链接:https://ac.nowcoder.com/acm/contest/887/H
来源:牛客网
题目描述
Given three integers A, B, C. Count the number of pairs <x ,y> (with 1≤x≤Aand1≤y≤B)
such that at least one of the following is true:
- (x and y) > C
- (x xor y) < C
("and", "xor" are bit operators)
such that at least one of the following is true:
- (x and y) > C
- (x xor y) < C
("and", "xor" are bit operators)
输入描述:
The first line of the input gives the number of test cases,T(T≤100). T test cases follow.
For each test case, the only line contains three integers A, B and C.
1≤A,B,C≤10^9
输出描述:
For each test case, the only line contains an integer that is the number of pairs satisfying the condition given in the problem statement.
示例1
输入
3 3 4 2 4 5 2 7 8 5
输出
5 7 31
数位dp求 x&y<=c && x^y>=c的个数然后用所有方案剪掉
具体见代码
#include <bits/stdc++.h> #define ll long long using namespace std; int T,A,B,C; int a[35],b[35],c[35]; ll f[35][2][2][2][2]; void cal(int x,int v[]) { for (int i=0;i<=30;i++) v[i]=(x>>i)&1; } ll dfs(int pos,bool lima,bool limb,bool limand,bool limxor) // 位 x<a y<b x&y<c x^y>c { if (pos==-1) return 1; if (f[pos][lima][limb][limand][limxor]!=-1) return f[pos][lima][limb][limand][limxor]; int aa=lima?a[pos]:1; //lima=1说明之前一直相等当前位取要<=a,否则说明之前<a了当前位可以乱取 int bb=limb?b[pos]:1; int c1=limand?c[pos]:1; //同理如果之前x&y一直等于c那么当前位要x&y<=c,否则就可以乱取 int c2=limxor?c[pos]:0; ll &ret=f[pos][lima][limb][limand][limxor]; ret=0; for (int i=0;i<=aa;i++) for (int j=0;j<=bb;j++) { if ((i&j)>c1) continue; if ((i^j)<c2) continue; ret+=dfs(pos-1,lima&&i==aa,limb&&j==bb,limand&&(i&j)==c1,limxor&&(i^j)==c2); } return ret; } int main() { scanf("%d",&T); while(T--) { scanf("%d%d%d",&A,&B,&C); memset(a,0,sizeof(a)); memset(b,0,sizeof(b)); memset(c,0,sizeof(c)); memset(f,-1,sizeof(f)); cal(A,a); cal(B,b); cal(C,c); ll ans=dfs(30,1,1,1,1); ans-=max(0,A-C+1); ans-=max(0,B-C+1); //减掉x,y为0的情况 printf("%lld ",(ll)A*B-ans); } return 0; }