A program that wants to load its data once and keep it could not say so. Every move-only global was refused where it was declared, on an argument about the dead set being per function: two functions each freeing the same global would be a double free nothing could see. The argument was sound and the conclusion was too strong. It assumed a global has an owner. It does not. Reading a move-only global is now always a borrow. Nothing may take ownership of one, so nothing may free one, and with no owner to hand over there is no double free left to catch. This is not a general ownership model for globals and is not meant to grow into one: it is sound precisely because the lifetime question that model would exist to answer has a constant answer here, the process's. The refusal lands at the read, which is where a move would have been recorded for a local -- passing the global to something that owns its parameter, binding it to a local, returning it and freeing it all reach the same place, and each is told to borrow instead, or to clone if it really wants something of its own. Such a global is mutable where it stands. push, put, reserve and set already take their target through the borrow path, so a global (Vec u8) is filled and grown in place, and the aliasing that raises is the one every Vec has: spec-memory.md's explicit Zig/Odin contract, where a push that reallocates invalidates a slice taken before it and the dev build's generation word traps on the stale one. Globals get no borrow rule locals do not have, because the hazard is not new and the trap lives on the Vec rather than on the binding. What a move-only global may not do is carry a computed initialiser. A global's initialiser is a link-time constant -- there is no init-at-startup path in the LLVM backend by design, and the x86 backend that has one deliberately leaves it out of a reload module, because re-running an initialiser wipes the live state reloading exists to preserve. So the global starts zeroed, which for a Vec is an empty Vec and therefore a value rather than a placeholder, and the load is an ordinary assignment in whichever function loads it. That is also what makes the data survive: nothing runs between one entry to main and the next, so a re-entered main finds the global as it left it. A defconst cannot be one at all, since a constant is not an assignable place and nothing could ever load it; both refusals name the (defvar g (Vec u8)) that works. The reload fixture gains a global Vec in the host and another that arrives at run time, because that is where declaring instead of defining has teeth: a module that defined the host's Vec would take a zeroed header of its own and strand the block the process is still using, which a re-zeroed i64 cannot demonstrate.
512 lines
27 KiB
Markdown
512 lines
27 KiB
Markdown
# Spec 1 — Ownership, containers, and copies
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Status: **frozen**. Closes plan.org open decisions #6 and #10, and resolves the
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contradiction between "value structs copy on assignment" and owning containers.
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The Allocators section additionally settles the four things that had to be
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decided before `Vec` and `Map` are written: when storage is released, the `drop`
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hook, alignment, and allocation failure. One question there is left open on
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purpose and says so.
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Everything else in the design references this vocabulary. It governs plain
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fixed-layout `struct` values, not the separately planned managed `class`
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facility (see plan.org, "Managed classes").
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## The four container types
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| Notation | Layout | Assignment | Owns storage | Allocator |
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|-----------|-------------------|------------|--------------|-----------|
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| `[n T]` | n contiguous `T` | copies | no (inline) | — |
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| `[T]` | ptr + len | copies the *view* | no | — |
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| `(Vec T)` | ptr + len + cap | **moves** | yes | stored |
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| `(Map K V)` | open-addressed, flat key/value arrays | **moves** | yes | stored |
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- `[n T]` is a value. It lives wherever it is declared, copies on assignment and
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on pass-by-value, and is what `defconst colors [4 u32] ...` and
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`(defvar grid [rows [cols u32]] ...)` are.
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- `[T]` is a **non-owning slice**: a borrowed window into a `[n T]`, a `(Vec T)`,
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or a literal in read-only memory. Copying a slice copies ptr+len, never the
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elements. A slice may be `const`-qualified; freeing through one is not possible
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because a slice has no allocator and no `cap`.
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- `(Vec T)` and `(Map K V)` are **move-only**. Binding, passing, or returning one
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transfers ownership; the source binding is dead afterwards and using it is a
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compile error. There is no shallow copy, so there is no double free.
