spec-conditions.md §3 to §6. A handler runs where the signal was, decides, and
control resumes at a restart-case further out - so unlike step 1 this one does
alter control flow, and it is lowered explicitly rather than through platform
unwinding, because wasm32 cannot unwind and because a cmp/jne after a call
reads like ordinary code.
The channel is the out-parameter §6 settled on: one ptr appended to every Flan
signature, written by an invoke-restart and checked after every call. The
return type stays what the source says, one pointer threads down the whole
chain, and a frame that sees the channel set just returns early - which reuses
the existing return path and with it §5's defers for free. Emit.signature was
already the one place a signature is spelled, which is what made that part
small.
Every function is transfer-transparent, release included. §6's escape analysis
is an optimisation; in a dev build a cell can hold anything, so the honest
answer to what a call can reach is anything, and uniform means redefinition
acquires no new refusal class.
The transfer target is the restart frame's own address and not a static clause
id, which corrects what the handoff note had settled. An id has to be unique
against every module a running program may later load, and a hash is only
probably unique - two restart-cases colliding means the inner one silently
catches a transfer aimed at the outer. The frame is an alloca in the function
that offers it, so the address is exact and it also says which clause, which is
how clause ids disappeared. Re-entering a restart-case then needs nothing
extra, since each activation allocates its own frames.
Cleanup is landing blocks, one per region rather than one per function: a
restart-case's pops its frames and either dispatches or forwards, a
handler-bind's pops the handler frames on the way past, and the function's own
runs its defers and returns. One function-wide block would have jumped straight
past the very restart-case that was meant to catch the transfer. The channel is
cleared before any cleanup runs and put back after, or a defer's first call
would branch straight back into the block it came from.
flan_signal takes the channel and passes it to each handler, stopping once one
writes to it. That makes the one C frame every handler is reached through
transparent to a transfer, which it has to be; it is also the only one, since
extern is Flan-to-C only and there are no function values yet.
Refused by name with the reason, each with a test on the reason: restarts with
parameters, return inside a restart-case body, one restart-case offering a name
twice, and invoke-restart inside a defer - a defer is the cleanup a transfer
already runs, so starting one there leaves the defers half run with two targets
and no way to choose. The lexical case is the checker's and the one that
reaches a function through a call is trapped at run time. No restart of that
name is a located runtime error at the invoke site, because there is nowhere to
resume.
Two things found on the way. `{ ctx with in_handler = true }` was a latent bug:
ctx.slots is mutable, so a copy allocated the body's slots into a record the
function never saw again - harmless only because no handler-bind body in the
tests had a let in it. And test/reload_host.c calls flan.outer through an asm
label, which does not fail at link time when the prototype is a parameter
short; it reads garbage as the channel and dies somewhere else.
test/programs/restarts.flan runs at -O2, at -O0 and as a dev build. -O0 is not
redundant: the guard after every call is control flow the optimiser would
otherwise launder, and the dev build is where each of those calls goes through
a cell.
spec-conditions.md §1 and §2 and nothing else, because those two are worth
having alone: signal returns Unit whatever it finds, a handler that returns
normally leaves the signalling function to carry on, and with nothing matching
it is a no-op. So none of §6's transfer machinery exists yet and no signature
changed - which is the whole reason to do this step first.
The runtime is a linked list. Establishing a handler is two stores and a push
onto a frame on the establishing function's own stack, and signal with an empty
stack is a null check, which is what §2 asks for. Popping is by frame rather
than by count, so restoring what this one displaced is right even if something
below it left the stack out of step.
A condition's type is a hash of its name and not an index: an index would shift
the moment a struct were added, and every handler a running program had already
pushed would match the wrong type. The condition crosses as a pointer, since a
handler runs while the signalling frame is alive and there is nothing to copy -
but what the clause binds is the condition itself, the pointer being a hidden
parameter and the name a slot loaded from it, so a handler passing c to
something expecting the struct is not handed an address.
A clause is lifted into a function of its own, because a handler runs from
wherever the signal was and cannot be a branch in the function that wrote it.
