# "quick" / "easy" fixes - for global initialization cycles, report also starting and ending lines # milestones 1. interop type foundation (implemented) - unsigned integers, floats, and target-dependent c scalar types - atomic `c_*` primitive types remain distinct until target-aware lowering - `c_func` and pointer-only `c_struct`; `c` remains an ordinary identifier - keep binding mutability (`::` / `=`) separate from element or pointee mutability (`mut`) - arrays and indexing - `[N]T`: array with `N` logical elements - `[N;S]T`: array with `N` logical elements followed by sentinel `S` - pointers - `@T` / `@mut T`: non-null single-item pointer without arithmetic - `*T` / `*mut T`: non-null many-item pointer with arithmetic - optional pointers represent nullable pointers (i.e. `?@T` / `?@mut T`, `?*T` / `?*mut T`) - slices and slicing - `[]T`: pointer and length - `[;S]T`: pointer and length with a sentinel invariant - ordinary slices do not guarantee null termination - string literals as immutable sentinel slices backed by static arrays (superseded by milestone 3.5) - character literals - optionals with trapping unwrap and fallback operations - native structs with compiler-controlled layout - pointer-only `c_struct` support with target c layout - `Some :: c_struct { ... }`: defined c-layout struct - `Some :: c_struct`: opaque c-layout struct - passing c structs by value was deferred until milestone 4.1 2. restricted c header imports (implemented) - treat an imported header as a synthetic, file-local package namespace - `native :: import "relative/path/to/header.h"` - import functions, typedefs, scalar types, and pointers to opaque records - keep implementation linking separate from header imports - cache imports by canonical header path and target/include/define configuration - diagnose unsupported declarations when referenced - dynamically load libclang behind a replaceable c importer boundary 3. c variadic calls (implemented) - represent c variadics as a fixed parameter count plus a variadic flag - apply c default argument promotions at call sites - emit LLVM c-variadic declarations and calls - keep native brolang variadics and tuple design separate 3.5. sentinel pointers and c strings (implemented) - add sentinel many-item pointers: `[*;S]T` - represent string literals as immutable pointers to statically stored sentinel arrays: `@[N;0]u8` - arrays expose `.len` but no `.ptr`; slices and pointers-to-arrays expose sentinel-preserving `.ptr` - allow pointer-to-array `.len`, indexing, slicing, pointer decay, and slice construction without explicit dereference - preserve or forget sentinel information through compatible pointer and slice coercions without copying arrays - allow zero-terminated immutable byte pointer views to convert to immutable `*c_char` and `[*;0]c_char` - keep `u8` and `c_char` distinct to preserve target-dependent scalar c semantics - reject general `u8`/`c_char` interchange, slice-to-pointer coercion, and conversion to mutable c character pointers 4. advanced c interop - by-value records and unions (implemented) - complete plain imported structs/unions and manual `c_struct` values - fixed C arrays inside imported records - keyed struct literals and exactly-one-field union literals - field reads/writes, storage, and fixed-signature calls/returns - aarch64-macos small aggregate, homogeneous float aggregate, and indirect ABI lowering - keep incomplete, bitfield, packed, flexible-array, qualified-field, and otherwise non-plain records pointer-only - keep C variadic record arguments unsupported - function pointers and callbacks (implemented) - imported C function pointer typedefs lower to nullable pointer types - manual `?*c_func(...) T` callback type spelling - concrete `c_func` declarations/definitions can be passed as callback values - postfix calls through non-null function pointers, including `callback?(...)` - fixed and C-variadic callback ABI emission through LLVM indirect calls - external variables (implemented) - imported external C object variables lower to direct LLVM external global references - top-level `const` object variables are read-only from brolang - mutable external scalars/records can be assigned through qualified package globals - unsupported variable types remain lazy diagnostics when referenced - object-like macro constants (implemented) - scalar integer/float literal macros import as immutable globals - `CLITERAL(Type){ ... }` / `(Type){ ... }` record literal macros import as immutable globals - function-like macros and non-literal macro expressions remain unsupported - static inline functions (implemented) 5. control flow (implemented) - boolean expressions (implemented) - `bool` type with `true` / `false` literals - comparison operators: `==`, `!=`, `<`, `<=`, `>`, `>=` (numeric operands widen; `bool` supports only `==` / `!=`) - operators: `and`, `or`, `!