結果
| 問題 | No.3653 Space-Time Courier |
| コンテスト | |
| ユーザー |
kemuniku
|
| 提出日時 | 2026-08-28 22:10:33 |
| 言語 | Nim (2.2.8) |
| 結果 |
WA
|
| 実行時間 | - |
| コード長 | 29,133 bytes |
| 記録 | |
| コンパイル時間 | 4,180 ms |
| コンパイル使用メモリ | 80,512 KB |
| 実行使用メモリ | 6,272 KB |
| 最終ジャッジ日時 | 2026-08-28 22:10:40 |
| 合計ジャッジ時間 | 6,909 ms |
|
ジャッジサーバーID (参考情報) |
judge1_0 / judge3_0 |
(要ログイン)
| ファイルパターン | 結果 |
|---|---|
| sample | AC * 2 |
| other | AC * 21 WA * 7 |
ソースコード
import macros;macro ImportExpand(s:untyped):untyped = parseStmt($s[2])
# source: src/cplib/tmpl/sheep.nim
ImportExpand "cplib/tmpl/sheep" <=== "when not declared CPLIB_TMPL_SHEEP:\n const CPLIB_TMPL_SHEEP* = 1\n {.warning[UnusedImport]: off.}\n {.hint[XDeclaredButNotUsed]: off.}\n import algorithm\n import sequtils\n import tables\n import macros\n import math\n import sets\n import strutils\n import strformat\n import sugar\n import heapqueue\n import streams\n import deques\n import bitops\n import std/lenientops\n import options\n #入力系\n proc scanf(formatstr: cstring){.header: \"<stdio.h>\", varargs.}\n proc getchar(): char {.importc: \"getchar_unlocked\", header: \"<stdio.h>\", discardable.}\n proc ii(): int {.inline.} = scanf(\"%lld\\n\", addr result)\n proc lii(N: int): seq[int] {.inline.} = newSeqWith(N, ii())\n proc si(): string {.inline.} =\n result = \"\"\n var c: char\n while true:\n c = getchar()\n if c == ' ' or c == '\\n' or c == '\\255':\n break\n result &= c\n \n # 出力系\n # 1. 実際の処理を行う proc (openArray を受け取る)\n proc print_internal(prop: tuple[f: File, sepc: string, endc: string, flush: bool], args: openArray[string]) =\n for i in 0 ..< args.len:\n prop.f.write(args[i])\n if i != args.len - 1:\n prop.f.write(prop.sepc)\n else:\n prop.f.write(prop.endc)\n if prop.flush:\n prop.f.flushFile()\n\n # 2. ユーザーが呼び出すためのインターフェース (varargs を受け取る)\n proc print*(prop: tuple[f: File, sepc: string, endc: string, flush: bool], args: varargs[string, `$`]) =\n # varargs は内部では openArray として扱えるので、そのまま渡せる\n print_internal(prop, args)\n\n proc print*(args: varargs[string, `$`]) =\n # こちらも内部用の proc を呼ぶ\n print_internal((f: stdout, sepc: \" \", endc: \"\\n\", flush: false), args)\n macro getSymbolName(x: typed): string = x.toStrLit\n macro debug*(args: varargs[untyped]): untyped =\n when defined(debug):\n result = newNimNode(nnkStmtList, args)\n template prop(e: string = \"\"): untyped = (f: stderr, sepc: \"\", endc: e, flush: true)\n for i, arg in args:\n if arg.kind == nnkStrLit:\n result.add(quote do: print(prop(), \"\\\"\", `arg`, \"\\\"\"))\n else:\n result.add(quote do: print(prop(\": \"), getSymbolName(`arg`)))\n result.add(quote do: print(prop(), `arg`))\n if i != args.len - 1: result.add(quote do: print(prop(), \", \"))\n else: result.add(quote do: print(prop(), \"\\n\"))\n else:\n return (quote do: discard)\n #chmin,chmax\n template `max=`(x, y) =\n let yVal = y # yが計算式の場合に評価を1回にするため\n if x < yVal:\n x = yVal\n\n template `min=`(x, y) =\n let yVal = y\n if x > yVal:\n x = yVal\n proc chmin[T](x: var T, y: T):bool=\n if x > y:\n x = y\n return true\n return false\n proc chmax[T](x: var T, y: T):bool=\n if x < y:\n x = y\n return true\n return false\n #bit演算\n proc `%`*(x: int, y: int): int =\n result = x mod y\n if y > 0 and result < 0: result += y\n if y < 0 and result > 0: result += y\n proc `//`*(x: int, y: int): int{.inline.