))) let dv = emit_bind(("sdiv i64 " + (ash + (", " + b64)))) return val(emit_bind(("trunc i64 " + (dv + " to i32"))), "fixed") } let r = emit_bind((arith_code(e.s) + (" i32 " + (af + (", " + bf))))) return val(r, "fixed") } let r = emit_bind((arith_code(e.s) + (" i32 " + (a.code + (", " + b.code))))) return val(r, "int") } fn emit_call(e: Node) -> Val { let name = e.a.s if (name == "self") { if nself == 0 { return val("0", "entity") }; return val(emit_bind(("load i32, ptr " + self_stk[nself - 1])), "entity") } if (name == "key") { return val(emit_bind("load i32, ptr @L_key"), "int") } if (name == "save") { emit(" call void @L_save()\n"); return val("0", "void") } if (name == "ui_build") { emit(" call void @ui_build()\n"); return val("0", "void") } if (name == "load") { return val(emit_bind("call i32 @L_load()"), "bool") } if (name == "quit") { emit(" store i32 0, ptr @L_running\n"); return val("0", "void") } if (name == "len") { return emit_len(e) } if (name == "push") { return emit_push(e) } if (name == "str") { # str(x): int/bool/fixed -> text, a string passes through let a = emit_expr(e.kids[0]) if (llty(a.ty) == "ptr") { return a } g_uses_intstr = true return val(emit_bind(("call ptr @fn_int_str(i32 " + (a.code + ")"))), "str") } if (name == "fx") { let a = emit_expr(e.kids[0]); return val(emit_bind(("shl i32 " + (a.code + ", 16"))), "fixed") } if (name == "flr") { let a = emit_expr(e.kids[0]); return val(emit_bind(("ashr i32 " + (a.code + ", 16"))), "int") } if is_intrinsic(name) { return emit_intrinsic(name, e) } if is_intrinsic2(name) { return emit_intrinsic2(name, e) } if is_math_builtin(name) { return emit_math_builtin(name, e) } var fn2 = find_fn(name) var cname = name if (fn2 == null) { # a builtin like clear()/reg() is satisfied by its rt_ function let rtname = ("rt_" + name) fn2 = find_fn(rtname) if (fn2 == null) { perr(("unknown function " + name)) } cname = rtname } # evaluate args first (their IR is emitted before the call instruction) let args = new []ptr let atys = new []ptr var i = 0 while i < len(e.kids) { let v = emit_expr(e.kids[i]); push(args, v.code); push(atys, v.ty); i = i + 1 } let rl = llty(fn2.ty) emit(" ") var rreg = "0" if not (rl == "void") { rreg = nreg(); emit(rreg); emit(" = ") } emit("call "); emit(rl); emit(" @fn_"); emit(cname); emit("(") i = 0 while i < len(args) { if i > 0 { emit(", ") } emit(llty(atys[i])); emit(" "); emit(args[i]) i = i + 1 } emit(")\n") return val(rreg, fn2.ty) } fn emit_expr(e: Node) -> Val { if (e == null) { return val("0", "int") } if e.kind == E_INT { return val(itoa(e.ival), "int") } if e.kind == E_FLOAT { return val(itoa(e.ival), "fixed") } if e.kind == E_BOOL { return val(itoa(e.ival), "bool") } if e.kind == E_NULL { return val("null", "ptr") } if e.kind == E_STR { return val(emit_str_const(e.s), "str") } if e.kind == E_NEW { if is_slice_ty(e.s) { return emit_new_slice(e.s) } return emit_new_struct(e.s) } if e.kind == E_ID { let li = loc_find(e.s) if li >= 0 { return emit_load_at(loc_reg[li], loc_ty[li]) } let g = find_global(e.s) if (g != null) { if g.kind == N_CONST { return val(itoa(g.a.ival), "int") } let r = emit_bind(("load " + (llty(g.ty) + (", ptr @g_" + e.s)))) return val(r, g.ty) } # a UI_ that is not a const/var resolves to its widget index if is_ui_ident(e.s) { return val(itoa(ui_index_of(e.s)), "int") } perr(("unknown identifier " + e.s)) } if e.kind == E_MEMBER { if e.a.kind == E_ID { # `Enum.Variant` -> its ordinal, a compile-time int let ord = enum_ordinal(e.a.s, e.s) if ord >= 0 { return val(itoa(ord), "int") } } let bt = static_type(e.a) # `x.field` where field is @Computed -> inline it if (bt != null) { let cx = computed_expr(bt, e.s) if (cx != null) { return emit_expr(qualify_fields(cx, e.a)) } } let a = emit_member_addr(e); return emit_load_at(a, g_addr_ty) } if e.kind == E_INDEX { let a = emit_index_addr(e); return emit_load_at(a, g_addr_ty) } if e.kind == E_CALL { return emit_call(e) } if e.kind == E_BIN { return emit_bin(e) } if e.kind == E_UN { let a = emit_expr(e.a) if (e.s == ("-")) { return val(emit_bind(("sub i32 0, " + a.code)), "int") } if (e.s == "~") { return val(emit_bind(("xor i32 " + (a.code + (", -1")))), "int") } let c = emit_bind(("icmp eq i32 " + (a.code + ", 0"))) return val(emit_bind(("zext i1 " + (c + " to i32"))), "bool") } perr("cannot emit expression") return val("0", "int") }