import types _atcoder_code = """ # Python port of AtCoder Library. __version__ = '0.0.1' """ atcoder = types.ModuleType('atcoder') exec(_atcoder_code, atcoder.__dict__) _atcoder_dsu_code = """ import typing class DSU: ''' Implement (union by size) + (path halving) Reference: Zvi Galil and Giuseppe F. Italiano, Data structures and algorithms for disjoint set union problems ''' def __init__(self, n: int = 0) -> None: self._n = n self.parent_or_size = [-1] * n def merge(self, a: int, b: int) -> int: assert 0 <= a < self._n assert 0 <= b < self._n x = self.leader(a) y = self.leader(b) if x == y: return x if -self.parent_or_size[x] < -self.parent_or_size[y]: x, y = y, x self.parent_or_size[x] += self.parent_or_size[y] self.parent_or_size[y] = x return x def same(self, a: int, b: int) -> bool: assert 0 <= a < self._n assert 0 <= b < self._n return self.leader(a) == self.leader(b) def leader(self, a: int) -> int: assert 0 <= a < self._n parent = self.parent_or_size[a] while parent >= 0: if self.parent_or_size[parent] < 0: return parent self.parent_or_size[a], a, parent = ( self.parent_or_size[parent], self.parent_or_size[parent], self.parent_or_size[self.parent_or_size[parent]] ) return a def size(self, a: int) -> int: assert 0 <= a < self._n return -self.parent_or_size[self.leader(a)] def groups(self) -> typing.List[typing.List[int]]: leader_buf = [self.leader(i) for i in range(self._n)] result: typing.List[typing.List[int]] = [[] for _ in range(self._n)] for i in range(self._n): result[leader_buf[i]].append(i) return list(filter(lambda r: r, result)) """ atcoder.dsu = types.ModuleType('atcoder.dsu') exec(_atcoder_dsu_code, atcoder.dsu.__dict__) DSU = atcoder.dsu.DSU from collections import defaultdict # from atcoder.dsu import DSU n,m=map(int, input().split()) C=list(map(int, input().split())) Cnode=defaultdict(set) for i,c in enumerate(C): Cnode[c].add(i) Cedge=defaultdict(set) for _ in range(m): u,v=map(lambda x: int(x) - 1, input().split()) if C[u] == C[v]: Cedge[C[u]].add((u,v)) ans=0 for c in Cnode.keys(): if len(Cnode[c]) == 1: continue D={e:i for i,e in enumerate(Cnode[c])} dsu=DSU(len(D)) for u,v in Cedge[c]: dsu.merge(D[u],D[v]) node1=D[Cnode[c].pop()] for u in Cnode[c]: if not dsu.same(D[u],node1): dsu.merge(D[u],node1) ans+=1 print(ans)