标签:other math == method 组合 十进制 for loop new The
蹉跎岁月 岁月里蹉跎。今天补交一个题。
这个题在leetcode里是easy的难度,我确没有写完,真不愿意来承认啊。
题目如下:
Given a list of dominoes, dominoes[i] = [a, b] is equivalent to dominoes[j] = [c, d] if and only if either (a==c and b==d), or (a==d and b==c) - that is, one domino can be rotated to be equal to another domino.
Return the number of pairs (i, j) for which 0 <= i < j < dominoes.length, and dominoes[i] is equivalent to dominoes[j]
解:
一开始我就只想到了暴力double for loop,配合一个private method which is used to compare whether it is equal. 测试结果就是时间复杂度太高了,么有accept。
看了别人的解法,原来思路是这样的,as following code.
public int numEquivDominoPairs(int[][] dominoes) {
int[] res = {0};
Map<Integer, Integer> map = new HashMap<>();
int key = 0;
for (int[] d : dominoes) {
key = Math.min(d[0], d[1]) * 10 + Math.max(d[0], d[1]);
map.put(key, map.getOrDefault(key, 0) + 1);
}
map.forEach((k, v) -> {
res[0] += v * (v - 1) / 2;
});
return res[0];
}
思路是把element array 转换成一个十进制数或者字符串。把得到的数或者字符串放在map里。然后用排列组合算出结果。res = C(2/v)
然后下面的解法就是直接累加计数得到结果:
public int numEquivDominoPairs(int[][] dominoes) {
int res = 0;
int key = 0;
Map<Integer, Integer> map = new HashMap<>();
for (int[] d : dominoes) {
key = Math.min(d[0], d[1]) * 10 + Math.max(d[0], d[1]);
res += map.getOrDefault(key, 0);
map.put(key, map.getOrDefault(key, 0) + 1);
}
return res;
}
Number of Equivalent Domino Pairs
标签:other math == method 组合 十进制 for loop new The
原文地址:https://www.cnblogs.com/setnull/p/11237127.html
