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Description
"Kronecker‘s Knumbers" is a little company that manufactures plastic digits for use in signs (theater marquees, gas station price displays, and so on). The owner and sole employee, Klyde Kronecker, keeps track of how many digits of each type he has used by
maintaining an inventory book. For instance, if he has just made a sign containing the telephone number "5553141", he‘ll write down the number "5553141" in one column of his book, and in the next column he‘ll list how many of each digit he used: two 1s, one
3, one 4, and three 5s. (Digits that don‘t get used don‘t appear in the inventory.) He writes the inventory in condensed form, like this: "21131435".
The other day, Klyde filled an order for the number 31123314 and was amazed to discover that the inventory of this number is the same as the number---it has three 1s, one 2, three 3s, and one 4! He calls this an example of a "self-inventorying number", and
now he wants to find out which numbers are self-inventorying, or lead to a self-inventorying number through iterated application of the inventorying operation described below. You have been hired to help him in his investigations.
Given any non-negative integer n, its inventory is another integer consisting of a concatenation of integers c1 d1 c2 d2 ... ck dk , where each ci and di is an unsigned integer, every ci is positive, the di satisfy 0<=d1<d2<...<dk<=9, and, for each digit d
that appears anywhere in n, d equals di for some i and d occurs exactly ci times in the decimal representation of n. For instance, to compute the inventory of 5553141 we set c1 = 2, d1 = 1, c2 = 1, d2 = 3, etc., giving 21131435. The number 1000000000000 has
inventory 12011 ("twelve 0s, one 1").
An integer n is called self-inventorying if n equals its inventory. It is called self-inventorying after j steps (j>=1) if j is the smallest number such that the value of the j-th iterative application of the inventory function is self-inventorying. For instance,
21221314 is self-inventorying after 2 steps, since the inventory of 21221314 is 31321314, the inventory of 31321314 is 31123314, and 31123314 is self-inventorying.
Finally, n enters an inventory loop of length k (k>=2) if k is the smallest number such that for some integer j (j>=0), the value of the j-th iterative application of the inventory function is the same as the value of the (j + k)-th iterative application. For
instance, 314213241519 enters an inventory loop of length 2, since the inventory of 314213241519 is 412223241519 and the inventory of 412223241519 is 314213241519, the original number (we have j = 0 in this case).
Write a program that will read a sequence of non-negative integers and, for each input value, state whether it is self-inventorying, self-inventorying after j steps, enters an inventory loop of length k, or has none of these properties after 15 iterative applications
of the inventory function.
Input
A sequence of non-negative integers, each having at most 80 digits, followed by the terminating value -1. There are no extra leading zeros.
Output
For each non-negative input value n, output the appropriate choice from among the following messages (where n is the input value, j is a positive integer, and k is a positive integer greater than 1):
n is self-inventorying
n is self-inventorying after j steps
n enters an inventory loop of length k
n can not be classified after 15 iterations
Sample Input
22
31123314
314213241519
21221314
111222234459
-1
Sample Output
22 is self-inventorying
31123314 is self-inventorying
314213241519 enters an inventory loop of length 2
21221314 is self-inventorying after 2 steps
111222234459 enters an inventory loop of length 2
Source
本题没有多少技巧,就是考编程能力。
其中的注意的地方有:
1 数数字-基本算法,很多题目都会用上,本题利用Hash表计算每个数字出现的次数就可以,其中有个坑:注意大于9的数,多位数字转换成字符串
2 map的运用,当然可以使用STL,如果直接手动实现,或者使用Trie算法实现,那么本题难度就大大增加了。
3 简单的计算问题和读清楚题意,比如本题要求是大于15步,就需要额外处理的,不小心就掉坑里了。
下面程序标明的易出错还是挺容易让人掉坑里的。快到坑里来-_-|||
#include <stdio.h>
#include <vector>
#include <string.h>
#include <algorithm>
#include <iostream>
#include <string>
#include <limits.h>
#include <stack>
#include <queue>
#include <set>
#include <map>
using namespace std;
string countNum(string &s)
{
int hashNum[10] = {0};
int n = (int)s.size();
for (int i = 0; i < n; i++)
{
if (s[i] < '0' || s[i] > '9') break;
hashNum[s[i]-'0']++;
}
string rs;
for (int i = 0; i < 10; i++)
{
if (hashNum[i])
{
int j = hashNum[i];
string t;//易错处:有多位的数字的时候
while (j) t += char(j%10 + '0'), j /= 10;
reverse(t.begin(), t.end());
t += char(i + '0');
rs += t;
}
}
return rs;
}
template<typename T1, typename T2>
inline bool equ(T1 t1, T2 t2) { return t1 == (T1) t2; }
int main()
{
string num;
while (cin>>num && !equ(num[0], '-'))
{
int c = 0;
string N = num;
map<string, int> mapS_i;
while (true)
{
mapS_i[num] = c;
string t = countNum(num);
if (equ(t, num)) //self-inventory
{
if (equ(0, c))
{
cout<<N<<" is self-inventorying\n";
}
else
{
cout<<N<<" is self-inventorying after "
<<c<<" steps\n";
}
break;
}
else if (mapS_i.count(t)) //loop-inventory
{
int L = c - mapS_i[t] + 1;//易错处:What's loop of length?!
cout<<N<<" enters an inventory loop of length "<<L<<"\n";
break;
}
else if (c >= 14)//易错处:写成15就错!
{
cout<<N<<" can not be classified after 15 iterations\n";
break;
}
num = t;
c++;
}
}
return 0;
}
POJ 1016 Numbers That Count 模拟题目
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原文地址:http://blog.csdn.net/kenden23/article/details/42297061