Files
rgoue/game/passages.go
sneak cc2efb86e8 Decompose passages.go (refactor step 7)
digPassages gains pickNeighbor; connectRooms splits into
connOrient/connPlanDown/connPlanRight/connEnd/digCorridor around a
corridorPlan struct; addPass gains addPassSpot; the shared door/
secret-door predicate becomes hiddenExit. passages.go is
complexity-clean. Behavior and RNG call order unchanged.
2026-07-07 03:25:46 +02:00

406 lines
9.1 KiB
Go

package game
// passages.c — draw the connecting passages.
// digPassages draws all the passages on a level (passages.c do_passages).
func (g *RogueGame) digPassages() {
var (
isconn [MaxRooms][MaxRooms]bool
ingraph [MaxRooms]bool
)
// starting with one room, connect it to a random adjacent room and
// then pick a new room to start with.
roomcount := 1
r1 := g.rnd(MaxRooms)
ingraph[r1] = true
for roomcount < MaxRooms {
// find a room to connect with
r2 := g.pickNeighbor(r1, func(i int) bool { return !ingraph[i] })
if r2 < 0 {
// if no adjacent rooms are outside the graph, pick a new
// room to look from
for {
r1 = g.rnd(MaxRooms)
if ingraph[r1] {
break
}
}
continue
}
// otherwise, connect new room to the graph, and draw a tunnel
// to it
ingraph[r2] = true
g.connectRooms(r1, r2)
isconn[r1][r2] = true
isconn[r2][r1] = true
roomcount++
}
// attempt to add passages to the graph a random number of times so that
// there isn't always just one unique passage through it.
for roomcount = g.rnd(5); roomcount > 0; roomcount-- {
r1 = g.rnd(MaxRooms) // a random room to look from
// find an adjacent room not already connected; if there is one,
// connect it and look for the next added passage
r2 := g.pickNeighbor(r1, func(i int) bool { return !isconn[r1][i] })
if r2 >= 0 {
g.connectRooms(r1, r2)
isconn[r1][r2] = true
isconn[r2][r1] = true
}
}
g.numberPassages()
}
// pickNeighbor reservoir-picks an adjacent room for which ok holds, or
// -1 when there is none (passages.c do_passages).
func (g *RogueGame) pickNeighbor(r1 int, ok func(int) bool) int {
j := 0
r2 := -1
for i := range MaxRooms {
if g.data.rdesConn[r1][i] && ok(i) {
if j++; g.rnd(j) == 0 {
r2 = i
}
}
}
return r2
}
// corridorPlan is the movement setup connectRooms computes before it
// digs (the local variables of passages.c conn).
type corridorPlan struct {
rpf, rpt *Room // the rooms being joined
del Coord // direction of move
turnDelta Coord // direction to turn
spos, epos Coord // start and end of move
distance, turnDistance int // how far to move and to turn
}
// connectRooms draws a corridor from a room in a certain direction
// (passages.c conn).
func (g *RogueGame) connectRooms(r1, r2 int) {
rm, direc := connOrient(r1, r2)
var plan corridorPlan
if direc == 'd' {
plan = g.connPlanDown(rm)
} else {
plan = g.connPlanRight(rm)
}
turnSpot := g.rnd(plan.distance-1) + 1 // where turn starts
// Draw in the doors on either side of the passage or just put #'s if
// the rooms are gone.
g.connEnd(plan.rpf, plan.spos)
g.connEnd(plan.rpt, plan.epos)
g.digCorridor(plan, turnSpot)
}
// connOrient picks the upper-left room of the pair and the digging
// direction: right for horizontal neighbors, down otherwise (passages.c
// conn).
func connOrient(r1, r2 int) (int, byte) {
rm := min(r1, r2)
if abs(r1-r2) == 1 {
return rm, 'r'
}
return rm, 'd'
}
// connPlanDown sets up the movement variables for a corridor drawn
// downward (passages.c conn).
