CORE reviewed and accepted (core/docs/adr-0011-core-response.md, lane/core@7bf5cb5), with three amendments folded in: - yield (slot transfer at the next segment boundary) as the mechanism that satisfies min-1-before-seconds out of a full budget; steal stays slot-neutral as originally written. - "admission implies progress" is bounded-delay (min(next yield boundary, low_speed_secs) + connect_timeout), not immediate — widens the starvation-assertion window from 2s to ~low_speed_secs + connect_timeout (45s). - starved_tasks()/starved_since(TaskId) added to the accessor set; segments_active() and tasks_starved definitions pinned (a 'connecting' segment counts as held, not starved). All five open questions answered (min-1 buildable without inversion, probe pool size 4 outside the budget, drain-not-kill live-apply, ordered TaskId list for priority, 4Hz + starved-edge callback coalescing). Section 6 rewritten: connection.maxActiveSegments landed on the wire in PROTO's ADR 0012 while this was in flight, so the daemon-local stopgap is dropped. daemon/src/sched/ is unblocked. Both docs updated in the rebased vdm-daemon worktree against the frozen 1.0.0 contract. Co-Authored-By: Claude Sonnet 5 <[email protected]> Claude-Session: https://claude.ai/code/session_01Upd9WhG9oppieig5nRDLig
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ADR 0011 — Admission control, the segment budget, and who counts what
Status: accepted · Date: 2026-09-09 · Lane: DAEMON, signed off by CORE
Companion request: daemon/docs/core-requests-m1.md (the engine API this depends on)
CORE's response: core/docs/adr-0011-core-response.md (lane/core, commit 7bf5cb5)
— accepted with three amendments (A1–A3, folded in below) and answers to all five open
questions. daemon/src/sched/ is unblocked.
Context
Two lanes were each building a global concurrency governor, neither brief mentioned the other, and they were counting different things.
- CORE added
connection.maxActiveSegments(default 32, landed on the wire by PROTO's ADR 0012) inside the engine — a ceiling on segments actually transferring at once. It is the mechanism that makes the RSS target indocs/04§8 hold (core/docs/buffer-sizing.md), so it is not optional. - DAEMON is briefed to build "a concurrency governor (global max active, per-queue max,
per-host caps)", backed by
connection.maxConcurrentDownloads,Queue.maxConcurrent, schedules and queue order.
Left alone this lands in one of two states, and both are bad in a way that is hard to diagnose after the fact:
- Double-throttling. Both lanes enforce a global ceiling, so the effective limit is the minimum of two numbers the user set independently. The link runs at half rate and it reads as a performance bug in the engine, not as a policy collision.
- The gap. Each lane assumes the other holds the line. Nobody does, 20 downloads open
160 connections, and the RSS budget that
maxActiveSegmentsexists to defend is gone.
There is a third problem underneath both. With maxActiveSegments = 32 and
connection.maxSegmentsPerDownload capped at 32, one download can hold the entire segment
budget. If the daemon admits a second task and the engine has no slot to give it, the task
is running and transferring nothing: every DAEMON assumption that admission implies
progress — stall detection, speed accounting, queue drain, "when queue completes" — is
then wrong. CORE owns that fairness rule. DAEMON cannot write a governor without knowing
what it is.
Decision
1. Every ceiling is enforced exactly once, by the lane that owns the unit it counts
This is the whole ADR in one line. The two governors stay two governors, on two axes, with strictly non-overlapping units:
| Ceiling | Unit | Enforced by | Configured by |
|---|---|---|---|
connection.maxConcurrentDownloads |
tasks | DAEMON | user |
Queue.maxConcurrent |
tasks | DAEMON | user |
| per-host task cap | tasks | DAEMON | host table |
| schedules, windows, queue order, priority | tasks | DAEMON | user |
connection.maxActiveSegments |
segments | CORE | user |
connection.maxSegmentsPerDownload |
segments | CORE | user, per task |
| per-host segment cap | segments | CORE | host table, pushed by DAEMON |
bufferBytes / maxTotalBufferBytes |
bytes | CORE | user |
| speed limits (global → queue → task) | bytes/s | CORE | user, pushed by DAEMON |
Corollaries, and these are the parts that actually prevent the two failure modes:
- DAEMON never counts segments to make an admission decision. Not directly, and not by inferring occupancy from a download count. Its governor sees tasks.
- CORE never refuses admission.
start()always accepts. The engine paces the task inside the segment budget; it does not decide that the task should not be running. A refusal would be a policy decision, and policy lives in the daemon with the queues and the SQL behind it. - The pattern generalises: DAEMON decides policy and configures; CORE enforces every
ceiling counted in engine-internal units. Rate limiting (
docs/04§6) already works this way. Recording it here so it is not re-litigated per subsystem.
