/**
 * # fill/model — the FillModel seam: a floor judge and a ceiling judge (RUNTIME §6)
 *
 * One seam sits under every mode of grading: `FillModel.assess(order, leg, ctx) → { fill?,
 * pFill, kind }`. Every plan **and the structural null cross the same fill model**, so
 * strategies are compared on fills, not on fill assumptions (ARCHITECTURE §4). A fill model
 * never returns a bare boolean — it returns a definite floor `fill?` (present only when the
 * conservative strict-cross rule fires) *and* a per-assessment probability `pFill` the engine
 * accumulates for expected-value accounting.
 *
 * Two implementations, deliberately a floor and a ceiling:
 *
 * - {@link StrictCrossV1} — the **floor judge**. A resting order fills only when the tape
 *   quote strictly crosses its price (a BUY fills iff the leg's ask moves *strictly below*
 *   the resting price; symmetric for a SELL vs the bid). Same-price never fills; a dark side
 *   never fills. `pFill ∈ {0, 1}`. Conservative by construction — it under-counts fills, so a
 *   strategy that clears it clears any honest model.
 *
 * - {@link MakerFairV1} — the **ceiling judge**. Strict-cross ∪ a calibrated hazard of being
 *   filled while resting at/near `fair`. The hazard **parameters are injected as a typed data
 *   object** (a constructor arg): calibration is versioned *input*, not code. The shipped
 *   default ({@link MAKER_FAIR_DEFAULT_HAZARD}) is clearly labelled **uncalibrated** — it
 *   exists to make the model runnable, never to assert a fill rate.
 *
 * Both are pure functions of their arguments (no wall clock, no RNG — RUNTIME §0). All time
 * enters as `ctx.dtSinceLast` (milliseconds since this order's previous assessment), injected
 * by the engine from the bus clock.
 */
import type { OptionQuote, Right } from "../bus/index.ts";
import type { FillSupport } from "../support/index.ts";
export type { FillSupport } from "../support/index.ts";
export { isCalibratedSupport } from "../support/index.ts";
import { type Moneyness } from "./guarded-intent.ts";
export { classifyMoneyness, MONEYNESS_ATM_BAND, MONEYNESS_DEEP_OTM_FRAC, SELL_FAR_OTM_CAP, BUY_FAR_OTM_CROSSING, } from "./guarded-intent.ts";
export type { Moneyness } from "./guarded-intent.ts";
/** The order fields a fill model reads — a defined-risk, single option leg at a resting
 * price. `px` is the resting limit; the strike/right locate the leg on the book. */
export interface FillOrderView {
    readonly side: "buy" | "sell";
    readonly qty: number;
    /** The resting limit price. A floor fill always fills *at this price* (RUNTIME §6). */
    readonly px: number;
    readonly strike: number;
    readonly right: Right;
    /** Coarse moneyness vs the underlier, for the directional far-OTM guard.
     * Absent ⇒ symmetric legacy path (guard cannot fire). */
    readonly moneyness?: Moneyness;
    /** `true` when this leg is the **covering wing of a multi-leg defined-risk package** (a
     * vertical / condor / fly that fills as a combo, anchored by its near leg). A covered far-OTM
     * short is NOT the standalone-offer fantasy, so the sell-far-OTM cap does not apply to it
     * (penalizing it would kill every defined-risk spread). Default (absent /
     * `false`) ⇒ standalone. */
    readonly covered?: boolean;
}
/** Everything a model needs beyond the order and the book leg: the engine's ExecutionFair
 * for this leg (absent when unbuildable — the model then falls back to the floor only) and
 * the time since this order's previous assessment (ms, injected — RUNTIME §0). */
export interface FillAssessCtx {
    /** ExecutionFair for the leg (`@fair`), when the engine could build it. Absent ⇒ dark. */
    readonly fair?: number;
    /** Milliseconds since this order was last assessed. `0` on the first look after placement
     * or on a same-timestamp update; negative inputs are treated as `0` (causal, never
     * rewound). */
    readonly dtSinceLast: number;
}
/** A single assessment. `fill` is the **definite floor outcome** — present only when the
 * conservative strict-cross rule fires (then `pFill` is `1`). When `fill` is absent, `pFill`
 * is the **per-assessment** probability the engine folds into a survival product for E[$]
 * accounting. `kind` names why (`"cross"`, `"hazard"`, `"no-cross"`, `"no-fair"`).