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## Maps — first implementation
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Every map is homogeneous: `(Map K V)` has one key type and one value type. The
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first implementation accepts only built-in structural key types: integers,
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enums, strings, fixed arrays, and value structs composed recursively from those
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types. Tuples and triples join that set when they are introduced. `Ptr`, slices,
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`Vec`, and `Map` are not map keys yet.
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Equality and hashing for those keys are compiler-provided structural operations
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and not type classes. They are not available to an unconstrained type variable
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either; a variable that means to key a map declares `hashable?` in the signature
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that binds it, and the refusal then lands at the call site that names an
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unhashable key. An empty map names its key and value types, because the position
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it is usually written in — a `let` binding — has no type slot for it to take
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them from:
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```
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(let [enemies (map-new string Enemy)]
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...)
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```
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`(get m k)` returns `(Option V)`: absence is `None`, not an untyped `nil`.
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`(put m k v)` is the upsert operation and returns `()`; it either inserts or
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replaces. `(set (get m k) v)` is not map syntax.
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The first Map implementation admits copyable keys and values only, so `get`
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returns a copy. Move-aware lookup, removal, and owned entries are deferred until
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`Vec`/`Map` values are supported in maps; the map itself remains an owning,
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move-only container.
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## Copying is always explicit
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`(clone x)` produces an independent deep copy of a `Vec`/`Map` using the current
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allocator; `(clone x alloc)` names one. Value types (`[n T]`, structs of value
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types, primitives) need no `clone` — assignment already copies them.
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A struct containing a `Vec` field is itself move-only. Ownership is structural,
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not declared: a type is a value type iff all of its fields are **and it declares
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no `drop` hook** (see Allocators). A `drop` hook makes a type move-only for the
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same reason a `Vec` field does — exactly one owner, so the hook fires exactly
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once — and a type with one cannot be `clone`d.
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## Borrowing
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- `(as-slice v)` / `(as-slice v lo hi)` view a `Vec` or fixed array as `[T]`.
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- **The first implementation follows Zig/Odin's explicit model, not Rust's
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borrow checker.** A slice is invalidated by any operation that may reallocate
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its owner (`push`, `put`, `reserve`); its user is responsible for respecting
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that contract. Dev builds carry a generation word on `Vec` and trap on use of
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a stale slice. `Ptr` is the explicit lower-level escape hatch and has the
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same lifetime contract.
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- A future lightweight provenance pass may reject the obvious mistakes (a
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borrow of a local escaping, use after an owner moves, and reallocation with a
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live borrow). It must not require Rust-style lifetime annotations or dictate
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an ECS-shaped object model. Long-lived graph links use `(Handle a)`; temporary
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graphs may use explicitly managed, stable region storage.
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- Cross-referencing long-lived objects uses `(Handle a)` into a pool, never a
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raw pointer or slice. A stale handle is detectable.
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## Globals of move-only type
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A global may be a `Vec` or a `Map`, and **reading one is always a borrow, never
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a move**. Nothing can take ownership of it, so nothing can `free` it; its
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lifetime is the process's and it is never released. That is one rule rather than
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a general ownership model for globals, and it is sound for the reason a general
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model would be needed and is not: the lifetime question has a constant answer.
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Passing a global to a function that owns its parameter, binding it to a local,
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returning it and freeing it are all refused at the read, which is exactly where
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a move would have been recorded for a local. `(clone g)` is the one of these
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that yields something another owner may have.
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Such a global is **mutable in place**: `push`, `put`, `reserve` and `set` all
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take their target as a borrow, so a global `(Vec u8)` is filled and grown where
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it stands. The aliasing contract is the one above and nothing more — a push that
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reallocates invalidates a slice taken before it, and that is the programmer's
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whether the owner is a local or a global. Globals get no borrow rule locals do
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not have; the dev build's generation word lives on the `Vec`, so the stale-slice
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trap works the same either way.
