luogu#P9130. [USACO23FEB] Hungry Cow P

[USACO23FEB] Hungry Cow P

题目描述

Note: The time limit for this problem is 6s, three times the default. The memory limit for this problem is 512MB, twice the default.

Bessie is a hungry cow. Each day, for dinner, if there is a haybale in the barn, she will eat one haybale. Farmer John does not want Bessie to starve, so some days he sends a delivery of haybales, which arrive in the morning (before dinner). In particular, on day did_i, Farmer John sends a delivery of bib_i haybales (1di1014,0bi109)(1 \le d_i \le 10^{14}, 0 \le b_i \le 10^9).

Process U(1U105)U(1 \le U \le 10^5) updates as follows: Given a pair (d,b)(d,b), update the number of haybales arriving on day dd to bb. After each update, output the sum of all days on which Bessie eats haybales modulo 109+710^9+7.

输入格式

UU, followed by UU lines containing the updates.

输出格式

The sum after each update modulo 109+710^9+7.

题目大意

Bessie 很饿,每天晚饭如果有干草就会吃 11 份,没有就不吃,初始没有干草。

每天早上 Farmer John 会给它送若干干草,设第 kk 天送 aka_k 份干草,初始时 ak=0a_k=0,表示该天不送干草。

qq 次操作,每次给出 x,yx,y,表示将 axa_x 改成 yy,请将在此时 Bessie 有干草吃的日期编号求和并输出。对 109+710^9+7 取模。

操作间互不独立。

1q1051\le q\le10^51x10141\le x\le10^{14}0y1090\le y\le10^9

3
4 3
1 5
1 2
15
36
18
9
1 89
30 7
101 26
1 24
5 1
60 4
5 10
101 0
1 200
4005
4656
7607
3482
3507
3753
4058
1107
24531

提示

Explanation for Sample 1

Answers after each update:

4+5+6=154+5+6=15
1+2+3+4+5+6+7+8=361+2+3+4+5+6+7+8=36
1+2+4+5+6=181+2+4+5+6=18

SCORING

  • Input 33: U5000U \le 5000
  • Inputs 4104-10: Updates only increase the number of haybales arriving on day dd.
  • Inputs 11-22: No additional constraints.