} =\n result = x div y\n if y > 0 and result * y > x: result -= 1\n if y < 0 and result * y < x: result -= 1\n proc `%=`(x: var int, y: int): void = x = x%y\n proc `//=`(x: var int, y: int): void = x = x//y\n proc `**`(x: int, y: int): int = x^y\n proc `**=`(x: var int, y: int): void = x = x^y\n proc `^`(x: int, y: int): int = x xor y\n proc `|`(x: int, y: int): int = x or y\n proc `&`(x: int, y: int): int = x and y\n proc `>>`(x: int, y: int): int = x shr y\n proc `<<`(x: int, y: int): int = x shl y\n proc `~`(x: int): int = not x\n proc `^=`(x: var int, y: int): void = x = x ^ y\n proc `&=`(x: var int, y: int): void = x = x & y\n proc `|=`(x: var int, y: int): void = x = x | y\n proc `>>=`(x: var int, y: int): void = x = x >> y\n proc `<<=`(x: var int, y: int): void = x = x << y\n proc `[]`(x: int, n: int): bool = (x and (1 shl n)) != 0\n #便利な変換\n proc `!`(x: char, a = '0'): int = int(x)-int(a)\n #定数\n when not declared CPLIB_UTILS_CONSTANTS:\n const CPLIB_UTILS_CONSTANTS* = 1\n const INF32*: int32 = 1001000027.int32\n const INF64*: int = int(3300300300300300491)\n \n const INF = INF64\n #converter\n\n #range\n iterator range(start: int, ends: int, step: int): int =\n var i = start\n if step < 0:\n while i > ends:\n yield i\n i += step\n elif step > 0:\n while i < ends:\n yield i\n i += step\n iterator range(ends: int): int = (for i in 0..<ends: yield i)\n iterator range(start: int, ends: int): int = (for i in\n start..<ends: yield i)\n\n #joinが非stringでめちゃくちゃ遅いやつのパッチ\n proc join*[T: not string](a: openArray[T], sep: string = \"\"): string = a.mapit($it).join(sep)\n\n proc dump[T](arr:seq[seq[T]])=\n for i in 0..<len(arr):\n echo arr[i]\n\n proc sum(slice:HSlice[int,int]):int=\n return (slice.a+slice.b)*len(slice)//2\n \n proc `<`[T](l,r:seq[T]):bool=\n for i in 0..<min(len(l),len(r)):\n if l[i] > r[i]:\n return false\n elif l[i] < r[i]:\n return true\n return len(l) < len(r)\n \n # Yes/No\n proc yes*(b: bool = true): void = print(if b: \"Yes\" else: \"No\")\n proc no*(b: bool = true): void = yes(not b)\n\n proc takahashi(b:bool = true) : void = print(if b: \"Takahashi\" else: \"Aoki\")\n proc aoki(b:bool = true) : void = takahashi(not b)\n\n template dblock(body: untyped) =\n when defined(debug):\n block:\n body\n"
# source: src/cplib/graph/bellmanford.nim
ImportExpand "cplib/graph/bellmanford" <=== "when not declared CPLIB_GRAPH_BELLMANFORD:\n const CPLIB_GRAPH_BELLMANFORD* = 1\n import deques\n import sequtils\n import macros\n when not declared CPLIB_GRAPH_GRAPH:\n const CPLIB_GRAPH_GRAPH* = 1\n \n import sequtils\n import math\n type DynamicGraph*[T] = ref object of RootObj\n edges*: seq[seq[(int32, T)]]\n len*: int\n type StaticGraph*[T] = ref object of RootObj\n src*, dst*: seq[int32]\n cost*: seq[T]\n elist*: