結果

問題 No.2667 Constrained Permutation
ユーザー 👑 ygussany
提出日時 2024-02-18 12:41:22
言語 C
(gcc 13.3.0)
結果
TLE  
実行時間 -
コード長 2,435 bytes
コンパイル時間 381 ms
コンパイル使用メモリ 32,384 KB
実行使用メモリ 6,824 KB
最終ジャッジ日時 2024-09-29 00:22:46
合計ジャッジ時間 23,407 ms
ジャッジサーバーID
(参考情報) 		judge4 / judge1
このコードへのチャレンジ
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ファイルパターン 結果
other AC * 41 TLE * 5
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ソースコード

diff #
プレゼンテーションモードにする

#include <stdio.h>
typedef struct {
    int key, id;
} data;
typedef struct {
    data obj[200001];
    int size;
} min_heap;
void push(min_heap* h, data x)
{
    int i = ++(h->size), j = i >> 1;
    data tmp;
    h->obj[i] = x;
    while (j > 0) {
        if (h->obj[i].key < h->obj[j].key) {
            tmp = h->obj[j];
            h->obj[j] = h->obj[i];
            h->obj[i] = tmp;
            i = j;
            j >>= 1;
        } else break;
    }
}
data pop(min_heap* h)
{
    int i = 1, j = 2;
    data output = h->obj[1], tmp;
    h->obj[1] = h->obj[(h->size)--];
    while (j <= h->size) {
        if (j < h->size && h->obj[j^1].key < h->obj[j].key) j ^= 1;
        if (h->obj[j].key < h->obj[i].key) {
            tmp = h->obj[j];
            h->obj[j] = h->obj[i];
            h->obj[i] = tmp;
            i = j;
            j <<= 1;
        } else break;
    }
    return output;
}
int main()
{
    int i, n, l[200001], r[200001];
    scanf("%d", &n);
    for (i = 1; i <= n; i++) scanf("%d %d", &(l[i]), &(r[i]));
    
    int L = 0, R = 1000000001, M;
    min_heap h[2];
    data d;
    while (L <= R) {
        M = (L + R) / 2;
        h[0].size = 0;
        h[1].size = 0;
        for (i = 1; i <= n; i++) {
            d.key = l[i] - M;
            d.id = i;
            push(&(h[0]), d);
        }
        for (i = 1; i <= n; i++) {
            while (h[0].size > 0 && h[0].obj[1].key <= i) {
                d = pop(&(h[0]));
                d.key = r[d.id] - M;
                push(&(h[1]), d);
            }
            if (h[1].size == 0 || h[1].obj[1].key < i) break;
            pop(&(h[1]));
        }
        if (i <= n) {
            if (h[1].size == 0) L = M + 1;
            else R = M - 1;
        } else {
            L = M;
            R = M;
            break;
        }
    }
    if (L > R) {
        printf("0\n");
        return 0;
    }
    
    int LL = L, RR = 1000000001;
    while (LL < RR) {
        M = (LL + RR + 1) / 2;
        h[0].size = 0;
        h[1].size = 0;
        for (i = 1; i <= n; i++) {
            d.key = l[i] - M;
            d.id = i;
            push(&(h[0]), d);
        }
        for (i = 1; i <= n; i++) {
            while (h[0].size > 0 && h[0].obj[1].key <= i) {
                d = pop(&(h[0]));
                d.key = r[d.id] - M;
                push(&(h[1]), d);
            }
            if (h[1].size == 0 || h[1].obj[1].key < i) break;
            pop(&(h[1]));
        }
        if (i <= n) RR = M - 1;
        else LL = M;
    }
    L = 0;
    while (L < R) {
        M = (L + R) / 2;
        h[0].size = 0;
        h[1].size = 0;
        for (i = 1; i <= n; i++) {
            d.key = l[i] - M;
            d.id = i;
            push(&(h[0]), d);
        }
        for (i = 1; i <= n; i++) {
            while (h[0].size > 0 && h[0].obj[1].key <= i) {
                d = pop(&(h[0]));
                d.key = r[d.id] - M;
                push(&(h[1]), d);
            }
            if (h[1].size == 0 || h[1].obj[1].key < i) break;
            pop(&(h[1]));
        }
        if (i <= n) L = M + 1;
        else R = M;
    }
    printf("%d\n", LL - L + 1);
    fflush(stdout);
    return 0;
}
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