You are given a 2D integer array orders
, where each orders[i] = [pricei, amounti, orderTypei]
denotes that amounti
orders have been placed of type orderTypei
at the price pricei
. The orderTypei
is:
0
if it is a batch ofbuy
orders, or1
if it is a batch ofsell
orders.
Note that orders[i]
represents a batch of amounti
independent orders with the same price and order type. All orders represented by orders[i]
will be placed before all orders represented by orders[i+1]
for all valid i
.
There is a backlog that consists of orders that have not been executed. The backlog is initially empty. When an order is placed, the following happens:
- If the order is a
buy
order, you look at thesell
order with the smallest price in the backlog. If thatsell
order's price is smaller than or equal to the currentbuy
order's price, they will match and be executed, and thatsell
order will be removed from the backlog. Else, thebuy
order is added to the backlog. - Vice versa, if the order is a
sell
order, you look at thebuy
order with the largest price in the backlog. If thatbuy
order's price is larger than or equal to the currentsell
order's price, they will match and be executed, and thatbuy
order will be removed from the backlog. Else, thesell
order is added to the backlog.
Return the total amount of orders in the backlog after placing all the orders from the input. Since this number can be large, return it modulo 109 + 7
.
Input: orders = [[10,5,0],[15,2,1],[25,1,1],[30,4,0]] Output: 6 Explanation: Here is what happens with the orders: - 5 orders of type buy with price 10 are placed. There are no sell orders, so the 5 orders are added to the backlog. - 2 orders of type sell with price 15 are placed. There are no buy orders with prices larger than or equal to 15, so the 2 orders are added to the backlog. - 1 order of type sell with price 25 is placed. There are no buy orders with prices larger than or equal to 25 in the backlog, so this order is added to the backlog. - 4 orders of type buy with price 30 are placed. The first 2 orders are matched with the 2 sell orders of the least price, which is 15 and these 2 sell orders are removed from the backlog. The 3rd order is matched with the sell order of the least price, which is 25 and this sell order is removed from the backlog. Then, there are no more sell orders in the backlog, so the 4th order is added to the backlog. Finally, the backlog has 5 buy orders with price 10, and 1 buy order with price 30. So the total number of orders in the backlog is 6.
Input: orders = [[7,1000000000,1],[15,3,0],[5,999999995,0],[5,1,1]] Output: 999999984 Explanation: Here is what happens with the orders: - 109 orders of type sell with price 7 are placed. There are no buy orders, so the 109 orders are added to the backlog. - 3 orders of type buy with price 15 are placed. They are matched with the 3 sell orders with the least price which is 7, and those 3 sell orders are removed from the backlog. - 999999995 orders of type buy with price 5 are placed. The least price of a sell order is 7, so the 999999995 orders are added to the backlog. - 1 order of type sell with price 5 is placed. It is matched with the buy order of the highest price, which is 5, and that buy order is removed from the backlog. Finally, the backlog has (1000000000-3) sell orders with price 7, and (999999995-1) buy orders with price 5. So the total number of orders = 1999999991, which is equal to 999999984 % (109 + 7).
1 <= orders.length <= 105
orders[i].length == 3
1 <= pricei, amounti <= 109
orderTypei
is either0
or1
.
use std::cmp::Reverse;
use std::collections::BinaryHeap;
impl Solution {
pub fn get_number_of_backlog_orders(orders: Vec<Vec<i32>>) -> i32 {
let mut buys = BinaryHeap::new();
let mut sells = BinaryHeap::new();
for order in &orders {
let price = order[0];
let mut amount = order[1];
let order_type = order[2];
if order_type == 0 {
while let Some(Reverse((p, a))) = sells.pop() {
if p > price {
sells.push(Reverse((p, a)));
break;
} else if amount >= a {
amount -= a;
} else {
sells.push(Reverse((p, a - amount)));
amount = 0;
break;
}
}
if amount > 0 {
buys.push((price, amount));
}
} else {
while let Some((p, a)) = buys.pop() {
if p < price {
buys.push((p, a));
break;
} else if amount >= a {
amount -= a;
} else {
buys.push((p, a - amount));
amount = 0;
break;
}
}
if amount > 0 {
sells.push(Reverse((price, amount)));
}
}
}
(buys
.iter()
.map(|&(_, a)| a as i64)
.chain(sells.iter().map(|&Reverse((_, a))| a as i64))
.sum::<i64>()
% 1_000_000_007) as i32
}
}