Signed off by CORE as written, including the shared-semaphore rejection in "Alternatives considered" below.
2. The one legitimate coupling — a clamp, not a second enforcement
DAEMON reads maxActiveSegments in exactly one place:
effective_max_running_tasks = min(connection.maxConcurrentDownloads,
connection.maxActiveSegments)
with the same clamp applied per queue against that queue's share. The purpose is narrow: never admit more concurrently-running tasks than the segment budget can give one segment each. It is expressed in tasks, it throttles nothing that CORE also throttles, and it is the reason §3's fairness rule is satisfiable — CORE's Q1 answer is explicit that min-1 liveness depends on DAEMON honouring this clamp. Admitting 3 running tasks against a budget of 2 starves one by construction and no fairness rule on CORE's side fixes it.
At the shipped defaults (maxConcurrentDownloads 5, maxActiveSegments 32) the clamp is
not binding. It binds when a user raises concurrency to 64 or lowers the segment budget.
After a live lowering of maxActiveSegments below the running-task count, CORE
honours min-1 for the top new_ceiling tasks in DAEMON's priority order and reports the
rest in tasks_starved — it does not auto-pause them (policy stays with DAEMON). The
governor must reconcile its running set against the new clamp on every
on_budget_changed delivery and pause the lowest-priority excess itself.
3. CORE's fairness rule — what DAEMON is allowed to assume
CORE owns this; the mechanism below is CORE's, confirmed in its ADR 0011 response.
- Min-1 before seconds. No task receives a second segment slot while any admitted task holds zero. A task's first slot always outranks another task's growth. Implemented as two ordered passes re-run on every budget-changing edge: a guarantee pass over zero-slot tasks in DAEMON's priority order, then a growth pass round-robining remaining budget over running tasks up to their effective per-task cap. A released slot always re-enters the pool and re-runs pass 1 from the top — it is never handed back directly to the releasing task — so a task that drops to zero re-enters the guarantee queue at its priority position, not the back. No inversion at slot release.
- Beyond the first slot, remaining budget is distributed round-robin over running tasks in
the priority order DAEMON supplies (
set_task_order), up to each task's effective per-task cap:min(spec.segments ?? maxSegmentsPerDownload, per-host segment cap, 1 if not resumable). - Slots are released on segment completion, pause, and failure, by two distinct
operations:
- Steal — a worker that finished its range takes the tail of the largest remaining range. Same worker, same slot: slot-neutral, exactly as first described.
- Yield — the mechanism that actually satisfies rule 1 when the budget is full: the allocator marks an over-quota task to release one slot at its next segment boundary, bounded by that segment's remaining bytes. Never a mid-segment kill. This is a slot transfer, not slot-neutral — CORE's amendment A1, since "steal" alone doesn't explain how a starved task ever gets its first slot out of a full budget.
- A paused task holds no slots.
- Admission implies progress, but the bound is delay, not immediacy. When the budget
is full of healthy incumbents, a newly-admitted task's first slot appears at the next
yield boundary, hard-capped by the stall timeout:
not "connect timeout + per-host cap" alone, as originally assumed. (CORE amendment A2; a future preemptive-split optimization — truncating an incumbent's range ahead of its current offset — is on the table post-M1 if the yield delay proves painful in soak testing, but doesn't change this API.)
time_to_first_slot ≤ min(incumbent's next segment boundary, low_speed_secs) + connect_timeout - Invariant:
budget().tasks_starved == 0in steady state, where a task counts as starved only ifsegments_active(id) == 0— a segment inconnectingstate is progress, not starvation (CORE amendment A3). DAEMON asserts this and, if it observes a non-zero value persisting pastlow_speed_secs + connect_timeout(~45 s, not the originally proposed 2 s — CORE's A2 correction, since a legitimately full budget with a slow incumbent tail can hold a new task at zero that long with nothing actually wrong), logs a governor-invariant warning and surfaces it invelox ls --jsonusingstarved_since(TaskId)to show how long. It does not compensate by throttling admission — compensating is how the two governors would silently grow back into one.
Consequence for the starvation question in the brief: one download cannot permanently take the whole budget away from the next, because rule 1 makes the next task's first slot outrank the incumbent's second via yield. A single download alone in the system does legitimately grow to 32 segments, and gives slots back (bounded-delay, per rule 5) as tasks arrive — growth is opportunistic, the first slot is guaranteed within a bounded time.
4. Per-host caps are split by unit, from one table
Both briefs say "per-host caps" and they are not the same cap.
- CORE enforces per-host segment caps — it owns the connections and is the only place
segments are counted (
docs/04§3, "clamped per-host by settings"). CORE derives a task's host from its URL and mirror set; DAEMON does not need to push per-task host resolution, only the cap table. - DAEMON enforces a per-host task cap, set to that host's segment cap, so it can never admit more tasks for one host than that host can be given one segment each. Without this, rule 3.1 is unsatisfiable: four tasks on a host capped at 4 connections is fine, five is a guaranteed starved task no fairness rule can fix.
