176 lines
4.8 KiB
Go
176 lines
4.8 KiB
Go
package sim
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import (
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"fmt"
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"sort"
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"wh/config"
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"wh/fixed"
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"wh/vm"
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"wh/world"
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)
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// RunDay simulates one full day, mutating the state, and returns the result.
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func (s *State) RunDay(cfg config.Config, in DayInput) (DayResult, error) {
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if err := cfg.Validate(); err != nil {
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return DayResult{}, err
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}
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res := DayResult{Day: s.Day}
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dayStart := s.Day * config.SecondsPerDay
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dt := int64(cfg.TickSeconds())
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// Launches: ships appear at the station, matching its velocity.
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stPos, stVel := s.Station.Orbit.State(dayStart)
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for _, l := range in.Launches {
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if len(l.Program) > cfg.ProgramBytes {
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return res, fmt.Errorf("ship %d: program of %d bytes exceeds limit %d", l.ShipID, len(l.Program), cfg.ProgramBytes)
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}
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cpu, err := vm.New(l.Program, cfg.RAMBytes)
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if err != nil {
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return res, fmt.Errorf("ship %d: %w", l.ShipID, err)
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}
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s.Ships = append(s.Ships, &Ship{
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ID: l.ShipID, Owner: l.Owner, Hull: CommandShip,
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Pos: stPos, Vel: stVel, Fuel: fixed.FromInt(CommandShip.FuelCap),
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CPU: cpu, Alive: true,
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})
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res.Events = append(res.Events, Event{0, l.ShipID, "launch", ""})
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}
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sort.Slice(s.Ships, func(i, j int) bool { return s.Ships[i].ID < s.Ships[j].ID })
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// Uplinks land in the RX buffer at the start of RAM.
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for _, u := range in.Uplinks {
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sh := s.ship(u.ShipID)
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if sh == nil || !sh.Alive {
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continue
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}
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n := len(u.Data)
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if n > cfg.CommBytes {
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n = cfg.CommBytes
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}
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copy(sh.CPU.RAM[:cfg.CommBytes], u.Data[:n])
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sh.UplinkNew, sh.UplinkLen = true, int32(n)
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}
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var sold [world.NumOre]int64
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for tick := 0; tick < cfg.TicksPerDay; tick++ {
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now := dayStart + int64(tick)*dt
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stPos, stVel = s.Station.Orbit.State(now)
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tc := newTickCtx(s, cfg, tick, now, stPos, stVel, &res, &sold)
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for _, sh := range s.Ships {
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if !sh.Alive {
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continue
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}
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sh.CPU.Run(&shipBus{tc: tc, sh: sh}, cfg.CyclesPerTick)
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s.physics(cfg, sh, dt, tick, &res)
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if sh.Alive && sh.Mining {
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s.mine(sh, tc.now+dt)
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}
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}
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}
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for _, sh := range s.Ships {
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if sh.Alive {
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res.Downlinks = append(res.Downlinks, Downlink{
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ShipID: sh.ID,
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Data: append([]byte(nil), sh.CPU.RAM[cfg.CommBytes:2*cfg.CommBytes]...),
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})
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}
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sh.UplinkNew = false
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}
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s.Market.EndOfDay(sold)
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s.Day++
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res.Hash = s.Hash()
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return res, nil
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}
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func (s *State) ship(id int64) *Ship {
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i := sort.Search(len(s.Ships), func(i int) bool { return s.Ships[i].ID >= id })
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if i < len(s.Ships) && s.Ships[i].ID == id {
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return s.Ships[i]
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}
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return nil
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}
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// physics applies gravity and engine thrust for one tick (semi-implicit Euler).
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func (s *State) physics(cfg config.Config, sh *Ship, dt int64, tick int, res *DayResult) {
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dtF := fixed.FromInt(dt)
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// Engine.
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if sh.Throttle > 0 && sh.Fuel > 0 {
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th := int64(sh.Throttle)
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if th > 1000 {
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th = 1000
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}
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thrust := sh.Hull.Thrust * th / 1000
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burn := fixed.FromInt(thrust * dt).Div(fixed.FromInt(sh.Hull.ExhaustVel))
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if burn > sh.Fuel {
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// Partial burn: scale the impulse by the remaining fuel.
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thrust = thrust * int64(sh.Fuel) / int64(burn)
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burn = sh.Fuel
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}
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// dv (km/s) = thrust*dt / mass / 1000.
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dv := fixed.FromInt(thrust * dt).Div(sh.Mass()).DivInt(1000)
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sh.Vel = sh.Vel.Add(thrustDir(sh).Scale(dv))
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sh.Fuel -= burn
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}
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// The star pulls with acceleration v^2/r, so dv = v*v*dt/r toward it.
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r := sh.Pos.Len()
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if r < fixed.FromInt(StarRadiusKm) {
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sh.Alive = false
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res.Events = append(res.Events, Event{tick, sh.ID, "destroyed", "fell into the star"})
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return
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}
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g := cfg.OrbitSpeed.Mul(cfg.OrbitSpeed).Mul(dtF).Div(r)
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sh.Vel = sh.Vel.Sub(sh.Pos.Unit().Scale(g))
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sh.Pos = sh.Pos.Add(sh.Vel.Scale(dtF))
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}
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func (s *State) canReach(sh *Ship, pos, vel fixed.Vec, rangeKm int64) bool {
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rel := pos.Sub(sh.Pos)
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relV := vel.Sub(sh.Vel)
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return rel.Len() <= fixed.FromInt(rangeKm) &&
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relV.Len() <= fixed.FromRatio(MaxRelSpeedM, 1000)
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}
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// mine moves ore from the target asteroid into the ship's hold, split
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// proportionally to the asteroid's composition. at is the absolute time (s)
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// at which range is evaluated.
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func (s *State) mine(sh *Ship, at int64) {
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a := s.asteroid(sh.Target)
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if a == nil {
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return
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}
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total := a.TotalOre()
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room := sh.Hull.CargoCap - sh.CargoTotal()
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amt := min(sh.Hull.MineRate, room, total)
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if amt <= 0 {
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return
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}
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pos, vel := a.Orbit.State(at)
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if !s.canReach(sh, pos, vel, MineRangeKm) {
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return
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}
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var taken [world.NumOre]int64
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var sum int64
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for o := range taken {
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taken[o] = amt * a.Ore[o] / total
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sum += taken[o]
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}
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for o := range taken {
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extra := min(amt-sum, a.Ore[o]-taken[o])
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taken[o] += extra
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sum += extra
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}
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for o, kg := range taken {
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a.Ore[o] -= kg
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sh.Cargo[o] += kg
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}
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}
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// thrustDir converts the ship's azimuth/pitch (milliradians) to a unit vector.
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func thrustDir(sh *Ship) fixed.Vec {
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az := fixed.FromRatio(int64(sh.Azimuth), 1000)
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el := fixed.FromRatio(int64(sh.Pitch), 1000)
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return fixed.FromSpherical(az, el)
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}
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