UVALive 6609 Minimal Subarray Length (查找+构建排序数组)
描述:给定n个整数元素,求出长度最小的一段连续元素,使得这段元素的和sum >= X.
对整个数组先求出sum[i],表示前i个元素的和,然后依次求出以a[i]为起点的,总和>= X的最小长度,
每次考虑新元素a[i]时,将a[i]加入数组, pa[—q] = mp(sum[i], i),这样pa[q……….p]形成一段总和递增的序列,下标也是逐渐增大。
最后利用lower_bound函数求出大于或等于sum[i-1]+X的最左边的元素,求出以i为起点最短长度。
最后想了一下如果是求>= X的最大长度的序列,应该这样做,每次和pa数组中最大元素比较,如果比最大元素还大则加入到数组末尾,这样同样利用lower_bound函数可以求出最大长度序列的末尾元素的下标。
//Date: 20140211 #include <iostream> #include <sstream> #include <cstdio> #include <climits> #include <ctime> #include <cstring> #include <cstdlib> #include <string> #include <stack> #include <map> #include <cmath> #include <vector> #include <queue> #include <algorithm> #define esp 1e-6 #define pi acos(-1.0) #define inf 0x0f0f0f0f #define pb push_back #define lson l, m, rt<<1 #define rson m+1, r, rt<<1|1 #define mp(a, b) make_pair((a), (b)) #define in freopen("solve_in.txt", "r", stdin); #define out freopen("solve_out.txt", "w", stdout); #define bug puts("********))))))"); #define inout in out #define stop system("pause"); #define PRD(a) printf("%d\n",(a)) #define PRLD(a) printf("%lld\n", (a)) #define PRID(a) printf("%I64d\n", (a)) #define PRU(a) printf("%u\n", (a)) #define PRLU(a) printf("%llu\n", (a)) #define PRIU(a) printf("%I64u\n", (a)) #define SET(a, v) memset(a, (v), sizeof(a)) #define READ(a, n) {REP(i, n) cin>>a[i];} #define REP(i, n) for(int i = 0; i < (n); i++) #define Rep(i, base, n) for(int i = base; i < n; i++) #define REPS(s) for(int i = 0; s[i]; i++) #define pf(x) ((x)*(x)) #define Log(a, b) (log((double)b)/log((double)a)) #define Srand() srand((int)time(0)) #define random(number) (rand()%number) #define random_range(a, b) (int)(((double)rand()/RAND_MAX)*(b-a) + a) using namespace std; typedef long long LL; typedef unsigned long long ULL; typedef vector<int> VI; typedef pair<int,int> pii; typedef vector<pii> VII; typedef vector<pii, int> VIII; typedef VI:: iterator IT; typedef map<string, int> Mps; typedef map<int, int> Mpi; typedef map<int, pii> Mpii; typedef map<pii, int> Mpiii; const int maxn = 500000 + 1090; LL sum[maxn]; int a[maxn]; pair<LL, int> pa[maxn]; int main() { int T; for(int t = scanf("%d", &T); t<= T; t++) { int n; LL X; scanf("%d%lld", &n, &X); Rep(i, 1, n+1) scanf("%d", a+i), sum[i] = sum[i-1] + a[i]; int ans = n+1; int p , q; p = q = n+1; for(int i = n; i >= 1; i--) { while(q < p && pa[q].first <= sum[i]) q++;//寻找比sum[i]大的和,将sum[i]放在其后面 pa[--q] = mp(sum[i], i);//形成和从大到小,下标由大到小的顺序; int low = lower_bound(pa+q, pa+p, mp(sum[i-1] + X, 0)) - pa;//查找比sum[i-1]+X大的最左边的元素。 if(low < p) ans = min(ans, pa[low].second - i+1); } printf("%d\n", (ans == n+1) ? -1 : ans); } return 0; }