seq[(int32, T)]\n start*: seq[int32]\n len*: int\n \n type WeightedDirectedGraph*[T] = ref object of DynamicGraph[T]\n type WeightedUnDirectedGraph*[T] = ref object of DynamicGraph[T]\n type UnWeightedDirectedGraph* = ref object of DynamicGraph[int]\n type UnWeightedUnDirectedGraph* = ref object of DynamicGraph[int]\n type WeightedDirectedStaticGraph*[T] = ref object of StaticGraph[T]\n type WeightedUnDirectedStaticGraph*[T] = ref object of StaticGraph[T]\n type UnWeightedDirectedStaticGraph* = ref object of StaticGraph[int]\n type UnWeightedUnDirectedStaticGraph* = ref object of StaticGraph[int]\n \n type GraphTypes*[T] = DynamicGraph[T] or StaticGraph[T]\n type DirectedGraph* = WeightedDirectedGraph or UnWeightedDirectedGraph or WeightedDirectedStaticGraph or UnWeightedDirectedStaticGraph\n type UnDirectedGraph* = WeightedUnDirectedGraph or UnWeightedUnDirectedGraph or WeightedUnDirectedStaticGraph or UnWeightedUnDirectedStaticGraph\n type WeightedGraph*[T] = WeightedDirectedGraph[T] or WeightedUnDirectedGraph[T] or WeightedDirectedStaticGraph[T] or WeightedUnDirectedStaticGraph[T]\n type UnWeightedGraph* = UnWeightedDirectedGraph or UnWeightedUnDirectedGraph or UnWeightedDirectedStaticGraph or UnWeightedUnDirectedStaticGraph\n type DynamicGraphTypes* = WeightedDirectedGraph or UnWeightedDirectedGraph or WeightedUnDirectedGraph or UnWeightedUnDirectedGraph\n type StaticGraphTypes* = WeightedDirectedStaticGraph or UnWeightedDirectedStaticGraph or WeightedUnDirectedStaticGraph or UnWeightedUnDirectedStaticGraph\n \n proc add_edge_dynamic_impl*[T](g: DynamicGraph[T], u, v: int, cost: T, directed: bool) =\n g.edges[u].add((v.int32, cost))\n if not directed: g.edges[v].add((u.int32, cost))\n \n proc initWeightedDirectedGraph*(N: int, edgetype: typedesc = int): WeightedDirectedGraph[edgetype] =\n result = WeightedDirectedGraph[edgetype](edges: newSeq[seq[(int32, edgetype)]](N), len: N)\n proc add_edge*[T](g: var WeightedDirectedGraph[T], u, v: int, cost: T) =\n g.add_edge_dynamic_impl(u, v, cost, true)\n \n proc initWeightedUnDirectedGraph*(N: int, edgetype: typedesc = int): WeightedUnDirectedGraph[edgetype] =\n result = WeightedUnDirectedGraph[edgetype](edges: newSeq[seq[(int32, edgetype)]](N), len: N)\n proc add_edge*[T](g: var WeightedUnDirectedGraph[T], u, v: int, cost: T) =\n g.add_edge_dynamic_impl(u, v, cost, false)\n \n proc initUnWeightedDirectedGraph*(N: int): UnWeightedDirectedGraph =\n result = UnWeightedDirectedGraph(edges: newSeq[seq[(int32, int)]](N), len: N)\n proc add_edge*(g: var UnWeightedDirectedGraph, u, v: int) =\n g.add_edge_dynamic_impl(u, v, 1, true)\n \n proc initUnWeightedUnDirectedGraph*(N: int): UnWeightedUnDirectedGraph =\n result = UnWeightedUnDirectedGraph(edges: newSeq[seq[(int32, int)]](N), len: N)\n proc add_edge*(g: var UnWeightedUnDirectedGraph, u, v: int) =\n g.add_edge_dynamic_impl(u, v, 1, false)\n \n proc len*[T](G: WeightedGraph[T]): int = G.len\n proc len*(G: UnWeightedGraph): int = G.len\n \n iterator `[]`*[T](g: WeightedDirectedGraph[T] or