poj2181 jumping cow
阿新 • • 發佈:2017-07-03
line rtu spa bool gun abi [1] nis math umping Cows
The local witch doctor has mixed up P (1 <= P <= 150,000) potions to aid the cows in their quest to jump. These potions must be administered exactly in the order they were created, though some may be skipped.
Each potion has a ‘strength‘ (1 <= strength <= 500) that enhances the cows‘ jumping ability. Taking a potion during an odd time step increases the cows‘ jump; taking a potion during an even time step decreases the jump. Before taking any potions the cows‘ jumping ability is, of course, 0.
No potion can be taken twice, and once the cow has begun taking potions, one potion must be taken during each time step, starting at time 1. One or more potions may be skipped in each turn.
Determine which potions to take to get the highest jump.
* Lines 2..P+1: Each line contains a single integer that is the strength of a potion. Line 2 gives the strength of the first potion; line 3 gives the strength of the second potion; and so on. 
| Time Limit: 1000MS | Memory Limit: 65536K | |
| Total Submissions: 7579 | Accepted: 4559 |
Description
Farmer John‘s cows would like to jump over the moon, just like the cows in their favorite nursery rhyme. Unfortunately, cows can not jump.The local witch doctor has mixed up P (1 <= P <= 150,000) potions to aid the cows in their quest to jump. These potions must be administered exactly in the order they were created, though some may be skipped.
Each potion has a ‘strength‘ (1 <= strength <= 500) that enhances the cows‘ jumping ability. Taking a potion during an odd time step increases the cows‘ jump; taking a potion during an even time step decreases the jump. Before taking any potions the cows‘ jumping ability is, of course, 0.
No potion can be taken twice, and once the cow has begun taking potions, one potion must be taken during each time step, starting at time 1. One or more potions may be skipped in each turn.
Determine which potions to take to get the highest jump.
Input
* Lines 2..P+1: Each line contains a single integer that is the strength of a potion. Line 2 gives the strength of the first potion; line 3 gives the strength of the second potion; and so on.
Output
* Line 1: A single integer that is the maximum possible jump.Sample Input
8 7 2 1 8 4 3 5 6
Sample Output
17
簡單dp,設f[i][0]表示選了到i個,用完奇數時間的最大值,f[i][1]表示選到第i個,用完偶數時間的最大值,轉移方程顯而易見。
1 #include<iostream> 2 #include<cstring> 3 #include<cstdio> 4 #include<cstdlib> 5 #include<cmath> 6 #include<algorithm> 7 using namespace std; 8 int n;View Code9 int a[150005]; 10 int f[2][2]; 11 int main() 12 { 13 scanf("%d",&n); 14 for(int i=1;i<=n;i++) scanf("%d",&a[i]); 15 int now=1; 16 bool hh=0; 17 for(int i=1;i<=n;i++) 18 { 19 hh^=1; 20 f[hh][1]=max(f[hh^1][1],f[hh^1][0]+a[i]); 21 f[hh][0]=max(f[hh^1][1]-a[i],f[hh^1][0]); 22 } 23 cout<<max(f[hh][1],f[hh][2]); 24 //system("pause"); 25 }
poj2181 jumping cow