func (g *RogueGame) connPlanDown(rm int) corridorPlan {
rpf := &g.Level.Rooms[rm]
rpt := &g.Level.Rooms[rm+3] // room pointer of dest
plan := corridorPlan{
rpf: rpf,
rpt: rpt,
del: Coord{X: 0, Y: 1}, // direction of move
spos: rpf.Pos, // start of move
epos: rpt.Pos, // end of move
}
if !rpf.Flags.Has(Gone) { // if not gone pick door pos
for {
plan.spos.X = rpf.Pos.X + g.rnd(rpf.Max.X-2) + 1
plan.spos.Y = rpf.Pos.Y + rpf.Max.Y - 1
if !rpf.Flags.Has(Maze) ||
g.Level.FlagsAt(plan.spos.Y, plan.spos.X).Has(FPassage) {
break
}
}
}
if !rpt.Flags.Has(Gone) {
for {
plan.epos.X = rpt.Pos.X + g.rnd(rpt.Max.X-2) + 1
if !rpt.Flags.Has(Maze) ||
g.Level.FlagsAt(plan.epos.Y, plan.epos.X).Has(FPassage) {
break
}
}
}
plan.distance = abs(plan.spos.Y-plan.epos.Y) - 1 // distance to move
plan.turnDelta.Y = 0 // direction to turn
if plan.spos.X < plan.epos.X {
plan.turnDelta.X = 1
} else {
plan.turnDelta.X = -1
}
plan.turnDistance = abs(plan.spos.X - plan.epos.X) // how far to turn
return plan
}
// connPlanRight sets up the movement variables for a corridor drawn to
// the right (passages.c conn).
func (g *RogueGame) connPlanRight(rm int) corridorPlan {
rpf := &g.Level.Rooms[rm]
rpt := &g.Level.Rooms[rm+1]
plan := corridorPlan{
rpf: rpf,
rpt: rpt,
del: Coord{X: 1, Y: 0},
spos: rpf.Pos,
epos: rpt.Pos,
}
if !rpf.Flags.Has(Gone) {
for {
plan.spos.X = rpf.Pos.X + rpf.Max.X - 1
plan.spos.Y = rpf.Pos.Y + g.rnd(rpf.Max.Y-2) + 1
if !rpf.Flags.Has(Maze) ||
g.Level.FlagsAt(plan.spos.Y, plan.spos.X).Has(FPassage) {
break
}
}
}
if !rpt.Flags.Has(Gone) {
for {
plan.epos.Y = rpt.Pos.Y + g.rnd(rpt.Max.Y-2) + 1
if !rpt.Flags.Has(Maze) ||
g.Level.FlagsAt(plan.epos.Y, plan.epos.X).Has(FPassage) {
break
}
}
}
plan.distance = abs(plan.spos.X-plan.epos.X) - 1
if plan.spos.Y < plan.epos.Y {
plan.turnDelta.Y = 1
} else {
plan.turnDelta.Y = -1
}
plan.turnDelta.X = 0
plan.turnDistance = abs(plan.spos.Y - plan.epos.Y)
return plan
}
// connEnd draws a corridor end: a door on a real room, a passage square
// on a gone one (passages.c conn).
func (g *RogueGame) connEnd(rp *Room, pos Coord) {
if !rp.Flags.Has(Gone) {
g.door(rp, pos)
} else {
g.putPassage(pos)
}
}
// digCorridor digs from spos to epos, turning at turnSpot (the digging
// loop of passages.c conn).
func (g *RogueGame) digCorridor(plan corridorPlan, turnSpot int) {
curr := plan.spos
distance := plan.distance
turnDistance := plan.turnDistance
for distance > 0 {
// Move to new position
curr.X += plan.del.X
curr.Y += plan.del.Y
// Check if we are at the turn place, if so do the turn
if distance == turnSpot {
for ; turnDistance > 0; turnDistance-- {
g.putPassage(curr)
curr.X += plan.turnDelta.X
curr.Y += plan.turnDelta.Y
}
}
// Continue digging along
g.putPassage(curr)
distance--
}
curr.X += plan.del.X
curr.Y += plan.del.Y
if curr != plan.epos {
g.msg("warning, connectivity problem on this level")
}
}
// putPassage adds a passage character or secret passage here (passages.c
// putpass).