WeightedUnDirectedGraph[T], x: int): (int, T) =\n for e in g.edges[x]: yield (e[0].int, e[1])\n iterator `[]`*(g: UnWeightedDirectedGraph or UnWeightedUnDirectedGraph, x: int): int =\n for e in g.edges[x]: yield e[0].int\n \n proc add_edge_static_impl*[T](g: StaticGraph[T], u, v: int, cost: T, directed: bool) =\n g.src.add(u.int32)\n g.dst.add(v.int32)\n g.cost.add(cost)\n if not directed:\n g.src.add(v.int32)\n g.dst.add(u.int32)\n g.cost.add(cost)\n \n proc build_impl*[T](g: StaticGraph[T]) =\n g.start = newSeqWith(g.len + 1, 0.int32)\n for i in 0..<g.src.len:\n g.start[g.src[i]] += 1\n g.start.cumsum\n g.elist = newSeq[(int32, T)](g.start[^1])\n for i in countdown(g.src.len - 1, 0):\n var u = g.src[i]\n var v = g.dst[i]\n g.start[u] -= 1\n g.elist[g.start[u]] = (v, g.cost[i])\n proc build*(g: StaticGraphTypes) = g.build_impl()\n \n proc initWeightedDirectedStaticGraph*(N: int, edgetype: typedesc = int, capacity: int = 0): WeightedDirectedStaticGraph[edgetype] =\n result = WeightedDirectedStaticGraph[edgetype](\n src: newSeqOfCap[int32](capacity),\n dst: newSeqOfCap[int32](capacity),\n cost: newSeqOfCap[edgetype](capacity),\n elist: newSeq[(int32, edgetype)](0),\n start: newSeq[int32](0),\n len: N\n )\n proc add_edge*[T](g: var WeightedDirectedStaticGraph[T], u, v: int, cost: T) =\n g.add_edge_static_impl(u, v, cost, true)\n \n proc initWeightedUnDirectedStaticGraph*(N: int, edgetype: typedesc = int, capacity: int = 0): WeightedUnDirectedStaticGraph[edgetype] =\n result = WeightedUnDirectedStaticGraph[edgetype](\n src: newSeqOfCap[int32](capacity*2),\n dst: newSeqOfCap[int32](capacity*2),\n cost: newSeqOfCap[edgetype](capacity*2),\n elist: newSeq[(int32, edgetype)](0),\n start: newSeq[int32](0),\n len: N\n )\n proc add_edge*[T](g: var WeightedUnDirectedStaticGraph[T], u, v: int, cost: T) =\n g.add_edge_static_impl(u, v, cost, false)\n \n proc initUnWeightedDirectedStaticGraph*(N: int, capacity: int = 0): UnWeightedDirectedStaticGraph =\n result = UnWeightedDirectedStaticGraph(\n src: newSeqOfCap[int32](capacity),\n dst: newSeqOfCap[int32](capacity),\n cost: newSeqOfCap[int](capacity),\n elist: newSeq[(int32, int)](0),\n start: newSeq[int32](0),\n len: N\n )\n proc add_edge*(g: var UnWeightedDirectedStaticGraph, u, v: int) =\n g.add_edge_static_impl(u, v, 1, true)\n \n proc initUnWeightedUnDirectedStaticGraph*(N: int, capacity: int = 0): UnWeightedUnDirectedStaticGraph =\n result = UnWeightedUnDirectedStaticGraph(\n src: newSeqOfCap[int32](capacity*2),\n dst: newSeqOfCap[int32](capacity*2),\n cost: newSeqOfCap[int](capacity*2),\n elist: newSeq[(int32, int)](0),\n start: newSeq[int32](0),\n len: N\n )\n proc add_edge*(g: var UnWeightedUnDirectedStaticGraph, u, v: int) =\n g.add_edge_static_impl(u, v, 1, false)\n \n proc static_graph_initialized_check*[T](g: StaticGraph[T]) = assert g.start.len > 0, \"Static Graph must be initialized before use.\"\n \n iterator `[]`*[T](g: WeightedDirectedStaticGraph[T] or WeightedUnDirectedStaticGraph[T], x: int): (int, T) =\n g.static_graph_initialized_check()\n for i in g.start[x]..