The heat economy now bites back, verified under sustained fire: - Ballistic gate 1 (@4bbd36): destroyed-state or own-sink FailureHeat pins full recoil + the unavailable alarm (the NoAmmo roach-motel re-asserts). - CheckForJam (@4bbfcc): p = 0.41*T/failT clamped [minJamChance, 1.0], rolled per granted shot against the MUNGA uniform Random. Interim heat-degraded gate stands in for the deferred LiveFireEnabled novice switch (the exact spurious-cold-jam trap the BT411 port documented). VERIFIED: SRM6s jam at T~1200-1320 after riding past the authored 1000-degree threshold, and stay jammed (mission-reset recovery only) -- authentic. - Emitter hard gate (@4baab9): FailureHeat drops the beam state + charge each frame; SELF-RECOVERING once conduction cools the sink below failure. VERIFIED: the PPC settles into an emergent thermal duty cycle -- fire at ~1930K, spike to 2562K, shutdown, cool, refire -- firing exactly as fast as its sink sheds heat; the lasers oscillate around ~2200K. Zero Fail. Deferred: LiveFireEnabled/HeatModelOff experience gates, mech-disabled gate halves, coolant depletion, jam recovery via mission reset. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
399 lines
11 KiB
C++
399 lines
11 KiB
C++
//===========================================================================//
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// File: projweap.cpp //
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// Project: BattleTech Brick: Mech weapons //
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// Contents: ProjectileWeapon -- ballistic (ammo-fed) weapon base //
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//---------------------------------------------------------------------------//
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// Copyright (C) 1995, Virtual World Entertainment, Inc. //
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// All Rights reserved worldwide //
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// This unpublished sourcecode is PROPRIETARY and CONFIDENTIAL //
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//===========================================================================//
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#include <bt.hpp>
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#pragma hdrstop
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#if !defined(PROJWEAP_HPP)
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# include <projweap.hpp>
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#endif
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#if !defined(MECH_HPP)
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# include <mech.hpp>
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#endif
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#if !defined(AMMOBIN_HPP)
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# include <ammobin.hpp>
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#endif
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#if !defined(RANDOM_HPP)
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# include <random.hpp>
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#endif
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Derivation
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ProjectileWeapon::ClassDerivations(
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MechWeapon::ClassDerivations,
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"ProjectileWeapon"
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);
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ProjectileWeapon::SharedData
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ProjectileWeapon::DefaultData(
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ProjectileWeapon::ClassDerivations,
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MechWeapon::MessageHandlers,
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MechWeapon::AttributeIndex,
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Subsystem::StateCount
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);
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ProjectileWeapon::ProjectileWeapon(
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Mech *owner,
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int subsystem_ID,
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SubsystemResource *subsystem_resource,
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SharedData &shared_data
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):
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MechWeapon(owner, subsystem_ID, subsystem_resource, shared_data),
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ammoBinLink()
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{
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Check(owner);
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Check_Pointer(subsystem_resource);
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tracerInterval = subsystem_resource->tracerInterval;
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minTimeOfFlight = subsystem_resource->minTimeOfFlight;
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minJamChance = subsystem_resource->minJamChance;
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minVoltagePercentToFire = subsystem_resource->minVoltagePercentToFire;
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tracerCounter = 0;
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ejectState = 0;
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totalTimeToEject = 0.0f;
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timeToEject = 0.0f;
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percentOfEject = 0.0f;
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tracerModelHandle = 0;
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leadPosition = Point3D(0.0f, 0.0f, 0.0f);
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launchVelocity = Vector3D(0.0f, 0.0f, 0.0f);
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tracerOrigin = Vector3D(0.0f, 0.0f, 0.0f);
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//
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// Link the AmmoBin subsystem the resource references by roster index (the
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// binary ctor resolves it from the owner's subsystem table and connects the
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// embedded link @0x43C). Shipped content always links a bin; log when the
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// data doesn't resolve one.
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//
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{
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Subsystem *roster_bin = NULL;
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if (subsystem_resource->ammoBinIndex >= 0
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&& subsystem_resource->ammoBinIndex < owner->GetSubsystemCount())
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{
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roster_bin = owner->GetSubsystem(subsystem_resource->ammoBinIndex);
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}
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if (roster_bin != NULL)
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{
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ammoBinLink.Add(roster_bin);
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}
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if (getenv("BT_MECH_LOG"))
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{
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DEBUG_STREAM << "[proj] '" << GetName()
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<< "' ammoBinIndex=" << subsystem_resource->ammoBinIndex
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<< " -> ";
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if (roster_bin != NULL)
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{
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DEBUG_STREAM << roster_bin->GetName()
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<< " (rounds=" << ((AmmoBin *)roster_bin)->GetAmmoCount() << ")";
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}
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else
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{
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DEBUG_STREAM << "<no bin>";
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}
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DEBUG_STREAM << endl << flush;
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}
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}
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//
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// Install the ballistic fire state machine (a replicant copy is driven by
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// console updates instead).