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A move-only global **starts zeroed** — a zeroed `Vec` is an empty `Vec` — and is
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loaded by whichever function loads it, with an ordinary assignment:
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```
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(defvar the-data (Vec u8))
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(defn load [] () (set the-data (slurp "game-data.edn")))
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```
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A computed initialiser on the declaration is refused: a global's initialiser is
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a link-time constant, and the load has to be something the program does rather
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than something that happens before `main`. That is also what makes the data
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outlive `main` — nothing re-runs between one entry and the next, so a re-entered
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`main` finds the global as it left it. Assigning a second time overwrites the
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first block and leaks it; there is no `drop`, and freeing is a thing you write.
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## Taking an address
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`(addr x)` yields `(Ptr T)` for any assignable place `x` — a local, a global, a
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field, an element. The pointer is non-owning and does not extend anything's
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lifetime, so `addr` of a local is only valid while that frame lives. This is the
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same escape question as case 3 below. The first implementation leaves it as an
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explicit lifetime contract; a future provenance pass can check it.
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`addr` is how a value struct is shared mutably without an allocator — recursive
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descent over a cursor, an entity passed down a call chain — and it is why
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milestone 2 needs no heap at all. In the first implementation its non-escape
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rule is an explicit programmer contract, aided by dev checks; the future
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provenance pass above may enforce it.
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## Places — what `set` accepts
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A fixed set of assignable forms, not a `setf`-style extensible place mechanism:
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```
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(set x v) ; a local or a defvar
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(set (.field x) v) ; struct field; x may be a struct, (Ptr S) or (Handle S)
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(set (at a i ...) v) ; fixed array, slice, or Vec element
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(set (deref p) v) ; whole-object store through a pointer
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```
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`.field` and `at` auto-deref exactly one pointer or handle level, which is what
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makes `(set (.hp e) ...)` legal when `e : (Ptr Enemy)` and illegal when
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`e : Enemy` bound by value.
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**Mutating something you matched.** Pattern bindings bind *values*, so a matched
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struct is a copy. To mutate in place, obtain a pointer first — the pointer is
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visible in the type:
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```
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(match (resolve w h) ; (Option (Ptr Enemy))
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(Some e) (set (.hp e) ...) ; e : (Ptr Enemy), field access derefs
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None ...)
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```
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`deref` yields a value; `resolve` yields a pointer. Both are overloaded on
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`(Ptr a)` and `(Handle a)` and resolve at compile time.
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## Generics
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Parametric polymorphism is monomorphisation, with **no type classes**. A type
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variable is written `$t` wherever a *type* goes — a parameter, the return type,
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or nested as `[$t]` or `(Vec $t)` — and bare `t` where a type's *name* is an
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argument in expression position, as in `(vec-new t)` and the cast `(t x)`. A
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generic body is checked **abstractly**, with nothing substituted, so the rule
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below bites at the definition rather than at whichever call site first
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instantiates it:
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> A type variable `$t` supports only what every type supports: move, `clone`,
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> field-free storage. It does **not** support `=`, `<`, `+`, or `hash`.
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What makes that liveable is a `where` clause of compile-time type predicates,
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written as a map at the head of the body. There are five — `ordered?`, `equal?`,
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`hashable?`, `numeric?`, `copyable?` — they are not type classes because a
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predicate carries no implementations and merely gates a builtin the compiler
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already has, and they entail one another in one direction, so one clause usually
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does. A variable is move-only by default and `copyable?` is the opt-out, because
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whether a variable moves is not decidable abstractly. plan.org's Types section
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has the full account.
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```
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(defn sort! [s [$t]] ()
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{:where (ordered? $t)}
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...)
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```
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Without such a clause the operator is rejected where it is written, not silently
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instantiated, and the operation is passed in explicitly as a function value
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instead:
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```
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(defn largest [xs [$t] gt (Fn [$t $t] bool)] (Option $t) ...)
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```
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The value handed to such a parameter is a named `defn`. An `fn` cannot be written
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inline into it, because the generic body is checked with nothing substituted and
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there is no concrete type yet for the `fn`'s own parameters to come from; that
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restriction lifts at a monomorphic call site, where `reduce`'s and `filter`'s
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callbacks are ordinary inline `fn`s.