<g.start[x+1]: yield (g.elist[i][0].int, g.elist[i][1])\n iterator `[]`*(g: UnWeightedDirectedStaticGraph or UnWeightedUnDirectedStaticGraph, x: int): int =\n g.static_graph_initialized_check()\n for i in g.start[x]..<g.start[x+1]: yield g.elist[i][0].int\n \n iterator to_and_cost*[T](g: DynamicGraph[T], x: int): (int, T) =\n for e in g.edges[x]: yield (e[0].int, e[1])\n iterator to_and_cost*[T](g: StaticGraph[T], x: int): (int, T) =\n g.static_graph_initialized_check()\n for i in g.start[x]..<g.start[x+1]: yield (g.elist[i][0].int, g.elist[i][1])\n \n import tables\n \n type UnWeightedUnDirectedTableGraph*[T] = object \n toi* : Table[T,int]\n v* : seq[T]\n graph* : UnWeightedUnDirectedGraph\n \n type UnWeightedDirectedTableGraph*[T] = object \n toi* : Table[T,int]\n v* : seq[T]\n graph* : UnWeightedDirectedGraph\n \n type WeightedUnDirectedTableGraph*[T,S] = object \n toi* : Table[T,int]\n v* : seq[T]\n graph* : WeightedUnDirectedGraph[S]\n \n type WeightedDirectedTableGraph*[T,S] = object \n toi* : Table[T,int]\n v* : seq[T]\n graph* : WeightedDirectedGraph[S]\n \n type UnWeightedTableGraph*[T] = UnWeightedUnDirectedTableGraph[T] or UnWeightedDirectedTableGraph[T]\n type WeightedTableGraph*[T,S] = WeightedUnDirectedTableGraph[T,S] or WeightedDirectedTableGraph[T,S]\n \n proc initUnWeightedUnDirectedTableGraph*[T](V:openArray[T]):UnWeightedUnDirectedTableGraph[T]=\n for i in 0..<len(V):\n result.toi[V[i]] = i\n result.graph = initUnWeightedUnDirectedGraph(len(V))\n result.v = @V\n \n proc initUnWeightedDirectedTableGraph*[T](V:openArray[T]):UnWeightedDirectedTableGraph[T]=\n for i in 0..<len(V):\n result.toi[V[i]] = i\n result.graph = initUnWeightedDirectedGraph(len(V))\n result.v = @V\n \n proc initWeightedUnDirectedTableGraph*[T](V:openArray[T],S:typedesc = int):WeightedUnDirectedTableGraph[T,S]=\n for i in 0..<len(V):\n result.toi[V[i]] = i\n result.graph = initWeightedUnDirectedGraph(len(V),S)\n result.v = @V\n \n proc initWeightedDirectedTableGraph*[T](V:openArray[T],S:typedesc = int):WeightedDirectedTableGraph[T,S]=\n for i in 0..<len(V):\n result.toi[V[i]] = i\n result.graph = initWeightedDirectedGraph(len(V),S)\n result.v = @V\n \n proc add_edge*[T](g: var UnWeightedTableGraph[T],u,v:T)=\n g.graph.add_edge(g.toi[u],g.toi[v])\n \n proc add_edge*[T,S](g: var WeightedTableGraph[T,S],u,v:T,cost:S)=\n g.graph.add_edge(g.toi[u],g.toi[v],cost)\n \n iterator `[]`*[T,S](g: WeightedDirectedTableGraph[T,S] or WeightedUnDirectedTableGraph[T,S], x: T): (T, S) = \n for (x,y) in g.graph[g.toi[x]]:\n yield (g.v[x],y)\n iterator `[]`*[T](g: UnWeightedDirectedTableGraph[T] or UnWeightedUnDirectedTableGraph[T], x: T): T = \n for x in g.graph[g.toi[x]]:\n yield g.v[x]\n \n when not declared CPLIB_GRAPH_RESTORE_SHORTESTPATH_FROM_PREV:\n const CPLIB_GRAPH_RESTORE_SHORTESTPATH_FROM_PREV* = 1\n import algorithm\n proc restore_shortest_path_from_prev*(prev: seq[int], goal: int): seq[int] =\n var i = goal\n while i != -1:\n result.add(i)\n i = prev[i]\n result.reverse\n \n proc restore_bellmanford_impl[T](G: DynamicGraph[T] or StaticGraph[T], start: int or seq[int], ZERO, INF: T): tuple[costs: seq[T], prev: seq[int]] =\n let N = len(G)\n var\n costs = newSeqWith(N, INF)\n prev = newSeqWith(N, -1)\n changed: bool\n when start is int:\n costs[start] = ZERO\n else:\n for s in start:\n costs[s] = ZERO\n for _ in 0..