"""M11: what the inference server will *actually* accept, as opposed to what we budgeted. M8 found the failure this module exists to prevent. The application budgets a prompt up to `Settings.context_token_budget` — 16,384 by default — while Ollama enforces a window of its own, and on a machine with no VRAM that window defaults to **4,096**. The request still returns HTTP 200. Nothing warns anybody. What actually happens is worse than an error: `llama.cpp` drops the **oldest** tokens, and the oldest tokens in this application are the system block — the narrator rules and the campaign canon. The symptom is a narrator that forgets canon deep into a long session, with nothing on screen explaining why, and every acceptance test that reads a returned 200 as success passing throughout. The invariant M11 requires: The application must not silently budget more narrator input than the configured Ollama runtime will actually accept. Note the word *silently*. There are two honest outcomes and this module produces both: either the window is **verified**, in which case the budget is capped to it so the prompt physically cannot overflow; or it is **unverified**, in which case the assembly says so, in the context report, on the connection test, and in the turn's stored provenance. What must not happen is the third thing — assembling 16,384 tokens against a 4,096-token server and calling the result a turn. ## Why this is not solved by sending `num_ctx` It was tried, and it is documented in `DEVELOPMENT.md`. Ollama's OpenAI-compatible endpoint accepts `num_ctx` — nested in `options` or at the top level — returns 200, and ignores it. Worse, it reloads the model at its own default, so priming the server through the native API first does not help either: the next request resets the window. The window is a property of how the model is loaded, not of the request, so the only things that change it are a model with `num_ctx` baked in (`/api/create`) or `OLLAMA_CONTEXT_LENGTH` on the server. Both are operator actions. This module's job is not to change the window; it is to find out what it is and refuse to lie about it. ## How the window is found Ollama's native API sits beside the OpenAI-compatible one on the same host, so this asks the server the application is already talking to, and nothing else. No new destination, the same endpoint policy, the same TLS trust store. /api/ps a loaded model reports `context_length`: the window the runtime is enforcing *right now*. This is the truth when it is available. /api/show an unloaded model may carry `num_ctx` in its baked parameters, which is the window it will load with; `model_info` carries the architecture's own ceiling, which caps everything else. `/api/ps` is asked first because a model that is loaded has already settled the question. `/api/show` answers it for a model that is not loaded yet, which is the ordinary case at the start of a session. ## What it deliberately does not do It does not hard-code 4,096, which would cripple a correctly configured deployment; it does not raise the budget, which is the operator's decision; it does not fall back to a cloud probe, a bundled table of model sizes, or a guess from the model's name. An unknown window is reported as unknown. ## The server that cannot be asked Discovery above is Ollama's native API. Nothing restricts `endpoint_url` to Ollama — any allowed address serving an OpenAI-compatible `/v1` is accepted — and on vLLM, llama.cpp's own server, or anything else, `/api/ps` and `/api/show` are simply not there. Discovery then fails exactly as designed and the window is reported unknown, which is honest but leaves the invariant at the top of this file unenforced: the budget stands at whatever is configured, and if that server enforces a smaller window it drops the oldest tokens again. `context_window_override` is the operator's answer to that. It is a number the operator states because they know how the server was launched, and it is used **only when the server could not be asked**: verified window -> always wins; a declaration cannot raise it no verified window -> the declaration becomes the ceiling, source DECLARED neither -> unknown, exactly as before This does not weaken what `verified` claims. `verified` still means the server itself answered, so `window_verified` in a turn's provenance keeps the meaning the M11 report gives it, and a declared window is identifiable as a declaration wherever it appears. What the declaration buys is enforcement: the prompt is capped, so the failure mode is a shorter prompt rather than a silently truncated one. """ from __future__ import annotations import logging import re import time from dataclasses import dataclass import httpx from . import endpoints, tlstrust log = logging.getLogger(__name__) #: Short, because this sits in the turn path. A server that does not answer in #: two seconds has told us what we need to know: we cannot verify the window #: right now, and the turn should proceed unverified rather than stall. PROBE_TIMEOUT = 2.0 CONNECT_TIMEOUT = 1.5 #: A verified window is stable — it changes when an operator reloads a model — #: so it is worth keeping. A failure is cached too, and for much less time, #: because the commonest cause is a server that is starting up. POSITIVE_TTL = 600.0 NEGATIVE_TTL = 60.0 #: Sources, in the order of how much they prove. LOADED = "loaded" # /api/ps: what the runtime is enforcing now PARAMETERS = "parameters" # /api/show: what the model will load with DECLARED = "declared" # the operator said so; the server could not be asked UNKNOWN = "unknown" #: Sources that mean *the server answered*, as opposed to somebody asserting. FROM_SERVER = (LOADED, PARAMETERS) @dataclass(frozen=True) class Window: """What was learned about the server's input window, and how.""" #: The total context in tokens — input *and* output share it — or None when #: it could not be determined. tokens: int | None #: One of LOADED, PARAMETERS, UNKNOWN. source: str #: The architecture's own ceiling, when the server reported one. Useful to a #: reader deciding whether raising the window is even possible. model_max: int | None = None #: Why the window is unknown, or how it was found. Shown to the user. detail: str = "" @property def verified(self) -> bool: """The **server** answered. An operator's declaration is not this. Kept narrow on purpose. `window_verified` travels in every turn's stored provenance and the M11 report counts on it meaning one thing: that