func (g *RogueGame) putPassage(cp Coord) {
pp := g.Level.At(cp.Y, cp.X)
pp.Flags.Set(FPassage)
if g.rnd(10)+1 < g.Depth && g.rnd(40) == 0 {
pp.Flags.Clear(FReal)
} else {
pp.Ch = Passage
}
}
// door adds a door or possibly a secret door; also enters the door in the
// exits array of the room (passages.c door).
func (g *RogueGame) door(rm *Room, cp Coord) {
rm.Exits = append(rm.Exits, cp)
if rm.Flags.Has(Maze) {
return
}
pp := g.Level.At(cp.Y, cp.X)
if g.rnd(10)+1 < g.Depth && g.rnd(5) == 0 {
if cp.Y == rm.Pos.Y || cp.Y == rm.Pos.Y+rm.Max.Y-1 {
pp.Ch = '-'
} else {
pp.Ch = '|'
}
pp.Flags.Clear(FReal)
} else {
pp.Ch = Door
}
}
// addPass adds the passages to the current window — wizard command
// (passages.c add_pass).
func (g *RogueGame) addPass() {
for y := 1; y < NumLines-1; y++ {
for x := range NumCols {
g.addPassSpot(g.Level.At(y, x), y, x)
}
}
}
// addPassSpot shows one passage or door square for the wizard (the loop
// body of passages.c add_pass).
func (g *RogueGame) addPassSpot(pp *Place, y, x int) {
if !pp.Flags.Has(FPassage) && !hiddenExit(pp.Flags, pp.Ch) {
return
}
ch := pp.Ch
if pp.Flags.Has(FPassage) {
ch = Passage
}
pp.Flags.Set(FSeen)
g.move(y, x)
switch {
case pp.Monst != nil:
pp.Monst.OldCh = pp.Ch
case pp.Flags.Has(FReal):
g.addch(ch)
default:
g.standout()
if pp.Flags.Has(FPassage) {
g.addch(Passage)
} else {
g.addch(Door)
}
g.standend()
}
}
// hiddenExit reports a door, or a secret door still drawn as a wall
// (passages.c add_pass / numpass).
func hiddenExit(fp PlaceFlags, ch byte) bool {
return ch == Door || (!fp.Has(FReal) && (ch == '|' || ch == '-'))
}
// numberPassages assigns a number to each passageway (passages.c passnum).
func (g *RogueGame) numberPassages() {
g.pnum = 0
g.newpnum = false
for i := range g.Level.Passages {
g.Level.Passages[i].Exits = g.Level.Passages[i].Exits[:0]
}
for i := range g.Level.Rooms {
rp := &g.Level.Rooms[i]
for j := range rp.Exits {
g.newpnum = true
g.numberPassage(rp.Exits[j].Y, rp.Exits[j].X)
}
}
}
// numberPassage numbers a passageway square and its brethren (passages.c
// numpass).
func (g *RogueGame) numberPassage(y, x int) {
if x >= NumCols || x < 0 || y >= NumLines || y <= 0 {
return
}
fp := g.Level.FlagsAt(y, x)
if fp.Has(FPassNum) {
return
}
if g.newpnum {
g.pnum++
g.newpnum = false
}
// check to see if it is a door or secret door, i.e., a new exit, or a
// numerable type of place
if hiddenExit(*fp, g.Level.Char(y, x)) {
rp := &g.Level.Passages[g.pnum]
rp.Exits = append(rp.Exits, Coord{Y: y, X: x})
} else if !fp.Has(FPassage) {
return
}
*fp |= PlaceFlags(g.pnum) //nolint:gosec // G115: pnum < MaxPass=13
// recurse on the surrounding places
g.numberPassage(y+1, x)
g.numberPassage(y-1, x)
g.numberPassage(y, x+1)
g.numberPassage(y, x-1)
}
// abs is C abs() for ints.
func abs(n int) int {
if n < 0 {
return -n
}
return n
}