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The alternatives to predicates — compile-time interfaces, or intrinsics
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restricted to primitives — remain deliberately deferred until the base checker is
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stable (build sequence milestone 4). The ceiling is that nobody can supply a
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user-defined `<`.
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`println` is the deliberate exception. It is a compiler-provided,
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type-directed intrinsic: monomorphisation selects or emits a structural printer
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for each concrete instantiation, so `(println x)` is legal for `x : $t` without
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introducing a `Printable` type class. Structs, fixed arrays, options and,
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eventually, Vecs and Maps print structurally. `Ptr` and `Handle` print their
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address or identity rather than recursively dereferencing, and collection
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printers impose depth and length limits. `any` and `Error` use their runtime type
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metadata. User generic code still passes an explicit function for every other
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operation that depends on a type's structure.
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Type arguments are **inferred at call sites** from the argument types; there is
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no explicit instantiation syntax in the first implementation. A type variable
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that appears only in the return type is therefore an error.
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## Function values
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Three cases, split by whether the value escapes the frame that made it.
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**1. `(Fn [T1 T2] R)` — a plain, stable function pointer.** No captured
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environment or allocation. In a dev build, a reference to a top-level `defn`
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is the address of a stable trampoline that loads that function version's
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indirection cell and calls its current body; it is never the address of a
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particular body. Thus stored callbacks and ordinary calls observe a later
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*body* redefinition, as in Common Lisp. Release builds may call the body
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directly because it cannot be redefined.
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A signature-changing redefinition makes a new internal function version and a
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new trampoline ABI. Newly compiled code resolves the source name to that new
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version. Existing callers and stored `Fn` values keep their old trampoline and
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therefore safely call the old version. The session immediately warns at every
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tracked caller source location that still targets the old signature; recompiling
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one either retargets it successfully or reports an ordinary type error. This is
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what raylib callbacks, hot-reload cells, and function parameters use. A
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top-level `defn` is one, so `(largest hps >)` passes `>` at `i32` directly. This
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is the only function type that may cross an FFI boundary or sit in a reload
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cell.
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**2. Non-escaping `fn` — captures by value into a stack environment.** A `fn`
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whose value provably does not outlive the frame that created it gets an
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environment allocated in that frame and captures the named locals **by value**
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at the point of creation. No heap, no allocator, no lifetime question. This
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covers essentially every lambda in practice:
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- callbacks to `reduce` / `filter` / `each` / `map`, which consume them and return
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- comparators passed to a function that does not store them
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- `handler-bind` handler bodies
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That last one is not a convenience. A handler must be able to see the enclosing
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locals — `(fn [c] (push errors c) (invoke-restart 'skip-form))` capturing a local
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`(Vec ParseError)` *is* the accumulation pattern, and conditions are not worth
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building without it. Handlers are strictly non-escaping: the `handler-bind` frame
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outlives every call to them.
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Captured `Vec`/`Map` are captured **by pointer**, not moved, since the capture
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does not outlive the owner. A non-escaping `fn` is therefore not itself an owner.
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**3. Escaping closures — deferred.** A `fn` stored in a struct, pushed into a
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container, or returned needs a heap environment and an answer to "which allocator
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owns it, and what happens when the frame arena resets". Do not settle this until
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a concrete use case requires it; revisit it with the optional lightweight
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provenance work.
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**Early exit inside a `fn`.** `try`, `some`, and `return` in a `fn` body exit the
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`fn`, not the enclosing function — a `fn` is a function. Code that wants to
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propagate out of a loop uses an imperative loop form, not a callback.
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## Allocators
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The allocator is part of the calling convention (`context/allocator`,
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`context/temp`). `Vec` and `Map` record the allocator they were created with, so
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`free` and `clone` never need it named again. Allocation uses the current
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implicit allocator by default, as in Odin; an operation never falls back to a
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hidden global allocator, and an explicit allocator can override the context.
