Description
Farmer John goes to Dollar Days at The Cow Store and discovers an unlimited number of tools on sale. During his first visit, the tools are selling variously for $1, $2, and $3. Farmer John has exactly $5 to spend. He can buy 5 tools at $1 each or 1 tool at $3 and an additional 1 tool at $2. Of course, there are other combinations for a total of 5 different ways FJ can spend all his money on tools. Here they are:
1 @ US$3 + 1 @ US$2
1 @ US$3 + 2 @ US$1
1 @ US$2 + 3 @ US$1
2 @ US$2 + 1 @ US$1
5 @ US$1
Write a program than will compute the number of ways FJ can spend N dollars (1 <= N <= 1000) at The Cow Store for tools on sale with a cost of $1..$K (1 <= K <= 100).Input
A single line with two space-separated integers: N and K.
Output
A single line with a single integer that is the number of unique ways FJ can spend his money.
Sample Input
5 3
Sample Output
5
一看完全背包, 套了模板, 很遗憾wa了, 想了想,不明所以, 搜了下题解, 居然说是因为结果太大, 看看数据似乎是这样的, 据说是两位数存就可以, 结果写完提交,果断AC
#include <iostream> #include <queue> #include <cmath> #include <cstdio> #include <cstring> #include <cstdlib> #include <stack> #include <vector> #include <algorithm> using namespace std; #define N 2100 #define met(a,b) (memset(a,b,sizeof(a))) typedef long long LL; LL dp[N][2]; int main() { int n, m; while(scanf("%d%d", &n, &m)!=EOF) { int i, j; met(dp, 0); dp[0][0] = 1; for(i=1; i<=m; i++) for(j=i; j<=n; j++) { dp[j][0] += dp[j-i][0]; dp[j][1] += dp[j-i][1]; dp[j][1] += dp[j][0]/1000000000000000; dp[j][0] %= 1000000000000000; } if(dp[n][1]==0) printf("%I64d ", dp[n][0]); else { printf("%I64d%015I64d ", dp[n][1], dp[n][0]); } } return 0; }
参考http://www.cnblogs.com/kuangbin/archive/2012/09/20/2695165.html