问题描述
LeetCode 2085. 统计出现过一次的公共字符串 (opens in a new tab),难度简单。
给你两个字符串数组 words1 和 words2 ,请你返回在两个字符串数组中 都恰好出现一次 的字符串的数目。
示例 1
输入:words1 = ["leetcode","is","amazing","as","is"], words2 = ["amazing","leetcode","is"] 输出:2 解释: - "leetcode" 在两个数组中都恰好出现一次,计入答案。 - "amazing" 在两个数组中都恰好出现一次,计入答案。 - "is" 在两个数组中都出现过,但在 words1 中出现了 2 次,不计入答案。 - "as" 在 words1 中出现了一次,但是在 words2 中没有出现过,不计入答案。 所以,有 2 个字符串在两个数组中都恰好出现了一次。
示例 2
输入:words1 = ["b","bb","bbb"], words2 = ["a","aa","aaa"] 输出:0 解释:没有字符串在两个数组中都恰好出现一次。
示例 3
输入:words1 = ["a","ab"], words2 = ["a","a","a","ab"] 输出:1 解释:唯一在两个数组中都出现一次的字符串是 "ab" 。
提示:
1 <= words1.length, words2.length <= 10001 <= words1[i].length, words2[j].length <= 30words1[i]和words2[j]都只包含小写英文字母。
题解
class Solution {
public int countWords(String[] words1, String[] words2) {
int result = 0;
Map<String, Integer> mapWord1 = new HashMap<>();
for (String s : words1) {
if (mapWord1.containsKey(s)) {
mapWord1.put(s, mapWord1.get(s) + 1);
} else {
mapWord1.put(s, 1);
}
}
Map<String, Integer> mapWord2 = new HashMap<>();
for (String s : words2) {
if (mapWord2.containsKey(s)) {
mapWord2.put(s, mapWord2.get(s) + 1);
} else {
mapWord2.put(s, 1);
}
}
for (Map.Entry<String, Integer> entry : mapWord2.entrySet()) {
if (entry.getValue() == 1 && mapWord1.containsKey(entry.getKey()) && mapWord1.get(entry.getKey()) == 1) {
result++;
}
}
return result;
}
}