<N:\n changed = false\n for i in 0..<N:\n if costs[i] == INF: continue\n for (j, c) in G.to_and_cost(i):\n var temp = costs[i] + c\n if temp < costs[j]:\n prev[j] = i\n costs[j] = temp\n changed = true\n if not changed: break\n if changed:\n for _ in 0..<N:\n for i in 0..<N:\n if costs[i] == INF: continue\n for (j, c) in G.to_and_cost(i):\n var temp = costs[i] + c\n if temp < costs[j]:\n costs[j] = -INF\n prev[j] = -1\n return (costs, prev)\n macro declareBellmanFord(name, t, zero, inf) =\n let impl_name = ident($`name` & \"_impl\")\n quote do:\n proc `name`*(G: DynamicGraph[`t`] or StaticGraph[`t`], start: int or seq[int], ZERO: `t` = `zero`, INF: `t` = `inf`): auto =\n `impl_name`(G, start, ZERO, INF)\n declareBellmanFord(restore_bellmanford, int, 0, INF64)\n declareBellmanFord(restore_bellmanford, int32, 0i32, INF32)\n declareBellmanFord(restore_bellmanford, float, 0.0, 1e100)\n declareBellmanFord(restore_bellmanford, float32, 0.0'f32, 1e30'f32)\n proc restore_bellmanford*[T](G: DynamicGraph[T] or StaticGraph[T], start: int or seq[int], ZERO, INF: T): auto =\n restore_bellmanford_impl(G, start, ZERO, INF)\n proc bellmanford_impl[T](G: DynamicGraph[T] or StaticGraph[T], start: int or seq[int], ZERO, INF: T): auto =\n var (costs, _) = restore_bellmanford(G, start, ZERO, INF)\n return costs\n declareBellmanFord(bellmanford, int, 0, INF64)\n declareBellmanFord(bellmanford, int32, 0i32, INF32)\n declareBellmanFord(bellmanford, float, 0.0, 1e100)\n declareBellmanFord(bellmanford, float32, 0.0'f32, 1e30'f32)\n proc bellmanford*[T](G: DynamicGraph[T] or StaticGraph[T], start: int or seq[int], ZERO, INF: T): auto =\n bellmanford_impl(G, start, ZERO, INF)\n proc shortest_path_bellmanford_impl[T](G: DynamicGraph[T] or StaticGraph[T], start, goal: int, ZERO, INF: T): tuple[path: seq[int], cost: T] =\n var (costs, prev) = restore_bellmanford(G, start, ZERO, INF)\n result.path = prev.restore_shortest_path_from_prev(goal)\n result.cost = costs[goal]\n proc shortest_path_bellmanford*(G: DynamicGraph[int] or StaticGraph[int], start, goal: int, ZERO: int = 0, INF: int = INF64): tuple[path: seq[int], cost: int] =\n shortest_path_bellmanford_impl(G, start, goal, ZERO, INF)\n proc shortest_path_bellmanford*(G: DynamicGraph[int32] or StaticGraph[int32], start, goal: int, ZERO: int32 = 0, INF: int32 = INF32): tuple[path: seq[int], cost: int32] =\n shortest_path_bellmanford_impl(G, start, goal, ZERO, INF)\n proc shortest_path_bellmanford*(G: DynamicGraph[float] or StaticGraph[float], start, goal: int, ZERO: float = 0.0, INF: float = 1e100): tuple[path: seq[int], cost: float] =\n shortest_path_bellmanford_impl(G, start, goal, ZERO, INF)\n proc shortest_path_bellmanford*(G: DynamicGraph[float32] or StaticGraph[float32], start, goal: int, ZERO: float32 = 0.0'f32, INF: float32 = 1e30'f32): tuple[path: seq[int], cost: float32] =\n shortest_path_bellmanford_impl(G, start, goal, ZERO, INF)\n proc shortest_path_bellmanford*[T](G: DynamicGraph[T] or StaticGraph[T], start, goal: int, ZERO, INF: T): tuple[path: seq[int], cost: T] =\n shortest_path_bellmanford_impl(G, start, goal, ZERO, INF)\n"