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### The allocator is one type-erased procedure
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As in Odin (`base/runtime/core.odin:422`, `Allocator_Proc`), an allocator is a
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procedure plus an opaque data pointer, and every operation takes `size` and
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`align` as parameters:
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| Operation | Meaning |
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|------------------------------------|----------------------------------------|
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| `alloc size align` | new block |
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| `resize p old-size new-size align` | grow or shrink |
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| `free p` | release one block |
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| `free-all` | release everything the allocator holds |
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It is type-erased on purpose. `Vec` and `Map` are one runtime over `(size,
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align)` and, for `Map`, a compiler-emitted hash and equality pair passed as
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arguments — Odin's `Map_Info` (`base/runtime/core.odin:369`). No generics are
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involved, and none are needed.
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An allocator declares which operations it implements. Odin's arena answers
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`.Free` with `.Mode_Not_Implemented` (`core/mem/allocators.odin:307`); Flan's
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equivalent is a **capability set** on the allocator value, readable at run time.
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The one that is load-bearing below is `can-free`.
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### When storage is released
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There are exactly two release points, and neither of them is a scope.
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1. **`(free v)`** — explicit. `v` is any move-only value: a `Vec`, a `Map`, a
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struct that owns one, or a struct that owns a resource rather than storage
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(a `Texture2D`, a socket, a file handle — see `drop` below). For a value that
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holds a resource and no storage, `free` runs `drop` and nothing else; it is
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still the release operation, and it is how a `Texture2D` in a local is
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released. `free` consumes its argument exactly as any other move does: the source
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binding is dead afterwards and using it is a compile error. That rule is
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already what makes a double free unrepresentable, so `free` needs no new
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analysis.
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2. **Region release** — `(free-all a)` on an allocator, which releases
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everything made from it at once, including storage reachable from bindings
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that are still in scope. The per-frame `(free-all context/temp)` at the top
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of a game loop *is* the frame arena, and it is the normal way arena-tier
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storage dies.
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**Nothing is released at scope exit.** Not at the end of a `let`, not at the end
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of a function, not at the end of a `with-allocator` body. `with-allocator`
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rebinds the current allocator for its dynamic extent and releases nothing; the
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region it names is released, if ever, by an explicit `free-all` somewhere else.
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This is deliberate, and it is the point on which the two obvious precedents were
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rejected:
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- **Odin's `defer delete`** cannot be written here. `defer` is function-scoped
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(`check.ml:505` refuses it in a `let`, a loop or a branch) and, because `let`
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is a block, a top-level `defer` is checked in a scope containing only the
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parameters and globals (`check.ml:1670`). `(defer (free v))` for a `let`-bound
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`v` is **not expressible today**. It becomes expressible with either
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block-scoped `defer` or a sequential top-of-body binder; until one of those
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exists, no idiom in this spec may depend on it.
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- **Carp's scope-end frees** are a whole-program linear analysis that inserts a
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teardown call at every binding's last use (`Memory.hs`, and `Info.hs`'s
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`Deleter`). Carp could not reconcile that with an arena and therefore has no
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allocator abstraction at all. A release point the programmer cannot see is
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exactly what makes a frame arena unstateable.
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**Leaking is defined behaviour.** Storage that is never freed and whose
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allocator is never released is leaked, and for the permanent arena (symbols,
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code) and the dev/REPL tier that is the correct program. "Did you forget to
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free" is not a type question here; it is an allocator-tier question, and dev
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builds answer it by reporting a general-purpose allocator's outstanding blocks
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when it is destroyed.
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**`free` applies to a whole owner.** It recurses structurally into owning
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fields. A field is never freed on its own: `(free (.textures e))` is refused,
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because it would leave `e` partly dead with no way to say so.