That gives two refusals, both by the house rule. A handler cannot see the
establishing function's locals - that is a closure with an explicit
environment, so a reference to one is refused for that reason rather than
reported as an unknown name. And return inside a handler-bind body is refused,
since the frames are popped on the way out and an early exit would leave them
pointing into a function that has gone.
Settled in advance for the next step: in a dev build every function is
transfer-transparent, because a cell can hold anything and the honest answer to
what it can call is anything. Same bargain as the indirect call, and it means
redefinition acquires no new refusal class. Still open is whether the
discriminated result is returned by value or through an out-parameter.
C-x C-e rendered the scalars and refused the rest, which made it a calculator
rather than a REPL. The renderer is now a compile-time walk over the type,
emitting a piece at a time: structs, nested structs, fixed arrays, slices,
options, enums by name, and pointers as their shape. A raylib Color comes back
through the FFI as (rl/Color {:r 17 :g 34 :b 51 :a 68}).
Piecewise emission is what makes composites possible at all - a struct is its
fields with punctuation between them, and concatenating that in generated IR
would need an allocator the language does not have.
u64 now renders, in C, with %llu. It used to refuse because i64->bytes is
signed and it would otherwise come back as -1, but refusing a whole struct
because one field is a u64 is much worse than adding a runtime entry point.
Strings are quoted and escaped in C for the same reason: unescaped content does
not round-trip and reads as a framing bug rather than as the value it is.
An enum renders as :name, recovered from the checker's table as a chain of
comparisons, since members are erased to i32 before the backend sees them; a
value outside the declared members falls through to its number, which is what
you would want to see. A pointer is rendered and never followed - it is the
only thing that could make the walk cycle, and dereferencing one a REPL was
handed is not a safe thing to do on someone's behalf.
Three bounds, easy to conflate. depth and span bound the walk, so sand's
[100 [100 u32]] grid does not unroll into ten thousand render sites. The output
is bounded once in the runtime, since a slice renders through a loop the
compiler cannot bound, and one place enforcing it means no renderer carries a
budget.
emit.ml's cast now treats an enum as the i32 it is. Nothing in the surface
language produces that - a keyword resolves against its enum and never widens -
but the renderer needs an enum's number when it falls outside the members.
A different primitive from redefining a name. There is no name to install a
body into, so the expression is wrapped in a function with nowhere to be called
from; the module exports flan_reload_call to say "run this once", and the agent
calls it after the install - on the game thread, at a frame boundary, so an
expression that reads the program's state sees a point the program agrees is
consistent.
Nothing is marshalled back because nothing could be. A Flan value carries no
header, so no code at run time can say what it is; the compiler knows the type
and renders it there, in the thunk. That is the layout decision's bill, and it
is why the printer set is the scalars rather than everything.
The rendering does not go through stdout. Stdout belongs to the program, it is
in the hot path for anything that prints, and a dev-only feature must not put a
branch in it - so flan_rt.c is untouched and the value goes to flan_dev_result,
read back over the agent's socket. Safe without a handshake because the
generation counter is bumped last: the daemon waits for it to move rather than
assuming the program has reached a frame boundary.
u64 refuses by name, because i64->bytes is signed and anything past 2^63 would
come back negative. Everything without a derived printer refuses the same way.
A number that is quietly wrong is the failure this whole thing exists to
prevent.
An evaluation is not a declaration: the thunk is built against the program and
never spliced into it, so describe does not fill up with an eval/N for every
expression ever typed.
The test that matters is the same expression twice. The fixture increments
ticks every frame, so two evaluations must disagree - a value computed in the
compiler, or read from a copy of the program's state, would not.
Asked whether a defconst could be redefined, probed it, and got ":status ok"
for a change that did nothing at all - the module was built, delivered,
installed, and the program went on using the old value. That is the
silent-wrongness class the house rule exists to prevent, so it is now four
refusals and a fix.
