杭电多校第五次 1002 Beautiful Now(dfs+贪心)
Problem Description
Anton has a positive integer n, however, it quite looks like a mess, so he wants to make it beautiful after k swaps of digits.
Let the decimal representation of n as (x1x2⋯xm)10 satisfying that 1≤x1≤9, 0≤xi≤9 (2≤i≤m), which means n=∑mi=1xi10m−i. In each swap, Anton can select two digits xi and xj (1≤i≤j≤m) and then swap them if the integer after this swap has no leading zero.
Could you please tell him the minimum integer and the maximum integer he can obtain after k swaps?
Input
The first line contains one integer T, indicating the number of test cases.
Each of the following T lines describes a test case and contains two space-separated integers n and k.
1≤T≤100, 1≤n,k≤109.
Output
For each test case, print in one line the minimum integer and the maximum integer which are separated by one space.
Sample Input
5
12 1
213 2
998244353 1
998244353 2
998244353 3
Sample Output
12 21
123 321
298944353 998544323
238944359 998544332
233944859 998544332
解析:将当前位与后面最小值交换为最优,但可能最小值有多个,比如 2311 交换两次 最小值为 1123 ,那么交换哪一个呢,我们dfs遍历一下所有最小值,然后求一个min,如果当前位是最小值,那么就不交换,由于最多交换9次所以复杂度不高。 求最大值同理
求最小值时不能将零换到首位
想到哪一步不会写了就暴力。。。0ms就过了。。
#include <bits/stdc++.h>
#define ll long long
#define mod 100003
using namespace std;
const int N=12;
string mi,mx;
int n;
void dfsmax(int x,string s,int k)
{
mx=max(mx,s);
if(k==0||x==n) return;
char m=s[x];
for(int i=x+1;i<n;i++)
{
if(s[i]>m) m=s[i];
}
if(m==s[x])
{
dfsmax(x+1,s,k) ;
return;
}
for(int i=x+1;i<n;i++)
{
if(s[i]==m)
{
swap(s[x],s[i]);
dfsmax(x+1,s,k-1);
swap(s[x],s[i]);
}
}
}
void dfsmin(int x,string s,int k)
{
mi=min(mi,s);
if(k==0||x==n) return;
char m=s[x];
for(int i=x+1;i<n;i++)
if(s[i]<m&&(x!=0||x==0&&s[i]!='0'))
m=s[i];
if(m==s[x])
{
dfsmin(x+1,s,k) ;
return ;
}
for(int i=x+1;i<n;i++)
{
if(s[i]==m)
{
swap(s[x],s[i]);
dfsmin(x+1,s,k-1);
swap(s[x],s[i]);
}
}
}
int main()
{
#ifdef local
freopen("D://rush.txt","r",stdin);
#endif // local
ios::sync_with_stdio(false),cin.tie(0);
int t;
cin>>t;
while(t--)
{
string str;
int k;
cin>>str>>k;
n=str.size();
mx=str,mi=str;
dfsmax(0,str,k);
dfsmin(0,str,k);
cout<<mi<<' '<<mx<<endl;
}
return 0;
}