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### Dev builds detect a released region
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A `Vec` or `Map` records its allocator (see above). In a dev build it also
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records that allocator's **epoch** — a counter the allocator bumps on every
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`free-all`. Any operation on a container whose recorded epoch has moved traps,
|
|
naming the allocation site and the release site. This is a second and separate
|
|
counter from the per-`Vec` generation word that catches stale slices; the two
|
|
answer different questions and must not be conflated. Both are dev-only: the
|
|
release layout of a `Vec` is `ptr + len + cap + allocator` and nothing more.
|
|
|
|
### `drop` — owning something that is not memory
|
|
|
|
A type may name one hook:
|
|
|
|
```
|
|
(drop Texture [t (Ptr Texture)] ...)
|
|
```
|
|
|
|
It takes a **pointer, not the value**, which is Carp's shape and for Carp's
|
|
reason. Carp shipped `delete` — auto-generated per type, consuming, and
|
|
responsible for the recursive teardown of every field — and then had to add
|
|
`drop` separately, because a user who redefined `delete` to close a file had to
|
|
re-implement that whole teardown by hand. Carp's `drop` is looked up per
|
|
teardown site (`Memory.hs:806`, `getDropFunc`, at `RefTy t` where `delete` is
|
|
`FuncTy [t]`) and emitted immediately before the teardown call
|
|
(`Emit.hs:1042`), so the hook *composes with* compiler-generated teardown rather
|
|
than replacing it. Flan takes that arrangement unchanged.
|
|
|
|
- `(free v)` runs `drop` on `v` first, then tears down `v`'s owning fields in
|
|
declaration order, each by the same rule.
|
|
- A `drop` hook may read and mutate through its pointer. It may **not** move out
|
|
of the value, and it may not `free` it.
|
|
- A type has a `drop` hook transitively: a struct any of whose fields has one,
|
|
has one.
|
|
- **A type with a `drop` hook is move-only and cannot be `clone`d.** Move-only,
|
|
because a value type copies on assignment and two copies of one socket would
|
|
each run `drop`; the same argument that makes a `Vec` field move-only. Not
|
|
`clone`able, because duplicating a texture id or a file descriptor is not the
|
|
compiler's decision to make — Carp needed a separate `copy` interface for
|
|
exactly this. A type that *can* be duplicated says so with an ordinary named
|
|
function.
|
|
|
|
**Nothing runs `drop` when an arena resets — because such a value cannot be in
|
|
an arena.** Constructing a container whose element type transitively has a
|
|
`drop` hook, or allocating such a value, against an allocator that lacks
|
|
`can-free` is **refused at the point of construction**: one branch per
|
|
container, not per element. `free-all` therefore never has to walk a list of
|
|
registered destructors, which is what keeps the frame tier's reset genuinely
|
|
free (plan.org's memory table) and keeps a destructor list — an allocation
|
|
nobody wrote — out of the core.
|
|
|
|
The consequence, stated plainly because a reader will assume otherwise:
|
|
|
|
> **`drop` is not a destructor.** A `Texture2D` held in a local, a parameter, or
|
|
> a plain stack struct never has `drop` run, because Flan has no scope-end
|
|
> anything. `drop` fires at exactly one place — inside `free` — and resources in
|
|
> locals are released explicitly, exactly as memory is. Carp's `drop` fires at
|
|
> scope end only because Carp has scope-end frees, which the section above
|
|
> rejects.
|
|
|
|
### Alignment
|
|
|
|
Alignment is a property of the **type**, computed at the **call site**, and
|
|
passed as a **parameter** to the type-erased allocator. All three, and they are
|
|
not alternatives.
|
|
|
|
Odin arranges it exactly this way: `elem_align` is threaded through every
|
|
type-erased dynamic-array entry point (`base/runtime/dynamic_array_internal.odin`
|
|
— `__dynamic_array_reserve`, `__dynamic_array_resize`, `__dynamic_array_append`),
|
|
and `align_of_type` sits in `Map_Cell_Info` (`base/runtime/core.odin:350`). The
|
|
monomorphised wrapper is the only place the concrete type is known, so it is the
|
|
only place that can produce the number.
|
|
|
|
Alignment is **not stored** in the `Vec` or `Map` header. That is safe because of
|
|
a condition worth writing down: every operation that needs it — `push`,
|
|
`reserve`, `resize`, `clone`, `free` — is compiler-emitted at a site where the
|
|
concrete element type is known. Any future type-erased teardown path would break
|
|
that condition; there is not to be one. (This is the second reason the `drop`
|
|
registry above was rejected: it would have been exactly such a path.)