` - lazy evaluation / short-circuit evaluation - if statements (implemented). example: `if condition { ... } else if { ... } else { ... }` - conditions must be `bool`; block-scoped locals with shadowing across blocks - lowered through new `Label` / `Br` / `Cond_Br` IR opcodes (alloca-backed locals, no phi nodes) - conditional unwrapping for optionals (`?T`) (implemented): `if val |v| { ... } else { ... }` - unwrap `val` into `v` if it is not `none` - single immutable binding scoped to the then-block; `v` not visible in `else` or after the `if` - `|` lexes as a new `Pipe` token; the `.If` reuses AST `name` / HIR `local` to carry the binding (no new statement kind) - new `Optional_Is_Some` / `Optional_Value` IR opcodes (the `Unwrap` presence-test + extract, minus the trap) - conditional unwrapping with guard clause (implemented): `if val |v : v >= 10| { ... } else { ... }` - enter the then-block when `val` is not `none` and the guard is true - multi-unwrap (implemented; see section below) - while loops (implemented; operates on boolean conditions). examples: - `while condition { ... }` - iterate while the condition is true - `while condition : i = i + 1 { ... }` - execute the update after each completed iteration - the condition and update may be parenthesized independently for visual clarity - update targets must already be declared and mutable; loops do not introduce implicit induction variables - update clauses support ordinary and compound assignment - ranges (implemented; see section below) - for loops (implemented; operates on ranges, arrays, slices, and pointers-to-arrays). examples: - `for items |item| { ... }` - capture just the `item` value in the array/slice (uses copy semantics, i.e. gets a `T`) - `for (&items) |@item| { ... }` - capture a pointer to each array element; its `@T` / `@mut T` mutability follows the iterable - `for items_slice |@item| { ... }` - slices already refer to backing storage and support pointer capture directly - `for items |item, idx| { ... }` - capture `item` and its index index in the array/slice - `for 0..10 |i| { ... }` - iterate over the range `0..10` (exclusive) - `for 0..=10 |i| { ... }` - iterate over the range `0..10` (inclusive) - `for 0..(len) |i| { ... }` or equivalently `for 0..=(len - 1) |i| { ... }` - calculating range bounds, expressions must be parenthesized - for all conditionals/guards, parentheses are optional but allowed for visual clarity 6. compound assignment: `+=`, `-=`, `*=`, `/=` (implemented) - added the binary arithmetic operators `-`, `*`, `/` (previously only `+` existed); `*`/`/` bind tighter than `+`/`-`, and prefix `-` (negation) is unchanged - compound assignments preserve the target, operator, and right-hand side explicitly through parsing and checking; lowering computes the target address once, then loads, applies the operation, and stores through that address - side-effecting index, field-base, and dereference expressions are evaluated once in left-to-right order - integer arithmetic traps on overflow (`Sub_Checked`/`Mul_Checked` via the LLVM `.with.overflow` intrinsics) and integer `/` traps on divide-by-zero and `INT_MIN / -1`; floats follow IEEE (`fadd`/`fsub`/`fmul`/`fdiv`, no trap) - constant folding (global initializers) covers `-`, `*`, `/` alongside `+` 7. enums (native and c interop) (implemented; see below) - native enums are nominal value types with integer runtime representations - unbacked enums are non-empty, dense, zero-based, and use the smallest fitting unsigned backing - explicitly backed enums require an integer type and strictly increasing literal values - enum members support `Type.member`, `package.Type.member`, and contextual `.member` - enum values support storage, calls/returns, and same-type equality/inequality - explicitly backed native enums use their backing ABI in `c_func` signatures and variadic promotion - imported C enum types alias libclang's target-selected integer backing and enumerators import as package constants 8. distinct types (implemented; see below) - nominal declarations preserve identity across packages and reuse the backing runtime representation - construction uses `Type(value)` with exactly one value of the exact backing type - no implicit conversion to or from the backing type - backing-type operators and reverse explicit conversions remain deferred - concrete runtime backing types are supported; unresolved, `int`, `void`, function, and opaque backings are rejected 9. allow pointer field access pass-through (implemented) - having a pointer (`ptr`) to a struct, we should allow access through `ptr.field` as opposed to mandating `ptr^.field` 10. make slice expressions on array variables implicitly address-taking (implemented) - zig's slice expression on an array variable handles the address-taking implicitly (nice ergonomics) - `arr[a..b]` on an array variable now slices without the explicit `&`; the explicit `(&arr)[a..b]` pointer-to-array form keeps working unchanged - array rvalues (e.g. a by-value array return) are materialized into a temporary before slicing, matching the for-loop iterable lowering 11. c header imports and automatic native brolang bindings (implemented) - `brolang translate-c [--target ...] [--c-include-path ...] [--c-define ...]` prints native `.bro` bindings for a C header to stdout (the offline counterpart of the in-memory `native :: import "x.h"`); reuses the libclang `cimport.Result` - emitter lives in `compiler/translatec`; `render_type` mirrors `loader.translate_c_type` one-to-one so emitted source re-parses to identical types (guarded by a round-trip test) - added a native type-alias declaration `Name :: alias T` (parser/lexer/token surface; the `types.define_alias` / `.Alias` machinery already existed) so C typedefs and callback typedefs round-trip - emits functions, complete/opaque structs (collapsing `typedef struct {...