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//
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if (owner->GetInstance() != Entity::ReplicantInstance)
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{
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SetPerformance(&ProjectileWeapon::ProjectileWeaponSimulation);
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}
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Check_Fpu();
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}
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ProjectileWeapon::~ProjectileWeapon()
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{
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}
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Logical
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ProjectileWeapon::TestClass(Mech &)
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{
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return True;
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}
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Logical
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ProjectileWeapon::TestInstance() const
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{
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return IsDerivedFrom(ClassDerivations);
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}
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//
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//#############################################################################
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// FireWeapon The ballistic discharge (PARTIAL -- binary @004bc104). The
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// authentic body is heat + projectile/tracer spawn ONLY: the view/target gate,
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// the ammo pull and the recoil set all live in the CALLER (the Loaded case of
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// ProjectileWeaponSimulation) -- early-returning any gate from here while the
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// caller cycles the alarm anyway is exactly the 1995 "denied shot fakes a full
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// firing cycle" defect class. The projectile spawn (Missile entities /
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// tracer) needs the entity-spawn + targeting waves; MissileLauncher overrides
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// this for the salvo launch.
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//#############################################################################
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//
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void
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ProjectileWeapon::FireWeapon()
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{
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Check(this);
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// Ballistic heatCostToFire is stored 1e7-unit-NATIVE in the stream (SRM6
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// reads 5.06e7 = +641K on its own sink -- the same design magnitude as the
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// PPC's +632K); dump it raw. (The EMITTER's authored value is small and
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// its 1e7 comes from the energy algebra -- see EMITTER.CPP.)
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AddPendingHeat(heatCostToFire);
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if (getenv("BT_MECH_LOG"))
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{
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DEBUG_STREAM << "[fire] '" << GetName()
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<< "' FIRED (ballistic, recharge=" << rechargeRate
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<< "s heat+=" << heatCostToFire << ")"
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<< endl << flush;
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}
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}
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//
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//#############################################################################
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// CheckForJam -- the heat-scaled jam roll (binary @4bbfcc):
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// p = 0.41 * currentTemperature / failureTemperature,
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// clamped to [minJamChance, 1.0], rolled against a uniform random.
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// A jammed launcher clears only on ResetToInitialState (mission reset).
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//
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// TWO interim gates stand in for deferred systems (the BT411 port hit exactly
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// this): the authentic leading gate is LiveFireEnabled() -- the player
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// experience switch (novice mode = no jams), which needs the player-link
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// accessor wave -- and the binary's own `heatLoad <= 0` early-out is trivially
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// true once the heat model runs. Until LiveFireEnabled lands, gate the roll
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// on the sink actually being heat-degraded, so cold weapons fire reliably and
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// jams appear exactly when the heat economy says the weapon is cooking.
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//#############################################################################
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//
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Logical
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ProjectileWeapon::CheckForJam()
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{
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Check(this);
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if (GetHeatState() < DegradationHeat) // interim LiveFireEnabled stand-in
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{
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return False;
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}
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Scalar p = (0.41f * CurrentTemperatureOf()) / failureTemperature;
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if (minJamChance <= p)
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{
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if (p > 1.0f)
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{
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p = 1.0f;
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}
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}
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else
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{
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p = minJamChance;
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}
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return (p > (Scalar)Random) ? True : False;
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}
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//
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//#############################################################################
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// ProjectileWeaponSimulation The ballistic per-frame fire state machine
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// (binary @004bbd04, FULLY RECOVERED in the BT411 RE). The weapon state is
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// carried in the weapon alarm: 0/1/4/6 transient audio blips, 2 Loaded,
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// 3 Loading, 5 Jammed, 7 unavailable/NoAmmo (the roach-motel: nothing in the
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// machine ever leaves it -- only a mission reset does).
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//
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// PARTIAL: the leading PoweredSubsystemSimulation electrical step, the
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// destroyed / FailureHeat / mech-disabled hard gate (gate 1), the magazine
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// eject, the electrical-Ready recoil gate, the heat-scaled jam roll and the
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// HasActiveTarget half of the fire gate are deferred with the power / heat /
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// damage / targeting waves. What runs is authentic in shape: the single
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// trigger-edge sample, the dry-bin gate (gate 2), the Loaded ammo-pull ->
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// Firing -> Loading cycle with the denial blip, the Loading recoil bleed +
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// recharge dial, and the NoAmmo dry-fire blip.
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//
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// DEV hook BT_FORCE_FIRE=1: pulses the trigger whenever the weapon is Loaded
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// (same as the emitter hook) -- every armed weapon auto-fires at its authored
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// cadence until its bin runs dry.
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//#############################################################################
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//
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void
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ProjectileWeapon::ProjectileWeaponSimulation(Scalar time_slice)
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{
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Check(this);
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//
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// The PoweredSubsystem step first (binary @4bbd12): the HeatSink thermal
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// absorb/conduct + the electrical state machine.
