As you have noticed, there are lovely girls in Arpa’s land.

People in Arpa's land are numbered from 1 to n. Everyone has exactly one crush, i-th person's crush is person with the number crush_i.

Someday Arpa shouted Owf loudly from the top of the palace and a funny game started in Arpa's land. The rules are as follows.

The game consists of rounds. Assume person x wants to start a round, he calls crush_x and says: "Oww...wwf" (the letter w is repeated t times) and cuts off the phone immediately. If t > 1 then crush_x calls crush_crushx and says: "Oww...wwf" (the letter w is repeated t - 1 times) and cuts off the phone immediately. The round continues until some person receives an "Owf" (t = 1). This person is called the Joon-Joon of the round. There can't be two rounds at the same time.

Mehrdad has an evil plan to make the game more funny, he wants to find smallest t (t ≥ 1) such that for each person x, if x starts some round and y becomes the Joon-Joon of the round, then by starting from y, x would become the Joon-Joon of the round. Find such t for Mehrdad if it's possible.

Some strange fact in Arpa's land is that someone can be himself's crush (i.e. crush_i = i).

The first line of input contains integer n (1 ≤ n ≤ 100) — the number of people in Arpa's land.

The second line contains n integers, i-th of them is crush_i (1 ≤ crush_i ≤ n) — the number of i-th person's crush.

If there is no t satisfying the condition, print -1. Otherwise print such smallest t.

4
2 3 1 4

3

4
4 4 4 4

-1

4
2 1 4 3

 1 #include<stdio.h>

 2 #include<algorithm>

 3 #include<iostream>

 4 #include<string.h>

 5 #include<math.h>

 6 #include<queue>

 7 #include<stdlib.h>

 8 #include<set>

 9 #include<vector>

10 typedef long long  LL;

11 using namespace std;

12 int ans[1005];

13 LL cnt[1000005];

14 int ma[105];

15 bool flag[105];

16 LL gcd(LL n,LL m);

17 int main(void)

18 {

19     int n;

20     scanf("%d",&n);

21     int i,j;

22     for(i = 1; i <= n; i++)

23     {

24         scanf("%d",&ans[i]);

25     }

26     memset(ma,-1,sizeof(ma));

27     int id = -1;

28     for(i = 1; i <= n; i++)

29     {

30         int t = 0;

31         memset(flag,0,sizeof(flag));

32         int v = ans[i];

33         while(!flag[v])

34         {

35             t++;

36             flag[v] = true;

37             cnt[v] = t;

38             v=ans[v];

39             if(v == i)

40             {t++;ma[i] = t;break;}

41         }

42     }

43     int fl = 0;LL ak = 1;

44     for(i = 1; i <=n; i++)

45     {

46         if(ma[i]==-1)

47             fl = 1;

48         else

49         {

50              if(ma[i]%2==0)

51               ma[i]/=2;

52             LL ac = gcd(ma[i],ak);

53               ak = ak/ac*ma[i];

54         }

55     }

56     if(fl)printf("-1\n");

57     else printf("%lld\n",ak);

58     return 0;

59 }

60 LL gcd(LL n,LL m)

61 {

62     if(m == 0)

63         return n;

64     else return gcd(m,n%m);

65 }