# source: src/cplib/collections/staticbitset.nim
ImportExpand "cplib/collections/staticbitset" <=== "when not declared CPLIB_COLLECTIONS_STATIC_BITSET:\n const CPLIB_COLLECTIONS_STATIC_BITSET* = 1\n import math\n import bitops\n import algorithm\n import strutils\n \n type BitSet*[size:static int] {.byref.}= object\n bits : array[(size+63) div 64,uint]\n \n proc varor(x:var uint,y:uint) {.importcpp:\"# |= #\".}\n proc varand(x:var uint,y:uint) {.importcpp:\"# &= #\".}\n proc varxor(x:var uint,y:uint) {.importcpp:\"# ^= #\".}\n proc varshr(x:var uint,y:int) {.importcpp:\"# >>= #\".}\n proc varshl(x:var uint,y:int) {.importcpp:\"# <<= #\".}\n\n proc trim[size](bitset: var BitSet[size]) =\n const mod64 = size mod 64\n when mod64 != 0:\n bitset.bits[^1].varand((1u shl mod64) - 1)\n\n proc initBitSet*(x:static int):BitSet[x]=\n discard\n\n proc initBitSet*(v:openArray[bool],size:static int):Bitset[size]=\n const mask = ((1 shl 6) - 1)\n for i in 0..<len(v):\n if v[i]:\n varor(result.bits[i shr 6],1u shl (i and mask))\n\n proc initBitSetFromIndexes*(indexes:openArray[int],size:static int):Bitset[size]=\n const mask = ((1 shl 6) - 1)\n for i in indexes:\n if i < 0 or i >= size:\n raise newException(IndexDefect, \"BitSet index out of bounds\")\n varor(result.bits[i shr 6],1u shl (i and mask))\n \n proc `&`*[size](x,y:BitSet[size]):BitSet[size]=\n for i in 0..<len(result.bits):\n result.bits[i] = x.bits[i] and y.bits[i]\n \n proc `&=`*[size](x:var BitSet[size],y:BitSet[size])=\n for i in 0..<len(y.bits):\n varand(x.bits[i],y.bits[i])\n \n proc `|`*[size](x,y:BitSet[size]):BitSet[size]=\n for i in 0..<len(y.bits):\n result.bits[i] = x.bits[i] or y.bits[i]\n \n proc `|=`*[size](x:var BitSet[size],y:BitSet[size])=\n for i in 0..<len(y.bits):\n varor(x.bits[i],y.bits[i])\n \n proc `^`*[size](x,y:BitSet[size]):BitSet[size]=\n for i in 0..<len(y.bits):\n result.bits[i] = x.bits[i] xor y.bits[i]\n \n proc `^=`*[size](x:var BitSet[size],y:BitSet[size])=\n for i in 0..<len(y.bits):\n varxor(x.bits[i],y.bits[i])\n \n proc `>>`*[size](bitset:BitSet[size],x:int):BitSet[size]=\n if x >= size:\n return\n for i in 0..<len(bitset.bits):\n if i+(x div 64) < len(result.bits):\n result.bits[i] = bitset.bits[i+(x div 64)]\n var tmp = 0u\n var mod64 = x mod 64\n if mod64 != 0:\n for i in countdown(len(bitset.bits)-1,0,1):\n var msk = result.bits[i] and ((1u shl mod64) - 1)\n result.bits[i].varshr(mod64)\n result.bits[i].varor(tmp shl (64-mod64))\n tmp = msk\n \n proc `<<`*[size](bitset:BitSet[size],x:int):BitSet[size]=\n if x >= size:\n return\n for i in 0..