A defconst's value is folded into its call sites - into an array length at
worst, which is decided before any type resolves - so it lives in the running
program's code and not only in its storage. Refused. A defenum member is the
same thing: :space is erased to an i32 literal in the caller. Refused, and
compared over declarations rather than over Tast.program, which carries no
enums at all for exactly that reason.
A defvar's initial value is deliberately not refused. Its storage holds live
state the program moved past long ago, and refusing to change the initialiser
would be refusing "edit the code, keep the sand". Same Tast.global record as a
defconst, opposite answers, told apart by gconst.
The value comparison is structural and conservative - anything it does not
recognise counts as changed. Comparing emitted text would be wrong, since
Emit.const on a string allocates a name off a per-module counter and two
different strings in two throwaway modules both come out as @".str.0".
Third: a new global's declared initial value was being dropped. flan_dev_global
callocs, so (defvar n i64 42) added at run time was silently zero. It now takes
the initial value as a blob, copies it on the allocation and ignores it
afterwards - the second half being where "a reload must not reset the program's
state" lives. In the allocation path rather than a branch at the call site, so
it cannot be got wrong at one of them.
Fourth: a change with no body to publish and no storage to allocate now answers
"nothing to install" instead of shipping an empty module. That is what the
defconst probe actually did, and it cost the program a frame's worth of reload
it did not need.
Everything so far installed one module. The daemon's job is N of them against
one long-lived session, and that is where a registry that hands out fresh
storage per module would show up. So the agent test now takes two: the first
introduces a global the process was never built with, the second only reads it.
1007 rather than 7 is the whole assertion.
Getting there needed stdout to be line buffered, set in flan_rt_init. The C
default when stdout is a file or a pipe is a 4K block, so a program running for
minutes with a REPL attached shows nothing until it exits, and a test driving
one cannot see its progress at all - which is how this was found. One write per
line instead of per 4K.
Also written down: flan reload builds a fresh session from source each time, so
if the program file was edited since the process launched, its idea of the
host's names and memory describes a binary that is not running. That is a limit
of the command, not of sessions. And Session.eval's origin defaults to <eval>,
so the daemon has to pass the editor's real buffer path or errors point at a
file that does not exist.
Editing a defvar or a defn is a symbol the host exports. Adding one is not:
there is nothing to bind to and ELF cannot grow a symbol. runtime/flan_dev.c is
the two lookups that cover it - flan_dev_cell for a new function's cell,
flan_dev_global for a new global's storage - both idempotent, so the second
module to mention a name gets what the first one got. That is the whole point:
two modules with their own copy of a new function would each call their own,
and redefining it would update one of them.
The compiler picks per name. A name the host has is a symbol and costs one load
at a call site; a name it lacks is a registry lookup cached at install time in
a module-local slot, and costs two. The common case pays nothing for the
general one.
The redefinition unit is now a list of top-level forms rather than one
function. It has to be: v3 of the fixture adds a var and uses it from a
redefined bump, and splitting that into two loads leaves a module referring to
storage that does not exist yet. C-c C-c passes one name, C-c C-k passes a
file's worth, one path either way.
Four rules, each silent if broken. Every lookup resolves before any body is
published, or a caller reaches a function whose slots are still null - asserted
on the emitted flan_reload_install, since it cannot be race-tested.
flan_dev_global refuses a size change, which is the layout-drift rule's first
enforcement point rather than another exception to it. Nothing is ever
dlclosed, because a cell holds an address inside a module's text. And the table
is fixed capacity, because a module holds a cell's address for as long as it is
loaded and a realloc would strand it.
The test that separates this from a plausible wrong version is v4, which
redefines a name v3 introduced at run time. v3's bump is already installed and
is not rebuilt, so it picks v4 up only if its call goes through a cell both
modules found by the same name. Had v3 cached the function's address instead,
every other assertion would still pass and the transcript would read 246
instead of 432.
Sizes are spelled LLVM's way, ptrtoint getelementptr null 1, rather than by a
layout calculator in OCaml that would have to agree with LLVM's on every
target.