External link:
http://codeforces.com/gym/100159
http://www.facebook.com/hackercup/scoreboard?round=225705397509134
Problem A. Checkpoint
Brief description:
。。我们定义到 (m, n) 的经过 (a, b) 的 2 格点路径为。。。
。从 (0, 0) 出发到 (a, b) 再到 (m, n) 的路径。。(a <= m, b <= n)。。
现在询问方案数等于 S 的二阶格点路径最少有多少步。。。。
Analysis:
… 预处理 D[x] 表示到达组合数 x 所需要的最少步数。。
。。之后将 s 分解成 a * b 即可。(。O(sqrt(s))
//}/* .................................................................................................................................. */
const int N = int(1e7);
int D[N+1];
int s;
int main(){
#ifndef ONLINE_JUDGE
freopen("in.txt", "r", stdin);
//freopen("out.txt", "w", stdout);
#endif
REP_1(i, N) D[i] = i;
FOR(i, 2, 30){ // C(j, i) .. .
LL x = 1; for (int j=i;x<=N;++j,x=x*j/(j-i)){
checkMin(D[x], j);
}
}
Rush{
int res = RD(s)+1; for (int a=1;sqr(a)<=s;++a){
int b=s/a; if (a*b!=s) continue;
checkMin(res, D[a]+D[b]);
}
OT(res);
}
}
Problem B. Recover the Sequence
Note:
… 严格按照题目的要求递归下去就好了。。)
//}/* .................................................................................................................................. */
const int N = int(1e4) + 9;
int R[N], P[N];
int n;
void gao(int l, int r){
if (l+1 >= r) return;
int m = l + r >> 1;
gao(l, m), gao(m, r);
int a = l, b = m, i = l;
while (a < m && b < r){
if (RC() == '1') P[i++] = R[a++];
else P[i++] = R[b++];
}
while (a < m) P[i++] = R[a++];
while (b < r) P[i++] = R[b++];
FOR(i, l, r) R[i] = P[i];
}
int main(){
#ifndef ONLINE_JUDGE
freopen("in.txt", "r", stdin);
//freopen("out.txt", "w", stdout);
#endif
Rush{
REP_C(i, RD(n)) R[i] = i; gao(0, n); REP(i, n) P[R[i]] = i+1;
int res = 1; REP(i, n) MUL(res, 31), INC(res, P[i]);
OT(res);
}
}
Problem C. Squished Status
Note:
… 暴力 DP 。。注意模数超 int。。
int Case; template<class T> inline void OT(const T &x){
printf("Case #%d: %u\n", ++Case, x);
//printf("%.2lf\n", x);
//printf("%d\n", x);
//cout << x << endl;
}
//}
//}/* .................................................................................................................................. */
const UINT MOD = 0xfaceb00c;
inline void INC(UINT &a, UINT b){LL aa = a; aa += b; if (aa >= MOD) aa -= MOD; a = aa;}
const int N = 1009;
char str[N]; UINT dp[N], n, m;
int main(){
#ifndef ONLINE_JUDGE
freopen("in.txt", "r", stdin);
//freopen("out.txt", "w", stdout);
#endif
Rush{
RD(m); n = strlen(RS(str));
REP_S(cur, str) *cur -= '0';
RST(dp), dp[0] = 1; REP(i, n) if (dp[i] && str[i]){
int x = 0; FOR(j, i, n){
x *= 10, x += str[j]; if (x > m) break;
INC(dp[j+1], dp[i]);
}
}
OT(dp[n]);
}
}
