0983. Minimum Cost For Tickets (M)
Minimum Cost For Tickets (M)
题目
In a country popular for train travel, you have planned some train travelling one year in advance. The days of the year that you will travel is given as an array days
. Each day is an integer from 1
to 365
.
Train tickets are sold in 3 different ways:
- a 1-day pass is sold for
costs[0]
dollars; - a 7-day pass is sold for
costs[1]
dollars; - a 30-day pass is sold for
costs[2]
dollars.
The passes allow that many days of consecutive travel. For example, if we get a 7-day pass on day 2, then we can travel for 7 days: day 2, 3, 4, 5, 6, 7, and 8.
Return the minimum number of dollars you need to travel every day in the given list of days
.
Example 1:
Input: days = [1,4,6,7,8,20], costs = [2,7,15]
Output: 11
Explanation:
For example, here is one way to buy passes that lets you travel your travel plan:
On day 1, you bought a 1-day pass for costs[0] = $2, which covered day 1.
On day 3, you bought a 7-day pass for costs[1] = $7, which covered days 3, 4, ..., 9.
On day 20, you bought a 1-day pass for costs[0] = $2, which covered day 20.
In total you spent $11 and covered all the days of your travel.
Example 2:
Input: days = [1,2,3,4,5,6,7,8,9,10,30,31], costs = [2,7,15]
Output: 17
Explanation:
For example, here is one way to buy passes that lets you travel your travel plan:
On day 1, you bought a 30-day pass for costs[2] = $15 which covered days 1, 2, ..., 30.
On day 31, you bought a 1-day pass for costs[0] = $2 which covered day 31.
In total you spent $17 and covered all the days of your travel.
Note:
1 <= days.length <= 365
1 <= days[i] <= 365
days
is in strictly increasing order.costs.length == 3
1 <= costs[i] <= 1000
题意
旅游票有三种:包1/7/30天,求游览完所有指定天数需要的最少花费。
思路
动态规划。dp[i]表示游览完从第1天到第i天中所有指定天数所需要的最少花费。那么对于dp[i]有几种情况:
-
第i天是不需要游览的,那么dp[i]=dp[i-1];
-
第i天需要游览,再分为3种情况:
- 在第i天购入1日票,dp[i]=dp[i-1]+costs[0]
- 在第i-7天购入7日票,dp[i]=dp[i-7]+costs[1]
- 在第i-30天购入30日票,dp[i]=dp[i-30]+costs[2]
取其中的最小值。
代码实现
Java
class Solution {
public int mincostTickets(int[] days, int[] costs) {
int[] dp = new int[366];
for (int i = 0; i < days.length; i++) {
dp[days[i]] = -1;
}
for (int i = 1; i < 366; i++) {
if (dp[i] == 0) {
dp[i] = dp[i - 1];
} else {
int one = dp[i - 1] + costs[0];
int seven = i > 7 ? dp[i - 7] + costs[1] : costs[1];
int thirty = i > 30 ? dp[i - 30] + costs[2] : costs[2];
dp[i] = Math.min(one, Math.min(seven, thirty));
}
}
return dp[days[days.length - 1]];
}
}