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//
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PoweredSubsystem::PoweredSubsystemSimulation(time_slice);
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{
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static int forceFire = -1;
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if (forceFire < 0)
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{
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forceFire = (getenv("BT_FORCE_FIRE") != NULL) ? 1 : 0;
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}
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if (forceFire)
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{
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fireImpulse = (GetWeaponState() == LoadedState) ? 1.0f : 0.0f;
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}
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}
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//
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// The trigger edge is sampled ONCE, before the gates.
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//
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Logical trigger = CheckFireEdge();
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//
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// Gate 1 (@4bbd36): weapon DESTROYED or its own sink at FailureHeat -> pin
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// full recoil + the unavailable alarm. No return -- the frame continues
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// into the state machine (whose NoAmmo case re-asserts). (The owning-mech-
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// disabled half joins with the damage wave.)
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//
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if (GetSimulationState() == 1 || GetHeatState() == FailureHeat)
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{
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if (getenv("BT_MECH_LOG") && GetWeaponState() != NoAmmoState)
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{
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DEBUG_STREAM << "[fire] '" << GetName()
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<< "' -> UNAVAILABLE (gate1: heatState=" << GetHeatState()
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<< " T=" << CurrentTemperatureOf() << ")" << endl << flush;
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}
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recoil = rechargeRate;
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weaponAlarm.SetLevel(NoAmmoState);
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}
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//
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// Gate 2: the linked AmmoBin. Empty (or missing) -> pin unavailable EVERY
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// frame while dry.
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//
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AmmoBin *bin = (AmmoBin *)ammoBinLink.Resolve();
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if (bin != NULL && bin->GetAmmoState() == AmmoBin::AmmoEmptyState)
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{
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if (getenv("BT_MECH_LOG") && GetWeaponState() != NoAmmoState)
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{
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DEBUG_STREAM << "[fire] '" << GetName()
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<< "' -> NoAmmo (bin dry)" << endl << flush;
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}
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weaponAlarm.SetLevel(NoAmmoState);
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}
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switch (GetWeaponState())
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{
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case LoadedState:
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if (trigger)
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{
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if (viewFireEnable)
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{
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//
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// The ammo pull happens HERE, in the caller -- a failed pull
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// just stays Loaded, silently.
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//
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if (bin != NULL && bin->FeedAmmo() != 0)
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{
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weaponAlarm.SetLevel(FiringState);
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ForceUpdate();
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FireWeapon();
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if (bin->GetAmmoState() == AmmoBin::AmmoEmptyState)
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{
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weaponAlarm.SetLevel(NoAmmoState);
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}
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else if (CheckForJam())
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{
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weaponAlarm.SetLevel(JammedState);
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if (getenv("BT_MECH_LOG"))
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{
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DEBUG_STREAM << "[fire] '" << GetName()
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<< "' JAMMED (T=" << CurrentTemperatureOf()
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<< ")" << endl << flush;
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}
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}
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else
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{
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weaponAlarm.SetLevel(LoadingState);
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}
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ForceUpdate();
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recoil = rechargeRate;
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}
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}
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else
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{
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//
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// THE DENIAL BLIP: a shot denied by the look-view gate does
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// SetLevel(4); SetLevel(2) -- a one-frame audio blip, the pip
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// stays Loaded and NO ammo is pulled.
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//
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weaponAlarm.SetLevel(TriggerDuringLoadState);
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weaponAlarm.SetLevel(LoadedState);
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}
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}
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break;
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case LoadingState:
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if (trigger)
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{
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weaponAlarm.SetLevel(TriggerDuringLoadState);
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weaponAlarm.SetLevel(LoadingState);
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}
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//
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// Recoil bleeds ONLY while the electrical supply is Ready (binary
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// @4bbdf5/@4bbe04); at zero (and a round chambered) -> Loaded.
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//
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if (GetVoltageState() == Ready)
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{
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recoil -= time_slice;
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if (recoil < 0.0f)
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{
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recoil = 0.0f;
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if (bin != NULL && bin->GetAmmoState() == AmmoBin::AmmoLoadedState)
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{
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weaponAlarm.SetLevel(LoadedState);
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if (getenv("BT_MECH_LOG"))
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{
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DEBUG_STREAM << "[fire] '" << GetName()
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<< "' LOADED (rounds=" << bin->GetAmmoCount()
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<< " T=" << CurrentTemperatureOf() << ")"
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<< endl << flush;
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}
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}
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}
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}
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ComputeOutputVoltage();
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break;
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case JammedState:
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if (trigger)
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{
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weaponAlarm.SetLevel(TriggerDuringJamState);
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weaponAlarm.SetLevel(JammedState);
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}
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recoil = rechargeRate;
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break;
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case NoAmmoState:
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if (trigger)
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{
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weaponAlarm.SetLevel(DryTriggerState); // the dry-fire blip
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}
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weaponAlarm.SetLevel(NoAmmoState); // re-assert (the roach-motel)
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recoil = rechargeRate;
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ComputeOutputVoltage(); // dial pinned at 0
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break;
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default: // 0/1/4/6: transient audio-blip states, no case body
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break;
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}
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Check_Fpu();
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}
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