220 lines
5.3 KiB
Go
220 lines
5.3 KiB
Go
package sim
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import (
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"wh/config"
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"wh/fixed"
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"wh/world"
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)
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// tickCtx is per-tick shared context; asteroid positions are computed lazily
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// and cached because several ships may query them in one tick.
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type tickCtx struct {
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s *State
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cfg config.Config
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tick int
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now int64
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stPos fixed.Vec
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stVel fixed.Vec
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res *DayResult
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sold *[world.NumOre]int64
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astPos, astVel []fixed.Vec
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astDone []bool
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}
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func newTickCtx(s *State, cfg config.Config, tick int, now int64, stPos, stVel fixed.Vec, res *DayResult, sold *[world.NumOre]int64) *tickCtx {
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n := len(s.Asteroids)
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return &tickCtx{s: s, cfg: cfg, tick: tick, now: now, stPos: stPos, stVel: stVel, res: res, sold: sold,
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astPos: make([]fixed.Vec, n), astVel: make([]fixed.Vec, n), astDone: make([]bool, n)}
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}
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func (tc *tickCtx) asteroid(i int) (fixed.Vec, fixed.Vec) {
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if !tc.astDone[i] {
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tc.astPos[i], tc.astVel[i] = tc.s.Asteroids[i].Orbit.State(tc.now)
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tc.astDone[i] = true
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}
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return tc.astPos[i], tc.astVel[i]
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}
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// shipBus is one ship's view of its peripherals for one tick.
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type shipBus struct {
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tc *tickCtx
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sh *Ship
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}
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func sat32(v int64) int32 {
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if v > 1<<31-1 {
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return 1<<31 - 1
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}
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if v < -1<<31 {
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return -1 << 31
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}
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return int32(v)
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}
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func kmInt(f fixed.F) int32 { return sat32(f.Floor()) }
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// mps converts km/s to whole m/s.
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func mps(f fixed.F) int32 { return sat32(f.MulInt(1000).Floor()) }
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func (b *shipBus) target() (pos, vel fixed.Vec, ok bool) {
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id := b.sh.Target
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if id < 1 || id > int64(len(b.tc.s.Asteroids)) {
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return pos, vel, false
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}
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pos, vel = b.tc.asteroid(int(id - 1))
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return pos, vel, true
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}
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// axis returns component (port-base) of v (0=X, 1=Y, 2=Z) using conv, for
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// ports laid out as three consecutive X, Y, Z registers.
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func axis(v fixed.Vec, port, base uint16, conv func(fixed.F) int32) int32 {
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switch port - base {
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case 0:
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return conv(v.X)
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case 1:
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return conv(v.Y)
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}
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return conv(v.Z)
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}
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func (b *shipBus) In(port uint16) int32 {
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sh, tc := b.sh, b.tc
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switch {
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case port == PortTick:
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return int32(tc.tick)
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case port == PortDay:
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return sat32(tc.s.Day)
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case port == PortTicks:
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return int32(tc.cfg.TicksPerDay)
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case port >= PortPosX && port <= PortPosZ:
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return axis(sh.Pos, port, PortPosX, kmInt)
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case port >= PortVelX && port <= PortVelZ:
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return axis(sh.Vel, port, PortVelX, mps)
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case port == PortFuel:
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return sat32(sh.Fuel.Floor())
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case port == PortMass:
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return sat32(sh.Mass().Floor())
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case port == PortScanNearest:
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best, bestD := int64(0), fixed.Max
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for i := range tc.s.Asteroids {
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p, _ := tc.asteroid(i)
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if d := p.Sub(sh.Pos).Len(); d < bestD {
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best, bestD = int64(i+1), d
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}
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}
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return int32(best)
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case port >= PortScanRelX && port <= PortScanDist:
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p, v, ok := b.target()
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if !ok {
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return 0
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}
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rel, relV := p.Sub(sh.Pos), v.Sub(sh.Vel)
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switch {
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case port <= PortScanRelZ:
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return axis(rel, port, PortScanRelX, kmInt)
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case port <= PortScanRelVZ:
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return axis(relV, port, PortScanRelVX, mps)
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}
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return kmInt(rel.Len())
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case port >= PortScanOre && port < PortScanOre+8:
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if a := tc.s.asteroid(sh.Target); a != nil && port-PortScanOre < uint16(world.NumOre) {
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return sat32(a.Ore[port-PortScanOre])
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}
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return 0
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case port == PortCargo:
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return sat32(sh.CargoTotal())
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case port == PortCargoCap:
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return sat32(sh.Hull.CargoCap)
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case port >= PortCargoOre && port < PortCargoOre+8:
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if port-PortCargoOre < uint16(world.NumOre) {
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return sat32(sh.Cargo[port-PortCargoOre])
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}
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return 0
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case port >= PortStnRelX && port <= PortStnRelVZ:
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rel, relV := tc.stPos.Sub(sh.Pos), tc.stVel.Sub(sh.Vel)
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if port <= PortStnRelZ {
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return axis(rel, port, PortStnRelX, kmInt)
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}
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return axis(relV, port, PortStnRelVX, mps)
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case port == PortCredits:
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return sat32(sh.Earned)
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case port == PortUplinkNew:
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if sh.UplinkNew {
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return 1
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}
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return 0
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case port == PortUplinkLen:
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return sh.UplinkLen
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case port == PortMathAtan2:
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a := fixed.Atan2(fixed.FromInt(int64(sh.MathY)), fixed.FromInt(int64(sh.MathX)))
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return sat32(a.MulInt(1000).Floor())
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case port == PortMathHypot:
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return sat32(fixed.Hypot(fixed.FromInt(int64(sh.MathX)), fixed.FromInt(int64(sh.MathY))).Floor())
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case port == PortMathNorm3:
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return sat32(fixed.Norm3(fixed.FromInt(int64(sh.MathX)), fixed.FromInt(int64(sh.MathY)), fixed.FromInt(int64(sh.MathZ))).Floor())
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}
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return 0
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}
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func (b *shipBus) Out(port uint16, v int32) {
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sh, tc := b.sh, b.tc
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switch port {
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case PortThrottle:
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sh.Throttle = v
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case PortAzimuth:
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sh.Azimuth = v
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case PortPitch:
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sh.Pitch = v
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case PortScanSelect:
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sh.Target = int64(v)
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case PortMine:
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sh.Mining = v != 0
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case PortSell:
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if v == 0 || !tc.s.canReach(sh, tc.stPos, tc.stVel, DockRangeKm) {
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return
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}
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value := tc.s.Market.Value(sh.Cargo)
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if value == 0 {
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return
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}
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tc.s.Credits[sh.Owner] += value
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sh.Earned += value
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for o, kg := range sh.Cargo {
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tc.sold[o] += kg
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sh.Cargo[o] = 0
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}
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tc.res.Events = append(tc.res.Events, Event{tc.tick, sh.ID, "sold", itoa(value) + " credits"})
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case PortUplinkNew:
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sh.UplinkNew = false
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case PortMathX:
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sh.MathX = v
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case PortMathY:
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sh.MathY = v
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case PortMathZ:
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sh.MathZ = v
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}
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}
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func itoa(v int64) string {
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if v == 0 {
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return "0"
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}
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neg := v < 0
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if neg {
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v = -v
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}
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var b [20]byte
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i := len(b)
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for v > 0 {
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i--
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b[i] = byte('0' + v%10)
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v /= 10
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}
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if neg {
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i--
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b[i] = '-'
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}
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return string(b[i:])
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}
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