此题主要考查的是求最长公共子序列
设A[i]:A[j] = a:b = ac:bc B[ii]:B[jj] = c:d = ac:ad ,
如果A[i]:A[j] = B[ii]:B[jj]则bc= ad,所以A乘以B的倍数,B乘以A的倍数,则A与B所求的序列必然是一样的,即求A与B的最长公共子序列
#include <iostream>
#include <vector>
#include <algorithm> using namespace std; class AstronomicalRecordsEasy{
public:
int minimalPlanets(vector<int> A, vector<int> B){
int lenA = A.size(),lenB = B.size(),res = lenA + lenB;
for(int i = ; i < lenA; ++ i ){
for(int j = ; j < lenB; ++ j){
int a = A[i],b = B[j];
vector<vector<int> > dp(lenA+,vector<int> (lenB+,));
for(int ki = ; ki <= lenA; ++ ki ){
for(int kj = ; kj <= lenB; ++ kj){
dp[ki][kj] = max(max(dp[ki-][kj],dp[ki][kj-]),dp[ki-][kj-] + (b*A[ki-] == a*B[kj-]) );
}
}
res = min(res, lenA+lenB - dp[lenA][lenB]);
}
}
return res;
}
};