 *
 * `episodeKey` opts a model into **per-episode** (not per-look) accrual: when present the engine
 * folds `pFill` into the survival product **only when the key changes** from the order's last
 * accrued episode (a fresh resting stint), and contributes nothing on a same-key re-look — a
 * Bernoulli per resting EPISODE rather than a per-second hazard. Absent ⇒ the legacy per-look
 * (time-integrated) accrual. */
export interface FillAssessment {
    readonly fill?: {
        readonly qty: number;
        readonly px: number;
    };
    readonly pFill: number;
    readonly kind: string;
    readonly episodeKey?: string;
    /** The per-assessment **support flag** ({@link FillSupport}): is this cell
     * covered by realized live data (`"calibrated"`) or priced off the offline ceiling with no live
     * anchor (`"extrapolated"`)? A structural strict-cross outcome is `"calibrated"` (a price-priority
     * fact, not an extrapolation); an uncalibrated hazard cell and the far-OTM-offer / dark-level-lift
     * internalization regions are `"extrapolated"`. A grader **REFUSES to bank expected-$ from an
     * extrapolated cell** ({@link isCalibratedSupport}) so strategies cannot hill-climb into
     * uncalibrated corners of the fill model. Optional/additive: a missing flag is treated
     * conservatively downstream (not bankable). */
    readonly support?: FillSupport;
}
/** How a model stamps its calibration on a grade (RUNTIME §6 / ADR-0006: every grade stamps
 * its judge). A pure floor model has none; a hazard model carries its versioned data. */
export interface FillCalibration {
    readonly version: string;
    readonly calibrated: boolean;
}
/**
 * One thing this fill model (the judge) **structurally could NOT observe** — a stable machine `code`
 * plus an honest human `note` (a57.4). Each is a documented structural fact of the model, not a
 * fabrication, so a downstream consumer cannot OVER-CLAIM realism the judge never had. This is the exact
 * shape the Blotter's fidelity `self_limitation` carries; the model DECLARES it (rather than a downstream
 * name-string lookup guessing it), so a calibrated model can never be silently mislabelled.
 */
export interface FillLimit {
    /** A stable, lexical machine token for the limit (e.g. `no-queue-position`). */
    readonly code: string;
    /** The honest human phrasing of what the judge could not see. */
    readonly note: string;
}
/** {@link StrictCrossV1}'s self-limitation: the shared tape limits + it credits a fill ONLY on a strict
 * tape cross (a conservative floor; no passive/maker fills). */
export declare const STRICT_CROSS_LIMITS: readonly FillLimit[];
/** The maker-fair judges' self-limitation: the shared tape limits + a MODELED passive fill near fair (not
 * an observed execution). Shared by {@link MakerFairV1} and the CALIBRATED {@link MakerFairCalV1}: both
 * observe the same recorded top-of-book tape and both model passive fills, so the calibrated judge DERIVES
 * its declaration from here rather than falling through to an "unstated" fail-closed default. */
export declare const MAKER_FAIR_LIMITS: readonly FillLimit[];
/** The one seam. Implementations are pure; time is injected via {@link FillAssessCtx}. */
export interface FillModel {
    readonly name: string;
    readonly version: string;
    /** The calibration data behind this model, when it has any (stamped on reports). */
    readonly calibration?: FillCalibration;
    /** What this judge structurally could NOT observe (a57.4) — declared by the model itself, in a stable
     * order, so it rides the graded META and reaches the Blotter's fidelity stamp WITHOUT a downstream
     * name-string lookup that could silently mislabel a calibrated model. */
    readonly self_limitation: readonly FillLimit[];
    assess(order: FillOrderView, leg: OptionQuote, ctx: FillAssessCtx): FillAssessment;
}
/**
 * The strict-cross floor rule (RUNTIME §6) — a QUOTE cross **or** a TRADE-through print, the two
 * deterministic, calibration-free ways the recorded tape hands a resting order a definite fill:
 *
 * - **Quote cross.** A resting BUY fills iff the leg's ask is present and **strictly below** the
 *   resting price; a resting SELL iff the bid is present and **strictly above** it. Same-price is
 *   *not* a cross (`<` / `>`, never `≤` / `≥`); a dark side (`null`) never crosses.
 * - **Trade-through** (kestrel-9gu.9). A resting BUY also fills when a trade **prints at or
 *   through** its price (`leg.last ≤ px`); a resting SELL when `leg.last ≥ px`. RUNTIME §6 defines
 *   strict-cross on "trade prints/quotes moving through the level" — `OptionQuote.last` carries
 *   those prints, yet no fill path read it (the 9gu.9 gap). A print AT the resting level is a real
 *   execution the passive order shared, so it is at-or-through (`≤`/`≥`), not the strict `<`/`>` of
 *   the quote rule. Deterministic and immediately bankable (a recorded print, not a modeled hazard).