|
|
|
|
The natural alignment of `T` is `align-of T`. Raising it above natural — 16
|
|
bytes for `#soa` and for component-wise fixed arrays — is declared **on the
|
|
type**, so that every site computing `align-of T` gets the raised number with no
|
|
further plumbing. The surface syntax for that declaration is deliberately not
|
|
fixed here; nothing is built that needs it yet.
|
|
|
|
### Allocation failure
|
|
|
|
**No allocating operation returns an error, and none can fail silently.** When
|
|
the allocator cannot satisfy a request, the operation signals
|
|
|
|
```
|
|
(StorageExhausted {.bytes n .align a .allocator id})
|
|
```
|
|
|
|
with `error`, whose type is `Never` (spec-conditions.md §2), inside a
|
|
`restart-case` offering `retry`. This is one rule over *every* allocating
|
|
operation — `vec-new`, `map-new`, `push`, `put`, `reserve`, `clone` — so their
|
|
result types stay `(Vec T)`, `()`, `()` and so on, with no `Result` and no
|
|
out-parameter anywhere.
|
|
|
|
What that buys, against the alternative: Odin's `append` returns an ignorable
|
|
`Allocator_Error` (`base/runtime/core_builtin.odin:767`,
|
|
`#optional_allocator_error`), and the type-erased path underneath returns the old
|
|
length on a failed reserve, marked
|
|
`// TODO(bill): Better error handling for failed reservation`
|
|
(`base/runtime/dynamic_array_internal.odin`). An `append` that appends nothing
|
|
and says nothing is the outcome this rule exists to make impossible.
|
|
|
|
- The condition is a value struct on the signalling frame's stack, with fixed
|
|
numeric fields and **no rendered message**, because formatting would allocate
|
|
and this is the one path that must not. Rendering happens in the handler or the
|
|
break loop, where a working allocator is known.
|
|
- Unhandled, `error` enters the dev break loop or aborts in release
|
|
(spec-conditions.md §2). It is never a no-op; `signal` is not used here.
|
|
- A handler that frees something, releases a scratch region, or grows the arena
|
|
and then invokes `retry` re-attempts the same request. A handler that wants a
|
|
*different* allocator needs a restart taking an argument, which does not exist
|
|
yet; until it does, such a handler rebinds the context allocator and retries.
|
|
- Because an allocating operation can transfer, every caller of one checks the
|
|
transfer channel after the call (spec-conditions.md §6). `push` is not a leaf
|
|
call, and that per-call-site check is the price of not being Odin.
|
|
|
|
**This is the named exception to plan.org's "restarts go at the resync point,
|
|
once".** That rule is right for program-level errors and wrong here: a restart
|
|
established at a parser's top-level loop cannot re-attempt an allocation, and
|
|
only the allocation site can. Compiler-emitted restarts at the point of failure
|
|
are the exception, in the same way Common Lisp's runtime establishes
|
|
`store-value` at an unbound-variable error rather than at a resync point. No
|
|
*user* code establishes restarts below a resync point.
|
|
|
|
### Open: catching a use-after-release statically
|
|
|
|
Both release points above are dynamic, and the frame arena is the reason. A
|
|
static rule — "a move-only value constructed under a given allocator may not
|
|
outlive it" — needs to know statically which allocator a construction used, and
|
|
`with-allocator` plus `context/allocator` are precisely the mechanisms that deny
|
|
that knowledge. The lexical subset (a value made inside a `with-allocator` body
|
|
and returned out of it) is checkable; the general case is not; and shipping only
|
|
the subset would teach a rule that silently stops applying at the loop where it
|
|
matters most.
|
|
|
|
Until a provenance pass exists (plan.org open decision #3), the answer is the
|
|
dev-build epoch trap above: detection, loud and immediate, rather than
|
|
prevention. Settling this needs one thing that does not exist yet — real Flan
|
|
programs using arenas, to say whether the escapes that actually occur are
|
|
lexical. It is not settleable from the design alone, and it is not papered over
|
|
here.
|