the runtime was asked and replied. A declaration is a person's claim about a server, which is worth acting on and is not the same evidence. """ return self.tokens is not None and self.source in FROM_SERVER @property def enforceable(self) -> bool: """There is a number to cap the prompt to, whoever supplied it.""" return self.tokens is not None UNVERIFIED = Window(tokens=None, source=UNKNOWN, detail="not checked") _cache: dict[tuple[str, str], tuple[float, Window]] = {} def native_base(endpoint_url: str) -> str: """The Ollama-native base beside an OpenAI-compatible endpoint. `https://host:1234/v1` -> `https://host:1234`. Anything else is used as given, because an endpoint that is not shaped like Ollama's is one this cannot interrogate and should not guess about. """ trimmed = (endpoint_url or "").rstrip("/") return re.sub(r"/v1$", "", trimmed) def effective_budget(configured: int, window: Window | int | None) -> int: """The budget the prompt may actually use. The whole enforcement, in one line: a known window is a ceiling — whether the server reported it or the operator declared it. The configured budget still wins when it is *smaller*, because a reader who has deliberately asked for a shorter prompt should get one. """ tokens = window.tokens if isinstance(window, Window) else window if tokens is None or tokens <= 0: return configured return min(configured, tokens) def cache_clear() -> None: """Forgets what was learned. Called when the endpoint or model changes.""" _cache.clear() async def probe(endpoint_url: str, model: str, *, declared: int | None = None, use_cache: bool = True) -> Window: """What window `model` gets, asked of the server and only then declared. Returns `UNVERIFIED` for every discovery failure — refused endpoint, unreachable server, TLS failure, a server with no Ollama-native API, an unparseable answer — unless `declared` supplies a number to fall back on. The caller cannot act differently on those failures and the reader is told the same thing either way: the window could not be checked. `declared` is `Settings.context_window_override`. It never overrides a verified answer, so an operator cannot talk the application into a bigger prompt than the runtime will read; it only fills a gap discovery left. """ if not endpoint_url or not model: return _declared_or(declared, Window(None, UNKNOWN, detail="no endpoint or model configured")) discovered = await _discover(endpoint_url, model, use_cache=use_cache) return _declared_or(declared, discovered) def _declared_or(declared: int | None, discovered: Window) -> Window: """The operator's number, but only where the server left a hole. A verified window always wins. That ordering is the whole safety property: a declaration can lower an unknown ceiling into existence, never raise a known one. """ if discovered.verified: return discovered if not declared or declared <= 0: return discovered return Window( declared, DECLARED, discovered.model_max, f"{declared:,} tokens, declared in settings — the server was not able " f"to say ({discovered.detail})", ) async def _discover(endpoint_url: str, model: str, *, use_cache: bool = True) -> Window: """The server's own answer, cached. Knows nothing about declarations. The cache holds only what was discovered, so changing the declared override takes effect on the next turn without having to clear anything: the declaration is layered on afterwards, in `_declared_or`. """ key = (endpoint_url, model) now = time.monotonic() if use_cache: hit = _cache.get(key) if hit is not None and hit[0] > now: return hit[1] window = await _ask(endpoint_url, model) ttl = POSITIVE_TTL if window.verified else NEGATIVE_TTL _cache[key] = (now + ttl, window) return window async def _ask(endpoint_url: str, model: str) -> Window: # The same policy the turn itself is held to. A window probe must not be a # way to reach an address inference may not (ADR 011, H12). reason = endpoints.rejection_reason(endpoint_url) if reason is not None: return Window(None, UNKNOWN, detail=f"endpoint not allowed — {reason}") base = native_base(endpoint_url) try: async with httpx.AsyncClient( timeout=httpx.Timeout(PROBE_TIMEOUT, connect=CONNECT_TIMEOUT), verify=tlstrust.ssl_context(), ) as client: loaded = await _loaded_window(client, base, model) if loaded is not None: tokens, ceiling = loaded return Window( tokens, LOADED, ceiling, f"{tokens:,} tokens, reported by the running model", ) return await _declared_window(client, base, model) except (httpx.HTTPError, ValueError, TypeError, KeyError) as exc: log.debug("context window probe failed for %s: %s", base, exc) return Window(None, UNKNOWN, detail=f"could not ask the server ({type(exc).__name__})") async def _loaded_window(client, base: str, model: str): """`/api/ps`: the window a resident model is actually being served with.""" resp = await client.get(f"{base}/api/ps") if resp.status_code != 200: return None for entry in (resp.json() or {}).get("models") or []: if entry.get("name") == model or entry.get("model") == model: tokens = entry.get("context_length") if isinstance(tokens, int) and tokens > 0: return tokens, None return None async def _declared_window(client, base: str, model: str) -> Window: """`/api/show`: what the model will load with, and its architectural cap.""" resp = await client.post(f"{base}/api/show", json={"model": model}) if resp.status_code != 200: return Window( None, UNKNOWN, detail=f"the server did not describe the model (HTTP {resp.status_code})", ) body = resp.json() or {} ceiling = _architecture_ceiling(body.get("model_info") or {}) declared = _num_ctx(body.get("parameters")) if declared is None: return Window( None, UNKNOWN, ceiling, detail=( "the model sets no num_ctx, so the server will load it at its own " "default — which is 4,096 where there is no VRAM" ), ) tokens = min(declared, ceiling) if ceiling else declared return Window( tokens, PARAMETERS, ceiling, f"{tokens:,} tokens, from the model's own num_ctx", ) def _num_ctx(parameters) -> int | None: """Reads `num_ctx` out of the plain-text parameter block Ollama returns.""" if not isinstance(parameters, str): return None match = re.search(r"^\s*num_ctx\s+(\d+)\s*$", parameters, re.MULTILINE) return int(match.group(1)) if match else None def _architecture_ceiling(model_info: dict) -> int | None: """`.context_length` — the largest window this model can have.""" for key, value in model_info.items(): if key.endswith(".context_length") and isinstance(value, int) and value > 0: return value return None