 *
 * **Same-price doctrine split vs spot (kestrel-0gnb).** The two arms read a same-price *trade
 * print* differently, and its spot sibling {@link ../fill/spot.ts spotStrictCross} reads it the
 * OTHER way: this options arm is *at-or-through* (a fresh print AT the level fills), while the spot
 * arm is strictly-through (`<`/`>`) and REFUSES same-price, because the quote-less catalog tapes
 * leave queue position unknowable there whereas the option tape's fresh `last` is an execution the
 * passive order shared. Both are floor-legal; spot is strictly the more conservative reading. The
 * two share the `strict-cross` judge NAME, so an option-vs-equity comparison under one stamp must
 * key the same-price rule on the arm, not the name. (Reconciling the two would be a semantics
 * change needing its own review.)
 *
 *   **Freshness is the ENGINE's contract, not this function's.** The tape converter carries `last`
 *   forward session-cumulatively (99%+ of last-bearing leg-events on the recorded tapes are stale
 *   carries), and a pure per-look rule cannot tell a fresh execution from a morning print an
 *   afternoon order never interacted with. {@link ../fill/engine.ts SimFillEngine} owns the
 *   cross-event print memory and hands `assess` a leg whose `last` is PRESENT only when the print
 *   CHANGED on this event (fresh; a first sighting is inert). This function therefore treats a
 *   present `last` as fresh — a caller that bypasses the engine must gate freshness itself.
 *
 * Either condition is a definite fill, always AT the resting price (RUNTIME §6). This is the
 * conservative core all three models share (both call sites strict-cross-first).
 */
export declare function strictCross(order: FillOrderView, leg: OptionQuote): boolean;
/**
 * Apply the directional far-OTM asymmetry to a **symmetric** maker hazard `pSym` — the LEGACY
 * positional adapter, retained so existing direct callers keep one call shape. It builds a
 * {@link GuardedIntent} and delegates to {@link guardedPfill} (fill/guarded-intent), which is the
 * single owner of the cap decision; this function adds NO logic of its own. New code on the fill path
 * consumes `guardedPfill(pSym, guardedIntentOf(order))` directly.
 */
export declare function directionalPfill(pSym: number, opts: {
    readonly isBuy: boolean;
    readonly moneyness?: Moneyness | undefined;
    readonly covered?: boolean | undefined;
}): number;
/** The floor judge: fills only on a strict tape cross, at the resting price, with
 * `pFill ∈ {0, 1}`. It ignores `fair` and time entirely — the most conservative honest
 * model. */
export declare class StrictCrossV1 implements FillModel {
    readonly name = "strict-cross";
    readonly version = "v1";
    readonly self_limitation: readonly FillLimit[];
    assess(order: FillOrderView, leg: OptionQuote, _ctx: FillAssessCtx): FillAssessment;
}
/**
 * Hazard parameters for {@link MakerFairV1} — **versioned calibration data, injected as a
 * constructor argument, never hard-coded logic.** A resting maker order near `fair` gets
 * filled by passing flow at a per-second hazard rate that decays as the order rests further
 * from fair. Calibrating this against realized live fills produces a new record with a new
 * `version`; EVs across versions do not naively compare (RUNTIME §6).
 */
export interface MakerFairHazardParams {
    /** Calibration identity, stamped on every grade. */
    readonly version: string;
    /** `false` for any set not fit to realized fills — the shipped default is `false`. */
    readonly calibrated: boolean;
    /** Fill hazard **per second** at zero edge (resting exactly at fair). */
    readonly baseHazardPerSec: number;
    /** The relative-edge e-folding scale: at `edgeRel = edgeScale` the hazard rate is `1/e` of
     * its at-fair value. `edgeRel = |px − fair| / max(|fair|, fairFloor)`. */
    readonly edgeScale: number;
    /** Floor for the fair denominator, so a near-zero fair does not explode the relative
     * edge. */
    readonly fairFloor: number;
}
/**
 * The shipped default hazard set — **UNCALIBRATED**. It exists only so `maker-fair-v1` is
 * runnable out of the box; it asserts no real fill rate. A live-fit calibration file replaces
 * it as versioned input (RUNTIME §6). `calibrated: false` is what a report stamps.