} Foo`), typedef aliases, and scalar/aggregate/enum-member constants - C unions, external variables, static-inline functions, and unsupported declarations have no hand-writable spelling and are emitted as `# unsupported in bindings:` comments (functions that reference an un-spellable union therefore keep a dangling reference) 12. `undefined` as inspired by zig (implemented): - allow mutable local declarations with `undefined` - undefined values are assigned a poison value (0xaa...) - allows for something like: ``` a int = undefined if (condition) { a = 42 } else { a = -2 } ``` - disallow: `b :: undefined` since assigning undefined to something that can't change defeats the purpose - disallow assigning `undefined` after declaration; use optionals and `none` for values that intentionally move back to an empty state 13. introduce a `float` type constraint (similar to `int`) (implemented) - resolves a local binding to any float scalar (`f32`/`f64`) via static analysis; widens `f32` -> `f64` across assignments, mirroring how `int` picks the smallest fitting integer - on a local declaration, integer literals satisfy `float` and default to `f64` (`pi float = 3` is `3.0`); a runtime integer (`x float = some_i32`) stays a `cannot implicitly convert` error - a local initializer whose numeric family doesn't satisfy the constraint now errors for both `int` and `float` instead of silently taking the initializer's natural type - as with `int`, a constraint in a param/result position is a generic passthrough (it forwards the inferred type unchanged, e.g. an identity `func(v int) int` over a range), so the literal-as-float and family checks apply to local bindings, not passthroughs 14. add slice-by-range - allow the use of a range in slice expressions: ``` excl_range range :: 0..10 some_arr[excl_range] # slice by named exclusive range incl_range range :: 0..=10 some_arr[incl_range] # slice by named inclusive range ``` 15. broaden type inference from surrounding context ## A word on multi-unwrap Unwrap multiple optionals with `and`. This **short-circuits**: if the first optional is none, subsequent expressions are not evaluated. ``` name: ?[]u8 = get_name() age: ?u8 = get_age() if name and age |n, a| { # both n and a are guaranteed non-none here print("{s} is {d} years old", {n, a}) } ``` **With guard clause on multiple values:** ``` if name and hat |n, h : n == "Huginn" and h.brand == .gucci| { print("{s}'s got that drip\n", {n}) } ``` Parentheses around the expression are optional, but can aid readability when combined with guards: ``` # without parentheses if name and hat |n, h : guard| { ... } # with parentheses for clarity if (name and hat) |n, h : guard| { ... } ``` ## A word on lazy / short-circuit evaluation The `and` in multi-unwrap short-circuits left-to-right: ``` if get_name() and get_hat() |n, h| { # get_hat() is only called if get_name() returned non-none } ``` This is important for avoiding unnecessary computation or side effects. ## A word on ranges Ranges represent a sequence of values, commonly used in for loops, and is itself a value type: ``` 0..10 # exclusive: 0, 1, 2, ..., 9 0..=10 # inclusive: 0, 1, 2, ..., 10 ``` **Parenthesization rule:** Each side of `..` must be either a simple term (literal or identifier) or a parenthesized expression. This eliminates precedence ambiguity: ``` 0..10 # OK: both sides are literals 0..n # OK: both sides are simple 0..(n + 1) # OK: complex expression is parenthesized (a + 1)..(b - 1) # OK: both sides parenthesized # 0..n + 1 # ERROR: must parenthesize complex expressions ``` This rule keeps the grammar simple and forces clarity at the call site — no precedence rules to remember. Also, being a value type, ranges can be assigned to variables and passed around like any other value. Range bounds are evaluated once, must have compatible concrete integer types, and descending ranges are empty. For-loop captures are immutable and scoped to the loop body. Sequence index captures are `usize`. Pointer capture uses `|@item|`; arrays must be passed by pointer (for example `&items`), while slices can be used directly. Sentinel elements are not included in iteration. # A word on distinct types Distinct types are considered distinct from their backing type. They do not implicitly coerce to their backing type. ``` # distinct type UserID :: distinct u32 # instantiate distinct type my_id UserID :: UserID(42) # value must have the exact backing type ``` # A word on enums ``` # standard enums Animal :: enum { dog cat bird lizard } # enums with backing type Nat :: enum(u8) { # in this case, a maximum of 256 values are possible one # default: implicitly starts from value 0 two three four five } # enums with backing type with explicit associated values # note: must not be jumbled (i.e. `first_val = 1` must come before `other_val = 2`), but is allowed to be discontiguous (i.e. `one = 1` can be followed by `three = 3` without `two = 2` in between) Nat :: enum(u8) { one = 1 two = 2 three = 3 # no four five = 5 } # enums with backing type with semi-implicit associated values Nat :: enum(u8) { one = 1 # starts from value 1 two # implicitly gets value 2 three # etc... four five } # using enums dog_tag1 Animal :: Animal.dog dog_tag2 Animal :: .dog # type inferred ``` Unbacked enums cannot assign explicit values. Backed enum values must be decimal integer literals, fit the backing type, and increase strictly; gaps are allowed. Native enum types remain distinct from integers and from other enum types. They support `==` and `!=`, but not arithmetic, ordering, casts, or backing-value extraction. C enums follow C/Zig import semantics rather than native enum semantics: ``` native :: import "native.h" value native.Imported_Enum :: native.IMPORTED_ENUM_VALUE ``` The imported enum type is an alias of its target-selected C integer backing, and imported enumerators are package-level constants.