PAT 1067 Sort with Swap[难]
1067 Sort with Swap(0,*) (25)(25 分)
Given any permutation of the numbers {0, 1, 2,..., N-1}, it is easy to sort them in increasing order. But what if Swap(0, *) is the ONLY operation that is allowed to use? For example, to sort {4, 0, 2, 1, 3} we may apply the swap operations in the following way:
Swap(0, 1) => {4, 1, 2, 0, 3}\ Swap(0, 3) => {4, 1, 2, 3, 0}\ Swap(0, 4) => {0, 1, 2, 3, 4}
Now you are asked to find the minimum number of swaps need to sort the given permutation of the first N nonnegative integers.
Input Specification:
Each input file contains one test case, which gives a positive N (<=10^5^) followed by a permutation sequence of {0, 1, ..., N-1}. All the numbers in a line are separated by a space.
Output Specification:
For each case, simply print in a line the minimum number of swaps need to sort the given permutation.
Sample Input:
10 3 5 7 2 6 4 9 0 8 1Sample Output:
9题目大意:现在只有swap(0,*)这个操作来实现排序,也就是将0和*进行交换排序,找出最少的操作次数。
//我不太会,我只能想到是的有点像快排,当0所在的下标<n/2时,就从右边开始遍历选最小的数换,反之取最大的数换,但是这样明显不是次数最少的,所以我不会。
代码来自:https://www.liuchuo.net/archives/2301
#include <cstdio> #include <vector> using namespace std; int main() { int n, num, cnt = 0, ans = 0, index = 1; scanf("%d", &n); vector<int> v(n); for(int i = 0; i < n; i++) { scanf("%d", &num); v[num] = i;//保存当前数所在的位置。 if(num != i && num != 0) cnt++; } while(cnt > 0) { if(v[0] == 0) { while(index < n) { if(v[index] != index) { swap(v[index], v[0]);//直接用swap函数是多么简单。 ans++; break; } index++; } } while(v[0] != 0) { swap(v[v[0]], v[0]); ans++; cnt--; } } printf("%d", ans); return 0; }
//当时看解题思路,似乎懂了一些,但是自己写还是不对,真是绝望,好笨。
1.使用向量记录的是数字所在的位置,而不是当前位置放的是谁,这样就简单了,因为每次都要找数字所在的下标位置。
2.使用index来记录,因为每次循环到index之前的都已经存储好了,index是指数1,数2,数3是否存到了正确的位置。
3.当0不在0的位置上时,一直循环交换即可。
#include <iostream> #include <algorithm> #include <vector> using namespace std; int a[10000]; int main() { int n,index=0;//index指向0所在的位置。 cin>>n; int ct=0;//标记有多少不在原位的,在原位的肯定就不去挪了。 for(int i=0;i<n;i++){ cin>>a[i]; if(a[i]==0) index=i;//标记住i的下标。 if(a[i]!=i&&i!=0 ) ct++; } int t,no=0; while(ct!=0){ if(index!=0){ for(int i=0;i<n;i++) if(a[i]==index){ t=i;break; } a[t]=0; a[index]=index; index=t; ct--; no++; }else if(index==0){ for(int i=1;i<n;i++) if(a[i]!=i){ t=i;break; } if(t==-1)break; a[0]=t; a[t]=0; no++; } cout<<"hh"; t=-1; } cout<<no; return 0; }
//终于理解了为什么自己错了,因为当0回到0位置时,应该选取1,2,3依此数字最小的而不是位置上不等于当前位置的!
学习了!
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