 */
export declare const MAKER_FAIR_DEFAULT_HAZARD: MakerFairHazardParams;
/**
 * The per-assessment fill hazard: `1 − exp(−λ(edge)·dt)`, with `λ(edge) = baseHazardPerSec ·
 * exp(−edgeRel / edgeScale)`. Monotone **increasing** in `dtMs` (longer at rest ⇒ more likely
 * to have been hit) and **decreasing** in `edgeRel` (further from fair ⇒ less flow interacts).
 * A non-positive `dtMs` yields `0` (no time elapsed, no hazard). Pure. The exponentials are the
 * vendored {@link dexp}, not `Math.exp`, so the hazard is bit-identical across V8/JSC on the
 * certified-grade path (see {@link ../fair/detmath.ts}).
 */
export declare function makerFairHazard(params: MakerFairHazardParams, edgeRel: number, dtMs: number): number;
/**
 * The ceiling judge: strict-cross ∪ a hazard of being filled while resting at/near `fair`.
 * On a strict cross it returns a definite floor fill (`pFill = 1`). Otherwise, if `fair` is
 * available, it returns the per-assessment hazard as `pFill` (no `fill`); with no `fair` it
 * degrades to the floor only (`pFill = 0`) — conservative, fail-closed.
 */
export declare class MakerFairV1 implements FillModel {
    readonly name = "maker-fair";
    readonly version = "v1";
    readonly self_limitation: readonly FillLimit[];
    readonly params: MakerFairHazardParams;
    constructor(params?: MakerFairHazardParams);
    get calibration(): FillCalibration;
    assess(order: FillOrderView, leg: OptionQuote, ctx: FillAssessCtx): FillAssessment;
}
/** The per-side constants of the {@link EpisodeSigmoidParams} form. `uStar` is `null` on a
 * saturated side (the sigmoid degenerates to the constant `rho`). */
export interface EpisodeSigmoidSide {
    readonly alpha: number;
    readonly uStar: number | null;
    readonly rho: number;
    readonly floor: number;
    readonly saturated: boolean;
    readonly internalizationFloor: number;
}
/**
 * The `episode-sigmoid-u-v1` fill-hazard form — **versioned calibration DATA** loaded from a
 * private JSON, never hard-coded numbers. A resting order's per-episode fill probability is a
 * sigmoid in the **side-signed aggression axis** `u = a / halfSpread`, where `a = px − fair`
 * for a BUY and `a = fair − px` for a SELL (u<0 passive, 0 at-fair, >0 crossed) and `halfSpread`
 * is the leg's current `(ask − bid)/2`:
 *
 *   `p(u) = floor + (rho − floor)·sigmoid(alpha·(u − u_star))`
 *
 * A **saturated** side (alpha≈0 ⇒ SELL) degenerates to the constant `p = rho`. A **dark / one-
 * sided** book (no half-spread, so `u` is undefined) is a LEVEL lift: `p = internalizationFloor`
 * (a lone-bid/PFOF hazard), never a `u_star` shift. It is a per-RESTING-EPISODE Bernoulli, not a
 * per-second hazard (measured time-to-fill is near-instant — median 0s — so time-at-rest adds no
 * accrual); the engine folds one `p` per episode via {@link FillAssessment.episodeKey}. */
export interface EpisodeSigmoidParams {
    readonly version: string;
    readonly buy: EpisodeSigmoidSide;
    readonly sell: EpisodeSigmoidSide;
}
/**
 * Validate and load {@link EpisodeSigmoidParams} from a parsed calibration JSON (the private
 * `hazard_constants.{BUY,SELL}` schema). Fails **loud** on a missing/malformed field — a
 * calibration you cannot read is never silently defaulted (RUNTIME §8). The private numbers stay
 * in the (gitignored) data file; only the shape is asserted here.
 */
export declare function loadEpisodeSigmoidParams(raw: unknown): EpisodeSigmoidParams;
/**
 * The calibrated ceiling judge (`episode-sigmoid-u-v1`). Strict-cross ∪ the per-episode sigmoid
 * hazard above. It returns an {@link FillAssessment.episodeKey} (`"lit"` / `"dark"`) so the
 * engine accrues **one Bernoulli per resting episode** (placement, each reprice = a new order/
 * episode, and each dark↔lit transition = a new episode) rather than integrating over time.
 */
export declare class MakerFairCalV1 implements FillModel {
    readonly name: string;
    readonly version = "cal";
    readonly self_limitation: readonly FillLimit[];
    readonly params: EpisodeSigmoidParams;
    constructor(params: EpisodeSigmoidParams);
    get calibration(): FillCalibration;
    assess(order: FillOrderView, leg: OptionQuote, ctx: FillAssessCtx): FillAssessment;
}
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