<len(bitset.bits):\n if i-(x div 64) >= 0:\n result.bits[i] = bitset.bits[i-(x div 64)]\n var tmp = 0u\n var mod64 = x mod 64\n if mod64 != 0:\n for i in 0..<len(bitset.bits):\n var msk = result.bits[i] and bitnot((1u shl mod64) - 1)\n result.bits[i].varshl(mod64)\n result.bits[i].varor(tmp shr (64-mod64))\n tmp = msk\n result.trim()\n \n proc andpopcount*[size](x,y:BitSet[size]):int=\n for i in 0..<min(len(x.bits),len(y.bits)):\n result += (x.bits[i] and y.bits[i]).popcount()\n \n proc orpopcount*[size](x,y:BitSet[size]):int=\n for i in 0..<min(len(x.bits),len(y.bits)):\n result += (x.bits[i] or y.bits[i]).popcount()\n \n proc xorpopcount*[size](x,y:BitSet[size]):int=\n for i in 0..<min(len(x.bits),len(y.bits)):\n result += (x.bits[i] xor y.bits[i]).popcount()\n \n proc `~`*[size](x:BitSet[size]):BitSet[size]=\n for i in 0..<len(x.bits)-1:\n result.bits[i] = bitnot(x.bits[i])\n var mod64 = size mod 64\n if mod64 == 0:\n result.bits[^1] = bitnot(x.bits[^1])\n else:\n result.bits[^1] = x.bits[^1] xor ((1u shl mod64) - 1)\n proc popcount*[size](x:BitSet[size]):int=\n for i in 0..<len(x.bits):\n result += x.bits[i].popcount()\n\n iterator items*[size](bitset:BitSet[size]):int=\n for wordIndex in 0..<len(bitset.bits):\n var word = bitset.bits[wordIndex]\n while word != 0:\n let bitIndex = word.countTrailingZeroBits()\n let index = wordIndex * 64 + bitIndex\n if index >= size:\n break\n yield index\n word = word and (word - 1)\n\n proc lowestBit*[size](bitset:BitSet[size]):int=\n for wordIndex in 0..<len(bitset.bits):\n if bitset.bits[wordIndex] != 0:\n let index = wordIndex * 64 + bitset.bits[wordIndex].countTrailingZeroBits()\n if index < size:\n return index\n -1\n \n proc `[]`*[size](bitset:BitSet[size],idx:Natural):bool=\n return bitset.bits[idx shr 6].testBit(idx and 63)\n\n proc `[]=`*[size](bitset:var BitSet[size],idx:Natural,x:bool)=\n if x:\n bitset.bits[idx shr 6].setBit((idx and 63))\n else:\n bitset.bits[idx shr 6].clearBit((idx and 63))\n \n proc `[]=`*[size](bitset:var BitSet[size],idx:Natural,x:int)=\n if x == 1:\n bitset.bits[idx shr 6].setBit((idx and 63))\n elif x == 0:\n bitset.bits[idx shr 6].clearBit((idx and 63))\n \n proc `$`*[size](bitset:BitSet[size]):string=\n var tmp : seq[char]\n for i in 0..<size:\n if bitset[i]:\n tmp.add '1'\n else:\n tmp.add '0'\n return tmp.reversed().join(\"\")\n"
var N,M = ii()
var P = lii(N)
var G = initWeightedDirectedGraph(N)
for _ in range(M):
var u,v,t = ii()
G.add_edge(u-1,v-1,t)
var dist = newseqwith(N,INF)
var bits = newseqwith(N,initBitSet[2500](2500))
proc change(u,v,t:int)=
var now = dist[u]
if now+t < dist[v]:
var bit = bits[u]
bit[v] = 0
if bit.popcount() != 0:
dist[v] = now+t
bits[v] = bit
for u in range(N):
for (v,t) in G[u]:
var now = P[u]
if now+t < dist[v]:
dist[v] = now+t
bits[v] = initBitSetFromIndexes(@[u],2500)
for _ in range(N):
for u in range(N):
for (v,t) in G[u]:
change(u,v,t)
var mn = INF
for i in range(N):
mn.min = dist[i] + P[i]
var cnt = 0
for i in range(N):
if dist[i] + P[i] == mn:
cnt += bits[i].popcount()
echo mn," ",cnt
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