- The table itself is DAEMON state (SQLite,
settings), pushed into the engine viaset_host_segment_cap(std::string host, uint32_t). One source of truth, two enforcement points, different units.
5. Probes do not consume segment slots
A download.probe is a HEAD or a one-byte ranged GET. Charging it against the segment
budget would let a burst of probes starve transfers, and probes are on the latency path for
capture.offer's 750 ms deadline. CORE bounds concurrent probes with its own dedicated
pool, default size 4, set_probe_pool_size(uint32_t), entirely independent of the segment
budget — confirmed by CORE. Probe cancellation is immediate, so capture.offer can answer
ignore first and probe after with no risk of blocking on a stuck probe. CORE bounds probe
concurrency; DAEMON still bounds probe submission on its own side (queue depth is a
DAEMON policy question, not an engine one).
6. connection.maxActiveSegments is now on the wire (PROTO ADR 0012)
Resolved: PROTO landed connection.maxActiveSegments (default 32) and
connection.maxTotalBufferBytes (default 128 MiB) in Settings.schema.json/SettingKey
in ADR 0012, alongside TaskDetail.effectiveBufferBytes. DAEMON reads and writes it
through settings.get/settings.set like any other connection setting — no daemon-local
stopgap needed. sched/ can reference the wire field directly.
Alternatives considered
DAEMON enforces both. The governor would have to predict each task's effective segment count to spend a segment budget in task units — but that count depends on the probe result, the per-host cap, the resumability demotion and live steals, all engine-internal and all changing continuously. Predicting it means either over-admitting (the gap) or leaving the link idle. Rejected: it asks the daemon to model the engine.
CORE enforces both. The engine would take every task and decide which run. That drags
queues, schedules, priority, and "when queue completes" into core/, which the layering
rule forbids and which would need SQL to be correct. Rejected.
A shared semaphore object handed to both lanes. Superficially the "one counter" answer, but it makes a mutable engine resource part of the daemon's API surface, inverts the dependency direction, and is the first thing that will deadlock under pause-during-steal. Rejected: one counter, one owner, read-only snapshots for everyone else.
Consequences
daemon/src/sched/may be written against a task-unit model only. A segment count appearing in an admission decision is a review-blocking defect.- DAEMON reads occupancy through the engine API below rather than inferring it —
needed to project
TaskSummary.segments(ADR 0010: the effective count) without guessing. - CORE's fairness rule has a test DAEMON can point at: N tasks admitted, budget smaller
than N × their per-task caps, assert every task reaches ≥ 1 segment within
low_speed_secs + connect_timeout, andtasks_starved == 0in steady state thereafter. - The governor must reconcile its running set on every
on_budget_changeddelivery, pausing the lowest-priority excess when a live lowering ofmaxActiveSegmentsleaves some running tasks permanently belownew_ceiling(§2).
Engine API sched/ is built against (CORE, core/docs/adr-0011-core-response.md)
void set_max_active_segments(uint32_t); // drain-not-kill (§2, §3.5)
void set_host_segment_cap(std::string host, uint32_t); // §4
void set_task_order(std::span<const TaskId>); // pushed on change, not per tick
void set_probe_pool_size(uint32_t); // default 4, §5
struct EngineBudget { uint32_t total; uint32_t active; uint32_t tasks_starved; };
EngineBudget budget() const;
uint32_t segments_active(TaskId) const; // includes `connecting`
std::vector<TaskId> starved_tasks() const;
std::optional<SteadyTime> starved_since(TaskId) const;
void on_budget_changed(std::function<void(EngineBudget)>); // 4 Hz + immediate on the
// tasks_starved 0↔nonzero edge
All of it lands with CORE's stage 6 (segmenter/stealer) / stage 8 (download_task) — not on
the M1 critical path ahead of where sched/ needs it, per CORE.
Resolved questions (were open, now answered by CORE)
- Min-1 without priority inversion at slot release — yes, per §3.1 above.
- Probe pool outside the segment budget, size 4 — confirmed, §5.
- Live
set_max_active_segments()— drain, never kill, §2/§3.5. - Priority shape — an ordered
TaskIdlist, pushed on change, not an integer and not per-tick. DAEMON already owns the total order (queue precedence, admission-time tie-break); pushing an integer would force CORE to reimplement tie-breaking, which is DAEMON policy. - Budget-change callback — 4 Hz coalesced, plus an immediate fire on the
tasks_starved0↔non-zero transition so the steady-state invariant check and any UI reaction aren't lagged by up to 250 ms.