题目来源:https://leetcode.com/contest/weekly-contest-104/problems/x-of-a-kind-in-a-deck-of-cards/
问题描述
914. X of a Kind in a Deck of Cards
In a deck of cards, each card has an integer written on it.
Return true if and only if you can choose X >= 2 such that it is possible to split the entire deck into 1 or more groups of cards, where:
- Each group has exactly
Xcards. - All the cards in each group have the same integer.
Example 1:
Input: [1,2,3,4,4,3,2,1]
Output: true
Explanation: Possible partition [1,1],[2,2],[3,3],[4,4]
Example 2:
Input: [1,1,1,2,2,2,3,3]
Output: false
Explanation: No possible partition.
Example 3:
Input: [1]
Output: false
Explanation: No possible partition.
Example 4:
Input: [1,1]
Output: true
Explanation: Possible partition [1,1]
Example 5:
Input: [1,1,2,2,2,2]
Output: true
Explanation: Possible partition [1,1],[2,2],[2,2]
Note:
1 <= deck.length <= 100000 <= deck[i] < 10000
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题意
给定一个数列A,问数列A能不能分成n个部分(n>=1),每个部分元素个数>=2,且每个元素相同
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思路
用map记录数列A中每个元素出现的次数,问题转化为求这些次数的公因子。如果有大于等于2的公因子,则返回true。求公因子时采用枚举从2到最小数依次判断整除性的办法。
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代码
class Solution {
public:
bool hasGroupsSizeX(vector<int>& deck) {
map<int, int> mp;
map<int, int>::iterator it;
int i, len = deck.size(), xmin = 0x3f3f3f3f, x;
bool is_true = true;
for (i=0; i<len; i++)
{
mp[deck[i]]++;
}
for (it=mp.begin(); it!=mp.end(); it++)
{
xmin = min(it->second, xmin);
}
for (x = 2; x <= xmin; x++)
{
is_true = true;
for (it=mp.begin(); it!=mp.end(); it++)
{
if ((it->second)%x != 0)
{
is_true = false;
}
}
if (is_true)
{
return true;
}
}
return false;
}
};