Problems # Name A Inna and Choose Options standard input/output 1 s, 256 MB x1942 B Inna and New Matrix of Candies standard input/output 1 s, 256 MB x1556 C Inna and Huge Candy Matrix standard input/output 2 s, 256 MB x1114 D Dima and Bact
Problems
# Name A
Inna and Choose Options
standard input/output
1 s, 256 MB x1942 B
Inna and New Matrix of Candies
standard input/output
1 s, 256 MB x1556 C
Inna and Huge Candy Matrix
standard input/output
2 s, 256 MB x1114 D
Dima and Bacteria
standard input/output
2 s, 256 MB x371 E
Inna and Binary Logic
standard input/output
3 s, 256 MB x169A题:直接暴力枚举每种情况即可。水题
B题:记录下S,G的距离,每种距离只要一次,开个vis数组标记,最后遍历一遍看又几个即可
C题:模拟旋转即可。
D题:并查集+floyd,把w=0的边的点并查集处理,判断同种类是否都在一个集合内,不是就No,剩下的就利用floyd求出最短路即可。
E题:位运算,每个数字对应的每个位向左和向右延生,这个区间内向下的那个三角形区间一定是会增加(1
代码:
A题:
#include
#include
int t, n;
char str[15];
char save[15][15];
bool judge(int a, int b) {
int i, j;
for (i = 0; i B题:
#include
#include
#include
using namespace std;
const int N = 1005;
int n, m, i, j, vis[N];
char g[N][N];
int main() {
scanf("%d%d", &n, &m);
for (i = 0; i C题:
#include
#include
#include
using namespace std;
int n, m, x, y, z, p, i, j;
struct Point {
int x, y;
} po[100005];
void at(Point &a) {
int x = a.x, y = a.y;
a.y = n - x + 1;
a.x = y;
}
void ht(Point &a) {
int x = a.x, y = a.y;
a.y = m - y + 1;
a.x = x;
}
void ct(Point &a) {
int x = a.x, y = a.y;
a.y = x;
a.x = m - y + 1;
}
int main() {
scanf("%d%d%d%d%d%d", &n, &m, &x, &y, &z, &p);
x %= 4;
y %= 2;
z %= 4;
for (i = 0; i D题:
#include
#include
#include
#define INF 0x3f3f3f3f
#define min(a,b) ((a) w) {
f[type[u]][type[v]] = w;
f[type[v]][type[u]] = w;
}
if (w == 0) {
int pu = find(u);
int pv = find(v);
if (pu != pv)
fa[pv] = pu;
}
}
for (i = 2; i E题:
#include
#include
const int N = 100005;
const int M = 20;
int n, m, i, j, b;
int a[N][M];
__int64 sum, mi[32];
int main() {
mi[0] = 1;
for (i = 1; i
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